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Journal of Medicine and Pharmacy","Tạp chí Y Dược học Cần Thơ",{"EN":487,"VI":488},"\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">04\u002F10\u002F2015 Ministry of Information and Communications allowed Can Tho journal of medicine and pharmacy to operate (102 \u002FGP-BTTTT)\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">07\u002F16\u002F2015 Can Tho journal of medicine and pharmacy is internationally recognized: ISSN 2354-1210\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">In 2016, The journal has been included in the list of medical science journals by The State Council for professorship which is awarded a work score of 0-0.5 points for a published article.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Can Tho Journal of Medicine and Pharmacy welcome original works that haven’t been submitted or published in other medical journals. Posts must contain content related to one of the journal’s categories.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">The content published\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">The journal is divided into 3 categories:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Scientific research article: are valuable scientific works, which have been researched and accepted.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Overview of medicine, biology and pharmacy: serving the objective of continuing training in the fields of medicine, biology and pharmacy; to systematize classical and modern knowledge.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Update information on new knowledge about medicine, biology, pharmacy in the country and in the world.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Scope\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Publication and introduction of scientific research in the fields:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">+ Medicine (internal medicine, surgery, pediatrics, obstetrics and gynecology, odonto-stomatology, laboratory, oncology, traditional medicine, nursing).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">+ Biology (genetics, biotechnology).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">+ Pharmacology (pharmaceutics, drug quality analysis-control, synthetic pharmaceutical chemistry, biochemistry, pharmacognosy, botany, clinical pharmacy).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- To enhance the quality of undergraduate, postgraduate education, scientifically researching and meet the necessary treatment in hospital.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Introducing the updated domestic and oversea information about science technology to promote scientific research and exchanging technology in local, other universities.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Exchanging pharmaceutical and medical information for social health developing in the Mekong Delta and Vietnam.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">The object\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Postgraduate students, student of Can Tho University of Medicine and Pharmacy, scientists from schools, research institutes, hospitals, health centers, pharmaceutical companies of the Mekong Delta; other provinces and regions in Vietnam and other country.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Address\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Headquarters of Can Tho Journal of Medicine and Pharmacy, located Scientific Research and International Cooperation Office: 179 Nguyen Van Cu Street, An Khanh Ward, Ninh Kieu District, Can Tho City, Vietnam.\u003C\u002Fspan>\u003C\u002Fp>","\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Ngày 16\u002F7\u002F2015, Tạp chí Y Dược học Cần Thơ được cấp chỉ số quốc tế: ISSN 2354-1210.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Từ tháng 4\u002F2016, Tạp chí đã được Hội đồng Giáo sư ngành Y đưa vào danh sách các tạp chí khoa học Y học được tính điểm công trình 0-0,5 điểm cho một bài báo đăng.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Năm 2020 Tạp chí Y Dược học Cần Thơ đã được phê duyệt vào danh mục của các Hội đồng Giáo sư ngành Dược học được tính điểm công trình 0-0,5 điểm cho một bài báo đăng.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ ra 12 số\u002Fnăm, 180-200 trang\u002Fsố.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Từ tháng 12\u002F2022 Tạp chí Y Dược học Cần Thơ là thành viên của hệ thống Crossref và từ tháng 01\u002F2023 tạp chí thực hiện bình duyệt online kín 2 chiều nhằm tăng tính minh bạch, tin cậy của các công trình nghiên cứu khoa học và đảm bảo tốt nhất chất lượng khoa học của bài viết.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tôn chỉ, mục đích và phạm vi của tạp chí\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tôn chỉ và mục đích hoạt động của tạp chí: xuất bản nhằm mục đích phổ biến kết quả từ các đề tài nghiên cứu khoa học; giao lưu trao đổi khoa học, chia sẻ kinh nghiệm, học tập, đồng thời cập nhật thông tin khoa học mới trong các lĩnh vực y, sinh, dược học trong và ngoài nước.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Phạm vi của tạp chí: Tạp chí xuất bản được chia thành 3 chuyên mục: (i) Bài báo nghiên cứu khoa học là kết quả công trình nghiên cứu khoa học có giá trị đã được triển khai nghiên cứu, (ii) Bài tổng quan y, sinh, dược học: phục vụ mục tiêu đào tạo liên tục trong lĩnh vực y, sinh, dược học; nhằm hệ thống hóa những kiến thức kinh điển và hiện đại; (iii) Thông tin cập nhật kiến thức mới về y, sinh, dược học trong nước và trên thế giới.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Chính sách truy cập mở\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ áp dụng chính sách truy cập mở đối với các bài báo đã xuất bản đến với độc giả, nhằm mở rộng cơ hội tiếp cận các kết quả nghiên cứu chất lượng cao và tăng cường trao đổi kiến thức. Tạp chí đăng tải trực tuyến (miễn phí) toàn văn các bài báo được công bố trên website của Tạp chí (https:\u002F\u002Ftapchi.ctump.edu.vn).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Đạo đức xuất bản\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ cam kết tuân thủ đạo đức xuất bản phù hợp với các hướng dẫn và tiêu chuẩn của the Committee on Publication Ethics (COPE), tuân thủ các nguyên tắc của COPE’s Core Practices, Best Practices Guidelines for Journal Editors và Guidelines on Good Publication Practices.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Bản thảo bài báo chỉ được chấp nhận khi được tác giả chịu trách nhiệm chính cam kết các nội dung sau: Các nội dung của bản thảo chưa được đăng tải toàn bộ hoặc một phần ở các tạp chí khác; Tất cả các tác giả đều có đóng góp một cách đáng kể vào quá trình nghiên cứu hoặc chuẩn bị bản thảo và cùng chịu trách nhiệm về các nội dung của bản thảo; Tuân thủ các biện pháp đảm bảo đạo đức nghiên cứu (ví dụ thỏa thuận đồng ý tham gia nghiên cứu).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Cam kết bảo mật\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí cam kết thực hiện và tuân thủ các quy định của luật và các văn bản hướng dẫn liên quan đến bảo mật thông tin cá nhân trên không gian mạng. Các thông tin mà người dùng (tác giả, độc giả, biên tập viên, người phản biện) nhập vào các biểu mẫu trên Hệ thống Quản lý xuất bản trực tuyến của tạp chí chỉ được sử dụng vào các mục đích đã được tuyên bố rõ ràng và sẽ không được cung cấp cho bất kỳ bên thứ ba nào khác, hay dùng vào bất kỳ mục đích nào khác.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Phí gửi bài\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Lệ phí gửi đăng bài: 1.000.000đ\u002Fbài báo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Lệ phí gửi đăng nhanh: 1.500.000đ\u002Fbài báo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Đối với tác giả là cán bộ viên chức thuộc Trường Đại học Y Dược Cần Thơ thì được hỗ trợ 50% lệ phí gửi đăng bài.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Đối với sinh viên thực hiện đề tài nghiên cứu khoa học cấp trường được hỗ trợ 100% lệ phí đăng bài ( Tác giả gửi đính kèm “ Quyết định về việc giao tổ chức thực hiện đề tài nghiên cứu khoa học cấp Trường của sinh viên”).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Hình thức nộp lệ phí:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Tiền mặt:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Nộp trực tiếp tại Phòng Tài chính - Kế toán, Trường Đại học Y Dược Cần Thơ, số 179 Nguyễn Văn Cừ, P. An Khánh, Q. Ninh Kiều, thành phố Cần Thơ.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Chuyển khoản:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tên Tài khoản: Trường ĐHYD Cần Thơ, Số TK: 0111000115668, tại ngân hàng Vietcombank chi nhánh Cần Thơ.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Thời gian: Áp dụng từ ngày 01\u002F02\u002F2023.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">* Phí gửi bài không được hoàn trả khi bài viết bị từ chối hoặc tác giả xin rút bài viết.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Quy trình phản biện bài báo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ thực hiện quy trình phản biện kín hai chiều nghiêm ngặt. Danh tính của những người phản biện không được tiết lộ cho các tác giả và ngược lại. Quy trình thẩm định bài báo đăng gồm các bước sau:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tiếp nhận bản thảo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tác giả liên hệ gửi bản thảo đến Tạp chí qua hệ thống trực tuyến tại website: https:\u002F\u002Ftapchi.ctump.edu.vn. Hướng dẫn về cách đăng ký, gửi bài và chuẩn bị bản thảo được cung cấp trên website của Tạp chí.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Sàng lọc sơ bộ\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Sau khi Tòa soạn nhận được bài báo của tác giả, Ban Thư ký sẽ tiến hành kiểm tra sơ bộ bài báo (các yêu cầu về nội dung và hình thức). Những bài báo không đúng quy cách hoặc có nội dung không phù hợp hoặc vi phạm bản quyền sẽ bị từ chối (Ban Thư ký thông báo phản hồi đến tác giả trong vòng 1 tuần). Những bài báo đủ điều kiện, được Ban Thư ký tòa soạn chuyển đến Ban Biên tập có cùng chuyên môn với nội dung bài báo để đề xuất người phản biện. Thời gian kể từ khi Ban Biên tập nhận bài báo đến khi đề xuất người phản biện bài báo chậm nhất là 5 ngày.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Vòng phản biện\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Ban Thư ký gửi bài và yêu cầu phản biện đến 02 phản biện độc lập.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Các phản biện gởi nhận xét cho Ban Thư ký. Thời gian từ khi gửi bài cho phản biện đến khi nhận ý kiến của phản biện tối đa là 20 ngày.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Xử ký kết quả phản biện\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Nếu ý kiến đồng ý cho đăng và không cần chỉnh sửa, Ban Thư ký tiếp tục đăng bài theo qui trình.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Nếu ý kiến đồng ý đăng và cần chỉnh sửa, Ban Thư ký sẽ thông tin đến tác giả chỉnh sửa theo yêu cầu của người phản biện. Thời gian chỉnh sửa và gửi lại kéo dài không quá 2 tuần, từ khi tác giả bài báo nhận được thông tin (Quá trình này có thể lặp lại tối đa 2 lần\u002F1 bài báo). Khi có sự thống nhất, đồng ý của người phản biện; bài báo được tiếp tục đăng theo qui trình.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">3. Những bài báo có chất lượng không đạt yêu cầu, cả 2 phản biện không đồng ý cho đăng sẽ bị Tòa soạn từ chối đăng.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Xuất bản\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Ban Thư ký tổng hợp các bản thảo đã được tác giả hoàn thiện sau thẩm định trình Ban Biên tập xem xét, Tổng Biên tập phê duyệt, quyết định bài đăng theo các tiêu chí: sự phù hợp nội dung với tôn chỉ và mục đích, thể loại bài viết (ưu tiên các bài có bài có nghiên cứu chuyên sâu, hàm lượng khoa học cao), đóng góp mới bài báo, bài báo được ưu tiên đăng trong số gần nhất của Tạp chí theo thứ tự: tính thời sự, chất lượng bài báo và thời gian gửi bài.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Ban Biên tập và Ban Thư ký biên tập bản thảo, chế bản, đọc rà soát lỗi. Thời gian hoàn thành từ 10-15 ngày.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">3. Ban Thư ký có trách nhiệm thông báo cho tác giả bài báo (bằng e-mail) về tình hình phê duyệt bài báo, thời gian, số kỳ, tập xuất bản bài báo theo qui định.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">4. Danh sách bài báo theo số Tạp chí được in ấn và phát hành trong năm định kỳ được công bố chính thức trên website: https:\u002F\u002Ftapchi.ctump.edu.vn\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>",{"VOID":490},"wcQ1uqwAAAAJ","2023-05-30T08:17:21.868+00:00",[],[494],{"id":495,"createTime":28,"updateTime":28,"relativeEntities":496,"slug":28,"properties":497,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":507,"parentIds":508,"statistic":28},"6413896b-eca9-442b-a73f-182a58a0ce40",[],{"title":498,"address":501,"country":504,"abbreviation":505},{"EN":499,"VI":500},"Can Tho University of Medicine and Pharmacy","Trường Đại học Y Dược Cần Thơ",{"EN":502,"VI":503},"No 179, Nguyen Van Cu street, An Khanh ward, Ninh Kieu district, Can Tho city, Vietnam","Số 179, đường Nguyễn Văn Cừ, phường An Khánh, quận Ninh Kiều, thành phố Cần Thơ, Việt Nam",{"VOID":15},{"VOID":506},"ctump","http:\u002F\u002Fwww.ctump.edu.vn\u002F",[],[],"https:\u002F\u002Ftapchi.ctump.edu.vn\u002Findex.php\u002Fctump",{"impactFactor":32,"impactFactorByYear":512,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":514,"totalPublicationByYear":515,"totalCitation":520,"totalCitationByYear":521,"totalCitationPerPublication":108,"totalCitationPerPublicationByYear":523,"hindexLast5Year":45,"hindex":45},{"2022":513,"2023":111,"2024":106},0.01,1556,{"2020":47,"2021":516,"2022":517,"2023":518,"2024":519,"2025":122},57,306,801,358,161,{"2021":146,"2022":280,"2023":522},99,{"2021":524,"2022":318,"2023":104},0.23,{"impactFactor":28,"impactFactorByYear":28,"i10Index":123,"i10IndexLast5Year":123,"totalPublication":526,"totalPublicationByYear":527,"totalCitation":526,"totalCitationByYear":528,"totalCitationPerPublication":40,"totalCitationPerPublicationByYear":531,"hindexLast5Year":49,"hindex":49},476,{"0":205,"2019":123,"2021":139,"2022":459,"2023":451,"2024":357,"2025":49,"2026":48},{"2021":42,"2022":123,"2023":161,"2024":529,"2025":360,"2026":530},136,83,{"2021":105,"2022":513,"2023":532,"2024":127,"2025":533,"2026":534},0.62,25.43,13.83,{"id":536,"createTime":537,"updateTime":382,"relativeEntities":538,"slug":539,"properties":540,"entityType":25,"verifyStatus":26,"verifyTime":28,"verifyNote":28,"languages":552,"translateLanguages":28,"viewCount":133,"subjectFields":553,"manageAffiliations":554,"indexDatabases":555,"url":556,"thumbnailPath":557,"statistic":558,"gsStatistic":594,"type":55,"analyzePriority":28},"6984a56a-db70-403b-9cc4-4013e1ceaffa","2023-05-09T06:47:40.346+00:00",[],"T%E1%BA%A1p%20ch%C3%AD%20Nghi%C3%AAn%20c%E1%BB%A9u%20n%C6%B0%E1%BB%9Bc%20ngo%C3%A0i",{"country":541,"issn":542,"title":544,"introduce":547,"gsId":550},{"VOID":15},{"VOID":543},"25252445",{"EN":545,"VI":546},"VNU Journal of Foreign Studies","Tạp chí Nghiên cứu nước ngoài",{"EN":548,"VI":549},"{\"ops\":[{\"insert\":\"\\n\\nThe \\n\"},{\"attributes\":{\"italic\":true},\"insert\":\"VNU Journal of Science\"},{\"insert\":\"\\n was established in 1985 for the publication of national and international research papers in all fields of natural sciences and technology, social sciences and humanities. 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Kinetic predictions for crystallization of the glass were derived from isoconversional analysis of DTA data using AKTS software. Activation energy of crystallization (E) at reaction progress (α = 0.5) estimated 659 kJ mol−1. The kinetic parameters were calculated as n = m = 2, representing two-dimensional nucleation and crystal growth with constant number of surface nuclei in this glass composition. From microstructure analysis of glass–ceramics we have seen the dendritic growth of crystals in the glass matrix originating from the surface creating a glass–ceramics phosphor layer of ~ 50 μm thick. No nucleation or crystal growth observed in the glass beyond 50 μm depth. Surface roughness found to increase the nucleation and accelerate the crystallization in the glass–ceramics layer. Five glass–ceramics samples prepared with increasing isothermal holding time and their photoluminescence spectra obtained by excitation with a blue LED light source. Intensity of broad band yellow emission increased with the increase in holding time which enhances the amount of Ce: YAG crystalline phase in glass–ceramics. A device was assembled for the demonstration of white light generation using an optimized glass–ceramics phosphor and blue LED in tandem.",{"EN":1001},"Study of crystallization kinetics, microstructure and optical properties of Ce: YAG glass-ceramics for white LED applications",{"EN":1003},"",{"VOID":1005},"Fujita S, Tanabe S. Glass-ceramics and solid-state lighting. Int J Appl Glas Sci. 2015;6:356–63.\nFujita S, Sakamoto A, Tanabe S. Luminescence characteristics of YAG glass-ceramic phosphor for white LED. IEEE J Sel Top Quantum Electron. 2008;14:1387–91.\nChen D, Xiang W, Liang X, Zhong J, Yu H, Ding M, Lu H, Ji Z. Advances in transparent glass ceramics phosphors for white light emitting diode-a review. J Eur Ceram Soc. 2015;35:859–69.\nFujita S, Yoshihara S, Sakamoto A, Yamamoto S, Tanabe S. YAG glass-ceramic phosphor for white LED (I): background and development. In: Fifth International Conference on Solid State Lighting, Proc. of SPIE. 2005; 5941, p. 186–192.\nKeshavari A, Wisniewski W, Kloe R, Russel C. Surface crystallization of yttrium aluminum garnet from a silicate glass. Cryst Eng Commun. 2013;15:5425–33.\nWang L, Mei L, He G, Li J, Xu L. Preparation of Ce: YAG glass-ceramics with low SiO2. J Am Ceram Soc. 2011;94:3800–3.\nNishiura S, Tanabe S, Fujioka K, Fujimoto Y. Properties of transparent Ce: YAG ceramic phosphors for white LED. Opt Mater. 2011;33:688–91.\nLiu H, Zhou Z, Shi Y, Liu Q, Wan J, Pan Y. Ce: YAG transparent ceramics for applications of high power LEDs: thickness effects and high temperature performance. Mater Lett. 2015;139:480–2.\nSun B, Zhang L, Zhou T, Shao C, Zhang L, Ma Y, Yao Q, Jiang Z, Selim F, Chen H. Protected-annealing regulated defects to improve optical properties and luminescence performance of Ce: YAG transparent ceramics for white LEDs. J Mater Chem C. 2019;7:4057–65.\nYuan Y, Wang D, Zhou B, Feng S, Sun M, Zhang S, Gao W, Bi Y, Qin H. High luminous fluorescence generation using Ce: YAG transparent ceramic excited by blue laser diode. Opt Mater Express. 2018;8:2760–7.\nLee Y, Lee J, Heo J, Im W, Chung W. Phosphor in glasses with Pb-free silicate glass powders as robust color-converting materials for white LED applications. Opt Lett. 2012;37:3276–8.\nWang F, Lin Y, Shi H, Wang W, Deng Z, Chen J, Yuan X, Cao Y. Introduction on the fabrication technique of phosphor in glass by tape-casting and investigation on the chromaticity property. Opt Express. 2014;22:A1355–62.\nKim S, Kim H. Optical properties of phosphor-in-glass through modification of pore, properties for LED packaging. Opt Mater. 2018;75:814–20.\nAhmad S, Ludwig T, Herrmann M, Mahmoud M, Lippmann W, Seifert H. Phase evaluation during high temperature long heat treatments in the Y2O3-Al2O3-SiO2 system. J Eur Ceram Soc. 2014;34:3835–40.\nZhu W, Jiang H, Zhang H, Jia S, Liu Y. Effect of TiO2 and CaF2 on the crystallization behavior of Y2O3-Al2O3-SiO2 glass ceramics. Ceram Int. 2018;44:6653–8.\nDas A, Goswami M, Krishnan M. Crystallization kinetics of Li2O–Al2O3–GeO2–P2O5 glass–ceramics system. J Therm Anal Calorim. 2018;131:2421–31.\nRoduit B, Dermaut W, Lunghi A, Folly P, Berger B, Sarbach A. Advanced Kinetics based simulation of time to maximum rate under adiabatic conditions. J Therm Anal Calorim. 2008;93:163–73.\nRoduit B, Xia L, Folly P, Berger B, Mathieu J, Sarbach A, Andres H, Ramin M, Vogelsanger B, Spitzer D, Moulard H, Dilhan D. The simulation of the thermal behaviour of energetic materials based on DSC and HFC signals. J Therm Anal Calorim. 2008;93:143–52.\nRoduit B, Hartmann M, Folly P, Sarbach A, Brodard P, Baltensperger R. Determination of thermal hazard from DSC measurements, Investigation of self-accelerating decomposition temperature (SADT) of AIBN. J Therm Anal Calorim. 2014;117:1017–26.\nJohnson WA, Mehl RF. Reaction kinetics in processes of nucleation and growth. Trans AIME. 1939;135:396–415.\nAvrami M. Kinetics of phase change. I General theory. J Chem Phys. 1939;7:1103–12.\nAvrami M. Kinetics of phase change. II transformation-time relations for random distribution. J Chem Phys. 1940;8:812–24.\nSenanon W, Eitssayeam S, Rujijanagul G, Tunkasiri T, Yongsiri P, Pengpat K. Non-isothermal crystallization kinetics of transparent glass-ceramic phosphors containing calcium magnesium aluminosilicate nanocrystals. J Nanosci Nanotechnol. 2018;18:6195–200.\nThieme K, Russel C. The effect of dopants on crystal growth kinetics of lithium disilicate: surface versus bulk crystallization. J Mater Sci. 2019;54:1099–111.\nMatusita K, Sakka S. Kinetic study on crystallization of glass by differential thermal analysis, criterion on application of Kissinger Plot. J Non-Crystall Solids. 1980;38:741–6.\nKarmakar P, Subudhi AK, Biswas K, Annapurna K. Crystallization kinetics analysis of BaF2 and BaGdF5 nanocrystals precipitated from oxyfluoride glass systems: a comparative study. Thermochim Acta. 2015;610:1–9.\nGhrib T, Al-Otaibi AL, Almessiere MA, Ashahri A, Masoudi I. Structural, optical and thermal properties of the Ce doped YAG synthesized by solid state reaction method. Thermochim Acta. 2017;654:35–9.\nScherrer P. Bestimmung der Grösse und der inneren Struktur von Kolloidteilchen mittels Röntgenstrahlen. Nachr Ges Wiss Göttingen. 1918;26:98–100.\nSingh A, Gautam C, Madheshiya A, Dwivedi R. Doping effect of Cr2O3 on crystallization and dielectric behavior of strontium titanate borosilicate glass ceramics. J Mater Sci Mater Electron. 2017;28:4161–9.\nMadheshiya A, Gautam C, Srivastava K. Fabrication of lead-bismuth titanate borosilicate glass ceramics and dielectric characteristics doped with GNPs. Mater Res Express. 2020;7:015206–23.\nKracker M, Vladislavova L, Thieme C, Zscheckel T, Thieme K, Hoche T, Russel C. Surface crystallization of low thermal expansion Ba0.5Sr0.5Zn2Si2O7 from an 8 BaO0.8 SrO0.34 ZnO0.50 SiO2 glass. RSC Adv. 2017;7:44834–42.\nWisniewski W, Seidel S, Patzig C, Rüssel C. Surface crystallization of a MgO\u002F Y2O3\u002FSiO2\u002FAl2O3\u002FZrO2 glass: growth of an oriented β-Y2Si2O7 layer and epitaxial ZrO. Nat Sci Rep. 2017;7:44144.\nMuller R, Zanotto ED, Fokin VM. Surface crystallization of silicate glasses: nucleation sites and kinetics. J Non-Cryst Solids. 2000;274:208–31.\nPrnová A, Plško A, Valúchová J, Švančárek P, Klement R, Michálková M, Galusek D. Crystallization kinetics of yttrium aluminate glasses. J Therm Anal Calorim. 2018;133:227–36.\nPrnová A, Plško A, Valúchová J, Klement R, Chromčíková M, Mutlu N, Majerová M, Bruneel E, Galusek D. Crystallization kinetics of binary Yb2O3-Al2O3 glass. 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In this work, the thermal behavior of the modified starch and qualitative assessment of degradation products released during pyrolysis were determined and comprised. The analysis of the course of progressive decomposition of the starch material under controlled heating in the range of 25–1000 °C in anaerobic atmosphere was based on the results of thermal analysis methods (TG–DTG–DSC) in combination with the results of pyrolysis–gas chromatography–mass spectrometry (Py–GC\u002FMS). The detailed TG–DTG–DSC analysis allowed to determine and compare the temperature at which the process of decomposition of carboxymethyl starches sodium salts with different degrees of substitution begins and to determine the course of its degradation under conditions corresponding to the contact of the foundry binder in the form of starch material with liquid metal (conditions like in foundry mold). Thermogravimetric analysis shows that decomposition processes are multistage, and dehydration is the first step of decomposition. Moreover, TG–DTG–DSC analyses indicate that the thermal stability and the decomposition path of tested compounds depend on the DS. Results of Py–GC\u002FMS studies showed that the formation of decomposition products (including cyclic and aromatic hydrocarbons) in a predetermined temperature range is lower in the case of CMS–Na with high DS.",{"EN":1128},"Thermoanalytical studies (TG–DTG–DSC, Py–GC\u002FMS) of sodium carboxymethyl starch with different degrees of substitution",{"VOID":1130},"Zhou X, Yang J, Qian F, Qu G. Synthesis and application of modified starch as a shell-core main adhesive in a foundry. J Appl Polym Sci. 2010;216:2893–900.\nZhou X, Yang J, Qu G. Study on synthesis and properties of modified starch binder for foundry. J Mater Process Technol. 2007;183:407–11.\nYu W, He H, Cheng N, Gan B, Li X. Preparation and experiments for a novel kind of foundry core binder made from modified potato starch. Mater Des. 2009;30:210–3.\nGrabowska B, Sitarz M, Olejnik E, Kaczmarska K, Tyliszczak B. FT-IR and FT-Raman studies of cross-linking processes with Ca2+ ions, glutaraldehyde and microwave radiation for polymer composition of poly(acrylic acid)\u002Fsodium salt of carboxymethyl starch—Part I. Spectrochim Acta—Part A Mol Biomol Spectrosc. 2015;135:529–35.\nGrabowska B, Sitarz M, Olejnik E, Kaczmarska K, Tyliszczak B. FT-IR and FT-Raman studies of cross-linking processes with Ca2+ ions, glutaraldehyde and microwave radiation for polymer composition of poly(acrylic acid)\u002Fsodium salt of carboxymethyl starch – In moulding sands, Part II. Spectrochim Acta Part A Mol Biomol Spectrosc. 2015;151:27–33.\nKaczmarska K, Grabowska B. Potential of the application of the modified polysaccharides water solutions as binders. Metalurgija. 2016;55:15–8.\nShehu T, Bhatti RS. The use of Yam flour (starch) as binder for sand mould production in Nigeria. World Appl Sci J. 2012;16:858–62.\nGrabowska B, Sitarz M, Olejnik E, Kaczmarska K. FT-IR and FT-Raman studies of cross-linking processes with Ca2+ ions, glutaraldehyde and microwave radiation for polymer composition of poly(acrylic acid)\u002Fsodium salt of carboxymethyl starch – Part I. Spectrochim Acta—Part A Mol Biomol Spectrosc. 2015;131:529–35.\nJiang Q, Gao W, Li X, Liu Z, Huang L, Xiao P. Synthesis and properties of carboxymethyl Pueraria thomsonii Benth. starch. Starch\u002FStärke. 2011;63:692–9.\nZhang B, Gong H, Lü S, Ni B, Liu M, Gao C, et al. Synthesis and characterization of carboxymethyl potato starch and its application in reactive dye printing. Int J Biol Macromol. 2012;51:668–74.\nSpychaj T, Wilpiszewska K, Zdanowicz M. Medium and high substituted carboxymethyl starch: synthesis, characterization and application. Starch\u002FStärke. 2013;65:22–33.\nZdanowicz M, Spychaj T, Lendzion-Bieluń Z. Crosslinked carboxymethyl starch: one step synthesis and sorption characteristics. Int J Biol Macromol. 2014;71:87–93.\nBhandari PN, Hanna MA. Preparation of highly substituted carboxymethyl starch using a twin-screw extruder. Starch\u002FStaerke. 2011;63:771–9.\nNattapulwat N, Purkkao N, Suwithayapan O. Preparation and application of carboxymethyl yam (Dioscorea esculenta) starch. Am Assoc Pharm Sci. 2009;10:193–8.\nHild A, Koch W, Lazik W, Loth F, Volkert B. US 20040039191 A1—Method for producing highly-substituted carboxyalkyl starch. 2001.\nTijsen CJ, Voncken RM, Beenackers AACM. Design of a continuous process for the production of highly substituted granular carboxymethyl starch. Chem Eng Sci. 2001;56:411–8.\nTijsen CJ, Scherpenkate HJ, Stamhuis EJ, Beenackers AACM. Optimisation of the process conditions for the modification of starch. Chem Eng Sci. 1999;54:2765–72.\nBi Y, Liu M, Lan W, Cui D. Synthesis of carboxymethyl potato starch and comparison of optimal reaction conditions from different sources. Polym Adv Technol. 2008;19:1185–92.\nZhou X, Yang J, Qian F, Guohiu Q. Synthesis and application of modified shell-core main adhesive in foundry. J Appl Polym Sci. 2010;116:2893–900.\nZhou X, Yang J, Qu G. Adhesive bonding and self-curing characteristics of α-starch based composite binder for green sand mould\u002Fcore. J MaterSciTEchnol. 2004;20:617–21.\nBrown J, editor. Sands and green sand. Foseco Ferr Foundryman’s Handb. Oxford: Butterworth-Heinemann; 2000.\nSvidró JT, Diószegi A, Svidró J, Ferenczi T. The effect of different binder levels on the heat absorption capacity of moulding mixtures made by the phenolic urethane cold-box process. J Therm Anal Calorim. 2017;130:1769–77.\nSvidró JT, Diószegi A, Svidró J, Ferenczi T. Thermophysical aspects of reclaimed moulding sand addition to the epoxy-SO2 coremaking system studied by Fourier thermal analysis. J Therm Anal Calorim. 2017;130:1779–89.\nGrabowska B, Hodor K, Kaczmarska K, Bobrowski A, Kurleto-Kozioł Ż, Fischer C. Thermal analysis in foundry technology. Part 2. TG–DTG–DSC, TG–MS and TG–IR study of the new class of polymer binders BioCo. J Therm Anal Calorim. 2017;130:301–9.\nKaczmarska K, Grabowska B, Grabowski G, Bobrowski A, Kurleto-Kozioł Ż. Thermal decomposition of binder based on etherified starch to use in foundry industry: tG–DTG–DSC and DRIFT investigations. J Therm Anal Calorim. 2017;130:285–90.\nSpychaj T, Zdanowicz M, Kujawa J, Schmidt B. Carboxymethyl starch with high degree of substitution: synthesis, properties and application. Polimery. 2013;58:501–630.\nStojanović Z, Katsikas L, Popovic I, Jovanovic S, Jeremic K. Thermal stability of starch benzoate. Polym Degrad Stab. 2005;87:177–82.\nPielichowski K, Njuguna J. Thermal degradation of polymeric materials. London: Rapra Technology Limited; 2005.\nWorzakowska M. The preparation, physicochemical and thermal properties of the high moisture, solvent and chemical resistant starch-g-poly (geranyl methacrylate copolymers. J Therm Anal Calorim. 2019;9.\nRudnik E, Matuschek G, Milanov N, Kettrup A. Thermal stability and degradation of starch derivatives. J Therm Anal Calorim. 2006;85:267–70.\nFilho GR, de Assunção RMN, Vieira JG, da Meireles CS, Cerqueira DA, da Silva Barud H, et al. Characterization of methylcellulose produced from sugar cane bagasse cellulose: crystallinity and thermal properties. Polym Degrad Stab. 2007;92:205–10.\nZdybel E, Tomaszewska-Ciosk E, Romańczuk M. Określenie przewodnictwa cieplnego skrobi różnego pochodzenia botanicznego oraz skrobi ziemniaczanej rozsortowanej według wielkości gałeczek. Biul Inst Hod i Aklim Roślin. 2012;93–100.\nFang JM, Fowler PA, Tomkinson J, Hill CAS. The preparation and characterisation of a series of chemically modified potato starches. Carbohydr Polym. 2002;47:245–52.\nBoki K, Kimura D, Minami K, Yamada Y. Thermal decomposition of sodium carboxymethyl starch. Jpn J Toxicol Environ Heal. 1998;44:204–13.\nSebestyén Z, Jakab E, May Z, Sipos B, Réczey K. Thermal behavior of native, washed and steam exploded lignocellulosic biomass samples. J Anal Appl Pyrolysis. 2013;101:61–71.\nSoares JP, Santos JE, Chierice GO, Cavalheiro ETG. Thermal behavior of alginic acid and its sodium salt. Eclet Quim. 2004;29:57–63.\nLee S, Kim ST, Pant BR, Kwen HD, Song HH, Lee SK, et al. Carboxymethylation of corn starch and characterization using asymmetrical flow field-flow fractionation coupled with multiangle light scattering. J Chromatogr A. 2010;1217:4623–8.\nMathew S, Abraham TE. Physico-chemical characterization of starch ferulates of different degrees of substitution. Food Chem. 2007;105:579–89.",{"VOID":1132},"10.1007\u002Fs10973-019-08892-4","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10973-019-08892-4",[1135,1150,1163,1178,1191,1204],{"id":1136,"sortIndex":32,"researcher":28,"roles":1137,"affiliations":1138,"properties":1147,"displayName":1149,"givenName":28,"familyName":28},"a4825108-1300-44b4-aabe-17be5854a63e",[1015],[1139],{"id":1140,"sortIndex":32,"affiliation":1141,"properties":28},"1d966afb-b47b-4401-a0ed-d4a7ebd78384",{"id":1140,"createTime":28,"updateTime":28,"relativeEntities":1142,"slug":28,"properties":1143,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1146,"statistic":28},[],{"title":1144},{"EN":1145},"Faculty of Foundry Engineering, AGH University of Science and Technology, Kraków, Poland",[],{"title":1148},{"VI":1149},"Karolina 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sewage sludge can be chosen as an inhibitor to solve the problems related to alkali metal during biomass combustion. Emission of NO\n                  x\n                 and N2O is an important factor for the co-combustion of biomass with municipal sewage sludge. Thermogravimetry–mass spectrometry was adopted to study nitrogen transformation during the co-combustion of the blends. In this paper, the release characteristics of nitrogen-containing species of the blends during heating process are mainly studied. The yields of main nitrogenous gases (HCN, NH3, NO and HNCO) decrease by mixing biomass with municipal sewage sludge during the heating process. The decrease rate is significant when municipal sewage sludge share changes from 0 to 30 %. The co-combustion of corn straw and cotton stalk mixed with sludge releases less nitrogenous gases than that of wheat straw mixed with sludge.",{"EN":1281},"TG–MS analysis of nitrogen transformation during combustion of biomass with municipal sewage sludge",{"VOID":1283},"Ghani WAWAK, Alias AB, Savory RM, Cliffe KR. Co-combustion of agricultural residues with coal in a fluidized bed combustor. Waste Manag. 2009;29(2):767–73.\nJensen PA, Frandsen FJ, Hansen J, Dam-Johansen K, Henriksen N, Horlyck S. SEM investigation of superheater deposits from biomass-fired boilers. Energy Fuels. 2004;18(2):378–84.\nWerther J, Saenger M, Hartge EU, Ogada T, Siagi Z. Combustion of agricultural residues. Prog Energy Combust Sci. 2000;26(1):1–27.\nMasiá TAA, Buhre BJP, Gupta RP, Wall TF. Characterising ash of biomass and waste. Fuel Process Technol. 2007;88(11–12):1071–81.\nZeuthen JH, Jensen PA, Jensen JP, Livbjerg H. Aerosol formation during the combustion of straw with addition of sorbents. Energy Fuels. 2007;21(2):699–709.\nLindström E, Sandström M, Boström D, Ohman M. Slagging characteristics during combustion of cereal grains rich in phosphorus. Energy Fuels. 2007;21(2):710–7.\nÅmand LE, Leckner B, Eskilsson D, Tullin C. Deposits on heat transfer tubes during co-combustion of biofuels and sewage sludge. 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In: Twenty-fourth symposium (international) on combustion, The Combustion Institute, Pittsburgh, PA, 859–878, 1992.\nAshman PJ, Haynes BS, Buckley AN, Nelson PF. The fate of char-nitrogen in low-temperature oxidation. In: The 27th international symposium on combustion. 1998.\nWargadalam VJ, Löffler G, Winter F, Hofbauer H. Homogeneous formation of NO and N2O from oxidation of HCN and NH3 at 600–1000 °C. Combust Flame. 2000;120(4):465–78.\nStephen R. Turns. An introduction to combustion: concepts and applications (2nd edition), 1999.\nKilpinen P, Hupa M. Homogeneous N2O Chemistry at fluidized bed combustion conditions: a kinetic modeling study. Combust Flame. 1991;85(1\u002F2):94–104.\nÅmand LE, Leckner B, Andersson S. Formation of N2O in circulating fluidized bed boiler. Energy Fuels. 1991;5(6):815–23.\nHayhurst AN, Ninomiya Y. Kinetics of the conversion of NO to N2 during the oxidation of iron particles by NO in a hot fluidized bed. Chem Eng Sci. 1998;53(8):1481–9.\nZhao Z, Li W, Qiu J, Li BQ. Catalytic effect of Na–Fe on NO–char reaction and NO emission during coal char combustion. Fuel. 2002;81(18):2343–8.\nChe DF. Thermal coal-N transformation and nitrogen oxide generation, 205–206. Xi’an Jiaotong University Press, 2013.\nIllan-Gomez MJ, Linares-Solano A, Delecea CS, Calo JM. Nitrogen oxide (NO) reduction by activated carbons. 1. The role of carbon porosity and surface area. Energy Fuels. 1993;7(1):146–54.",{"VOID":1285},"10.1007\u002Fs10973-015-4712-z","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10973-015-4712-z",[1288,1312,1325,1338,1351],{"id":1289,"sortIndex":32,"researcher":28,"roles":1290,"affiliations":1291,"properties":1309,"displayName":1311,"givenName":28,"familyName":28},"43138082-0f48-4c15-bb4c-7f145b8209c1",[1015],[1292,1300],{"id":1293,"sortIndex":32,"affiliation":1294,"properties":28},"548be3ca-2f28-40bc-ac84-78f556245b93",{"id":1293,"createTime":28,"updateTime":28,"relativeEntities":1295,"slug":28,"properties":1296,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1299,"statistic":28},[],{"title":1297},{"VI":1298},"Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing, China",[],{"id":1301,"sortIndex":40,"affiliation":1302,"properties":1308},"1754683c-b32f-4f55-a3d2-4892ae7e9f82",{"id":1301,"createTime":28,"updateTime":28,"relativeEntities":1303,"slug":28,"properties":1304,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1307,"statistic":28},[],{"title":1305},{"VI":1306},"University of Chinese Academy of Sciences, Beijing, China",[],{},{"title":1310},{"VI":1311},"Xin Wang",{"id":1313,"sortIndex":40,"researcher":28,"roles":1314,"affiliations":1315,"properties":1322,"displayName":1324,"givenName":28,"familyName":28},"bf871f91-ca85-4d83-b8f1-0964bcbad7a0",[1015],[1316],{"id":1293,"sortIndex":32,"affiliation":1317,"properties":28},{"id":1293,"createTime":28,"updateTime":28,"relativeEntities":1318,"slug":28,"properties":1319,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1321,"statistic":28},[],{"title":1320},{"VI":1298},[],{"title":1323},{"VI":1324},"Qiangqiang Ren",{"id":1326,"sortIndex":123,"researcher":28,"roles":1327,"affiliations":1328,"properties":1335,"displayName":1337,"givenName":28,"familyName":28},"0e55f9dd-9d89-453c-a4ee-d0668f909d03",[1015],[1329],{"id":1293,"sortIndex":32,"affiliation":1330,"properties":28},{"id":1293,"createTime":28,"updateTime":28,"relativeEntities":1331,"slug":28,"properties":1332,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1334,"statistic":28},[],{"title":1333},{"VI":1298},[],{"title":1336},{"VI":1337},"Linna Li",{"id":1339,"sortIndex":42,"researcher":28,"roles":1340,"affiliations":1341,"properties":1348,"displayName":1350,"givenName":28,"familyName":28},"879ec003-a563-4d1c-b642-48f868dceaa4",[1015],[1342],{"id":1293,"sortIndex":32,"affiliation":1343,"properties":28},{"id":1293,"createTime":28,"updateTime":28,"relativeEntities":1344,"slug":28,"properties":1345,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1347,"statistic":28},[],{"title":1346},{"VI":1298},[],{"title":1349},{"VI":1350},"Shiyuan Li",{"id":1352,"sortIndex":45,"researcher":28,"roles":1353,"affiliations":1354,"properties":1361,"displayName":1363,"givenName":28,"familyName":28},"a4fe86f8-a506-41c3-afb4-ec46533d5eef",[1015],[1355],{"id":1293,"sortIndex":32,"affiliation":1356,"properties":28},{"id":1293,"createTime":28,"updateTime":28,"relativeEntities":1357,"slug":28,"properties":1358,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1360,"statistic":28},[],{"title":1359},{"VI":1298},[],{"title":1362},{"VI":1363},"Qinggang Lu",{"url":1286,"publisher":1365,"properties":1410},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1366,"slug":872,"properties":1367,"entityType":25,"verifyStatus":878,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1370,"manageAffiliations":1379,"indexDatabases":1390,"url":28,"thumbnailPath":28,"statistic":1405,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1368,"title":1369},{"VOID":875},{"VOID":877},[1371,1375],{"id":881,"createTime":28,"updateTime":28,"relativeEntities":1372,"label":1373,"description":1374,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":884},{},{"id":887,"createTime":28,"updateTime":28,"relativeEntities":1376,"label":1377,"description":1378,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":890},{},[1380,1385],{"id":894,"createTime":28,"updateTime":28,"relativeEntities":1381,"slug":28,"properties":1382,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1384,"statistic":28},[],{"title":1383},{"EN":898},[],{"id":901,"createTime":28,"updateTime":28,"relativeEntities":1386,"slug":28,"properties":1387,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1389,"statistic":28},[],{"title":1388},{"EN":905},[907],[1391,1398],{"id":910,"indexDatabase":1392,"url":922,"indexYears":28,"academicFieldIds":1397,"indexDatabaseRanking":28},{"id":912,"createTime":28,"updateTime":28,"relativeEntities":1393,"label":1394,"description":1395,"key":919,"publicationTags":1396,"standard":28},[],{"EN":915,"VI":915},{"EN":917,"VI":918},[921,813],[924,925],{"id":927,"indexDatabase":1399,"url":933,"indexYears":934,"academicFieldIds":1404,"indexDatabaseRanking":938},{"id":775,"createTime":28,"updateTime":28,"relativeEntities":1400,"label":1401,"description":1402,"key":781,"publicationTags":1403,"standard":28},[],{"EN":778,"VI":778},{"EN":778,"VI":780},[783],[936,937],{"impactFactor":32,"impactFactorByYear":1406,"i10Index":858,"i10IndexLast5Year":946,"totalPublication":947,"totalPublicationByYear":1407,"totalCitation":961,"totalCitationByYear":1408,"totalCitationPerPublication":975,"totalCitationPerPublicationByYear":1409,"hindexLast5Year":689,"hindex":689},{"2012":941,"2014":111,"2015":319,"2016":222,"2017":346,"2018":942,"2019":840,"2020":943,"2021":944,"2022":945,"2023":174},{"2003":323,"2004":281,"2005":516,"2006":133,"2009":129,"2010":131,"2011":40,"2012":40,"2013":949,"2014":950,"2015":951,"2016":952,"2017":953,"2018":954,"2019":955,"2020":956,"2021":957,"2022":958,"2023":959,"2024":960},{"2003":963,"2004":964,"2005":965,"2006":155,"2010":154,"2013":218,"2014":966,"2015":967,"2016":968,"2017":969,"2018":970,"2019":971,"2020":972,"2021":973,"2022":974,"2023":864,"2024":48},{"2003":977,"2004":978,"2005":979,"2006":374,"2010":980,"2013":226,"2014":981,"2015":982,"2016":983,"2017":984,"2018":233,"2019":985,"2020":982,"2021":986,"2022":219,"2023":118,"2024":421},{"pages":1411,"volume":1413},{"VOID":1412},"2061-2068",{"VOID":1414},"123","2015-04-30",2015,[938,921],{"id":1419,"createTime":1420,"updateTime":1421,"relativeEntities":1422,"slug":1423,"properties":1424,"entityType":1008,"verifyStatus":26,"verifyTime":1421,"verifyNote":1009,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1433,"fullTextUrl":28,"authors":1434,"publicationType":1067,"publisherRelationship":1474,"citationCount":28,"citationInfo":28,"publishDate":1525,"publishYear":1526,"citationAnalyzeStatus":878,"lastCitationAnalyze":28,"indexDatabases":1527,"openAccess":28,"references":28,"isForceReanalyzing":1117},"0019a013-1d4c-498d-ab98-f4da6f059c6a","2023-12-28T07:43:07.691+00:00","2025-02-11T03:26:12.364+00:00",[],"Thermal-resistance-of-alkali-activated-metakaolin-pastes-containing-nano-silica-particles",{"abstract":1425,"title":1427,"references":1429,"doi":1431},{"EN":1426},"In the current investigation, the opportunity of employing nano-SiO2 (NS) to modify fire resistance of metakaolin-based geopolymer pastes has been explored. Metakaolin (MK) was partially substituted with NS at ratios of 0.5%, 1%, 2%, 3% and 4%, by mass. After curing for 28 days, the specimens were subjected to high temperatures altered from 400 to 1000 °C with a step of 200 °C for 2 h. The workability of different mixtures has been investigated. Mass loss and compressive strength of various specimens prior and after exposure have been measured. The new formed geopolymer phases have been identified using X-ray diffraction and scanning electron microscopy. The results displayed that the incorporation of NS reduced the workability. The incorporation of 0.5% NS enhanced the compressive strength and fire resistance of MK-based geopolymer pastes, whilst including extra amounts of NS led to the occurrence of adverse effects.",{"EN":1428},"Thermal resistance of alkali-activated metakaolin pastes containing nano-silica particles",{"VOID":1430},"Andrew RM. Global CO2 emissions from cement production. 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Effects of ZnO2, ZrO2, Cu2O3, CuO, CaCO3, SF, FA, cement and geothermal silica waste nanoparticles on properties of cementitious materials: a short guide for civil engineer. Constr Build Mater. 2013;48:1120–33.\nRashad AM. A comprehensive overview about the effect of nano-SiO2 on some properties of traditional cementitious materials and alkali-activated fly ash. Constr Build Mater. 2014;52:437–64.\nRashad AM. A synopsis about the effect of nano-titanium dioxide on some properties of cementitious materials: a short guide for civil engineer. Rev Adv Mater Sci. 2015;40:72–88.\nPhoo NT, Chindaprasirt P, Sata V, Hanjitsuwan S, Hatanaka S. The effect of adding nano-SiO2 and nano-Al2O3 on properties of high calcium fly ash geopolymer cured at ambient temperature. Mater Des. 2014;55:58–65.\nRiahi S, Nazari A. The effects of nanoparticles on early age compressive strength of ash-based geopolymers. Ceram Int. 2012;38:4467–76.\nGao X, Yu QL, Brouwers HH. Characterization of alkali activated slag-fly ash blends containing nano-silica. Constr Build Mater. 2015;98:397–406.\nGuo X, Shi H, Wei X. Pore properties, inner chemical environment, and microstructure of nano-modified CFA-WBP (class C fly ash-waste brick powder) based geopolymers. Cem Concr Compos. 2017;79:53–61.\nAssaedi H, Shaikh FA, Low IM. Influence of mixing methods of nano silica on the microstructural and mechanical properties of flax fabric reinforced geopolymer composites. Constr Build Mater. 2016;123:541–52.\nRodríguez ED, Bernal SA, Provis JL, Paya J, Monzo JM, Borrachero MV. Effect of nanosilica-based activators on the performance of an alkali-activated fly ash binder. Cem Concr Compos. 2013;35:1–11.\nAdak D, Sarkar M, Mandal S. Effect of nano-silica on strength and durability of fly ash based geopolymer mortar. Constr Build Mater. 2014;70:453–9.\nGao K, Lin KL, Wang DY, Shiu HS, Hwang CL, Cheng TW. Effects of Nano-SiO2 on setting time and compressive strength of alkali-activated metakaolin-based geopolymer. Open Civ Eng J. 2013;7:84–92.\nLo KW, Lin KL, Cheng TW, Chang YM, Lan JY. Effect of nano-SiO2 on the alkali-activated characteristics of spent catalyst metakaolin-based geopolymers. Constr Build Mater. 2017;143:455–63.\nGao K, Lin KL, Wang DY, Hwang CL, Tuan BA, Shiu HS, Cheng TW. Effect of nano-SiO2 on the alkali-activated characteristics of metakoalin-based geopolymers. Constr Build Mater. 2013;48:441–7.\nLuo HL, Lin DF, Chen SC. Improving the properties of geopolymer containing oil-contaminated clay, metakaolin, and blast furnace slag by applying nano-SiO2. Environ Tech. 2017;38(13–14):1619–28.\nGomez ZY, Vega CE, Struble L. Composite geopolymers of metakoalin geothermal nanosilica waste. Constr Build Mater. 2016;115:269–76.\nPrud’homme E, Michaud P, Joussein E, Peyratout C, Smith A, Arrii CS, Clacens JM, Rossignol S. 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Effect of silica fume on the mechanical properties of fly ash based-geopolymer concrete. Ceram Int. 2016;42:3000–6.\nLin TS, Jia DC, He PG, Wang MR. Thermo-mechanical and microstructural characterization of geopolymers with α-Al2O3 particle filler. Int J Thermophys. 2009;30:1568–77.\nHe P, Jia D, Wang M, Zhou Y. Improvement of high-temperature mechanical properties of heat treated Cf\u002Fgeopolymer composites by Sol-SiO2 impregnation. J Eur Ceram Soc. 2010;30:3053–61.\nHe P, Yang Z, Yang J, Duan X, Jia D, Wang S, Zhou Y, Wang Y, Zhanh P. Preparation of fully stabilized cubic-leucite composite through heat-treating Cs-substituted K-geopolymer composite at high temperatures. Compos Sci Tech. 2015;107:44–53.\nKamseu E, Catania V, Djangang C, Sglavo VM, Leonelli C. Correlation between microstructural evalution and mechanical properties of α-quartz and alumina reinforced K-geopolymers during high temperature treatments. 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Cem Concr Res. 2013;54:43–54.\nRibeiro MS, Sousa SB, Nóvoa PO. An investigation on fire and flexural mechanical behaviour of nano and micro polyester composites filled with SiO2 and Al2O3 particles. Mater Today: Proc. 2015;2:8–19.\nIbrahim RK, Hamid R, Taha MR. Strength and microstructure of mortar containing nanosilica at high temperature. ACI Mater J. 2014;111(2):163–70.\nRashad AM, El-Nouhy HA, Zeedan SR. An investigation on HVS paste modified with nano-SiO2 imperiled to elevated temperatures. Arab J Sci Eng. 2017. https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs13369-017-2985-1.\nRashad AM, Zeedan SR, Hassan AA. Influence of the activator concentration of sodium silicate on the thermal properties of alkali-activated slag pastes. Constr Build Mater. 2016;102:811–20.\nPapatzani S, Paine K. Dispersed inorganic or organomodified montmorillonite clay nanoparticles for blended Portland cement pastes: effects on microstructure and strength. Springer Int Publ Switz. 2015. https:\u002F\u002Fdoi.org\u002F10.1007\u002F978-3-319-17088-6_16:131-139.\nBuchwald A, Vicent M, Kriegel R, Kaps C, Monzó M, Barba A. Geoplymeric binders with different fine fillers: phase transformations at high temperatures. Appl Clay Sci. 2009;46:190–5.\nRickard WA, Van RA. Performance of solid and cellular structured fly ash geopolymers exposed to a simulated fire. Cem Concr Compos. 2014;48:75–82.\nDuxson P, Lukey GC, Van DJ. Physical evolution of Na-geopolymer derived from metakaolin up to 1000°C. J Mater Sci. 2007;42:3044–54.\nBeleña I, Zhu W. Nanoindentation study of Na-geopolymers exposed to high temperatures. Nanotech Constr. 2009;3:169–74.\nRickard W, Temuujin J, Van RA. Thermal analysis of geopolymer pastes synthesised from five fly ashes of variable composition. J Non-Cryst Solids. 2012;358(15):1830–9.\nRickard WA, Vickers L, Van RA. Performance of fibre reinforced, low density metakaolin geopolymers under simulated fire conditions. Appl Clay Sci. 2013;73:71–7.\nRashad AM, Zeedan SR. The effect of activator concentration on the residual strength of alkali-activated fly ash pastes subjected to thermal load. Constr Build Mater. 2011;25:3098–107.\nJunaid MT, Khennane A, Kayali O, Sadaoui A, Picard D, Fafard M. Aspects of the deformational behaviour of alkali activated fly ash concrete at elevated temperatures. Cem Concr Res. 2014;60:24–9.\nRashad AM. Potential use of phosphogypsum in alkali-activated fly ash under the effects of elevated temperatures and thermal shock cycles. J Clean Prod. 2015;87:717–25.",{"VOID":1432},"10.1007\u002Fs10973-018-7657-1","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10973-018-7657-1",[1435,1450],{"id":1436,"sortIndex":32,"researcher":28,"roles":1437,"affiliations":1438,"properties":1447,"displayName":1449,"givenName":28,"familyName":28},"e47bdfbb-5da5-4562-84e3-83756c6388fd",[1015],[1439],{"id":1440,"sortIndex":32,"affiliation":1441,"properties":28},"2d9484e0-630a-4c97-8542-ba8c3d9a8fa9",{"id":1440,"createTime":28,"updateTime":28,"relativeEntities":1442,"slug":28,"properties":1443,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1446,"statistic":28},[],{"title":1444},{"VI":1445},"Building Materials Research and Quality Control Institute, Housing and Building National Research Center, HBRC, Giza, Egypt",[],{"title":1448},{"VI":1449},"Alaa M. Rashad",{"id":1451,"sortIndex":40,"researcher":28,"roles":1452,"affiliations":1453,"properties":1471,"displayName":1473,"givenName":28,"familyName":28},"04ea2cb2-7eff-42d1-9b84-e5094f87b297",[1015],[1454,1462],{"id":1455,"sortIndex":32,"affiliation":1456,"properties":28},"084f1760-129f-4f95-ac89-628ad956b221",{"id":1455,"createTime":28,"updateTime":28,"relativeEntities":1457,"slug":28,"properties":1458,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1461,"statistic":28},[],{"title":1459},{"VI":1460},"Raw Building Materials Technology and Processing Research Institute, Housing and Building National Research Center, HBRC, Giza, Egypt",[],{"id":1463,"sortIndex":40,"affiliation":1464,"properties":1470},"aa5c1573-b0e1-450f-a22e-6745dda6a732",{"id":1463,"createTime":28,"updateTime":28,"relativeEntities":1465,"slug":28,"properties":1466,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1469,"statistic":28},[],{"title":1467},{"VI":1468},"The University College of Taimaa, Tabuk University, Tabuk, Kingdom of Saudi Arabia",[],{},{"title":1472},{"VI":1473},"Ahmed S. Ouda",{"url":1433,"publisher":1475,"properties":1520},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1476,"slug":872,"properties":1477,"entityType":25,"verifyStatus":878,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1480,"manageAffiliations":1489,"indexDatabases":1500,"url":28,"thumbnailPath":28,"statistic":1515,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1478,"title":1479},{"VOID":875},{"VOID":877},[1481,1485],{"id":881,"createTime":28,"updateTime":28,"relativeEntities":1482,"label":1483,"description":1484,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":884},{},{"id":887,"createTime":28,"updateTime":28,"relativeEntities":1486,"label":1487,"description":1488,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":890},{},[1490,1495],{"id":894,"createTime":28,"updateTime":28,"relativeEntities":1491,"slug":28,"properties":1492,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1494,"statistic":28},[],{"title":1493},{"EN":898},[],{"id":901,"createTime":28,"updateTime":28,"relativeEntities":1496,"slug":28,"properties":1497,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1499,"statistic":28},[],{"title":1498},{"EN":905},[907],[1501,1508],{"id":910,"indexDatabase":1502,"url":922,"indexYears":28,"academicFieldIds":1507,"indexDatabaseRanking":28},{"id":912,"createTime":28,"updateTime":28,"relativeEntities":1503,"label":1504,"description":1505,"key":919,"publicationTags":1506,"standard":28},[],{"EN":915,"VI":915},{"EN":917,"VI":918},[921,813],[924,925],{"id":927,"indexDatabase":1509,"url":933,"indexYears":934,"academicFieldIds":1514,"indexDatabaseRanking":938},{"id":775,"createTime":28,"updateTime":28,"relativeEntities":1510,"label":1511,"description":1512,"key":781,"publicationTags":1513,"standard":28},[],{"EN":778,"VI":778},{"EN":778,"VI":780},[783],[936,937],{"impactFactor":32,"impactFactorByYear":1516,"i10Index":858,"i10IndexLast5Year":946,"totalPublication":947,"totalPublicationByYear":1517,"totalCitation":961,"totalCitationByYear":1518,"totalCitationPerPublication":975,"totalCitationPerPublicationByYear":1519,"hindexLast5Year":689,"hindex":689},{"2012":941,"2014":111,"2015":319,"2016":222,"2017":346,"2018":942,"2019":840,"2020":943,"2021":944,"2022":945,"2023":174},{"2003":323,"2004":281,"2005":516,"2006":133,"2009":129,"2010":131,"2011":40,"2012":40,"2013":949,"2014":950,"2015":951,"2016":952,"2017":953,"2018":954,"2019":955,"2020":956,"2021":957,"2022":958,"2023":959,"2024":960},{"2003":963,"2004":964,"2005":965,"2006":155,"2010":154,"2013":218,"2014":966,"2015":967,"2016":968,"2017":969,"2018":970,"2019":971,"2020":972,"2021":973,"2022":974,"2023":864,"2024":48},{"2003":977,"2004":978,"2005":979,"2006":374,"2010":980,"2013":226,"2014":981,"2015":982,"2016":983,"2017":984,"2018":233,"2019":985,"2020":982,"2021":986,"2022":219,"2023":118,"2024":421},{"pages":1521,"volume":1523},{"VOID":1522},"609-620",{"VOID":1524},"136","2018-08-19",2018,[938,921],{"id":1529,"createTime":1530,"updateTime":1531,"relativeEntities":1532,"slug":1533,"properties":1534,"entityType":1008,"verifyStatus":26,"verifyTime":1531,"verifyNote":1009,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1543,"fullTextUrl":28,"authors":1544,"publicationType":1067,"publisherRelationship":1586,"citationCount":28,"citationInfo":28,"publishDate":1637,"publishYear":1638,"citationAnalyzeStatus":878,"lastCitationAnalyze":28,"indexDatabases":1639,"openAccess":28,"references":28,"isForceReanalyzing":1117},"002f80da-d656-4e2f-9518-3bad95a02d54","2024-01-05T09:55:50.751+00:00","2025-01-04T04:54:26.085+00:00",[],"Phase-equilibria-in-the-Sm-Al-Si-system-at-500-C",{"abstract":1535,"title":1537,"references":1539,"doi":1541},{"EN":1536},"The isothermal section at 500 °C of the Sm–Al–Si system has been experimentally investigated by using scanning electron microscopy, electron microprobe analysis and X-ray powder diffraction. Four intermetallic compounds have been confirmed: τ1-SmAl2Si2 (hP5-CaAl2Si2 type), τ2-SmAlxSi1−x (tI12-Th2Si type), τ4-SmAl0.5Si0.5 (oS8-CrB type) and τ5-Sm6Al3Si (tI80-Tb6Al3Si type). A new ternary intermediate has been found: τ3-Sm4Al3Si3 that crystallizes orthorhombic isostructural with Pr4Al3Ge3.",{"EN":1538},"Phase equilibria in the Sm–Al–Si system at 500 °C",{"VOID":1540},"Miller WS, Zhuang L, Bottema J, Wittebrood AJ, De Smet P, Haszler A, Vieregge A. Recent development in aluminium alloys for the automotive industry. Mater Sci Eng A. 2000;280:37–49.\nChen CL, Richter A, Thomson RC. Mechanical properties of intermetallic phases in multi-component Al–Si alloys using nanoindentation. Intermetallics. 2009;17:634–41.\nYe HJ. An overview of the development of Al–Si-alloy based material for engine applications. J Mat Eng Performance. 2003;12:288–97.\nZhu M, Jian Z, Yao L, Liu C, Yang G, Zhou Y. Effect of mischmetal modification treatment on the microstructure, tensile properties, and fracture behavior of Al-7.0%Si-0.3%Mg foundry aluminum alloys. J Mater Sci. 2011;46:2685–94.\nQiu H, Yan H, Hu Z. Effect of samarium (Sm) addition on the microstructures and mechanical properties of Al–7Si–0.7 Mg alloys. J Alloys Compd. 2013;567:77–81.\nCardinale AM, Macciò D, Delfino S, Saccone A. Experimental investigation of the Nd–Al–Si system. J Therm Anal Calorim. 2011;103:103–9.\nCardinale AM, Macciò D, Delfino S, Saccone A. Phase equilibria of the Dy–Al–Si system at 500°C. J Therm Anal Calorim. 2012;108:817–23.\nGokhale AB, Abbaschian GJ. Bullettin of Alloy Phase Diagrams. 1988;9:582–5.\nJin LL, Kang YB, Chartrand P, Fuerst CD. Thermodynamic evaluation and optimization of Al–La, Al–Ce, Al–Pr, Al–Nd and Al–Sm systems using the modified quasichemical model for liquids. CALPHAD: Comput Coupling Phase Diagrams Thermochem. 2011;35:30–41.\nMurray JL, McAlister AJ. The Al–Si (Aluminum–Silicon) system. Bull Alloy Phase Diagrams. 1984;5:74–84.\nMarkoli B, Spaic S, Zupanic F. The constitution of alloys in the Al-rich corner of the Al–Si–Sm ternary system. Z Metallkde. 2001;92:1098–102.\nNakonechna N, Lyaskovska N, Romaniv O, Starodub P, Gladyshevskii E. Pr–Al–Si phase diagram (0–0.33 at.fract. Pr) and crystal structure of the compounds. Visn Lviv Univ Ser Khim. 2001;40:61–7.\nBobev S, Tobash PH, Fritsch V, Thompson JD, Hundley MF, Sarrao JL, Fisk Z. Ternary rare-earth alumo-silicides-single-crystal growth from Al flux, structural and physical properties. J Solid State Chem. 2005;178:2091–103.\nLyaskovska N, Romaniv O, Semus’o N, Gladyshevskii E. Crystal structures of the compounds RAl0.5−xSi0.5+x (R = La, Ce, Pr, Nd, Sm, Gd), R3Al4Si6 (R = La, Pr), and RAlSi2 (R = Pr, Nd). J Alloys Compd. 2004;367:180–4.\nDubenko IS, Evdokimov AA, Ionov VM. Crystal structure of Tb6Al3Si, Sov. Phys Crystallogr (Engl Transl). 1987;32:201–3.\nKraus W, Nolze G. Powder Cell for Windows, Berlin, 1999.\nKing G, Schwarzenbach D. Latcon, Xtal3.7 System, in: Hall SR, du Boilay DJ, Olthof-Hazekamp R. (Eds), University of Western, Australia, 2000.\nGladyshevskii E, Semus’o N, Gladyshevskii R, Cenzual K, Jorda JL. Chem Met Alloys. 2008;1:352–9.",{"VOID":1542},"10.1007\u002Fs10973-014-3722-6","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10973-014-3722-6",[1545,1560,1573],{"id":1546,"sortIndex":32,"researcher":28,"roles":1547,"affiliations":1548,"properties":1557,"displayName":1559,"givenName":28,"familyName":28},"d76d014c-3488-494d-9084-a116e163a4ce",[1015],[1549],{"id":1550,"sortIndex":32,"affiliation":1551,"properties":28},"acd7e34c-f422-48af-867a-359bcb69f270",{"id":1550,"createTime":28,"updateTime":28,"relativeEntities":1552,"slug":28,"properties":1553,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1556,"statistic":28},[],{"title":1554},{"VI":1555},"Dipartimento di Chimica e Chimica industriale, Università di Genova, Genoa, Italy",[],{"title":1558},{"VI":1559},"Anna Maria Cardinale",{"id":1561,"sortIndex":40,"researcher":28,"roles":1562,"affiliations":1563,"properties":1570,"displayName":1572,"givenName":28,"familyName":28},"6e96490d-8807-40d7-8ff1-cd06bab2178f",[1015],[1564],{"id":1550,"sortIndex":32,"affiliation":1565,"properties":28},{"id":1550,"createTime":28,"updateTime":28,"relativeEntities":1566,"slug":28,"properties":1567,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1569,"statistic":28},[],{"title":1568},{"VI":1555},[],{"title":1571},{"VI":1572},"Daniele Macciò",{"id":1574,"sortIndex":123,"researcher":28,"roles":1575,"affiliations":1576,"properties":1583,"displayName":1585,"givenName":28,"familyName":28},"c18048b5-5e8a-4679-a9cb-bff4b194ffc9",[1015],[1577],{"id":1550,"sortIndex":32,"affiliation":1578,"properties":28},{"id":1550,"createTime":28,"updateTime":28,"relativeEntities":1579,"slug":28,"properties":1580,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1582,"statistic":28},[],{"title":1581},{"VI":1555},[],{"title":1584},{"VI":1585},"Adriana Saccone",{"url":1543,"publisher":1587,"properties":1632},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1588,"slug":872,"properties":1589,"entityType":25,"verifyStatus":878,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1592,"manageAffiliations":1601,"indexDatabases":1612,"url":28,"thumbnailPath":28,"statistic":1627,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1590,"title":1591},{"VOID":875},{"VOID":877},[1593,1597],{"id":881,"createTime":28,"updateTime":28,"relativeEntities":1594,"label":1595,"description":1596,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":884},{},{"id":887,"createTime":28,"updateTime":28,"relativeEntities":1598,"label":1599,"description":1600,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":890},{},[1602,1607],{"id":894,"createTime":28,"updateTime":28,"relativeEntities":1603,"slug":28,"properties":1604,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1606,"statistic":28},[],{"title":1605},{"EN":898},[],{"id":901,"createTime":28,"updateTime":28,"relativeEntities":1608,"slug":28,"properties":1609,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1611,"statistic":28},[],{"title":1610},{"EN":905},[907],[1613,1620],{"id":910,"indexDatabase":1614,"url":922,"indexYears":28,"academicFieldIds":1619,"indexDatabaseRanking":28},{"id":912,"createTime":28,"updateTime":28,"relativeEntities":1615,"label":1616,"description":1617,"key":919,"publicationTags":1618,"standard":28},[],{"EN":915,"VI":915},{"EN":917,"VI":918},[921,813],[924,925],{"id":927,"indexDatabase":1621,"url":933,"indexYears":934,"academicFieldIds":1626,"indexDatabaseRanking":938},{"id":775,"createTime":28,"updateTime":28,"relativeEntities":1622,"label":1623,"description":1624,"key":781,"publicationTags":1625,"standard":28},[],{"EN":778,"VI":778},{"EN":778,"VI":780},[783],[936,937],{"impactFactor":32,"impactFactorByYear":1628,"i10Index":858,"i10IndexLast5Year":946,"totalPublication":947,"totalPublicationByYear":1629,"totalCitation":961,"totalCitationByYear":1630,"totalCitationPerPublication":975,"totalCitationPerPublicationByYear":1631,"hindexLast5Year":689,"hindex":689},{"2012":941,"2014":111,"2015":319,"2016":222,"2017":346,"2018":942,"2019":840,"2020":943,"2021":944,"2022":945,"2023":174},{"2003":323,"2004":281,"2005":516,"2006":133,"2009":129,"2010":131,"2011":40,"2012":40,"2013":949,"2014":950,"2015":951,"2016":952,"2017":953,"2018":954,"2019":955,"2020":956,"2021":957,"2022":958,"2023":959,"2024":960},{"2003":963,"2004":964,"2005":965,"2006":155,"2010":154,"2013":218,"2014":966,"2015":967,"2016":968,"2017":969,"2018":970,"2019":971,"2020":972,"2021":973,"2022":974,"2023":864,"2024":48},{"2003":977,"2004":978,"2005":979,"2006":374,"2010":980,"2013":226,"2014":981,"2015":982,"2016":983,"2017":984,"2018":233,"2019":985,"2020":982,"2021":986,"2022":219,"2023":118,"2024":421},{"pages":1633,"volume":1635},{"VOID":1634},"61-67",{"VOID":1636},"116","2014-03-18",2014,[938,921],{"id":1641,"createTime":1642,"updateTime":1643,"relativeEntities":1644,"slug":1645,"properties":1646,"entityType":1008,"verifyStatus":26,"verifyTime":1643,"verifyNote":1009,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1655,"fullTextUrl":28,"authors":1656,"publicationType":1067,"publisherRelationship":1713,"citationCount":28,"citationInfo":28,"publishDate":1764,"publishYear":1765,"citationAnalyzeStatus":878,"lastCitationAnalyze":28,"indexDatabases":1766,"openAccess":28,"references":28,"isForceReanalyzing":1117},"003e20c2-69a0-4bb1-93d7-3e1fdfb345f0","2023-12-07T03:10:59.656+00:00","2025-01-02T00:45:05.204+00:00",[],"Thermodynamics-of-complex-formation-of-silver-I-with-N-donor-ligands-in-non-aqueous-solvents",{"abstract":1647,"title":1649,"references":1651,"doi":1653},{"EN":1648},"The results of a potentiometric and calorimetric study on the complexation reactions of neutral N-donor ligands with silver(I) in propylenecarbonate (PC) and dimethylformamide (DMF) are reported. The ligands concerned in DMF are butylamine (n-but), 1,2-diaminoethane (EN), bis(2-aminoethyl)amine (DIEN) and N,N’-bis(2-aminoethyl)ethane-1,2-diamine (TRIEN) whereas in PC results are provided for EN and DIEN, because of side reactions occurring for n-but and TRIEN. The data are compared to those previously reported in dimethylsulfoxide (DMSO), acetonitrile (AN) and water solvent media which present quite different dielectric constants (ε) and donor numbers (Dn). The trend of stabilities of the mononuclear AgL and AgL2 formed is discussed in terms of different cation and amines solvation in the different solvents. TRIEN can form bimetallic species in DMF, but not in DMSO. Given the lower ε value for DMF than for DMSO, Ag2TRIEN formation is evidently more influenced by the lower solvation of Ag(I) ion in DMF, rather than by difference in dielectric constants of these two solvents. In PC in addition to mononuclear complexes of higher stability with respect to the former solvents, also polynuclear Ag2L and Ag3L2 species are found.",{"EN":1650},"Thermodynamics of complex formation of silver(I) with N-donor ligands in non-aqueous solvents",{"VOID":1652},"Smith RM, Martell AE. Critical stability constants. New York: Plenum; 1989.\nBencini A, Bianchi A, Garcia-España E, Micheloni M, Ramirez JA. Proton coordination by polyamine compounds in aqueous solution. Coord Chem Rev. 1999;188:97–156.\nTiné MR. Cobalt complexes in aqueous solutions as dioxygen carriers. Coord Chem Rev. 2012;256:316–27.\nMartell AE, Motekaitis RJ, Chen D, Murase I. Thermodynamics of coordination of metal ions with binucleating macrocylic and macrobicyclic ligands. Pure Appl Chem. 1993;65:959–64.\nDi Bernardo P, Melchior A, Tolazzi M, Zanonato PL. Thermodynamics of lanthanide(III) complexation in non-aqueous solvents. Coord Chem Rev. 2012;256:328–51.\nDi Bernardo P, Melchior A, Portanova R, Tolazzi M, Zanonato PL. Complex formation of N-donor ligands with group 11 monovalent ions. Coord Chem Rev. 2008;252:1270–85.\nDel Piero S, Di Bernardo P, Fedele R, Melchior A, Polese P, Tolazzi M. Affinity of polypyridines towards Cd(II) and Co(II) ions: a thermodynamic and DFT study. Eur J Inorg Chem. 2006. doi:10.1002\u002Fejic.200600435.\nDel Piero S, Melchior A, Polese P, Portanova R, Tolazzi M. N-Methylation effects on the coordination chemistry of cyclic triamines with divalent transition metals and their Co(II) dioxygen carriers. Eur J Inorg Chem. 2006. doi:10.1002\u002Fejic.200500675.\nMelchior A, Tolazzi M. Co(II) complexes with tripodal N-donor ligands: thermodynamics of formation in anaerobic conditions and oxygen binding. Inorg Chim Acta. 2011;367:120–6.\nComuzzi C, Melchior A, Polese P, Portanova R, Tolazzi M. Cobalt(II) complexes with nitrogen donors and their dioxygen affinity in dimethyl sulfoxide. Eur J Inorg Chem. 2002. doi:10.1002\u002F1099-0682(200208)2002:8\u003C2194::AID-EJIC2194>3.0.CO;2-T.\nComuzzi C, Melchior A, Polese P, Portanova R, Tolazzi M. Thermodynamics of complex formation of silver(I), cadmium(II) and cobalt(II) with open-chain polyamines in dimethyl sulfoxide and molecular dioxygen binding to cobalt(II) complexes. Eur J Inorg Chem. 2003. doi:10.1002\u002Fejic.200200685.\nMelchior A, Peressini S, Portanova R, Sangregorio C, Tavagnacco C, Tolazzi M. Cobalt(II) and cadmium(II) chelates with nitrogen donors and O2 bonding to Co(II) derivatives. Inorg Chim Acta. 2004;357:3473–82.\nDel Piero S, Melchior A, Polese P, Portanova R, Tolazzi M. Mixed nitrogen\u002Foxygen ligand affinities for bipositive metal ions and dioxygen binding to cobalt(II) complexes. Dalton Trans. 2004. doi:10.1039\u002FB402394C.\nLippard SJ, Berg JM. Principles of bioinorganic chemistry. Mill Valley, CA: University Science Books; 1994.\nToso L, Crisponi G, Nurchi VM, Crespo-Alonso M, Lachowicz JI, Mansoori D, Arca M, Santos MA, Marques SM, Gano L, Niclós-Gutíerrez J, González-Pérez JM, Domínguez-Martín A, Choquesillo-Lazarte D, Szewczuk Z. Searching for new aluminium chelating agents: a family of hydroxypyrone ligands. J Inorg Biochem. 2014;130:112–21.\nCrisponi G, Dean A, Di Marco V, Lachowicz JI, Nurchi VM, Remelli M, Tapparo A. Different approaches to the study of chelating agents for iron and aluminium overload pathologies. Anal Bioanal Chem. 2013;405:585–601.\nMendonça ACAC, Martins AFAF, Melchior A, Marques SMSM, Chaves S, Villette S, Petoud S, Zanonato PL, Tolazzi M, Bonnet CS, Tóth É, Di Bernardo P, Geraldes CF, Santos MA. New tris-3,4-HOPO lanthanide complexes as potential imaging probes: complex stability and magnetic properties. Dalton Trans. 2013;42:6046–57.\nCaravan P, Ellison JJ, McMurry TJ, Lauffer RB. Gadolinium(III) chelates as MRI contrast agents: structure, dynamics, and applications. Chem Rev. 1999;99:2293–352.\nBoros E, Holland JP, Kenton N, Rotile N, Caravan P. Macrocycle-based hydroxamate ligands for complexation and immunoconjugation of 89 zirconium for positron emission tomography (PET) imaging. Chempluschem. 2016;81:274–81.\nSimándi LI. Dioxygen activation and homogeneous catalytic oxidation. Amsterdam: Elsevier; 1991.\nBertini I, Messori L, Golub G, Cohen H, Meyerstein D. A 1H NMR study of the complex of cobalt(II) with 2,5,8,11-tetramethyl-2,5,8,11-tetraazadodecane in aerated aqueous solutions. Inorg Chim Acta. 1995;235:5–8.\nComuzzi C, Melchior A, Polese P, Portanova R, Tolazzi M. Cobalt(II) dioxygen carriers based on simple diamino ligands: kinetic and ab initio studies. Inorg Chem. 2003;42:8214–22.\nDel Piero S, Ghezzi L, Melchior A, Tinè MR, Tolazzi M. Solvent role on cobalt(II) dioxygen carriers based on simple polyamine ligands. Helv Chim Acta. 2005;88:839–53.\nBazzicalupi C, Bencini A, Bianchi A, Del Piero S, Fornasari P, Giorgi C, Melchior A, Portanova R, Tolazzi M, Valtancoli B. Co(II) and Cd(II) complexation with two dipyridine-containing macrocyclic polyamines in water and dimethyl sulfoxide. New J Chem. 2005;29:805–11.\nMoschetta EG, Gans KM, Rioux RM. Elucidating the roles of enthalpy, entropy, and donor atom in the chelate effect for binding different bidentate ligands on the same metal center. J Catal. 2014;309:11–20.\nDel Zotto A, Di Bernardo P, Tolazzi M, Zanonato PL. Thermodynamic and spectroscopic studies on the complexation of silver(I) by mixed phosphorus–nitrogen ligands in dimethyl sulfoxide and propylene carbonate. J Chem Soc Dalton Trans. 1999;19:979–86.\nSalbu B, Steinnes E. Trace elements in natural waters. Boca Raton: CRC Press; 1995.\nCassol A, Di Bernardo P, Portanova R, Tolazzi M, Tomat G, Zanonato P. Thermodynamics of lanthanide(III) complexation with ethylenediamine in dimethyl-sulfoxide. J Chem Soc Dalton Trans. 1992. doi:10.1039\u002FDT9920000469.\nCassol A, Di Bernardo P, Zanonato P, Portanova R, Tolazzi M. Thermodynamics of complex formation of silver with amines in dimethyl sulphoxide. J Chem Soc Dalton Trans. 1987. doi:10.1039\u002FDT9870000657.\nCassol A, Choppin GR, Di Bernardo P, Portanova R, Tolazzi M, Tomat G, Zanonato PL. Thermodynamics of lanthanide(III) complex-formation with nitrogen-donor ligands in dimethyl-sulfoxide. J Chem Soc Dalton Trans. 1993. doi:10.1039\u002FDT9930001695.\nCassol A, Di Bernardo P, Zanonato P, Portanova R, Tolazzi M, Tomat G, Cucinotta V, Sciotto D. Silver(I)–polyamine systems in dimethyl sulphoxide. A thermodynamic and spectroscopic investigation. J Chem Soc Faraday Trans. 1989;85:2445–52.\nCassol A, Di Bernardo P, Zanonato PL, Portanova R, Tolazzi M, Tomat G. Thermodynamics of complex formation in dimethyl sulphoxide. silver(I) with quadridentate polyamines. J Chem Soc Faraday Trans. 1990;86:2841–5.\nDi Bernardo P, Zanonato PLPL, Benetollo F, Melchior A, Tolazzi M, Rao L. Energetics and structure of uranium(VI)-acetate complexes in dimethyl sulfoxide. Inorg Chem. 2012;51:9045–55.\nMelchior A, Tolazzi M, Del Piero S. Thermodynamic study of Cd(II) complex formation with tripodal N-donor ligands in DMSO. J Therm Anal Calorim. 2011;103:35–40.\nDel Piero S, Fedele R, Melchior A, Portanova R, Tolazzi M, Zangrando E. Solvation effects on the stability of silver(I) complexes with pyridine-containing ligands studied by thermodynamic and DFT methods. Inorg Chem. 2007;46:4683–91.\nPiccinelli F, Melchior A, Speghini A, Monari M, Tolazzi M, Bettinelli M. Europium (III) complexes with new N-donor ligand: a comparative study in solid state and solution. Polyhedron. 2013;57:30–8.\nPiccinelli F, Leonzio M, Bettinelli M, Monari M, Grazioli C, Melchior A, Tolazzi M. Tuning of the sensing properties of luminescent Eu3+ complexes towards the nitrate anion. Dalton Trans. 2016;45:3310–8.\nPiccinelli F, Bettinelli M, Melchior A, Grazioli C, Tolazzi M. Structural, optical and sensing properties of novel Eu(III) complexes with furan- and pyridine-based ligands. Dalton Trans. 2015;44:182–92.\nPiccinelli F, Leonzio M, Bettinelli M, Melchior A, Faura G, Tolazzi M. Luminescent Eu3+ complexes in acetonitrile solution: anion sensing and effect of water on the speciation. Inorg Chim Acta. 2016;453:751–6.\nCassol A, Di Bernardo P, Portanova R, Tolazzi M, Zanonato PL. Complexing ability of the trifluoromethanesulfonate complexes of the heavier lanthanides(III) towards n-butylamine in anhydrous acetonitrile. Inorg Chim Acta. 1997;262:1–8.\nAhrland S. Complex equilibria, solvation and solubility. Pure Appl Chem. 1990;62:2077–82.\nThaler A, Heidari N, Cox BG, Schneider H. Stability constants of copper(I) and silver(I) complexes with open-chain, macrocyclic and -bicyclic aza-ligands in acetonitrile and comparison with results in dimethylsulfoxide. Inorg Chim Acta. 1999;286:160–8.\nComuzzi C, Di Bernardo P, Polese P, Portanova R, Tolazzi M, Zanonato PL. Lanthanide(III) complex formation with diethylenetriamine in anhydrous N,N-dimethylformamide. Polyhedron. 2000;19:2427–34.\nMarcus Y. The properties of solvents. Chichester: Wiley; 1998.\nDi Bernardo P, Zanonato PL, Melchior A, Portanova R, Tolazzi M, Choppin GR, Wang Z. Thermodynamic and spectroscopic studies of lanthanides(III) complexation with polyamines in dimethyl sulfoxide. Inorg Chem. 2008;47:1155–64.\nGans P, Sabatini A, Vacca A. Investigation of equilibria in solution. Determination of equilibrium constants with the HYPERQUAD suite of programs. Talanta. 1996;43:1739–53.\nComuzzi C, Polese P, Melchior A, Portanova R, Tolazzi M. SOLVERSTAT: a new utility for multipurpose analysis. An application to the investigation of dioxygenated Co(II) complex formation in dimethylsulfoxide solution. Talanta. 2003;59:67–80.\nDel Piero S, Melchior A, Polese P, Portanova R, Tolazzi M. A novel multipurpose excel tool for equilibrium speciation based on Newton-Raphson method and on a hybrid genetic algorithm. Ann Chim. 2006;96:29–49.\nChristensen JJ, Hansen LD, Izatt RM. Handbook of proton ionization heats. Chichester: Wiley; 1976.\nGans P, Sabatini A, Vacca A. Simultaneous calculation of equilibrium constants and standard formation enthalpies from calorimetric data for systems with multiple equilibria in solution. J Solution Chem. 2008;37:467–76.\nMaisonneuve L, Lamarzelle O, Rix E, Grau E, Cramail H. Isocyanate-free routes to polyurethanes and poly(hydroxy urethane)s. Chem Rev. 2015;115:12407–39.\nKira J, Niedzialkowski P, Zarzeczanska D, Romanowski G, Ossowski T. Potentiometric, spectrophotometric and AM1d studies of the equilibria between silver(I) ion and diaza-crown ethers with anthraquinone moiety in various solvents. Polyhedron. 2015;102:677–83.\nStålhandske CMV, Stålhandske CI, Persson I, Sandström M, Jalilehvand F. Crystal and solution structures of N, N-dimethylthioformamide-solvated copper(I), silver(I), and gold(I) ions studied by X-ray diffraction, X-ray absorption, and vibrational spectroscopy. Inorg Chem. 2001;40:6684–93.\nTsutsui Y, Sugimoto K, Wasada H, Inada Y, Funahashi S. EXAFS and ab initio molecular orbital studies on the structure of solvated silver(I) ions. J Phys Chem A. 1997;101:2900–5.\nCalligaris M. Structure and bonding in metal sulfoxide complexes: an update. Coord Chem Rev. 2004;248:351–75.\nGritzner G. Single-ion transfer properties: a measure of ion-solvation in solvents and solvent mixtures. Electrochim Acta. 1998;44:73–83.\nTorras J, Alemán C. Determination of new Cu+, Cu2+, and Zn2+ Lennard-Jones ion parameters in acetonitrile. J Phys Chem B. 2013;117:10513–22.\nPersson I, Penner-Hahn JE, Hodgson KO. An EXAFS spectroscopic study of solvates of copper(I) and copper(II) in acetonitrile, dimethyl sulfoxide, pyridine, and tetrahydrothiophene solutions and a large-angle X-ray scattering study of the copper(II) acetonitrile solvate in solution. Inorg Chem. 1993;32:2497–501.\nMelchior A, Peralta E, Valiente M, Tavagnacco C, Endrizzi F, Tolazzi M. Interaction of d(10) metal ions with thioether ligands: a thermodynamic and theoretical study. Dalton Trans. 2013;42:6074–82.\nComuzzi C, Grespan M, Melchior A, Portanova R, Tolazzi M. Thermodynamics of complexation of cadmium(II) by open-chain N-donor ligands in dimethyl sulfoxide solution. Eur J Inorg Chem. 2001. doi:10.1002\u002F1099-0682(200112)2001:12\u003C3087::AID-EJIC3087>3.0.CO;2-4.\nAntolovich M, Lindoy LF, Reimers JR. Explanation of the anomalous complexation of silver(I) with ammonia in terms of the poor affinity of the ion for water. J Phys Chem A. 2004;108:8434–8.\nBencini A, Bianchi A, Del Piero S, Giorgi C, Melchior A, Portanova R, Tolazzi M, Valtancoli B. Coordination features of a polyaza-bipyridine-macrocyclic ligand toward Co(II) and Cd(II) in water and dimethylsulfoxide. J Solution Chem. 2008;37:503–17.\nDel Piero S, Melchior A, Menotti D, Tolazzi M, Døssing A. Solvent effect on the thermodynamics of Ag(I) coordination to tripodal polypyridine ligands. J Therm Anal Calorim. 2009;97:845–51.",{"VOID":1654},"10.1007\u002Fs10973-017-6289-1","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10973-017-6289-1",[1657,1672,1685,1698],{"id":1658,"sortIndex":32,"researcher":28,"roles":1659,"affiliations":1660,"properties":1669,"displayName":1671,"givenName":28,"familyName":28},"cbeea537-4ab7-40ae-8444-6fdbd210d4e9",[1015],[1661],{"id":1662,"sortIndex":32,"affiliation":1663,"properties":28},"413fadbf-e21e-483f-a3ee-e3ce0b82171a",{"id":1662,"createTime":28,"updateTime":28,"relativeEntities":1664,"slug":28,"properties":1665,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1668,"statistic":28},[],{"title":1666},{"VI":1667},"Laboratori di Chimica, Dipartimento Politecnico, Università di Udine, Udine, Italy",[],{"title":1670},{"VI":1671},"A. 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Thermal degradation of RDF takes place through three main mass loss stages; the analyses of evolved gas allow us to discriminate the contributions of the different fractions (paper, LDPE, wood, rubber, etc.) to the global decomposition. Furthermore thermogravimetry (TG) was used for the determination of kinetic parameters, using the differential method. In order to set up the conditions of production of a good quality pyrolysis gas, the operating conditions of RDF in a pyrolysis reactor have been simulated. Data show that the volatile fraction grows with the temperature, together with the relative conversion, and that light volatile fraction (hydrogen, ethyne, etc.) gets richer, at the expense of superior homologous hydrocarbons.","2025-01-16T07:43:43.576+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10973-005-0680-z",[1783,1798,1811,1824,1837,1850,1863],{"id":1784,"sortIndex":32,"researcher":28,"roles":1785,"affiliations":1786,"properties":1795,"displayName":1797,"givenName":28,"familyName":28},"73ca5eac-93b7-445a-b9a1-cbc2adc8ad92",[1015],[1787],{"id":1788,"sortIndex":32,"affiliation":1789,"properties":28},"e291444c-0931-44b2-9e25-ea3b510bffa2",{"id":1788,"createTime":28,"updateTime":28,"relativeEntities":1790,"slug":28,"properties":1791,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1794,"statistic":28},[],{"title":1792},{"VI":1793},"ENEA Trisaia Research Centre",[],{"title":1796},{"VI":1797},"S. 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The methodology assumes that the glass transition temperature of azido-ester plasticizers can be expressed as a function of several structural parameters through multiple linear regression method. The predictive ability of the correlation is checked using a cross-validation method (R\n                        2 = 0.958, \n                  \n                    \n                  \n                  $$Q_{\\text{LOO}}^{2}$$\n                  \n                    \n                  \n                 = 0.964 and \n                  \n                    \n                  \n                  $$Q_{\\text{LMO}}^{2}$$\n                  \n                    \n                  \n                 = 0.968). The proposed correlation has the root-mean-square deviation and the average absolute deviations of 3.97 and 3.16 °C, respectively, for 21 azido-ester plasticizers with different molecular structures as training set. Also, this correlation gives good predictions for further six azido-ester plasticizers as test set. The proposed method can also apply for designing novel energetic azido-ester plasticizers.",{"EN":1938},"A novel simple correlation for predicting glass transition temperature of energetic azido-ester plasticizers through molecular structures",{"VOID":1940},"Kumari D, Yamajala K, Singh H, Sanghavi RR, Shri N, Asthana SN, Raju K, Banerjee S. Application of azido esters as energetic plasticizers for LOVA propellant formulations. Propellants Explos Pyrotech. 2013;38:805–9. doi:10.1002\u002Fprep.201300070.\nGhosh K, Pant CS, Sanghavi R, Adhav S, Singh A. Studies on triple base gun propellant based on two energetic azido esters. J Energy Mater. 2009;27:40–50.\nDamse RS, Singh A. Evaluation of energetic plasticisers for solid gun propellant. Def Sci J. 2008;58:86–93. doi:10.14429\u002Fdsj.58.1627.\nKumari D, Balakshe R, Banerjee S, Singh H. Energetic plasticizers for gun & rocket propellants. Rev J Chem. 2012;2(3):240–62. doi:10.1134\u002FS207997801203003X.\nBadgujar DM, Talawar MB, Asthana SN, Mahulikar PP. Advances in science and technology of modern energetic materials: an overview. J Hazard Mater A. 2008;151(2–3):289–305. doi:10.1016\u002Fj.jhazmat.2007.10.039.\nAgrawal JP, Hodgson RD. Organic chemistry of explosives. Chichester: Wiley; 2007. p. 333–9.\nBräse S, Banert K. Organic azides: syntheses and applications. Chippenham: Wiley; 2010. p. 53.\nAng HG, Pisharath S. Energetic polymers. Weinheim: Wiley; 2012. p. 171–9.\nAgrawal JP. High energy materials: propellants, explosives and pyrotechnics. Weinheim: John Wiley & Sons; 2010. p. 274.\nWypych G. Handbook of plasticizers. New York: ChemTec Publishing; 2004. p. 318.\nVan Krevelen DW, Nijenhuis KT. Properties of polymers. Amsterdam: Elsevier; 2009. p. 129–88.\nRahman MS, Al-Marhubi IM, Al-Mahrouqi A. Measurement of glass transition temperature by mechanical (DMTA), thermal (DSC and MDSC), water diffusion and density methods: a comparison study. Chem Phys Lett. 2007;440(4–6):372–7. doi:10.1016\u002Fj.cplett.2007.04.067.\nWang Q, Wang J, Larranaga MD. Simple relationship for predicting onset temperatures of nitro compounds in thermal explosions. J Therm Anal Calorim. 2013;111(2):1033–7. doi:10.1007\u002Fs10973-012-2377-4.\nKeshavarz MH, Zohari N, Seyedsadjadi SA. Validation of improved simple method for prediction of activation energy of the thermal decomposition of energetic compounds. J Therm Anal Calorim. 2013;114(2):497–510. doi:10.1007\u002Fs10973-013-3022-6.\nKeshavarz MH, Moradi S, Ebrahimi Saatluo B, Rahimi H, Madram A. A simple accurate model for prediction of deflagration temperature of energetic compounds. J Therm Anal Calorim. 2013;112(3):1453–63. doi:10.1007\u002Fs10973-012-2717-4.\nZohari N, Keshavarz MH, Seyedsadjadi SA. A link between impact sensitivity of energetic compounds and their activation energies of thermal decomposition. J Therm Anal Calorim. 2014;117(1):423–32. doi:10.1007\u002Fs10973-014-3643-4.\nKeshavarz MH, Zohari N, Seyedsadjadi SA. Relationship between electric spark sensitivity and activation energy of the thermal decomposition of nitramines for safety measures in industrial processes. J Loss Prevent Proc. 2013;26(6):1452–6. doi:10.1016\u002Fj.jlp.2013.09.012.\nZohari N, Keshavarz MH, Seyedsadjadi SA. A novel method for risk assessment of electrostatic sensitivity of nitroaromatics through their activation energies of thermal decomposition. J Therm Anal Calorim. 2014;115(1):93–100. doi:10.1007\u002Fs10973-013-3328-4.\nMatveev YI, Grinberg VY, Sochava IV, Tolstoguzov VB. Glass transition temperature of proteins. Calculation based on the additive contribution method and experimental data. Food Hydrocolloids. 1997;11(2):125–33. doi:10.1016\u002FS0268-005X(97)80020-3.\nKhalloufi S, El-Maslouhi Y, Ratti C. Mathematical model for prediction of glass transition temperature of fruit powders. J Food Sci. 2000;65(5):842–8. doi:10.1111\u002Fj.1365-2621.2000.tb13598.x.\nAfantitis A, Melagraki G, Makridima K, Alexandridis A, Sarimveis H, Iglessi-Markopoulou O. Prediction of high weight polymers glass transition temperature using RBF neural networks. J Mol Struct Theochem. 2005;716(1–3):193–8. doi:10.1016\u002Fj.theochem.2004.11.021.\nKatritzky AR, Sild S, Lobanov V, Karelson M. Quantitative structure–property relationship (QSPR) correlation of glass transition temperatures of high molecular weight polymers. J Chem Inf Comput Sci. 1998;38(2):300–4. doi:10.1021\u002Fci9700687.\nPalm WJ III. Introduction to matlab for engineers. New York: McGraw-Hill; 2005. p. 4–328.\nKeshavarz MH. Detonation temperature of high explosives from structural parameters. J Hazard Mater. 2006;A137:1303–8. doi:10.1016\u002Fj.jhazmat.2006.04.057.\nProvatas A. Energetic polymers and plasticizers for explosive formulations - A review of recent advances. DSTO-TR-0966. Aeronautical and Maritime Research Laboratory, Australia. 2000.\nKumari D, Anjitha SG, Pant CS, Patil M, Singh H, Banerjee S. Synthetic approach to novel azido esters and their utility as energetic plasticizers. RSC Adv. 2014;4(75):39924–33. doi:10.1039\u002FC4RA06530A.\nPant CS, Wagh RM, Nair JK, Gore GM, Venugopalan S. Synthesis and characterization of two potential energetic azido esters. Propellants Explos Pyrotech. 2006;31(6):477–81. doi:10.1002\u002Fprep.200600065.\nKumari D, Singh H, Patil M, Thiel W, Pant CS, Banerjee S. Synthesis, characterization, thermal and computational studies of novel tetra-azido esters as energetic plasticizer. Thermochim Acta. 2013;562:96–104. doi:10.1016\u002Fj.tca.2013.03.042.\nPant CS, Wagh RM, Nair JK, Mukundan T, Venugopalan S. Synthesis and characterization of first generation dendritic azidoesters. Propellants Explos Pyrotech. 2007;32(6):461–7. doi:10.1002\u002Fprep.200700050.\nPant CS, Wagh RM, Nair JK, Mukundan T. Dendtritic azido ester: a potential energetic additive for high energy material (HEM) formulations. J Energy Mater. 2006;24(4):333–9. doi:10.1080\u002F07370650600896681.\nUnkelbach G, Keicher T, Krause H. Synthesis and characterization of new triazido-plasticizers. In 36th International annual conference ICT. Karlsruhe, Germany. 2005;49:1–8.\nShaojun Q, Huiqing F. An azido ester plasticizer, 1,3-di(azidoacetoxy)-2,2-di(azidomethyl)propane (PEAA): synthesis, characterization and thermal properties. Propellants Explos Pyrotech. 2006;31(3):205–8. doi:10.1002\u002Fprep.200600028.\nStefan EK. Nitro compounds for use in explosive charges. PhD Theses, Karolinska Institutet, Sweden, 2012.\nGramatica P. Principles of QSAR models validation: internal and external. QSAR Combin Sci. 2007;26(5):694–701. doi:10.1002\u002Fqsar.200610151.\nTropsha A. Best practices for QSAR model development, validation, and exploitation. Mol Inform. 2010;29(6–7):476–88. doi:10.1002\u002Fminf.201000061.",{"VOID":1942},"10.1007\u002Fs10973-016-5738-6","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10973-016-5738-6",[1945,1960,1973],{"id":1946,"sortIndex":32,"researcher":28,"roles":1947,"affiliations":1948,"properties":1957,"displayName":1959,"givenName":28,"familyName":28},"6c7c1f08-b0a5-47fb-ab9b-5cfc35e10244",[1015],[1949],{"id":1950,"sortIndex":32,"affiliation":1951,"properties":28},"1db8e2e1-cd15-4658-b9d0-a0648d9feb7b",{"id":1950,"createTime":28,"updateTime":28,"relativeEntities":1952,"slug":28,"properties":1953,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1956,"statistic":28},[],{"title":1954},{"VI":1955},"Faculty of Chemistry and Chemical Engineering, Malek-Ashtar University of Technology, Tehran, Islamic Republic of Iran",[],{"title":1958},{"VI":1959},"Narges Zohari",{"id":1961,"sortIndex":40,"researcher":28,"roles":1962,"affiliations":1963,"properties":1970,"displayName":1972,"givenName":28,"familyName":28},"153a2cfc-32ec-41a4-a5f9-b5e9b097b483",[1015],[1964],{"id":1950,"sortIndex":32,"affiliation":1965,"properties":28},{"id":1950,"createTime":28,"updateTime":28,"relativeEntities":1966,"slug":28,"properties":1967,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1969,"statistic":28},[],{"title":1968},{"VI":1955},[],{"title":1971},{"VI":1972},"Fatemeh Abrishami",{"id":1974,"sortIndex":123,"researcher":28,"roles":1975,"affiliations":1976,"properties":1983,"displayName":1985,"givenName":28,"familyName":28},"1b0a9f56-8377-4535-a56c-3f61b3d9b788",[1015],[1977],{"id":1950,"sortIndex":32,"affiliation":1978,"properties":28},{"id":1950,"createTime":28,"updateTime":28,"relativeEntities":1979,"slug":28,"properties":1980,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1982,"statistic":28},[],{"title":1981},{"VI":1955},[],{"title":1984},{"VI":1985},"Nasser Sheibani",{"url":1943,"publisher":1987,"properties":2032},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1988,"slug":872,"properties":1989,"entityType":25,"verifyStatus":878,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1992,"manageAffiliations":2001,"indexDatabases":2012,"url":28,"thumbnailPath":28,"statistic":2027,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1990,"title":1991},{"VOID":875},{"VOID":877},[1993,1997],{"id":881,"createTime":28,"updateTime":28,"relativeEntities":1994,"label":1995,"description":1996,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":884},{},{"id":887,"createTime":28,"updateTime":28,"relativeEntities":1998,"label":1999,"description":2000,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":890},{},[2002,2007],{"id":894,"createTime":28,"updateTime":28,"relativeEntities":2003,"slug":28,"properties":2004,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2006,"statistic":28},[],{"title":2005},{"EN":898},[],{"id":901,"createTime":28,"updateTime":28,"relativeEntities":2008,"slug":28,"properties":2009,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2011,"statistic":28},[],{"title":2010},{"EN":905},[907],[2013,2020],{"id":910,"indexDatabase":2014,"url":922,"indexYears":28,"academicFieldIds":2019,"indexDatabaseRanking":28},{"id":912,"createTime":28,"updateTime":28,"relativeEntities":2015,"label":2016,"description":2017,"key":919,"publicationTags":2018,"standard":28},[],{"EN":915,"VI":915},{"EN":917,"VI":918},[921,813],[924,925],{"id":927,"indexDatabase":2021,"url":933,"indexYears":934,"academicFieldIds":2026,"indexDatabaseRanking":938},{"id":775,"createTime":28,"updateTime":28,"relativeEntities":2022,"label":2023,"description":2024,"key":781,"publicationTags":2025,"standard":28},[],{"EN":778,"VI":778},{"EN":778,"VI":780},[783],[936,937],{"impactFactor":32,"impactFactorByYear":2028,"i10Index":858,"i10IndexLast5Year":946,"totalPublication":947,"totalPublicationByYear":2029,"totalCitation":961,"totalCitationByYear":2030,"totalCitationPerPublication":975,"totalCitationPerPublicationByYear":2031,"hindexLast5Year":689,"hindex":689},{"2012":941,"2014":111,"2015":319,"2016":222,"2017":346,"2018":942,"2019":840,"2020":943,"2021":944,"2022":945,"2023":174},{"2003":323,"2004":281,"2005":516,"2006":133,"2009":129,"2010":131,"2011":40,"2012":40,"2013":949,"2014":950,"2015":951,"2016":952,"2017":953,"2018":954,"2019":955,"2020":956,"2021":957,"2022":958,"2023":959,"2024":960},{"2003":963,"2004":964,"2005":965,"2006":155,"2010":154,"2013":218,"2014":966,"2015":967,"2016":968,"2017":969,"2018":970,"2019":971,"2020":972,"2021":973,"2022":974,"2023":864,"2024":48},{"2003":977,"2004":978,"2005":979,"2006":374,"2010":980,"2013":226,"2014":981,"2015":982,"2016":983,"2017":984,"2018":233,"2019":985,"2020":982,"2021":986,"2022":219,"2023":118,"2024":421},{"pages":2033,"volume":2035},{"VOID":2034},"2243-2251",{"VOID":2036},"127","2016-08-02",2016,[938,921],{"id":2041,"createTime":2042,"updateTime":2043,"relativeEntities":2044,"slug":2045,"properties":2046,"entityType":1008,"verifyStatus":26,"verifyTime":2043,"verifyNote":1009,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":2055,"fullTextUrl":28,"authors":2056,"publicationType":1067,"publisherRelationship":2148,"citationCount":28,"citationInfo":28,"publishDate":2199,"publishYear":1638,"citationAnalyzeStatus":878,"lastCitationAnalyze":28,"indexDatabases":2200,"openAccess":28,"references":28,"isForceReanalyzing":1117},"00611d5e-5359-4c68-a308-0c77b78be5ed","2024-01-08T08:12:08.099+00:00","2025-01-27T13:44:50.514+00:00",[],"New-view-on-the-oxidation-mechanisms-of-crude-oil-through-combined-thermal-analysis-methods",{"abstract":2047,"title":2049,"references":2051,"doi":2053},{"EN":2048},"In the previous study, the oxidation behavior of four Chinese crude oils (Oil 1 to 4) in the presence and absence of rock cuttings was investigated by thermogravimetry\u002Fderivative thermogravimetry (TG\u002FDTG) techniques and oxidation tube experiments. The present work investigates the thermal behavior of these oils by combining DTG–DTA method. First, we conducted comparative analysis about mass loss rate from DTG curves and endothermic\u002Fexothermic phenomenon from DTA curves attempting to clarify the endothermic or exothermic mechanism in crude oil low-temperature oxidation. Finally, we combined the thermal analysis method with low-temperature oil oxidation tube experiment in porous media to ascertain, whether the two methods are consistent in the aspect of low-temperature oxidation mechanism of crude oil by O2 consumption rate and CO2 generating rate (carbon bond stripping reaction rate). Results show that crude oils undergo an endothermic oxidation behavior during low-temperature oxidation stage, suggesting the decomposition of hydrocarbon components. Clay can play a catalytic effect on low-temperature oil oxidation. The results of DTG–DTA tests can also better reflect oil oxidation mechanism under real conditions.",{"EN":2050},"New view on the oxidation mechanisms of crude oil through combined thermal analysis methods",{"VOID":2052},"Moore RG, Ursenbach MG. Air injection for oil recovery. J Can Pet Technol. 2002;41(8):16–9.\nGutiérrez D, Miller RJ, Taylor AR, Thies BP, Kumar VK. Buffalo field high-pressure air injection projects 1977 to 2007: technical performance and operational challenges. SPE Reserv Eng. 2009;12(4):542–50.\nMontes AR, Gutierrez D, Moore RG, Mehta SA, Ursenbach MG. Is high pressure air injection (HPAI) simply a flue-gas flood? J Can Pet Technol. 2010;49(2):56–63.\nGutiérrez D, Taylor AR, Kumar V, Ursenbach MG, Moore RG, Mehta SA. Recovery factors in high-pressure air injection projects revisited. SPE Reserv Eng. 2008;11(6):1097–106.\nGutiérrez D, Kumar V, Moore RG, Mehta SA. Case history and appraisal of the west buffalo red river unit high-pressure air injection project. In: 2007 SPE Hydrocarbon Economics and Evaluation Symposium, 1–3 April. Dallas, Texas; 2007.\nWatts BC, Hall TF, Petri DJ. The horse creek air injection project: an overview. In: 1997 SPE Rocky Mountain Regional Meeting, 18–21 May. Casper, Wyoming; 1997.\nPaduraru R, Pantazi I. IOR\u002FEOR - Over six decades of Romanian experience. In: 2000 SPE European Petroleum Conference, 24–25 October. Paris, France; 2000.\nHallam RJ, Hajdo LE, Donnelly JK, Baron PR. Thermal recovery of bitumen at Wolf Lake. SPE Reserv Eng. 1989;4(2):178–86.\nAltun NE, Hicyilmaz C, Kök MV. Effect of particle size and heating rate on the pyrolysis of Silopi asphaltite. J Anal Appl Pyrolysis. 2003;67(2):369–79.\nKök MV, Gul KG. Combustion characteristics and kinetic analysis of Turkish crude oils and their SARA fractions by DSC. J Therm Anal Calorim. 2013;114(1):269–75.\nKök MV. Clay concentration and heating rate effect on crude oil combustion by thermogravimetry. Fuel Process Technol. 2012;96:134–9.\nKök MV, Gundogar AS. DSC study on combustion and pyrolysis behaviors of Turkish crude oils. Fuel Process Technol. 2013;116:110–5.\nKök MV. Characterization of medium and heavy crude oils using thermal analysis techniques. Fuel Process Technol. 2011;92(5):1026–31.\nKök MV. Thermo-oxidative reactions of crude oils. J Therm Anal Calorim. 2011;105(2):411–4.\nKök MV. Thermal behavior and kinetics of crude oils at low heating rates by differential scanning calorimeter. Fuel Process Technol. 2012;96:123–7.\nGonçalves MLA, Ribeiro DA, da Mota DAP, Teixeira AMRF, Teixeira MAG. Thermal behavior of refinery atmospheric residue from some different oils. J Therm Anal Calorim. 2005;80:387–91.\nFreitag NP, Verkoczy B. Low-temperature oxidation of oils in terms of SARA fractions: why simple reaction models don’t work. J Can Pet Technol. 2005;44:54–61.\nKök MV. Effect of clay on crude oil combustion by thermal analysis techniques. J Therm Anal Calorim. 2006;84:361–6.\nKök MV. Influence of reservoir rock composition on the combustion kinetics of crude oil. J Therm Anal Calorim. 2009;97:397–401.\nZhao JZ, Jia H, Pu WF, Wang LL, Peng H. Sensitivity studies on the oxidation behavior of crude oil in porous media. Energy Fuels. 2012;26:6815–23.\nYang JJ, Pu WF, Jia H, Yuan CD, Ni JH, Li XL, Yang M, Jiang H. A comprehensive analysis of the properties of light crude oil in oxidation experimental studies. J Therm Anal Calorim. 2014;. doi:10.1007\u002Fs10973-014-3772-9.\nNi JH, Jia H, Pu WF, Jiang H, Yang JJ, Ren Q. Thermal kinetics study of light oil oxidation using TG\u002FDTG techniques. J Therm Anal Calorim. 2014;. doi:10.1007\u002Fs10973-014-3854-8.\nMothé MG, Carvalho CHM, Sérvulo EFC, Mothé CG. Kinetic study of heavy crude oils by thermal analysis. J Therm Anal Calorim. 2013;111:663–8.\nJia H, Zhao JZ, Pu WF, Zhao J, Kuang XY. Thermal study on light crude oil for application of high-pressure air injection (HPAI) process by TG\u002FDTG and DTA tests. Energy Fuels. 2012;26:1575–84.\nJia H, Zhao JZ, Pu WF, Liao R, Wang LL. The influence of clay minerals types on the oxidation thermokinetics of crude oil. 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numerical investigation of phase change transpiration cooling has been conducted in this work using the modified separate flow model, in which the effects of capillarity, non-isothermal characteristics in two-phase region and the local thermal non-equilibrium characteristics between the coolant and the matrix have been considered to describe the liquid coolant phase change and heat exchange process. The influences of thermal conductivity, porosity and sphere diameter of the porous matrix, main flow temperature and heat transfer coefficient at the hot surface on temperature and saturation distributions and temperature difference within the matrix have been investigated numerically. The results indicate that a higher coolant mass flow rate can delay liquid evaporation, increase the temperature gradient in superheated vapor region and decrease the solid temperature at the hot surface, but with an increase in main flow temperature or heat transfer coefficient at hot surface, the coolant temperature increases in liquid region and especially in superheated vapor region, and the solid temperature at the hot surface increases dramatically. The results also indicate that a higher solid conductivity corresponds to a higher temperature in liquid region and in nearly the whole superheated vapor region, but a slightly lower temperature at the hot surface. A special result has been obtained that with an increase in the porosity and sphere diameter the corresponding interface of liquid region moves leftwards with the two-phase region extended, and the coolant temperature decreases in two-phase region and superheated vapor region, while in liquid region firstly it decreases and then increases, as may be determined by both heat transfer and especially pressure drop which varies dramatically with porosity and sphere diameter. The thermal non-equilibrium characteristics have been analyzed, and the results show that it is obvious at the cold surface, at the hot surface and at the beginning and the ending of two-phase region, and it is most obvious near the ending of two-phase region, and the coolant temperature is higher than the solid temperature at the beginning of two-phase region.",{"EN":2211},"Numerical analysis on thermal characteristics of transpiration cooling with coolant phase change",{"VOID":2213},"Alomar OR, Mendes MAA, Trimis D, Ray S. Numerical simulation of complete liquid vapour phase change process inside porous media using smoothing of diffusion coefficient. Int J Therm Sci. 2014;86:408–20.\nAlomar OR, Mendes MAA, Trimis D, Ray S. Simulation of complete liquid vapour phase change process inside porous evaporator using local thermal non-equilibrium model. Int J Therm Sci. 2015;94:228–41.\nRay S, Alomar OR. Simulation of liquid–vapour phase change process inside porous media using modified enthalpy formulation. Int J Therm Sci. 2016;105:123–36.\nPeralta M, Mendez F, Bautista O. Phase-change transpiration cooling in a porous medium: determination of the liquid\u002Ftwo-phase\u002Fvapor interfaces as a problem of eigenvalues. Transp Porous Med. 2016;112:167–87.\nMashaei PR, Shahryari M, Madani S. Numerical hydrothermal analysis of water–Al2O3 nanofluid forced convection in a narrow annulus filled by porous medium considering variable properties. J Therm Anal Calorim. 2016;126:891–904.\nMottet L, Prat M. Numerical simulation of heat and mass transfer in bidispersed capillary structures: application to the evaporator of a loop heat pipe. Appl Therm Eng. 2016;102:770–84.\nLiu X, Chen Y, Shi M. Dynamic performance analysis on start-up of closed-loop pulsating heat pipes (CLPHPs). Int J Therm Sci. 2013;65:224–33.\nHanlon MA, Ma HB. Evaporation heat transfer in sintered porous media. J Heat Transf. 2003;125:644–52.\nWang SX, Utaka Y, Tasaki Y. An experimental study on moisture transport through a porous plate with micro pores. Int J Heat Mass Trans. 2009;52:4386–9.\nTambue A, Berre I, Nordbotten JM. Efficient simulation of geothermal processes in heterogeneous porous media based on the exponential Rosenbrock–Euler and Rosenbrock-type methods. Adv Water Resour. 2013;53:250–62.\nSabir HM, ElHag YBM. A study of capillary-assisted evaporators. Appl Therm Eng. 2007;27:1555–64.\nShen L, Wang J, Dong W, Pu J, Peng J, Qu D, et al. An experimental investigation on transpiration cooling with phase change under supersonic condition. Appl Therm Eng. 2016;105:549–56.\nShi JX, Wang JH. A numerical investigation of transpiration cooling with liquid coolant phase change. Transp Porous Med. 2011;87:703–16.\nWei K, Wang JH, Mao M. Model discussion of transpiration cooling with boiling. Transp Porous Med. 2012;94:303–18.\nKeener D, Lenertz J, Bowersox R, Bowman J. Transpiration cooling effects on nozzle heat transfer and performance. J Spacecr Rockets. 2015;32:981–5.\nHornung RD, Trangenstein JA. Adaptive mesh refinement and multilevel iteration for flow in porous media. J Comput Phys. 1997;136:522–45.\nWang XH, Quintard M, Darche G. Adaptive mesh refinement for one-dimensional three-phase flow with phase change in porous media. Numer Heat Transf B Fund. 2006;50:231–68.\nLuo HS, Wang XH, Quintard M. Adaptive mesh refinement for one-dimensional three-phase flows in heterogeneous fractured porous media. Numer Heat Transf B Fund. 2008;54:476–98.\nXin C, Rao Z, You X, Song Z, Han D. Numerical investigation of vapor–liquid heat and mass transfer in porous media. Energy Convers Manag. 2014;78:1–7.\nHe F, Wang J. Numerical investigation on critical heat flux and coolant volume required for transpiration cooling with phase change. Energy Convers Manag. 2014;80:591–7.\nHe F, Wang J, Xu L, Wang X. Modeling and simulation of transpiration cooling with phase change. Appl Therm Eng. 2013;58:173–80.\nvan Foreest A, Sippel M, Guelhan A, Esser B, Ambrosius BAC, Sudmeijer K. Transpiration cooling using liquid water. J Thermophys Heat Transf. 2009;23:693–702.\nNima MA. Numerical study of phase change characteristics in a vertical and inclined porous channel using thermal non-equilibrium model. J Porous Media. 2016;19:1099–121.\nBau HH, Torrance KE. Boiling in low-permeability porous materials. Int J Heat Mass Transf. 1982;25:45–55.\nTopin F, Rahli O, Tadrist L, Pantaloni J. Experimental study of convective boiling in a porous medium: temperature field analysis. J Heat Transf. 1996;118:230–3.\nRahli O, Topin F, Tadrist L, Pantaloni J. Analysis of heat transfer with liquid–vapor phase change in a forced-flow fluid moving through porous media. Int J Heat Mass Transf. 1996;39:3959–75.\nBear J. Dynamics of fluids in porous media. New York: Elsevier; 1972.\nWang CY, Beckermann C. A 2-phase mixture model of liquid–gas flow and heat-transfer in capillary-porous media. 1. Formulation. Int J Heat Mass Transf. 1993;36:2747–58.\nBridge L, Bradean R, Ward MJ, Wetton AR. The analysis of a two-phase zone with condensation in a porous medium. J Eng Math. 2003;45:247–68.\nYuki K, Abei J, Hashizume H, Toda S. Numerical investigation of thermofluid flow characteristics with phase change against high heat flux in porous media. J Heat Transf. 2008;130:012602.\nScheidegger AE. The physics of flow through porous media. 3rd ed. Toronto: University of Toronto Press; 1974.\nWang JH, Shi JX. Discussion of boundary conditions of transpiration cooling problems using analytical solution of LTNE model. J Heat Transf. 2008;130:014504.\nPeterson GP, Chang CS. Heat transfer analysis and evaluation for two-phase flow in porous-channel heat sinks. Numer Heat Transf Appl. 1997;31:113–30.\nLandis J, Bowman W. Numerical study of a transpiration cooled rocket nozzle. In: Joint propulsion conference and exhibit; (1996).",{"VOID":2215},"10.1007\u002Fs10973-017-6562-3","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs10973-017-6562-3",[2218,2233,2246],{"id":2219,"sortIndex":32,"researcher":28,"roles":2220,"affiliations":2221,"properties":2230,"displayName":2232,"givenName":28,"familyName":28},"96ffbebc-6d99-4da8-b3ed-b5e57c395445",[1015],[2222],{"id":2223,"sortIndex":32,"affiliation":2224,"properties":28},"a0177f36-1a08-4b67-a94b-69b41e67f8a4",{"id":2223,"createTime":28,"updateTime":28,"relativeEntities":2225,"slug":28,"properties":2226,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2229,"statistic":28},[],{"title":2227},{"VI":2228},"School of Electrical and Power Engineering, China University of Mining and Technology, Xuzhou, China",[],{"title":2231},{"VI":2232},"Chengyun 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