[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_b4c4f170-9f93-4596-9221-f1e88ca12038":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:b4c4f170-9f93-4596-9221-f1e88ca12038,\"}":74},{"code":4,"data":5,"meta":20},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":22,"manageAffiliations":23,"indexDatabases":24,"url":25,"thumbnailPath":26,"statistic":27,"gsStatistic":20,"type":20,"analyzePriority":20},"b4c4f170-9f93-4596-9221-f1e88ca12038","2023-05-10T11:31:39.508+00:00","2026-05-25T07:35:36.277+00:00",[],"Nuclear%20Science%20and%20Technology",{"issn":12,"title":14,"country":16},{"VOID":13},"18105408",{"EN":15,"VI":15},"Nuclear Science and Technology",{"VOID":17},"VN","PUBLISHER","VERIFIED",null,21,[],[],[],"http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst","\u002Fapi\u002Fpublic\u002Ffile\u002Fpublisher\u002Fb4c4f170-9f93-4596-9221-f1e88ca12038\u002F1525b3b8cba5091841af412d3aae656d.png",{"impactFactor":28,"impactFactorByYear":29,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":40,"totalCitation":51,"totalCitationByYear":52,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":61,"hindexLast5Year":73,"hindex":73},0,{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},0.03,0.01,0.1,0.05,0.11,0.06,0.12,0.02,2,355,{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},26,13,29,38,30,31,24,23,25,12,253,{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},4,3,109,27,5,16,11,0.71,{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},0.15,0.23,0.07,2.87,1.03,0.97,0.87,0.21,0.62,0.48,0.17,7,{"meta":75,"data":77},{"total":76},"390",[78,132,181,229,275,324,369,418,466,510],{"id":79,"createTime":80,"updateTime":81,"relativeEntities":82,"slug":83,"properties":84,"entityType":97,"verifyStatus":19,"verifyTime":80,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":38,"primaryUrl":99,"fullTextUrl":20,"authors":100,"publicationType":101,"publisherRelationship":102,"citationCount":28,"citationInfo":124,"publishDate":127,"publishYear":125,"citationAnalyzeStatus":128,"lastCitationAnalyze":129,"indexDatabases":130,"openAccess":20,"references":20,"isForceReanalyzing":131},"484d32c0-104e-48a0-96f2-811ca71596b9","2023-05-12T03:07:18.142+00:00","2026-08-24T21:08:24.153+00:00",[],"Research%20and%20manufacture%20of%20cone-beam%20computed%20tomography%20%28CBCT%29%20system%20for%20industrial%20use",{"abstract":85,"title":87,"gsPaper":89,"keywords":91,"references":93,"doi":95},{"EN":86},"Computed tomography is a transmission tomography technique; this technique allows reconstructing the cross-section images or slices of the real object. The CT was developed in the 1970s for medical diagnostic purposes. Today, the CT technique has evolved to the 7th generation using cone-beam configuration (CBCT) and Flat Panel Detector (FPD) instead of fan-beam arrangement and one dimension detector array. CBCT has greater X-ray efficiency and higher spatial resolution than the previous generation; therefore, it can be used in industrial applications such as metrology of precision machined and None-Destructive Testing (NDT). In this research, the first CBCT system in Vietnam was manufactured; this system can acquire and reconstruct three dimensions of a real object with a maximum size of 200 &times; 300 mm within ten minutes. The resolution of the reconstructed image is around 49 &micro;m.",{"EN":88},"Research and manufacture of cone-beam computed tomography (CBCT) system for industrial use",{"VOID":90},"7372814402462592598",{"EN":92},"CBCT,image reconstruction,radiography,metrology,inspection",{"VOID":94},". Jerrold T. Bushberg J. Anthony Seibert, Edwin M. Leidholdt Jr., John M. Boone. The Essential Physics of Medical Imaging, Third Edition. Lippincott Williams & Wilkins, a Wolters Kluwer, 2012.\n. Bartscher M, et al, Achieving Traceability of Industrial Computed Tomography. Proc. 9th Int. Symp. on Measurement and Intelligent Instruments - ISMTII 2009, DS. Rozhdestvensky Optical Society, vol. 1, pp. 256–261, 2009.\n. Bartscher, Markus, et al. Achieving Traceability of Industrial Computed Tomography. Key Engineering Materials, vol. 437, Trans Tech Publications, Ltd., May 2010, pp. 79–83. doi:10.4028\u002Fwww.scientific.net\u002Fkem.437.79.\n. Bartscher M, et al, Dimensional Control of Technical Components with Computed Tomography. Metrology and Industry Int. Conf, 2010.\n. Reimers P, Goebbels J, New Possibilities of Non-Destructive Evaluation by X-ray Computed Tomography. Materials Evaluation 41:732–737, 1983.\n. Kruth J-P, Bartscher M, Carmignato S, Schmitt R, De Chiffre L, Weckenmann A. Computed Tomography for Dimensional Metrology. CIRP Annals 60(2):821–842, 2011.\n. L. De Chiffre, S. Carmignato , J.-P. Kruth , R. Schmitt , A. Weckenmann. Industrial applications of computed tomography. CIRP Annals: Manufactiring Technology, p. 655-677, 0007-8506, 2014.\n. Duong. T. T, Ha. B. N. Evaluate image reconstruction algorithms in cone-beam computed tomography technique. Nuclear Science and Technology, Vol.9, No.4 (2019), p. 41-47.",{"VOID":96},"10.53747\u002Fnst.v11i4.393","PUBLICATION","3c952740-a52d-4010-ac2f-565f663c09d8","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F393",[],"ARTICLE",{"url":99,"publisher":103,"properties":117},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":104,"slug":10,"properties":105,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":109,"manageAffiliations":110,"indexDatabases":111,"url":25,"thumbnailPath":26,"statistic":112,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":106,"title":107,"country":108},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":113,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":114,"totalCitation":51,"totalCitationByYear":115,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":116,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":118,"title":120,"volume":122},{"VOID":119},"4",{"VI":121},"Tập 11 Số 4",{"VOID":123},"11",{"total":28,"publishYear":125,"statisticByYear":126},2021,{},"2021-12-30","ERROR_IN_ANALYZE_CITATION","2026-08-24T21:08:24.152+00:00",[],false,{"id":133,"createTime":134,"updateTime":135,"relativeEntities":136,"slug":137,"properties":138,"entityType":97,"verifyStatus":19,"verifyTime":134,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":151,"primaryUrl":152,"fullTextUrl":20,"authors":153,"publicationType":101,"publisherRelationship":154,"citationCount":28,"citationInfo":175,"publishDate":178,"publishYear":176,"citationAnalyzeStatus":128,"lastCitationAnalyze":179,"indexDatabases":180,"openAccess":20,"references":20,"isForceReanalyzing":131},"3df0dc73-dec4-4c04-be28-5d1d05289d9f","2023-05-12T03:18:45.886+00:00","2026-08-18T06:58:12.834+00:00",[],"Some%20results%20of%20NAA%20collaborative%20study%20in%20white%20rice%20%20performed%20at%20Dalat%20Nuclear%20Research%20Institute",{"abstract":139,"title":141,"gsPaper":143,"keywords":145,"references":147,"doi":149},{"EN":140},"White rice is a main food for Asian people. In the framework of Forum for Nuclear Cooperation in Asia (FNCA), therefore, the eight Asian countries: China, Indonesia, Japan, Korea, Malaysia, the Philippines, Thailand and Vietnam selected white rice as a common target sample for a collaboration study since 2008. Accordingly, rice samples were purchased and prepared by following a protocol that had been proposed for this study. The groups of elements that were analyzed by using neutron activation analysis in the white rice samples were toxic elements and nutrient elements, including: Al, As, Br, Ca, Cl, Co, Cr, Cs, Fe, K, Mg, Mn, Na, Rb and Zn. The analytical results were compared between the different countries and evaluated by using the Tolerable Intake Level of World Health Organization (WHO) and Recommended Dietary Allowance or Adequate Intake (AI) of the U.S. Institute of Medicine (IOM) guideline values. These data will be very useful in the monitoring of the levels of food contamination and in the evaluation of the nutritional status for people living in Vietnam and other Asian countries.",{"EN":142},"Some results of NAA collaborative study in white rice  performed at Dalat Nuclear Research Institute",{"VOID":144},"13737314915213532760",{"EN":146},"White rice,neutron activation analysis,FNCA,tolerable intake level,dietary reference intakes,adequate intake",{"VOID":148},"J. H. Moon et. al, A NAA collaborative study in white rice performed in seven Asian countries, Journal of Radio- analytical Chemistry, Volume 291, Issue 1, pp 217-221 (January 2012).\nCenter for Analytical Techniques (CATech), Dalat Nuclear Research Institute (NRI), “TCCS-MSH from 01 to 03”, Dalat, (2011).\nMinistry of Agriculture and Forestry, Agricultural and forestry statistical yearbook 2003. Ministry of Agriculture and Forestry, Seoul, (2003).\nNational Institute of Nutrition, A review of the nutrition situation in Vietnam 2009-2010, Medical Publishing House, Hanoi, (2011).\nWorld Health Organization, Evaluation of certain food additives and contaminants, (Thirty-third report of the Joint FAO\u002FWHO Expert Committee on Food Additives). WHO Technical Report Series, No. 776, (1989).\nInstitute of Medicine, Food and Nutrition Board, Dietary reference intakes for vitamin A, vitamin K, arsenic, boron, chromium, copper, iodine, iron, manganese, molybdenum, nickel, silicon, vanadium, and zinc, National Academy of Sciences, Washington DC, (2001).\nInstitute of Medicine, Food and Nutrition Board, Dietary reference intakes for water, potassium, sodium, chloride and sulfate. National Academy of Sciences, Washington DC, (2004).",{"VOID":150},"10.53747\u002Fjnst.v4i1.217",1,"http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F217",[],{"url":152,"publisher":155,"properties":169},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":156,"slug":10,"properties":157,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":161,"manageAffiliations":162,"indexDatabases":163,"url":25,"thumbnailPath":26,"statistic":164,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":158,"title":159,"country":160},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":165,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":166,"totalCitation":51,"totalCitationByYear":167,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":168,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":170,"title":172,"volume":174},{"VOID":171},"1",{"VI":173},"Tập 4 Số 1",{"VOID":119},{"total":28,"publishYear":176,"statisticByYear":177},2014,{},"2014-03-30","2026-08-18T06:58:12.833+00:00",[],{"id":182,"createTime":183,"updateTime":184,"relativeEntities":185,"slug":186,"properties":187,"entityType":97,"verifyStatus":19,"verifyTime":183,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":28,"primaryUrl":200,"fullTextUrl":20,"authors":201,"publicationType":101,"publisherRelationship":202,"citationCount":28,"citationInfo":223,"publishDate":226,"publishYear":224,"citationAnalyzeStatus":128,"lastCitationAnalyze":227,"indexDatabases":228,"openAccess":20,"references":20,"isForceReanalyzing":131},"0aa5a1dc-bc80-49ed-97ca-57be633bd4fa","2023-05-12T02:57:17.990+00:00","2026-08-18T03:20:53.056+00:00",[],"A%20study%20to%20set-up%20a%20technological%20process%20for%20purification%20of%20Zinc%20scraps%20by%20using%20liquation%20method",{"abstract":188,"title":190,"gsPaper":192,"keywords":194,"references":196,"doi":198},{"EN":189},"Zinc scrap is a source of raw material for zinc oxide production. However, to qualify the requirement of raw material for zinc oxide (99.5%) production, refining this source is needed. Many methods are considered such as rectification, chemical method, etc., but difficult to apply on an industrial scale. This workfocused on the investigation of the influence of temperature and time factors for asessing the possibility of applying liquation method for the purification of impurities from scrap zinc.The experiment results show that the optimum temperature of liquation to remove Pb,Fe from zinc scrap is in the range of 440-450°C, the optimal time of the process is 8h for the pot with 8cm in height and 6cm in diameter (the quantity of raw zinc sample is about 2kg \u002F batch), then we can obtain about 80% of zinc metal with an average Zn content of about 97, 0%, both Pb and Fe content decreased to a range from 0.35 to 0.4%, and 1.0 to 1.1%, respectively, which meet the requirement of raw materials for the production of high quanlity ZnO ( 99,5 %). Based on the parameters obtained on lab-scale, a trial on pilot scale of 250 kg \u002F batch was conducted, The result confirms that the quality of the products meets the requirement of raw materials for production of high quality ZnO (99.5%) and a technology process for refining zinc scrap by the liquation was proposed. ",{"EN":191},"A study to set-up a technological process for purification of Zinc scraps by using liquation method",{"VOID":193},"6849487858883085478",{"EN":195},"Zinc scrap,liquation method,remove Pb",{"VOID":197},". Phan Dinh Thinh, An technologgical improvement and construction a 99.5% zinc oxide production line of a capacity of 300 tons \u002Fyear from zinc scrap by evaporation-oxidation process. R&D project code DACB.02\u002F13\u002FVCNXH, Hanoi 11\u002F2014.\n. Phung Viet Ngu, Zinc Metallrgy, High Education Publisher, Hanoi 1981.\n. E.A.Shan’gin, Development of the crystallization method for removing lead impurities from secondary zinc, Russian journal of non-ferrous Metals, 54 (1), 51 - 55, 2013.\n. Shugaman, Lead removal method, US patent 4 704 260, 11\u002F1987.\n. Vladimir A. Kechin, Evgeny S. Prusov. Evaluation of the effectiveness of liquation refining of zinc melts from iron impurity. Journal of Chemical Technology and Metallurgy, 2017.\n. Method for the reclamation of zinc from gavanizing baths. US patent 4075008, 2\u002F1978.",{"VOID":199},"10.53747\u002Fjnst.v8i1.82","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F82",[],{"url":200,"publisher":203,"properties":217},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":204,"slug":10,"properties":205,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":209,"manageAffiliations":210,"indexDatabases":211,"url":25,"thumbnailPath":26,"statistic":212,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":206,"title":207,"country":208},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":213,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":214,"totalCitation":51,"totalCitationByYear":215,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":216,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":218,"title":219,"volume":221},{"VOID":171},{"VI":220},"Tập 8 Số 1",{"VOID":222},"8",{"total":28,"publishYear":224,"statisticByYear":225},2018,{},"2018-03-30","2026-08-18T03:20:53.055+00:00",[],{"id":230,"createTime":231,"updateTime":232,"relativeEntities":233,"slug":234,"properties":235,"entityType":97,"verifyStatus":19,"verifyTime":231,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":28,"primaryUrl":248,"fullTextUrl":20,"authors":249,"publicationType":101,"publisherRelationship":250,"citationCount":28,"citationInfo":270,"publishDate":273,"publishYear":271,"citationAnalyzeStatus":128,"lastCitationAnalyze":232,"indexDatabases":274,"openAccess":20,"references":20,"isForceReanalyzing":131},"cd045ab1-f940-4f06-b566-d902d983688f","2023-05-12T03:16:28.491+00:00","2026-08-16T08:50:19.514+00:00",[],"COSMIC-RAY-MEASUREMENTS-EMPLOYING-PLASTIC-SCINTLLATION-DETECTORS-AND-FLASH-ADC-FPGA-BASED-READOUT-SYSTEM",{"abstract":236,"title":238,"gsPaper":240,"keywords":242,"references":244,"doi":246},{"EN":237},"It is known that secondary cosmic rays are high energetic particles which are products of shower particles, when primary cosmic rays from outer space hit the atmosphere molecules. Many studies of cosmic rays show that cosmic flux depends on the depth of atmosphere. At ground level, most secondary cosmic rays are muons, a type of charged particle, and have angular dependence. The purpose of this article was to develop the telescope with the use of two plastic scintillation detectors, to investigate the angular distribution of cosmic rays at ground level. Measurements were carried out for vertical, 45-degree oblique and horizontal directions with respect to earth surface, approximately from North to South. Electronic readout system was built from a Flash Analog Digital Converter (Flash-ADC) of 8 bits-250Ms\u002Fsec, and Embedded Field Programmable Gate Array (FPGA)-based trigger. A computer interface was written on LabVIEWTM Platform for controlling system&rsquo;s trigger and taking data. For each direction measurement, the energy spectrum in each scintillator detector was obtained. The interest of cosmic-ray events was analyzed for counting. Angular distribution was obtained quantitatively. The experiment has been done at University of Science-HCMC.",{"EN":239},"COSMIC RAY MEASUREMENTS EMPLOYING PLASTIC SCINTLLATION DETECTORS AND FLASH-ADC\u002FFPGA-BASED READOUT SYSTEM",{"VOID":241},"18028403843330611955",{"EN":243},"Angular distribution,cosmic rays,Flash-ADC,FPGA,LabVIEW",{"VOID":245},"Natural and Man-Made Radiation Sources, U.S.NRC technical training center, USA.\nPham Ngoc Dinh and el., “Measurement of the zenith angle distribution of cosmic muon flux in Hanoi”, Nuclear Physics B, 661, 3-16, 2003.\nPham Ngoc Diep and el., “Measurement of the east–west asymmetry of the cosmic muon flux in Hanoi”, Nuclear Physics B, 678, 3-15, 2004.\n250 MSa\u002Fsec-8 bits Flash ADC and Logic Trigger Interface. The collaboration program between Graduate School of Science, Osaka University and Faculty of Physics, University of Science-HCMC.\nBC-400 Specification, Saint-Gobain Ceramics and Plastic, Inc. [Online]. Available:\nhttp:\u002F\u002Fwww.detectors.saint-gobain.com\nPhoto-Multiplier Tube R6236-01 Specifications, Hamamatsu Corp.\nhttp:\u002F\u002Fjp.hamamatsu.com\nOpton-2NC-* specification, Matsusada Precision, Inc, [Online]. Available:\nhttp:\u002F\u002Fwww.matsusada.com\u002F\nNI labVIEW software, National Instruments Corp., [Online]. Avalable:\nhttp:\u002F\u002Fwww.ni.com\u002Flabview\u002F",{"VOID":247},"10.53747\u002Fnst.v1i4.319","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F319",[],{"url":248,"publisher":251,"properties":265},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":252,"slug":10,"properties":253,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":257,"manageAffiliations":258,"indexDatabases":259,"url":25,"thumbnailPath":26,"statistic":260,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":254,"title":255,"country":256},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":261,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":262,"totalCitation":51,"totalCitationByYear":263,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":264,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":266,"title":267,"volume":269},{"VOID":119},{"VI":268},"Tập 1 Số 4",{"VOID":171},{"total":28,"publishYear":271,"statisticByYear":272},2011,{},"2011-12-30",[],{"id":276,"createTime":277,"updateTime":278,"relativeEntities":279,"slug":280,"properties":281,"entityType":97,"verifyStatus":19,"verifyTime":277,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":28,"primaryUrl":294,"fullTextUrl":20,"authors":295,"publicationType":101,"publisherRelationship":296,"citationCount":28,"citationInfo":318,"publishDate":321,"publishYear":319,"citationAnalyzeStatus":128,"lastCitationAnalyze":322,"indexDatabases":323,"openAccess":20,"references":20,"isForceReanalyzing":131},"2b2f27e3-4efb-4c42-bd25-176fd80ad794","2023-05-12T03:24:51.854+00:00","2026-08-16T08:49:34.456+00:00",[],"Application%20of%20reverse%20osmosis%20at%20NPP%20and%20verification%20of%20the%20process%20for%20primary%20coolant%20treatment%20in%20temel%C3%ADn%20nuclear%20power",{"abstract":282,"title":284,"gsPaper":286,"keywords":288,"references":290,"doi":292},{"EN":283},"Drained primary coolant from nuclear power plants containing boric acid is currently treated in the system of evaporators and by ion exchangers. Reverse osmosis as an alternative process to evaporator was investigated. Using reverse osmosis, the feed primary coolant is separated into two output streams: retentate and permeate. Retentate stream consists of concentrated boric acid solution together with other components, while permeate stream consists of purified water. In the first phase of the project the reverse osmosis modules from several manufactures were tested on a batch laboratory apparatus. Certain modifications to the pH of the feed solution were needed to enable the tested membranes to concentrate the H3BO3 in the retentate stream, separate from the pure water in the permeate stream. Furthermore, the separation capability for other compounds present in primary coolant such as K, Li or NH3 were evaluated. In the final phase of the project the pilot-plant unit of reverse osmosis was tested in nuclear power plant Temel&iacute;n. It was installed in the Special Purification System SVO-6 for the regeneration of boric acid. The aim of the tests performed in Temel&iacute;n nuclear power plant was to verify possible use of reverse osmosis for the treatment of primary coolant.",{"EN":285},"Application of reverse osmosis at NPP and verification of the process for primary coolant treatment in temelín nuclear power",{"VOID":287},"1304887149393154335",{"EN":289},"Reverse osmosis,H₃BO₃,primary coolant,nuclear power plants",{"VOID":291},"J. Kysela, M. Zmítko, V. A. Yurmanov, and V. F. Tiapkov, “Primary coolant chemistry in VVER units,” Nucl. Eng. Des., vol. 160, no. 1–2, pp. 185–192, Feb. 1996.\nEPRI, “Review of VVER Primary Water Chemistry and the Potential for its Use in PWRs: Potassium Hydroxide and\u002For Ammonia Based Water Chemist ries,” 2002.\nIAEA, “Coolant Technology of Water Cooled Reactors, Volume 1: Chemistry of Primary Coolant in Water Cooled Reactors,” 1992.\nK. Kezia, J. Lee, A. J. Hill, and S. E. Kentish, “Convective transport of boron through a brackish water reverse osmosis membrane,” J. Memb. Sci., vol. 445, pp. 160–169, Oct. 2013.\nM. Rodríguez Pastor, A. Ferrándiz Ruiz, M. F. Chillón, and D. Prats Rico, “Influence of pH in the elimination of boron by means of reverse osmosis,” Desalination, vol. 140, no. 2, pp. 145–152, Nov. 2001.\nA. Somrani, A. H. Hamzaoui, and M. Pontie, “Study on lithium separation from salt lake brines by nanofiltration (NF) and low pressure reverse osmosis (LPRO),” Desalination, vol. 317, pp. 184–192, May 2013.\nL. A. Richards, B. S. Richards, and A. I. Schäfer, “Renewable energy powered membrane technology: Salt and inorganic contaminant removal by nanofiltration\u002Freverse osmosis,” J. Memb. Sci., vol. 369, no. 1–2, pp. 188–195, Mar. 2011.\nS. Ding, Y. Yang, H. Huang, H. Liu, and L. Hou, “Effects of feed solution chemistry on low pressure reverse osmosis filtration of cesium and strontium,” J. Hazard. Mater., vol. 294, pp. 27–34, Aug. 2015.\nD. Chen, X. Zhao, and F. Li, “Influence of boron on rejection of trace nuclides by reverse osmosis,” Desalination, vol. 370, pp. 72–78, Aug. 2015.",{"VOID":293},"10.53747\u002Fjnst.v7i2.105","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F105",[],{"url":294,"publisher":297,"properties":311},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":298,"slug":10,"properties":299,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":303,"manageAffiliations":304,"indexDatabases":305,"url":25,"thumbnailPath":26,"statistic":306,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":300,"title":301,"country":302},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":307,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":308,"totalCitation":51,"totalCitationByYear":309,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":310,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":312,"title":314,"volume":316},{"VOID":313},"2",{"VI":315},"Tập 7 Số 2",{"VOID":317},"7",{"total":28,"publishYear":319,"statisticByYear":320},2017,{},"2017-06-30","2026-08-16T08:49:34.455+00:00",[],{"id":325,"createTime":326,"updateTime":327,"relativeEntities":328,"slug":329,"properties":330,"entityType":97,"verifyStatus":19,"verifyTime":326,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":28,"primaryUrl":343,"fullTextUrl":20,"authors":344,"publicationType":101,"publisherRelationship":345,"citationCount":28,"citationInfo":364,"publishDate":321,"publishYear":319,"citationAnalyzeStatus":366,"lastCitationAnalyze":367,"indexDatabases":368,"openAccess":20,"references":20,"isForceReanalyzing":131},"4ac4409c-7233-475a-97f0-282387adeff6","2023-05-12T03:25:10.588+00:00","2026-07-30T07:18:46.694+00:00",[],"Particle%20identification%20for%20Z%20%3D%2025%20%E2%80%93%2028%20exotic%20nuclei%20from%20seastar%20experimental%20data",{"abstract":331,"title":333,"gsPaper":335,"keywords":337,"references":339,"doi":341},{"EN":332},"The particle identification (PID) method based on TOF-B&rho;-&Delta;E measurement at RIKEN are discussed, and its application for Z = 25 &ndash; 28 neutron-rich nuclei from SEASTAR (Shell Evolution And Search for Two-plus energy At RIBF) experimental data are presented. The results including the PID for beam and residual nucleus at BigRIPS and ZeroDegree, respectively, demonstrate that the reactions of interest are well separated. This ensures the precision in the data analysis later on.",{"EN":334},"Particle identification for Z = 25 – 28 exotic nuclei from seastar experimental data",{"VOID":336},"15972716116759666621",{"EN":338},"SEASTAR,particle identification,BigRIPS,ZeroDegree",{"VOID":340},"I. Tanihata, “Neutron halo nuclei”, J. Phys. G 22, 157, and references therein, 1996.\nL. X. Chung et al., “Elastic proton scattering at intermediate energies as a probe of the 6,8He nuclear matter densities”, Physical Review C 92, 034608, 2015.\nS. D. Pain et al., “Structure of 12Be: Intruder d-Wave Strength at N=8”, Phys. Rev. Lett. 96, 032502, 2006.\nLe Xuan Chung et al., “The dominance of the ν(0d5\u002F2)2 configuration in the N = 8 shell in 12Be from the breakup reaction on a proton target at intermediate energy”, submitted to Physics Letters B, 2017.\nO. Sorlin et al., “Nuclear magic number: New features far from stability”, Progress in Particle and Nuclear Physics 61, Issue 2, 602-673, 2008.\nT. Kubo, \"In-flight RI beam separator BigRIPS at RIKEN and elsewhere in Japan\", Nucl. Instr. Meth. B 204, pp. 97-113, 2003.\nA.C. Mueller and R. Anne, \"Production of and studies with secondary radioactive ion beams at LISE\", Nuclear Instruments and Methods in Physics Research B 56, pp. 559-563, 1991.\nD.J. Morrissey et al., \"Commissioning the A1900 projectile fragment separator\" Nuclear Instruments and Methods in Physics Research B 204, pp. 90-96, 2003.\nH. Geissel et al., \"The GSI projectile fragment separator (FRS): a versatile magnetic system for relativistic heavy ions\", Nuclear Instruments and Methods in Physics Research B 70, pp. 286-297, 1992.\nP. Doornenbal and A. Obertelli, “Shell Evolution and Systematic Search for 2+1 Energies”, Proposal for Nuclear Physics Experiment at RI Beam Factory RIBF NP-PAC-13, 2013.\nA. Obertelli et al., \"MINOS: A vertex tracker coupled to a thick liquid-hydrogen target for in-beam spectroscopy of exotic nuclei\", Eur. Jour. Phys. A 50, 8, 2014.\nP. Doornenbal, \"In-beam gamma-ray spectroscopy at the RIBF\", Prog. Theor. Exp. Phys., 03C004, 2012.\nC. Santamaria, L. X. Chung et al., \"Extension of the N=40 Island of Inversion towards N=50: Spectroscopy of Cr66, Fe70,72\", Physical Review Letters 115, 192501, 2015.\nP.Nancy et al., L.X.Chung, B.D.Linh., “Are There Signatures of Harmonic Oscillator Shells Far from Stability? First Spectroscopy of 110Zr”, Physical Review Letters, 118, 032501, 2017.\nF. Flavigny et al., L.X. Chung, B.D. Linh, “Shape Evolution in Neutron-rich Krypton Isotopes beyond N = 60: First spectroscopy of 98,100Kr”, Physical Review Letters 118, 242501, 2017.\nNguyen Tuan Khai, Bui Duy Linh, Do Cong Cuong, Le Xuan Chung, “Particle identification and scattering angle determination in charge-exchange (3He,t) reaction”, Nuclear Science and Technology, No. 1, pp. 8-13, 2013.\nT. Kubo et al., “BigRIPS separator and ZeroDegree spectrometer at RIKEN RI Beam Factory”, Prog. Theor. Exp. Phys., 03C003, 2012.\nT. Ohnishi et al., “Identification of New Isotopes 125Pd and 126Pd Produced by In-Flight Fission of 345 MeV\u002Fnucleon 238U: First Results from the RIKEN RI Beam Factory”, J. Phys. Soc. Jpn 77, 083201, 2008.\nT. Ohnishi et al., \"Identification of 45 New Neutron-Rich Isotopes Produced by In-Flight Fission of a 238U Beam at 345 MeV\u002Fnucleon”, J. Phys. Soc. Jpn 79, 073201, 2010.\nH. Kumagai et al.,” Delay-line PPAC for high-energy light ions”, Nuclear Instrum. and Methods Phys. Res., Sect. A 470, 562-570, 2001.\nK. Kimura et al., \"High-rate particle identification of high-energy heavy ions using a tilted electrode gas ionization chamber\", Nuclear Instrum. and Methods Phys. Res., Sect. A 538, 608, 2006.\nM. Berz et al., Reconstructive correction of aberrations in nuclear particle spectrographs, Phys. Rev. C 47, 537, 1993.\nN. Fukuda et al., \"Identification and separation of radioactive isotope beams by the BigRIPS separator at the RIKEN RI Beam Factory\", Nucl. Instr. in Phys. Res. B 317, 323, 2013.",{"VOID":342},"10.53747\u002Fjnst.v7i2.106","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F106",[],{"url":343,"publisher":346,"properties":360},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":347,"slug":10,"properties":348,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":352,"manageAffiliations":353,"indexDatabases":354,"url":25,"thumbnailPath":26,"statistic":355,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":349,"title":350,"country":351},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":356,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":357,"totalCitation":51,"totalCitationByYear":358,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":359,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":361,"title":362,"volume":363},{"VOID":313},{"VI":315},{"VOID":317},{"total":28,"publishYear":319,"statisticByYear":365},{},"PENDING","2026-07-30T07:18:46.693+00:00",[],{"id":370,"createTime":371,"updateTime":372,"relativeEntities":373,"slug":374,"properties":375,"entityType":97,"verifyStatus":19,"verifyTime":388,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":38,"primaryUrl":389,"fullTextUrl":20,"authors":390,"publicationType":101,"publisherRelationship":391,"citationCount":28,"citationInfo":412,"publishDate":415,"publishYear":413,"citationAnalyzeStatus":416,"lastCitationAnalyze":372,"indexDatabases":417,"openAccess":20,"references":20,"isForceReanalyzing":131},"78db84b1-4992-45d5-a03f-5c1db98d5e93","2023-05-12T03:09:11.715+00:00","2026-07-30T03:38:04.497+00:00",[],"Positron%20annihilation%20in%20mordenite%20zeolite",{"abstract":376,"title":378,"gsPaper":380,"keywords":382,"references":384,"doi":386},{"EN":377},"The theoretical study of the positron annihilation in complex material such as zeolite is greatly significant to support and increase the accuracy analysis of the material structure from the experimental data of the positron annihilation. The mordenite zeolite is a big and complicated structure consisting of channels and cavities. The analysis of the mordenite structure is studied by the PALS so depending on the selection of the positron lifetime components of the positron annihilation spectra fitting methods. Therefore, these positron life times in on TO4, Na, Ca, K, Fe, H2O and the rings which form the channels and cavities are sophisticatedly studied by the DFT calculation using Ab-initio. The mordenite and modified mordenite zeolite structures are precisely analyzed, and the physical behaviors of the positron in these are more understood by these theoretical results.",{"EN":379},"Positron annihilation in mordenite zeolite",{"VOID":381},"350032632170622535",{"EN":383},"positron,DFT,PALS,zeolite,mordenite,annihilation",{"VOID":385},". P. Kirkegaard, M. Eldrup, Comput. Phys. Commun. 3, 240, 1972.\n. J. Kansy, Nucl. Instrum. Methods A 374, 235 1996.\n. R.B. Gregory, Nucl. Instrum. Methods A 302, 496, 1991.\n. A. Shukla, M. Peter, L. Horman, Nucl. Instrum. Methods A 335, 310, 1993.\n. P . Valminen, Special Assignment, Helsinki University of Technology, Espoo, 2002.\n. E. Boronski, R. M. Nieminen, Phys. Rev. B 34, 3820, 1986.\n. B. Barbiellini, M. J. Puska, T. Torsti, R. M. Nieminen, Phys. Rev. B 51, 7341, 1995.\n. M. Alatalo, B. Barbiellini, M. Hakala, H. Kauppinen, T. Korhonen, M. J. Puska, K. Saarinen, P . Hautojarvi, and R. M. Nieminen, Phys. Rev. B 54, 2397, 1996.\n. Petrasimoncic and Thomasarmbruster, “Peculiarity and defect structure of the natural and synthetic zeolite mordenite: A single-crystal X-ray study”, American Mineralogist, Volume 89, pages 421–431, 2004.\n. Ch. Baerlocher, L.B. McCusker , D.H. Olson, “ATLAS OF ZEOLITE FRAMEWORK TYPES”, 6th edition, Elsevier Radarweg 29, PO Box 211, 1000 AE Amsterdam, The Netherlands, 2007.\n. N AOYUKI K AWAME et. al, “Superstructure of Challis mordenite with doubled monoclinic unit cell”,American Mineralogist, Volume 92, pages 892–897, 2007.\n. A. Cabral-Prieto, I. Garcıa-Sosa, J. Jime ´nez-Becerril, R. Lo´pez-Castan˜ares, O. Olea-Cardoso, “Positron annihilation in Co2+-exchanged zeolite LTA”, Microporous and Mesoporous Materials 93, 199–204, 2006.\n. Zs. Kajcsos, L. Liszkay, et. al, “Positron and positronium in porous media: zeolites”, Radiation Physics and Chemistry 68, 363–368, 2003.\n. S.A. Bradly et al, “PASCA analysis of Pt – mordenite Al2O3 catalysts”, Catalysts Letters 47, 205 – 211, 1997.",{"VOID":387},"10.53747\u002Fjnst.v6i1.146","2023-05-12T03:09:11.714+00:00","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F146",[],{"url":389,"publisher":392,"properties":406},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":393,"slug":10,"properties":394,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":398,"manageAffiliations":399,"indexDatabases":400,"url":25,"thumbnailPath":26,"statistic":401,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":395,"title":396,"country":397},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":402,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":403,"totalCitation":51,"totalCitationByYear":404,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":405,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":407,"title":408,"volume":410},{"VOID":171},{"VI":409},"Tập 6 Số 1",{"VOID":411},"6",{"total":28,"publishYear":413,"statisticByYear":414},2016,{},"2016-03-30","DONE_ANALYZE_CITATION",[],{"id":419,"createTime":420,"updateTime":421,"relativeEntities":422,"slug":423,"properties":424,"entityType":97,"verifyStatus":19,"verifyTime":420,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":28,"primaryUrl":437,"fullTextUrl":20,"authors":438,"publicationType":101,"publisherRelationship":439,"citationCount":28,"citationInfo":461,"publishDate":464,"publishYear":462,"citationAnalyzeStatus":128,"lastCitationAnalyze":421,"indexDatabases":465,"openAccess":20,"references":20,"isForceReanalyzing":131},"294215c1-fa5d-4f77-a080-7f8aff632b54","2023-05-12T03:13:58.277+00:00","2026-07-28T12:12:21.581+00:00",[],"Design%20of%20a%20FPGA-based%20controller%20for%20power%20and%20period%20measurement%20in%20the%20start%20range%20of%20Dalat%20Nuclear%20Research%20Reactor",{"abstract":425,"title":427,"gsPaper":429,"keywords":431,"references":433,"doi":435},{"EN":426},"This paper introduces a new controller module based on a high-speed field-programmable gate array (FPGA) and digital signal processing (DSP) using moving average (MA) filters for calculation of the reactor power and period at the start range of the Dalat nuclear research reactor (DNRR). The reactor power is proportional to the neutron flux in the reactor core, and the reactor period is the time that the reactor power changes by a factor of 2.718. In the control and protection system (CPS) of the DNRR, the reactor power and period have been monitored by the 8-bit microprocessor controller named BPM-107R. There are two main functions of the BPM-107R controller including 1) measurement and determination of reactor power and period and 2) generation of warning and emergency protection signals by reactor power or\u002Fand by reactor period. Those discrete signals will access to the logical processing unit of the CPS to prohibit the upward movement of control rods or to shut down the reactor. The CPS has three BPM-107R controllers corresponding to three independent neutron flux measurement equipment (NFME) channels working by logic voting “2 out-of 3”. Each NFME channel was designed for detection of neutron flux density in the full range from 1×100 to 1.2×1010 n\u002Fcm2 ×s, which is divided into two sub-ranges named start range (SR) and working range (WR). The designed FPGA-based controller module was tested using simulated signals as well as signals from the CPS in comparison with the original controller BPM-107R. The experimental results show that the characteristics and functions of the two controllers are equivalent.",{"EN":428},"Design of a FPGA-based controller for power and period measurement in the start range of Dalat Nuclear Research Reactor",{"VOID":430},"6143819444346311035",{"EN":432},"Reactor period,reactor power,moving average filter,FPGA,DSP",{"VOID":434},". Complex of Equipment for Control and Protection System ASUZ-14R, Operating Manual RUNK.506319.004 RE-E, JSC SNIIP SYSTEMATOM, Chief Designer А. А. Zaikin, 2006.\n. Safety Analysis Report for the Dalat Nuclear Research Reactor, Dalat Nuclear Research Institute, Chief Editor Nguyen Nhi Dien, 2012.\n. Buzzetti S., Capou M., Guazzoni C. et al., “High-speed FPGA based pulse-height analyzer for high resolution x-ray spectroscopy”, IEEE Trans. Nucl. Sci. 52, pp. 854–860, 2005.\n. V. H. Hai, N. Q. Dao and M. Nomachi, “Cosmic ray angular distribution employing plastic scintillation detectors and flashADC\u002FFPGA-based readout systems”, Kerntechnik, 77, pp. 462–464, 2012.\n. Pham Dinh Khang, Nguyen Nhi Dien, Dang Lanh, Nguyen Xuan Hai, Pham Ngoc Tuan, Nguyen Duc Hoa, Nguyen An Son, “A design configuration of an FPGA-based coincident spectrometry system”, J. of Analytical Sciences, Methods and Instrumentation, 2164– 2745, Vol. 3, pp. 158–162, 2013.\n. E. P. Gytfopoulos and P.M. Coble, A digital nuclear reactor control system, 1960.\n. Huasheng Xiong, Duo Li, “Nuclear reactor doubling time calculation using FIR filter”, Energy Procedia, 39, pp. 3–11, 2013.\n. “Moving average” https:\u002F\u002Fen.wikipedia.org\u002Fwiki\u002FMoving_average\n. The Scientist and Engineer's Guide to Digital Signal Processing, by Steven W. Smith, Chapter 15 “Moving average filters” pp. 277– 284, https:\u002F\u002Fdspguide.com.\n. Complex of Equipment for Control and Protection System ASUZ-14R, Passport RUNK.506319.004 PS-E, JSC SNIIP SYSTEMATOM, Chief Designer А. А. Zaikin, 2006.",{"VOID":436},"10.53747\u002Fjnst.v10i3.7","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F7",[],{"url":437,"publisher":440,"properties":454},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":441,"slug":10,"properties":442,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":446,"manageAffiliations":447,"indexDatabases":448,"url":25,"thumbnailPath":26,"statistic":449,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":443,"title":444,"country":445},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":450,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":451,"totalCitation":51,"totalCitationByYear":452,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":453,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":455,"title":457,"volume":459},{"VOID":456},"3",{"VI":458},"Tập 10 Số 3",{"VOID":460},"10",{"total":28,"publishYear":462,"statisticByYear":463},2020,{},"2020-09-15",[],{"id":467,"createTime":468,"updateTime":469,"relativeEntities":470,"slug":471,"properties":472,"entityType":97,"verifyStatus":19,"verifyTime":468,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":485,"primaryUrl":486,"fullTextUrl":20,"authors":487,"publicationType":101,"publisherRelationship":488,"citationCount":28,"citationInfo":507,"publishDate":321,"publishYear":319,"citationAnalyzeStatus":128,"lastCitationAnalyze":469,"indexDatabases":509,"openAccess":20,"references":20,"isForceReanalyzing":131},"cfe3ade0-7255-4a23-8fd1-24439237218b","2023-05-12T03:25:41.886+00:00","2026-07-28T09:19:57.026+00:00",[],"Study%20the%20influences%20of%20the%20radionuclide%20depth%20distributions%20on%20the%20FEPE%20for%20the%20measurements%20of%20the%20soil%20activity%20using%20in%20situ%20HPGe%20gamma%20spectrometry",{"abstract":473,"title":475,"gsPaper":477,"keywords":479,"references":481,"doi":483},{"EN":474},"In this work, the influences of the soil densities and the radionuclide depth distributions (RDD) on the Full Energy Peak Efficiency (FEPE) calculation of the in-situ gamma ray spectrometer using the In Situ Object Counting Systems (ISOCS) software were studied. The data of the RDDs at the sites were investigated by using laboratory HPGe gamma spectrometer. Six different RDDs of 40K, 226Ra and 232Th were found at four studied sites with radionuclide deposition moving from surface to deeper positions. The results show that FEPE values vary strongly for the different RDDs, especially for the low gamma ray energies. Use of the uniform model for calculating FEPEs can result in noticeable errors from 29% to 101% for the realistic RDD of the exponential form (surfaceradionuclide deposition), negative variations from 14% to 30% for the realistic RDD of having a radionuclide deposition at the 30 cm depth, and negligible variations of less than 5 % for the realistic RDD of quasi uniform form in the range of gamma ray energies of interest.",{"EN":476},"Study the influences of the radionuclide depth distributions on the FEPE for the measurements of the soil activity using in situ HPGe gamma spectrometry",{"VOID":478},"14568472516014349521",{"EN":480},"HPGe gamma spetrometer,radionuclide depth distributions,full energy peak efficiency",{"VOID":482},"Alvarez, A, Corea, E, Navarro, N, Sancho, C.“Uranium determination in samples from decommissioning of nuclear facilities, related to the first stage of the nuclear fuel cycle”,Applied Radiation and Isotopes, 53, 355 – 359, 2000.\nTyler, A.N, Sanderson, D.C.W, Scott, E.M. “Estimating and accounting for 137Cs source burial through in situ gamma spectrometry in salt marsh environment”,Journal of Environmental Radioactivity, 33, 195 – 212, 1996.\nLi J, Li Y, Wang Y, Wu J. “Applicability of using in situ gamma ray spectrometry technique for 137Cs and 210Pbex inventories measurement in grassland environments”, Applied Radiation and Isotopes, 68, 1143 – 1149, 2010.\nLettner H, Andrasi A, Hubmer A.K, Lovranich E, Steger F, Zombori P. “In situ gamma spectrometry intercomparison exercise in Salzburg, Austria”,Nuclear Instruments and Methods in Physics, Research A 369, 547 – 551, 1996.\nFont S.H, Alvarez J.L. “Data quality objectives for surface soil cleanup operation using in situ gamma spectrometry for concentration measurements”,Health Physics 72 (2), 286 – 295, 1997.\nCanberra, Inc.“Nuclear Measurement Solutions for Safety, Security and the Environment – Technical Reference Manual V4.3, Model S573 ISOCS Calibration Software”, Canberra Industries Inc, 2012.\nCanberra, Inc. “Nuclear Measurement Solutions for Safety, Security and the Environment – Validation and Verification Manual, Model S573\u002FS574 ISOCS\u002FLabSOCS”, Canberra Industries Inc, 2002.\nCanberra, Inc. “Genie 2000 3.3. Customization Tools Manual”, Canberra Industries Inc, 2013.\nThummerer S, Jacob P. “Determination of depth distributions of natural radionuclides with in situ gamma ray spectrometry”,Nuclear Instruments and Methods in Physics Research A 416, 161 – 178, 1998.\nLaedermann J.P, ByrdeF, Murith C. “In situ Gamma ray Spectrometry: the Influence of Topography on the Accuracy of Activity Determination”,Journal of Environmental Radioactivity, 38 (1), 1 –16, 1998.",{"VOID":484},"10.53747\u002Fjnst.v7i2.108",6,"http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F108",[],{"url":486,"publisher":489,"properties":503},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":490,"slug":10,"properties":491,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":495,"manageAffiliations":496,"indexDatabases":497,"url":25,"thumbnailPath":26,"statistic":498,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":492,"title":493,"country":494},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":499,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":500,"totalCitation":51,"totalCitationByYear":501,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":502,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":504,"title":505,"volume":506},{"VOID":313},{"VI":315},{"VOID":317},{"total":28,"publishYear":319,"statisticByYear":508},{},[],{"id":511,"createTime":512,"updateTime":513,"relativeEntities":514,"slug":515,"properties":516,"entityType":97,"verifyStatus":19,"verifyTime":512,"verifyNote":98,"languages":20,"translateLanguages":20,"viewCount":151,"primaryUrl":529,"fullTextUrl":20,"authors":530,"publicationType":101,"publisherRelationship":531,"citationCount":28,"citationInfo":551,"publishDate":553,"publishYear":176,"citationAnalyzeStatus":366,"lastCitationAnalyze":554,"indexDatabases":555,"openAccess":20,"references":20,"isForceReanalyzing":131},"9c3790e7-996c-4f9e-a539-cc776856735a","2023-05-12T03:25:16.781+00:00","2026-07-27T06:40:30.149+00:00",[],"Research%20on%20degradation%20of%20silk%20fibroin%20by%20combination%20of%20electron%20beam%20irradiation%20and%20hydrothermal%20processing",{"abstract":517,"title":519,"gsPaper":521,"keywords":523,"references":525,"doi":527},{"EN":518},"Silk fibers and silk proteins have been demonstrated to be useful to apply in the textile industry, biomedical, cosmetics, pharmaceuticals. In this study, the effects of electron beam (EB) irradiation combined with hydrothermal processing to the solubility of silk fibroin and generation of soluble silk protein were investigated. The solubility of unirradiated and irradiated fibroin samples were greater than 80 % when hydrothermal degradation was performed in the sodium hydroxide solution at an appropriate concentration of 0.05 M. However, the solubility of irradiated fibroin was greater than that of unirradiated sample. The soluble silk protein content increased from 0.462 to 0.653 mg protein\u002Fmg silk fibbroin when irradiation doses increased from 0 to 200 kGy, respectively. The molecular weight of protein was determined by SDS-PAGE method. The characteristics of silk protein were confirmed by scanning electron microscope (SEM), Fourier transform infrared spectroscopy (FT-IR), thermogravimetric analysis (TGA) and X-ray diffraction (XRD).",{"EN":520},"Research on degradation of silk fibroin by combination of electron beam irradiation and hydrothermal processing",{"VOID":522},"17615190405972607553",{"EN":524},"Silk fibroin,silk protein,electron beam irradiation",{"VOID":526},"EB. Byun et al., “Enhancement of anti-tumor activity of gamma-irradiated silk ﬁbroin via immunomodulatory effects”, Chemico-Biological Interactions, 186: 90-95, (2010).\nJ. Kundu et al., “Silk fibroin nanoparticles for cellular uptake and control release”, International Journal of Pharmaceutics, 388: 242-250, (2010).\nA. Sionkowska et al., “The inﬂuence of UV radiation on silk ﬁbroin”, Polymer Degradation and Stability, 96: 523-528, (2011).\nR. Rajkhowa et al., “Ultra-fine silk powder preparation through rotary and ball milling”, Powder Technology, 185: 87-95, (2008).\nGH. Altman et al., “Silk-based biomaterials”, Biomaterials, 24: 401-416, (2003).\nA. Kojthung et al., “Effects of gamma radiation on biodegradation of Bombyx mori silk ﬁbroin”, International Biodeterioration & Biodegradation, 62: 487-490, (2008).\nQ. Lu et al., “Degradation Mechanism and Control of Silk Fibroin”, Biomacromolecules, 12: 1080-1086, (2011).\nK. Kang et al., “Behavior of hydrothermal decomposition of silk fibroin to amino acids in near-critical water”, Korean Journal of Chemical Engineering, 21 (3): 654-659, (2004).\nY. Suzuki et al., “Enzymatic degradation of fibroin fiber by a fibroinolytic enzyme of Brevibacillus thermoruber YAS-1”, Journal of Bioscience and Bioengineering, 108 (3): 211-215, (2009).\nRL. Horan et al., “In vitro degradation of silk ﬁbroin”, Biomaterials, 26: 3385-3393, (2005).\nW. Lamoolphak et al., “Hydrothermal production and characterization of protein and amino acids from silk waste”, Bioresource Technology, 99: 7678-7685, (2008).\nH. Takeshita et al., “Production of fine powder from silk by radiation”, Macromolecular Materials and Engineering, 283 (1): 126-131, (2000).\nH. Yamada et al., “Preparation of undegraded native molecular fibroin solution from silkworm cocoons”, Materials Science and Engineering, C 14: 41-46, (2001).\nOH. Lowry et al., “Protein measurement with the folin phenol reagent”, Journal of Biological Chemistry, 193(1): 265-275, (1951).\nS. Halabhavi et al., “Interaction of 8 MeV Electron Beam with P31 Bombyx mori Silk Fibers”, Materials Sciences and Application, 2: 827-833, (2011).\nGM. Nogueira et al., “Preparation and characterization of ethanol-treated silk ﬁbroin dense membranes for biomaterials application using waste silk ﬁbers as raw material”, Bioresource Technology, 101: 8446-8451, (2010).",{"VOID":528},"10.53747\u002Fjnst.v4i2.227","http:\u002F\u002Fjnst.vn\u002Findex.php\u002Fnst\u002Farticle\u002Fview\u002F227",[],{"url":529,"publisher":532,"properties":546},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":533,"slug":10,"properties":534,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":538,"manageAffiliations":539,"indexDatabases":540,"url":25,"thumbnailPath":26,"statistic":541,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":535,"title":536,"country":537},{"VOID":13},{"EN":15,"VI":15},{"VOID":17},[],[],[],{"impactFactor":28,"impactFactorByYear":542,"i10Index":38,"i10IndexLast5Year":28,"totalPublication":39,"totalPublicationByYear":543,"totalCitation":51,"totalCitationByYear":544,"totalCitationPerPublication":60,"totalCitationPerPublicationByYear":545,"hindexLast5Year":73,"hindex":73},{"2013":30,"2015":31,"2016":32,"2017":33,"2018":33,"2019":34,"2020":35,"2021":36,"2022":37,"2023":36,"2024":35},{"2011":41,"2012":42,"2013":43,"2014":44,"2015":45,"2016":45,"2017":46,"2018":47,"2019":41,"2020":48,"2021":49,"2022":47,"2023":47,"2024":50},{"2011":53,"2012":54,"2013":38,"2014":55,"2015":46,"2016":43,"2017":56,"2018":57,"2019":58,"2020":59,"2021":50,"2022":53},{"2011":62,"2012":63,"2013":64,"2014":65,"2015":66,"2016":67,"2017":68,"2018":69,"2019":70,"2020":71,"2021":71,"2022":72},{"issue":547,"title":548,"volume":550},{"VOID":313},{"VI":549},"Tập 4 Số 2",{"VOID":119},{"total":28,"publishYear":176,"statisticByYear":552},{},"2014-06-30","2026-07-27T06:40:30.148+00:00",[]]