[{"data":1,"prerenderedAt":-1},["ShallowReactive",2],{"_public_publisher_byId_36e34cf6-1fed-4c7f-8024-8906691443ab":3,"_public_publication_all{\"sortAscending\":false,\"sortField\":\"updateTime\",\"page\":0,\"size\":10,\"facet\":true,\"searchKey\":\"publisherId:36e34cf6-1fed-4c7f-8024-8906691443ab,\"}":88},{"code":4,"data":5,"meta":18},"SUCCESS",{"id":6,"createTime":7,"updateTime":8,"relativeEntities":9,"slug":10,"properties":11,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":20,"manageAffiliations":21,"indexDatabases":22,"url":18,"thumbnailPath":18,"statistic":23,"gsStatistic":18,"type":18,"analyzePriority":18},"36e34cf6-1fed-4c7f-8024-8906691443ab","2024-04-19T03:14:46.583+00:00","2025-02-09T00:19:44.646+00:00",[],"Science-China-Press-Co-Ltd-",{"issn":12,"title":14},{"VOID":13},"1001-6538",{"EN":15},"Science China Press., Co. Ltd.","PUBLISHER","PENDING",null,0,[],[],[],{"impactFactor":19,"impactFactorByYear":24,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":30,"totalCitation":49,"totalCitationByYear":50,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":70,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},0.26,0.34,0.29,450,6949,{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},400,578,345,346,366,310,354,315,330,308,351,347,393,402,430,496,448,414,15623,{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},251,322,425,575,829,932,707,739,790,692,1310,241,633,1513,1519,1687,1487,971,2.25,{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},0.63,0.56,1.23,1.66,2.27,3.01,2,2.35,2.39,3.73,0.69,1.61,3.76,3.53,3.4,3.32,54,{"meta":89,"data":91},{"total":90},"6978",[92,268,339,415,540,667,860,975,1060,1132],{"id":93,"createTime":94,"updateTime":95,"relativeEntities":96,"slug":97,"properties":98,"entityType":108,"verifyStatus":109,"verifyTime":110,"verifyNote":111,"languages":18,"translateLanguages":112,"viewCount":19,"primaryUrl":114,"fullTextUrl":18,"authors":115,"publicationType":244,"publisherRelationship":245,"citationCount":18,"citationInfo":18,"publishDate":264,"publishYear":265,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":266,"openAccess":18,"references":18,"isForceReanalyzing":267},"31cd9746-1cbe-4d25-b35f-980f0c5933cb","2024-02-14T14:30:06.456+00:00","2026-09-10T05:14:57.817+00:00",[],"Granitic-magmatism-related-to-early-Paleozoic-continental-collision-in-North-Qinling",{"abstract":99,"title":101,"references":104,"doi":106},{"EN":100},"Zircon U-Pb dating of early Paleozoic granitoids in North Qinling yields three age peaks of ∼500, ∼452 and ∼420 Ma. They can be temporally correlated with high-pressure to ultrahigh-pressure metamorphism at ca. 500 Ma, retrograde granulite-facies metamorphisms at ca. 450 Ma and amphibolite-facies metamorphism at ca. 420 Ma, respectively. The first episode of granitic magmatism is considered to have resulted from continental collision, whereas the second and third episodes of magmatism are attributed to crustal uplifting. Combined with the regional geological setting and new results from high-pressure and ultrahigh-pressure metamorphic rocks, the ca. 500 Ma magmatism is interpreted as the result of partial melting of sedimentary rocks in accretionary wedge between the south Qinling microcontinent and the north Qinling belt including the southern margin of the North China Craton. The ca. 450 Ma intensive magmatism is ascribed to dehydration melting of deeply subducted continental crust at thickened conditions in response to slab breakoff, and the final magmatism in ca. 420 Ma is interpreted as the product of partial melting during the tectonic transition from contraction to extension.",{"EN":102,"VI":103},"Granitic magmatism related to early Paleozoic continental collision in North Qinling","Hoạt động magma granit liên quan đến va chạm lục địa đầu Cổ sinh ở Bắc Tần Lĩnh",{"VOID":105},"Zhang G W, Meng Q R, Lai S C. Tectonics and structure of the Qinling Orogenic belt. Sci China Ser D-Earth Sci, 1995, 38: 1379–1394\nZhang G W, Zhang B R, Yuan X C, et al. Qinling Orogenic Belt and Continental Dynamics (in Chinese). Beijing: Science Press, 2001. 1–855\nMeng Q R, Zhang G W. Geological framework and tectonic evolution of the Qinling orogen, Central China. Tectonophysics, 2000, 323: 183–196\nHu N G, Zhao D L, Xu B Q, et al. Discovery and significance of coesite eclogite in Northern Qinling Mountain (in Chinese). Chin Sci Bull (Chin Ver), 1994, 24: 2013\nLin L, Zhou D W. Discovery and first study of high-pressure basic granulite from Songshugou, East Qinling (in Chinese). Chin Sci Bull (Chin Ver), 1994, 39: 1599–1601\nLiu L, Zhou D W, Dong Y P, et al. High pressure metabasites and their retrograde metamorphic P-T-t path from Songshugou area, eastern Qinling Mountain (in Chinese). Acta Petrol Sin, 1995, 11: 127–136\nLiu L, Zhou D W, Wang Y, et al. Study and implication of the high-pressure felsic granulite in the Qinling complex of East Qinling. Sci China Ser D-Earth Sci, 1996, 39: 60–68\nYang J S, Xu Z Q, Pei X Z, et al. Discovery of Diamond in North Qinling: Evidence for a Giant UHPM Belt across Central China and Recgnition of Paleozoic and Mesozoic Dual Deep Subduction between North China and Yangtze Plates (in Chinese). Acta Geol Sin, 2002, 76: 484–495\nYang J S, Liu F L, Wu C L, et al. Two ultrahigh pressure metamorphic events recognized in the central orogenic belt of China: Evidence from the U-Pb Dating of Coesite-bearing Zircons (in Chinese). Acta Geol Sin, 2003, 77: 463–477\nChen D L, Liu L, Sun Y, et al. LA-ICP-MS zircon U-Pb dating for high-pressure basic granulite from North Qinling and its geological significant (in Chinese). Chin Sci Bull (Chin Ver), 2004, 49: 2296–2304\nChen D L, Liu L. New data on the chronology of eclogite and associated rock from Guanpo Area, North Qinling orogeny and its constraint on nature of North Qinling HP-UHP eclogite terrane (in Chinese). Earth Sci Front, 2011, 18:158–168\nZhang J X, Yu S Y, Meng F C. Ployphase Early Paleozoic metamorphism in the northern Qinling orogenic belt (in Chinese). Acta Petrol Sin, 2011, 27: 1179–1190\nWang H, Wu Y B, Gao S, et al. Eclogite origin and timings in the North Qinling terrane, and their bearing on the amalgamation of the South and North China Blocks. J Metamorph Geol, 2011, 29: 1019–1031\nCheng H, Zhang C, Vervoort J D, et al. Geochronology of the transition of eclogite to amphibolite facies metamorphism in the North Qinling orogen of central China. Lithos, 2011, 125: 969–983\nCheng H, Zhang C, Vervoort J D, et al. Timing of eclogite facies metamorphism in the North Qinling by U-Pb and Lu-Hf geochronology. Lithos, 2012, 136–139: 46–59\nLiu L, Liao, X Y, Zhang C L, et al. Multi-matemorphic timings of HP-UHP rocks in the North Qinling and their geological implications (in Chinese). Acta Petrol Sin, 2013, 29: 1634–1656\nZheng Y F. Metamorphic chemical geodynamics in continental subduction zones. Chem Geol, 2012, 328: 5–48\nZheng Y F, Zhang L F, Liu L, et al. progress in the study of continental deep subduction and ultrahigh pressure metamorphism (in Chinese). Bull Miner Petrol Geochem, 2013, 32: 135–158\nZheng Y F. A perspective view on ultrahigh-pressure metamorphism and continental collision in the Dabie-Sulu orogenic belt. Chin Sci Bull, 2008, 53: 3081–3104\nZhao Z F, Zheng Y F, Wei C S, et al. Origin of postcollisional magmatic rocks in the Dabie orogen: Implications for crust-mantle interaction and crustal architecture. Lithos, 2011, 126: 99–114\nShi Y, Yu J, Santosh M. Tectonic evolution of the Qinling orogenic belt, Central China: New evidence from geochemical, zircon U-Pb geochronology and Hf isotopes. Precambrian Res, 2013, 231: 19–60\nLei M. Petrogenesis of granites and their relation to tectonic evolution of orogen in the east part of Qinling orogenic belt (in Chinese). Dissertation for the Doctoral Degree. Beijing: Chinese Academy of Geological Scineces, 2010. 46–81\nLu S N, Chen Z H, Xiang Z Q, et al. U-Pb ages of detrital zircons from the para-metamorphic rocks of the Qinling Group and their geological significance (in Chinese). Earth Sci Front, 2006, 13: 303–310\nWang T, Zhang Z Q, Wang Y B, et al. Neoproterozoic collisional deformationg in the core of the Qinling orogen and its age: Constrained by zircon SHRIMP dating of strongly deformed syn-collisional granites and weakly deformed granitic veins (in Chinese). Acta Geol Sin, 2005, 79: 220–231\nDong Y P, Zhang G W, Hauzenberger C, et al. Palaeozoic tectonics and evolutionary history of the Qinling orogen: Evidence from geochemistry and geochronology of ophiolite and related volcanic rocks. Lithos, 2011, 122: 39–56\nWang T, Wang X X, Tian W, et al. North Qinling Paleozoic granite associations and their variation in space and time: Implications for orogenic processes in the orogens of Central China. Sci China Ser D-Earth Sci, 2009, 52: 1359–1384\nLu S N, Li H K, Chen Z H, et al. Meso-Neoproterozoic Geological Evolution of the Qinling and Its Respondence to Rodinia Event (in Chinese). Beijing: Geological Publishing House, 2003. 1–194\nLiu J F, Sun Y, Sun W D. LA-ICP-MS zircon dating from the Lajimiao mafic complex in the Qinling orogenic belt (in Chinese). Acta Petrol Sin, 2009, 25: 320–330\nLiu J F, Sun Y, Li H Y, et al. LA-ICP-MS zircon dating of Sifangtai mafic-ultramafic complex in the North Qinling orogenic belt (in Chinese). Acta Petrol Miner, 2012, 31: 524–530\nRatschbacher L, Hacker B R, Calvert A, et al. Tectonics of the Qinling (Central China): Tectonostratigraphy, geochronology, and deformation history. Tectonophysics, 2003, 366: 1–53\nGao S, Zhang B R, Gu X M, et al. Silurian-Devonian provenance changes of South Qinling basins: Implications for accretion of the Yangtze (South China) to the North China cratons. Tectonophysics, 1995, 250: 183–197\nWu Y B, Zheng Y F. Tectonic evolution of a composite collision orogen: An overview on the Qinling-Tongbai-Hong’an-Dabie-Sulu orogenic belt in central China. Gond Res, 2013, 23: 1402–1428\nDong Y P, Zhang G W, Neubauer F, et al. Tectonic evolution of the Qinling orogen, China: Review and synthesis. J Asian Earth Sci, 2011, 41: 213–237\nLi H K, Lu S N, Chen Z H, et al. Zircon U-Pb geochronology of rift-type volcanic rocks of the Yaolinghe Group in the South Qinling orogen (in Chinese). Geol Bull Chin, 2003, 22: 775–781\nLing W L, Ren B F, Duan R C, et al. Timing of the Wudangshan, Yaolinghe volcanic sequences and mafic sills in South Qinling: U-Pb zircon geochronology and tectonic implication. Chin Sci Bull, 2008, 53: 2193–2206\nXiao L, Zhang H F, Ni P Z, et al. LA-ICP-MS U-Pb zircon geochronology of early Neoproterozoic mafic-intermediate intrusions from NW margin of the Yangtze Block, South China: Implication for tectonic evolution. Precambrian Res, 2007, 54: 221–235\nZhao J H, Zhou M F, Zheng J P, et al. Neoproterozoic crustal growth and reworking of the Northwestern Yangtze Block: Constraints from the Xixiang dioritic intrusion, South China. Lithos, 2010, 120: 439–452",{"VOID":107},"10.1007\u002Fs11434-013-6064-z","PUBLICATION","VERIFIED","2025-02-23T21:03:59.480+00:00","Auto Verify",[113],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11434-013-6064-z",[116,132,146,161,177,200,223],{"id":117,"sortIndex":19,"researcher":18,"roles":118,"affiliations":120,"properties":129,"displayName":131,"givenName":18,"familyName":18},"13ae59eb-7e74-4a79-891a-28a708055df2",[119],"AUTHOR",[121],{"id":122,"sortIndex":19,"affiliation":123,"properties":18},"001418e3-940e-47c8-a15e-502ec7cf1deb",{"id":122,"createTime":18,"updateTime":18,"relativeEntities":124,"slug":18,"properties":125,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":128,"statistic":18},[],{"title":126},{"VI":127},"State Key Laboratory of Continental Dynamics\u002FDepartment of Geology, Northwest University, Xi’an, China",[],{"title":130},{"VI":131},"ChengLi Zhang",{"id":133,"sortIndex":134,"researcher":18,"roles":135,"affiliations":136,"properties":143,"displayName":145,"givenName":18,"familyName":18},"d6c0b7d5-fb48-4a6d-a92c-3a3db70eaa42",1,[119],[137],{"id":122,"sortIndex":19,"affiliation":138,"properties":18},{"id":122,"createTime":18,"updateTime":18,"relativeEntities":139,"slug":18,"properties":140,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":142,"statistic":18},[],{"title":141},{"VI":127},[],{"title":144},{"VI":145},"Liang Liu",{"id":147,"sortIndex":77,"researcher":18,"roles":148,"affiliations":149,"properties":158,"displayName":160,"givenName":18,"familyName":18},"4ae92f5f-2f0c-41a5-b6b3-cd3ef02dbeeb",[119],[150],{"id":151,"sortIndex":19,"affiliation":152,"properties":18},"61847736-875a-4dcf-81f5-6b5272a69626",{"id":151,"createTime":18,"updateTime":18,"relativeEntities":153,"slug":18,"properties":154,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":157,"statistic":18},[],{"title":155},{"VI":156},"Institute of Geology, Chinese Academy of Geological Sciences, Beijing, China",[],{"title":159},{"VI":160},"Tao Wang",{"id":162,"sortIndex":163,"researcher":18,"roles":164,"affiliations":165,"properties":174,"displayName":176,"givenName":18,"familyName":18},"e47a824a-72d7-4e1a-9b19-c6e5aee85a4e",3,[119],[166],{"id":167,"sortIndex":19,"affiliation":168,"properties":18},"d5bbc481-3f0a-4445-8c0e-8f9212eb4d63",{"id":167,"createTime":18,"updateTime":18,"relativeEntities":169,"slug":18,"properties":170,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":173,"statistic":18},[],{"title":171},{"VI":172},"Institute of Mineral Resources, Chinese Academy of Geological Sciences, Beijing, China",[],{"title":175},{"VI":176},"XiaoXia Wang",{"id":178,"sortIndex":179,"researcher":18,"roles":180,"affiliations":181,"properties":197,"displayName":199,"givenName":18,"familyName":18},"0eab275b-8301-4d5f-b958-aeba3ad109c0",4,[119],[182,188],{"id":122,"sortIndex":19,"affiliation":183,"properties":18},{"id":122,"createTime":18,"updateTime":18,"relativeEntities":184,"slug":18,"properties":185,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":187,"statistic":18},[],{"title":186},{"VI":127},[],{"id":189,"sortIndex":134,"affiliation":190,"properties":196},"ece0e745-b5a3-4a26-86b8-de948eae3f9a",{"id":189,"createTime":18,"updateTime":18,"relativeEntities":191,"slug":18,"properties":192,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":195,"statistic":18},[],{"title":193},{"VI":194},"Northwest Geological Institute of Nonferrous Metals, Xi’an, China",[],{},{"title":198},{"VI":199},"Lei Li",{"id":201,"sortIndex":202,"researcher":18,"roles":203,"affiliations":204,"properties":220,"displayName":222,"givenName":18,"familyName":18},"01e8d24b-f16a-45f4-86bd-f41b7efa8ad4",5,[119],[205,211],{"id":122,"sortIndex":19,"affiliation":206,"properties":18},{"id":122,"createTime":18,"updateTime":18,"relativeEntities":207,"slug":18,"properties":208,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":210,"statistic":18},[],{"title":209},{"VI":127},[],{"id":212,"sortIndex":134,"affiliation":213,"properties":219},"26ad87d3-f90f-41c7-9747-e5136ab4c1b7",{"id":212,"createTime":18,"updateTime":18,"relativeEntities":214,"slug":18,"properties":215,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":218,"statistic":18},[],{"title":216},{"VI":217},"No. 203 Research Institute of Nuclear Industry, Xianyang, China",[],{},{"title":221},{"VI":222},"QiFu Gong",{"id":224,"sortIndex":225,"researcher":18,"roles":226,"affiliations":227,"properties":241,"displayName":243,"givenName":18,"familyName":18},"2b9ea087-c2fa-4c67-8ce8-3cd592a75d9c",6,[119],[228,234],{"id":122,"sortIndex":19,"affiliation":229,"properties":18},{"id":122,"createTime":18,"updateTime":18,"relativeEntities":230,"slug":18,"properties":231,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":233,"statistic":18},[],{"title":232},{"VI":127},[],{"id":189,"sortIndex":134,"affiliation":235,"properties":240},{"id":189,"createTime":18,"updateTime":18,"relativeEntities":236,"slug":18,"properties":237,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":239,"statistic":18},[],{"title":238},{"VI":194},[],{},{"title":242},{"VI":243},"XiaoFei Li","ARTICLE",{"url":114,"publisher":246,"properties":259},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":247,"slug":10,"properties":248,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":251,"manageAffiliations":252,"indexDatabases":253,"url":18,"thumbnailPath":18,"statistic":254,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":249,"title":250},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":255,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":256,"totalCitation":49,"totalCitationByYear":257,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":258,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":260,"volume":262},{"VOID":261},"4405-4410",{"VOID":263},"58","2013-08-24",2013,[],false,{"id":269,"createTime":270,"updateTime":271,"relativeEntities":272,"slug":273,"properties":274,"entityType":108,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":284,"viewCount":19,"primaryUrl":285,"fullTextUrl":18,"authors":286,"publicationType":244,"publisherRelationship":317,"citationCount":18,"citationInfo":18,"publishDate":336,"publishYear":337,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":338,"openAccess":18,"references":18,"isForceReanalyzing":267},"70082a34-f3fe-4dea-be0a-9872b0bf60ce","2023-12-07T07:20:54.216+00:00","2026-09-08T08:15:25.189+00:00",[],"Contact-mechanics-of-pad-of-grasshopper-Insecta-ORTHOPTERA-by-finite-element-methods",{"abstract":275,"title":277,"references":280,"doi":282},{"EN":276},"During locomotion, insect feet endure dramatic impact force and generate adhesive force which is controlled by the architecture of the foot. The patterns of smooth attachment pads in insect feet vary widely among insect orders and families. The functional significance of the micro-structure and geometric design of insect feet remains largely unknown. In this study, we developed a two-dimensional finite element model of a grasshopper’s attachment pad. Realistic geometric microstructure and material properties are applied in the biomechanical analysis of the structural behavior during contact. Here we use scanning electronic microscopy to study the microstructure of the grasshopper’s pad, and then use the finite element method to calculate the deformation vector fields, contact stiffness, contact area, function of the airbag and strain fields during the contact process. The results reveal that the geometric design and material topology of a grasshopper’s pads are very effective in reducing contact stiffness, increasing contact area and generating high friction force during the contact procedure. The rod-containing structure supporting the soft exocuticle makes the pads highly adaptive to various surfaces and decreases the stress inside the pads.",{"EN":278,"VI":279},"Contact mechanics of pad of grasshopper (Insecta: ORTHOPTERA) by finite element methods","Cơ học tiếp xúc của đệm chân châu chấu (Insecta: ORTHOPTERA) bằng phương pháp phần tử hữu hạn",{"VOID":281},"Dai Z D, Yu M, Ji A H, et al. Friction design of animal’s driving pads and its bionics (in Chinese). Chin Mech Eng, 2005, 16(16): 1454–1457\nFlannigan W C. Finite element modeling of arthropod exoskeleton. Thesis of master of sciences, Case Western Reserve University, May 1998\nCheung J T M, Zhang M, Leung A K L, et al. Three-dimensional finite element analysis of the foot during standing-a material sensitivity study. J Biomech, 2005, 38 (5): 1045–1054\nCheung J T M, Zhang M. A 3-dimensional finite element model of the human foot and ankle for insole design. Archi Phy Med Reha, 2005, 86(2): 353–358\nCavanagh P R. Plantar soft tissue thickness during ground contact in walking. J Biomech, 1999, 32(6): 623–628\nDong X, Fan Y B, Zhang M, et al. Studies on Biomechanics of Human Foot: a Review. J Biom Engi, 2002, 19(1): 148–153\nGefen A, Megido-Ravid M, Itzchak Y, et al. Biomechanical analysis of the three-dimensional foot structure during gait: A basic tool for clinical applications. J Biom Engi-Trans ASME, 2000, 122(6): 630–639\nGefen A, Linder-Ganz E. Diffusion of ulcers in the diabetic foot is promoted by stiffening of plantar muscular tissue under excessive bone compression (in German). Orthopade, 2004, 33(9): 999–1012\nRichmond B G, Wright B W, Grosse L, et al. Finite element analysis in functional morphology. Anatomical record part A, 2005, 283A(2): 259–274\nHanft J T, Hogan H A, Hood D M. Three-dimensional finite element modeling of the horse’s foot. In: Proceedings of the 1995 fourteenth Biomedical Engineering Conference, 7–9, Apr. 1995, Shreveport, LA, USA, 59–62\nKesel A B, Philippi U, Nachtigall W. Biomechanical aspects of the insect wing: an analysis using the finite element method. Comp Biol Medi, 1998, 28: 423–437\nHerbert R C, Young P G., Smith C W, et al. The hind wing of the desert locust (Schistocerca gregaria Forskal) III. A finite element analysis of a deployable structure. J Exp Biol, 2000, 203: 2945–2955\nWootton R J, Evans K E, Herbert R, et al. The hind wing of the desert locust (Schistocerca gregaria Forskal) I. Functional morphology and mode of operation. J Exp Biol, 2000, 203: 2921–2931\nDickinson M H, Farley C T, Full R J, et al. How animals move: an integrative view. Science, 2000, 288: 100–106\nNishikawa M, Kumagai T. 1990. Foot structure for legged walking robot. EP 0433091A2\nBerges P, Bowling A. Impact Forces in Legged Robot Locomotion. In: Proceedings of the 2005 IEEE International Conference on Robotics and Automation Barcelona, Spain, April 2005, 3745–3751\nGorb N S, Jiao Y K, Scherge M. Ultrastructureal architecture and mechanical properties of attachment pads in Tettigonia viridissima (Orthoptera Tettigoniidae). J Compa Phys, 2000, 186: 821–831\nJiao Y K, Gorb N S, Scherge M. Adhesion measured on the attachment pads of Tettigonia viridissima (Orthoptera Insecta). J Exp Biol, 2000, 203, 1887–1895\nGoodwyn P P, Perssadko A, Schwart H, et al. Material structure, stiffness, and adhesion: why attachment pads of the grasshopper (Tettigonia viridissima) adhere more strongly than those of the grasshopper (Grasshoppera migratoia) (Insecta: Orthoptera). J Comp Physiol, 2006, 192: 1233–1243\nGorb N S, Scherge M. Biological microtribology: anisotropy in frictional forces of orthopteran attachment pads reflects the ultrastructure of a highly deformable materials, Proc. R. Soc. Lond, B 2000, 267: 1–7\nStork N E. Experimental analysis of adhesive of Chrysolina polita (Chrysomelidae, Coleptera) on a variety of surfaces. J Exp Biol, 1980, 88: 583–597\nDixon A F G., Croghan P C, Gowing R P. The mechanism by which aphids adhere to smooth surface. J Exp Biol, 1999, 52: 243–253\nAutumn K, Liang Y A, Hsieh S T, et al. Adhesive force of a single gecko foot-hair. Nature, 2000, 405: 681–685\nAutumn K, Sitti M, Liang Y A, et al. Evidence for van der Waals adhesion in gecko setae. Proc Natl Acad Sci USA, 2002, 99, 12252–12256\nGao H J, Wang X, Yao H M, et al. Mechanics of hierarchical adhesion structures of geckos. Mech Mater, 2005, 37: 275–285\nGillett J D, Wigglesworth V B. The climbing organ of an insect, Rhodnius prolixus (Hemiptera, Reduviidae). Proc R Sco Lond B 1932, 111: 364–376\nMaderson P F A. Keratinized epidermal derivatives as an aid to climbing in gekkonid lizards. Nature, 1964, 203: 780–781\nGabriel J M. The development of the locust jumping mechanism. II energy storage and muscle mechanics. J Exp Biol, 1985, 118: 327–340\nSanter R D, Yamawaki Y, Rind F C, et al. Motor activity and trajectory control during escape jumping in the locust Locusta migratoria. J Comp Physiol A, 2005, 191: 965–975",{"VOID":283},"10.1007\u002Fs11434-009-0088-4",[113],"http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11434-009-0088-4",[287,302],{"id":288,"sortIndex":19,"researcher":18,"roles":289,"affiliations":290,"properties":299,"displayName":301,"givenName":18,"familyName":18},"00141a3a-edb5-47c5-9622-6550906c389f",[119],[291],{"id":292,"sortIndex":19,"affiliation":293,"properties":18},"d85ef2b3-c6ec-4ad5-9643-8d969b856904",{"id":292,"createTime":18,"updateTime":18,"relativeEntities":294,"slug":18,"properties":295,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":298,"statistic":18},[],{"title":296},{"VI":297},"Institute of Bio-inspired Structure and Surface Engineering, Nanjing University of Aeronautics and Astronautics, Nanjing, Jiangsu, China",[],{"title":300},{"VI":301},"ZhenDong Dai",{"id":303,"sortIndex":134,"researcher":18,"roles":304,"affiliations":305,"properties":314,"displayName":316,"givenName":18,"familyName":18},"bd4e31cf-d2ce-44dd-9dbb-7695b74e0cfd",[119],[306],{"id":307,"sortIndex":19,"affiliation":308,"properties":18},"8f509c88-8043-443b-b02a-9f21ac070026",{"id":307,"createTime":18,"updateTime":18,"relativeEntities":309,"slug":18,"properties":310,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":313,"statistic":18},[],{"title":311},{"VI":312},"Evolutionary Biomaterials Group, Max-Planck-Institute for Metals Research, Stuttgart, Germany",[],{"title":315},{"VI":316},"Stanislav Gorb",{"url":285,"publisher":318,"properties":331},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":319,"slug":10,"properties":320,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":323,"manageAffiliations":324,"indexDatabases":325,"url":18,"thumbnailPath":18,"statistic":326,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":321,"title":322},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":327,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":328,"totalCitation":49,"totalCitationByYear":329,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":330,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":332,"volume":334},{"VOID":333},"549-555",{"VOID":335},"54","2009-02-12",2009,[],{"id":340,"createTime":341,"updateTime":342,"relativeEntities":343,"slug":344,"properties":345,"entityType":108,"verifyStatus":109,"verifyTime":355,"verifyNote":111,"languages":18,"translateLanguages":356,"viewCount":19,"primaryUrl":357,"fullTextUrl":18,"authors":358,"publicationType":244,"publisherRelationship":396,"citationCount":18,"citationInfo":18,"publishDate":336,"publishYear":337,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":414,"openAccess":18,"references":18,"isForceReanalyzing":267},"40132641-ad0a-49e9-937e-a152fba20291","2023-12-26T01:57:31.741+00:00","2026-09-06T13:13:19.046+00:00",[],"Effect-of-anionic-nonionic-mixed-surfactant-on-ryegrass-uptake-of-phenanthrene-and-pyrene-from-water",{"abstract":346,"title":348,"references":351,"doi":353},{"EN":347},"The effect of anionic-nonionic mixed surfactant (SDBS-TX100) on the uptake of phenanthrene and pyrene by ryegrass in a hydroponic system was studied, and the influence factors including the compositions and concentrations of mixed surfactants and the compounds properties were also discussed. The results showed that SDBS-TX100 mixtures with certain compositions and concentrations could enhance the uptake of phenanthrene and pyrene by ryegrass, which could be attributed to the improved uptake capacity of ryegrass roots for phenanthrene and pyrene. SDBS-TX100 can enhance the uptake of phenanthrene and pyrene by ryegrass in a wider range of surfactant concentrations (0−0.8 mmol\u002FL) in comparison with corresponding single surfactants, and the maximal contents of phenanthrene and pyrene in ryegrass roots were obtained with the concentrations of SDBS-TX100 around the corresponding critical micelle concentrations. The uptake of phenanthrene and pyrene by ryegrass increased with the increasing mole fraction of SDBS in mixed surfactant solutions, and SDBS-TX100 mixture with a mole ratio of SDBS to TX100 at 9:1 had the greatest capacity in enhancing the uptake of phenanthrene and pyrene, at which the corresponding maximal concentrations of phenanthrene and pyrene in ryegrass roots were 216 and 8.16 times those without surfactants, respectively. Results from this study indicate that the anionic-nonionic mixed surfactants (SDBS-TX100) would be a preferred selection for the application of surfactant-enhanced phytoremediation technology to contaminated soils.",{"EN":349,"VI":350},"Effect of anionic-nonionic mixed surfactant on ryegrass uptake of phenanthrene and pyrene from water","Ảnh hưởng của chất hoạt động bề mặt hỗn hợp anion-không ion lên sự hấp thu phenanthrene và pyrene từ nước của cỏ ryegrass",{"VOID":352},"Joëlle F, Corinne P G, Pascal E B, et al. Soil-to-root transfer and translocation of polycyclic aromatic hydrocarbons by vegetables grown on industrial contaminated soils. J Environ Qual, 2002, 31(5): 1649–1656\nCai Q Y, Mo C H, Wu Q T. The status of soil contamination by semi-volatile organic chemicals (SVOCs) in China: a review. Sci Total Environ, 2008, 389(2–3): 209–224\nElizabeth P S. 2005. Phytoremediation. Plant Biol, 56: 15–39\nCollins C, Fryer M, Grosso A. Plant uptake of non-ionic organic chemicals. Environ Sci Technol, 2006, 40(1): 45–52\nSimonich S, Hites R A. Organic pollutant accumulation in vegetation. Environ Sci Technol, 1995, 29(12): 2905–2914\nJiao X C, Xu F L, Dawson R, et al. Adsorption and absorption of polycyclic aromatic hydrocarbons to rice roots. Environ Pollut, 2006, 148(1): 1–6\nGao Y Z, Ling W T, Zhu L Z, et al. Surfactant-enhanced Phytoremediation of soils contaminated with hydrophobic organic contaminants: potential and assessment. Pedosphere, 2007, 17(4): 409–418\nWu N Y, Zhang S Z, Huang H L, et al. DDT uptake by arbuscular mycorrhizal alfalfa and depletion in soil as influenced by soil application of a non-ionic surfactant. Environ Pollut, 2007, doi: 10.1016\u002Fj.envpol.2007.04.005\nBruce J B, Chen H, Zhang W J, et al. Sorption of nonionic surfactants on sediment materials. Environ Sci Technol, 1997, 31(6): 1735–1741\nWestall J C, Chen H, Zhang W, et al. Adsorption of linear alkylbenzene sulfonates on sediment materials. Environ Sci Technol. 1999, 33(18): 3110–3118\nDeshpande, S, Shiau B J, Wade D, et al. Surfactant selection for enhancing ex situ soil washing. Water Res, 1999, 33(2): 351–360\nZhou W J, Zhu L Z. Enhanced desorption of phenanthrene from contaminated soil using anionic\u002Fnonionic mixed surfactant. Environ Pollut, 2007, 147(2): 350–357\nYang K, Zhu L Z, Xing B S. Enhanced soil washing of phenanthrene by mixed solutions of TX100 and SDBS. Environ Sci Technol, 2006, 40(13): 4274–4280\nZhao B W, Zhu L Z, Li W, et al. Solubilization and biodegradation of phenanthrene in mixed anionic-nonionic surfactant solutions. Chemosphere, 2005, 58(1): 33–40\nYu H S, Zhu L Z, Zhou W J. Enhanced desorption and biodegradation of phenanthrene in soil-water systems with the presence of anionic-nonionic mixed surfactants. J Hazard Mater, 2007, 142(1–2): 354–361\nYaws C L. Chemical properties handbook. New York: McGraw. Hill Book Co. 1999. 340–389\nLi H, Sheng G, Sheng W, et al. Uptake of Trifluralin and Lindane from water by Ryegrass. Chemosphere, 2002, 48(3): 335–341\nChapin F S, Moilanen L, KieUand K. Preferential use of organic nitrogen for growth by non-mycorrhizal arctic sedge. Nature, 1993, 361: 150–153\nSimonich S L, Hites R A. Vegetation-atmosphere partitioning of polycyclic aromatic hydrocarbons. Environ Sci Technol, 1994, 28(5): 939–943\nMcCutcheon S C, Schnoor J L. Overview of phytotransformation and control of wastes. In: McCutcheon, S.C., Schnoor, J.L. (Eds.), Phytoremediation: Transformation and Control of Contaminants. Wiley, New York, 2003. 3–58\nChiou C T, Sheng G, Manes M. A partition-limited model for the plant uptake of organic contaminants from soil and water. Environ Sci Technol, 2001, 35(7): 1437–1444\nLin H, Tao S, Zuo Q, et al. Uptake of polycyclic aromatic hydrocarbons by maize plants. Environ Pollut, 2007, 148(2): 614–619\nWild E, Dent J, Thomas G O, et al. Direct observation of organic contaminant uptake, storage, and metabolism within plant roots. Environ Sci Technol, 2005, 39(10): 3695–3702\nSchnoor J L, Licht L A, Mccutcheon S C, et al. Phytoremediation of organic and nutrient contaminants. Environ Sci Technol, 1995, 29(7): 318–323\nGao Y Z, Ling W T, Wong M H. Plant-accelerated dissipation of phenanthrene and pyrene from water in the presence of a nonionic-surfactant. Chemosphere, 2006, 63(9): 1560–1567\nShen X Y, Sun Y L, Ma Z Y, et al. Effects of mixed surfactants on the volatilization of naphthalene from aqueous solutions. J Hazard Mater, 2007, 140(1–2): 187–193\nWild S R, Jones K C. Polynuclear aromatic hydrocarbon uptake by carrots grown in sludge-amended soil. J Environ Qual, 1992, 21(2): 217–225\nGao Y Z, Zhu L Z, Hu J C, et al. Effects of Tween 80 on plant uptake of phenanthrene and pyrene from water (in Chinese). Acta Scientiae Circumstantiae, 2004, 24(4): 713–718\nLi Y, Ayfer Y. Effects of a non-ionic surfactant (Tween 80) on the mineralization, metabolism and uptake of phenanthrene in wheat-solution lava microcosm. Chemosphere, 2001, 45(1): 67–75\nLuan S, Ni J S. Effects of surfactants and Ca2+ on membrane perme-ability of Barley roots (in Chinese). Acta Phytophysiologica Sinica, 1987, 13(2): 168–173\nMoritz K, Martin J B. Effect of Triton X-100 concentration on NAA penetration through the isolated tomato fruit cuticular membrane. Crop Protection, 2004, 23(2): 141–146",{"VOID":354},"10.1007\u002Fs11434-009-0037-2","2025-01-01T13:40:50.256+00:00",[113],"https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11434-009-0037-2",[359,374],{"id":360,"sortIndex":19,"researcher":18,"roles":361,"affiliations":362,"properties":371,"displayName":373,"givenName":18,"familyName":18},"ba26b462-621a-4692-8bfe-474356912ea7",[119],[363],{"id":364,"sortIndex":19,"affiliation":365,"properties":18},"5ff79d98-95c6-4275-8087-40b3a030a0ac",{"id":364,"createTime":18,"updateTime":18,"relativeEntities":366,"slug":18,"properties":367,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":370,"statistic":18},[],{"title":368},{"EN":369},"Department of Environmental Science, Zhejiang University, Hangzhou, China",[],{"title":372},{"VI":373},"Lu Sun",{"id":375,"sortIndex":134,"researcher":18,"roles":376,"affiliations":377,"properties":393,"displayName":395,"givenName":18,"familyName":18},"2108a7e6-774e-4b22-b442-4a33d1408f2f",[119],[378,384],{"id":364,"sortIndex":19,"affiliation":379,"properties":18},{"id":364,"createTime":18,"updateTime":18,"relativeEntities":380,"slug":18,"properties":381,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":383,"statistic":18},[],{"title":382},{"EN":369},[],{"id":385,"sortIndex":134,"affiliation":386,"properties":392},"deefded0-546f-4b96-a18f-1ffc936bca0b",{"id":385,"createTime":18,"updateTime":18,"relativeEntities":387,"slug":18,"properties":388,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":391,"statistic":18},[],{"title":389},{"VI":390},"Key Laboratory of Environmental Remediation and Ecosystem Health, Ministry of Education, Hangzhou, China",[],{},{"title":394},{"VI":395},"LiZhong Zhu",{"url":357,"publisher":397,"properties":410},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":398,"slug":10,"properties":399,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":402,"manageAffiliations":403,"indexDatabases":404,"url":18,"thumbnailPath":18,"statistic":405,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":400,"title":401},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":406,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":407,"totalCitation":49,"totalCitationByYear":408,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":409,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":411,"volume":413},{"VOID":412},"387-393",{"VOID":335},[],{"id":416,"createTime":417,"updateTime":418,"relativeEntities":419,"slug":420,"properties":421,"entityType":108,"verifyStatus":109,"verifyTime":432,"verifyNote":111,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":433,"fullTextUrl":18,"authors":434,"publicationType":244,"publisherRelationship":516,"citationCount":534,"citationInfo":535,"publishDate":336,"publishYear":337,"citationAnalyzeStatus":537,"lastCitationAnalyze":538,"indexDatabases":539,"openAccess":18,"references":18,"isForceReanalyzing":267},"c7279373-b48e-4a13-810e-74c34a719fb8","2023-12-19T20:35:57.333+00:00","2026-08-19T11:26:12.823+00:00",[],"Angular-observation-of-joints-of-geckos-moving-on-horizontal-and-vertical-surfaces",{"abstract":422,"title":424,"gsPaper":426,"references":428,"doi":430},{"EN":423},"Because of their outstanding climbing and motor coordination ability, geckos have provided the basis for a peculiar bionic model leading to the development of a gecko-robot. A three-dimensional locomotion observation system was constructed to measure angular orientations of joints while geckos trotted (337.1 mm\u002Fs) and walked (66.7 mm\u002Fs) on horizontal surfaces, and trotted (241.5mm\u002Fs) and walked (30.6mm\u002Fs) on vertical surfaces. Moving over horizontal surfaces, the joints rotated more quickly the greater the speed, and the swinging scope of forelimbs stayed nearly at 59 degrees when swinging forward, but extended from 72 degrees to 79.2 degrees when swinging backward. The lifting angle of forelimbs was always positive to keep the center of mass close to the surface when moving up vertical surfaces, the scope of the forward swinging forelimbs forward extended from 33.7 degrees to 36.7 degrees with increasing speed, while the scope of backward swinging forelimbs remained almost the same at 87.5 degrees. Alternative gaits had little effect on the swing angle of hindlimbs of the geckos moving on both horizontal and vertical surfaces.",{"EN":425},"Angular observation of joints of geckos moving on horizontal and vertical surfaces",{"VOID":427},"[\"774510436697407023\"]",{"VOID":429},"Manter J T. The dynamics of quadrupedal walking. J Exp Biol. 1938, 15: 522–540\nAerts P, Damme R V, Elsacker L V, et al. Spatio-temporal gait characteristics of the hind-limb cycles during voluntary bipedal and quadrupedal walking in bonobos (Pan paniscus). Am J Phys Anthropol. 2000, 111: 503–517\nPeck A J, Turvey M T. Coordination dynamics of the bipedal galloping pattern. J Motor Behav. 1997, 29(4): 311–325\nDamme R V, Aerts P, Vanhooybonck B. Variation in morphology gait characteristics and speed of locomotion in two populations of lizards. Biol J Linn Soc. 1998, 63: 409–427\nVerstappen M, Aerts P. Terrestrial locomotion in the black-billed magpie. I. Spatio-temporal gait characteristics. Motor Control. 2000, 4: 150–164\nCartmill M. Functional vertebrate morphology. Cambridge, MA: Harvard University Press, 1985\nZaaf A, Herrel A, Aerts P, et al. Morphology and morphometrics of the appendicular musculature in geckoes with different locomotor habits (Lepidosauria). Zoomorphology. 1999, 119: 9–22\nMoermond T C. Habitat constraints on the behavior, morphology, and community structure of anolis lizards. Ecology. 1979, 60: 152–164\nLosos J B. The evolution of form and function: Morphology and locomotor performance in West Indian Anolis lizards. Evolution. 1990, 44: 1189–1203\nSinervo B, Losos J B. Walking the tight rope: arboreal sprint performance among Sceloporus occidentalis lizard population. Ecology. 1991, 72: 1225–1233\nDamme R V, Aerts P, Vanhooydonck B. No trade-off between sprinting and climbing in two populations of the Lizard Podarcis hispanica. Biol J Linn Soc. 1997, 60: 493–503\nMiles D B, Fitzgerald L A, Snell H L. Morphological correlates of locomotor performance in hatchling Amblyrhynchus cristatus. Oecologia. 1995, 103: 261–264\nRewcastle S C. Stance and gait in tetrapods: an evolutionary scenario. Symp Zool Soc Lond. 1981, 48: 239–267\nBauer A M, Russell A P, Powell G L. The evolution of locomotor morphology in Rhoptropus (Squamata: Gekkonidae): functional and phylogenetic considerations. Afr J Herpetol. 1996, 45: 8–30\nPeterson J A. The locomotion of Chamaeleo (Reptilia: Sauria) with particular reference to the forelimb. Symp Zool Soc Lond. 1984, 202: 1–42\nLosos J B, Walton B M, Bennett A F. Trade-offs between sprinting and clinging ability in Kenyan Chameleons. Funct Ecol. 1993, 7: 281–286\nDickinson M H, Farley C T, Full R J, et al. How animals move: an Integrative view. Science. 2000, 288: 100–106\nRussell A P. A contribution to the functional analysis of the foot of the tokay, Gekko gecko (Reptilia: Gekkonidae). J Zool. 1975, 176: 437–476\nAutumn K, Liang T A, Flsieh S T, et al. Adhesive force of a single gecko foot-flair. Nature. 2000, 405: 681–685\nKim T W, Bhushan B. Adhesion analysis of multi-level hierarchical attachment system contacting with a rough surface. J Adhes Sci Technol. 2007, 21: 1–20\nBharat B, Peressadko A G, Tae-Wan K. Adhesion analysis of two-level hierarchical morphology in natural attachment systems for smart adhesion. J Adhes Sci Technol. 2006, 20: 1475–1491\nAutumn K, Peattie A. Mechanisms of adhesion in Geckos. Soc Integ Comp Biol. 2002, 42: 1081–1090\nArzt E, Gorb S, Spolenak R. From micro to nano contacts in biological attachment devices. Proc Natl Acad Sci. 2003, 100: 10603–10606\nHuber G, Mantz H, Spolenak R, et al. Evidence for capillarity contributions to gecko adhesion from single spatula nanomechanical measurements. Proc Natl Acad Sci, 2005, 102: 16293–16296\nBhushan B, Sayer R A. Gecko Feet: natural attachment systems for smart adhesion. in: Bhushan B, Tomitori M, Fuchs H. Applied scanning probe methods VII. Heidelberg: Springer Berlin Heidelberg, 2007. 41–76\nGuo C, Dai Z D, Ji A H, et al. Study on the regulation and control mechanism of the Gecko’s toes (in Chinese). Chin J Biomed Eng. 2006, 25(1): 110–113\nDai Z D, Sun J R. Locomotion of gecko and the research progress of imitation (in Chinese). Prog Nat Sci. 2005, 16(5): 519–523\nBergmann P, Irschick D J. Effects of temperature on maximum acceleration, deceleration and power output during vertical running in geckos. J Exp Biol. 2006, 209: 1404–1412\nBergmann P J, Irschick D J. Effects of temperature on maximum clinging ability in a diurnal gecko: evidence for a passive clinging mechanism? J Exp Zool. 2005, 303A: 785–791\nIrschick D J, Vanhooydonck B, Herrel A, et al. Effects of loading and size on maximum power output and gait characteristics in geckos. J Exp Biol, 2003, 206: 3923–3934\nZaaf A, Damme R V, Herrel A, et al. Spatio-temporal gait characteristics of level and vertical locomotion in a ground-dwelling and a climbing gecko. J Exp Biol, 2001, 204: 1233–1246\nAutumn K, Hsieh S T, Dudek D M, et al. Dynamics of geckos running vertically. J Exp Biol. 2006, 209: 260–272\nWang W B, Guo C, Sun J R, et al. A stereotaxic method and apparatus for the Gekko gecko (in Chinese). Chin Sci Bull. 2007, 52: 2524–2528\nKristiaan D A, Peter A, Dirk D C, et al. Segment and joint angles of hind limb during bipedal and quadrupedal walking of the Bonobo (Pan paniscus). 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W L. Some key geological issues on oil and gas exploration in the northern deepwater area of the South China Sea (in Chinese). Acta Geol Sin, 2009, 83: 1059–1064",{"doi":815},"10.1111\u002Fj.1755-6724.2009.00017.x",{"id":18,"text":817,"url":18,"identifiers":818},"Gong Z S. The Major Oil and Gas Fields of China Offshore (in Chinese). Beijing: Petroleum Industry Press, 1997. 1–5",{},{"id":18,"text":820,"url":18,"identifiers":821},"Taylor B, Hayes D E. Origin and history of the South China Sea basin. In: Hayes D E, ed. The tectonic and geological evolution of southeast Asian seas and islands: Part 2. AGU Geophys Monogr, 1983, 27: 23–56",{"doi":822},"10.1029\u002FGM027p0023",{"id":18,"text":824,"url":18,"identifiers":825},"Northrup C J, Royden L H, Burchfiel B C. Motion of the Pacific plate relative to Eurasia and its potential relation to Cenozoic extension along the eastern margin of Eurasia. Geology, 1995, 23: 719–722",{"doi":826},"10.1130\u002F0091-7613(1995)023\u003C0719:MOTPPR>2.3.CO;2",{"id":18,"text":828,"url":18,"identifiers":829},"Gong Z S, Li S T, Xie T J, et al. Continental Margin Basin Analysis and Hydrocarbon Accumulation of the Northern South China Sea (in Chinese). Beijing: Science Press, 1997. 63–74",{},{"id":18,"text":831,"url":18,"identifiers":832},"Zhu W L, Zhang G C, Gao L. Geological characteristics and exploration objectives of hydrocarbons in the northern continental margin basin of South China Sea (in Chinese). Acta Petrol Sin, 2008, 29: 1–9",{"doi":833},"10.1111\u002Fj.1745-7254.2008.00742.x",{"id":18,"text":835,"url":18,"identifiers":836},"Zhu W L. Gas geology of northern South China Sea continental margin basins (in Chinese). Beijing: Petroleum Industry Press, 2007. 71–112",{},{"id":18,"text":838,"url":18,"identifiers":839},"Mi L J, Yuan Y S, Zhang G C, et al. Characteristics and genesis of geothermal field in deep-water area of the northern South China Sea (in Chinese). Acta Petrol Sin, 2009, 30: 27–32",{},{"id":18,"text":841,"url":18,"identifiers":842},"VAN Aarssen B G K, Cox H C, Hoogendoorn P, et al. A cadinene biopolymer in fossil and extant dammar resins as a source for cadinanes and bicadinanes in crude oils from southeast Asia. Geochim Cosmochim Acta, 1990, 54: 3021–3031",{"doi":843},"10.1016\u002F0016-7037(90)90119-6",{"id":18,"text":845,"url":18,"identifiers":846},"Li Y C, Deng Y H, Zhang G C, et al. Tertiary marine source rocks in the northern South China Sea (in Chinese). Acta Petrol Sin, 2011, 32: 219–225",{},{"id":18,"text":848,"url":18,"identifiers":849},"Zhu W L. Paleolimnology and Source Rock Studies of Cenozoic Hydrocarbon-bearing Offshore Basins in China (in Chinese). Beijing: Geological Publishing House, 2009. 90–94",{},{"id":18,"text":851,"url":18,"identifiers":852},"Chen C M, Shi H S, Xu S C, et al. Formation Conditions of Oil and Gas Reservoir in Tertiary in the Eastern Pearl River Mouth Basin (in Chinese). Beijing: Science Press, 2003",{},{"id":18,"text":854,"url":18,"identifiers":855},"Pang X, Chen C M, Peng D J, et al. The Pearl River Deep-water Fan System and Petroleum in South China Sea (in Chinese). Beijing: Science Press, 2007",{},{"id":18,"text":857,"url":18,"identifiers":858},"Wang Y M, Xu Q, Li D, et al. Late Miocene Red River submarine fan, northwestern South China Sea. Chin Sci Bull, 2011, 56: 1488–1494",{"doi":859},"10.1007\u002Fs11434-011-4441-z",{"id":861,"createTime":862,"updateTime":863,"relativeEntities":864,"slug":865,"properties":866,"entityType":108,"verifyStatus":109,"verifyTime":877,"verifyNote":111,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":878,"fullTextUrl":18,"authors":879,"publicationType":244,"publisherRelationship":949,"citationCount":968,"citationInfo":969,"publishDate":973,"publishYear":970,"citationAnalyzeStatus":537,"lastCitationAnalyze":863,"indexDatabases":974,"openAccess":18,"references":18,"isForceReanalyzing":267},"03e69460-182e-425f-80f9-3d605664fa58","2024-01-15T04:38:55.350+00:00","2026-07-27T23:18:24.853+00:00",[],"Fluxes-of-CO2-N2O-and-CH4-from-a-typical-temperate-grassland-in-Inner-Mongolia-and-its-daily-variation",{"abstract":867,"title":869,"gsPaper":871,"references":873,"doi":875},{"EN":868},"Using a dark enclosed chamber technique, the fluxes of CO2, N2O and CH4 from nature and disturbed grassland were measured on the spot in Inner Mongolian Temperate Grassland along the annual rainfall gradient section ranging from 450 to 200 mm. The results showed that the measured mean fluxes of CO2, N2O and CH4 were (1 180.4 ± 308.7), (0.010 ± 0.004) and (−0.039 ± 0.016) mg · m−2\u002Fh, respectively. The decrease of the fluxes of CO2, N2O and CH4 follows with that of annual rainfall gradient in the measurement area. Human activities, such as grazing and reclamation are also critical factors to affect the fluxes of these gases from grassland. Daily continuous measurement of CO2, N2O and CH4 fluxes showed a strong diurnal variation with higher emission in the daytime. A good relationship between the fluxes of CO2, N2O, CH4 and temperature was exposed in this study.",{"EN":870},"Fluxes of CO2, N2O and CH4 from a typical temperate grassland in Inner Mongolia and its daily variation",{"VOID":872},"[\"12667237655569323964\"]",{"VOID":874},"Castro, M. S., Stedudler, P. A., Mellio, J. M., Factors controlling atmospheric methane consumption by temperate forest soils, Global Biogeochemistry Cycles, 1995, 9: 1.\nRaich, J. W., Potter, C., S., Global patterns of carbon dioxide emissions from soil, Global Boigeochemistry Cycles, 1995, 9: 23.\nRodhn, H. A., A comparison of the contribution of various gases to the greenhouse effect, Science, 1990, 248: 1217.\nLloyd, D., Microbial processes and the cycling of atmospheric trace gases, Trends in Ecology and Evolution, 1995, 10: 476.\nCrutzen, P. J., The influence of nitrogen oxide on the atmospheric ozone content, Quart. J. Roy. Meterol. Soc., 1970, 96: 7311.\nSanhueza, E., Dong, Y., Scharffe, D. et al., Carbon monoxide uptake by temperate forest soils: the effects of leaves and humus layers, Tellus, 1998, 50(B): 51.\nZhang, X. S., Gao, Q., Yang, D. A. et al., A gradient analysis and prediction on the Northeast China Transect (NECT) for global change study, Acta Botanic Sinica (in Chinese), 1997, 39(9): 785.\nDong, Y., Scharffe, D., Lobert, J. et al., Fluxes of CO2, CH4 and N2O from a temperate forest soils: the effect of leaves and humus layers, Tellus, 1998, 50(B): 243.\nBouwman, A. F., van der Hoek, K. W., Olivier, J. G. J., Uncertainties in the global source distribution of nitrous oxide, J. Geophys. Res., 1995, 100: 2785.\nVelthof, G. L., Jarvis, A., Stein, A. et al., Spatial variability of nitrous oxide fluxes in mown and grazed grasslands on a poorly drained clay soil, Soil Biol. Biochem., 1996, 28(9): 1215.\nYamulki, S., Harrison, R. M., Goulding, K. W. T. et al., N2O, NO and NO2 fluxes from a grassland: effect of soil pH, Soil Biol. Biochem., 1997, 29(8): 1199.\nDe Klein, C. A. M., van Logtestijn, R. S. P., Denitrification in grassland soils in the Netherlands in relation to irrigation, N-application rate, soil water content and soil temperature, Soil Biol. Biochem., 1996, 28(2): 231.",{"VOID":876},"10.1007\u002FBF02886219","2024-05-14T11:06:31.054+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF02886219",[880,895,908,921,936],{"id":881,"sortIndex":19,"researcher":18,"roles":882,"affiliations":883,"properties":892,"displayName":894,"givenName":18,"familyName":18},"b83aa28a-18de-45e0-b4d4-52b910ae18f9",[119],[884],{"id":885,"sortIndex":19,"affiliation":886,"properties":18},"a99a5004-5e74-45c4-8a50-155f46444a08",{"id":885,"createTime":18,"updateTime":18,"relativeEntities":887,"slug":18,"properties":888,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":891,"statistic":18},[],{"title":889},{"EN":890},"Institute of Geography, Chinese Academy of Sciences, Beijing, China.",[],{"title":893},{"VI":894},"Yunshe Dong",{"id":896,"sortIndex":134,"researcher":18,"roles":897,"affiliations":898,"properties":905,"displayName":907,"givenName":18,"familyName":18},"b3e292e4-e7e1-4c18-b6f4-71ddaa7a42cb",[119],[899],{"id":885,"sortIndex":19,"affiliation":900,"properties":18},{"id":885,"createTime":18,"updateTime":18,"relativeEntities":901,"slug":18,"properties":902,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":904,"statistic":18},[],{"title":903},{"EN":890},[],{"title":906},{"VI":907},"Shen Zhang",{"id":909,"sortIndex":77,"researcher":18,"roles":910,"affiliations":911,"properties":918,"displayName":920,"givenName":18,"familyName":18},"61937ecd-a28c-4c24-bb3c-6812a3fbc796",[119],[912],{"id":885,"sortIndex":19,"affiliation":913,"properties":18},{"id":885,"createTime":18,"updateTime":18,"relativeEntities":914,"slug":18,"properties":915,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":917,"statistic":18},[],{"title":916},{"EN":890},[],{"title":919},{"VI":920},"Yuchun Qi",{"id":922,"sortIndex":163,"researcher":18,"roles":923,"affiliations":924,"properties":933,"displayName":935,"givenName":18,"familyName":18},"d1e2076a-1f1e-47da-8235-78b2409f3d9a",[119],[925],{"id":926,"sortIndex":19,"affiliation":927,"properties":18},"174d3a52-270a-422f-b6c3-d6311e471149",{"id":926,"createTime":18,"updateTime":18,"relativeEntities":928,"slug":18,"properties":929,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":932,"statistic":18},[],{"title":930},{"VI":931},"Institute of Botany, Chinese Academy of Sciences, Beijing, China",[],{"title":934},{"VI":935},"Zuozhong Chen",{"id":937,"sortIndex":179,"researcher":18,"roles":938,"affiliations":939,"properties":946,"displayName":948,"givenName":18,"familyName":18},"2fe8ac7f-9cf0-4645-869a-dd8bb43152ee",[119],[940],{"id":885,"sortIndex":19,"affiliation":941,"properties":18},{"id":885,"createTime":18,"updateTime":18,"relativeEntities":942,"slug":18,"properties":943,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":945,"statistic":18},[],{"title":944},{"EN":890},[],{"title":947},{"VI":948},"Yuanbo Geng",{"url":878,"publisher":950,"properties":963},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":951,"slug":10,"properties":952,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":955,"manageAffiliations":956,"indexDatabases":957,"url":18,"thumbnailPath":18,"statistic":958,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":953,"title":954},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":959,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":960,"totalCitation":49,"totalCitationByYear":961,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":962,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":964,"volume":966},{"VOID":965},"1590-1594",{"VOID":967},"45",165,{"total":968,"publishYear":970,"statisticByYear":971},2000,{"2001":163,"2002":179,"2003":202,"2004":799,"2005":202,"2006":179,"2007":802,"2008":799,"2009":972,"2010":806,"2011":225,"2012":799,"2013":225,"2014":805,"2015":202,"2016":805,"2017":799,"2018":802,"2019":802,"2021":202,"2022":179,"2023":163,"2024":163,"2025":163,"2026":134},11,"2000-09-01",[],{"id":976,"createTime":977,"updateTime":978,"relativeEntities":979,"slug":980,"properties":981,"entityType":108,"verifyStatus":109,"verifyTime":992,"verifyNote":111,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":993,"fullTextUrl":18,"authors":994,"publicationType":244,"publisherRelationship":1038,"citationCount":18,"citationInfo":18,"publishDate":1057,"publishYear":1058,"citationAnalyzeStatus":17,"lastCitationAnalyze":978,"indexDatabases":1059,"openAccess":18,"references":18,"isForceReanalyzing":267},"6164ab64-4928-4133-8157-03170ad9875f","2024-02-16T00:26:58.291+00:00","2026-07-27T17:56:05.225+00:00",[],"Role-of-ran-GTPase-in-cell-cycle-regulation",{"abstract":982,"title":984,"gsPaper":986,"references":988,"doi":990},{"EN":983},"Ran, a member of the Ras GTPase superfamily, is a multifunctional protein and abundant in the nucleus. Many evidences suggest that Ran and its interacting proteins are involved in multiple aspects of the cell cycle regulation. So far it has been conformed that Ran and its interacting proteins control the nucleocytoplasmic transport, the nuclear envelope (NE) assembly, the DNA replication and the spindle assembly, although many details of the mechanisms are waiting for elucidation. It has also been implicated that Ran and its interacting proteins are involved in regulating the integrity of the nuclear structure, the mRNA transcription and splicing, and the RNA transport from the nucleus to the cytoplasm. In this review we mainly discuss the mechanisms by which Ran and its interacting proteins regulate NE assembly, DNA replication and spindle assembly.",{"EN":985},"Role of ran GTPase in cell cycle regulation",{"VOID":987},"[\"7688660274570134397\"]",{"VOID":989},"Bischoff, F. R., Ponstingl, H., Catalysis of guanine nucleotide exchange on Ran by the mitotic regulator RCC1, Nature, 1991, 354: 80–82.\nDrivas, G. T., Shih, A., Coutavas, E. et al., Characterization of four novel Ras-like genes expressed in a human teratocarcinoma cell line, Mol. Cell Biol., 1990, 10: 1793–1798.\nBischoff, F. R., Ponstingl, H., Mitotic regulator protein RCC1 is complexed with a nuclear Ras-related polypeptide, Proc. Natl. Acad. Sci. USA, 1991, 88: 10830–10834.\nClarke, P. R., Zhang, C., Ran GTPase: a master regulator of nuclear structure and function during the eukaryotic cell division cycle? Trends Cell Biol., 2001, 11: 366–371.\nMoore, J. D., The Ran-GTPase and cell-cycle control, Bioessays, 2001, 23: 77–85.\nBischoff, F. R., Klebe, C., Kretschmer, J. et al., RanGAP1 induces GTPase activity of nuclear Ras-related Ran, Proc. Natl. Acad. Sci. USA, 1994, 91: 2587–2591.\nKlebe, C., Bischoff, F. R., Ponstingl, H. et al., Interaction of the nuclear GTP-binding protein Ran with its regulatory proteins RCC1 and RanGAP1m, Biochemistry, 1995, 34: 639–647.\nBischoff, F. R., Krebber, H., Smirnova, E. et al., Co-activation of Ran GTPase and inhibition of GTP dissociation by Ran-GTP binding protein RanBP1, Embo. J., 1995, 14: 705–715.\nNicolas, F. J., Moore, W. J., Zhang, C. et al., XMog1, a nuclear ran-binding protein in Xenopus, is a functional homologue of Schizosaccharomyces pombe mog1p that co-operates with RanBP1 to control generation of Ran-GTP, J. Cell Sci., 2001, 114: 3013–3023.\nAebi, M., Clark, M. W., Vijayraghavan, U. et al., A yeast mutant, PRP20, altered in mRNA metabolism and maintenance of the nuclear structure, is defective in a gene homologous to the human gene RCC1 which is involved in the control of chromosome condensation, Mol. Gen. Genet., 1990, 224: 72–80.\nButler, G., Wolfe, K. H., Yeast homologue of mammalian Ran binding protein 1, Biochim. Biophys. Acta, 1994, 1219: 711–712.\nKalab, P., Weis, K., Heald, R., Visualization of a Ran-GTP gradient in interphase and mitotic Xenopus egg extracts, Science, 2002, 29: 2452–2456.\nGant, T. M., Wilson, K. L., Nuclear assembly, Annu. Rev. Cell Dev. Biol., 1997, 13: 669–695.\nZhang, C., Clarke, P. R., Chromatin-independent nuclear envelope assembly induced by Ran GTPase in Xenopus egg extracts, Science, 2000, 288: 1429–1432.\nHetzer, M., Bilbao-Cortes, D., Walther, T. C. et al., GTP hydrolysis by Ran is required for nuclear envelope assembly, Mol. Cell, 2000, 5: 1013–1024.\nVasu, S. K., Forbes, D. J., Nuclear pores and nuclear assembly, Curr. Opin. Cell Biol., 2001, 13: 363–375.\nZhang, C., Hughes, M., Clarke, P. R., Ran-GTP stabilities microtubule asters and inhibits nuclear assembly in Xenopus egg extracts, J. Cell Sci., 1999, 112: 2453–2461.\nZhang, C., Goldberg, M. W., Moore, W. J. et al., Concentration of Ran on chromatin induces decondensation, nuclear envelope formation and nuclear pore complex assembly, Eur. J. Cell Biol., 2002, 81: 623–633.\nZhang, C., Clarke, P. R., Roles of Ran-GTP and Ran-GDP in precursor vesicle recruitment and fusion during nuclear envelope assembly in a human cell-free system, Curr. Biol., 2001, 11: 208–212.\nZhang, C., Hutchins, J. R., Muhlhausser, P. et al., Role of importin-beta in the control of nuclear envelope assembly by Ran, Curr. Biol., 2002, 12: 498–502.\nAskjaer, P., Galy, V., Hannak, E. et al., Ran GTPase cycle and importins alpha and beta are essential for spindle formation and nuclear envelope assembly in living Caenorhabditis elegans embryos, Mol. Biol. Cell, 2002, 13: 4355–4370.\nRen, M., Drivas, G., D’Eustachio, P. et al., Ran\u002FTC4: a small nuclear GTP-binding protein that regulates DNA synthesis, J. Cell Biol., 1993, 120: 313–323.\nDasso, M., Seki, T., Azuma, Y. et al., A mutant form of the Ran\u002FTC4 protein disrupts nuclear function in Xenopus laevis egg extracts by inhibiting the RCC1 protein, a regulator of chromosome condensation, Embo. J., 1994, 13: 5732–5744.\nKornbluth, S., Dasso, M., Newport, J., Evidence for a dual role for TC4 protein in regulating nuclear structure and cell cycle progression, J. Cell Biol., 1994, 125: 705–719.\nHughes, M., Zhang, C., Avis, J. M. et al., The role of the Ran GTPase in nuclear assembly and DNA replication: characterisation of the effects of Ran mutants, J. Cell Sci., 1998, 111: 3017–3026.\nNicolas, F. J., Zhang, C., Hughes, M. et al., Xenopus Ran-binding protein 1: molecular interactions and effects on nuclear assembly in Xenopus egg extracts, J. Cell Sci., 1997, 110: 3019–3030.\nYamaguchi, R., Newport, J., A role for Ran-GTP and Crm1 in blocking re-replication, Cell, 2003, 113: 115–125.\nBlow, J. J., Hodgson, B., Replication licensing-defining the proliferative state? Trends Cell Biol., 2002, 12: 72–78.\nThommes, P., Kubota, Y., Takisawa, H. et al., The RLF-M component of the replication licensing system forms complexes containing all six MCM\u002FP1 polypeptides, Embo. J., 1997, 16: 3312–3319.\nCarazo-Salas, R. E., Guarguaglini, G., Gruss, O. J. et al., Generation of GTP-bound Ran by RCC1 is required for chromatin-induced mitotic spindle formation, Nature, 1999, 400: 178–181.\nKalab, P., Pu, R. T., Dasso, M., The Ran GTPase regulates mitotic spindle assembly, Curr. Biol., 1999, 9: 481–484.\nOhba, T., Nakamura, M., Nishitani, H. et al., Self-organization of microtubule asters induced in Xenopus egg extracts by GTP-bound Ran, Science, 1999, 284: 1356–1358.\nWilde, A., Zheng, Y., Stimulation of microtubule aster formation and spindle assembly by the small GTPase Ran, Science, 1999, 284: 1359–1362.\nWiese, C., Wilde, A., Moore, M. S. et al., Role of importin-beta in coupling Ran to downstream targets in microtubule assembly, Science, 2001, 291: 653–656.\nGruss, O. J., Carazo-Salas, R. E., Schatz, C. A. et al., Ran induces spindle assembly by reversing the inhibitory effect of importin alpha on TPX2 activity, Cell, 2001, 104: 83–93.\nNachury, M. V., Maresca, T. J., Salmon, W. C. et al., Importin beta is a mitotic target of the small GTPase Ran in spindle assembly, Cell, 2001, 104: 95–106.\nHarborth, J., Wang, J., Gueth-Hallonet, C. et al., Self assembly of NuMA: multiarm oligomers as structural units of a nuclear lattice, The EMBO Journal, 1999, 18: 1689–1700.\nGaglio, T., Saredi, A., Compton, D., NuMA is required for the organization of microtubules into aster-like mitotic arrays, J. Cell Biol., 1995, 131: 693–708.\nHaren, L., Merdes, A., Direct binding of NuMA to tubulin is mediated by a novel sequence motif in the tail domain that bundles and stabilizes microtubules, J. Cell Sci., 2002, 115: 1815–1824.\nWittmann, T., Boleti, H., Antony, C. et al., Localization of the kinesin-like protein Xklp2 to spindle poles requires a leucine zipper, a microtubule-associated protein, and dynein, J. Cell Biol., 1998, 143: 673–685.\nBamba, C., Bobinnec, Y., Fukuda, M. et al., The GTPase Ran regulates chromosome positioning and nuclear envelope assembly in vivo, Curr. Biol., 2002, 12: 503–507.\nKeryer, G., Di Fiore, B., Celati, C. et al., Part of Ran is associated with AKAP450 at the centrosome: involvement in microtubule-organizing activity, Mol. Biol. Cell, 2003, 14: 4260–4271.\nDi Fiore, B., Ciciarello, M., Mangiacasale, R. et al., Mammalian RanBP1 regulates centrosome cohesion during mitosis, J. Cell Sci., 2003, 116: 3399–3411.\nGuarguaglini, G., Renzi, L., D’Ottavio, F. et al., Regulated Ran-binding protein 1 activity is required for organization and function of the mitotic spindle in mammalian cells in vivo, Cell Growth Differ., 2000, 11: 455–465.\nKuersten, S., Ohno, M., Mattaj, I. W., Nucleo-cytoplasmic transport: Ran, beta and beyond, Trends Cell Biol., 2001, 11: 497–503.\nLi, H. Y., Cao, K., Zheng, Y., Ran in the spindle checkpoint: a new function for a versatile GTPase, Trends Cell Biol., 2003, 13: 553–557.\nUchida, S., Sekiguchi, T., Nishitani, H. et al., Premature chromosome condensation is induced by a point mutation in the hamster RCC1 gene, Mol. Cell Biol., 1990, 10: 577–584.\nBrunet, S., Polanski, Z., Verlhac, M. H. et al., Bipolar meiotic spindle formation without chromatin, Curr. Biol., 1998, 8: 1231–1234.",{"VOID":991},"10.1360\u002F03wc0541","2024-06-25T01:23:12.921+00:00","https:\u002F\u002Fwww.scichina.com\u002F2004\u002Fky\u002F0406\u002Fky0535.stm",[995,1010,1025],{"id":996,"sortIndex":19,"researcher":18,"roles":997,"affiliations":998,"properties":1007,"displayName":1009,"givenName":18,"familyName":18},"376cc06f-ce2f-4a22-aedb-a3303e64fecb",[119],[999],{"id":1000,"sortIndex":19,"affiliation":1001,"properties":18},"51af341f-73df-4f6b-a3e1-ed4ddd2b868f",{"id":1000,"createTime":18,"updateTime":18,"relativeEntities":1002,"slug":18,"properties":1003,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1006,"statistic":18},[],{"title":1004},{"VI":1005},"Department of Cell Biology and Genetics, National Key Laboratory of Biomembrane and Membrane Biotechnology, College of Life Sciences, Peking University, Beijing, China",[],{"title":1008},{"VI":1009},"Qing Jiang",{"id":1011,"sortIndex":134,"researcher":18,"roles":1012,"affiliations":1013,"properties":1020,"displayName":1022,"givenName":18,"familyName":18},"53fa99d9-9ec3-4b4e-9af6-5b520272b659",[119],[1014],{"id":1000,"sortIndex":19,"affiliation":1015,"properties":18},{"id":1000,"createTime":18,"updateTime":18,"relativeEntities":1016,"slug":18,"properties":1017,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1019,"statistic":18},[],{"title":1018},{"VI":1005},[],{"title":1021,"gsAuthor":1023},{"VI":1022},"Zhigang Lu",{"VOID":1024},"[\"ZSZQvToAAAAJ\"]",{"id":1026,"sortIndex":77,"researcher":18,"roles":1027,"affiliations":1028,"properties":1035,"displayName":1037,"givenName":18,"familyName":18},"94359fc7-2509-4ea4-83b6-e5f59895d3bb",[119],[1029],{"id":1000,"sortIndex":19,"affiliation":1030,"properties":18},{"id":1000,"createTime":18,"updateTime":18,"relativeEntities":1031,"slug":18,"properties":1032,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1034,"statistic":18},[],{"title":1033},{"VI":1005},[],{"title":1036},{"VI":1037},"Chuanmao Zhang",{"url":993,"publisher":1039,"properties":1052},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1040,"slug":10,"properties":1041,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1044,"manageAffiliations":1045,"indexDatabases":1046,"url":18,"thumbnailPath":18,"statistic":1047,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1042,"title":1043},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":1048,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":1049,"totalCitation":49,"totalCitationByYear":1050,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":1051,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":1053,"volume":1055},{"VOID":1054},"535-541",{"VOID":1056},"49","2004-03-01",2004,[],{"id":1061,"createTime":1062,"updateTime":1063,"relativeEntities":1064,"slug":1065,"properties":1066,"entityType":108,"verifyStatus":109,"verifyTime":1077,"verifyNote":111,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1078,"fullTextUrl":18,"authors":1079,"publicationType":244,"publisherRelationship":1108,"citationCount":805,"citationInfo":1126,"publishDate":1129,"publishYear":1127,"citationAnalyzeStatus":17,"lastCitationAnalyze":1130,"indexDatabases":1131,"openAccess":18,"references":18,"isForceReanalyzing":267},"0843c77a-e472-4eb6-80e3-989d7deb40c9","2024-01-10T02:17:37.177+00:00","2026-07-27T15:20:11.600+00:00",[],"Global-structures-of-the-DE3-tide",{"abstract":1067,"title":1069,"gsPaper":1071,"references":1073,"doi":1075},{"EN":1068},"The Hough mode decomposition (HMD) is used to investigate the global structures of the eastward propagating diurnal tide of zonal wavenumber 3 (DE3). The tide is delineated by using the SABER\u002FTIMED temperatures collected during 2002–2006. The HMD analysis results show that the DE3 tide is primarily dominated by two leading propagating Hough modes, i.e., (−3, 3) and (−3, 4) modes; the influences.of the other Hough modes including trapped modes can be neglected. Based upon the HMD analysis results, this paper first reported the maximum of the tidal activity in the MLT region. The results show that the DE3 tide exhibits annual unimodal distribution with the maximal amplitude occurring at 110 km in late summer (around July each year). Moreover, characteristic 2-year period variation is observed in the (−3, 3) Hough mode. And this type of inter-annual variation is further reflected in the tidal amplitude at 110 km height. For example, corresponding to the 2-year variation of the (−3, 3) mode, the DE3 tidal amplitude exhibits two substantially enhanced activities with maximal amplitude exceeding 12 K in 2002 and 2004, respectively. Moreover, current investigation results indicate that the influence of the second propagating Hough mode, (−3, 4) mode, is important, in particular at the height under 100 km, where the DE3 amplitudes exhibit antisymmetric distribution with respect to the equator. The (−3, 4) mode exhibits bimodal distribution over a yearly course, which dominates the DE3 tide in the lower mesosphere. For example, two maximal DE3 activities were observed in late-winter-to-earlyspring and late-autumn-to-early-winter, respectively. The first maximum is seen in the south of the equator, and the second maximum is in the north of it.",{"EN":1070},"Global structures of the DE3 tide",{"VOID":1072},"[\"9997916649365848216\"]",{"VOID":1074},"Talaat E R, Liberman R S. Nonmigrating diurnal tides in mesospheric and lower thermospheric winds and temperatures. J Atmos Sci, 1999 56, 4073–4087\nForbes J, Zhang X, Ward W, et al. Nonmigrating diurnal tides in the thermosphere. J Geophys Res, 2003 108, 1033, doi: 10.1029\u002F2002JA009262\nManson A, Meek C, Hagan M, et al. Global distributions of diurnal and semidiurnal tides: Observations from HRDI\u002FUARS of the MLT region and comparisons with gswm-02 (migrating, nonmigrating components). Ann Geophys, 2004: 221529\nForbes J, Wu D. Solar tides as revealed by measurements of mesosphere temperature by the MLS experiment on UARS. J Atmos Sci, 2006 63, 1776–1797\nChen Z Y, Lu D R. Seasonal variations of the MLT tides in 120°E Meridian (in Chinese). Chin J Geophys, 2007 50(3), 606–616\nWan W, Liu L, Pi X, et al. Wavenumber-4 patterns of the total electron content over the low latitude ionosphere. Geophys Res Lett, 2008 35, L12104, doi: 10.1029\u002F2008GL033755\nRussell J, Mlynczak M, Gordley L, et al. An overview of the saber experiment and preliminary calibration results. In: Allen M Larar, ed. Proceeding of SPIE. Vol. 3756. Denver: SPIE, 1999. 277–288\nMertens C J, Mlynczak M G, Lopez-Puertas M, et al. Retrieval of mesospheric and lower thermospheric temperature from measurements of CO2 15 μm Earth limb emission under non-LTE conditions. Geophys Res Lett, 2001 28(7), 1391–1394\nMertens C J, Schmidlin F J, Goldberg R A, et al. SABER observations of mesospheric temperatures and comparisons with falling sphere measurements taken during the 2002 summer MaCWAVE campaign. Geophys Res Lett, 2004, 31: L03105, doi: 10.1029\u002F2003GL018605\nSiskind D E, Coy L, Espy P. Observations of stratospheric warmings and mesospheric coolings by the TIMED SABER instrument. Geophys Res Lett, 2005 32, L09804, doi: 10.1029\u002F2005GL022399\nPalo S E, Forbes J M, Zhang X, et al. Planetary wave coupling from the stratosphere to the thermosphere during the 2002 Southern Hemisphere pre-stratwarm period. Geophys Res Lett, 2005 32, L23809, doi: 10.1029\u002F2005GL024298\nMcLandress C, Shepherd G, Solheim B-H. Satellite observations of thermospheric tides: Results from the wind imaging interferometer on UARS. J Geophys Res, 1996 101(D2), 4093–4114\nChapman S, Lindzen R. Atmospheric Tides: Thermal and Gravitational. New York: Gordon and Breach, 1970\nMcLandress C. Seasonal variability of the diurnal tide: Results from the Canadian middle atmosphere general circulation model. J Geophys Res, 1997 102, 29747–29763\nFlattery T W. Hough functions, NSF Technical Report No 21. 1967\nForbes J, Zhang X, Hagan M E. Simulation of diurnal tides due to tropospheric heating from the NCEP\u002FNCAR reanalysis Project. Geophys Res Lett, 2001 28, 3851–3854\nHagan M E, Forbes J M. Migrating and nonmigrating diurnal tides in the middle and upper atmosphere excited by tropospheric latent heat release. J Geophys Res, 2002 107, 4754, doi: 10.1029\u002F2001JD001236",{"VOID":1076},"10.1007\u002Fs11434-008-0585-x","2024-05-16T17:00:58.508+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11434-008-0585-x",[1080,1095],{"id":1081,"sortIndex":19,"researcher":18,"roles":1082,"affiliations":1083,"properties":1092,"displayName":1094,"givenName":18,"familyName":18},"a39cf277-5d40-49a7-94d0-62f63128d344",[119],[1084],{"id":1085,"sortIndex":19,"affiliation":1086,"properties":18},"4452ad87-8b3e-4458-91db-e76aababf110",{"id":1085,"createTime":18,"updateTime":18,"relativeEntities":1087,"slug":18,"properties":1088,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1091,"statistic":18},[],{"title":1089},{"VI":1090},"LAGEO, Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing, China",[],{"title":1093},{"VI":1094},"ZeYu Chen",{"id":1096,"sortIndex":134,"researcher":18,"roles":1097,"affiliations":1098,"properties":1105,"displayName":1107,"givenName":18,"familyName":18},"017a05d8-346f-4f0e-8222-1d49bdc8779b",[119],[1099],{"id":1085,"sortIndex":19,"affiliation":1100,"properties":18},{"id":1085,"createTime":18,"updateTime":18,"relativeEntities":1101,"slug":18,"properties":1102,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1104,"statistic":18},[],{"title":1103},{"VI":1090},[],{"title":1106},{"VI":1107},"DaRen Lu",{"url":1078,"publisher":1109,"properties":1122},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1110,"slug":10,"properties":1111,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1114,"manageAffiliations":1115,"indexDatabases":1116,"url":18,"thumbnailPath":18,"statistic":1117,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1112,"title":1113},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":1118,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":1119,"totalCitation":49,"totalCitationByYear":1120,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":1121,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":1123,"volume":1125},{"VOID":1124},"1073-1079",{"VOID":335},{"total":805,"publishYear":1127,"statisticByYear":1128},2008,{"2010":134,"2011":134,"2013":77,"2014":134,"2016":77,"2017":134,"2019":77,"2020":77},"2008-12-12","2026-07-27T15:20:11.599+00:00",[],{"id":1133,"createTime":1134,"updateTime":1135,"relativeEntities":1136,"slug":1137,"properties":1138,"entityType":108,"verifyStatus":109,"verifyTime":1149,"verifyNote":111,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1150,"fullTextUrl":18,"authors":1151,"publicationType":244,"publisherRelationship":1189,"citationCount":1208,"citationInfo":1209,"publishDate":1212,"publishYear":1127,"citationAnalyzeStatus":808,"lastCitationAnalyze":1213,"indexDatabases":1214,"openAccess":18,"references":18,"isForceReanalyzing":267},"db524ddd-d1eb-4514-8157-de8b48316d7e","2023-12-25T09:55:42.138+00:00","2026-07-26T14:32:19.135+00:00",[],"A-new-approach-to-the-generation-of-initial-perturbations-for-ensemble-prediction-Conditional-nonlinear-optimal-perturbation",{"abstract":1139,"title":1141,"gsPaper":1143,"references":1145,"doi":1147},{"EN":1140},"Conditional nonlinear optimal perturbation (CNOP), which is a natural extension of singular vector (SV) into the nonlinear regime, is applied to ensemble prediction study by using a quasi-geostrophic model under the perfect model assumption. SVs and CNOPs have been utilized to generate the initial perturbations for ensemble prediction experiments. The results are compared for forecast lengths of up to 14 d. It is found that the forecast skill of samples, in which the first SV is replaced by CNOP, is comparatively higher than that of samples composed of only SVs in the medium range (day 6-day 14). This conclusion is valid under the condition that analysis error is a kind of fast-growing ones regardless of its magnitude, whose nonlinear growth is faster than that of SV in the later part of the forecast. Furthermore, similarity index and empirical orthogonal function (EOF) analysis are performed to explain the above numerical results.",{"EN":1142},"A new approach to the generation of initial perturbations for ensemble prediction: Conditional nonlinear optimal perturbation",{"VOID":1144},"[\"8081647175808830324\"]",{"VOID":1146},"Cai M, Kalnay E, Toth Z. Bred vectors of the Zebiak-Cane model and their potential application to ENSO predictions. J Clim, 2003, 16(1): 40–56\nBuizza R, Houtekamer P L, Toth Z, et al. A comparison of the ECMWF, MSC, and NCEP global ensemble prediction systems. Mon Weather Rev, 2005, 133(5): 1076–1097\nHoutekamer P L, Derome J. Methods for ensemble prediction. Mon Weather Rev, 1995, 123(7): 2181–2196\nHamill T M, Snyder C, Morss R E. A comparison of probabilistic forecasts from bred, singular-vector, and perturbed observation ensembles. Mon Weather Rev, 2000, 128: 1835–1851\nToth Z, Kalnay E. Ensemble forecasting at NMC: The generation of perturbations. Bull Amer Meteorol Soc, 1993, 74(12): 2317–2330\nEhrendorfer M, Tribbia J J. Optimal prediction of forecast error covariances through singular vectors. J Atmos Sci, 1997, 54(2): 286–313\nGilmour I, Smith L A. Enlightenment in shadows. In: Kadtke J B, Bulsara A, eds. Applied Nonlinear Dynamics and Stochastic Systems Near the Millennium. New York: Springer-Verllag, 1997. 335–340\nMu M, Duan W S, Wang B. Conditional nonlinear optimal perturbation and its application. Nonlinear Processes Geophys, 2003, 10: 493–501\nTalagrand O, Courtier P. Variational assimilation of meteorological observations with the adjoint vorticity equation I: theory. Quart J Roy Meteor Soc, 1987, 113: 1311–1328\nAnderson J L. The impact of dynamical constraints on the selection of initial conditions for ensemble predictions: Low-order perfect model results. Mon Weather Rev, 1997, 125(11): 2969–2983\nMu M, Zhang Z Y. Conditional nonlinear optimal perturbations of a barotropic model. J Atmos Sci, 2006, 63: 1587–1604\nFarrell B F, Moore A M. An adjoint method for obtaining the most rapidly growing perturbation to oceanic flows. J Phys Oceanogr, 1992, 22: 338–349\nBirgin E G, Martinez J M, Raydan M. Nonmonotone spectral projected gradient methods for convex sets. SIAM J Opt, 2000, 10(4): 1196–1211\nPowell M J D. VMCWD: A Fortran subroutine for constrained optimization. In: ACM SIGMAP Bulletin. New York: ACM Press, 1983. 4–16\nHoutekamer P L, Derome J. Prediction experiments with two-member ensembles. Mon Weather Rev, 1994, 122: 22179–22191\nMorss R E, Emanuer K, Snyder C. Idealized adaptive observation strategies for improving numerical weather prediction. J Atmos Sci, 2001, 58: 210–234\nXu H, Mu M, Luo D H. Application of nonlinear optimization method to sensitivity analysis of numerical model. Prog Nat Sci, 2004, 14(6): 546–549\nJiang Z N, Luo D H. Study of the optimal precursors for blocking events. Adv Atmos Sci, 2005, 2(3): 408–414\nBuizza R. Sensitivity of optimal unstable structures. Quart J Roy Meteorol Soc, 1994, 120: 429–451\nKim H M, Morgan M C, Morss R E. Evolution of analysis error and adjoint-based sensitivities: Implications for adaptive observations. J Atmos Sci, 2004, 61(7): 795–812",{"VOID":1148},"10.1007\u002Fs11434-008-0272-y","2024-06-24T23:50:42.830+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11434-008-0272-y",[1152,1167],{"id":1153,"sortIndex":19,"researcher":18,"roles":1154,"affiliations":1155,"properties":1164,"displayName":1166,"givenName":18,"familyName":18},"cdae5332-2de7-4c6b-8560-44df4e2c1f2f",[119],[1156],{"id":1157,"sortIndex":19,"affiliation":1158,"properties":18},"cb094f12-913f-43e8-aa80-b2a612dbfa4f",{"id":1157,"createTime":18,"updateTime":18,"relativeEntities":1159,"slug":18,"properties":1160,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1163,"statistic":18},[],{"title":1161},{"VI":1162},"LASG, Institute of Atmospheric Physics, Chinese Academy of Sciences, Beijing, China",[],{"title":1165},{"VI":1166},"Mu Mu",{"id":1168,"sortIndex":134,"researcher":18,"roles":1169,"affiliations":1170,"properties":1186,"displayName":1188,"givenName":18,"familyName":18},"0aeeb0c9-3a28-42cf-8732-58f7a312800e",[119],[1171,1177],{"id":1157,"sortIndex":19,"affiliation":1172,"properties":18},{"id":1157,"createTime":18,"updateTime":18,"relativeEntities":1173,"slug":18,"properties":1174,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1176,"statistic":18},[],{"title":1175},{"VI":1162},[],{"id":1178,"sortIndex":134,"affiliation":1179,"properties":1185},"216733ea-f49c-4a0b-b1bc-5ee8d42b94ae",{"id":1178,"createTime":18,"updateTime":18,"relativeEntities":1180,"slug":18,"properties":1181,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1184,"statistic":18},[],{"title":1182},{"VI":1183},"LaSW, Chinese Academy of Meteorological Sciences, Beijing, China",[],{},{"title":1187},{"VI":1188},"ZhiNa Jiang",{"url":1150,"publisher":1190,"properties":1203},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1191,"slug":10,"properties":1192,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1195,"manageAffiliations":1196,"indexDatabases":1197,"url":18,"thumbnailPath":18,"statistic":1198,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1193,"title":1194},{"VOID":13},{"EN":15},[],[],[],{"impactFactor":19,"impactFactorByYear":1199,"i10Index":28,"i10IndexLast5Year":19,"totalPublication":29,"totalPublicationByYear":1200,"totalCitation":49,"totalCitationByYear":1201,"totalCitationPerPublication":69,"totalCitationPerPublicationByYear":1202,"hindexLast5Year":87,"hindex":87},{"2012":25,"2013":25,"2014":26,"2015":27,"2016":25},{"1997":31,"1998":32,"1999":33,"2000":34,"2001":35,"2002":36,"2003":37,"2004":38,"2005":39,"2006":40,"2007":41,"2008":42,"2009":43,"2010":44,"2011":45,"2012":46,"2013":47,"2014":48},{"1997":51,"1998":52,"1999":53,"2000":54,"2001":55,"2002":56,"2003":57,"2004":58,"2005":59,"2006":60,"2007":61,"2008":62,"2009":63,"2010":64,"2011":65,"2012":66,"2013":67,"2014":68},{"1997":71,"1998":72,"1999":73,"2000":74,"2001":75,"2002":76,"2003":77,"2004":78,"2005":79,"2006":69,"2007":80,"2008":81,"2009":82,"2010":83,"2011":84,"2012":85,"2013":86,"2014":78},{"pages":1204,"volume":1206},{"VOID":1205},"2062-2068",{"VOID":1207},"53",93,{"total":1208,"publishYear":1127,"statisticByYear":1210},{"2009":802,"2010":134,"2011":1211,"2012":202,"2013":179,"2014":799,"2015":202,"2016":179,"2017":799,"2018":202,"2019":972,"2020":134,"2021":134,"2022":179,"2023":202,"2024":77,"2025":225,"2026":163},7,"2008-07-02","2026-07-26T14:32:19.134+00:00",[]]