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Process and equipment of caustic decomposition of scheelite and scheelite-wolframite mixed concentrate. China Patent, CN85100350.8. 1985-04-01\nChen Zhouxi, Huang Shuoying, Zhou Liangyi,et al. Removing molybdenum from tungstate solution by ion exchange method. China Patent, CN88105712.6. 1988-05-16\nLi Honggui, Liu Maosheng, Sun Peimei,et al. Caustic decomposition of scheelite and scheelite-wolframite concentrates through mechanical activation. Journal of Central South University of Technology (English Edition), 1995, 2(2):16–20",{"EN":101},"A new technological process for production of paratungstate ammonium from low grade tungsten concentrate with a high content of calcium and impurities has been studied. The experiments show that average tungsten leaching efficiency of more than 96.92% can be obtained with a low NaOH consumption by using the mechanical activating caustic decomposition, and the content of main impurities (P, As, Si) in Na2WO4 solution obtained is competitive with that from standard wolframite concentrate by traditional caustic decomposition. After recovering caustic soda by crystallization, impure Na2WO4 solution is changed to (NH4)2WO4 solution by ion exchange method. Molybdenum may be removed from (NH4)2WO4 solution by new ion exchange method. Finally, paratungstate ammonium of high purity is obtained. This technology has the advantages of short technological process, high recovery of tungsten, high economic and social benifits.",{"EN":103},"A new technology for production of high purity paratungstate ammonium from low grade tungsten concentrate",{"VOID":105},"10.1007\u002FBF02652199","PUBLICATION","VERIFIED","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF02652199",[111,128,144,156,168,181,194],{"id":112,"sortIndex":52,"researcher":20,"roles":113,"affiliations":115,"properties":125},"bf5518ce-b5fd-4cf4-8430-61bfabb346d7",[114],"AUTHOR",[116],{"id":20,"sortIndex":21,"affiliation":117,"properties":20},{"id":118,"createTime":119,"updateTime":119,"relativeEntities":120,"slug":20,"properties":121,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"1a693bdf-f812-4ad0-9f12-69e4e8ff0f70","2024-01-12T10:17:44.344+00:00",[],{"title":122},{"VI":123},"Department of 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P R. Challenges from corrosion-resistant grid alloys in lead acid battery manufacturing[J]. Journal of Power Sources, 2001, 95 (1–2): 224–233.\nMoseley P T. ABLABC 2000—the way ahead[J]. Journal of Power Sources, 2001, 95(1–2): 218–223.\nYolshina L A, Kudyakov V Y. A lead-film on an aluminium substrate to serve as a lead-acid battery plate [J]. Journal of Power Sources, 1999, 78(1–2): 84–87.\nSUN Hong-fei, FANG Wen-bin, HAN Fei, et al. Properties of lead-clad glass fiber composites [J]. Trans Nonferrous Met Soc China, 2003, 13(S1): 179–182.\nMoseley P T. The advanced lead-acid battery consortium—a worldwide cooperation brings rapid progress[J]. Journal of Power Sources, 1999, 80(1–2): 1–6\nRichard J B, Charles L M. Method and Apparatus for Coating a Core Material with Metal[P]. US patent, 4658623. 1987.\nWU Shi-chun. The Theory of Extrusion[M]. Beijing: National Defence Industry Press, 1994.\nDawson J R, Hawkes D J. Continuous sheating of fiber optic and CATV cannes[A]. The 6th Wire Asia International Conference and Exhibition [C]. Shanghai: The Mineral and Materials Society, 1994.\nHay R S, Boakye E, Petry M D. Effect of coating deposition temperature on monazite coated fiber[J]. Journal of the European Ceramic Society, 2000, 20 (5): 589–597.\nChristoglou C, Angelopoulos G N. Deposition of Cr Al coating on Ni by means of a Pb and FBCVD process[J]. Journal of Physics IV, 2001, 11: 1125–1130.\nKurisawa I, Shiomi M, Siwata M, et al. Development of positive electrodes with an SnO2 coating by applying a sputtering technique for lead-acid batteries[J]. Journal of Power Sources, 2001, 95(1–2): 125–129.\nSUN Hong-fei, FANG Wen-bin, HAN Fei, et al. Fabrication of composite wire of lead coated on glass fiber by extrusion[J]. Trans Nonferrous Met Soc China, 2003, 13(3): 609–612.\nWarrier S G, Rangaswamy P, Bourke M A M, et al. Assessment of the fiber\u002Fmatrix interface bond strength in SiC\u002FTi-6Al-4V composite[J]. Materials Science and Engineering(A), 1999, 259(2): 220–227.\nSaakes M, Kluiters E, Schmal D, et al. Development and tesing of a bipolar lead-battery for hybrid electric vehicles[J]. Journal of Power Sources, 1999, 78(1–2): 199–203.\nSUN Hong-fei, FANG Wen-bin, HAN Fei, et al. Extrusion process of lead-clad glass fiber composites[J]. Trans Nonferrous Met Soc China, 2003, 13 (S1): 183–186.\nSaakes M, Kluiters E, Schmal D, et al. Development and testing of a bipolar lead-battery for hybrid electric vehicles[J]. Journal of Power, 1999, 78(23): 199–203.",{"EN":240},"Under the condition of equal flow, the maximum and minimum theoretical values of gap size were studied and an estimation equation was established for the clad extrusion of the brittle core cladded by plastic metal materials. The results show that the gap size is a key parameter for the continuous clad extrusion and the molding speed. Its maximum value (H\nmax) is 0.24 mm and the minimum one (H\nmin) is 0.12 mm. At a gap size of 0.18 mm, the maximum of metal extrusion per unit of time and the optimal coating speed can be obtained.",{"EN":242},"Optimization analysis on gap size of molding for Pb-GF composite 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U F. Relation between polycrystal deformation and single-crystal deformation [J]. Metall Trans, 1970, 1(5): 1121–1143.\nHirsch J, Lücke K. Mechanism of deformation and development of rolling textures in polycrystalline fcc metals (II): simulation and interpretation of experiments on the basis of Taylor-type theories[J]. Acta Metall, 1988, 36(11): 2883–2904.\nZHANG Xin-ming, LI Sai-yi. Research of textures in metallic materials and its development[J]. Bulletin of National Natural Science Foundation of China, 1995, 9 (3): 26–30. (in Chinese)\nKocks U F, Chandra H. Slip geometry in partially constrained deformation[J]. Acta Metall, 1982, 30 (3): 695–709.\nFortunier R, Driver J H. Grain reorientations in rolled aluminum sheet: comparison with predictions of continuous constraints model[J]. Acta Metall, 1987, 35 (6): 1355–1366.\nFortunier R, Driver J H. Continuous constraint model for large grain deformations[J]. Acta Metall, 1987, 35(2): 509–517.\nBronkhorst C A, Kaliddindi S R, Anand L. Polycrystalline plasticity and the evolution of crystallographic texture in fcc metals[J]. Phil Trans R Soc Lond A, 1992, 341(1662): 443–477.\nBeaudoin A J, Dawson P R, Mathur K K, et al. A hybrid finite element formulation for polycrystal plasticity with consideration of macro-structural and microstructural linking[J]. Int J Plasticity, 1995, 11(5): 501–521.\nBachu V, Kalidindi S R. On the accuracy of the predictions of texture evolution by the finite element technique for fcc polycrystals[J]. Mater Sci Eng A, 1998, 257(2): 108–117.\nLi S, Houtte P V. Performance of statistical (Taylor, Lamel) and CPFE models in texture predictions of aluminum alloys in cold rolling[J]. Aluminum, 2002, 78: 918–922.\nDelannay L, Kalidindi S R, Houtte P V. Quantitative prediction of textures in aluminum cold rolled to moderate strains[J]. Mater Sic Eng A, 2002, 336(1–2): 233–244.\nHoutte P V, Delannay L, Kalidindi S R. Comparison of two grain interaction models for polycrystal plasticity and deformation texture prediction [J]. Int J Plasticity, 2002, 18(3): 359–377.\nRabbe D, Zhao Z, Park S, et al. Theory of orientation gradients in plastically strained crystals[J]. Acta Materialia, 2002, 50(2): 421–440.\nSachteber M, Zhao Z, Rabbe D. Experimental investigation of plastic interaction[J]. Mater Sci Eng A, 2002, 336(1–2): 81–87.\nTarasiuk J, Wierzbanowshi K. Application of the linear regression method for comparison of crystallographic textures [J]. Philosophical Magazine A, 1996, 73: 1083–1091.\nJura J, Pospiech J. On the ghost structure of orientation distributions derived from pole figures [J]. Zeitschrift für Metallkunde, 1980, 71: 714–728.\nHirsch J, Lücke K. Application of quantitative texture analysis for investigating continuous and discontinuous recrystallization process of Al-0.01Fe [J]. Acta Metall, 1985, 33(10): 1927–1938.\nAsaro R J. Geometrical effects of in the inhomogeneous deformation of ductile single crystals[J]. Acta Metall, 1979, 27(3): 445–452.\nRice J R. Inelastic constitutive relations for solids: an internal variable theory and its application to metal plasticity[J]. J Mech Phys Solids, 1971, 19(6): 433–455.\nAsaro R J, Needleman A. Texture development and strain hardening in rate-dependent polycrystals [J]. Acta Metall, 1985, 33(6): 923–953.",{"EN":356},"",{"EN":358},"A rate dependent crystal plasticity constitutive model considering self and latent hardening in finite element analysis was developed to simulate rolling textures of pure aluminum. By changing the assignment of orientations to finite elements, i. e. assigning the same set of orientations to all elements or different orientations to different elements, the influences of grain interaction on the formation of rolling textures were numerically simulated with this kind of crystal plasticity finite element model. The simulation results reveal that the grains without considering grain interaction rotate faster than those considering grain interaction, and the rotation of grain boundary is slowed down due to the grain interaction. For a good simulation more elements should be assigned to one grain, in which the effects of both the boundary and interior parts of grain contribute to the formation of rolling textures.",{"EN":360},"Finite element simulation of influences of grain interaction on rolling textures of fcc metals",{"VOID":362},"10.1007\u002Fs11771-006-0141-2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11771-006-0141-2",[365,382,394,406],{"id":366,"sortIndex":21,"researcher":20,"roles":367,"affiliations":368,"properties":379},"2d2ce9ce-7809-4271-b7cb-2053e57be731",[114],[369],{"id":20,"sortIndex":21,"affiliation":370,"properties":20},{"id":371,"createTime":372,"updateTime":373,"relativeEntities":374,"slug":375,"properties":376,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"5dbfaef2-c800-4c51-8578-23d2e7861b94","2023-12-05T10:47:39.353+00:00","2024-09-05T11:03:24.135+00:00",[],"School-of-Materials-Science-and-Engineering-Central-South-University-Changsha-China",{"title":377},{"VI":378},"School of Materials Science and Engineering, Central South University, Changsha, China",{"title":380},{"VI":381},"Jian-guo Tang",{"id":383,"sortIndex":53,"researcher":20,"roles":384,"affiliations":385,"properties":391},"0aeff979-7c7b-42ff-8d4e-74820ed9dda9",[114],[386],{"id":20,"sortIndex":21,"affiliation":387,"properties":20},{"id":371,"createTime":372,"updateTime":373,"relativeEntities":388,"slug":375,"properties":389,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":390},{"VI":378},{"title":392},{"VI":393},"Zhi-yong Chen",{"id":395,"sortIndex":183,"researcher":20,"roles":396,"affiliations":397,"properties":403},"8c234f38-d4d8-451a-bb88-cf1eb496144f",[114],[398],{"id":20,"sortIndex":21,"affiliation":399,"properties":20},{"id":371,"createTime":372,"updateTime":373,"relativeEntities":400,"slug":375,"properties":401,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":402},{"VI":378},{"title":404},{"VI":405},"Yun-lai Deng",{"id":407,"sortIndex":54,"researcher":20,"roles":408,"affiliations":409,"properties":415},"f566bcd3-5b31-4b73-9af2-066622c085e9",[114],[410],{"id":20,"sortIndex":21,"affiliation":411,"properties":20},{"id":371,"createTime":372,"updateTime":373,"relativeEntities":412,"slug":375,"properties":413,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":414},{"VI":378},{"title":416},{"VI":417},"Xin-ming Zhang",{"url":20,"publisher":419,"properties":20},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":420,"slug":10,"properties":421,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":425,"manageAffiliations":426,"indexDatabases":427,"url":20,"thumbnailPath":20,"statistic":428,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":422,"eissn":423,"title":424},{"VOID":13},{"VOID":15},{"EN":17},[],[],[],{"impactFactor":21,"impactFactorByYear":429,"i10Index":29,"i10IndexLast5Year":21,"totalPublication":30,"totalPublicationByYear":430,"totalCitation":50,"totalCitationByYear":431,"totalCitationPerPublication":68,"totalCitationPerPublicationByYear":432,"hindexLast5Year":56,"hindex":56},{"2012":27,"2013":28},{"1994":32,"1995":33,"1996":34,"1997":35,"1998":36,"1999":37,"2000":38,"2001":39,"2002":40,"2003":41,"2004":42,"2005":43,"2006":44,"2007":45,"2008":46,"2009":47,"2010":48,"2011":49},{"1994":52,"1995":53,"1996":54,"1997":35,"1998":55,"1999":53,"2000":56,"2001":57,"2002":58,"2003":59,"2004":60,"2005":61,"2006":62,"2007":63,"2008":64,"2009":65,"2010":66,"2011":67},{"1994":70,"1995":71,"1996":72,"1997":54,"1998":73,"1999":74,"2000":75,"2001":76,"2002":77,"2003":78,"2004":79,"2005":80,"2006":81,"2007":82,"2008":83,"2009":84,"2010":85,"2011":86},"2006-04-01",2006,{"id":436,"createTime":437,"updateTime":438,"relativeEntities":439,"slug":440,"properties":441,"entityType":106,"verifyStatus":107,"verifyTime":438,"verifyNote":108,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":451,"fullTextUrl":20,"authors":452,"publicationType":206,"publisherRelationship":507,"citationCount":20,"citationInfo":20,"publishDate":522,"publishYear":523,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":229},"74e35eff-74c3-439c-8d08-0ced31dd8ef4","2024-04-06T22:39:43.789+00:00","2024-12-21T23:54:16.766+00:00",[],"Study-on-syntheses-and-characterizations-of-polymethylphenethylsilane-polymethylcyclohexylsilane-and-their-copolymers",{"references":442,"keywords":444,"abstract":445,"title":447,"doi":449},{"VOID":443},"West R. The polysilane high polymer[J]. J Organometallic Chemistry, 1986, 300: 327–346\nHiroshi B, Ken S. The importance of organosilane polymer photo-oxidation in resist pattern fabrication[J]. J Appl Polym Sci, 1987, 33: 2787–2793\nTrefonas P, West R. Organosilane high polymer: synthesis of formable homopolymers[J]. J Polym Sci(Polym Lett Ed), 1983, 21: 819–822\nMiller R D. Block interrupt polysilane derivatives[J]. J Polym Sci(Part A: Polym Chem), 1990, 28: 2665–2677\nMiller R D, Michl J. Polysilane high polymers[J]. Chem Rev, 1989, 89: 1359–1410\nDevaux J, Sledz J. Some observations about polysilane synthesis[J]. Eur Polym J, 1989, 25(3): 263–266\nGauthier S, Worsfold D J. The effect of phase-transfer catalysts on polysilane formation[J]. Macromolecules, 1989, 22: 2213–2218\nPatricia P C Sartoratto, Valeria I, Yoshida P. Poly (dimethylsilyleneco-diphenyl-silylene)[J]. J Polym Sci(Part A: Polym Chem), 1992, 30(11): 2333–2340\nHU Hui-ping, CHEN De-ben. Syntheses of methylphenethyldichlorosilane and methylcyclohexyldichlorosilane[J]. Chinese Chemical World, 1993, 34(7): 336\nZHANG X H, West R. Organosilane polymers[J]. J Polym Sci (Polym Chem Ed), 1984, 22: 225–238\nZHANG X H, West R. Formable copolymers containing diphenylsilylene units[J]. J Polym Sci(Polym Chem Ed), 1984, 22: 479–485",{"EN":356},{"EN":446},"The effects of adding cosolvents of diglyme and 15-crown-5 to the reaction mixture of Wurtz-type coupling of dichlorosilanes on the yield and relative molecular mass dispersity of polymethylphenethylsilane(PMPES) were discussed. The results show that addition of 10% (volume ratio of diglyme to toluene) diglyme as a cosolvent to the reaction mixture leads to the yield increase of PMPES with a monomodal distribution of relative molecular masses. Adding 10% diglyme to the reaction mixtures, the yields of polymethylcyclohexylsilane(PMCS) and copolymers (polymethylphenethylsilane-co-methylcyclohexylsilane), (the molar ratios of methylphenethyldichlorosilane to methylcyclohexyldichlorosilane were 2.0, 1.0 and 0.5, and the copolymers were abbreviated by Copolymers I, II, III, respectively) are 47%, 52%, 54%, 53%, respectively. Their relative molecular masses \n                  \n                    \n                  \n                  \n$$(\\bar M_w )$$\n\n                almost reach 105. These polysilanes were characterized by 1H-NMR, IR and UV absorption spectrum.",{"EN":448},"Study on syntheses and characterizations of polymethylphenethylsilane, polymethylcyclohexylsilane and their copolymers",{"VOID":450},"10.1007\u002Fs11771-000-0040-x","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11771-000-0040-x",[453,468,480,495],{"id":454,"sortIndex":53,"researcher":20,"roles":455,"affiliations":456,"properties":465},"17540e4b-ef39-436a-87d8-dfdb7e6dce81",[114],[457],{"id":20,"sortIndex":21,"affiliation":458,"properties":20},{"id":459,"createTime":460,"updateTime":460,"relativeEntities":461,"slug":20,"properties":462,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"31448123-ebda-44ff-9318-2bf57b5fe55f","2024-01-21T08:41:14.898+00:00",[],{"title":463},{"VI":464},"College of Chemistry and Chemical Engineering, Central South University of Technology, Changsha, 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W. Continuously variable crown (CVC) rolling[J]. Iron and Steel Eng, 1987 (3): 32–41.",{},{"id":20,"text":621,"url":20,"identifiers":622},"CHEN Jie, ZHONG Jue. Analytic model of loaded gap for CVC 4-high rolling mill[J]. Heavy Machinery, 1998(6): 42–44. (in Chinese)",{},{"id":20,"text":624,"url":20,"identifiers":625},"DONALD I R, SPOONER P D. The effects on strip quality due to rolling mill design[J]. Foreign Steel and Iron, 1989(3): 1–5. (in Chinese)",{},{"id":20,"text":627,"url":20,"identifiers":628},"RONNIE H. Experience Gained on the 5-stand cold rolling mill at SSAB with a 6-high stand using CVC technology[J]. MPT, 1990(1): 58–66.",{},{"id":20,"text":630,"url":20,"identifiers":631},"WANG Wei. Theories and their Applications on Mill Types Selection and Parameters Optimization of Rolls System for Cold Strip Mill[D]. Qinhuangdao: Yanshan University, 1999: 13–19. (in Chinese)",{},{"id":20,"text":633,"url":20,"identifiers":634},"WANG Guo-dong. Shape Control and Shape Theory[M]. Beijing: Metallurgical Industry Press, 1986. (in Chinese)",{},{"id":20,"text":636,"url":20,"identifiers":637},"QI Xiang-dong. Study on Pass Schedule and Mill Types Selection for New Plate and Strip Mill in Baosteel[D]. Qinhuangdao: Yanshan University, 2002. (in Chinese)",{},{"id":20,"text":639,"url":20,"identifiers":640},"PENG Yan, LIU Hong-min. Study on increasing calculated precision and convergence speed of streamline strip element method[J]. Journal of Central South University of Technology, 2004, 11(1): 105–108.",{"doi":641},"10.1007\u002Fs11771-004-0022-5",{"id":20,"text":643,"url":20,"identifiers":644},"LIU Hong-min, ZHENG Zhen-zhong, PENG Yan. Computer simulation of the roll contact pressure characteristic for 6-High CVC wide strip mill[J]. Chinese Journal of Mechanical Engineering, 2000, 36(8): 69–73. (in Chinese)",{"doi":645},"10.3901\u002FJME.2000.08.069",{"id":20,"text":647,"url":20,"identifiers":648},"LIU Hong-min, PENG Yan, CHU Yu-peng, et al. Strip element method for shape discrimination of strip rolling[J]. Communications in Numerical Methods in Engineering, 2004, 20(9): 709–720.",{"doi":649},"10.1002\u002Fcnm.701",{"id":20,"text":651,"url":20,"identifiers":652},"PENG Yan, LIU Hong-min. A neural network recognition method of shape pattern[J]. Journal of Iron and Steel Research (International), 2001, 8(1): 16–20.",{},{"id":20,"text":654,"url":20,"identifiers":655},"PENG Yan, LIU Hong-min, ZHANG Shou-gang, et al. Shape and profile control strategy for HC mill[J]. Iron and Steel, 2002, 37(4): 35–38.(in Chinese)",{},{"id":20,"text":657,"url":20,"identifiers":658},"PENG Yan, LIU Hong-min, HU Jian-ping, et al. Software for flatness analysis and presetting control of cold strip rolling and application[J]. Iron and Steel, 2003, 38(2): 34–37. (in Chinese)",{},{"id":20,"text":660,"url":20,"identifiers":661},"PENG Yan. Theoretical Studies and Engineering Application of Shape Preset Control for HC Cold Mill Based on Strip Element Method[D]. Qinhuangdao: Yanshan University, 2000.(in Chinese)",{},{"id":663,"createTime":664,"updateTime":665,"relativeEntities":666,"slug":667,"properties":668,"entityType":106,"verifyStatus":107,"verifyTime":665,"verifyNote":108,"syncStatus":19,"languages":679,"translateLanguages":20,"viewCount":21,"primaryUrl":680,"fullTextUrl":20,"authors":681,"publicationType":206,"publisherRelationship":733,"citationCount":611,"citationInfo":748,"publishDate":750,"publishYear":345,"citationAnalyzeStatus":751,"lastCitationAnalyze":752,"indexDatabases":20,"openAccess":20,"references":753,"isForceReanalyzing":229},"0aacb9b6-6992-4287-8544-84e0ce95dd1c","2024-04-12T01:17:12.595+00:00","2024-12-08T23:53:17.592+00:00",[],"Determination-of-ejection-velocity-of-rock-fragments-during-rock-burst-in-consideration-of-damage",{"mag":669,"keywords":671,"openalex":672,"abstract":674,"title":675,"doi":677},{"VOID":670},"2030146830",{},{"VOID":673},"W2030146830",{},{"EN":676},"Determination of ejection velocity of rock fragments during rock burst in consideration of damage",{"VOID":678},"10.1007\u002Fs11771-005-0133-7",[541],"http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11771-005-0133-7",[682,701,717],{"id":683,"sortIndex":54,"researcher":20,"roles":684,"affiliations":685,"properties":696},"2fd60f8d-8255-4684-9981-75eccbaa687e",[],[686],{"id":20,"sortIndex":21,"affiliation":687,"properties":20},{"id":688,"createTime":689,"updateTime":690,"relativeEntities":691,"slug":692,"properties":693,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"174951fd-59b0-489c-b1b8-b5dacf9ca252","2023-12-13T13:06:41.230+00:00","2024-11-27T16:44:38.820+00:00",[],"School-of-Resources-and-Safety-Engineering-Central-South-University-Changsha-China",{"title":694},{"VI":695},"School of Resources and Safety Engineering, Central South University, Changsha, China",{"openalex":697,"title":699},{"VOID":698},"A5030892675",{"EN":700},"Xibing Li",{"id":702,"sortIndex":53,"researcher":20,"roles":703,"affiliations":704,"properties":710},"16c83b63-725e-4737-bf49-2eca465d1830",[],[705],{"id":20,"sortIndex":21,"affiliation":706,"properties":20},{"id":688,"createTime":689,"updateTime":690,"relativeEntities":707,"slug":692,"properties":708,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":709},{"VI":695},{"openalex":711,"orcid":713,"title":715},{"VOID":712},"A5028246416",{"VOID":714},"https:\u002F\u002Forcid.org\u002F0000-0002-5776-4621",{"EN":716},"Zilong Zhou",{"id":718,"sortIndex":21,"researcher":20,"roles":719,"affiliations":720,"properties":726},"9542b30c-7159-4a7d-8902-137a144418bb",[],[721],{"id":20,"sortIndex":21,"affiliation":722,"properties":20},{"id":688,"createTime":689,"updateTime":690,"relativeEntities":723,"slug":692,"properties":724,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":725},{"VI":695},{"openalex":727,"orcid":729,"title":731},{"VOID":728},"A5042779903",{"VOID":730},"https:\u002F\u002Forcid.org\u002F0000-0001-7131-7193",{"EN":732},"Yujun Zuo",{"url":20,"publisher":734,"properties":20},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":735,"slug":10,"properties":736,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":740,"manageAffiliations":741,"indexDatabases":742,"url":20,"thumbnailPath":20,"statistic":743,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":737,"eissn":738,"title":739},{"VOID":13},{"VOID":15},{"EN":17},[],[],[],{"impactFactor":21,"impactFactorByYear":744,"i10Index":29,"i10IndexLast5Year":21,"totalPublication":30,"totalPublicationByYear":745,"totalCitation":50,"totalCitationByYear":746,"totalCitationPerPublication":68,"totalCitationPerPublicationByYear":747,"hindexLast5Year":56,"hindex":56},{"2012":27,"2013":28},{"1994":32,"1995":33,"1996":34,"1997":35,"1998":36,"1999":37,"2000":38,"2001":39,"2002":40,"2003":41,"2004":42,"2005":43,"2006":44,"2007":45,"2008":46,"2009":47,"2010":48,"2011":49},{"1994":52,"1995":53,"1996":54,"1997":35,"1998":55,"1999":53,"2000":56,"2001":57,"2002":58,"2003":59,"2004":60,"2005":61,"2006":62,"2007":63,"2008":64,"2009":65,"2010":66,"2011":67},{"1994":70,"1995":71,"1996":72,"1997":54,"1998":73,"1999":74,"2000":75,"2001":76,"2002":77,"2003":78,"2004":79,"2005":80,"2006":81,"2007":82,"2008":83,"2009":84,"2010":85,"2011":86},{"total":611,"publishYear":20,"statisticByYear":749},{"2012":183,"2014":54,"2015":54,"2018":53,"2019":183,"2020":54,"2021":54,"2023":54},"2005-10-01","ERROR_IN_ANALYZE_CITATION","2024-04-13T08:09:56.764+00:00",[754,758,761,765,768,772,775,778,781,784,787,790,793,796,800,803,806],{"id":20,"text":755,"url":20,"identifiers":756},"Linkov A M. Rock burst and instability of rock masses [J]. Int J Rock Mech Min Sci Geomech Abstr, 1996, 33(7): 727–732.",{"doi":757},"10.1016\u002F0148-9062(96)00021-6",{"id":20,"text":759,"url":20,"identifiers":760},"Cook N G W, Hoek E. Rock mechanics applied to the study of rock bursts[J]. J S Afr Inst Min Metall, 1996, 66(3): 435–528.",{},{"id":20,"text":762,"url":20,"identifiers":763},"Ortlepp W D. Rock burst mechanisms in tunnels and shafts[J]. Tunnelling and Underground Space Technology, 1994, 59(6): 59–65.",{"doi":764},"10.1016\u002F0886-7798(94)90010-8",{"id":20,"text":766,"url":20,"identifiers":767},"Diering D H. Ultra-deep level mining, future requirements[J]. J S Afr Inst Min Metall, 1997, 97(6): 249–255.",{},{"id":20,"text":769,"url":20,"identifiers":770},"Kirzhner F, Rosenhouse G. Numerical analysis of tunnel dynamic response to earth motions[J]. Tunnelling and Underground Space Technology, 2000, 15(3): 249–258.",{"doi":771},"10.1016\u002FS0886-7798(00)00054-7",{"id":20,"text":773,"url":20,"identifiers":774},"LI Shu-lin. The experiment on rock burst tendency dynamic failure[J]. Journal of Liaoning Engineering and Technology University, 2001, 20(4): 436–438. (in Chinese)",{},{"id":20,"text":776,"url":20,"identifiers":777},"XIE He-ping. The chance and challenge in the deep mining and underground structure [A]. The 175th Symposium in Xiangshan Science Conference[C]. Beijing: China Environment Science Press, 2001. (in Chinese)",{},{"id":20,"text":779,"url":20,"identifiers":780},"GUO Ran, YU Run-cang. The support design for rock burst tendency tunnels[J]. Chinese Mining Engineering, 2002,11(3): 23–26. (in Chinese)",{},{"id":20,"text":782,"url":20,"identifiers":783},"Yiagerov H B. The characteristics of rock burst and the prevention measures [J]. The Foreign Metal Mines, 1990(5): 23–27.",{},{"id":20,"text":785,"url":20,"identifiers":786},"TANG Chun-an, XU Xiao-he. The problem of rock burst in deep mining[A]. The 175th Symposium in Xiangshan Science Conference[C]. Beijing: China Environment Science Press, 2001. (in Chinese)",{},{"id":20,"text":788,"url":20,"identifiers":789},"HE Man-chao. The dynamic characteristics of wall rock in deep tunnels and the dynamic design theory [A]. The 175th Symposium in Xiangshan Science Conference[C]. Beijing: China Environment Science Press, 2001. (in Chinese)",{},{"id":20,"text":791,"url":20,"identifiers":792},"Ortlepp W D. High Ground Displacement Velocities Associated with Rock Mines[M]. Rotteram: Balkema, 1993. 297–309.",{},{"id":20,"text":794,"url":20,"identifiers":795},"LIU Xiao-ming, LI Zhuo-fen. The damage mechanics analysis and rock burst damage index for brittle rock [J]. Chinese Journal of Rock Mechanics and Engineering, 1997, 16(2): 140–147. (in Chinese)",{},{"id":20,"text":797,"url":20,"identifiers":798},"Lemaitre J. An equivalent strain hypothesis [J]. Journal of Engineering Materials and Technology, 1985, 107(1): 83–89.",{"doi":799},"10.1115\u002F1.3225775",{"id":20,"text":801,"url":20,"identifiers":802},"YANG Xiao-lin, WANG Shu-ren. Meso-mechanism of damage and fracture on rock blasting[J]. Explosion and Shock Waves, 2000, 20(3): 247–252. (in Chinese)",{},{"id":20,"text":804,"url":20,"identifiers":805},"Henrych J. The Dynamics of Explosion and its Use [M]. Amsterdam: Elsevier Scientific Publishing Company, 1979.",{},{"id":20,"text":807,"url":20,"identifiers":808},"XU Dong-jun. The research of the stress state in rock burst[J]. Chinese Journal of Rock Mechanics and Engineering, 2000,19(2): 169–172. (in Chinese)",{},{"id":810,"createTime":811,"updateTime":811,"relativeEntities":812,"slug":20,"properties":813,"entityType":106,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":822,"fullTextUrl":20,"authors":823,"publicationType":206,"publisherRelationship":853,"citationCount":20,"citationInfo":20,"publishDate":873,"publishYear":874,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":229},"83c5e62d-9b14-4336-b85c-b36ff35a5476","2024-01-17T23:52:40.980+00:00",[],{"references":814,"abstract":816,"title":818,"doi":820},{"VOID":815},"BOLTON M D, WHITTLE R W. A non-linear elastic\u002Fperfectly plastic analysis for plane strain undrained expansion tests [J]. Geotechnique, 1999, 49(1): 133–141.\nMILLER E A, ROYCROFT G A. Compaction grouting test program for liquefaction control [J]. Journal of Geotechnical and Geoenvironmental Engineering, 2004, 130(4): 355–361.\nGRAF E D. Compaction grouting [J]. Geotechnical Special Publication, 1992, 30(1): 275–287.\nNICHOL S C, GOODINGS D J. Physical model testing of compaction grouting in cohesionless soil [J]. Journal of Geotechnical and Geoenvironmental Engineering, 2000, 126(9): 848–852.\nYU H S. Expansion of a think cylinder of soils [J]. Computers and Geotechnics, 1992, 14(1): 21–41.\nYANG Xiao-li. Seismic displacement of rock slopes with nonlinear Hoek-Brown failure criterion [J]. International Journal of Rock Mechanics and Mining Sciences, 2007, 44(6): 948–953.\nYANG Xiao-li, LI Liang, YIN Jian-hua. Seismic and static stability analysis for rock slopes by a kinematical approach [J]. Geotechnique, 2004, 54(8): 543–549.\nYANG Xiao-li, YIN Jian-hua. Slope stability analysis with nonlinear failure criterion [J]. Journal of Engineering Mechanics, 2004, 130(3):267–273.\nJIANG Ming-jing, SHEN Zhu-jiang. On expansion of cylindrical cavity with linear softening and shear dilation behavior [J]. Chinese Journal of Rock Mechanics and Engineering, 1997, 16(6): 550–557. (in Chinese)\nWANG Jia-lai, XIONG Jian-hua. An analytical solution to cylindrical cavity expansion in softening soil mass [J]. Chinese Journal of Applied Mechanics, 1999, 16(4): 58–62. (in Chinese)\nYU H S. Cavity expansion theory and its application to the analysis of pressuremeters [D]. London: University of Oxford, 1990.\nWARNER J, BROWN D R. Planning and performing compaction grouting [J]. Journal Geotechnical Engineering, 1986, 100(6):653–666.\nVANDERPOOL W, NORRIS G, ELFASS S. Warning: Low mobility grout may not equal compaction grout [J]. Geotechnical News, 2008, 26(1): 44–50.\nWANG Guang-guo, DU Ming-fang, MIAO Xing-cheng. Mechanism of compaction grouting and effect examination [J]. Chinese Journal of Rock Mechanics and Engineering, 2000, 19(5): 670–673. (in Chinese)\nEI-KELESH A M, MATSUI T. Calibration chamber modeling of compaction grouting [J]. Geotechnical Testing Journal, 2008, 31(4):295–370.",{"EN":817},"A new method was proposed to predict the limited compaction grouting pressure for the soft soils. Theoretical basis of the method considered the conical shear failure above the grout bulb. Using the Mohr-Coulomb yield criterion as the initial yield function, the limited compaction grouting pressure was determined, according to the softening elastic-plastic model based on the conventional triaxial compression tests to simulate the strain softening soils. The small strain in the elastic zone and large stain in the plastic zone and the rational yield function for the strain softening phase stage, the analytical solutions to the compaction grouting pressure were presented. The results indicate reasonable agreement and show a good potential of the proposed method for rationally optimizing the design of compaction grouting operations.",{"EN":819},"Estimation of compaction grouting pressure in strain softening soils",{"VOID":821},"10.1007\u002Fs11771-009-0108-1","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11771-009-0108-1",[824,841],{"id":825,"sortIndex":54,"researcher":20,"roles":826,"affiliations":827,"properties":838},"dd89f3b3-aa54-4fe5-a67c-470c3bc01377",[114],[828],{"id":20,"sortIndex":21,"affiliation":829,"properties":20},{"id":830,"createTime":831,"updateTime":832,"relativeEntities":833,"slug":834,"properties":835,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"0a75800d-e466-40fc-a60e-1d7ab0881075","2024-01-09T12:19:38.004+00:00","2025-06-11T23:22:03.417+00:00",[],"School-of-Civil-and-Architectural-Engineering-Central-South-University-Changsha-China",{"title":836},{"VI":837},"School of Civil and Architectural Engineering, Central South University, Changsha, China",{"title":839},{"VI":840},"Jin-feng Zou",{"id":842,"sortIndex":21,"researcher":20,"roles":843,"affiliations":844,"properties":850},"29ec9e93-77f2-4a26-956f-5ee2f83d25cc",[114],[845],{"id":20,"sortIndex":21,"affiliation":846,"properties":20},{"id":830,"createTime":831,"updateTime":832,"relativeEntities":847,"slug":834,"properties":848,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":849},{"VI":837},{"title":851},{"VI":852},"Xiao-li Yang",{"url":822,"publisher":854,"properties":868},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":855,"slug":10,"properties":856,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":860,"manageAffiliations":861,"indexDatabases":862,"url":20,"thumbnailPath":20,"statistic":863,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":857,"eissn":858,"title":859},{"VOID":13},{"VOID":15},{"EN":17},[],[],[],{"impactFactor":21,"impactFactorByYear":864,"i10Index":29,"i10IndexLast5Year":21,"totalPublication":30,"totalPublicationByYear":865,"totalCitation":50,"totalCitationByYear":866,"totalCitationPerPublication":68,"totalCitationPerPublicationByYear":867,"hindexLast5Year":56,"hindex":56},{"2012":27,"2013":28},{"1994":32,"1995":33,"1996":34,"1997":35,"1998":36,"1999":37,"2000":38,"2001":39,"2002":40,"2003":41,"2004":42,"2005":43,"2006":44,"2007":45,"2008":46,"2009":47,"2010":48,"2011":49},{"1994":52,"1995":53,"1996":54,"1997":35,"1998":55,"1999":53,"2000":56,"2001":57,"2002":58,"2003":59,"2004":60,"2005":61,"2006":62,"2007":63,"2008":64,"2009":65,"2010":66,"2011":67},{"1994":70,"1995":71,"1996":72,"1997":54,"1998":73,"1999":74,"2000":75,"2001":76,"2002":77,"2003":78,"2004":79,"2005":80,"2006":81,"2007":82,"2008":83,"2009":84,"2010":85,"2011":86},{"volume":869,"pages":871},{"VOID":870},"16",{"VOID":872},"653-657","2009-08-07",2009,{"id":876,"createTime":877,"updateTime":878,"relativeEntities":879,"slug":880,"properties":881,"entityType":106,"verifyStatus":107,"verifyTime":878,"verifyNote":108,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":890,"fullTextUrl":20,"authors":891,"publicationType":206,"publisherRelationship":965,"citationCount":20,"citationInfo":20,"publishDate":985,"publishYear":986,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":229},"925a5869-c291-4cf5-8aa1-2a63ff8981df","2023-12-11T10:59:03.580+00:00","2024-12-17T23:50:29.194+00:00",[],"Effect-of-strain-hardening-and-strain-softening-on-welding-distortion-and-residual-stress-of-A7N01-T4-aluminum-alloy-by-simulation-analysis",{"references":882,"abstract":884,"title":886,"doi":888},{"VOID":883},"PRESTON R V, SHERCLIFF H R, WITHERS P J, HUGHES D J, SMITH S D, WEBSTER P J. Synchrotron X-ray measurement and finite element analysis of residual strain in tungsten inert gas welded aluminium alloy 2024 [J]. Metallurgical and Materials Transactions A, 2006, 37(12): 3626–3637.\nHYUN C Y, KIM H K. Fatigue properties of a modified 7075 aluminum alloy containing scandium [J]. Journal of Materials Science, 2010, 45(11): 3067–3072.\nLEE C H, KIM S W, YOON E P. Electron beam welding characteristics of high strength aluminium alloys for express train applications [J]. Science and Technology of Welding and Joining, 2000, 5(5): 277–283.\nHU Hui-e, ZHEN Liang, ZHANG Bao-you, YANG Li, CHEN Jun-zhou. Microstructure characterization of 7050 aluminum alloy during dynamic recrystallization and dynamic recovery [J]. Materials Characterization, 2008, 59(9): 1185–1189.\nDENG D. FEM prediction of welding residual stress and distortion in carbon steel considering phase transformation effects [J]. Materials and Design, 2009, 30(2): 359–366.\nDONG P, HONG J K, BOUCHARD P J. Analysis of residual stresses at weld repairs [J]. International Journal of Pressure Vessels and Piping, 2005, 82(4): 258–269.\nZHANG Z L, SILVANUS J, LI H K, SHI Q Y. Sensitivity analysis of history dependent material mechanical models for numerical simulation of welding process [J]. Science and Technology of Welding and Joining, 2008, 13(5): 422–429.\nWANG S D, GOLDAK J, ZHOU J G, TCHERNOV S, DOWNEY D. Simulation on the thermal cycle of a welding process by space-time convection-diffusion finite element analysis [J]. International Journal of Thermal Sciences, 2009, 48(5): 936–947.\nDENG D, MURAKAWA H. Prediction of welding distortion and residual stress in a thin plate butt-welded joint [J]. Computational Materials Science, 2008, 43(2): 353–365.\nZHU X K, CHAO Y J. Effects of temperature-dependent material properties on welding simulation [J]. Computers and Structures, 2002, 80(11): 967–976.\nLIU Xiao-yan, PAN Qing-lin, HE Yun-bin, LI Wen-bin, LIANG Wen-jie, YIN Zhi-min. Flow behavior and microstructural evolution of Al-Cu-Mg-Ag alloy during hot compression deformation [J]. Materials Science and Engineering A, 2009, 500(1\u002F2): 150–154.\nLIANG Wen-jie, PAN Qing-lin, HE Yun-bin, LI Yun-chun, ZHANG Xiao-gang. Flow stress behavior of Al-Cu-Li-Zr alloy containing Sc during hot compression deformation [J]. Journal of Central South University of Technology, 2008, 15(3): 289–294.\nSONG Yu-quan, CHENG Yong-chun, LIU Ying. Mechanical definition and standardized measurement of the strain hardening exponent in tensile deformation [J]. Science in China: Series E, 2001, 44(2): 113–122.\nGOLDAK J, CHAKRAVARTI A, BIBBY M. A new finite element model for welding heat sources [J]. Metallurgical Transactions B, 1984, 15: 299–305.\nLU Hao, LIU Xue-song, ZHU Zheng, ZHANG Shi-ping, FANG Hong-yuan. Rapid and nondestructive measurement system for welding residual stress by ultrasonic method [J]. Chinese Journal of Mechanical Engineering, 2008, 21(5): 91–93. (in Chinese)\nMASUBUCHI K. Analysis of welded structures [M]. Massachusetts: Massachusetts Institute of Technology Press, 1980: 235–237.",{"EN":885},"The effect of strain hardening and strain softening behavior of flow stress changing with temperature on welding residual stress, plastic strain and welding distortion of A7N01-T4 aluminum alloy was studied by finite simulation method. The simulation results show that the weld seam undergoes strain hardening in the temperature range of 180–250 °C, however, it exhibits strain softening at temperature above 250 °C during welding heating and cooling process. As a result, the strain hardening and strain softening effects counteract each other, introducing slightly influence on the welding residual stress, residual plastic strain and distortion. The welding longitudinal residual stress was determined by ultrasonic stress measurement method for the flat plates of A7N01-T4 aluminum alloy. The simulation results are well accordant with test ones.",{"EN":887},"Effect of strain hardening and strain softening on welding distortion and residual stress of A7N01-T4 aluminum alloy by simulation analysis",{"VOID":889},"10.1007\u002Fs11771-010-0538-9","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11771-010-0538-9",[892,907,919,941,953],{"id":893,"sortIndex":183,"researcher":20,"roles":894,"affiliations":895,"properties":904},"8dc57017-42e7-4b28-9086-23f87403294b",[114],[896],{"id":20,"sortIndex":21,"affiliation":897,"properties":20},{"id":898,"createTime":899,"updateTime":899,"relativeEntities":900,"slug":20,"properties":901,"entityType":124,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"a4c8e7d9-ee64-471d-83f6-56518ee4c1fa","2023-12-04T09:22:47.808+00:00",[],{"title":902},{"VI":903},"State Key Laboratory of Advanced Welding Production Technology, Harbin Institute of Technology, Harbin, 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Identification of visco-elastic models for rocks using genetic programming coupled with the modified particle swarm optimization algorithm [J]. Int J Rock Mech and Min Sci, 2006, 43(5): 789–801\nZHU Zhen-de, XU Wei-ya. Visco-elastic constitutive model recognition of rock mass and its engineering application [J]. Chin J Rock Mech Eng, 2002, 21(11): 1605–1609. (in Chinese)\nSTORN R, PRICE K. Differential evolution, a simple and efficient heuristic strategy for global optimization over continuous Spaces [J]. Journal of Global Optimization, 1997, 11(4): 341–359.\nBERGEY P K, RAGSDALE C. Modified differential evolution: a greedy random strategy for genetic recombination [J]. Omega, 2005, 33(3): 255–265.\nKAELO P, ALIM M. A numerical study of some modified differential evolution algorithms [J]. European Journal of Operational Research, 2006, 169(3): 1176–1184.\nSU Guo-shao, FENG Xia-ting. Parameter identification of constitutive model for hard rock under high situ stress condition using particle swarm optimization algorithm [J]. Chin J Rock Mech Eng, 2005, 24(17): 3029–3034. (in Chinese)\nItasca Consulting Group Inc. FLAC3D User’s Manual (Version 3.0) [R]. Itasca Consulting Group Inc, 2005.",{"EN":997},"To determine structure and parameters of a rheological constitutive model for rocks, a new method based on differential evolution (DE) algorithm combined with FLAC3D (a numerical code for geotechnical engineering) was proposed for identification of the global optimum coupled of model structure and its parameters. At first, stochastic coupled mode was initialized, the difference in displacement between the numerical value and in-situ measurements was regarded as fitness value to evaluate quality of the coupled mode. Then the coupled-mode was updated continually using DE rule until the optimal parameters were found. 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Comparative testing of water-powered and pneumatic jackleg rock drill [C]\u002F\u002F SME Transactions Volume 296. California USA: University of California, 1995, 999–1002.",{},{"id":20,"text":1192,"url":20,"identifiers":1193},"ZHOU Zi-rong, LI Xi-bing, LIU Ying-chun. Research and experiment of water-powered rockdrill with supporting leg [J]. China Mechanical Engineering, 2004, 15(14): 1236–1239. (in Chinese)",{},{"id":20,"text":1195,"url":20,"identifiers":1196},"WU Xian-ming, LIU De-shun. The research and design of hydraulic-rock drill [J]. Machine Tool & Hydraulics, 2007, 35(4): 123–124. (in Chinese)",{},{"id":20,"text":1198,"url":20,"identifiers":1199},"ZHOU Zi-rong, PENG Hao-ke, ZENG Shu-lin. Research on the influence factors of leakage in annular clearance seals [J]. Lubrication Engineering, 2005(1): 7–9. (in Chinese)",{},{"id":20,"text":1201,"url":20,"identifiers":1202},"ZHOU Zi-rong, LI Xi-bing, LIU Ying-chun. Study and experiment on flow behavior of pressurized-water in annular micro-gaps [J]. 2005, 16(11): 1008–1012. (in Chinese)",{},{"id":20,"text":1204,"url":20,"identifiers":1205},"WU Xian-ming, LIU De-shun. Leakage and airproof of water pressure impact device [J]. Lubrication Engineering, 2002(6): 64–68. (in Chinese)",{},{"id":20,"text":1207,"url":20,"identifiers":1208},"ZHOU Zi-rong, LI Xi-bing, ZENG Shu-lin. Noise analysis and experimental study on water-powered impact rock drill [J]. Journal of Vibration and Shock, 2004, 23(4): 61–63. (in Chinese)",{},{"id":20,"text":1210,"url":20,"identifiers":1211},"ZHOU Zi-rong. Research on anti-erosion and anti-abrasion characteristics of impact piston materials for water-powered rock drills [J]. Construction Machinery and Equipment, 2004(12): 48–52. (in Chinese)",{},{"id":20,"text":1213,"url":20,"identifiers":1214},"ZHOU Zi-rong, ZENG Shu-lin, HU Zheng-xian, et al. 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Effective use of water in a system for water driven hammer drilling [J]. Tunneling and Underground Space Technology, 2004, 19(1): 69–78.",{"doi":1227},"10.1016\u002Fj.tust.2003.08.0011",{"id":20,"text":1229,"url":20,"identifiers":1230},"AI Qing-lin, ZHOU Hua, YANG Hua-yong. Data acquisition and processing of water hydraulic test rig [J]. Engineering Design, 2002, 9(2): 94–96. (in Chinese)",{},{"id":20,"text":1232,"url":20,"identifiers":1233},"YANG Shu-dong, HE Xiao-feng, LI Zhuang-yun, et al. Design and study of sea water hydraulic pump test standi [J]. Hydraulics & Pneumatics, 1997(6): 11–12. (in Chinese)",{},{"id":20,"text":1235,"url":20,"identifiers":1236},"YANG Shu-dong, YU Zu-yao, HE Xiao-feng, et al. Study on flippers for raw water hydraulic axial piston pumps and motors [C]\u002F\u002F Proc of the 3rd Int Symposium on Fluid Power Transmission and Control. 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