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The lateral vibration of loaded shafts in the neighbourhood of a whirling speed-The effect of want of balance[J]. The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science, 1919, 37(219): 304–314.\nFÖPPL A. Das problem der lavalschen turbinenwelle[J]. Der Civilingenieur, 1895, 4: 335–342.\nPROHL M A. A general method for calculating critical speeds of flexible rotors[J]. Journal of Applied Mechanics, 1945, 12(3): 142–148.\nHORNER G C, PILKEY W D. The Riccati transfer matrix method[J]. Theory of Acoustic Filters, 1977, 883–885.\nRUHL R L, BOOKER J F. A finite element model for distributed parameter turborotor systems[J]. Journal of Engineering for Industry, 1972, 94(1): 126–134.\nZORZI E S, NELSON H D. Finite element simulation of rotor-bearing systems with internal damping[J]. Journal of Engineering for Power, 1977, 99(1): 71–76.\nJING Jianping, MENG Guang, SUN Yi, et al. On the oil-whipping of a rotor-bearing system by a continuum model[J]. Applied Mathematical Modelling, 2005, 29(5): 461–475.\nRAO J S, SREENIVAS R. Dynamics of a three level rotor system using solid elements[C]\u002F\u002F ASME Turbo Expo, Atlanta, US, 2003.\nYING Guangchi, MENG Guang, JING Jianping. Turbocharger rotor dynamics with foundation excitation[J]. Archive of Applied Mechanics, 2009, 79(4): 287–299.\nWANG Weimin, GAO Jinji, HUANG Liquan, et al. Experimental investigation on vibration control of rotor-bearing system with active magnetic exciter[J]. Chinese Journal of Mechanical Engineering, 2011, 24(6): 1 013–1 021.\nHAN Fengtian, WU Qiuping, ZHANG Rong. Modeling and analysis of a micromotor with an electrostatically levitated rotor[J]. Chinese Journal of Mechanical Engineering, 2009, 22(1): 1–8.\nTIAN L, WANG W J, PENG Z J. Dynamic behaviours of a full floating ring bearing supported turbocharger rotor with engine excitation[J]. Journal of Sound and Vibration, 2011, 330(20): 4 851–4 874.\nELMQVIST H, MATTSSON S E, OTTER M. Modelica-a language for physical system modeling, visualization and interaction[C]\u002F\u002F IEEE Symposium on Computer-Aided Control System Design, Hawaii, US, 1999.\nELMQVIST H. A structured model language for large continuous systems[D]. Lund Institute of Technology, 1978.\nPETZOLD L R. Description of DASSL: a differential\u002Falgebraic system solver[R]. Sandia National Labs., Livermore, CA, US, 1982.\nPULECCHI T, CASELLA F, LOVERA M. Object-oriented modelling for spacecraft dynamics: tools and applications[J]. Simulation Modelling Practice and Theory, 2010, 18(1): 63–86.\nBONVINI M, LEVA A. Object-oriented sub-zonal modelling for efficient energy-related building simulation[J]. Mathematical and Computer Modelling of Dynamical Systems, 2011, 17(6): 543–559.\nCAMMI A, CASELLA F, RICOTTI M E, et al. An object-oriented approach to simulation of IRIS dynamic response[J]. Progress in Nuclear Energy, 2011, 53(1): 48–58.\nMO Yufeng, MENG Guang. Dymola-based modeling of SRD in aircraft electrical system[J]. IEEE Transactions on Aerospace and Electronic Systems, 2006, 42(1): 220–227.\nCHEN Qiongzhong, MENG Guang, MO Yufeng, et al. Analytical nonlinear modeling of SRM and its system-level simulation with airborne power system[C]\u002F\u002FIEEE International Conference on Industrial Technology, Chengdu, China, 2008.\nZHOU Fanli, CHEN Liping, WU Yizhong, et al. MWorks: a modern IDE for modeling and simulation of multidomain physical systems based on Modelica[C]\u002F\u002FProceedings of the 5th International Modelica Conference, Vienna, Austria, 2006.\nPAPADOPOULOS C A, DIMAROGONAS A D. Stability of cracked rotors in the coupled vibration mode[J]. Rotating Machinery Dynamics, 1987, 25–34.\nGASCH R. A survey of the dynamic behaviour of a simple rotating shaft with a transverse crack[J]. Journal of Sound and Vibration, 1993, 160(2): 313–332.\nSEKHAR A S. Vibration characteristics of a cracked rotor with two open cracks[J]. Journal of Sound and Vibration, 1999, 223(4): 497–512.\nMENG Guang. The nonlinear influences of whirl speed on the stability and response of a cracked rotor[J]. Journal of Machine Vibration, 1992, 6(4): 216–230.\nGRABOWSKI B. The vibrational behavior of a turbine rotor containing a transverse crack[J]. Journal of Mechanical Design, 1980, 102: 140–146.\nMAYES I W, DAVIES W G R. Analysis of the response of a multi-rotor-bearing system containing a transverse crack in a rotor[J]. Journal of vibration, acoustics, stress, and reliability in design, 1984, 106(1): 139–145.\nSAWICKI J T, GYEKENYESI A L, BAAKLINI G Y. Analysis of transient response of cracked flexible rotor[J]. Proceedings of SPIE, 2004, 5 393: 142–150.\nGAO Jianmin, ZHU Xiaomei. Study on the model of the shaft crack opening and closing[J]. Chinese Journal of Applied Mechanics, 1992, 9(1): 108–112. (in Chinese)\nMUSZYNSKA A. Rub-an important malfunction in rotating machinery[C]\u002F\u002FProceeding of Senior Mechanical Engineering Seminar. Carson City, NV, US, 1983: 61–66.\nMUSZYNSKA A. Stability of whirl and whip in rotor\u002Fbearing systems [J]. Journal of Sound and Vibration, 1988, 127(1): 49–64.\nCHU F, ZHANG Z. Bifurcation and chaos in a rub-impact Jeffcott rotor system[J]. Journal of Sound and Vibration, 1998, 210(1): 1–18.\nMUSZYNSKA A, GOLDMAN P. Chaotic responses of unbalanced rotor\u002Fbearing\u002Fstator systems with looseness or rubs[J]. Chaos, Solitons & Fractals, 1995, 5(9): 1 683–1 704.\nWEN Bangchun, LI Zhenping, YAO Hongliang. Dynamics of rotorbearing system with coupling faults of pedestal looseness and rub-impact[C]\u002F\u002F11th World Congress in Mechanism and Machine Science. Tianjin, China, 2004: 2 163–2 168.\nCHU F, TANG Y. Stability and non-linear responses of a rotor-bearing system with pedestal looseness[J]. Journal of Sound and Vibration, 2001, 241(5): 879–893.",{"EN":167},"Modelica-based object-orient method is proved to be rapid, accurate and easy to modify, which is suitable for prototype modeling and simulation of rotor system, whose parameters need to be modified frequently. Classical non-object-orient method appears to be inefficient because the code is difficult to modify and reuse. An adequate library for object-orient modeling of rotor system with multi-faults is established, a comparison with non-object-orient method on Jeffcott rotor system and a case study on turbo expander with multi-faults are implemented. The relative tolerance between object-orient method and non-object-orient is less than 0.03%, which proves that these two methods are as accurate as each other. Object-orient modeling and simulation is implemented on turbo expander with crack, rub-impact, pedestal looseness and multi-faults simultaneously. It can be conclude from the case study that when acting on compress side of turbo expander separately, expand wheel is not influenced greatly by crack fault, the existence of rub-impact fault forces expand wheel into quasi-periodic motion and the orbit of expand wheel is deformed and enhanced almost 1.5 times due to pedestal looseness. When acting simultaneously, multi-faults cannot be totally decomposed but can be diagnosed from the feature of vibration. Object-orient method can enhance the efficiency of modeling and simulation of rotor system with multi-faults, which provides an efficient method on prototype modeling and simulation.",{"EN":169},"Modelica-based object-orient modeling of rotor system with multi-faults",{"VOID":171},"10.3901\u002FCJME.2013.06.1169","PUBLICATION","VERIFIED","Auto 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Li",{"id":195,"sortIndex":196,"researcher":18,"roles":197,"affiliations":198,"properties":204},"a0a45b0f-92b5-4f48-82bc-ac9200011277",3,[181],[199],{"id":18,"sortIndex":19,"affiliation":200,"properties":18},{"id":185,"createTime":186,"updateTime":186,"relativeEntities":201,"slug":18,"properties":202,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":203},{"VI":190},{"title":205},{"VI":206},"Hongguang Li",{"id":208,"sortIndex":209,"researcher":18,"roles":210,"affiliations":211,"properties":217},"98177b15-2399-4621-82f2-859e725d4823",1,[181],[212],{"id":18,"sortIndex":19,"affiliation":213,"properties":18},{"id":185,"createTime":186,"updateTime":186,"relativeEntities":214,"slug":18,"properties":215,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":216},{"VI":190},{"title":218},{"VI":219},"Yu Wang",{"id":221,"sortIndex":19,"researcher":18,"roles":222,"affiliations":223,"properties":229},"0b0c5546-3318-471c-b9cd-a5af75cf87da",[181],[224],{"id":18,"sortIndex":19,"affiliation":225,"properties":18},{"id":185,"createTime":186,"updateTime":186,"relativeEntities":226,"slug":18,"properties":227,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":228},{"VI":190},{"title":230},{"VI":231},"Ming Li",{"id":233,"sortIndex":57,"researcher":18,"roles":234,"affiliations":235,"properties":241},"6ef48ed3-aff2-41b6-b27f-7c8eae930c88",[181],[236],{"id":18,"sortIndex":19,"affiliation":237,"properties":18},{"id":185,"createTime":186,"updateTime":186,"relativeEntities":238,"slug":18,"properties":239,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":240},{"VI":190},{"title":242},{"VI":243},"Guang Meng","ARTICLE",{"url":175,"publisher":246,"properties":273},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":247,"slug":10,"properties":248,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":251,"manageAffiliations":252,"indexDatabases":253,"url":18,"thumbnailPath":18,"statistic":268,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":249,"title":250},{"VOID":13},{"EN":15},[],[],[254,261],{"id":80,"indexDatabase":255,"url":93,"indexYears":94,"academicFieldIds":260,"indexDatabaseRanking":18},{"id":82,"createTime":83,"updateTime":84,"relativeEntities":256,"label":257,"description":258,"key":90,"publicationTags":259,"standard":18},[],{"EN":87,"VI":87},{"EN":87,"VI":89},[92],[96,97],{"id":61,"indexDatabase":262,"url":76,"indexYears":18,"academicFieldIds":267,"indexDatabaseRanking":18},{"id":63,"createTime":64,"updateTime":65,"relativeEntities":263,"label":264,"description":265,"key":72,"publicationTags":266,"standard":18},[],{"EN":68,"VI":68},{"VI":70,"EN":71},[74,75],[78],{"impactFactor":19,"impactFactorByYear":269,"i10Index":110,"i10IndexLast5Year":111,"totalPublication":112,"totalPublicationByYear":270,"totalCitation":126,"totalCitationByYear":271,"totalCitationPerPublication":139,"totalCitationPerPublicationByYear":272,"hindexLast5Year":152,"hindex":152},{"2013":100,"2014":101,"2015":102,"2016":103,"2017":104,"2018":105,"2019":105,"2020":106,"2021":107,"2022":108,"2023":109},{"2012":114,"2013":115,"2014":116,"2015":117,"2016":118,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":114,"2023":124,"2024":125},{"2012":128,"2013":129,"2014":130,"2015":131,"2016":132,"2017":133,"2018":134,"2019":135,"2020":136,"2021":137,"2022":138},{"2012":141,"2013":142,"2014":143,"2015":144,"2016":145,"2017":146,"2018":147,"2019":148,"2020":149,"2021":150,"2022":151},{"volume":274,"pages":276},{"VOID":275},"26",{"VOID":277},"1169-1181","2013-11-20",2013,false,{"id":282,"createTime":283,"updateTime":284,"relativeEntities":285,"slug":286,"properties":287,"entityType":172,"verifyStatus":173,"verifyTime":284,"verifyNote":174,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":296,"fullTextUrl":18,"authors":297,"publicationType":244,"publisherRelationship":402,"citationCount":18,"citationInfo":18,"publishDate":435,"publishYear":436,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":280},"c06e78d7-2f42-435e-86fb-b48cde8ff795","2024-02-21T01:49:13.476+00:00","2024-12-11T23:52:24.719+00:00",[],"Optimization-of-Uncertain-Structures-with-Interval-Parameters-Considering-Objective-and-Feasibility-Robustness",{"references":288,"abstract":290,"title":292,"doi":294},{"VOID":289},"B Y Liu, S X Huang, W H Fan, et al. Data driven uncertainty evaluation for complex engineered system design. Chinese Journal of Mechanical Engineering, 2016, 29(5): 889–900.\nJ Cheng, Y X Feng, Z Q Lin, et al. Anti-vibration optimization of the key components in a turbo-generator based on heterogeneous axiomatic design. Journal of Cleaner Production, 2017, 141: 1467–1477.\nC Yang, S Tangaramvong, W Gao, et al. Interval elastoplastic analysis of structures. Computers & Structures, 2015, 151: 1–10.\nX Y Long, C Jiang, C Yang, et al. A stochastic scaled boundary finite element method. Computer Methods in Applied Mechanics Engineering, 2016, 308: 23–46.\nY P Ju, C H Zhang. Robust design optimization method for centrifugal impellers under surface roughness uncertainties due to blade fouling. Chinese Journal of Mechanical Engineering, 2016, 29(2): 301–314.\nT Ma, W G Zhang, Y Zhang, et al. Multi-parameter sensitivity analysis and application research in the robust optimization design for complex nonlinear system. Chinese Journal of Mechanical Engineering, 2015, 28(1): 55–62.\nF Y Li, G Y Sun, X D Huang, et al. Multiobjective robust optimization for crashworthiness design of foam filled thin–walled structures with random and interval uncertainties. Engineering Structures, 2015, 88: 111–124.\nX Guo, X F Zhao, W S Zhang, et al. Multi-scale robust design and optimization considering load uncertainties. Computer Methods in Applied Mechanics Engineering, 2015, 283: 994–1009.\nZ Kang, B Song. On robust design optimization of truss structures with bounded uncertainties. Structural and Multidisciplinary Optiomization, 2013, 47(5): 699–714.\nN Changizi, M Jalalpour. Robust topology optimization of frame structures under geometric or material properties uncertainties. Structural and Multidisciplinary Optimization, 2017, 56(4): 791–807.\nJ D Deng,W Chen. Concurrent topology optimization of multiscale structures with multiple porous materials under random field loading uncertainty. Structural and Multidisciplinary Optimization, 2017, 56(1): 1–19.\nI Doltsinis, Z Kang, G D Cheng, Robust design of non-linear structures using optimization methods, Computer Methods in Applied Mechanics Engineering, 2005, 194(12–16): 1779–1795.\nZ L Tang, J Périaux. Uncertainty based robust optimization method for drag minimization problems in aerodynamics. Computer Methods in Applied Mechanics Engineering, 2012, 217–220(1): 12–24.\nJ P Zhao, C J Wang. Robust topology optimization under loading uncertainty based on linear elastic theory and orthogonal diagonalization of symmetric matrices. Computer Methods in Applied Mechanics Engineering, 2014, 273: 204–218.\nM A Sahali, I Belaidi, R Serra. Efficient genetic algorithm for multi–objective robust optimization of machining parameters with taking into account uncertainties. International Journal of Advanced Manufacturing Technology, 2015, 77: 677–688.\nJ Martínez–Frutos, D Herrero–Pérez, M Kessler, et al. Robust shape optimization of continuous structures via the level set method. Computer Methods in Applied Mechanics Engineering, 2016, 305: 271–291.\nJ L Wu, Z Luo, Y Q Zhang, et al. Interval uncertain method for multibody mechanical systems using Chebyshev inclusion functions. International Journal for Numerical Methods Engineering, 2013, 95(7): 608–630.\nD Wu, W Gao, G Lib, et al. Robust assessment of collapse resistance of structures under uncertain loads based on Info–Gap model. Computer Methods in Applied Mechanics Engineering, 2015, 285: 208–227.\nS X Guo, Z Z Lu. A non–probabilistic robust reliability method for analysis and design optimization of structures with uncertain–but–bounded parameters. Applied Mathematical Modelling, 2015, 39: 1985–2002.\nF T K Au, Y S Cheng, L G Tham, et al. Robust design of structures using convex models. Computers & Structures, 2003, 81(28–29): 2611–2619.\nTakewaki, Y Ben–Haim. Info–gap robust design with load and model uncertainties. Journal of Sound and Vibration, 2005, 288(3): 551–570.\nW Sun, R M Dong, H W Xu. A novel non–probabilistic approach using interval analysis for robust design optimization. Journal of Mechanical Science and Technology, 2009, 23: 319–3208.\nG Karer, I Skrjanc. Interval–model–based global optimization framework for robust stability and performance of PID controllers. Applied Soft Computing, 2016, 40: 526–543.\nY L Li, X J Wang, R Huang, et al. Actuator placement robust optimization for vibration control system with interval parameters. Aerospace Science and Technology, 2015, 45: 88–98.\nF Y Li, Z Luo, G Y Sun, et al. Interval multi–objective optimization using Kriging model: Interval multi–objective optimisation of structures using adaptive Kriging approximations. Computers & Structures, 2013, 119(1): 68–84.\nJ Cheng, G F Duan, Z Y Liu, et al. Interval multiobjective optimization of structures based on radial basis function, interval analysis, and NSGA–II. Journal of Zhejiang University–Science A, 2014, 15(10): 774–788.\nJ Cheng, Z Y Liu, Z Y Wu, et al. Direct optimization of uncertain structures based on degree of interval constraint violation. Computers & Structures, 2016, 164: 83–94.\nB Q Hu, S Wang. A novel approach in uncertain programming part I: New arithmetic and order relations for interval numbers. Journal of Industrial and Management Optimization, 2006, 2(4): 351-371.\nJ Cheng, Z Y Liu, Z Y Wu, et al. Robust optimization of structural dynamic characteristics based on Kriging model and CNSGA. Structural and Multidisciplinary Optimization, 2015, 51(2): 423–437.\nJ Cheng, M Y Tang, Z Y Liu, et al. Direct reliability–-based design optimization of uncertain structures with interval parameters. Journal of Zhejiang University–Science A, 2016, 17(11): 841–854.",{"EN":291},"For the purpose of improving the mechanical performance indices of uncertain structures with interval parameters and ensure their robustness when fluctuating under interval parameters, a constrained interval robust optimization model is constructed with both the center and halfwidth of the most important mechanical performance index described as objective functions and the other requirements on the mechanical performance indices described as constraint functions. To locate the optimal solution of objective and feasibility robustness, a new concept of interval violation vector and its calculation formulae corresponding to different constraint functions are proposed. The mathematical formulae for calculating the feasibility and objective robustness indices and the robustness-based preferential guidelines are proposed for directly ranking various design vectors, which is realized by an algorithm integrating Kriging and nested genetic algorithm. The validity of the proposed method and its superiority to present interval optimization approaches are demonstrated by a numerical example. The robust optimization of the upper beam in a high-speed press with interval material properties demonstrated the applicability and effectiveness of the proposed method in engineering.",{"EN":293},"Optimization of Uncertain Structures with Interval Parameters Considering Objective and Feasibility Robustness",{"VOID":295},"10.1186\u002Fs10033-018-0244-3","https:\u002F\u002Fcjme.springeropen.com\u002Farticles\u002F10.1186\u002Fs10033-018-0244-3",[298,323,340,352,364,390],{"id":299,"sortIndex":196,"researcher":18,"roles":300,"affiliations":301,"properties":320},"d0414ce6-fe79-4ec0-b6a4-1b2df4091008",[181],[302,312],{"id":303,"sortIndex":209,"affiliation":304,"properties":311},"3daf1f4e-187f-401a-a255-b1d80c832ff9",{"id":305,"createTime":306,"updateTime":306,"relativeEntities":307,"slug":18,"properties":308,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"a2e537ef-9fba-4771-a5fa-5981bf566c11","2024-01-11T20:27:48.346+00:00",[],{"title":309},{"VI":310},"Key Laboratory of Micro-Systems and Micro-Structures Manufacturing of Ministry of Education, Harbin Institute of Technology, Harbin, China",{},{"id":18,"sortIndex":19,"affiliation":313,"properties":18},{"id":314,"createTime":315,"updateTime":315,"relativeEntities":316,"slug":18,"properties":317,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"95d8b877-64b3-4fe8-83e8-2903fbf27670","2024-01-12T21:22:09.891+00:00",[],{"title":318},{"VI":319},"State Key Laboratory of Fluid Power & Mechatronic Systems, Zhejiang University, Hangzhou, China",{"title":321},{"VI":322},"Yang-Yan Zhang",{"id":324,"sortIndex":209,"researcher":18,"roles":325,"affiliations":326,"properties":337},"8984842e-f62b-4ba2-afd6-8fb30cf50e11",[181],[327],{"id":18,"sortIndex":19,"affiliation":328,"properties":18},{"id":329,"createTime":330,"updateTime":331,"relativeEntities":332,"slug":333,"properties":334,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"06e84575-4b9e-468e-89d9-fc3d42600a2f","2024-04-16T00:21:07.213+00:00","2025-06-11T19:57:49.378+00:00",[],"State-Key-Laboratory-of-CAD-CG-Zhejiang-University-Hangzhou-China",{"title":335},{"EN":336},"State Key Laboratory of CAD&CG, Zhejiang University, Hangzhou, China",{"title":338},{"VI":339},"Zhen-Yu 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Tan",{"id":365,"sortIndex":125,"researcher":18,"roles":366,"affiliations":367,"properties":387},"66ef1ab5-d0fd-4733-96d4-ed826e0bdd99",[181],[368,375,380],{"id":369,"sortIndex":179,"affiliation":370,"properties":374},"750ee7cd-376e-4059-9a07-eece9a68005d",{"id":305,"createTime":306,"updateTime":306,"relativeEntities":371,"slug":18,"properties":372,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":373},{"VI":310},{},{"id":18,"sortIndex":19,"affiliation":376,"properties":18},{"id":314,"createTime":315,"updateTime":315,"relativeEntities":377,"slug":18,"properties":378,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":379},{"VI":319},{"id":381,"sortIndex":209,"affiliation":382,"properties":386},"7825d238-559f-4c79-8e4e-ed834889c482",{"id":329,"createTime":330,"updateTime":331,"relativeEntities":383,"slug":333,"properties":384,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":385},{"EN":336},{},{"title":388},{"VI":389},"Gui-Fang 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M, JOHANNES M, LECHNER M, et al. A review on tailored blanks—Production, applications and evaluation[J]. Journal of Materials Processing Technology, 2014, 214(2): 151–164.\nABBASI M, KETABCHI M, RAMAZANI A, et al. Investigation into the effects of weld zone and geometric discontinuity on the formability reduction of tailor welded blanks[J]. Computational Materials Science, 2012, 59: 158–164.\nVEERA B K, GANESH N R, SARAVANA K G. An expert system for predicting the deep drawing behavior of tailor welded blanks[J]. Expert Systems with Applications, 2010, 37(12): 7802–7812.\nKUMAR P S, RAVI K D. Improvement in formability of tailor welded blanks by application of counter pressure in biaxial stretch forming[J]. Journal of Materials Processing Technology, 2008, 204(1–3): 70–79.\nDUAN Yongchuan, GUAN Yingping. Development of precise spring-back control system of tailor welded blanks air bending process[J]. Journal of Mechanical Engineering, 2014, 50(10): 40–47. (in Chinese)\nZADPOOR A A, SINKE J, BENEDICTUS R. Experimental and numerical study of machined aluminum tailor-made blanks[J]. Journal of Materials Processing Technology, 2008, 200(1–3): 288–299.\nLEE W, CHUNG K H, KIM D, et al. Experimental and numerical study on formability of friction stir welded TWB sheets based on hemispherical dome stretch tests[J]. International Journal of Plasticity, 2009, 25(9): 1626–1654.\nRAYMOND S D, WILD P M, BAYLEY C J. On modeling of the weld line in finite element analyses of tailor-welded blank forming operations[J]. Journal of Materials Processing Technology, 2004, 147(1): 28–37.\nCHENG C H, JIE M, CHAN L C, et al. True stress-strain analysis on weldment of heterogeneous tailor-welded blanks — a novel approach for forming simulation[J]. International Journal of Mechanical Sciences, 2007, 49(2): 217–229.\nMILIAN J L, ADONYI Y. Formability of tailored blanks for automotive applications[C]\u002F\u002F 34th MWSP Conference Proceedings, Montreal, Canada, October 25–28, 1992: 83–91.\nABDULLAH K, WILD P M, JESWIET J J, et al. Tensile testing for weld deformation properties in similar gage tailor welded blanks using the rule of mixtures[J]. Journal of Materials Processing Technology, 2001, 112(1): 91–97.\nCHUNG K, LEE W, KIM D, et al. Macro-performance evaluation of friction stir welded automotive tailor-welded blank sheets: Part I — Material properties[J]. International Journal of Solids and Structures, 2010, 47(7–8): 1048–1062.\nKIM D, LEE W, KIM J, et al. Macro-performance evaluation of friction stir welded automotive tailor-welded blank sheets: Part II-Formability[J]. International Journal of Solids and Structures, 2010, 47(7–8): 1063–1081.\nKHALFALLAH A. Experimental and numerical assessment of mechanical properties of welded tubes for hydroforming[J]. Materials and Design, 2014, 56: 782–790.\nTABOR D. The hardness of metals[M]. London: Oxford University Press, 1951.\nZORZI J E, PEROTTONI C A. Estimating Young’s modulus and Poisson’s ratio by instrumented indentation test[J]. Materials Science and Engineering A, 2013, 574: 25–30.\nKUCHARSKI S, MROZ Z. Identification of yield stress and plastic hardening parameters from a spherical indentation test[J]. International Journal of Mechanical Science, 2007, 49(11): 1238–1250.\nMOY C K S, BOCCIARELLI M, RINGER S P, et al. Identification of the material properties of Al 2024 alloy by means of inverse analysis and indentation tests[J]. Materials Science and Engineering A, 2011, 529: 119–130.\nJOCK M Y, CHICOT D, DECOOPMAN X, et al. Mechanical tensile properties by spherical macro indentation using an indentation strain-hardening exponent[J]. International Journal of Mechanical Sciences, 2013, 75: 257–264.\nVENKATESH T A, VAN K J, GIANNAKOPOULS A E, et al. Determination of elastoplastic properties by instrumented sharp indentation: guidelines for property extraction[J]. Scripta Materialia, 2000, 42(9): 833–839.\nGIANNAKOPOULOS A E, SURESH S. Determination of elastoplastic properties by instrumented sharp indentation[J]. Scripta Materialia, 1999, 40(10): 1191–1198.\nGIANNAKOPOULOS A E, LARSON L P, VESTERGAARD R. Analysis of Vickers indentation[J]. International Journal of Solids and Structures, 1994, 31(19): 2679–2708.\nSURESH S, GIANNAKOPOULOS A E. A new method for estimating residual stress by instrumented sharp indentation[J]. Acta Materialia, 1998, 46(16): 5755–5767.",{"EN":447},"The elastoplastic mechanical properties of the weld and heat affected zone metals have comparatively major impact on the forming process of tailor-welded blanks. A few scholars investigated the elastoplastic mechanical properties of the weld and heat affected zone, but they only simply assumed that it was a uniform distribution elastoplastic material different from the base materials. Four types of tailor-welded blanks which consist of ST12 and 304 stainless steel plates are selected as the research objects, the elastoplastic mechanical properties of the tailor-welded blanks weld and heat affected zone metals are obtained based on the nanoindentation tests, and the Erichsen cupping tests are conducted by combining numerical simulation with physical experiment. The nanoindentation tests results demonstrate that the elastoplastic mechanical properties of the weld and heat affected zone metals are not only different from the base materials, but also varying between the weld metals and the heat affected zone metals. Comparing the Erichsen cupping test resulted from numerical with that from experimental method, it is found that the numerical value of Erichsen cupping test which consider the elastoplastic mechanical properties of the weld and heat affected zone metals have a good agreement with the experimental result, and the relative error is only 4.8%. The proposed research provides good solutions for the inhomogeneous elastoplastic mechanical properties of the tailor-welded blanks weld and heat affected zone metals, and improves the control performance of tailor-welded blanks forming accuracy.",{"EN":449},"Determination of elastoplastic mechanical properties of the weld and heat affected zone metals in tailor-welded blanks by nanoindentation test",{"VOID":451},"10.3901\u002FCJME.2015.0320.035","2025-01-08T23:51:52.140+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.3901\u002FCJME.2015.0320.035",[455,470,482],{"id":456,"sortIndex":209,"researcher":18,"roles":457,"affiliations":458,"properties":467},"25a76147-5639-495b-935e-a7f8a1a8bfc5",[181],[459],{"id":18,"sortIndex":19,"affiliation":460,"properties":18},{"id":461,"createTime":462,"updateTime":462,"relativeEntities":463,"slug":18,"properties":464,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"28522ea9-b5b6-48cd-b775-033907988ce2","2024-01-10T08:39:07.053+00:00",[],{"title":465},{"VI":466},"Key Laboratory of Advanced Forming & Stamping Technology and Science of Ministry of Education, Yanshan University, Qinhuangdao, China",{"title":468},{"VI":469},"Yingping Guan",{"id":471,"sortIndex":19,"researcher":18,"roles":472,"affiliations":473,"properties":479},"e454006d-2ae4-4773-9a43-c9cf21f18d7d",[181],[474],{"id":18,"sortIndex":19,"affiliation":475,"properties":18},{"id":461,"createTime":462,"updateTime":462,"relativeEntities":476,"slug":18,"properties":477,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":478},{"VI":466},{"title":480},{"VI":481},"Xiangdong Ma",{"id":483,"sortIndex":179,"researcher":18,"roles":484,"affiliations":485,"properties":491},"68266e53-a5f5-4ff6-8e01-f3c4616eb404",[181],[486],{"id":18,"sortIndex":19,"affiliation":487,"properties":18},{"id":461,"createTime":462,"updateTime":462,"relativeEntities":488,"slug":18,"properties":489,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":490},{"VI":466},{"title":492},{"VI":493},"Liu Yang",{"url":453,"publisher":495,"properties":522},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":496,"slug":10,"properties":497,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":500,"manageAffiliations":501,"indexDatabases":502,"url":18,"thumbnailPath":18,"statistic":517,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":498,"title":499},{"VOID":13},{"EN":15},[],[],[503,510],{"id":80,"indexDatabase":504,"url":93,"indexYears":94,"academicFieldIds":509,"indexDatabaseRanking":18},{"id":82,"createTime":83,"updateTime":84,"relativeEntities":505,"label":506,"description":507,"key":90,"publicationTags":508,"standard":18},[],{"EN":87,"VI":87},{"EN":87,"VI":89},[92],[96,97],{"id":61,"indexDatabase":511,"url":76,"indexYears":18,"academicFieldIds":516,"indexDatabaseRanking":18},{"id":63,"createTime":64,"updateTime":65,"relativeEntities":512,"label":513,"description":514,"key":72,"publicationTags":515,"standard":18},[],{"EN":68,"VI":68},{"VI":70,"EN":71},[74,75],[78],{"impactFactor":19,"impactFactorByYear":518,"i10Index":110,"i10IndexLast5Year":111,"totalPublication":112,"totalPublicationByYear":519,"totalCitation":126,"totalCitationByYear":520,"totalCitationPerPublication":139,"totalCitationPerPublicationByYear":521,"hindexLast5Year":152,"hindex":152},{"2013":100,"2014":101,"2015":102,"2016":103,"2017":104,"2018":105,"2019":105,"2020":106,"2021":107,"2022":108,"2023":109},{"2012":114,"2013":115,"2014":116,"2015":117,"2016":118,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":114,"2023":124,"2024":125},{"2012":128,"2013":129,"2014":130,"2015":131,"2016":132,"2017":133,"2018":134,"2019":135,"2020":136,"2021":137,"2022":138},{"2012":141,"2013":142,"2014":143,"2015":144,"2016":145,"2017":146,"2018":147,"2019":148,"2020":149,"2021":150,"2022":151},{"volume":523,"pages":525},{"VOID":524},"28",{"VOID":526},"911-918","2015-04-27",2015,{"id":530,"createTime":531,"updateTime":532,"relativeEntities":533,"slug":534,"properties":535,"entityType":172,"verifyStatus":173,"verifyTime":532,"verifyNote":174,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":544,"fullTextUrl":18,"authors":545,"publicationType":244,"publisherRelationship":625,"citationCount":18,"citationInfo":18,"publishDate":658,"publishYear":659,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":280},"21973f3a-c6d5-46f6-9d5e-1d823eee0e0a","2023-12-07T05:55:10.187+00:00","2025-01-17T23:50:25.120+00:00",[],"Objective-evaluation-method-of-steering-comfort-based-on-movement-quality-evaluation-of-driver-steering-maneuver",{"references":536,"abstract":538,"title":540,"doi":542},{"VOID":537},"LI Liang, SONG Jian, LI Hongzhi et al. Comprehensive prediction method of road friction for vehicle dynamics control[J]. Proc. Inst. Mech. Eng. Part D-J. Automob. Eng., 2009, 223(8): 987–1002.\nLI Liang, SONG Jian, KONG Lei, et al. Vehicle velocity estimation for real-time dynamic stability control[J]. Int. J. Automot. Technol., 2009, 10(6): 675–685.\nLI Liang, LI Hongzhi, ZHANG Xiaolong, et al. A real-time tire parameters observer for vehicle dynamics stability control[J]. Chin. J. Mech. Eng., 2010, 23(5): 620–626.\nZHU Hongjun, LI Liang, JIN Maojing, et al. Real-time yaw rate prediction based on a non-linear model and feedback compensation for vehicle dynamics control[J]. Proc. Inst. Mech. Eng. Part D-J. Automob. Eng., 2013, 227(10): 1431–1445.\nNA S, LIM S, CHOI H S, et al. Evaluation of driver’s discomfort and postural change using dynamic body pressure distribution[J]. International Journal of Industrial Ergonomics, 2005, 35(12): 1085–1096.\nCHAI Chunlei. Research on the technology of ergonomics design based on driving posture prediction model[D]. Hangzhou: Zhejiang University, 2005 (in Chinese)\nREBIFFE R. The driving seat: Its adaptation to functional and anthropometric requirements[J]. Proceedings of a Symposium on Sitting Posture, 1969: 132–147.\nGRANDJEAN E. Sitting posture of car drivers form the point of view of ergonomics[J]. Human Factors in Transportation research, 1980, 2: 205–213.\nPORTER J M, GYI D E. Exploring the optimum posture for driver comfort[J]. International Journal of Vehicle Design, 1998, 19(3): 255–266.\nPARK S J, KIM C B, KIM C J, et al. Comfortable driving postures for Koreans[J]. International Journal of Industrial Ergonomics, 2000, 26(4): 489–497.\nANDREONI G, SANTAMBROGIO G C, RABUFFETTI M, et al. Method for the analysis of posture and interface pressure of car drivers[J]. Applied Ergonomics, 2002, 33(6): 511–522.\nMOHAMAD D, DEROS B M, WAHAB D A, et al. Integration of comfort into a driver’s car seat design using image analysis[J]. American Journal of Applied Sciences, 2010, 7(7): 937–942.\nBUBB H, ESTERMANN S. Influence of forces on comfort feeling in vehicles[G]. SAE Paper 2000-01-2171.\nPIAO Shengjun. Driver postural comfort estimation based on the loss function[J]. Journal of Shenyang Institute of Aeronautical Engineering, 2006, 23(1): 32–34. (in Chinese)\nALESSANDRO N, SANDRO M. Postural comfort inside a car: development of an innovative model to evaluate the discomfort level[J]. SAE International Journal of Passenger Cars-Mechanical Systems, 2009, 2(1): 1065–1070.\nDUFOUR F, WANG Xuguang. Discomfort assessment of car ingress\u002Fegress motions using the concept of neutral movement[J]. SAE Transactions, 2005, 114(6): 2905–2913.\nWANG Rui, ZHUANG Damin. Layout optimization of cockpit based on human comfort[J]. Acta Armament ARII, 2008, 29(9): 1149–1152. (in Chinese)\nCHEN Jinghui. Research on the simulation of heavy commercial vehicle driver’s seating posture comfort[D]. Changchun: Jilin University, 2009 (in Chinese)\nLIU Yahui, JI Xuewu, HAYAMA R, et al. Function of shoulder muscles of driver in vehicle steering maneuver[J]. Sci. China Ser. E-Technol. Sci., 2012, 55(12): 3445–3454.\nLIU Yahui, JI Xuewu, HAYAMA R, et al. A novel estimating method for steering efficiency of the driver with EMG signals[J]. Chin. J. Mech. Eng., 2014, 27(3): 460–467.\nLIU Yahui, JI Xuewu, HAYAMA R, et al. Measurement method of Driver Steering Efficiency Using Electromyography[J]. Proc. Inst. Mech. Eng. Part D-J. Automob. Eng., 2014, Available Online: doi:10.1177\u002F0954407013502950.\nCHEVALOT N, WANG Xuguang. An experimental investigation of the discomfort of arm reaching movements in a seated position[J]. SAE Transactions, 2004, 113(1): 98–103.\nWANG Xuguang. Three-dimensional kinematic analysis of influence of hand orientation and joint limits on the control of arm postures and movements [J]. Biological cybernetics, 1999, 80(6): 449–463.\nYANG Nianfeng, HUANG Changhua, WANG Rencheng, et al. Motion quality evaluation of point-touching movement of index finger[J]. Modern Rehabilitation, 2000, 4(5): 656–658. (in Chinese)\nFISCHER C A, KONDRASKE G V. A new approach to human motion quality measurement[C]\u002F\u002FEngineering in Medicine and Biology Society, 1997. Proceedings of the 19th Annual International Conference of the IEEE. Chicago, IL, USA, 1997, 4: 1701–1704.\nMAGENES G, VERCHER J L, GAUTHIER G M. Hand movement strategies in telecontrolled motion along 2-D trajectories[J]. Systems, Man and Cybernetics, IEEE Transactions on, 1992, 22(2): 242–257.\nFENG C J, MAK A F T. Three-dimensional motion analysis of the voluntary elbow movement in subjects with spasticity[J]. Rehabilitation Engineering, IEEE Transactions on, 1997, 5(3): 253–262.\nYANG Nianfeng, WANG Rencheng, JIN Dewen, et al. Evaluation method of human upper limb movement function based on Fitts’ law[J]. Chinese Journal of Rehabilitation Medicine, 2001, 16(6): 336–339.\nFLASH T, HOGAN N. The coordination of arm movements: an experimentally confirmed mathematical model[J]. The Journal of Neuroscience, 1985, 5(7): 1688–1703.\nABDEL-MALEK K, MI Z, YANG Jingzhou, et al. Optimization-based trajectory planning of the human upper body[J]. Robotica, 2006, 24(6): 683–696.\nYANG Jingzhou, MARLER R T, KIM H J, et al. Multi-objective optimization for upper body posture prediction[C]\u002F\u002F10th AIAA\u002FISSMO Multidisciplinary Analysis and Optimization Conference. Albany, NY, USA, 2004: AIAA2004-4506.\nMARLER R T, RAHMATALLA S, SHANAHAN M, et al. A new discomfort function for optimization-based posture prediction[G]. SAE Paper 2005-01-2680.\nKIM J, YANG JINGZHOU, ABDEL-MALEK K, et al. Task-based vehicle interior layout design using optimization method to enhance safety[C]\u002F\u002FDefense and Security. International Society for Optics and Photonics, Orlando, FL, USA, 2005: 54–65.",{"EN":539},"The existing research of steering comfort mainly focuses on the subjective evaluation, aiming at designing and optimizing the steering system. In the development of steering system, especially the evaluation of steering comfort, the objective evaluation methods considered the kinematic characteristics of driver steering maneuver are not proposed, which means that the objective evaluation of steering cannot be conducted with the evaluation of kinematic characteristics of driver in steering maneuver. In order to propose the objective evaluation methods of steering comfort, the evaluation of steering movement quality of driver is developed on the basis of the study of the kinematic characteristics of steering maneuver. First, the steering motion trajectories of the driver in both comfortable and certain extreme uncomfortable operation conditions are detected using the Vicon motion capture system. The operation conditions are under the restrictions of the vertical height and horizontal distance between steering wheel center and the H-point of driver, and the steering resisting torque else. Next, the movement quality evaluation of driver steering maneuver is assessed using twelve kinds of evaluation indices based on the kinematic analyses of the steering motion trajectories to propose an objective evaluation method. Finally, an integrated discomfort index of steering maneuver is proposed on the basis of the regression analysis of subjective evaluation rating and the movement quality evaluation indices, including the Jerk, Discomfort and Joint Torque indices. The test results show that the proposed integrated discomfort index gives a good fitting with the subjective evaluation of discomfort, which means it can be used to evaluate or predict the discomfort level of steering maneuver. This paper proposes an objective evaluation method of steering comfort based on the movement quality evaluation of driver steering maneuver.",{"EN":541},"Objective evaluation method of steering comfort based on movement quality evaluation of driver steering 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China",{"openalex":697,"orcid":699,"title":701},{"VOID":698},"A5069516330",{"VOID":700},"https:\u002F\u002Forcid.org\u002F0000-0001-7917-0165",{"EN":702},"Yuli Wang",{"id":704,"sortIndex":209,"researcher":18,"roles":705,"affiliations":706,"properties":713},"e7638727-7bc1-4ac2-8f06-266f3811e34e",[],[707],{"id":708,"sortIndex":19,"affiliation":709,"properties":18},"88232bb9-2b62-45b1-8fc1-e6bf773557a8",{"id":688,"createTime":689,"updateTime":690,"relativeEntities":710,"slug":692,"properties":711,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":712},{"VI":695},{"openalex":714,"title":716},{"VOID":715},"A5052621221",{"EN":717},"Shengnan 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Chenglong, WU Jianhua, LIU Wenli. Research progress of the cavitation application[J]. Journal of Jiaxing University, 2008, 20(3): 57–62. (in Chinese)",{},{"id":18,"text":795,"url":18,"identifiers":796},"SOYAMA H. Improvement in fatigue strength of silicon manganese steel SUP7 by using a cavitating jet[J]. Japan Society Mechanical Engineering International Journal, Ser. A, 2000, 43(2): 173–178.",{},{"id":18,"text":798,"url":18,"identifiers":799},"GE Qiang, LI Xiaohong, LU Yiyu, et al. Mechanism of organic wastewater treatment by cavitating jets[J]. Journal of Chongqing University (Natural Science Edition), 2007, 30(5): 19–22. (in Chinese)",{},{"id":18,"text":801,"url":18,"identifiers":802},"LI Gensheng, SHEN Zhonghou. Cavitation jet and the application on the drilling engineering[J]. Petroleum Drilling Techniques, 1996, 24(4): 51–54. (in Chinese)",{},{"id":18,"text":804,"url":18,"identifiers":805},"JOHNSON Jr, CONN V E, LINDENMUTH A F, et al. Self-resonating cavitating jets[C]\u002F\u002FProceedings of the 6th International Symposium on Jet Cutting Technology, British Hydromechanics Research Association, Cranfield, England, 1982: 1–26.",{},{"id":18,"text":807,"url":18,"identifiers":808},"SHEN Zhonghou, LI Gensheng, WANG Zhiming, et a1. New jet theory and prospects of application in drilling engineering[C]\u002F\u002F Proceeding of 13th World Petroleum Congress, Buenos Aires, 1991: 397–405.",{},{"id":18,"text":810,"url":18,"identifiers":811},"LI Gensheng, SHEN Zhonghou, ZHANG Zhaoping, et al. Development and field tests of self-resonating cavitating water jet nozzle for oilwell drilling[J]. Petroleum Drilling Techniques, 2003, 31(5): 11–13. (in Chinese)",{},{"id":18,"text":813,"url":18,"identifiers":814},"LI Gensheng, YI Can, HUANG Zhongwei. Mechanism and experimental study of self-resonating cavitating jet for improving polluted rock permeability[J]. Journal of China University of Petroleum (Natural Science), 2007, 31(1): 72–75 (in Chinese)",{},{"id":18,"text":816,"url":18,"identifiers":817},"LIAO Zhenfang, TANG Chuanlin. Theory of the self-excited oscillation pulsed jet nozzle[J]. Journal of Chongqing University (Natural Science Edition), 2002, 25(2): 24–27. (in Chinese)",{},{"id":18,"text":819,"url":18,"identifiers":820},"LIAO Zhenfang, TANG Chuanlin. Experiments of the self-excited oscillation pulsed jet nozzle[J]. Journal of Chongqing University (Natural Science Edition), 2002, 25(2): 28–32. (in Chinese)",{},{"id":18,"text":822,"url":18,"identifiers":823},"ERDMANN-JESNITZER F, HASSAN A M, LOUIS H. A study of the effect of nozzle configuration on the performance of submerged water jets[C]\u002F\u002FProc. 4th Int. Symp. on Jet Cutting Technology, England: British Hydromechanics Research Association, 1978, Paper A2.",{},{"id":18,"text":825,"url":18,"identifiers":826},"KATSUYA Yanaida. Water jet cavitation of submerged hom shaped nozzles[C]\u002F\u002FProc. 3rd USWater Jet Conference, Pittsburg USA, May 1985, Paper D4.",{},{"id":18,"text":828,"url":18,"identifiers":829},"JOHNSON V E Jr, KOHL R A, THIREVENGADAM A, et al. Tunnelling, fracturing, drilling and mining with high speed water jets utilizing cavitation damage[C]\u002F\u002FProc. 1st Int. Symp. on Water Jet Cutting Technology, Conventry, UK, 1972, PaperA3.",{},{"id":18,"text":831,"url":18,"identifiers":832},"CONN A F, RUDY S L. Cutting coal with the CAVIJET cavitating water jet method[C]\u002F\u002F3rd Int. Symp. on Jet Cutting Technology, Chicago, USA, 1976, Paper D8.",{},{"id":18,"text":834,"url":18,"identifiers":835},"MAURER W C. Advanced drilling technology[M]. WU Guanglin, et al trans. Beijing: Geology Press, 1986.",{},{"id":18,"text":837,"url":18,"identifiers":838},"LIU Yanling. Modulation study on unsubmerged cavitating jetfrom nozzle with a centre cylinder[D]. Qingdao: China University of Petroleum, 2009. (in Chinese)",{},{"id":18,"text":840,"url":18,"identifiers":841},"YANG Minguan, ZHANG Feng, KANG Can, etal. Experiment and numerical simulation of free water jet by a central-body nozzle[J]. Chinese Journal of Mechanical Engineering, 2010, 23(6): 797–804.",{"doi":842},"10.3901\u002FCJME.2010.06.797",{"id":844,"createTime":845,"updateTime":846,"relativeEntities":847,"slug":848,"properties":849,"entityType":172,"verifyStatus":173,"verifyTime":846,"verifyNote":174,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":858,"fullTextUrl":18,"authors":859,"publicationType":244,"publisherRelationship":911,"citationCount":18,"citationInfo":18,"publishDate":944,"publishYear":945,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":280},"c33e88a5-37f2-4107-a80a-61fccefd6af3","2024-01-12T14:51:37.444+00:00","2025-02-04T23:47:49.810+00:00",[],"Delamination-Testing-of-AlSi10Mg-Sandwich-Structures-with-Pyramidal-Lattice-Truss-Core-made-by-Laser-Powder-Bed-Fusion",{"references":850,"abstract":852,"title":854,"doi":856},{"VOID":851},"F Froes, R Boyer, eds. Additive manufacturing for the aerospace industry. Elsevier, Amsterdam, Netherlands, 2019.\nR Liu, Z Wang, T Sparks, et al. Aerospace applications of laser additive manufacturing. In: Laser Additive Manufacturing, Elsevier, 2017, 3: 351–371.\nS Mohd Yusuf, S Cutler, N Gao. Review: The impact of metal additive manufacturing on the aerospace industry. Metals, 2019, 9(12): 1286.\nJ C Najmon, S Raeisi, A Tovar. Review of additive manufacturing technologies and applications in the aerospace industry. In: Additive Manufacturing for the Aerospace Industry, Elsevier, 2018, 69: 7–31.\nA Uriondo, M Esperon-Miguez, S Perinpanayagam. The present and future of additive manufacturing in the aerospace sector: A review of important aspects. Proceedings of the Institution of Mechanical Engineers, Part G: Journal of Aerospace Engineering, 2015, 229(11): 2132–2147.\nC Cai, C Radoslaw, J Zhang, et al. In-situ preparation and formation of tib\u002Fti-6al-4v nanocomposite via laser additive manufacturing: Microstructure evolution and tribological behavior. Powder Technology, 2019, 342(19): 73–84.\nC Cai, X Wu, W Liu, et al. Selective laser melting of near-alpha titanium alloy ti-6al-2zr-1mo-1v: Parameter optimization, heat treatment and mechanical performance. Journal of Materials Science & Technology, 2020, 57: 51–64.\nM E Orme, M Gschweitl, M Ferrari, et al. Additive manufacturing of lightweight, optimized, metallic components suitable for space flight. Journal of Spacecraft and Rockets, 2017, 54(5): 1050–1059.\nJ Bühring, M Nuño, K U Schröder. Additive manufactured sandwich structures: Mechanical characterization and usage potential in small aircraft. Aerospace Science and Technology, 2021, 111(30–31): 106548.\nB Aslan, A R Yıldız. Optimum design of automobile components using lattice structures for additive manufacturing. Materials Testing, 2020, 62(6): 633–639.\nA Borrelli, G D’Errico, C Borrelli, et al. Assessment of crash performance of an automotive component made through additive manufacturing. Applied Sciences, 2020, 10(24): 9106.\nJ C Vasco. Additive manufacturing for the automotive industry. In: Additive Manufacturing, Elsevier, 2021, 15: 505–530.\nJ Bühring, M Voshage, J H Schleifenbaum, et al. Influence of degradation product thickness on the elastic stiffness of porous absorbable scaffolds made from an bioabsorbable zn–mg alloy. Materials, 2021, 14(20): 6027.\nW Frank, J Lucas, M Wolfgang, et al. Open-porous biodegradable magnesium scaffolds produced by selective laser melting for individualized bone replacement. Frontiers in Bioengineering and Biotechnology, 2016, 4.\nA Kopp, T Derra, M Müther, et al. Influence of design and postprocessing parameters on the degradation behavior and mechanical properties of additively manufactured magnesium scaffolds. Acta Biomaterialia, 2019, 98: 23–35.\nY Li, H Jahr, J Zhou, et al. Additively manufactured biodegradable porous metals. Acta Biomaterialia, 2020, 115: 29–50.\nY Li, J Zhou, P Pavanram, et al. Additively manufactured biodegradable porous magnesium. Acta Biomaterialia, 2018, 67: 378–392.\nX Liu, C Zhao, X Zhou, et al. Microstructure of selective laser melted alsi10mg alloy. Materials & Design, 2019, 168(S3): 107677.\nU Tradowsky, J White, R M Ward, et al. Selective laser melting of alsi10mg: Influence of post-processing on the microstructural and tensile properties development. Materials & Design, 2016, 105: 212–222.\nP Yang, L A Deibler, D R Bradley, et al. Microstructure evolution and thermal properties of an additively manufactured, solution treatable alsi10mg part. Journal of Materials Research, 2018, 33(23): 4040–4052.\nD Martínez-Maradiaga, O V Mishin, K Engelbrecht. Thermal properties of selectively laser-melted alsi10mg products with different densities. Journal of Materials Engineering and Performance, 2020, 29(11): 7125–7130.\nW Li, S Li, J Liu, et al. Effect of heat treatment on alsi10mg alloy fabricated by selective laser melting: Microstructure evolution, mechanical properties and fracture mechanism. Materials Science and Engineering: A, 2016, 663: 116–125.\nN Read, W Wang, K Essa, et al. Selective laser melting of alsi10mg alloy: Process optimisation and mechanical properties development. Materials & Design (1980-2015), 2015, 65: 417–424.\nY Feng, H Qiu, Y Gao, et al. Creative design for sandwich structures: A review. International Journal of Advanced Robotic Systems, 2020, 17(3): 172988142092132.\nN Wicks, J W Hutchinson. Optimal truss plates. International Journal of Solids and Structures, 2001, 38(30-31): 5165–5183.\nN Wicks, J W Hutchinson. Performance of sandwich plates with truss cores. Mechanics of Materials, 2004, 36(8): 739–751.\nL J Gibson. Cellular solids. Cambridge Univ. Press, Cambridge, 2001.\nM F Ashby. The properties of foams and lattices. Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences, 2006, 364(1838): 15–30.\nV S Deshpande, N A Fleck. Collapse of truss core sandwich beams in 3-point bending. International Journal of Solids and Structures, 2001, 38(36-37): 6275–6305.\nV S Deshpande, N A Fleck, M F Ashby. Effective properties of the octet-truss lattice material. Journal of the Mechanics and Physics of Solids, 2001, 49(8): 1747–1769.\nA G Evans, J W Hutchinson, M F Ashby. Multifunctionality of cellular metal systems. Progress in Materials Science, 1998, 43(3): 171–221.\nA G Evans, J W Hutchinson, N A Fleck, et al. The topological design of multifunctional cellular metals. Progress in Materials Science, 2001, 46(3-4): 309–327.\nChiras S Mumm, A G Evans, N Wicks, et al. The structural performance of near-optimized truss core panels. International Journal of Solids and Structures, 2002, 39(15): 4093–4115.\nF W Zok, S A Waltner, Z Wei, et al. A protocol for characterizing the structural performance of metallic sandwich panels: application to pyramidal truss cores. International Journal of Solids and Structures, 2004, 41(22-23): 6249–6271.\nD Zenkert, O Schubert, M Burman. Fracture initiation in foam-core sandwich structures due to singular stresses at corners of flawed butt joints. Mechanics of Advanced Materials and Structures, 1997, 4(1): 1–21.\nD Zenkert. Fatigue of foam core sandwich beams—1: undamaged specimens. International Journal of Fatigue, 1997, 19(7): 551–561.\nShipsha, Burman, Zenkert. Interfacial fatigue crack growth in foam core sandwich structures. Fatigue & Fracture of Engineering Materials & Structures, 1999, 22(2): 123–131.\nJ L Grenestedt. Development of a new peel-stopper for sandwich structures. Composites Science and Technology, 2001, 61(11): 1555–1559.\nC Wonderly, J Grenestedt. Dynamic performance of a peel stopper for composite sandwich ship structures. Journal of Composite Materials, 2004, 38(10): 805–831.\nB Lascoup, Z Aboura, K Khellil, et al. On the mechanical effect of stitch addition in sandwich panel. Composites Science and Technology, 2006, 66(10): 1385–1398.\nP Potluri, E Kusak, T Reddy. Novel stitch-bonded sandwich composite structures. Composite Structures, 2003, 59(2): 251–259.\nJ Jakobsen, E Bozhevolnaya, O T Thomsen. New peel stopper concept for sandwich structures. Composites Science and Technology, 2007, 67(15-16): 3378–3385.",{"EN":853},"Sandwich structures possess a high bending stiffness compared to monolithic structures with a similar weight. This makes them very suitable for lightweight applications, where high stiffness to weight ratios are needed. Most common manufacturing methods of sandwich structures involve adhesive bonding of the core material with the sheets. However, adhesive bonding is prone to delamination, a failure mode that is often difficult to detect. This paper presents the results of delamination testing of fully additive manufactured (AM) AlSi10Mg sandwich structures with pyramidal lattice truss core using Laser Powder Bed Fusion (LPBF). The faces and struts are 0.5 mm thick, while the core is 2 mm thick. The inclination of the struts is 45°. To characterise the bonding strength, climbing drum peel tests and out-of-plane tensile tests are performed. Analytical formulas are derived to predict the expected failure loads and modes. The analytics and tests are supported by finite element (FE) calculations. From the analytic approach, design guidelines to avoid delamination in AM sandwich structures are derived. The study presents a critical face sheet thickness to strut diameter ratio for which the structure can delaminate. This ratio is mainly influenced by the inclination of the struts. The peel tests resulted in face yielding, which can also be inferred from the analytics and numerics. The out-of-plane tensile tests didn’t damage the structure.",{"EN":855},"Delamination Testing of AlSi10Mg Sandwich Structures with Pyramidal Lattice Truss Core made by Laser Powder Bed Fusion",{"VOID":857},"10.1186\u002Fs10033-021-00643-7","https:\u002F\u002Fcjme.springeropen.com\u002Farticles\u002F10.1186\u002Fs10033-021-00643-7",[860,875,887,899],{"id":861,"sortIndex":179,"researcher":18,"roles":862,"affiliations":863,"properties":872},"a5e1a894-31db-4e3a-9223-3abbdb78c1d3",[181],[864],{"id":18,"sortIndex":19,"affiliation":865,"properties":18},{"id":866,"createTime":867,"updateTime":867,"relativeEntities":868,"slug":18,"properties":869,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"978ecd8f-4045-48e8-8ee0-573f3f2bb6fb","2023-12-05T23:21:11.031+00:00",[],{"title":870},{"VI":871},"Institute of Structural Mechanics and Lightweight Design, RWTH Aachen University, Aachen, Germany",{"title":873},{"VI":874},"M. N. Rao",{"id":876,"sortIndex":19,"researcher":18,"roles":877,"affiliations":878,"properties":884},"6ec553a2-9bfa-4293-b30e-242bb6385739",[181],[879],{"id":18,"sortIndex":19,"affiliation":880,"properties":18},{"id":866,"createTime":867,"updateTime":867,"relativeEntities":881,"slug":18,"properties":882,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":883},{"VI":871},{"title":885},{"VI":886},"M. Nuño",{"id":888,"sortIndex":196,"researcher":18,"roles":889,"affiliations":890,"properties":896},"3e67606e-ffba-4d77-81c6-16461e91650f",[181],[891],{"id":18,"sortIndex":19,"affiliation":892,"properties":18},{"id":866,"createTime":867,"updateTime":867,"relativeEntities":893,"slug":18,"properties":894,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":895},{"VI":871},{"title":897},{"VI":898},"K. -U. Schröder",{"id":900,"sortIndex":209,"researcher":18,"roles":901,"affiliations":902,"properties":908},"6cb3aace-39fd-4920-ad5d-18b0442353e4",[181],[903],{"id":18,"sortIndex":19,"affiliation":904,"properties":18},{"id":866,"createTime":867,"updateTime":867,"relativeEntities":905,"slug":18,"properties":906,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":907},{"VI":871},{"title":909},{"VI":910},"J. Bühring",{"url":858,"publisher":912,"properties":939},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":913,"slug":10,"properties":914,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":917,"manageAffiliations":918,"indexDatabases":919,"url":18,"thumbnailPath":18,"statistic":934,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":915,"title":916},{"VOID":13},{"EN":15},[],[],[920,927],{"id":80,"indexDatabase":921,"url":93,"indexYears":94,"academicFieldIds":926,"indexDatabaseRanking":18},{"id":82,"createTime":83,"updateTime":84,"relativeEntities":922,"label":923,"description":924,"key":90,"publicationTags":925,"standard":18},[],{"EN":87,"VI":87},{"EN":87,"VI":89},[92],[96,97],{"id":61,"indexDatabase":928,"url":76,"indexYears":18,"academicFieldIds":933,"indexDatabaseRanking":18},{"id":63,"createTime":64,"updateTime":65,"relativeEntities":929,"label":930,"description":931,"key":72,"publicationTags":932,"standard":18},[],{"EN":68,"VI":68},{"VI":70,"EN":71},[74,75],[78],{"impactFactor":19,"impactFactorByYear":935,"i10Index":110,"i10IndexLast5Year":111,"totalPublication":112,"totalPublicationByYear":936,"totalCitation":126,"totalCitationByYear":937,"totalCitationPerPublication":139,"totalCitationPerPublicationByYear":938,"hindexLast5Year":152,"hindex":152},{"2013":100,"2014":101,"2015":102,"2016":103,"2017":104,"2018":105,"2019":105,"2020":106,"2021":107,"2022":108,"2023":109},{"2012":114,"2013":115,"2014":116,"2015":117,"2016":118,"2017":119,"2018":120,"2019":121,"2020":122,"2021":123,"2022":114,"2023":124,"2024":125},{"2012":128,"2013":129,"2014":130,"2015":131,"2016":132,"2017":133,"2018":134,"2019":135,"2020":136,"2021":137,"2022":138},{"2012":141,"2013":142,"2014":143,"2015":144,"2016":145,"2017":146,"2018":147,"2019":148,"2020":149,"2021":150,"2022":151},{"volume":940,"pages":942},{"VOID":941},"34",{"VOID":943},"1-12","2021-12-04",2021,{"id":947,"createTime":948,"updateTime":949,"relativeEntities":950,"slug":951,"properties":952,"entityType":172,"verifyStatus":173,"verifyTime":961,"verifyNote":174,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":962,"fullTextUrl":18,"authors":963,"publicationType":244,"publisherRelationship":993,"citationCount":18,"citationInfo":18,"publishDate":1026,"publishYear":1027,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":280},"dd340a19-b051-41b0-9f23-69c3df1fe983","2024-01-10T05:36:19.530+00:00","2025-01-20T23:47:37.720+00:00",[],"Type-Synthesis-of-Lower-Mobility-Parallel-Mechanisms-A-Review",{"references":953,"abstract":955,"title":957,"doi":959},{"VOID":954},"IFToMM. IFToMM terminology\u002FEnglish 5.1. Mechanism and Machine Theory, 2003, 38(7–10): 819–825.\nJ E Gwinnett. Amusement devices: US, 1789680. 1928-10-01[1931-01-20]. https:\u002F\u002Fpatents.glgoo.top\u002Fpatent\u002FUS1789680A\u002Fen.\nV Gough, S Whitehall. Universal tyre test machine. Proceedings of the 9th International Technical Congress, London, UK, April 30–May 5, 1962: 117–137.\nD Stewart. A platform with six degrees of freedom. Proceedings of the Institution of Mechanical Engineers, 1965, 180(1): 371–386.\nK H Hunt. Kinematic geometry of mechanisms. New York: Oxford University Press, 1978.\nR Alizade, C Bayram. Kinematic and dynamic analysis of a new type of spatial 6-DOF parallel structure manipulator. Proceedings of the 11th World Congress on Mechanism and Machine Science, Tianjin, China, August 18–21, 2003: 1–5.\nN Mouly, J P Merlet. Singular configurations and direct kinematics of a new parallel manipulator. Proceedings of the IEEE International Conference on Robotics and Automation, Nice, France, May 12–14, 1992: 338–343.\nR I Alizade, N R Tagiyev, J Duffy. A forward and reverse displacement analysis of a 6-DOF in-parallel manipulator. Mechanism and Machine Theory, 1994, 29(1): 115–124.\nJ P Merlet. Still a long way to go on the road for parallel mechanisms. Proceedings of the ASME International Mechanical Engineering Congress and Exhibition, Montreal, Canada, September 29–October 2, 2002: 95–99.\nR Clavel. Delta, a fast robot with parallel geometry. Proceedings of the 18th International Symposium on Industrial Robots, Lausanne, Switzerland, April 26–28, 1988: 91–100.\nC M Gosselin, J F Hamel. The agile eye: a high-performance three-degree-of-freedom camera-orienting device. Proceedings of the 1994 IEEE International Conference on Robotics and Automation, San Diego, USA, May 8–13, 1994: 781–786.\nK H Hunt. Structural kinematics of in-parallel-actuated robot-arms. Journal of Mechanisms, Transmissions, and Automation in Design, 1983, 105(4): 705–712.\nF Pierrot, O Company, S Krut, et al. Four-DOF PKM with articulated travelling-plate. Proceedings of the Parallel Kinematics Seminar, Chemnitz, Germany, April 25–26, 2006: 25–26.\nJ M Hervé. Analyse structurelle des mécanismes par groupe des déplacements. Mechanism and Machine Theory, 1978, 13(4): 437–450.\nJ M Hervé. The Lie group of rigid body displacements, a fundamental tool for mechanism design. Mechanism and Machine Theory, 1999, 34(5): 719–730.\nM Karouia, J M Hervé. A three-DOF tripod for generating spherical rotation. In: J Lennarčič, M M Stanišić. Advances in robot kinematics. Dordrecht: Springer, 2000: 395–402.\nQ C Li, Z Huang, J M Hervé. Type synthesis of 3R2T 5-DOF parallel mechanisms using the Lie group of displacements. IEEE Transactions on Robotics and Automation, 2004, 20(2): 173–180.\nQ C Li, J M Hervé. 1T2R parallel mechanisms without parasitic motion. IEEE Transactions on Robotics, 2010, 26(3): 401–410.\nQ C Li, J M Hervé. Type synthesis of 3-DOF RPR-equivalent parallel mechanisms. IEEE Transactions on Robotics, 2014, 30(6): 1333–1343.\nQ C Li, L M Xu, Q H Chen, et al. New family of RPR-equivalent parallel mechanisms: design and application. Chinese Journal of Mechanical Engineering, 2017, 30(2): 217–221.\nW Ye, Q C Li, X X Chai. New family of 3-DOF UP-equivalent parallel mechanisms with high rotational capability. Chinese Journal of Mechanical Engineering, 2018, 31(1): 12.\nC C Lee, J M Hervé. Generators of the product of two Schoenflies motion groups. European Journal of Mechanics-A\u002FSolids, 2010, 29(1): 97–108.\nJ M Hervé. Uncoupled actuation of pan-tilt wrists. IEEE Transactions on Robotics, 2006, 22(1): 56–64.\nC X Fan, H Z Liu, Y B Zhang. Type synthesis of 2T2R, 1T2R and 2R parallel mechanisms. Mechanism and Machine Theory, 2013, 61: 184–190.\nW Ye, L Y He, Q C Li. A new family of symmetrical 2T2R parallel mechanisms without parasitic motion. Journal of Mechanisms and Robotics, 2018, 10(1): 011006.\nJ Angeles. The qualitative synthesis of parallel manipulators. Journal of Mechanical Design, 2004, 126(4): 617–624.\nC C Lee, J M Hervé. Type synthesis of primitive Schoenflies-motion generators. Mechanism and Machine theory, 2009, 44(10): 1980–1997.\nC C Lee, J M Hervé. On some applications of primitive Schönflies-motion generators. Mechanism and Machine Theory, 2009, 44(12): 2153–2163.\nJ Meng, G F Liu, Z X Li. A geometric theory for analysis and synthesis of sub-6 DOF parallel manipulators. IEEE Transactions on Robotics, 2007, 23(4): 625–649.\nF Gao, W M Li, X C Zhao, et al. New kinematic structures for 2-, 3-, 4-, and 5-DOF parallel manipulator designs. Mechanism and Machine Theory, 2002, 37(11): 1395–1411.\nJ L Yang, F Gao, Q J Ge, et al. Type synthesis of parallel mechanisms having the first class GF sets and one-dimensional rotation. Robotica, 2011, 29(6): 895–902.\nJ L Yang, F Gao, K J Zhu, et al. Type synthesis of parallel mechanisms with the first class GF sets and two-dimensional rotations. International Journal of Advanced Robotic Systems, 2012, 9(3): 61.\nF Gao, J L Yang, Q J Ge. Type synthesis of parallel mechanisms having the second class GF sets and two dimensional rotations. Journal of Mechanisms and Robotics, 2011, 3(1): 011003.\nJ He, F Gao, X D Meng, et al. Type synthesis for 4-DOF parallel press mechanism using GF set theory. Chinese Journal of Mechanical Engineering, 2015, 28(4): 851–859.\nX D Meng, F Gao. The classification of GF sets for robotic mechanisms. Proceedings of the 14th IFToMM World Congress, Taipei, China, October 25–30, 2015: 145–153.\nG Gogu. Structural synthesis of maximally regular T3R2-type parallel robots via theory of linear transformations and evolutionary morphology. Robotica, 2009, 27(1): 79–101.\nG Gogu. Structural synthesis of fully-isotropic parallel robots with Schönflies motions via theory of linear transformations and evolutionary morphology. European Journal of Mechanics-A\u002FSolids, 2007, 26(2): 242–269.\nG Gogu. Structural synthesis of fully-isotropic translational parallel robots via theory of linear transformations. European Journal of Mechanics-A\u002FSolids, 2004, 23(6): 1021–1039.\nG Gogu. Fully-isotropic over-constrained parallel wrists with two degrees of freedom. Proceedings of the 2005 IEEE International Conference on Robotics and Automation, Barcelona, Spain, April 18–22, 2005: 4014–4019.\nG Gogu. Fully-isotropic three-degree-of-freedom parallel wrists. Proceedings of the 2007 IEEE International Conference on Robotics and Automation, Roma, Italy, April 10–14, 2007: 895–900.\nG Gogu. Singularity-free fully-isotropic parallel manipulators with Schonflies motions. Proceedings of the 12th IEEE International Conference on Advanced Robotics, Seattle, USA, July 18–20, 2005: 194–201.\nG Gogu. Fully-isotropic over-constrained planar parallel manipulators. Proceedings of the 2004 IEEE\u002FRSJ International Conference on Intelligent Robots and Systems, Sendai, Japan, September 28–October 2, 2004: 3519–3524.\nG Gogu. Fully-isotropic T1R2-type parallel robots with three degrees of freedom. Proceedings of the ASME 2005 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, Long Beach, USA, September 24–28, 2005: 757–764.\nG Gogu. Fully-isotropic parallel robots with four degrees of freedom T2R2-type. Proceedings of the 2005 IEEE\u002FRSJ International Conference on Intelligent Robots and Systems, Edmonton, Canada, August 2–6, 2005: 960–965.\nG Gogu. Fully-isotropic T3R2-type parallel robotic manipulators. Proceedings of the 2006 IEEE Conference on Robotics, Automation and Mechatronics, Bangkok, Thailand, June 1–3, 2006: 1–6.\nG Gogu. Kinematic criteria for structural synthesis of maximally regular parallel robots with planar motion of the moving platform. In: A Kecskeméthy, V Potkonjak, A Müller. Interdisciplinary applications of kinematics, Dordrecht: Springer, 2012: 63–81.\nT L Yang, A X Liu, Q Jin, et al. Position and orientation characteristic equation for topological design of robot mechanisms. Journal of Mechanical Design, 2009, 131(2): 021001.\nQ Jin, T L Yang. Theory for topology synthesis of parallel manipulators and its application to three-dimension-translation parallel manipulators. Journal of Mechanical Design, 2004, 126(4): 625–639.\nQ Jin, T L Yang. Synthesis and analysis of a group of 3-degree-of-freedom partially decoupled parallel manipulators. Journal of Mechanical Design, 2004, 126(2): 301–306.\nT L Yang, A X Liu, P H Shen, et al. Topological structure synthesis of 3T1R parallel mechanism based on POC equations. Proceedings of the International Conference on Intelligent Robotics and Applications. Tokyo, Japan, August 16–18, 2016: 147–161.\nT L Yang. Topology structure design of robot mechanisms. Beijing: China Machine Press, 2004. (in Chinese)\nT L Yang, A X Liu, P H Shen, et al. Topology design of robot mechanisms. Singapore: Springer Singapore, 2018.\nJ S Dai. Geometrical foundations and screw algebra for mechanisms and robotics. Beijing: Higher Education Press, 2014. (in Chinese)\nT Sun, S F Yang, T Huang, et al. A way of relating instantaneous and finite screws based on the screw triangle product. Mechanism and Machine Theory, 2017, 108: 75–82.\nD Zarrouk, M Shoham. A note on the screw triangle. Journal of Mechanisms and Robotics, 2011, 3(1): 014502.\nS F Yang, T Sun, T Huang, et al. A finite screw approach to type synthesis of three-DOF translational parallel mechanisms. Mechanism and Machine Theory, 2016, 104: 405–419.\nS F Yang, T Sun, T Huang. Type synthesis of parallel mechanisms having 3T1R motion with variable rotational axis. Mechanism and Machine Theory, 2017, 109: 220–230.\nT Sun, S F Yang, T Huang, et al. A finite and instantaneous screw based approach for topology design and kinematic analysis of 5-axis parallel kinematic machines. Chinese Journal of Mechanical Engineering, 2018, 31(2): 44.\nT Sun, X Huo. Type synthesis of 1T2R parallel mechanisms with parasitic motions. Mechanism and Machine Theory, 2018, 128: 412–428.\nR S Ball. A treatise on the theory of screws. Cambridge: Cambridge University Press, 1900.\nZ Huang, Q C Li. General methodology for type synthesis of symmetrical lower-mobility parallel manipulators and several novel manipulators. The International Journal of Robotics Research, 2002, 21(2): 131–145.\nZ Huang, Q C Li. Type synthesis principle of minor-mobility parallel manipulators. Science in China Series E: Technological Sciences, 2002, 45(3): 241–248.\nZ Huang, Q C Li. Type synthesis of symmetrical lower-mobility parallel mechanisms using the constraint-synthesis method. The International Journal of Robotics Research, 2003, 22(1): 59–79.\nQ C Li, Z Huang. Type synthesis of 4-DOF parallel manipulators. Proceedings of the 2003 IEEE International Conference on Robotics and Automation. Taipei, China, September 14–19, 2003, 1: 755–760.\nD X Zeng, Z Huang. Type synthesis of the rotational decoupled parallel mechanism based on screw theory. Science China Technological Sciences, 2011, 54(4): 998–1004.\nY F Fang, L W Tsai. Structure synthesis of a class of 4-DoF and 5-DoF parallel manipulators with identical limb structures. The International Journal of Robotics Research, 2002, 21(9): 799–810.\nY F Fang, L W Tsai. Structure synthesis of a class of 3-DOF rotational parallel manipulators. IEEE Transactions on Robotics and Automation, 2004, 20(1): 117–121.\nY F Fang, L W Tsai. Analytical identification of limb structures for translational parallel manipulators. Journal of Robotic Systems, 2004, 21(5): 209–218.\nS Guo, Y F Fang, H B Qu. Type synthesis of 4-DOF nonoverconstrained parallel mechanisms based on screw theory. Robotica, 2012, 30(1): 31–37.\nX W Kong, C M Gosselin. Type synthesis of 3-DOF spherical parallel manipulators based on screw theory. Journal of Mechanical Design, 2004, 126(1): 101–108.\nX W Kong, C M Gosselin. Type synthesis of 3-DOF translational parallel manipulators based on screw theory. Journal of Mechanical Design, 2004, 126(1): 83–92.\nX W Kong, C M Gosselin. Type synthesis of 3T1R 4-DOF parallel manipulators based on screw theory. IEEE Transactions on Robotics and Automation, 2004, 20(2): 181–190.\nX W Kong, C M Gosselin. Type synthesis of three-degree-of-freedom spherical parallel manipulators. The International Journal of Robotics Research, 2004, 23(3): 237–245.\nX W Kong, C M Gosselin. Type synthesis of parallel mechanisms. Berlin: Springer, 2007.\nX W Kong, C M Gosselin. Type synthesis of 3-DOF PPR-equivalent parallel manipulators based on screw theory and the concept of virtual chain. Journal of Mechanical Design, 2005, 127(6): 1113–1121.\nX W Kong, C M Gosselin. Type synthesis of 5-DOF parallel manipulators based on screw theory. Journal of Robotic Systems, 2005, 22(10): 535–547.\nX W Kong, C M Gosselin. Type synthesis of three-DOF up-equivalent parallel manipulators using a virtual-chain approach. In: J Lennarčič, B Roth. Advances in robot kinematics. Dordrecht: Springer, 2006: 123–132.\nX W Kong, C M Gosselin. Type synthesis of 4-DOF SP-equivalent parallel manipulators: A virtual chain approach. Mechanism and Machine Theory, 2006, 41(11): 1306–1319.\nW Ye, Y F Fang, S Guo, et al. Type synthesis of 2R2T parallel mechanisms based on motion equivalent chain method. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2014, 228(17): 3209–3217.\nF G Xie, X J Liu, T M Li. Type synthesis and typical application of 1T2R-type parallel robotic mechanisms. Mathematical Problems in Engineering, 2013, 2013: 1–12.\nF G Xie, X J Liu, Z You, et al. Type synthesis of 2T1R-type parallel kinematic mechanisms and the application in manufacturing. Robotics and Computer-Integrated Manufacturing, 2014, 30(1): 1–10.\nF G Xie, X J Liu, C Wang. Design of a novel 3-DoF parallel kinematic mechanism: type synthesis and kinematic optimization. Robotica, 2015, 33(3): 622–637.\nF G Xie, T M Li, X J Liu. Type synthesis of 4-DOF parallel kinematic mechanisms based on Grassmann line geometry and atlas method. Chinese Journal of Mechanical Engineering, 2013, 26(6): 1073–1081.\nF G Xie, X J Liu. Design and development of a high-speed and high-rotation robot with four identical arms and a single platform. Journal of Mechanisms and Robotics, 2015, 7(4): 041015.\nC H Kuo, J S Dai. Task-oriented structure synthesis of a class of parallel manipulators using motion constraint generator. Mechanism and Machine Theory, 2013, 70: 394–406.\nB Siciliano. The Tricept robot: Inverse kinematics, manipulability analysis and closed-loop direct kinematics algorithm. Robotica, 1999, 17(4): 437–445.\nD Zhang, C M Gosselin. Kinetostatic modeling of N-DOF parallel mechanisms with a passive constraining leg and prismatic actuators. Journal of Mechanical Design, 2001, 123(3): 375–381.\nD Zhang, C M Gosselin. Kinetostatic modeling of parallel mechanisms with a passive constraining leg and revolute actuators. Mechanism and Machine Theory, 2002, 37(6): 599–617.\nY Lu, B Hu. Analyzing kinematics and solving active\u002Fconstrained forces of a 3SPU+UPR parallel manipulator. Mechanism and Machine Theory, 2007, 42(10): 1298–1313.\nL W Tsai. The enumeration of a class of three-DOF parallel manipulators. Proceedings of the 10th World Congress on the Theory of Machine and Mechanisms, Oulu, Finland, June 20–24, 1999: 1121–1126.\nY Lu, T Leinonen. Type synthesis of unified planar–spatial mechanisms by systematic linkage and topology matrix-graph technique. Mechanism and Machine Theory, 2005, 40(10): 1145–1163.\nY Lu, L Ding, J Yu. Autoderivation of topological graphs for type synthesis of planar 3DOF parallel mechanisms. Journal of Mechanisms and Robotics, 2010, 2(1): 011002.\nY Lu, Y Wang, L Ding. Type synthesis of four-degree-of-freedom parallel mechanisms using valid arrays and topological graphs with digits. Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science, 2014, 228(16): 3039–3053.\nX D Meng, F Gao, S F Wu, et al. Type synthesis of parallel robotic mechanisms: framework and brief review. Mechanism and Machine Theory, 2014, 78: 177–186.\nZ Huang, J F Liu, Y W Li. On the degrees of freedom of mechanisms. Beijing: Science Press, 2011. (in Chinese)\nZ Huang, Z M Chen, J F Liu, et al. A 3DOF rotational parallel manipulator without intersecting axes. Journal of Mechanisms and Robotics, 2011, 3(2): 021014.\nZ M Chen, W A Cao, Z Huang. Type synthesis of 3-DOF rotational parallel mechanisms with no intersecting axes. Proceedings of the ASME 2012 International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, Chicago, USA, August 12–15, 2012: 565–572.\nJ J Yu, J S Dai, S S Bi, et al. Numeration and type synthesis of 3-DOF orthogonal translational parallel manipulators. Progress in Natural Science, 2008, 18(5): 563–574.\nJ J Yu, J S Dai, S S Bi, et al. Type synthesis of a class of spatial lower-mobility parallel mechanisms with orthogonal arrangement based on Lie group enumeration. Science China Technological Sciences, 2010, 53(2): 388–404.\nQ C Li, J M Hervé. Structural shakiness of nonoverconstrained translational parallel mechanisms with identical limbs. IEEE Transactions on Robotics, 2009, 25(1): 25–36.\nX J Liu, J S Wang, G Pritschow. A new family of spatial 3-DoF fully-parallel manipulators with high rotational capability. Mechanism and Machine Theory, 2005, 40(4): 475–494.\nC Z Wang, Y F Fang, S Guo. Design and analysis of 3R2T and 3R3T parallel mechanisms with high rotational capability. Journal of Mechanisms and Robotics, 2016, 8(1): 011004.\nC Z Wang, Y F Fang, H R Fang. Novel 2R3T and 2R2T parallel mechanisms with high rotational capability. Robotica, 2017, 35(2): 401–418.",{"EN":956},"Type synthesis of mechanisms aims to systematically determine all possible structures for a specific mobility requirement. Numerous methods based on different theories were proposed for type synthesis of lower mobility parallel mechanisms in past decades. However, there does not exist a comprehensive review on these approaches. Therefore, the goal of this paper is to give such a review, classifying the approaches proposed in the literature into three groups, namely, motion-based methods, constraint-based methods, and other methods. The motion-based methods include the Lie group based method, the GF set method, the linear transformation method, the POC set method, and the finite screw method. The constraint-based methods involve the screw theory-based method, the virtual chain method, the method based on Grassmann line geometry and line graphs, and the motion constraint generator method. Other methods contain the enumeration approach based on the general CGK mobility formula and the graph theory method. Upon thoroughly analyzing the characteristics and\u002For limitations of each method, this review provides a well reference to help researchers find an effective synthesis method for innovative design and further scientific investigations for mechanisms.",{"EN":958},"Type Synthesis of Lower Mobility Parallel Mechanisms: A 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and compensation technology for the comprehensive errors of fixture system",{"VOID":1044},"10.3901\u002Fcjme.2012.02.385","2025-02-26T23:47:04.187+00:00",[678],"http:\u002F\u002Fwww.springerlink.com\u002Findex\u002F10.3901\u002FCJME.2012.02.385",[1049,1070,1084,1098],{"id":1050,"sortIndex":209,"researcher":18,"roles":1051,"affiliations":1052,"properties":1063},"0b718c18-9872-4d6a-882f-5bcd88e9ecfc",[],[1053],{"id":18,"sortIndex":19,"affiliation":1054,"properties":18},{"id":1055,"createTime":1056,"updateTime":1057,"relativeEntities":1058,"slug":1059,"properties":1060,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"0db64c73-78bc-4279-89f6-75fc9da1baa3","2024-04-19T23:48:38.667+00:00","2025-02-08T06:36:10.000+00:00",[],"Tianjin-University",{"title":1061},{"EN":1062},"Tianjin 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R J, DEVRIES W R. Optimization methods applied to selecting support positions in fixture design[J]. Journal of Engineering for Industry, 1991, 113(4): 412–418.",{"doi":1150},"10.1115\u002F1.2899715",{"id":18,"text":1152,"url":18,"identifiers":1153},"WEILL R, DAREL I, LALOUM M. The influence of fixture positioning errors on the geometric accuracy of mechanical parts[C]\u002F\u002FProceedings of the CIRP Conference on PE & ME, Tianjin, China, September, 1991: 215–225.",{},{"id":18,"text":1155,"url":18,"identifiers":1156},"LI Bo, MELKOTE S N. Improved workpiece location accuracy through fixture layout optimization[J]. International Journal of Machine Tools & Manufacture, 1999, 39(6): 871–883.",{"doi":1157},"10.1016\u002FS0890-6955(98)00072-8",{"id":18,"text":1159,"url":18,"identifiers":1160},"LIAO Y J G, HU S J. Flexible multibody dynamics based fixture-workpiece analysis model for fixturing stability[J]. International Journal of Machine Tools & Manufacture, 2000, 40(3): 343–362.",{"doi":1161},"10.1016\u002FS0890-6955(99)00067-X",{"id":18,"text":1163,"url":18,"identifiers":1164},"MARIN R A, FERREIRA P M. Kinematic analysis and synthesis of deterministic3-2-1 locator schemes for machining fixtures[J]. Transactions of the ASME, Journal of Manufacturing Science and Engineering, 2001, 123(4): 708–719.",{"doi":1165},"10.1115\u002F1.1381396",{"id":18,"text":1167,"url":18,"identifiers":1168},"MARIN R A, FERREIRA P M. Analysis of influence of fixture locator errors on the compliance of the work part features to geometric tolerance specification[J]. Transactions of the ASME, Journal of Manufacturing Science and Engineering, 2003, 125(3): 609–616.",{"doi":1169},"10.1115\u002F1.1578669",{"id":18,"text":1171,"url":18,"identifiers":1172},"SATYANARAYANA S, MELKOTE S N. Finite element modeling of fixture-workpiece contacts: single contact modeling and experimental verification[J]. International Journal of Machine Tools & Manufacture, 2004, 44(9): 903–913.",{"doi":1173},"10.1016\u002Fj.ijmachtools.2004.02.010",{"id":18,"text":1175,"url":18,"identifiers":1176},"RAGHU A, MELKOTE S N. Analysis of the effects of fixture clamping sequence on part location errors[J]. International Journal of Machine Tools & Manufacture, 2004, 44(4): 373–382.",{"doi":1177},"10.1016\u002Fj.ijmachtools.2003.10.015",{"id":18,"text":1179,"url":18,"identifiers":1180},"RAGHU A, MELKOTE S N. Modeling of workpiece location error due to fixture geometric error and fixture-workpiece compliance[J]. Transactions of the ASME, Journal of Manufacturing Science and Engineering, 2005, 127(1): 75–83.",{"doi":1181},"10.1115\u002F1.1828052",{"id":18,"text":1183,"url":18,"identifiers":1184},"XIONG Caihua, LI Youfu, RONG Y K, et al. Qualitative analysis and quantitative evaluation of fixturing[J]. Robotics and computer integrated Manufacturing, 2002, 18(5, 6): 335–342.",{"doi":1185},"10.1016\u002FS0736-5845(01)00038-2",{"id":18,"text":1187,"url":18,"identifiers":1188},"XIONG Caihua, XIONG Youlun, WANG M Y. Clamping planning in workpiece-fixture systems[C]\u002F\u002FProceedings of the ASME International Mechanical Engineering Congress, Washington, DC, USA, November 15–21, 2003: 267–272.",{"doi":1189},"10.1115\u002FIMECE2003-42118",{"id":18,"text":1191,"url":18,"identifiers":1192},"SONG H, RONG Y. Locating completeness evaluation and revision in fixture plan[J]. Robotics and Computer-Integrated Manufacturing, 2005, 21(4, 5): 368–378.",{"doi":1193},"10.1016\u002Fj.rcim.2004.11.012",{"id":18,"text":1195,"url":18,"identifiers":1196},"QIN Guohua, WU Zhuxi, ZHANG Weihong. Analysis and control technique of fixturing deformation mechanism of thin-walled Workpiece[J]. Journal of Mechanical Engineering, 2007, 43(4): 211–216. (in Chinese)",{"doi":1197},"10.3901\u002FJME.2007.04.211",{"id":18,"text":1199,"url":18,"identifiers":1200},"KAYA N. Machining fixture locating and clamping position optimization using genetic algorithms[J]. Computers in Industry, 2006, 57(2): 112–120.",{"doi":1201},"10.1016\u002Fj.compind.2005.05.001",{"id":18,"text":1203,"url":18,"identifiers":1204},"WU Zhuxi, XIAO Jie, WU Tiejun, et al. Analysis model of constraint of degrees of freedom of a workpiece based on fixture[J]. Machine Tool & Hydraulics, 2007, 35(12): 19–22. (in Chinese)",{},{"id":18,"text":1206,"url":18,"identifiers":1207},"WAN Xiaojin, XIONG Caihua, ZHAO Can, et al. A unified framework of error evaluation and adjustment in machining[J]. International Journal of Machine Tools & Manufacturing, 2008, 48(11): 1 198–1 210.",{"doi":1208},"10.1016\u002Fj.ijmachtools.2008.03.014",{"id":18,"text":1210,"url":18,"identifiers":1211},"ZHANG Faping, TONG Yingxue, SUN Houfang. Error modeling and analysis of workpiece fixturing scheme for workpiece-fixture System[J]. Transactions of Beijing Institute of Technology, 2009, 29(11): 968–971. (in Chinese)",{},{"id":18,"text":1213,"url":18,"identifiers":1214},"WU Yuguang. Approach to automated location planning of fixture based on the processing procedure requirements[J]. Journal of Mechanical Engineering, 2010, 46(11): 185–192. (in Chinese)",{"doi":1215},"10.3901\u002FJME.2010.11.185",{"id":1217,"createTime":1218,"updateTime":1219,"relativeEntities":1220,"slug":1221,"properties":1222,"entityType":172,"verifyStatus":173,"verifyTime":1219,"verifyNote":174,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1231,"fullTextUrl":18,"authors":1232,"publicationType":244,"publisherRelationship":1330,"citationCount":18,"citationInfo":18,"publishDate":1361,"publishYear":436,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":280},"ad9f1cc9-8022-4ef7-9cc0-0b36b00fbc12","2023-12-20T20:27:23.109+00:00","2025-01-16T23:46:59.000+00:00",[],"Combined-Cellular-Automaton-Model-for-Dynamic-Recrystallization-Evolution-of-42CrMo-Cast-Steel",{"references":1223,"abstract":1225,"title":1227,"doi":1229},{"VOID":1224},"F Chen, Z S Cui, J Liu, et al. Mesoscale simulation of the high-temperature austenitizing and dynamic recrystallization by coupling a Cellular Automaton with a topology deformation technique. Materials Science and Engineering A, 2010, 527(21): 5539–5549.\nR D MacPherson, D J Srolovitz. The von Neumann relation generalized to coarsening of three-dimensional microstructures. Nature, 2007, 446(7139): 1053–1055.\nH Wang, G Liu. Study of 3D quasi-stationary grain size distribution derived from macpherson-srolovitz topology-related grain growth rate equation. Acta Metallurgica Sinica, 2008, 44(7): 769–774. (in Chinese)\nC S Pande, K P Cooper. Self-similar grain size distribution in two dimensions: Analytical solution. Acta Materialia, 2008, 56(16): 4200–4205.\nC S Pande, K P Cooper. On the analytical solution for self-similar grain size distributions in two dimensions. Acta Materialia, 2011, 59(3): 955–961.\nJ C Tucker, L H Chan, G S Rohere, et al. Comparison of grain size distributions in a Ni-based superalloy in three and two dimensions using the Saltykov method. Scripta Materialia, 2012, 66(8): 554–557.\nV P R M Beers, V G Kouznetsova, M G D Geers, et al. A multiscale model of grain boundary structure and energy: From atomistics to a continuum description. Acta Materialia, 2015, 82: 513–529.\nS Keshavarz, S Ghosh. Hierarchical crystal plasticity FE model for nickel-based superalloys: Sub-grain microstructures to polycrystalline aggregates. International Journal of Solids and Structures, 2015, 55: 17–31.\nH Aapo, K Juha, O Erkki. Independent component analysis. New York: John Wiley & Sons, 2001.\nY Guo, S Huang, Y Li, et al. Edge effect elimination in single-mixture blind source separation. Circuits, Systems, and Signal Processing, 2013, (32)5: 2317–2334.\nY Guo, S Huang, Y Li. Single-mixture source separation using dimensionality reduction of ensemble empirical mode decomposition and independent component analysis. Circuits, Systems, and Signal Processing, 2012, 31(6): 2047–2060.\nY Guo, S Ding, Y Li, et al. Multiscale modeling for 42CrMo ring during blank-casting and rolling compound forming process. Journal of Mechanical Engineering, 2014, 50(14): 81–88. (in Chinese)\nR Ding, Z X Guo. Microstructural modelling of dynamic recrystallisation using an extended cellular automaton approach. Computational Materials Science, 2002, 23(1): 209–218.\nChen, K Qi, Z Cui, et al. Modeling the dynamic recrystallization in austenitic stainless steel using cellular automaton method. Computational Materials Science, 2014, 83: 331–340.\nW Roberts, B Ahlblom. A nucleation criterion for dynamic recrystallization during hot working. Acta Metallurgica, 1978, 26(5): 801–813.\nLiu, B W Zhu, L X Li. Dynamic recrystallization of AZ31 magnesium alloysimulated by LaasraouiJonas dislocation equation coupled cellular automata method. The Chinese Journal of Nonferrous Metals, 2013, 23(4): 898–904.\nF A Hua, Y S Yang, D Y Guo, et al. A grain growth cellular automata model based on the curvature-driven mechanism. Acta Metallurgica Sinica, 2004, 40(11): 1210–1214.\nX J Guan, X Y Jiao, J J Zhou, et al. Cellular automata simulation of single grain growth. The Chinese Journal of Nonferrous Metals, 2007, 17(5): 699–703.\nGuo, Y Li, Z Guo, et al. Microstructural evolution of as-cast 42CrMo ring during hot rolling. Journal of Mechanical Engineering, 2014, 50(12): 30–35. (in Chinese)\nF Qin, Y Li, H Qi, et al. Deformation behavior and microstructure evolution of as-cast 42CrMo alloy in isothermal and non-isothermal compression. Journal of Materials Engineering and Performance, 2016, 25(11): 5040–5048.\nG Kugler, R Turk. Modeling the dynamic recrystallization under multi-stage hot deformation. Acta Materialia, 2004, 52(15): 4659–4668.",{"EN":1226},"The dynamic recrystallization (DRX) simulation performance largely depends on simulated grain topological structures. However, currently solutions used different models for describing two-dimensional (2D) and three-dimensional (3D) grain size distributions. Therefore, it is necessary to develop a more universal simulation technique. A cellular automaton (CA) model combined with an optimized topology deformation technology is proposed to simulate the microstructural evolution of 42CrMo cast steel during DRX. In order to obtain values of material constants adopted in the CA model, hot deformation characteristics of 42CrMo cast steel are investigated by hot compression metallographic testing. The proposed CA model deviates in two important aspects from the regular CA model. First, an optimized grain topology deformation technology is utilized for studying the hot compression effect on the topology of grain deformation. Second, the overlapping grain topological structures are optimized by using an independent component analysis method, and the influence of various thermomechanical parameters on the nucleation process, grain growth kinetics, and mean grain sizes observed during DRX are explored. Experimental study shows that the average relative root mean square error (RRMSE) of the mean grain diameter obtained by the regular CA model is equal to 0.173, while the magnitude calculated using the proposed optimized CA model is only 0.11. This paper proposes a novel combined CA model for simulating the microstructural evolution of 42CrMo cast steel, which notably uses a ICA-based grain topology deformation method to optimize the overlapping grain topological structures in simulation.",{"EN":1228},"Combined Cellular Automaton Model for Dynamic Recrystallization Evolution of 42CrMo Cast Steel",{"VOID":1230},"10.1186\u002Fs10033-018-0284-8","https:\u002F\u002Fcjme.springeropen.com\u002Farticles\u002F10.1186\u002Fs10033-018-0284-8",[1233,1258,1273,1292,1311],{"id":1234,"sortIndex":209,"researcher":18,"roles":1235,"affiliations":1236,"properties":1255},"604ffa33-5a1d-4952-a667-22e18bb82c83",[181],[1237,1245],{"id":18,"sortIndex":19,"affiliation":1238,"properties":18},{"id":1239,"createTime":1240,"updateTime":1240,"relativeEntities":1241,"slug":18,"properties":1242,"entityType":46,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"b685dcfe-be72-4fad-805e-33f8c473a5fb","2023-12-20T20:27:30.873+00:00",[],{"title":1243},{"VI":1244},"Shanxi Key Laboratory of Metallic Materials Forming Theory and Technology, Taiyuan, 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G, KAMP H, WACKER E. Diesel engine emissions reductionThe benefits of low oil consumption design[C]\u002F\u002F International Congress & Exposition, Detroit, Michigan, USA, February 26–March 2, 1990:1-10. SAE900591.\nARIGA S, SUI P, SHAHED S. Instantaneous unburned oil consumption measurement in a diesel engine using SO2 tracer technique[C]\u002F\u002FInternational Fuels & Lubricants Meeting & Exposition, San Francisco, California, USA, October 19–22, 1992. SAE922196.\nNAKASHIMA K, ISHIHARA S, URANO K, et al. Lubricating oil flow into the combustion chamber and its reduction method in an automobile gasoline engine[C]\u002F\u002FInternational Fuels & Lubricants Meeting & Exposition, San Antonio, Texas, USA, October 14–17, 1996: 49–62. SAE962034.\nYIN Qi. Study on diesel oil consumption measurement and theoretical analysis[D]. Shanghai: Shanghai Jiao Tong University, 1999. (in Chinese)\nHUBERT M, PRIEBSCH H. Simulation of piston ring dynamics and their effect on oil consumption[C]\u002F\u002FSAE 2000 World Congress, Detroit, Michigan, USA, March 6–9, 2000: 1–12. SAE2000-01-0919.\nAVL LIST GmbH. AVL excite piston & rings users guide[M]. Graz, Austria: AVL LIST GmbH, 2007.\nWANG Shuqing, WU Guodong, GUO Jinbao, et al. Numerical simulation and test research of piston ring dynamics[J]. Internal Combustion Engine & Powerplant, 2008, 103(1): 14–19, 29. (in Chinese)\nHITOSUGI H, NAGOSHI K, KOMADA M, et al. Study on mechanism of lubricating oil consumption caused by cylinder bore deformation[C]\u002F\u002FInternational Congress & Exposition, Detroit, Michigan, USA, February26–29, 1996: 141–150. SAE960305.\nLAURENCE R, WONG V, BROWN A. Effects of lubrication system parameters on diesel particulate emission characteristics[C]\u002F\u002F International Congress & Exposition, Detroit, Michigan, USA, February 26–29, 1996: 143–150. SAE960318.\nMIN B, KIM J, OH D, et al. Dynamic characteristics of oil consumption relationship between the instantaneous oil consumption and the location of piston ring gap[C]\u002F\u002FInternational Fall Fuels and Lubricants Meeting and Exposition, San Francisco, California, USA, October 19–22, 1998: 1–10. SAE982442.\nRABUTE R, TIAN T. Challenges involved in piston top ring designs for modern SI engines[J]. Journal of Engineering for Gas Turbines and Power, 2001, 123(4): 448–459.\nATUL D, AVINASH K A, VISHAL S. Measurement of dynamic lubricating oil film thickness between piston ring and liner in a motored engine[J]. Sensors and Actuators A: Physical, 2009, 149(2): 7–15.\nZHANG Junhong, GAO Hongge, NI Guangjian. Piston-ring and cylinder-liner lubrication in internal combustion engines based on thermo-hydrodynamic[J]. Chinese Journal of Mechanical Engineering, 2011, 24(6): 971–975.\nLIN Jiewei, ZHANG Junhong, ZHANG Guichang, et al. Aero-engine blade fatigue analysis based on nonlinear continuum damage model using neural networks[J]. Chinese Journal of Mechanical Engineering, 2012, 25(2): 338–345.\nFecit Product R&D Center. Artificial neural network theory and matlab7 application[M]. Beijing: Publishing House of Electronics Industry, 2005. (in Chinese)\nFecit Product R&D Center. Matlab 6.5 neural network analysis and design[M]. Beijing: Publishing House of Electronics Industry, 2003. (in Chinese)\nDONG Changhong. Matlab neural network and application[M]. Beijing: National Deference Industry Press, 2005. (in Chinese)",{"EN":1372},"The performance and particulate emission of a diesel engine are affected by the consumption of lubricating oil. Most studies on oil consumption mechanism of the cylinder have been done by using the experimental method, however they are very costly. Therefore, it is very necessary to study oil consumption mechanism of the cylinder and obtain the accurate results by the calculation method. Firstly, four main modes of lubricating oil consumption in cylinder are analyzed and then the oil consumption rate under common working conditions are calculated for the four modes based on an engine. Then, the factors that affect the lubricating oil consumption such as working conditions, the second ring closed gap, the elastic force of the piston rings are also investigated for the four modes. The calculation results show that most of the lubricating oil is consumed by evaporation on the liner surface. Besides, there are three other findings: (1) The oil evaporation from the liner is determined by the working condition of an engine; (2) The increase of the ring closed gap reduces the oil blow through the top ring end gap but increases blow-by; (3) With the increase of the elastic force of the ring, both the left oil film thickness and the oil throw-off at the top ring decrease. The oil scraping of the piston top edge is consequently reduced while the friction loss between the rings and the liner increases. A neural network prediction model of the lubricating oil consumption in cylinder is established based on the BP neural network theory, and then the model is trained and validated. The main piston rings parameters which affect the oil consumption are optimized by using the BP neural network prediction model and the prediction accuracy of this BP neural network is within 8%, which is acceptable for normal engineering applications. The oil consumption is also measured experimentally. The relative errors of the calculated and experimental values are less than 10%, verifying the validity of the simulation results. Applying the established simulation model and the validated BP network model is able to generate numerical results with sufficient accuracy, which significantly reduces experimental work and provides guidance for the optimal design of the piston rings diesel engines.",{"EN":1374},"Analysis of oil consumption in cylinder of diesel engine for optimization of piston 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