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Different errors have varying influence on the machining accuracy of a tool. The aim of this study is to optimize errors to get a desired performance for a numerical control machine tool. Applying multi-body system theory, a volumetric error model was constructed to track and compensate effects of errors during operation of the machine, and to relate the functional specifications on volumetric accuracy to the permissible errors on the joints and links of the machine. Error sensitivity analysis was used to identify the influence of different errors (especially the errors which have large influences) on volumetric error. Based on First Order and Second Moment theory, an error allocation approach was developed to optimize allocation of manufacturing and assembly tolerances along with specifying the operating conditions to determine the optimal level of these errors so that the cost of controlling them and the cost of failure to meet the specifications is minimized. The approach developed was implemented in software and an example of the geometric errors budgeting for a five-axis machine was discussed. It is identified that the different optimal standard deviations reflect the cost-weighted influences of the respective parameters in the equations of the functional requirements. This study suggests that it is possible to determine the coupling relationships between these errors and optimize the allowable error budgeting between these sources.\u003C\u002Fjats:p>",{"EN":106},"Geometric accuracy allocation for multi-axis CNC machine tools based on sensitivity analysis and reliability theory",{"VOID":108},"10.1177\u002F0954406214542491","PUBLICATION","VERIFIED","2024-09-01T22:20:34.796+00:00","Auto 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Research on accuracy design for remanufactured machine tools. 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Tolerance allocation of assemblies using fuzzy comprehensive evaluation and decision support processes. In:ASME 2010 international design engineering technical conferences and computers and information in engineering conference, 2010, pp.1121–1131. Montreal, QC, Canada: American Society of Mechanical Engineers.",{"doi":311},"10.1115\u002FDETC2010-29023",{"id":24,"text":313,"url":24,"identifiers":314},"10.1007\u002Fs00170-009-2256-8",{"doi":313},{"id":24,"text":264,"url":24,"identifiers":316},{},{"id":24,"text":318,"url":24,"identifiers":319},"Schulstchik R, 1979, Ann CIRP, 25, 223",{},{"id":24,"text":321,"url":24,"identifiers":322},"Dufour P, 1981, MTDR Conf Proc, 22, 611",{},{"id":24,"text":324,"url":24,"identifiers":325},"Portman VT, 1981, Sov Eng Res, 1, 11",{},{"id":24,"text":327,"url":24,"identifiers":328},"10.1016\u002F0141-6359(86)90059-0",{"doi":327},{"id":24,"text":330,"url":24,"identifiers":331},"Donmez MA, Lee K, Liu C, et al. A real-time error compensation system for a computerized control turning center In:Proceedings of IEEE International Conference on Robotics and Automation, San Francisco, CA, 1986, vol. 3, pp.172–176. IEEE.",{"doi":332},"10.1109\u002FROBOT.1986.1087674",{"id":24,"text":334,"url":24,"identifiers":335},"10.1016\u002F0890-6955(94)90043-4",{"doi":334},{"id":24,"text":337,"url":24,"identifiers":338},"10.1016\u002F0890-6955(94)90044-2",{"doi":337},{"id":24,"text":340,"url":24,"identifiers":341},"10.1016\u002F0890-6955(93)90049-Z",{"doi":340},{"id":24,"text":343,"url":24,"identifiers":344},"10.1016\u002F0890-6955(94)00048-O",{"doi":343},{"id":24,"text":346,"url":24,"identifiers":347},"10.1007\u002Fs001700300028",{"doi":346},{"id":24,"text":349,"url":24,"identifiers":350},"Liu LB, 2000, China Mech Eng, 6, 642",{},{"id":24,"text":352,"url":24,"identifiers":353},"Zhang Q, 2000, China Mech Eng, 6, 631",{},{"id":24,"text":355,"url":24,"identifiers":356},"10.3901\u002FJME.2002.01.127",{"doi":355},{"id":24,"text":358,"url":24,"identifiers":359},"Su SP and Li SY. Modeling the volumetric synthesis error of 5-axis machine tools based on multi-body system kinematics.Modular Machine Tool & Automatic Manufacturing Technique2003; 5: 15–18, 21.",{},{"id":24,"text":361,"url":24,"identifiers":362},"10.3901\u002FCJME.2003.02.197",{"doi":361},{"id":24,"text":364,"url":24,"identifiers":365},"Ding W, 2007, J Basic Sci Eng, 4, 017",{},{"id":24,"text":367,"url":24,"identifiers":368},"Cheng Q, 2013, Math Prob Eng, 2013, 1",{},{"id":24,"text":370,"url":24,"identifiers":371},"Kang F.Research on method of CNC machine tool manufacturing accuracy distribution and optimization. Beijing: Beijing University of Technology, 2008.",{},{"id":24,"text":373,"url":24,"identifiers":374},"Liu Y, 2004, Shipbuild China, 45, 81",{},{"id":24,"text":376,"url":24,"identifiers":377},"Zhang X, 2003, J Project Rockets Missiles Guid, 23, 17",{},{"id":24,"text":379,"url":24,"identifiers":380},"Wang C, Fei Y, Hu P, et al. Accuracy distribution and determination of the flexible three-coordinate measuring machine. In:Third international symposium on precision mechanical measurements, 2006, 62800U-62800U-7. Urumqi, China: International Society for Optics and Photonics.",{"doi":381},"10.1117\u002F12.716193",{"id":24,"text":383,"url":24,"identifiers":384},"Yang H, 2006, J Chongqing Univ, 29, 82",{},{"id":24,"text":386,"url":24,"identifiers":387},"Wang E, 1985, Chin J Sci Inst, 6, 140",{},{"id":24,"text":389,"url":24,"identifiers":390},"Lu Q, 2002, Chin J Mech Eng, 13, 464",{},{"id":24,"text":392,"url":24,"identifiers":393},"Xu L, 2003, J Sichuan Univ, 35, 1",{},{"id":24,"text":395,"url":24,"identifiers":396},"Yang C, 2004, Mie China, 33, 105",{},{"id":24,"text":398,"url":24,"identifiers":399},"10.1007\u002FPL00013129",{"doi":398},{"id":24,"text":401,"url":24,"identifiers":402},"10.1007\u002Fs00170-010-2661-z",{"doi":401},{"id":24,"text":404,"url":24,"identifiers":405},"10.1115\u002F1.3438222",{"doi":404},{"id":24,"text":407,"url":24,"identifiers":408},"10.1115\u002F1.3256448",{"doi":407},{"id":24,"text":410,"url":24,"identifiers":411},"10.1115\u002F1.3428175",{"doi":410},{"id":24,"text":413,"url":24,"identifiers":414},"Dresner TL and Barkan P. Optimal tolerance allocation for tolerance stack-ups. In:Advances in design automation 1993: presented at the 1993 ASME design technical conference—19th design automation conference, Albuquerque, New Mexico, 1993, Vol. 65, p.2.",{"doi":415},"10.1115\u002FDETC1993-0389",{"id":24,"text":417,"url":24,"identifiers":418},"10.1115\u002F1.2901931",{"doi":417},{"id":24,"text":420,"url":24,"identifiers":421},"Sun Q, 1998, Aeronaut Mach Technol, 2, 35",{},{"id":24,"text":423,"url":24,"identifiers":424},"10.1080\u002F09544820701874039",{"doi":423},{"id":24,"text":426,"url":24,"identifiers":427},"Cheng Q, Xiao C, Zhang G, et al. An analytical robust design optimization methodology based on axiomatic design principles.Qual Reliab Eng Int2013. DOI: 10.1002\u002Fqre.1534.",{"doi":428},"10.1002\u002Fqre.1534",{"id":24,"text":430,"url":24,"identifiers":431},"Ditlevsen O, 2007, Structural reliability methods",{},false,{"id":434,"createTime":435,"updateTime":435,"relativeEntities":436,"slug":437,"properties":438,"entityType":109,"verifyStatus":110,"verifyTime":435,"verifyNote":112,"syncStatus":23,"languages":450,"translateLanguages":24,"viewCount":25,"primaryUrl":451,"fullTextUrl":24,"authors":452,"publicationType":218,"publisherRelationship":507,"citationCount":540,"citationInfo":541,"publishDate":543,"publishYear":544,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":545,"isForceReanalyzing":432},"e2ee979f-16d4-46ae-9fdb-04552c3a3e9d","2024-09-01T22:19:55.657+00:00",[],"Volumetric-Error-Modelling-Measurement-and-Compensation-for-an-Integrated-Measurement-Processing-Machine-Tool",{"mag":439,"keywords":441,"openalex":442,"abstract":444,"title":446,"doi":448},{"VOID":440},"2043358593",{},{"VOID":443},"W2043358593",{"EN":445},"\u003Cjats:p> The volumetric error of a measurement-processing integrated machine tool was studied by using a complicated surface workpiece grinding machine as a special example. The model of volumetric error was established by using homogeneous transformation matrices, and the effect of volumetric error on coordinate transformation between the measurement and the processing work station was analysed. Various error components of the machine tool were measured with a laser interferometer and an electronic level, and the volumetric error was compensated by external software. With a ball bar system and grinding experiments, the volumetric position accuracy was tested after compensation. The experiment results illustrated that both the volumetric position accuracy and machining precision were improved dramatically after compensation. \u003C\u002Fjats:p>",{"EN":447},"Volumetric Error Modelling, Measurement, and Compensation for an Integrated Measurement-Processing Machine Tool",{"VOID":449},"10.1243\u002F09544062jmes2200",[114],"http:\u002F\u002Fjournals.sagepub.com\u002Fdoi\u002F10.1243\u002F09544062JMES2200",[453,473,492],{"id":454,"sortIndex":25,"researcher":24,"roles":455,"affiliations":456,"properties":468},"699bed26-2994-4322-a9cf-d3473ae25e3a",[],[457],{"id":458,"sortIndex":25,"affiliation":459,"properties":24},"dbe21880-d823-4695-8c07-706259a0096e",{"id":460,"createTime":461,"updateTime":462,"relativeEntities":463,"slug":464,"properties":465,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"3463c6d6-2d96-43b4-83ad-c3b702e06660","2023-12-14T16:23:39.548+00:00","2024-09-01T22:19:55.711+00:00",[],"Key-Laboratory-for-Precision-and-Non-traditional-Machining-Technology-of-Ministry-of-Education-Dalian-University-of-Technology-Dalian-People-s-Republic-of-China",{"title":466},{"VI":467},"Key Laboratory for Precision and Non-traditional Machining Technology of Ministry of Education, Dalian University of Technology, Dalian, People’s Republic of China",{"openalex":469,"title":471},{"VOID":470},"A5021432786",{"EN":472},"K Wang",{"id":474,"sortIndex":202,"researcher":24,"roles":475,"affiliations":476,"properties":487},"a2e977eb-dd6a-4662-9068-a98fbc53da7f",[],[477],{"id":478,"sortIndex":25,"affiliation":479,"properties":24},"939e2fc9-cd23-458e-ad17-4122156dd34f",{"id":480,"createTime":481,"updateTime":481,"relativeEntities":482,"slug":483,"properties":484,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"1ceb8bc2-5bc1-491a-a0d1-976c1c4b9e46","2024-09-01T22:19:55.769+00:00",[],"Department-of-Electrical-and-Electronics-Engineering-Dalian-University-of-Technology-Dalian-People-s-Republic-of-China",{"title":485},{"EN":486},"Department of Electrical and Electronics Engineering, Dalian University of Technology, Dalian, People's Republic of China",{"openalex":488,"title":490},{"VOID":489},"A5046773449",{"EN":491},"Xian Jun Sheng",{"id":493,"sortIndex":180,"researcher":24,"roles":494,"affiliations":495,"properties":502},"03791ad4-6b2d-46ce-a28d-ad27ba24c149",[],[496],{"id":497,"sortIndex":25,"affiliation":498,"properties":24},"aaee5305-5093-4095-b779-787adb45fcc7",{"id":460,"createTime":461,"updateTime":462,"relativeEntities":499,"slug":464,"properties":500,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":501},{"VI":467},{"openalex":503,"title":505},{"VOID":504},"A5103398153",{"EN":506},"Ren Ke Kang",{"url":24,"publisher":508,"properties":533},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":509,"slug":10,"properties":510,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":516,"manageAffiliations":517,"indexDatabases":518,"url":87,"thumbnailPath":24,"statistic":24,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":511,"issn":512,"introduce":513,"eissn":514,"title":515},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},{"EN":21},[],[],[519,526],{"id":50,"indexDatabase":520,"url":65,"indexYears":24,"academicFieldIds":525,"indexDatabaseRanking":24},{"id":52,"createTime":53,"updateTime":54,"relativeEntities":521,"label":522,"description":523,"key":61,"publicationTags":524,"standard":24},[],{"EN":57,"VI":57},{"VI":59,"EN":60},[63,64],[67],{"id":69,"indexDatabase":527,"url":82,"indexYears":83,"academicFieldIds":532,"indexDatabaseRanking":86},{"id":71,"createTime":72,"updateTime":73,"relativeEntities":528,"label":529,"description":530,"key":79,"publicationTags":531,"standard":24},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85],{"volume":534,"pages":536,"issue":538},{"VOID":535},"224",{"VOID":537},"2477-2486",{"VOID":539},"11",15,{"total":540,"publishYear":24,"statisticByYear":542},{"2013":180,"2014":202,"2016":180,"2017":180,"2018":180,"2019":202,"2020":202,"2022":180},"2010-11-01",2010,[546,549,552,555,558,561,564,567,570,573,576,579,582,585],{"id":24,"text":547,"url":24,"identifiers":548},"10.1016\u002FS0890-6955(00)00009-2",{"doi":547},{"id":24,"text":550,"url":24,"identifiers":551},"10.1016\u002F0020-7357(61)90009-9",{"doi":550},{"id":24,"text":553,"url":24,"identifiers":554},"French D., Humphries S. H. Compensation for backlash and alignment errors in a numerically controlled machine-tool by a digital computer program. In Proceedings of the 8th International MTDR Conference, Manchester, 1967, pp. 167–172.",{},{"id":24,"text":556,"url":24,"identifiers":557},"Schultschik R., 1977, Ann. CIRP, 25, 223",{},{"id":24,"text":559,"url":24,"identifiers":560},"10.1016\u002F0278-6125(86)90067-1",{"doi":559},{"id":24,"text":562,"url":24,"identifiers":563},"Chen J. S., 1992, Trans. NAMRI, 20, 325",{},{"id":24,"text":565,"url":24,"identifiers":566},"Yang J., 1998, Mach. Des. Manuf., 5, 31",{},{"id":24,"text":568,"url":24,"identifiers":569},"Li S., 2002, Chin. J. Mech. Eng., 7, 121",{},{"id":24,"text":571,"url":24,"identifiers":572},"Li S., 2001, J. Natl Univ. Def. Technol., 4, 45",{},{"id":24,"text":574,"url":24,"identifiers":575},"10.1007\u002FBF01179416",{"doi":574},{"id":24,"text":577,"url":24,"identifiers":578},"Slocum A. H., 1992, Precision machine design",{},{"id":24,"text":580,"url":24,"identifiers":581},"10.1016\u002Fj.ijmachtools.2005.09.004",{"doi":580},{"id":24,"text":583,"url":24,"identifiers":584},"10.1016\u002FS0890-6955(99)00101-7",{"doi":583},{"id":24,"text":586,"url":24,"identifiers":587},"10.1016\u002FS0924-0136(03)00193-6",{"doi":586},{"id":589,"createTime":590,"updateTime":590,"relativeEntities":591,"slug":592,"properties":593,"entityType":109,"verifyStatus":110,"verifyTime":590,"verifyNote":112,"syncStatus":23,"languages":605,"translateLanguages":24,"viewCount":25,"primaryUrl":606,"fullTextUrl":24,"authors":607,"publicationType":218,"publisherRelationship":680,"citationCount":540,"citationInfo":712,"publishDate":714,"publishYear":715,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":716,"isForceReanalyzing":432},"6d69c60d-6214-482f-9786-0005efcaab50","2024-07-18T22:01:11.214+00:00",[],"Finite-element-analysis-of-a-cylindrical-approach-for-shrink-fit-precision-gear-forging-dies",{"mag":594,"keywords":596,"openalex":597,"abstract":599,"title":601,"doi":603},{"VOID":595},"1983581356",{},{"VOID":598},"W1983581356",{"EN":600},"\u003Cjats:p> The design of shrink-fit precision gear forging dies based on strength considerations using an analytical (thick-wall cylinders) approach and the finite element method are compared. While the two methods, analytical and finite element, agree well for the dies with no irregularities (gear teeth), the finite element method predicts much higher stress values than those of the analytical approach for the dies with gear teeth. These high stresses are considerably reduced by reoptimizing the geometric parameters, such as the interference between the die and the ring. \u003C\u002Fjats:p>",{"EN":602},"Finite element analysis of a cylindrical approach for shrink-fit precision gear forging dies",{"VOID":604},"10.1243\u002F095440603321919590",[114],"http:\u002F\u002Fjournals.sagepub.com\u002Fdoi\u002F10.1243\u002F095440603321919590",[608,629,646,663],{"id":609,"sortIndex":202,"researcher":24,"roles":610,"affiliations":611,"properties":622},"0ef5ee2e-43ec-4990-82de-74aed45bb557",[],[612],{"id":613,"sortIndex":25,"affiliation":614,"properties":24},"1b1ec476-f78a-4dd2-947b-8005fa25767e",{"id":615,"createTime":616,"updateTime":616,"relativeEntities":617,"slug":618,"properties":619,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"d1fc49f7-2fa5-45b9-abc4-b1cff21294d8","2024-07-18T22:01:11.222+00:00",[],"Gaziantep-University-Mechanical-Engineering-Department-Gaziantep-Turkey",{"title":620},{"EN":621},"Gaziantep University Mechanical Engineering Department Gaziantep, Turkey",{"openalex":623,"orcid":625,"title":627},{"VOID":624},"A5090926676",{"VOID":626},"https:\u002F\u002Forcid.org\u002F0000-0002-9076-0972",{"EN":628},"Ömer Eyerci̇oğlu",{"id":630,"sortIndex":158,"researcher":24,"roles":631,"affiliations":632,"properties":639},"834c0645-21cb-4dc7-bc58-5fdf647cd665",[],[633],{"id":634,"sortIndex":25,"affiliation":635,"properties":24},"5b5b3266-5f87-430f-b1f0-67a83377db22",{"id":615,"createTime":616,"updateTime":616,"relativeEntities":636,"slug":618,"properties":637,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":638},{"EN":621},{"openalex":640,"orcid":642,"title":644},{"VOID":641},"A5102765518",{"VOID":643},"https:\u002F\u002Forcid.org\u002F0000-0001-5607-4349",{"EN":645},"A. 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A., Walton D. Dimensional accuracy of hot precision forged spur gears. In 1994 International Gearing Conference, Newcastle Upon Tyne, 1994, pp. 285–290.",{},{"id":24,"text":724,"url":24,"identifiers":725},"Eyercioglu O., Dean T. A. Design and manufacture of precision gear forging dies. In CIRP International Conference on Design and Production of Dies and Molds, Istanbul, Turkey, 1997, pp. 311–316.",{},{"id":24,"text":727,"url":24,"identifiers":728},"Lame G. Lecons sur la Theorie… la l'Elasitcitt, Paris, 1852.",{},{"id":24,"text":730,"url":24,"identifiers":731},"Lange K., 1985, Handbook of Metal Forming",{},{"id":733,"createTime":734,"updateTime":734,"relativeEntities":735,"slug":736,"properties":737,"entityType":109,"verifyStatus":110,"verifyTime":734,"verifyNote":112,"syncStatus":23,"languages":749,"translateLanguages":24,"viewCount":25,"primaryUrl":750,"fullTextUrl":24,"authors":751,"publicationType":218,"publisherRelationship":791,"citationCount":823,"citationInfo":824,"publishDate":826,"publishYear":544,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":827,"isForceReanalyzing":432},"7b6aecba-76f5-4990-a7de-02749a71570c","2024-12-10T20:26:10.496+00:00",[],"The-effects-of-shear-deformation-on-the-free-vibration-of-elastic-beams-with-general-boundary-conditions",{"mag":738,"keywords":740,"openalex":741,"abstract":743,"title":745,"doi":747},{"VOID":739},"1977632122",{},{"VOID":742},"W1977632122",{"EN":744},"\u003Cjats:p> Free vibration characteristics of shear deformable elastic beams subjected to different sets of boundary conditions are investigated. The analysis is based on a unified one-dimensional shear deformation beam theory. The governing equations of the elastic beams are obtained by means of Hamilton's principle. Four different boundary conditions are considered. The natural frequencies and mode shapes are obtained by applying the dynamic stiffness method, where the elements of the exact dynamic stiffness matrix are derived by using the analytical solutions of the governing equations of the beam in free vibration. The numerical results for the particular beams with different slenderness ratios are presented and compared with those available in the literature. \u003C\u002Fjats:p>",{"EN":746},"The effects of shear deformation on the free vibration of elastic beams with general boundary conditions",{"VOID":748},"10.1243\u002F09544062jmes1527",[114],"https:\u002F\u002Fjournals.sagepub.com\u002Fdoi\u002F10.1243\u002F09544062JMES1527",[752,774],{"id":753,"sortIndex":202,"researcher":24,"roles":754,"affiliations":755,"properties":767},"b5b8865f-4f76-4298-8a6b-06a50e50b0ca",[],[756],{"id":757,"sortIndex":25,"affiliation":758,"properties":24},"c597d0a8-b33f-45ea-bfa2-9ed534d22823",{"id":759,"createTime":760,"updateTime":761,"relativeEntities":762,"slug":763,"properties":764,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"024e42e1-6764-4a29-885b-6e4cee6c3ee7","2024-04-08T00:50:22.673+00:00","2025-06-11T15:43:23.946+00:00",[],"Institute-of-Vibration-Shock-Noise-Shanghai-Jiao-Tong-University-Shanghai-People-s-Republic-of-China",{"title":765},{"VI":766},"Institute of Vibration, Shock & Noise, Shanghai Jiao Tong University, Shanghai, People’s Republic of China",{"openalex":768,"orcid":770,"title":772},{"VOID":769},"A5100767393",{"VOID":771},"https:\u002F\u002Forcid.org\u002F0000-0001-5438-1185",{"EN":773},"Hongxing Hua",{"id":775,"sortIndex":25,"researcher":24,"roles":776,"affiliations":777,"properties":784},"4bb29853-6577-4c4f-b4ce-3e2ad76ef1f0",[],[778],{"id":779,"sortIndex":25,"affiliation":780,"properties":24},"d1d24010-2ef9-4f32-a402-2815c4535f4f",{"id":759,"createTime":760,"updateTime":761,"relativeEntities":781,"slug":763,"properties":782,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":783},{"VI":766},{"openalex":785,"orcid":787,"title":789},{"VOID":786},"A5100613635",{"VOID":788},"https:\u002F\u002Forcid.org\u002F0000-0003-1125-026X",{"EN":790},"Jiong Li",{"url":24,"publisher":792,"properties":817},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":793,"slug":10,"properties":794,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":800,"manageAffiliations":801,"indexDatabases":802,"url":87,"thumbnailPath":24,"statistic":24,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":795,"issn":796,"introduce":797,"eissn":798,"title":799},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},{"EN":21},[],[],[803,810],{"id":50,"indexDatabase":804,"url":65,"indexYears":24,"academicFieldIds":809,"indexDatabaseRanking":24},{"id":52,"createTime":53,"updateTime":54,"relativeEntities":805,"label":806,"description":807,"key":61,"publicationTags":808,"standard":24},[],{"EN":57,"VI":57},{"VI":59,"EN":60},[63,64],[67],{"id":69,"indexDatabase":811,"url":82,"indexYears":83,"academicFieldIds":816,"indexDatabaseRanking":86},{"id":71,"createTime":72,"updateTime":73,"relativeEntities":812,"label":813,"description":814,"key":79,"publicationTags":815,"standard":24},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85],{"volume":818,"pages":819,"issue":821},{"VOID":535},{"VOID":820},"71-84",{"VOID":822},"1",19,{"total":823,"publishYear":24,"statisticByYear":825},{"2012":119,"2013":158,"2014":180,"2016":202,"2017":180,"2019":180,"2021":202,"2022":202,"2023":202,"2024":180},"2010-01-01",[828,831,835,838,841,844,847,850,853,856,859,862,865,868,871,874,877,880,883,886,889,892,895,898,901,904,907,910],{"id":24,"text":829,"url":24,"identifiers":830},"10.1080\u002F14786442208633855",{"doi":829},{"id":24,"text":832,"url":24,"identifiers":833},"Mindlin R. 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M., 2000, Shear deformable beams and plates",{},{"id":24,"text":875,"url":24,"identifiers":876},"10.1016\u002FS0020-7683(00)00298-5",{"doi":875},{"id":24,"text":878,"url":24,"identifiers":879},"10.1177\u002F073168401772678283",{"doi":878},{"id":24,"text":881,"url":24,"identifiers":882},"10.1016\u002FS0045-7949(02)00438-8",{"doi":881},{"id":24,"text":884,"url":24,"identifiers":885},"10.1002\u002Fnme.736",{"doi":884},{"id":24,"text":887,"url":24,"identifiers":888},"10.1016\u002FS0045-7949(96)00326-4",{"doi":887},{"id":24,"text":890,"url":24,"identifiers":891},"10.1177\u002F058310240003200601",{"doi":890},{"id":24,"text":893,"url":24,"identifiers":894},"10.1007\u002FBF01176650",{"doi":893},{"id":24,"text":896,"url":24,"identifiers":897},"10.1016\u002F0263-8223(93)90162-J",{"doi":896},{"id":24,"text":899,"url":24,"identifiers":900},"Char B. 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Mech., 94, 1447",{},{"id":24,"text":911,"url":24,"identifiers":912},"Kolousek V., 1973, Dynamics in engineering structures",{},{"id":914,"createTime":915,"updateTime":915,"relativeEntities":916,"slug":917,"properties":918,"entityType":109,"verifyStatus":110,"verifyTime":930,"verifyNote":112,"syncStatus":23,"languages":931,"translateLanguages":24,"viewCount":25,"primaryUrl":932,"fullTextUrl":24,"authors":933,"publicationType":218,"publisherRelationship":988,"citationCount":1021,"citationInfo":1022,"publishDate":1027,"publishYear":1028,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":1029,"isForceReanalyzing":432},"de060409-5ccd-48a2-95ee-c53b10bda2a2","2024-09-12T20:22:06.053+00:00",[],"A-theoretical-model-for-the-contact-of-elastoplastic-bodies",{"mag":919,"keywords":921,"openalex":922,"abstract":924,"title":926,"doi":928},{"VOID":920},"2022938840",{},{"VOID":923},"W2022938840",{"EN":925},"\u003Cjats:p> The paper presents a theoretical model for the normal contact of a rigid sphere with an elastic-perfectly plastic half-space or an elastic-perfectly plastic sphere with a rigid wall. Formulae describing the force-displacement relationship for static contact problems and the coefficient of restitution for dynamic impact problems are derived. The present model can be considered as a modification of Johnson's model by using a more detailed pressure distribution function which is based on finite element analysis (PEA) results and considering the variation in the curvature of the contact surface during the contact interaction. In order to verify the theoretical model, finite element analyses are also conducted, and results are compared with those predicted by the model for both contact force-displacement relations and restitution coefficients. Good agreements between the model predictions and the FEA results are found. \u003C\u002Fjats:p>",{"EN":927},"A theoretical model for the contact of elastoplastic bodies",{"VOID":929},"10.1243\u002F0954406021525214","2024-09-12T20:22:06.052+00:00",[114],"http:\u002F\u002Fjournals.sagepub.com\u002Fdoi\u002F10.1243\u002F0954406021525214",[934,954,971],{"id":935,"sortIndex":180,"researcher":24,"roles":936,"affiliations":937,"properties":949},"b0a7605f-ac57-482a-97ee-66889741857f",[],[938],{"id":939,"sortIndex":25,"affiliation":940,"properties":24},"b661fa37-66aa-4402-b2e0-f0d317323db7",{"id":941,"createTime":942,"updateTime":943,"relativeEntities":944,"slug":945,"properties":946,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"df3277ce-b0f0-4215-ae7c-10994e181a51","2024-09-12T20:22:06.082+00:00","2024-09-25T09:41:21.591+00:00",[],"Aston-University-School-of-Engineering-and-Applied-Science-Birmingham-UK",{"title":947},{"EN":948},"Aston University School of Engineering and Applied Science Birmingham, UK",{"openalex":950,"title":952},{"VOID":951},"A5005071662",{"EN":953},"Colin Thornton",{"id":955,"sortIndex":25,"researcher":24,"roles":956,"affiliations":957,"properties":964},"a2ec9956-2089-4131-836d-54b2e43aad63",[],[958],{"id":959,"sortIndex":25,"affiliation":960,"properties":24},"0d8ab9c1-c5f5-4821-8390-6ee73aabe165",{"id":941,"createTime":942,"updateTime":943,"relativeEntities":961,"slug":945,"properties":962,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":963},{"EN":948},{"openalex":965,"orcid":967,"title":969},{"VOID":966},"A5015895902",{"VOID":968},"https:\u002F\u002Forcid.org\u002F0000-0002-5982-0965",{"EN":970},"Long-yuan Li",{"id":972,"sortIndex":202,"researcher":24,"roles":973,"affiliations":974,"properties":981},"ff0da39f-c894-446d-8db1-9018a8137ae0",[],[975],{"id":976,"sortIndex":25,"affiliation":977,"properties":24},"82e70806-f9df-464b-865c-de8814154bc1",{"id":941,"createTime":942,"updateTime":943,"relativeEntities":978,"slug":945,"properties":979,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":980},{"EN":948},{"openalex":982,"orcid":984,"title":986},{"VOID":983},"A5032756126",{"VOID":985},"https:\u002F\u002Forcid.org\u002F0000-0003-2721-5231",{"EN":987},"Chuan‐Yu Wu",{"url":24,"publisher":989,"properties":1014},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":990,"slug":10,"properties":991,"entityType":22,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25,"subjectFields":997,"manageAffiliations":998,"indexDatabases":999,"url":87,"thumbnailPath":24,"statistic":24,"gsStatistic":24,"type":24,"analyzePriority":24},[],{"country":992,"issn":993,"introduce":994,"eissn":995,"title":996},{"VOID":13},{"VOID":15},{"EN":17},{"VOID":19},{"EN":21},[],[],[1000,1007],{"id":50,"indexDatabase":1001,"url":65,"indexYears":24,"academicFieldIds":1006,"indexDatabaseRanking":24},{"id":52,"createTime":53,"updateTime":54,"relativeEntities":1002,"label":1003,"description":1004,"key":61,"publicationTags":1005,"standard":24},[],{"EN":57,"VI":57},{"VI":59,"EN":60},[63,64],[67],{"id":69,"indexDatabase":1008,"url":82,"indexYears":83,"academicFieldIds":1013,"indexDatabaseRanking":86},{"id":71,"createTime":72,"updateTime":73,"relativeEntities":1009,"label":1010,"description":1011,"key":79,"publicationTags":1012,"standard":24},[],{"EN":76,"VI":76},{"EN":76,"VI":78},[81],[85],{"volume":1015,"pages":1017,"issue":1019},{"VOID":1016},"216",{"VOID":1018},"421-431",{"VOID":1020},"4",130,{"total":1021,"publishYear":24,"statisticByYear":1023},{"2012":202,"2013":119,"2014":256,"2015":1024,"2016":256,"2017":255,"2018":256,"2019":256,"2020":1025,"2021":256,"2022":255,"2023":1026,"2024":119},8,10,12,"2001-04-01",2001,[1030,1033,1036,1039,1042,1045,1048,1051,1054,1057,1060,1063,1067,1070,1073,1076,1079,1082,1085,1088],{"id":24,"text":1031,"url":24,"identifiers":1032},"Hertz H. R., 1896, Miscellaneous Papers",{},{"id":24,"text":1034,"url":24,"identifiers":1035},"Ishlinsky A. J., 1947, The axial-symmetrical problem in plasticity and the Brinell test",{},{"id":24,"text":1037,"url":24,"identifiers":1038},"10.1017\u002FCBO9781139171731",{"doi":1037},{"id":24,"text":1040,"url":24,"identifiers":1041},"10.1115\u002F1.2787319",{"doi":1040},{"id":24,"text":1043,"url":24,"identifiers":1044},"10.1098\u002Frspa.1999.0488",{"doi":1043},{"id":24,"text":1046,"url":24,"identifiers":1047},"10.1002\u002Fnme.1620030402",{"doi":1046},{"id":24,"text":1049,"url":24,"identifiers":1050},"10.1016\u002F0020-7683(84)90078-7",{"doi":1049},{"id":24,"text":1052,"url":24,"identifiers":1053},"10.1016\u002F0020-7683(85)90039-3",{"doi":1052},{"id":24,"text":1055,"url":24,"identifiers":1056},"10.1098\u002Frspa.1989.0056",{"doi":1055},{"id":24,"text":1058,"url":24,"identifiers":1059},"10.1115\u002F1.2900991",{"doi":1058},{"id":24,"text":1061,"url":24,"identifiers":1062},"10.1115\u002F1.2831236",{"doi":1061},{"id":24,"text":1064,"url":24,"identifiers":1065},"2000, Powder Technol, 109, 1, 10.1016\u002FS0032-5910(00)00218-7",{"doi":1066},"10.1016\u002FS0032-5910(00)00218-7",{"id":24,"text":1068,"url":24,"identifiers":1069},"Tabor D., 1951, Hardness of Metals",{},{"id":24,"text":1071,"url":24,"identifiers":1072},"10.1016\u002FS0032-5910(98)00099-0",{"doi":1071},{"id":24,"text":1074,"url":24,"identifiers":1075},"Goldsmith W., 1960, Impact,",{},{"id":24,"text":1077,"url":24,"identifiers":1078},"10.1115\u002F1.3101928",{"doi":1077},{"id":24,"text":1080,"url":24,"identifiers":1081},"Wu C. Y., 2001, Finite element analysis of panicle impact problems",{},{"id":24,"text":1083,"url":24,"identifiers":1084},"10.1243\u002F0954406001523551",{"doi":1083},{"id":24,"text":1086,"url":24,"identifiers":1087},"Whirley R. G., 1992, DYNA2D, A Non-linear, Explicit, Two-Dimensional Finite Element Code for Solid Mechanics User Manual",{},{"id":24,"text":1089,"url":24,"identifiers":1090},"10.1016\u002F0045-7825(85)90030-1",{"doi":1089},{"id":1092,"createTime":1093,"updateTime":1093,"relativeEntities":1094,"slug":1095,"properties":1096,"entityType":109,"verifyStatus":110,"verifyTime":1093,"verifyNote":112,"syncStatus":23,"languages":1108,"translateLanguages":24,"viewCount":25,"primaryUrl":1109,"fullTextUrl":24,"authors":1110,"publicationType":218,"publisherRelationship":1164,"citationCount":1196,"citationInfo":1197,"publishDate":1199,"publishYear":1200,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":1201,"isForceReanalyzing":432},"5cd31041-a1ec-41b5-92c6-ab74f80db325","2024-09-26T19:45:45.733+00:00",[],"Tribology-of-the-ring-bore-conjunction-subject-to-a-mixed-regime-of-lubrication",{"mag":1097,"keywords":1099,"openalex":1100,"abstract":1102,"title":1104,"doi":1106},{"VOID":1098},"1967760675",{},{"VOID":1101},"W1967760675",{"EN":1103},"\u003Cjats:p> This paper provides a detailed analysis of the compression ring—bore\u002Fliner conjunction. The analysis includes ring—bore conformability and global in-plane deformation of ring fitted in situ. The analysis for fitted ring in an out-of-round bore shows very good agreement with precise measurements, using a coordinate measuring machine. The analysis also includes the lubricated conjunction under a transient regime of lubrication, taking into account combined elastohydrodynamics and asperity interactions. The transient nature of the tribological conjunction has been demonstrated, particularly the prevalent mixed\u002Fboundary regime of lubrication at the top and bottom dead centres. \u003C\u002Fjats:p>\u003Cjats:p> The analysis is applied to a high performance motorbike engine subjected to very high impact loads and engine speeds of the order of 13 000 r\u002Fmin. Furthermore, the predictions of the model show good conformance to the measurements of friction reported by other research workers. \u003C\u002Fjats:p>",{"EN":1105},"Tribology of the ring—bore conjunction subject to a mixed regime of lubrication",{"VOID":1107},"10.1243\u002F09544062jmes1220",[114],"http:\u002F\u002Fjournals.sagepub.com\u002Fdoi\u002F10.1243\u002F09544062JMES1220",[1111,1130,1147],{"id":1112,"sortIndex":180,"researcher":24,"roles":1113,"affiliations":1114,"properties":1125},"2231425c-7dc8-4ce2-af02-6c6070b2091e",[],[1115],{"id":1116,"sortIndex":25,"affiliation":1117,"properties":24},"6bb89ace-a702-4e6d-b149-5edeacde1070",{"id":1118,"createTime":1119,"updateTime":1119,"relativeEntities":1120,"slug":1121,"properties":1122,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"1b830d41-e92c-416b-947c-ce67d51d48b3","2024-09-26T19:45:45.749+00:00",[],"Wolfson-School-of-Mechanical-and-Manufacturing-Engineering-University-of-Loughborough-Loughborough-UK",{"title":1123},{"EN":1124},"Wolfson School of Mechanical and Manufacturing Engineering, University of Loughborough, Loughborough, UK",{"openalex":1126,"title":1128},{"VOID":1127},"A5072256090",{"EN":1129},"Paul D. 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L., 1981, Proc. Instn Mech. Engrs, Part C: J. Mechanical Engineering Science, 23, 295",{},{"id":24,"text":1212,"url":24,"identifiers":1213},"Hill S. H., Newman B. A., Piston ring designs for reduced friction (1984): 1–17 SAE technical paper 841222.",{"doi":1214},"10.4271\u002F841222",{"id":24,"text":1216,"url":24,"identifiers":1217},"Okamoto M., Sakai I., Contact pressure distribution of piston rings — calculation based on piston ring contour (2001): 1–7 SAE technical paper 2001-01-0571.",{"doi":1218},"10.4271\u002F2001-01-0571",{"id":24,"text":1220,"url":24,"identifiers":1221},"10.1243\u002F135065002760199970",{"doi":1220},{"id":24,"text":1223,"url":24,"identifiers":1224},"Dunaevsky V. V., Alexandrov S., Barlat F., Fundamentals for analysis of three dimensional distortions of the piston rings ASME Internal Combustion Engine Conference, 2000, pp. 15–18.",{"doi":1225},"10.4271\u002F2000-01-3453",{"id":24,"text":1227,"url":24,"identifiers":1228},"10.1243\u002F13506501JET410",{"doi":1227},{"id":24,"text":1230,"url":24,"identifiers":1231},"10.1088\u002F0022-3727\u002F38\u002F5\u002F018",{"doi":1230},{"id":24,"text":1233,"url":24,"identifiers":1234},"10.1115\u002F1.1286337",{"doi":1233},{"id":24,"text":1236,"url":24,"identifiers":1237},"10.1115\u002F1.1828070",{"doi":1236},{"id":24,"text":1239,"url":24,"identifiers":1240},"Patir N., 1979, Tran. ASME, J. Tribol., 101, 221",{},{"id":24,"text":1242,"url":24,"identifiers":1243},"Furuhama S., Sasaki S., New device for the measurement of piston frictional forces in small engines (1983): SAE technical paper 831284.",{"doi":1244},"10.4271\u002F831284",{"id":24,"text":1246,"url":24,"identifiers":1247},"Loenne K., Ziemba R., The Goetze cylinder distortion measurement and the possibilities of reducing cylinder distortions (1988): 25–33 SAE technical paper 880142.",{"doi":1248},"10.4271\u002F880142",{"id":24,"text":1250,"url":24,"identifiers":1251},"Roelands C. J. A., Correlation aspects of the viscosity—temperature—pressure relationships of lubricating oils Druk VRB Kleine der A3-4 Groningen, 1966.",{},{"id":24,"text":1253,"url":24,"identifiers":1254},"Dowson D., 1959, Proc. Instn Mech. Engrs, Part C: J. Mechanical Engineering Science, 1, 6",{},{"id":24,"text":1256,"url":24,"identifiers":1257},"Greenwood J. A., 1970, Proc. Instn Mech. Engrs, Part C: J. Mechanical Engineering Science, 185, 625",{},{"id":24,"text":1259,"url":24,"identifiers":1260},"10.1115\u002F1.2928867",{"doi":1259},{"id":24,"text":1262,"url":24,"identifiers":1263},"10.1243\u002F09544070JAUTO282",{"doi":1262},{"id":24,"text":1265,"url":24,"identifiers":1266},"10.1142\u002Fp553",{"doi":1265},{"id":1268,"createTime":1269,"updateTime":1269,"relativeEntities":1270,"slug":1271,"properties":1272,"entityType":109,"verifyStatus":110,"verifyTime":1269,"verifyNote":112,"syncStatus":23,"languages":1284,"translateLanguages":24,"viewCount":25,"primaryUrl":1285,"fullTextUrl":24,"authors":1286,"publicationType":218,"publisherRelationship":1372,"citationCount":1405,"citationInfo":1406,"publishDate":1409,"publishYear":1410,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":1411,"isForceReanalyzing":432},"b124ad0c-9ac0-48c4-b682-80413e60d648","2024-08-31T18:39:05.189+00:00",[],"The-role-of-vibration-and-pass-number-on-microstructure-and-mechanical-properties-of-AZ91-SiC-composite-layer-during-friction-stir-processing",{"mag":1273,"keywords":1275,"openalex":1276,"abstract":1278,"title":1280,"doi":1282},{"VOID":1274},"3182272289",{},{"VOID":1277},"W3182272289",{"EN":1279},"\u003Cjats:p> In this study, nano-sized SiC particles are added to AZ91 magnesium alloy using friction stir processing (FSP) and friction stir vibration processing (FSVP) to produce surface nano-composite layers. FSVP is a modified method of FSP in which the specimen is vibrated during FSP. The influence of FSP and FSVP pass numbers on mechanical and microstructural behaviors of the developed surfaces is investigated. It is indicated that nano-composite layers produced by FSVP have finer microstructures compared to those produced by FSP, and nano-sized particles are distributed more homogeneously. Furthermore, mechanical properties including hardness, scratch resistance, ductility, and strength of FSV processed specimens, were higher than those related to FS processed specimens. The results show a decline in the porosity content as the FSP passes are increased. Also, the compressive strength of the FSVP-ed composites is higher than those for the FSP-ed samples. It is also noticed that an increase in the vibration frequency during the FSVP process causes a more uniform dispersion of composite particles and thus, decreases particle clustering. \u003C\u002Fjats:p>",{"EN":1281},"The role of vibration and pass number on microstructure and mechanical properties of AZ91\u002FSiC composite layer during friction stir 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A new mesh update strategy is developed to prevent severe mesh distortion in cases where the boundary does not oscillate periodically or needs a long time to establish a periodic motion. The immersed boundary–lattice Boltzmann method uses lattice Boltzmann method as fluid solver and the same finite-difference method as structure solver. In addition, immersed boundary method is used in the immersed boundary–lattice Boltzmann solver to handle the fluid–structure interaction coupling. Results for the characteristic force coefficients, tail position, plate deformation pattern and the vorticity fields are presented and discussed. 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In Proceedings of the 8th ASME International Power Transmission and Gearing Conference, 2000, Vol. 1, pp. 111–118.",{"doi":2202},"10.1115\u002FDETC2000\u002FPTG-14372",{"id":2204,"createTime":2205,"updateTime":2205,"relativeEntities":2206,"slug":2207,"properties":2208,"entityType":109,"verifyStatus":110,"verifyTime":2205,"verifyNote":112,"syncStatus":23,"languages":2220,"translateLanguages":24,"viewCount":25,"primaryUrl":2221,"fullTextUrl":24,"authors":2222,"publicationType":218,"publisherRelationship":2260,"citationCount":2292,"citationInfo":2293,"publishDate":2299,"publishYear":2300,"citationAnalyzeStatus":23,"lastCitationAnalyze":24,"indexDatabases":24,"openAccess":24,"references":2301,"isForceReanalyzing":432},"b5537fb1-a6b2-4d47-89ed-8b11c2a01843","2024-10-07T16:58:15.491+00:00",[],"A-review-on-assembly-sequence-generation-and-its-automation",{"mag":2209,"keywords":2211,"openalex":2212,"abstract":2214,"title":2216,"doi":2218},{"VOID":2210},"2051567220",{},{"VOID":2213},"W2051567220",{"EN":2215},"\u003Cjats:p> Sequence of feasible mechanical assembly operations plays significant role in overall cost optimisation process for manufacturing industry and thus great importance is given to assembly sequence generation from past four decades. Though achieving at least one feasible sequence is focused in the earlier stages of research, the introduction of soft computing techniques attracted the industrial engineers towards cost-effective, optimised assembly sequences to attain economical manufacturing process. The integration of assembly sequence generation methods with computer aided design environment ensures more correctness and flexibility to automate the process. In this paper, a detailed review on various methods, their applications and limitations is presented and well discussed. \u003C\u002Fjats:p>",{"EN":2217},"A review on assembly sequence generation and its automation",{"VOID":2219},"10.1177\u002F0954406215584633",[114],"http:\u002F\u002Fjournals.sagepub.com\u002Fdoi\u002F10.1177\u002F0954406215584633",[2223,2243],{"id":2224,"sortIndex":202,"researcher":24,"roles":2225,"affiliations":2226,"properties":2238},"da087b7d-0a81-4353-9d37-f2475331a0ab",[],[2227],{"id":2228,"sortIndex":25,"affiliation":2229,"properties":24},"0329186b-a5ff-4a1b-849b-96752a04f50e",{"id":2230,"createTime":2231,"updateTime":2232,"relativeEntities":2233,"slug":2234,"properties":2235,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},"d05bf4f2-379a-4df0-96c5-9243db9d244a","2023-11-24T07:08:58.688+00:00","2024-10-07T16:58:23.533+00:00",[],"Department-of-Industrial-Design-National-Institute-of-Technology-Rourkela-India",{"title":2236},{"VI":2237},"Department of Industrial Design, National Institute of Technology, Rourkela, India",{"openalex":2239,"title":2241},{"VOID":2240},"A5103482796",{"EN":2242},"Bibhuti Bhusan Biswal",{"id":2244,"sortIndex":25,"researcher":24,"roles":2245,"affiliations":2246,"properties":2253},"0a4858a0-f7bf-4452-a4a9-8156baed1130",[],[2247],{"id":2248,"sortIndex":25,"affiliation":2249,"properties":24},"689eed57-1672-4fbe-89bd-41c17ae829d5",{"id":2230,"createTime":2231,"updateTime":2232,"relativeEntities":2250,"slug":2234,"properties":2251,"entityType":45,"verifyStatus":23,"verifyTime":24,"verifyNote":24,"syncStatus":23,"languages":24,"translateLanguages":24,"viewCount":25},[],{"title":2252},{"VI":2237},{"openalex":2254,"orcid":2256,"title":2258},{"VOID":2255},"A5035085912",{"VOID":2257},"https:\u002F\u002Forcid.org\u002F0000-0001-6380-1962",{"EN":2259},"M. 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