Assembly process modeling mechanism based on the product hierarchy
详细信息    查看全文
  • 作者:Xiaojun Liu ; Zhonghua Ni ; Jinfeng Liu…
  • 关键词:Assembly process modeling mechanism ; Disassembly process model ; Rough assembly process model ; Finish assembly process model ; Assembly operation semantics ; Auxiliary procedure
  • 刊名:The International Journal of Advanced Manufacturing Technology
  • 出版年:2016
  • 出版时间:January 2016
  • 年:2016
  • 卷:82
  • 期:1-4
  • 页码:391-405
  • 全文大小:3,039 KB
  • 参考文献:1.Yin ZP, Ding H, Li HX, Xiong YL (2003) A connector-based hierarchical approach to assembly sequence planning for mechanical assemblies. Comput Aided Des 35(1):37–56CrossRef
    2.Wang L, Keshavarzmanesh S, Feng H-Y, Buchal RO (2009) Assembly process planning and its future in collaborative manufacturing: a review. Int J Adv Manuf Technol 41(1–2):132–144CrossRef
    3.Morato C, Kaipa KN, Gupta SK (2013) Improving assembly precedence constraint generation by utilizing motion planning and part interaction clusters. Comput Aided Des 45(11):1349–1364CrossRef
    4.Homem de Mello LS, Sanderson AC (1990) AND/OR graph representation of assembly plans. IEEE Trans Robot Autom 6(2):188–199CrossRef
    5.Homem de Mello LS, Sanderson AC (1991) A correct and complete algorithm for the generation of mechanical assembly sequences. IEEE Trans Robot Autom 7(2):228–240CrossRef
    6.Shah J, Rogers M (1993) Assembly modeling as an extension of feature-based design. Res Eng Des 5(3–4):218–237CrossRef
    7.Maropoulos PG, Guo Y, Jamshidi J, Cai B (2008) Large volume metrology process models: a framework for integrating measurement with assembly planning. CIRP Ann Manuf Technol 57(1):477–480CrossRef
    8.Wenhua Z, Hu H, Minglun F, Huimeng T (2013) Studies on visual scene process system of aircraft assembly. J Manuf Syst 32(4):580–597CrossRef
    9.Lai XM, Xing YF, Sun J, Chen GL (2009) Optimisation of assembly sequences for compliant body assemblies. Int J Prod Res 47(21):6129–6143CrossRef
    10.Hermansson T, Bohlin R, Carlson JS, Söderberg R (2013) Automatic assembly path planning for wiring harness installations. J Manuf Syst 32(3):417–422CrossRef
    11.Demoly F, Yan X-T, Eynard B, Rivest L, Gomes S (2011) An assembly oriented design framework for product structure engineering and assembly sequence planning. Robot Comput Integr Manuf 27(1):33–46CrossRef
    12.Rashid M, Hutabarat W, Tiwari A (2012) A review on assembly sequence planning and assembly line balancing optimisation using soft computing approaches. Int J Adv Manuf Technol 59(1–4):335–349CrossRef
    13.Yoon CJ (2008) A novel optimal assembly algorithm for the haptic interface application of a virtual maintenance system. IEEE Int Conf Robot Autom 1–9:3612–3617
    14.Yoon CJ, Kumar P (2009) A novel optimal assembly algorithm for haptic interface applications of a virtual maintenance system. J Mech Sci Technol 23(1):183–194CrossRef
    15.Jin S, Cai W, Lai XM, Lin ZQ (2010) Design automation and optimization of assembly sequences for complex mechanical systems. Int J Adv Manuf Technol 48(9–12):1045–1059CrossRef
    16.Ab Rashid MFF, Hutabarat W, Tiwari A (2012) Development of a tuneable test problem generator for assembly sequence planning and assembly line balancing. Proc Inst Mech Eng B J Eng Manuf 226(A11):1900–1913CrossRef
    17.Wang H, Rong YM, Xiang D (2014) Mechanical assembly planning using ant colony optimization. Comput Aided Des 47:59–71CrossRef
    18.Tseng H-E, Wang W-P, Shih H-Y (2007) Using memetic algorithms with guided local search to solve assembly sequence planning. Expert Syst Appl 33(2):451–467CrossRef
    19.Chung C, Peng Q (2009) Tool selection-embedded optimal assembly planning in a dynamic manufacturing environment. Comput Aided Des 41(7):501–512CrossRef
    20.Andolfatto L, Thiébaut F, Lartigue C, Douilly M (2014) Quality- and cost-driven assembly technique selection and geometrical tolerance allocation for mechanical structure assembly. J Manuf Syst 33(1):103–115CrossRef
    21.Hassan S, Yoon J (2014) Haptic assisted aircraft optimal assembly path planning scheme based on swarming and artificial potential field approach. Adv Eng Softw 69(3):18–25CrossRef
    22.Ho W, Ji P (2005) A genetic algorithm to optimise the component placement process in PCB assembly. Int J Adv Manuf Technol 26(11–12):1397–1401CrossRef
    23.Xing YF, Wang YS (2012) Assembly sequence planning based on a hybrid particle swarm optimisation and genetic algorithm. Int J Prod Res 50(24):7303–7312CrossRef
    24.Xing YF, Wang YS, Zhao XY (2011) Assembly sequence generation and optimization for compliant assemblies based on genetic algorithm. Front Manuf Sci Meas Technol 1–3:978–981
    25.Ou LM, Xu X (2013) Relationship matrix based automatic assembly sequence generation from a CAD model. Comput Aided Des 45(7):1053–1067CrossRef
    26.Ma W, Zhong Y, Tso S-K, Zhou T (2004) A hierarchically structured and constraint-based data model for intuitive and precise solid modeling in a virtual reality environment. Comput Aided Des 36(8):903–928CrossRef
    27.Kong SH, Noh SD, Han Y-G, Kim G, Lee KI (2006) An agent-based collaborative assembly process planning system. Int J Adv Manuf Technol 28(1–2):176–183CrossRef
    28.Noh SD, Park YJ, Kong SH, Han YG, Kim G, Lee KI (2005) Concurrent and collaborative process planning for automotive general assembly. Int J Adv Manuf Technol 26(5–6):572–584CrossRef
    29.Li H, Song A (2007) Virtual-environment modeling and correction for force-reflecting teleoperation with time delay. IEEE Trans Ind Electron 54(2):1227–1233CrossRef
    30.Hui W, Dong X, Guanghong D, Linxuan Z (2007) Assembly planning based on semantic modeling approach. Comput Ind 58(3):227–239CrossRef
    31.Yang Q, Wu DL, Zhu HM, Bao JS, Wei ZH (2013) Assembly operation process planning by mapping a virtual assembly simulation to real operation. Comput Ind 64(7):869–879CrossRef
  • 作者单位:Xiaojun Liu (1) (2)
    Zhonghua Ni (1) (2)
    Jinfeng Liu (1) (2)
    Yalong Cheng (1) (2)

    1. School of Mechanical Engineering, Southeast University, Nanjing, 210096, Peoples Republic of China
    2. Jiangsu Key Laboratory for Design and Manufacture of Micro-Nano Biomedical Instruments, Southeast University, Nanjing, 210096, Peoples Republic of China
  • 刊物类别:Engineering
  • 刊物主题:Industrial and Production Engineering
    Production and Logistics
    Mechanical Engineering
    Computer-Aided Engineering and Design
  • 出版者:Springer London
  • ISSN:1433-3015
文摘
Assembly process modeling mechanism, which contains all the process elements, is crucial for assembly process planning. This study proposes an assembly process modeling mechanism based on the product hierarchy, and the assembly-by-disassembly approach is used for constructing the assembly process model. Firstly, three stage for process models called disassembly process model (DPM), rough assembly process model (RAPM), and finish assembly process model (FAPM) are presented, and the process information, such as the motion information, process marks is given. Secondly, the operation semantics for assembly process model is proposed to describe the physical constraints between parts and components. Thirdly, the establishing procedure of assembly process model is given, which includes establishing process of disassembly task tree, design process of disassembly process node, mapping process from DPM to RAPM, and mapping process from RAPM to FAPM four subprocesses. At last, a prototype assembly process planning system, called AMTProcesser, is developed based on the proposed modeling mechanism. Keywords Assembly process modeling mechanism Disassembly process model Rough assembly process model Finish assembly process model Assembly operation semantics Auxiliary procedure

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700