机械与动力工程

集成EBD和TRIZ的机电系统概念设计方法

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  • a.上海交通大学 械与动力工程学院, 上海 200240
    b.上海交通大学 械系统与振动国家重点实验室, 上海 200240
邢璐(1996-),女,辽宁省朝阳市人,硕士生,研究方向为摩擦学测试系统的设计与开发.

收稿日期: 2020-11-06

  网络出版日期: 2022-06-07

基金资助

国家自然科学基金项目(12072191);装备预先研究基金项目(61409230611)

Conceptual Design of Mechatronics System by Integrating EBD and TRIZ

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  • a. School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
    b. State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai 200240, China

Received date: 2020-11-06

  Online published: 2022-06-07

摘要

提出一种机电产品概念设计的创新方法,建立“需求-环境-冲突-原理解-解决方案”的设计逻辑.利用面向环境的设计方法识别设计需求与环境约束之间存在的矛盾,对需求与环境进行迭代分析,解耦复杂抽象的专业问题.根据发明问题解决理论生成原理解,得到针对具体需求的产品解决方案,确保了创新的方向性和产品设计方案生成的系统性以及设计流程的规范性.利用航空发动机气压可调静子叶片转轴衬套系统的摩擦磨损试验机设计案例,验证了所提设计方法的合理性和有效性.

本文引用格式

邢璐, 华一雄, 张执南 . 集成EBD和TRIZ的机电系统概念设计方法[J]. 上海交通大学学报, 2022 , 56(5) : 576 -583 . DOI: 10.16183/j.cnki.jsjtu.2020.361

Abstract

A novel method for conceptual design of a mechatronics system was proposed, and the design framework of “requirement-environment-conflict-original understanding-solution” was established. The contradiction between design requirements and environmental constraints was identified by using the method of environment-based design (EBD), and the requirements and environment were iteratively analyzed to decouple complex and abstract issues. According to the original understanding of the theory of inventive problem solving (TRIZ), the product solution for specific needs was obtained, which ensured the directionality of innovation, the systematic generation of product design solutions, and the standardization of the design process. The friction and wear test machine of the aeroengine variable stator vane (VSV) shaft bushing system shows that the proposed design method is reasonable and effective.

参考文献

[1] ZHANG H Z, HAN X, LI R, et al. A new conceptual design method to support rapid and effective mapping from product design specification to concept design[J]. The International Journal of Advanced Manufacturing Technology, 2016, 87(5): 2375-2389.
[2] YAZDANI M, CHATTERJEE P, ZAVADSKAS E K, et al. Integrated QFD-MCDM framework for green supplier selection[J]. Journal of Cleaner Production, 2017, 142: 3728-3740.
[3] PACHECO D, PERGHER I, JUNIOR J, et al. Exploring the integration between lean and the theory of constraints in operations management[J]. International Journal of Lean Six Sigma, 2019, 10(3): 718-742.
[4] ZENG Y. Environment-based design (EBD): A methodology for transdisciplinary design[J]. Journal of Integrated Design and Process Science, 2015, 19(1): 5-24.
[5] AL-FEDAGHI S. Function-behavior-structure model of design: An alternative approach[J]. International Journal of Advanced Computer Science and Applications, 2016, 7(7): 133-139.
[6] LI M, CAO S, QIN Z Q. Creation method and evolution evaluation of concept knowledge maps[J]. Journal of Internet Technology, 2016, 17(2): 179-189.
[7] AWASTHI A, OMRANI H. A goal-oriented approach based on fuzzy axiomatic design for sustainable mobility project selection[J]. International Journal of Systems Science: Operations & Logistics, 2019, 6(1): 86-98.
[8] 陶飞, 刘蔚然, 刘检华, 等. 数字孪生及其应用探索[J]. 计算机集成制造系统, 2018, 24(1): 1-18.
[8] TAO Fei, LIU Weiran, LIU Jianhua, et al. Digital twin and its potential application exploration[J]. Computer Integrated Manufacturing Systems, 2018, 24(1): 1-18.
[9] KAR A K. Bio inspired computing-A review of algorithms and scope of applications[J]. Expert Systems With Applications, 2016, 59: 20-32.
[10] MANSOOR M, MARIUN N, ABDULWAHAB N I. Innovating problem solving for sustainable green roofs: Potential usage of TRIZ-Theory of inventive problem solving[J]. Ecological Engineering, 2017, 99: 209-221.
[11] FIORINESCHI L, FRILLICI F S, ROTINI F, et al. Exploiting TRIZ Tools for enhancing systematic conceptual design activities[J]. Journal of Engineering Design, 2018, 29(6): 259-290.
[12] CHAKRABORTY K, MONDAL S, MUKHERJEE K. Analysis of product design characteristics for remanufacturing using Fuzzy AHP and Axiomatic Design[J]. Journal of Engineering Design, 2017, 28(5): 338-368.
[13] LI Y F, ZHU L P. Optimisation of product form design using fuzzy integral-based Taguchi method[J]. Journal of Engineering Design, 2017, 28(7/8/9): 480-504.
[14] CHEN S, YIN N, YU Q, et al. A novel tribometer for investigating bushing wear[J]. Wear, 2019, 430/431: 263-271.
[15] SUN X, ZENG Y, ZHOU F. Environment-based design (EBD) approach to developing quality management systems: A case study[J]. Journal of Integrated Design & Process ence, 2011, 15(2): 53-70.
[16] 曾勇, 张执南. 面向环境的设计——一个创新设计的理论与方法[J]. 上海交通大学学报, 2019, 53(7): 881-883.
[16] ZENG Yong, ZHANG Zhinan. Environment-based design (EBD): A methodology for innovative and creative design[J]. Journal of Shanghai Jiao Tong University, 2019, 53(7): 881-883.
[17] BEN MOUSSA F Z, RASOVSKA I, DUBOIS S, et al. Reviewing the use of the theory of inventive pro-blem solving (TRIZ) in green supply chain problems[J]. Journal of Cleaner Production, 2017, 142: 2677-2692.
[18] DA SILVA R H, KAMINSKI P C, ARMELLINI F. Improving new product development innovation effectiveness by using problem solving tools during the conceptual development phase: Integrating Design Thinking and TRIZ[J]. Creativity and Innovation Management, 2020, 29(4): 685-700.
[19] LIU Z F, FENG J, WANG J F. Resource-constrained innovation method for sustainability: Application of morphological analysis and TRIZ inventive principles[J]. Sustainability, 2020, 12(3): 917.
[20] SHARAF H K, ISHAK M R, SAPUAN S M, et al. Conceptual design of the cross-arm for the application in the transmission towers by using TRIZ-morphologi-cal chart-ANP methods[J]. Journal of Materials Research and Technology, 2020, 9(4): 9182-9188.
[21] UZOKA C, MISHRA R. Integration of TRIZ and CFD to new product development process[J]. International Journal of Computational Fluid Dynamics, 2020, 34(6): 418-437.
[22] VIDAL R, SALMERON J L, MENA A, et al. Fuzzy Cognitive Map-based selection of TRIZ (Theory of Inventive Problem Solving) trends for eco-innovation of ceramic industry products[J]. Journal of Cleaner Production, 2015, 107: 202-214.
[23] JIA W J. Research and application of mechanical product design process based on QFD and TRIZ integration[J]. Journal of Physics: Conference Series, 2020, 1544: 012088.
[24] WU Y L, ZHOU F, KONG J Z. Innovative design approach for product design based on TRIZ, AD, fuzzy and Grey relational analysis[J]. Computers & Industrial Engineering, 2020, 140: 106276.
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