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Reliability-based design optimization for flexible mechanism with particle swarm optimization and advanced extremum response surface method
  • 时间:0
  • 分类:O171[理学—数学;理学—基础数学] TH122[机械工程—机械设计及理论]
  • 作者机构:[1]School of Mechanical and Power Engineering, Harbin University of Science and Technology, Harbin 150080, China, [2]School of Computer Science and Engineering, Beihang University, Beijing 100191, China, [3]Department of Mechanical Engineering, The Hong Kong Polytechnic University, Kowloon, Hong Kong, China
  • 相关基金:Projects(51275138,51475025)supported by the National Natural Science Foundation of China; Project(12531109)supported by the Science Foundation of Heilongjiang Provincial Department of Education,China; Projects(XJ2015002,G-YZ90)supported by Hong Kong Scholars Program,China; Project(2015M580037)supported by Postdoctoral Science Foundation of China
中文摘要:

To improve the computational efficiency of the reliability-based design optimization(RBDO) of flexible mechanism, particle swarm optimization-advanced extremum response surface method(PSO-AERSM) was proposed by integrating particle swarm optimization(PSO) algorithm and advanced extremum response surface method(AERSM). Firstly, the AERSM was developed and its mathematical model was established based on artificial neural network, and the PSO algorithm was investigated. And then the RBDO model of flexible mechanism was presented based on AERSM and PSO. Finally, regarding cross-sectional area as design variable, the reliability optimization of flexible mechanism was implemented subject to reliability degree and uncertainties based on the proposed approach. The optimization results show that the cross-section sizes obviously reduce by 22.96 mm~2 while keeping reliability degree. Through the comparison of methods, it is demonstrated that the AERSM holds high computational efficiency while keeping computational precision for the RBDO of flexible mechanism, and PSO algorithm minimizes the response of the objective function. The efforts of this work provide a useful sight for the reliability optimization of flexible mechanism, and enrich and develop the reliability theory as well.

英文摘要:

To improve the computational efficiency of the reliability-based design optimization(RBDO) of flexible mechanism, particle swarm optimization-advanced extremum response surface method(PSO-AERSM) was proposed by integrating particle swarm optimization(PSO) algorithm and advanced extremum response surface method(AERSM). Firstly, the AERSM was developed and its mathematical model was established based on artificial neural network, and the PSO algorithm was investigated. And then the RBDO model of flexible mechanism was presented based on AERSM and PSO. Finally, regarding cross-sectional area as design variable, the reliability optimization of flexible mechanism was implemented subject to reliability degree and uncertainties based on the proposed approach. The optimization results show that the cross-section sizes obviously reduce by 22.96 mm^2 while keeping reliability degree. Through the comparison of methods, it is demonstrated that the AERSM holds high computational efficiency while keeping computational precision for the RBDO of flexible mechanism, and PSO algorithm minimizes the response of the objective function. The efforts of this work provide a useful sight for the reliability optimization of flexible mechanism, and enrich and develop the reliability theory as well.

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