Research on tolerance optimization method for aircraft thin-walled components based on improved particle swarm optimization algorithm

The assembly accuracy of aircraft thin-walled components produced in the same batch is subject to fluctuations influenced by part tolerances and assembly processes. Significant variations in assembly precision can lead to increased assembly adjustment costs, severely affecting both efficiency and ov...

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Vydané v:Journal of physics. Conference series Ročník 2951; číslo 1; s. 12075 - 12081
Hlavní autori: Xue, Dong, Tian, Dalong, Sun, Xing, Zhou, Jiangtao, Du, Han
Médium: Journal Article
Jazyk:English
Vydavateľské údaje: Bristol IOP Publishing 01.02.2025
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Abstract The assembly accuracy of aircraft thin-walled components produced in the same batch is subject to fluctuations influenced by part tolerances and assembly processes. Significant variations in assembly precision can lead to increased assembly adjustment costs, severely affecting both efficiency and overall expenses. However, tolerance optimization that takes into account these fluctuations requires the integration of assembly deviation calculations, characterized by a high demand for large sample sizes and frequent iterative computations, which results in escalated computational costs. In this context, this paper establishes a data-driven mathematical model for tolerance optimization that comprehensively considers fluctuations in assembly accuracy, manufacturing costs, and quality losses, using a surrogate model as the core computational engine. Furthermore, to address the shortcomings of the traditional particle swarm optimization algorithm, namely, its tendency to get trapped in local optima and its insufficient local search capabilities, this study proposes an improved particle swarm optimization algorithm that integrates a chaotic local search strategy and second vibration particles. This enhanced algorithm is applied to the tolerance optimization problem of aircraft thin-walled components.
AbstractList The assembly accuracy of aircraft thin-walled components produced in the same batch is subject to fluctuations influenced by part tolerances and assembly processes. Significant variations in assembly precision can lead to increased assembly adjustment costs, severely affecting both efficiency and overall expenses. However, tolerance optimization that takes into account these fluctuations requires the integration of assembly deviation calculations, characterized by a high demand for large sample sizes and frequent iterative computations, which results in escalated computational costs. In this context, this paper establishes a data-driven mathematical model for tolerance optimization that comprehensively considers fluctuations in assembly accuracy, manufacturing costs, and quality losses, using a surrogate model as the core computational engine. Furthermore, to address the shortcomings of the traditional particle swarm optimization algorithm, namely, its tendency to get trapped in local optima and its insufficient local search capabilities, this study proposes an improved particle swarm optimization algorithm that integrates a chaotic local search strategy and second vibration particles. This enhanced algorithm is applied to the tolerance optimization problem of aircraft thin-walled components.
Author Zhou, Jiangtao
Sun, Xing
Du, Han
Xue, Dong
Tian, Dalong
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Cites_doi 10.1016/j.ast.2022.107845
10.1007/s00170-022-09628-9
10.1109/TAP.2023.3314097
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StartPage 12075
SubjectTerms Accuracy
Aircraft
Algorithms
Assembly
Computing costs
Costs
Optimization algorithms
Particle swarm optimization
Production costs
Search methods
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