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Modeling and optimal design of machining-induced residual stresses in aluminium alloys using a fast hierarchical multiobjective optimization algorithm

机译:基于快速分层多目标优化算法的铝合金加工残余应力建模与优化设计

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摘要

The residual stresses induced during shaping and machining play an important role in determining the integrity and durability of metal components. An important issue of producing safety critical components is to find the machining parameters that create compressive surface stresses or to minimize tensile surface stresses. In this article, a systematic data-driven fuzzy modeling methodology is proposed, which allows constructing transparent fuzzy models considering both accuracy and interpretability attributes of fuzzy systems. The new method employs a hierarchical optimization structure to improve the modeling efficiency, where two learning mechanisms cooperate together: the Nondominated Sorting Genetic Algorithm II (NSGA-II) is used to improve the model's structure, while the gradient descent method is used to optimize the numerical parameters. This hybrid approach is then successfully applied to the problem that concerns the prediction of machining induced residual stresses in aerospace aluminium alloys. Based on the developed reliable prediction models, NSGA-II is further applied to the multiobjective optimal design of aluminium alloys in a reverse-engineering fashion. It is revealed that the optimal machining regimes to minimize the residual stress and the machining cost simultaneously can be successfully located. Copyright © Taylor & Francis Group, LLC.
机译:成型和机加工过程中产生的残余应力在确定金属部件的完整性和耐久性方面起着重要作用。生产安全关键部件的重要问题是找到产生压缩表面应力或使拉伸表面应力最小化的加工参数。在本文中,提出了一种系统的数据驱动的模糊建模方法,该方法允许考虑模糊系统的准确性和可解释性属性来构建透明的模糊模型。新方法采用分层优化结构来提高建模效率,其中两种学习机制可以协同工作:非支配排序遗传算法II(NSGA-II)用于改进模型的结构,而梯度下降方法用于优化模型的结构。数值参数。然后,这种混合方法成功地应用于与航空铝合金中机加工引起的残余应力的预测有关的问题。基于已开发的可靠预测模型,NSGA-II以逆向工程的方式进一步应用于铝合金的多目标优化设计。结果表明,可以同时找到最小化残余应力和加工成本的最佳加工方式。版权所有©Taylor&Francis Group,LLC。

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