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Genetic algorithm simulated annealing to estimate optimal process parameters of the abrasive waterjet machining

机译:遗传算法模拟退火,以估计磨料水射流加工的最佳工艺参数

摘要

In this study, two computational approaches, Genetic Algorithm and Simulated Annealing, are applied to search for a set of optimal process parameters value that leads to the minimum value of machining performance. The objectives of the applied techniques are: (1) to estimate the minimum value of the machining performance compared to the machining performance value of the experimental data and regression modeling, (2) to estimate the optimal process parameters values that has to be within the range of the minimum and maximum coded values for process parameters of experimental design that are used for experimental trial and (3) to evaluate the number of iteration generated by the computational approaches that lead to the minimum value of machining performance. Set of the machining process parameters and machining performance considered in this work deal with the real experimental data of the non-conventional machining operation, abrasive waterjet. The results of this study showed that both of the computational approaches managed to estimate the optimal process parameters, leading to the minimum value of machining performance when compared to the result of real experimental data.
机译:在这项研究中,遗传算法和模拟退火这两种计算方法被用于搜索一组导致加工性能最小值的最佳工艺参数值。所应用技术的目标是:(1)与实验数据和回归建模的加工性能值相比,估算加工性能的最小值;(2)估算必须在加工性能范围内的最佳工艺参数值用于实验设计的实验设计过程参数的最小和最大编码值的范围,以及(3)评估由导致加工性能最小值的计算方法所产生的迭代次数。这项工作中考虑的一组加工工艺参数和加工性能处理的是非常规加工操作(磨料水射流)的真实实验数据。这项研究的结果表明,两种计算方法均设法估算了最佳工艺参数,与实际实验数据的结果相比,导致了加工性能的最小值。

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