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首页> 外文期刊>Arabian Journal for Science and Engineering >Response Surface Methodology Integrated with Desirability Function and Genetic Algorithm Approach for the Optimization of CNC Machining Parameters
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Response Surface Methodology Integrated with Desirability Function and Genetic Algorithm Approach for the Optimization of CNC Machining Parameters

机译:响应曲面方法与期望函数和遗传算法方法集成,用于优化CNC加工参数

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摘要

In this study, response surface method (RSM), desirability function (DF) and genetic algorithm (GA) techniques were integrated to estimate optimal machining parameters that lead to minimum surface roughness value of beech (Fagus orientalis Lipsky) species. Design of experiment was used to determine the effect of computer numerical control machining parameters such as spindle speed, feed rate, tool radius and depth of cut on arithmetic average roughness (). Average surface roughness values of the samples were measured by employing a stylus type equipment. The second-order mathematical model was developed by using response surface methodology with experimental design results. Optimum machining condition for minimizing the surface roughness was carried out in three stages. Firstly, the DF was used to optimize the mathematical model. Secondly, the results obtained from the desirability function were selected as the initial point for the GA. Finally, the optimum parameter values were obtained by using genetic algorithm. Experimental results showed that the proposed approach presented an efficient methodology for minimizing the surface roughness.
机译:在该研究中,集成了响应面方法(RSM),期望功能(DF)和遗传算法(GA)技术以估计最佳加工参数,导致山毛榉(Fagus Orientalis Lipsky)物种的最小表面粗糙度值。实验设计用于确定计算机数控加工参数如主轴速度,进料速率,刀具半径和切割深度算术平均粗糙度()的影响。通过采用触控笔型设备测量样品的平均表面粗糙度值。通过使用实验设计结果使用响应面方法开发了二阶数学模型。最小化表面粗糙度的最佳加工条件在三个阶段进行。首先,DF用于优化数学模型。其次,选择从期望函数获得的结果作为GA的初始点。最后,通过使用遗传算法获得最佳参数值。实验结果表明,该方法提出了一种有效的方法,以最小化表面粗糙度。

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