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首页> 外文期刊>Artificial intelligence for engineering design, analysis and manufacturing >Design of fuzzy expert system for predicting of surface roughness in high-pressure jet assisted turning using bioinspired algorithms
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Design of fuzzy expert system for predicting of surface roughness in high-pressure jet assisted turning using bioinspired algorithms

机译:基于生物启发算法的高压喷射辅助车削表面粗糙度预测的模糊专家系统设计

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摘要

The surface roughness of the machined parts is one of the most important factors that have considerable influence on the quality and functional properties of products. The objective of this study is development of a surface roughness prediction model for machining Inconel 718 in high-pressure jet assisted turning using the fuzzy expert system, where the fuzzy system is optimized using two bioinspired algorithms: genetic algorithm and particle swarm optimization. The effect of various influential machining parameters, such as diameter of the nozzle, pressure of the jet, cutting speed, feed rate, and distance between the impact point of the jet and cutting edge were taken into consideration in this study. The predicted surface roughness values obtained from developed fuzzy expert systems were compared with the experimental data, and the results indicate that proposed systems can be effectively used to estimate the surface roughness in high-pressure jet assisted turning.
机译:加工零件的表面粗糙度是最重要的因素之一,对产品的质量和功能特性有相当大的影响。这项研究的目的是使用模糊专家系统开发用于在Inconel 718高压喷射辅助车削中加工Inconel 718的表面粗糙度预测模型,其中使用两种生物启发算法对模糊系统进行优化:遗传算法和粒子群优化。本研究考虑了各种影响加工参数的影响,例如喷嘴的直径,喷嘴的压力,切削速度,进给速度以及喷嘴的冲击点与切削刃之间的距离。从开发的模糊专家系统获得的预测表面粗糙度值与实验数据进行了比较,结果表明所提出的系统可以有效地用于估计高压喷射辅助车削中的表面粗糙度。

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