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A Review on Application of Soft Computing Techniques in Machining of Particle Reinforcement Metal Matrix Composites

机译:软计算技术在粒子加强金属基复合材料加工中的应用综述

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摘要

In this paper, a wide literature review of soft computing methods in conventional machining processes of metal matrix composites is carried out. The tool wear, cutting force along with surface quality are presented in the different types of machining processes and examined thoroughly. Summary of the different particular soft computing approaches in machining such as turning, milling, drilling and grinding operations are thoroughly discussed. Furthermore, this work put emphases on the optimization and modeling of the machining process. The study will emphasis on the most general methods used by researchers in literature for developing the statistical and mathematical modeling using soft computing approaches including, genetic algorithm, response surface methodology, fuzzy logic, artificial neural network, Taguchi method and particle swarm optimization. In last section the comprehensive open issues and conclusion are presented for application of soft computing techniques in machining of metal matrix composite performance prediction and optimization.
机译:在本文中,进行了在常规的金属基质复合材料加工过程中对软计算方法的宽文献综述。工具磨损,切割力以及表面质量的不同类型的加工过程中呈现,并彻底检查。彻底讨论了加工中的不同特定软计算方法,例如转动,铣削,钻孔和研磨操作。此外,这项工作能够在加工过程的优化和建模上进行重点。该研究将强调研究人员在文献中使用的最常见方法,用于使用软计算方法开发统计和数学建模,包括遗传算法,响应面方法,模糊逻辑,人工神经网络,Taguchi方法和粒子群优化。最后一节综合开放问题及结论是为了应用软计算技术在金属矩阵复合性能预测和优化加工中的应用。

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