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INTELLIGENT MODELING AND OPTIMIZATION OF MATERIAL REMOVAL RATE IN ELECTRIC DISCHARGE DIAMOND GRINDING

机译:放电金刚石磨削中材料去除速率的智能建模和优化

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Metal matrix composites (MMCs) have wide applications in modern manufacturing industries due to their specific and improved technological characteristics such as high strength to weight ratio, high hardness, high thermal, corrosion and wear resistances. Such characteristics are highly demanded in automobile, aircraft and space research organizations. Shaping of MMCs has been a big challenge for manufacturing industries due to their superior mechanical properties and the peculiar microstructure composed of different phases in MMCs poses machining challenges. Unconventional machining methods have become an alternative to give desired shapes with intricate profiles and stringent design requirements. The aim of present research is to investigate the machining performance of copper-iron-carbide MMC using hybrid machining process, electric discharge diamond grinding (EDDG). A hybrid approach of neural network and genetic algorithm has been used to develop the intelligent model for material removal rate (MRR) and subsequent optimization with the experimental data obtained by scientifically designed experimentation.
机译:金属基复合材料(MMC)由于其特殊和改进的技术特性(例如高强度重量比,高硬度,高耐热性,耐腐蚀和耐磨性)而在现代制造业中得到广泛应用。在汽车,飞机和太空研究组织中,对这些特性有很高的要求。 MMC的成型因其优异的机械性能而成为制造业的一大挑战,而MMC中由不同相组成的特殊微观结构给加工带来了挑战。非常规加工方法已成为提供具有复杂轮廓和严格设计要求的所需形状的替代方法。本研究的目的是研究采用混合加工工艺,电火花金刚石磨削(EDDG)的铜-铁-碳化物MMC的加工性能。已经使用神经网络和遗传算法的混合方法来开发材料去除率(MRR)的智能模型,并随后通过科学设计的实验获得的实验数据进行优化。

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