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Selection of an optimal parametric combination for achieving a better surface finish in dry milling using genetic algorithms

机译:使用遗传算法选择最佳参数组合以在干磨中获得更好的表面光洁度

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摘要

In machining, coolants improve machinability, increase productivity by reducing tool wear and extend tool life. However, due to ecological and human health problems, manufacturing industries are now being forced to implement strategies to reduce the amount of cutting fluids used in their production lines. A trend that has emerged to solve these problems is machining without fluid - a method called dry machining - which has been made possible due to technological innovations. This paper presents an experimental investigation of the influence of tool geometry (radial rake angle and nose radius) and cutting conditions (cutting speed and feed rate) on machining performance in dry milling with four fluted solid TiAlN-coated carbide end mill cutters based on Taguchi's experimental design method. The mathematical model, in terms of machining parameters, was developed for surface roughness prediction using response surface methodology. The optimization is then carried out with genetic algorithms using the surface roughness model developed and validated in this work. This methodology helps to determine the best possible tool geometry and cutting conditions for dry milling.
机译:在加工过程中,冷却剂可通过减少刀具磨损并延长刀具寿命来提高切削性能,提高生产率。但是,由于生态和人类健康问题,制造业现在被迫实施减少其生产线中使用的切削液数量的策略。解决这些问题的趋势是无流体加工-一种称为干式加工的方法-由于技术创新而成为可能。本文提供了一种实验研究,研究了基于Taguchi's刀具的四种几何形状的带TiAlN涂层硬质合金立铣刀在干铣削中刀具几何形状(径向前角和刀尖半径)和切削条件(切削速度和进给速度)对切削性能的影响。实验设计方法。就加工参数而言,使用响应表面方法开发了用于预测表面粗糙度的数学模型。然后,通过遗传算法使用在这项工作中开发和验证的表面粗糙度模型进行优化。这种方法有助于确定干铣削的最佳刀具几何形状和切削条件。

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