首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >A review of empirical modeling techniques to optimize machining parameters for hard turning applications
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A review of empirical modeling techniques to optimize machining parameters for hard turning applications

机译:经验建模技术综述,以优化硬车削应用中的加工参数

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摘要

There has been a tremendous development in the field of modeling and optimization methods starting from Taylor's tool life model. Use of costly tools such as polycrystalline cubic boron nitride, polycrystalline diamond and ceramics in high-end computer numerical control machining forces the researcher to minimize the experimental runs to achieve the best cutting conditions with minimum tool wear and overall production cost. Machining process optimization to achieve said objectives comprises selecting optimum cutting parameters by applying low-cost mathematical models. This article attempts to evaluate the applicability of various modeling and optimization methods to specific response parameters in hard turning problems. Various empirical modeling techniques such as linear regression modeling, artificial neural networks, polynomial and fuzzy modeling along with process optimization through Taguchi, response surface methodology and genetic algorithm for hard turning applications have been discussed in length to provide the production engineers a ready database to compare relative merits and suitability of these techniques for a particular machining application. Also, article discusses integration of different modeling and optimization techniques to achieve desired goals when a single optimization technique is not able to provide the acceptable solution. The last part of the article highlights the current trends in hard turning applications and research priorities for future work.
机译:从泰勒的刀具寿命模型开始,建模和优化方法领域已取得了巨大发展。在高端计算机数控加工中使用昂贵的工具(例如多晶立方氮化硼,多晶金刚石和陶瓷)迫使研究人员最小化实验运行,从而以最小的工具磨损和总体生产成本实现最佳切削条件。为实现所述目标而进行的加工工艺优化包括通过应用低成本数学模型来选择最佳切削参数。本文尝试评估各种建模和优化方法在硬车削问题中对特定响应参数的适用性。详细讨论了各种经验建模技术,例如线性回归建模,人工神经网络,多项式和模糊建模以及通过Taguchi进行的工艺优化,响应面方法和用于硬车削应用的遗传算法,以为生产工程师提供一个现成的数据库以进行比较这些技术的相对优点和适用性。此外,本文讨论了当单个优化技术无法提供可接受的解决方案时,不同建模和优化技术的集成以实现期望的目标。本文的最后一部分重点介绍了硬加工应用的当前趋势以及未来工作的研究重点。

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