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A mathematical model for the joint optimization of machining conditions and tool replacement policy with stochastic tool life in the milling process

机译:铣削过程中随机工具寿命联合优化加工条件和工具替换政策的数学模型

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摘要

One major problem in the machining process is the optimization of tool replacement policy and machining condition simultaneously. Although many studies have been developed to optimize the machining process considering the stochastic tool life, they have not optimized these two problems together. Therefore, unlike these investigations, the objective of this study is to develop an integrated mathematical model for joint-optimization of tool replacement policy and machining condition given the dependence between them and various costs in the machining process. In this paper, the dependence of cutting tool life distribution and surface roughness of workpiece to the machining conditions is modeled based on a five-step methodology initially. For this purpose, empirical data of a milling process obtained via design of experiments (DOE) based on Box-Behnken design (BBD) is used. These data, converted by total time on test (TTT), transform and using an optimization process based on golden section search (GSS), the relation between machining conditions and parameters of the tool life distribution is obtained as a full quadratic model. The R (2) values for the surface roughness, shape, and scale parameters in the full quadratic models are 89.61, 92.52, and 96.80% respectively, which confirms the adequacy of the proposed methodology. Then, a mathematical optimization model is proposed for multi-pass machining with considering costs related to tool replacement policies, direct labor costs, machining costs, loading/unloading of workpiece costs, and quality costs in a machining process. The proposed model of this study can optimize both of the tool replacement policy and the machining conditions simultaneously and also it can lead to choosing the optimized policy of the continuous or the discrete tool condition monitoring approaches. This model is implemented on a case study and its result is reported. For solving the mathematical model, the electromagnetism-like mechanism algorithm is used that has the proper performance to optimize the continuous spaces.
机译:加工过程中的一个主要问题是同时优化工具更换策略和加工条件。虽然已经开发了许多研究以优化考虑到随机刀具的加工过程,但它们并未在一起优化这两个问题。因此,与这些调查不同,本研究的目的是开发一种用于赋予刀具更换政策和加工条件的联合优化的集成数学模型,因为它们之间的依赖性和加工过程中的各种成本。在本文中,基于最初的五步方法建模了切削刀具寿命分布和工件表面粗糙度与加工条件的依赖性。为此目的,使用基于Box-Behnken设计(BBD)的实验(DOE)设计的铣削过程的经验数据。这些数据在测试(TTT)上的总时间转换,转换和使用基于Golden Pare Search(GSS)的优化过程,获得加工条件与刀具寿命分布的参数之间的关系作为完整的二次模型。完全二次模型中表面粗糙度,形状和比例参数的R(2)值分别为89.61,92.52和96.80%,证实了所提出的方法的充分性。然后,提出了一种用于多功能加工的数学优化模型,考虑到工具替换政策,直接劳动成本,加工成本,装卸工件成本以及在加工过程中的质量成本以及在加工过程中的成本。本研究的拟议模型可以同时优化工具更换策略和加工条件,也可以导致选择连续或离散工具状况监测方法的优化政策。该模型在案例研究中实施,报告其结果。为了解决数学模型,使用电磁样式算法具有适当的性能来优化连续空间。

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