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Multi-objective feedrate optimization method of end milling using the internal data of the CNC system

机译:数控系统内部数据的多目标进给优化方法

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This paper proposed a feedrate optimization method of end milling using the internal data of the CNC system, i.e., the spindle power, the block number, and the combined speed of feed axes, based on the controlled elitist non-dominated sorting genetic algorithm (i.e., the controlled NSGA-II) to address the multi-objective non-linear optimization problem for simultaneously increasing the machining efficiency and decreasing the fluctuation of the spindle power. To establish the objective functions and their constraint conditions in the optimization process, a spindle power-predicting model considering different milling operations, i.e., the up-milling operation and the down-milling operation, is proposed, from which the spindle power can be accurately predicted. Compared to the traditional method of optimizing the feedrate via the cutting force, the spindle power used in the proposed method is better because it is more convenient to acquire and is cost effective. To validate the proposed methods, a set of experiments are conducted to prove the feasibility of our spindle power prediction model as well as the advantage of the controlled NSGA-II-based method in improving the machining efficiency and balancing the tool load.
机译:本文提出了一种使用数控系统的内部数据的端铣的进给优化方法,即主轴功率,块数和馈送轴的组合速度,基于受控的精油非主导的分类遗传算法(即,受控的NSGA-II)为了解决多目标非线性优化问题,同时增加加工效率并降低主轴功率的波动。为了在优化过程中建立目标函数及其约束条件,提出了考虑不同铣削操作的主轴电力预测模型,即上铣削操作和下铣手,可以精确地预料到的。相比,通过切割力优化进给力的传统方法,所提出的方法中使用的主轴功率更好,因为它更方便地获得并且具有成本效益。为了验证所提出的方法,进行了一组实验,以证明我们的主轴功率预测模型的可行性以及基于受控NSGA-II的方法的优势在提高加工效率和平衡工具负载方面。

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