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Investigation on tooling geometrical effects of micro tools and the associated micro milling performance

机译:微型刀具的刀具几何效应及其相关的微型铣削性能研究

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摘要

In micro scale cutting, tooling geometry plays a significant role in determining machining quality and tool life, and the knowledge of tooling geometrical effects on process performance potentially benefits engineers on improving tool designs and selecting optimum cutting conditions. This research aims to comprehensively investigate tooling geometrical effects on the process performance in micro milling using a finite element method supported with well-designed cutting trials. In the study, a benchmark three-dimensional tooling model, incorporating rake angle, relief angle, helix angle, diameter and cutting edge radius is initially developed for simulating the micro milling process under large deformations. The simulation is then experimentally validated and the predicted micro chip formation and cutting forces are in reasonable agreement with measured results in cutting trials. Furthermore, finite element-based simulations are performed under different helix angles, rake angles and cutting edge radius, and comparisons of cutting forces, tool stresses, tool temperatures, chip formation and temperatures are presented and discussed. It is found that the cutting edge radius is the most influential factor on the tool's process performance, followed by helix angle, and rake angle has less effect.
机译:在微尺度切削中,刀具几何形状在确定加工质量和刀具寿命方面起着重要作用,而刀具几何形状对过程性能的影响的知识可能会有益于工程师改进刀具设计和选择最佳切削条件。这项研究的目的是使用精心设计的切削试验支持的有限元方法,全面研究刀具几何形状对微铣削加工性能的几何影响。在这项研究中,最初建立了一个基准三维工具模型,该模型结合了前角,后角,螺旋角,直径和切削刃半径,用于模拟大变形下的微铣削过程。然后通过实验验证该模拟,并且预测的微屑形成和切削力与切削试验中的测量结果合理吻合。此外,在不同的螺旋角,前角和切削刃半径下进行了基于有限元的模拟,并对切削力,刀具应力,刀具温度,切屑形成和温度进行了比较。发现切削刃半径是影响刀具加工性能的最大因素,其次是螺旋角,前角的影响较小。

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