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首页> 外文期刊>Journal of Manufacturing Processes >Evaluation of the effectiveness of low frequency workpiece vibration in deep-hole micro-EDM drilling of tungsten carbide
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Evaluation of the effectiveness of low frequency workpiece vibration in deep-hole micro-EDM drilling of tungsten carbide

机译:碳化钨深孔微型EDM钻削中低频工件振动的有效性评估

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摘要

The application of micro-electrical discharge machining (micro-EDM) in deep-hole drilling is still limited due to the difficulty in flushing of debris and unstable machining. Present study introduces a simplistic analytical model to evaluate the effectiveness of low frequency workpiece vibration during the micro-EDM drilling of deep micro-holes. In addition, experimental investigation has been conducted to validate the model by studying the effects of workpiece vibration on machining performance, surface quality and dimensional accuracy of the micro-holes. The effect of vibration frequency and amplitude for three different settings of aspect ratios has been studied experimentally. Moreover, the vibration experiments have been conducted at different levels of gap voltages and capacitances in order to understand the effect of electrical parameters and effectiveness of low-frequency workpiece-vibration at different levels of discharge energies. It has been shown analytically that the effectiveness of low frequency workpiece vibration during micro-EDM drilling can be evaluated by a parameter 'K_v' (ratio of maximum acceleration of the vibrating plate in gravitational direction to gravitational acceleration 'g'), which can be determined from the vibration frequency, amplitude and phase angle of the vibrating workpiece. The theoretical model reveals that for K_v>1, the position of debris particles will be above the workpiece; thus can be flushed away from machined zone effectively. The experimental reasons for improved micro-EDM drilling performance at the setting of K_v > 1 are found to be the increased effective discharge ratio, reduced short-circuits and improved dielectric flushing. The experimental results also reveal that the low frequency vibration is more effective at the low discharge energy level, thus making it more suitable for micro-EDM. Considering the effect on both the machining characteristics and micro-hole accuracy parameters, vibration frequency of 750 Hz and amplitude of 1.5 μ-m was found to provide improved performance for the developed vibration device.
机译:由于难以冲洗碎屑和加工不稳定,因此在深孔钻削中微放电加工(micro-EDM)的应用仍然受到限制。本研究引入了一种简化的分析模型,以评估深微孔的微EDM钻孔过程中低频工件振动的有效性。另外,通过研究工件振动对加工性能,表面质量和微孔尺寸精度的影响,进行了实验研究以验证模型。实验研究了三种不同纵横比设置时振动频率和振幅的影响。此外,为了了解电参数的影响以及在不同放电能量水平下低频工件振动的有效性,已经在不同的间隙电压和电容水平下进行了振动实验。分析表明,在微型EDM钻孔过程中,低频工件振动的有效性可以通过参数“ K_v”(振动板在重力方向上的最大加速度与重力加速度“ g”的比)进行评估。由振动工件的振动频率,振幅和相位角确定。理论模型表明,对于K_v> 1,碎屑颗粒的位置将在工件上方;因此可以有效地冲洗掉加工区。发现在K_v> 1的情况下改善微型EDM钻孔性能的实验原因是有效放电比增加,短路减少和电介质冲洗改善。实验结果还表明,低频振动在低放电能量水平下更为有效,因此使其更适合于微型EDM。考虑到对加工特性和微孔精度参数的影响,发现750 Hz的振动频率和1.5μm的振幅可为开发的振动装置提供改进的性能。

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