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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Investigation of ultrasonic-assisted wire electrical discharge turning based on single discharge analysis
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Investigation of ultrasonic-assisted wire electrical discharge turning based on single discharge analysis

机译:基于单次放电分析的超声辅助丝放电加工研究

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摘要

In ultrasonic-assisted wire electrical discharge turning, the longitudinal ultrasonic vibration of the wire creates a longitudinal compressive and rarefaction wave front, which is successively aiding very violent and accelerative mass to transfer across the spark gap, acting as a pump, causing higher debris suspension and evacuation from the gap and higher dielectric fluid renewal. For this purpose, a specially designed and fabricated turning spindle is used. An auxiliary device which produced the ultrasonic vibration was installed between the two wire guides. The ultrasonic system consists of an ultrasonic generator, a transducer, and a wire holder. When the wire is being driven, the transducer and the wire holder are vibrated under the resonance condition. In this study, the size of eroded craters, surface roughness, recast layer thickness, and micro-crack, measured on the workpiece (anode) were found to be highly influenced by the applied ultrasonic vibration. It was found that the volume of the eroded craters increased by applying the ultrasonic vibration based on single discharge analysis. This means that the remaining lower melting material leads to the reduction of the recast layer thickness and micro-cracks. Based on the obtained results, in this process, the surface roughness is not changed under low discharge energy (finishing condition).
机译:在超声波辅助导线放电车削过程中,导线的纵向超声波振动会产生纵向压缩和稀疏波前,这将相继辅助非常剧烈和加速的质量跨火花间隙传递,起到泵的作用,从而导致更高的碎屑悬浮并从间隙中抽出,并提高了绝缘液的更新率。为此,使用了专门设计和制造的车削主轴。在两个线导之间安装了产生超声波振动的辅助装置。超声系统由超声发生器,换能器和电线固定器组成。当电线被驱动时,换能器和电线保持器在共振条件下振动。在这项研究中,发现在工件(阳极)上测得的腐蚀坑的尺寸,表面粗糙度,重铸层厚度和微裂纹在很大程度上受到施加的超声波振动的影响。发现通过基于单次放电分析的超声振动,被腐蚀的坑的体积增加。这意味着残留的较低熔点的材料导致再铸层厚度和微裂纹的减少。基于所获得的结果,在该过程中,在低放电能量(精加工条件)下表面粗糙度不会改变。

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