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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part B. Journal of engineering manufacture >Effect of ultrasonic vibration on frictional behavior of tool-chip interface: Finite element analysis and experimental study
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Effect of ultrasonic vibration on frictional behavior of tool-chip interface: Finite element analysis and experimental study

机译:超声波振动对工具芯片界面摩擦行为的影响:有限元分析与实验研究

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摘要

Ultrasonic-assisted machining is an advanced method which allows significant improvements in processing of materials. In this study, a finite element model is developed to study the effect of ultrasonic vibration on machinability of AISI 304 stainless steel in which the results are compared with conventional cutting process. A pneumatic quick-stop device and an optical microscope are applied to validate the simulation results by measuring shear angle and sticky region experimentally. As a result, the analysis of heat generation in primary and secondary deformation zones shows that temperature increases in the primary zone when ultrasonic vibration is used, while a significant reduction in temperature is seen in the tool-chip contact zone. This area is considerably effective on the length of sticky region. Moreover, the influence of cutting speed and feed rate on tool-chip engagement time is investigated by the analysis of cutting force profile.
机译:超声波辅助加工是一种先进的方法,可实现材料加工的显着改进。 在该研究中,开发了有限元模型,以研究超声波振动对AISI 304不锈钢的可加工性的影响,其中结果与常规切割过程相比。 应用气动快速停止装置和光学显微镜以通过实验测量剪切角和粘性区域来验证模拟结果。 结果,初级和次级变形区域中发热分析表明,当使用超声波振动时,主区内的温度增加,而在工具芯片接触区中看到了温度显着降低。 该地区对粘性区域的长度有效。 此外,通过切割力曲线的分析研究了切削速度和进料速率对工具芯片接合时间的影响。

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