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Improvement effects of vibration on cutting force in rotary ultrasonic machining of BK7 glass

机译:BK7玻璃旋转超声加工中振动对切削力的改善作用

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Rotary ultrasonic machining (RUM) exhibits a high potential for a significant reduction in the cutting force, which directly associates with tool wear, machining accuracy, machining temperature, and surface integrity. However, the improvement mechanisms of the ultrasonic vibration on the cutting force are still not fully recognized, restricting the currently optimization methods for further reducing the cutting force occurred during the RUM process. In this research, by incorporating the kinematics principles of the abrasive, the evolution features of the material strain rate in the loading phase were first discussed with respect to the indentation mechanics theory. Taking these features into account, the RUM scratching tests were carried out on the polished specimen surfaces under various process parameters to capture the integrated damage patterns evoked in the high strain rate stage. Following, the comparative indentation tests were respectively conducted on the RUM scratches and the gentle polished surfaces. The indentation-induced damage structures and the load-displacement curves were characterized and assessed to investigate the improvement mechanisms of the superimposed ultrasonic on the cutting force in formal RUM process. It was found that superimposing an ultrasonic vibration led to the incipient cracks nucleated in the abrasive loading phase, and their propagations would increase the material removal rate (MMR) obtained in formal RUM process. Furthermore, the incipient cracks provided a shielding effect to the indentation force, which was a dominant factor in diminishing the cutting force of the diamond tool. The nucleation of the incipient cracks resulted in more energy dissipation after the abrasives penetrating into the hard substrate of the material, which would lead to a higher residual stress on final RUM surface. In addition, a failure pattern (plastic deformation or brittle fracture) evolution model involved in abrasive loading phase was developed with respect to the strain rate effects of the material.
机译:旋转超声加工(RUM)具有极大降低切削力的潜力,这直接与刀具磨损,加工精度,加工温度和表面完整性相关。然而,超声振动对切削力的改善机制仍未得到充分认识,限制了目前进一步减小RUM过程中发生的切削力的优化方法。在这项研究中,通过结合磨料的运动学原理,首先针对压痕力学理论讨论了加载阶段材料应变率的演变特征。考虑到这些特征,在各种工艺参数下对抛光试样表面进行了RUM划痕测试,以捕捉在高应变率阶段引起的整体损伤模式。随后,分别在RUM划痕和光滑的抛光表面上进行了比较压痕测试。对压痕引起的损伤结构和载荷-位移曲线进行了表征和评估,以研究超声波在正式RUM工艺中对切削力的改善机理。已经发现,叠加超声波振动会导致在磨料加载阶段出现早期裂纹,裂纹的扩展会增加正规RUM工艺中获得的材料去除率(MMR)。此外,初期裂纹对压痕力起到了屏蔽作用,这是减小金刚石工具切削力的主要因素。磨料渗入材料的坚硬基材后,初期裂纹的形核导致更多的能量耗散,这将导致最终RUM表面的残余应力更高。此外,针对材料的应变速率效应,开发了一种涉及磨料加载阶段的失效模式(塑性变形或脆性断裂)演化模型。

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