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首页> 外文期刊>Journal of Advanced Mechanical Design, Systems, and Manufacturing >Ultrasonic vibration-assisted machining of chemically strengthened glass with workpiece bending
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Ultrasonic vibration-assisted machining of chemically strengthened glass with workpiece bending

机译:超声波振动辅助化学强化玻璃的弯曲加工

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摘要

This paper deals with axial ultrasonic vibration-assisted machining with workpiece bending. It was proposed as a novel machining method for the reduction of the chippings at the machined holes during micro through-hole drilling of chemically strengthened glass. In micro through-hole drilling of chemically strengthened glass, machining accuracy and efficiency tend to be low because the material's high hardness and brittleness cause rapid tool wear and large chippings at the inlet and outlet of the machined holes. In order to machine small holes with high accuracy, the reduction of the tensile stress that causes large chippings at the outlet of the machined holes is an issue of primary importance that deserves investigation. In the proposed machining method, the glass plate is bent slightly to be convex upward through the application of a compressive stress at the posterior surface of chemically strengthened glass, with a specially designed jig. Using this proposed method that can reduce the tensile stress, the chipping size at the outlet of the machined holes was successfully reduced with applied compressive stress values of 38.9 MPa. In conclusion, it has been clear that the axial ultrasonic vibration-assisted machining with workpiece bending has the potential for achieving high-precision and high-efficiency machining for chemically strengthened glass.
机译:本文涉及带有工件弯曲的轴向超声振动辅助加工。提出了一种新颖的加工方法,用于减少化学强化玻璃的微通孔钻削过程中加工孔处的碎屑。在化学强化玻璃的微通孔钻孔中,加工精度和效率趋于降低,因为该材料的高硬度和脆性会导致工具快速磨损,并在加工孔的入口和出口处产生大量碎屑。为了高精度地加工小孔,减小在加工孔的出口处引起大碎屑的拉应力是最重要的问题,值得研究。在提出的加工方法中,玻璃板通过在专门设计的夹具上在化学强化玻璃的后表面施加压缩应力而略微弯曲,从而向上凸出。使用可以减少张应力的拟议方法,通过施加38.9 MPa的压缩应力值,可以成功地减小加工孔出口处的切屑尺寸。总之,很明显,带有工件弯曲的轴向超声振动辅助加工具有实现化学强化玻璃的高精度和高效加工的潜力。

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