Speculation on Ultrasonic-Assisted Grinding with an Engineered Wheel

H. Hashimoto, K. Imai, D. Dornfeld, K. Blaedel
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Abstract

The ability to perform high-quality, shear-mode grinding of brittle materials such as glass critically depends on an adequate flow of coolant through the contact zone between the tool and the workpiece. A long contact zone limits the induction of coolant and thereby promotes high temperatures in the contact zone where heat is generated. For workpiece materials like glass, the high temperature and subsequent quenching causes surface and subsurface damage. High temperature of the wheel also tends to promote faster wheel wear. In contrast, short contact lengths tend to reduce the temperature of both the workpiece and the wheel. For some grinding geometries, where a long contact length is difficult to avoid, an alternative is to excite the wheel at ultrasonic frequency, which also admits coolant between wheel and workpiece. Results are shown of grinding force with and without ultrasonic excitation and the analyses of the resultant surfaces.
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工程砂轮超声辅助磨削的设想
对脆性材料(如玻璃)进行高质量剪切式磨削的能力,关键取决于通过工具和工件之间接触区的冷却液的充足流动。长接触区限制了冷却剂的感应,从而促进了产生热量的接触区高温。对于像玻璃这样的工件材料,高温和随后的淬火会导致表面和亚表面损伤。车轮的高温也往往促进车轮更快的磨损。相反,短的接触长度往往会降低工件和车轮的温度。对于一些难以避免长接触长度的磨削几何形状,一种替代方法是以超声波频率激励砂轮,这也允许在砂轮和工件之间使用冷却剂。给出了有超声激励和无超声激励的磨削力的计算结果,并对加工表面进行了分析。
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