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Study on influence of grinding depth and grain shape on grinding damage of K9 glass by SPH simulation

机译:磨削深度和晶粒形状对SPH仿真磨削对K9玻璃研磨的影响

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摘要

This work use the SPH method to study the relationship between grinding depth and grinding force of K9 glass in ultra-precision grinding, and the effect of grain shape on material removal. The relationship between the force and the depth in the stable scratching stage is F-R = 0.55078a(p)(1.15356), which provides a basis for controlling the grinding depth by force. The material removal modes at different grinding depths were obtained, that is, plastic removal occurs below 0.2 mu m, brittle transition occurs between 0.2 and 0.4 mu m, and brittle removal occurs at more than 0.5 mu m. It is found that the cutting resultant force of sharp grains is smaller and the normal force is smaller than the tangential force. By analyzing the plastic deformation depth and residual stress depth, it is found that the material removal mode with small deformation and little removal has the lowest cutting force fluctuation and the highest grinding quality. It provides a reference for the choosing of grain shape in rough grinding and ultra-precision grinding. The correctness and reliability of the simulation results were verified by the comparison of the simulation findings with the results obtained from varied-depth scratching experiments and the multi-shape indenter scratch experiments.
机译:这项工作使用SPH方法研究了超精密研磨中K9玻璃研磨深度和研磨力之间的关系,以及晶粒形状对材料去除的影响。稳定刮擦阶段中的力和深度之间的关系是F-R = 0.55078A(P)(1.15356),为通过力控制研磨深度提供了基础。得到不同研磨深度的材料去除模式,即塑料去除在0.2μm以下发生,在0.2和0.4μm之间发生脆性转变,并且在大于0.5μm的脆性去除。结果发现,锐晶的切割得到的力较小,正常力小于切向力。通过分析塑性变形深度和残余应力深度,发现具有小变形的材料去除模式,拆除少得多的切削力波动和最高的研磨质量。它为粗磨削和超精密研磨提供了晶粒形状的参考。通过比较模拟结果与从不同深度刮擦实验获得的结果和多形状压痕试验的结果进行了仿真结果的正确性和可靠性。

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