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Simulation of Hexa-Octahedral Diamond Grain Cutting Tests Using the SPH Method

机译:使用SPH方法模拟六面体金刚石晶粒切割测试

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Single grain cutting tests are an important basic tool in understanding complex grinding processes. Simulations offer additional insight into important process data and can reduce the overall number of required experiments.Cutting simulations with FE Methods have problems arising from large deformations at the chip root and negative rake angles of the diamond grain. Those problems can be overcome using meshfree methods, but with the additional difficulties of contact modeling and the enforcement of boundary conditions. In this work, a Smoothed Particle Hydrodynamics (SPH) Method is used to model the cutting behavior of single hexa-octahedral diamond cutting grains. The material behavior at low cutting depths is characterized using experimental data and simulations of micro-Vickers indenter tests.The simulations show the influence of the yaw and rake angle on the cutting and passive forces as well as the ratio of chip and burr generation. Both the cutting and the passive forces show good accordance with the experimental data. The burr generation is still overestimated due to the lack of a physical failure criterion in the SPH-method. Difficult to predict effects like the generation of a stagnant zone of workpiece material moving in front of the diamond grain at the chip root are reproduced as well. This work shows the advantages of using a meshfree method in areas were classical FE-methods have difficulties.
机译:单粒切削测试是了解复杂磨削过程的重要基础工具。模拟可以提供对重要工艺数据的更多见解,并且可以减少所需实验的总数。有限元方法进行的切削模拟存在由于切屑根部的大变形和金刚石晶粒的负前角而产生的问题。可以使用无网格方法来克服这些问题,但是还要增加接触建模和边界条件执行的难度。在这项工作中,使用平滑粒子流体动力学(SPH)方法对单个六八面体金刚石切削晶粒的切削行为进行建模。通过实验数据和微维氏压头测试的模拟来表征低切削深度下的材料行为,该模拟显示了偏航角和前角对切削力和被动力的影响,以及切屑和毛刺产生的比率。切削力和被动力均与实验数据相吻合。由于SPH方法中缺乏物理故障准则,因此毛刺的产生仍然被高估了。还再现了难以预测的效果,例如产生了在切屑根部移动到金刚石晶粒前面的工件材料的停滞区。这项工作显示了在传统有限元方法难以解决的领域中使用无网格方法的优势。

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