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Numerical Investigations on Single Lip Deep Hole Drilling

机译:单唇深孔钻井的数值研究

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The surface quality and the subsurface properties such as hardness and residual stress of a drill hole are dependent on the cutting parameters of the single lip deep hole drilling process and therefore on the thermo-mechanical as-is state in the cutting zone and in the contact zone between the guide pads and the drill hole surface. In the present work, this highly dynamic and unsteady-state process including large deformation and heat generation FE simulations were carried out to analyze the mechanical as-is state in the drilling contact zone by evaluating the temperature, the feed force as well as the residual stress in the drill hole subsurface. Besides, in-process measurements as well as results from the hole drilling method to determine residual stresses are presented to verify the numerical results. For the simulations, the Johnson-Cook (JC) constitutive law was applied to represent the material behavior of the workpiece to cover strain rate as well as temperature dependent plasticity. The chip formation in the simulations was realized by means of the element elimination technique (EET).This contribution introduces the research project and the performed measurements with respect to the influence of the thermal and mechanical boundary conditions in this machining process focusing on the temperature and the feed force while drilling a 42CrMo4 steel and the residual stress in the drill hole subsurface. With this simulation approach, the chip formation as well as the residual stress distribution in thickness direction were reproduced successfully. The comparison of the process data, such as temperature, feed force or residual stress shows a qualitative agreement of the simulation and the experimental results, too.
机译:钻孔的硬度和残余应力的表面质量和地下性质取决于单唇深孔钻井过程的切削参数,因此取决于切割区中的热机械的状态和接触引导垫和钻孔表面之间的区域。在本作本作中,通过评估温度,饲料力以及残差来进行这种高度变形和发热Fe模拟的这种高度动态和不稳定的状态过程,以分析钻孔接触区中的机械状态。钻孔地下压力。此外,介绍了过程中的过程测量以及来自孔钻孔方法的结果,以确定残留应力以验证数值结果。对于模拟,Johnson-Cook(JC)本构规定是应用工件的材料行为,以涵盖应变率以及温度依赖性可塑性。通过元素消除技术(EET)实现了模拟中的芯片形成。本贡献介绍了研究项目和对该加工过程中热电边界条件的影响的研究项目,其关注温度和进料力在钻孔时钻出42crmo4钢和钻孔地下中的残余应力。利用这种仿真方法,成功地再现芯片形成以及厚度方向上的残余应力分布。过程数据的比较,例如温度,饲料力或残余应力也显示了模拟和实验结果的定性吻合。

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