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Geometric Physically-Based and Numerical Simulation of NC-Grinding Processes for the Calculation of Process Forces

机译:基于几何物理基础的NC磨削工艺数值模拟,用于计算过程力的计算

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Surface topographies resulting from grinding processes and the corresponding process forces depend on various process conditions, such as the grain shapes and the workpiece material. Geometric physically-based simulations can be used to analyze these process results, taking the individual grains on the grinding tool into account. However, the experimental calibration of the force models is time consuming and challenging since the shape of the grains changes due to wear. Finite Element Analysis (FEA) can be used to calculate the process forces of individual grain engagements with defined grain shapes based on material models, e. g., the Johnson-Cook (JC) model. In this paper, the Coupled Eulerian-Lagrangian (CEL) method is used to determine the cutting force coefficients of the empirical force model of a geometric physically-based simulation system. The workpiece model is described by an Eulerian formulation and the grain is modeled as a rigid hull comprising triangular elements. The calibrated force model is applied in a simulation of an exemplary grinding process in order to calculate the process forces for each individual grain. The simulated forces are validated by comparing the simulation results to experimental investigations.
机译:由研磨过程和相应的处理力产生的表面拓扑取决于各种工艺条件,例如晶粒形状和工件材料。基于几何物理基础的模拟可用于分析这些过程结果,以考虑磨削工具上的各个谷物。然而,力模型的实验校准是耗时和挑战,因为谷物由于磨损而变化。有限元分析(FEA)可用于基于材料模型计算具有限定晶粒形状的单个谷物啮合的过程力,例如, G.,Johnson-Cook(JC)模型。本文耦合的Eulerian-Lagrangian(CEL)方法用于确定几何物理基础仿真系统的经验力模型的切割力系数。工件模型由欧拉配方描述,并且晶粒被建模为包括三角形元件的刚性船体。校准力模型应用于示例性研磨过程的模拟,以便计算每个单独的晶粒的过程力。通过将模拟结果与实验研究比较来验证模拟力。

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