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Evaluation of a novel approach for considering damping effects in a process force model of a geometric physically-based milling simulation

机译:一种小型方法,用于考虑几何物理研磨模拟过程力模型中的考虑阻尼效应

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Process damping in milling is a significant influencing factor in avoiding detrimental dynamic effects such as regenerative chatter vibrations, which can impair the workpiece quality and increase tool wear. In this context, the use of tools with flank face chamfers causes significant process damping effects over a wide range of spindle speeds. This way, processes with increased material removal rates due to high radial and axial tool immersions can be conducted without the occurrence of disturbing chatter vibrations. A precise prediction of the process stability is necessary to define efficient process strategies in advance. However, this is particularly challenging in the presence of process damping due to its nonlinear process behavior. This paper presents an evaluation of a new approach towards modeling dynamic forces in a geometric physically-based milling simulation for taking process damping effects caused by chamfered cutting tools into account. This model considers the vibration velocity present at the cutting edge in order to calculate a damping force caused by the dynamic tool-workpiece contact. The parameterization of the velocity-dependent force model was carried out a priori by conducting finite element simulations using an orthogonal cutting model as an analogy setup to determine the resulting force components. The proposed modeling approach was analyzed by comparing the simulation results to corresponding milling processes for validation. In contrast to established empirical force models, which calculate the process forces entirely as a function of the undeformed chip shape, the consideration of the dynamic tool-workpiece interaction led to a significant damping of the modeled process vibrations.
机译:铣削过程中的过程阻尼是一种显着的影响因素,避免了诸如再生颤振振动等有害动态效果,这可能损害工件质量并增加工具磨损。在这种情况下,使用具有侧面倒角的工具导致在各种主轴速度范围内的显着处理阻尼效应。这样,由于高径向和轴向工具沉浸而增加的材料去除率增加的过程可以在没有扰乱颤振振动的情况下进行。预先确定有效的过程策略是必要的对过程稳定性的精确预测。然而,由于其非线性工艺行为,这在过程阻尼的存在中尤其具有挑战性。本文提出了一种评估一种在几何物理基础铣削模拟中建模动态力的新方法,以考虑倒角切割工具引起的工艺阻尼效果。该模型认为在切削刃处存在的振动速度,以计​​算由动态工具工件接触引起的阻尼力。通过使用正交切割模型作为类比设置来进行有限元模拟来进行速度相关力模型的参数化,以确定所得到的力分量。通过将模拟结果与相应的铣削过程进行比较来分析所提出的建模方法进行验证。与建立的经验力模型相比,其完全根据未变形芯片形状的函数计算过程力,考虑动态工具 - 工件相互作用的考虑导致建模过程振动的显着阻尼。

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