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Physics-Based Simulations of Chip Flow over Micro-Textured Cutting Tool in Orthogonal Cutting of Alloy Steel

机译:基于物理场的合金钢正交切削中微纹理切削刀具上的切屑流模拟

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摘要

Physics-based process simulations have the potential to allow virtual process design and the development of digital twins for smart machining applications. This paper presents 3D cutting simulations using the finite element method (FEM) and investigates the physical state variables that are fundamental to the reduction in cutting forces, friction, and tool wear when micro-textured cutting tools are employed. For this goal, textured cemented carbide cutting tool inserts are designed, fabricated, and tested in the orthogonal dry cutting of a nickel-chromium-molybdenum alloy steel. Cutting forces and friction coefficients are compared against the non-textured tool, revealing the effects of texture parameters. Chip flow over the textured tool surface and process variables at the chip-tool contact are investigated and compared. The results reveal the fundamental sources of such improvements. Archard’s wear rate as a composition of process variables is utilized to compare experimental and simulated wear on the textured cutting tools. The effects of texture and cutting conditions on tool wear and adhesion characteristics are further discussed on the simulation results with experimental comparisons. It was found that the results obtained from these simulations provide further fundamental insights about the micro-textured cutting tools.
机译:基于物理的工艺仿真有可能实现虚拟工艺设计和开发用于智能加工应用的数字孪生。本文介绍了使用有限元方法 (FEM) 的三维切削模拟,并研究了物理状态变量,这些变量对于使用微纹理切削刀具时减少切削力、摩擦力和刀具磨损至关重要。为此,在镍铬钼合金合金钢的正交干切削中设计、制造和测试了纹理硬质合金刀具刀片。将切削力和摩擦系数与非纹理刀具进行比较,揭示纹理参数的影响。研究并比较了纹理刀具表面的切屑流动和切屑-刀具接触处的工艺变量。结果揭示了这些改进的根本来源。Archard的磨损率作为工艺变量的组合,用于比较纹理切削刀具的实验磨损和模拟磨损。通过实验比较,进一步讨论了纹理和切削条件对刀具磨损和粘合特性的影响。结果发现,从这些模拟中获得的结果为微纹理切削刀具提供了进一步的基本见解。

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