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The Numerical Analysis of Cutting Forces in High Feed Face Milling, Assuming the Milling Tool Geometry

机译:假定铣刀几何形状,在高进给面铣削中切削力的数值分析

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This paper presents the research study of cutting forces assuming the geometry of the milling cutter. The particularity of the milling process is the discontinuity of chip removal assuming the chip cross-section as well as the complexity of milling tool geometry. Usually, the simplification of milling tool (or other multi-edge cutting tools) and kinematics are considered for the purpose of defining the output parameters of cutting process. However, the simplification of complex cutting tools to single-edge tool is not that informative and understandable or limited to the definition of output parameters, considering the really physical milling process. For this purpose, the paper focuses on the definition of cutting forces considering the geometry of the milling cutter. Three main geometries for face milling are known, and they are called double negative, double positive and positiveegative. Considering these geometries, the 3D different milling cutters were composed. Smooth Particles Hydrodynamics (SPH) numerical method was used to perform the simulation of full (without geometry and kinematics simplification) face milling. SPH method is the effective numerical technique to solve the problems of high deformation. For high impact deformation problem, the elastic-plastic material model with kinematic isotropic hardening was chosen. Finally, the results of calculated cutting forces are presented for face milling assuming double negative, double positive and negative/positive face milling.
机译:本文介绍了假设铣刀的几何形状的切削力的研究。铣削过程的特殊性在于假定切屑横截面以及铣削刀具几何形状的复杂性,切屑去除的不连续性。通常,为了定义切削过程的输出参数,考虑简化铣刀(或其他多刃切削刀具)和运动学。但是,考虑到真正的物理铣削过程,将复杂的切削刀具简化为单刃刀具并不是信息丰富,易于理解或仅限于输出参数的定义。为此,本文重点考虑铣刀的几何形状来定义切削力。已知三种用于端面铣削的主要几何形状,它们分别称为双负,双正和正/负。考虑到这些几何形状,组成了3D不同的铣刀。光滑粒子流体动力学(SPH)数值方法用于执行全平面铣削(不简化几何和简化运动学)的模拟。 SPH方法是解决高变形问题的有效数值技术。对于高冲击变形问题,选择了运动各向同性硬化的弹塑性材料模型。最后,假设双负,双正和负/正端面铣削,给出了端面铣削的计算切削力结果。

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