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首页> 外文期刊>Procedia Manufacturing >Three Dimensional Finite Element Simulation of Cutting Forces and Cutting Temperature in Hard Milling of AISI H13 Steel
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Three Dimensional Finite Element Simulation of Cutting Forces and Cutting Temperature in Hard Milling of AISI H13 Steel

机译:AISI H13钢硬铣削中切削力和切削温度的三维有限元模拟

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Compared with the traditional technological process, hard milling of hot work tool steel (AISI H13) can significantly improve the physical/mechanical performances of machined components. A three dimensional (3D) finite element (FE) simulation model was built in this research to investigate the complex nonlinear process. First, the geometric model of workpiece was established considering the previous machined surface profile in actual milling process. Secondly, the prediction validation of the simulation model about hard milling process was verified by comparing the simulated cutting forces with the experiment results. Finally, the effect of cutting speed and feed rate on cutting forces and cutting temperature were researched by using the FE simulation model. The results indicate that cutting forces increase with the increase of feed rate, while cutting temperature increases with the increase of cutting speed. The effects of cutting speed on cutting forces and feed rate on cutting temperature are not significant. The simulated temperature is much lower than the austenitizing temperature of AISI H13 steel which means white layer is unlikely to be formed under the cutting conditions used in this study. The research can contribute to the fundamental understanding of mechanism and optimization of cutting parameters in hard milling.
机译:与传统工艺相比,热加工工具钢(AISI H13)的硬铣削可以显着改善加工零件的物理/机械性能。本研究建立了三维(3D)有限元(FE)仿真模型,以研究复杂的非线性过程。首先,考虑实际铣削过程中先前的加工表面轮廓,建立了工件的几何模型。其次,通过将模拟切削力与实验结果进行比较,验证了硬铣削模拟模型的预测有效性。最后,利用有限元仿真模型研究了切削速度和进给速度对切削力和切削温度的影响。结果表明,切削力随进给速度的增加而增加,切削温度随切削速度的增加而增加。切削速度对切削力和进给速度对切削温度的影响不明显。模拟温度远低于AISI H13钢的奥氏体化温度,这意味着在本研究中使用的切削条件下不太可能形成白层。该研究可为硬铣削机理和切削参数优化的基础理解做出贡献。

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