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A full factorial numerical investigation and validation of precision end milling process for hardened tool steel

机译:硬化工具钢精密端铣过程的完整阶乘数值调查与验证

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Tool steel materials have poor machinability, as the high hardness of the material will cause high cutting forces, premature failure of the cutting tools, and is also associated with machining induced tensile stresses within the work piece. Due to high experimental costs, there is no recent research on end milling tool steel, using full factorial experimental or numerical design. A 3D FE-model of a precision end milling process with a two flute ball nose cutter were established in this paper. The FE-Model used a subroutine to model hardening realised through the Johnson-Cook model, additionally were a material removal criteria developed and implemented. Through full factorial numerical simulations the influence of cutting parameters on cutting force of H13 tool steel was studied. Depth of cut was found to be the most influential machining parameter on cutting forces followed by feed rate and surface speed. Four milling experiments were carried out to validate the simulation results. It was found that the simulation and the experiments had a good agreement on the cutting forces. The validated FEA model can be used for further studies on residual stress or temperatures and to optimise the cutting process.
机译:工具钢材的可加工性差,随着材料的高硬度将导致高切削力,切削刀具过早失效,并且还与工件内的加工诱导的拉伸应力相关。由于实验成本高,近期没有完整的实验或数值设计的端铣刀钢的研究。本文建立了具有两个长笛球刀具切割器的精密端铣床的3D FE模型。 FE-Model使用子程序通过Johnson-Cook模型实现了模型硬化,另外还有一种材料去除标准,开发和实施。通过完整的数值模拟,研究了切割参数对H13工具钢切割力的影响。发现切割深度是切割力的最有影响力的加工参数,然后是进料速率和表面速度。进行四个铣削实验以验证模拟结果。结果发现,模拟和实验对切割力吻合良好。经过验证的FEA模型可用于进一步研究残留应力或温度,并优化切割过程。

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