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A COUPLING APPROACH COMBINING CFD AND FEM METHODS TO PREDICT CUTTING FLUID EFFECTS ON THE TOOL TEMPERATURE IN CUTTING PROCESSES

机译:CFD和有限元方法相结合的耦合方法预测切削过程中流体温度对流体的影响

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In metal cutting processes the use of cutting fluids shows significant effects on workpiece surface quality by reducing ther-momechanical loads on cutting tool and workpiece. Many efforts are made to model these thermomechanical processes, however without considering detailed heat transfer between cutting fluid, tool and workpiece. To account for heat transfer effects, a coupling approach is developed which combines CFD (Computational Fluid Dynamics) and FEM (Finite Element Method) chip formation simulation. Prior to the simulation, experimental investigations in orthogonal cutting in dry and wet cutting conditions with two different workpiece materials (AISI 1045 and DA 718) are conducted. To measure the tool temperature in dry as well as in wet cutting conditions, a two color pyrometer is placed inside a EDM drilled cutting tool hole. Besides tool temperature, the cutting force is recorded during the experiments and later used to calculate heat source terms for the CFD simulation. After the experiments, FEM chip formation simulations are performed and provide the chip forms for the CFD mesh generation. In general, CFD simulation and experiment are in reasonable agreement, as for each workpiece setup the measured temperature data is located between the simulation results from the two different tool geometries. Furthermore, numerical and experimental results both show a decrease of tool temperature in wet cutting conditions, however revealing a more significant cooling effect in a AISI 1045 workpiece setup. The results suggest that the placement of drilling holes has a major influence on the local tool temperature distribution, as the drilling hole equals a thermal resistance and hence leads to elevated temperatures at the tool front.
机译:在金属切削过程中,切削液的使用通过减少切削工具和工件上的热机械负荷,对工件表面质量产生了显着影响。已经做出了很多努力来对这些热机械过程进行建模,但是没有考虑切削液,刀具和工件之间的详细传热。为了考虑传热效果,开发了一种结合方法,该方法结合了CFD(计算流体动力学)和FEM(有限元方法)切屑形成模拟。在进行模拟之前,进行了在干和湿切削条件下使用两种不同工件材料(AISI 1045和DA 718)进行正交切削的实验研究。为了在干切削和湿切削条件下测量刀具温度,将两色高温计放置在EDM钻出的切削刀具孔内。除工具温度外,在实验过程中还记录了切削力,随后将其用于计算CFD模拟的热源项。在实验之后,进行有限元芯片形成仿真,并提供用于CFD网格生成的芯片形式。通常,CFD模拟和实验在合理的范围内一致,因为对于每种工件设置,测得的温度数据都位于两种不同刀具几何形状的模拟结果之间。此外,数值和实验结果均显示在湿切削条件下刀具温度降低,但是在AISI 1045工件设置中显示出更显着的冷却效果。结果表明,钻孔的位置对局部工具温度分布有重大影响,因为钻孔等于热阻,因此导致工具前端的温度升高。

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