首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Measurement and Modeling of Heat Partitions and Temperature Fields in the Workpiece for Cutting Inconel 718, AISI 1045, Ti6Al4V, and AlMgSi0.5
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Measurement and Modeling of Heat Partitions and Temperature Fields in the Workpiece for Cutting Inconel 718, AISI 1045, Ti6Al4V, and AlMgSi0.5

机译:切割Inconel 718,AISI 1045,Ti6Al4V和Almgsi0.5工件中的热分隔和温度场的测量和建模

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The quantification of the heat flow distribution in the metal cutting process depending on the cut material and the process parameters is a research area with a long history. However, a quantification of the heat flow distribution between chip, tool, and workpiece is still a not fully solved problem and remains a necessary input value for the further modeling of temperature fields and subsequent tool wear and thermal induced surface alterations, which may impair the workpiece functionality. Thus, the following publication shows the results of orthogonal cutting in order to investigate the heat flow distribution between the chip and workpiece. Therefore, the heat partitions in the cutting process were calculated by a thermodynamic methodology. This methodology considers the temperature rise in the workpiece and the chip, measured by thermography and pyrometry, as the effect of the cutting work dissipated into sensible heat. Four metals, Inconel 718, AISI 1045, Ti6Al4V, and AlMgSi0.5, were cut at varying undeformed chip thicknesses and cutting velocities. By formulating a dimensionless number for the cutting process, the Peclet number, the thermal diffusivity was included as an evaluation criterion of heat partitioning between the chip and workpiece across material properties and process settings. In this way, the validity of the Peclet number as an evaluation criterion for heat partitions in cutting and as a valuable heuristic for process design was confirmed. Another goal was to extend the state of the art approach of empirical process analysis by orthogonal cuts with regard to specific cutting forces into the thermal domain in order to provide the basis for further temperature modeling in cutting processes. The usage of the empirical data basis was finally demonstrated for the analytical modeling of temperature fields in the workpiece during milling. Therefore, the specific heat inputs into the workpiece measured in the orthogonal cuts were transferred to the milling process kinematics in order to model the heat flow into the workpiece during milling. This heat flow was used as input for an existing analytical model in order to predict stationary temperature fields in the milling process for the two-dimensional case.
机译:根据切割材料和工艺参数的金属切削过程中热流分布的定量是具有悠久历史的研究区域。然而,芯片,工具和工件之间的热流分布的量化仍然是一个不是完全解决的问题,并且仍然是温度场进一步建模的必要输入值和随后的工具磨损和热诱导的表面改变,这可能损害工件功能。因此,以下出版物显示了正交切割的结果,以便研究芯片和工件之间的热流分布。因此,通过热力学方法计算切割过程中的热分区。该方法考虑了通过热成像和热测定测量的工件和芯片中的温度升高,因为切割工作散发成显热的效果。以不同形象的芯片厚度和切割速度切割四种金属,INCONEL 718,AISI 1045,Ti6Al4V和AlmgSi0.5。通过配制用于切割过程的无量纲数,将热扩散率包括在材料特性和工艺设置之间的芯片和工件之间的热分配的评估标准。以这种方式,确认了Peclet编号作为切割中的热分区的评估标准以及作为工艺设计的有价值的启发式的评估标准。另一个目标是通过在热域中的特定切削力方面通过正交切割来扩展现有的经验过程分析方法,以便为切割过程中进一步温度建模提供进一步温度建模的基础。最终对铣削过程中的温度场的分析建模进行了实证数据的使用。因此,在正交切口中测量的工件中的特定热输入被转移到研磨过程运动学中,以便在研磨期间将热流模拟到工件中。该热流用作现有分析模型的输入,以便在二维壳体中预测铣削过程中的固定温度场。

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