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Methodology for the Measurement of the Heat Partitioning by Thermal Imaging in the Orthogonal Cutting Process

机译:正交切削过程中通过热成像测量热分配的方法

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The thermal conditions like temperature distribution and heat fluxes during metal cutting have a major influence on the machinability, the tool life time, and the metallurgical structure of the work piece material. Though numerous analytical and experimental efforts have been developed in order to understand the thermal conditions in metal cutting, many questions still prevail. So, the exact form, distribution, and intensity of heat sources in the primary and secondary shear zone, which may describe the observed temperature distributions, are not explored to a satisfactory extend. On the other hand, the influence of the material properties like friction coefficient, heat conductivity, and shear strength is not yet fully understood. Another essential question is the heat flux partition among chip, work piece, and tool depending on process parameters and material. The particular novelty of the current investigation is a new methodological approach using modern thermal measurement system and postprocessing methods in order not only to measure the entire temperature field in the orthogonal cutting zone but also to calculate the affiliated heat flow distribution in the cutting process. Thus, the cutting process is treated as energy conversation process of the governing mechanical power into sensible heat. This point of view offers compatibility across process parameters and materials, thus new possibilities for process design.
机译:金属切削过程中的温度分布和热通量之类的热条件对可加工性,刀具寿命和工件材料的冶金结构有重大影响。尽管为了理解金属切削中的热条件而进行了大量的分析和实验工作,但仍然存在许多问题。因此,在第一和第二剪切带中的热源的确切形式,分布和强度(可能描述观察到的温度分布)没有得到令人满意的扩展。另一方面,尚未充分了解材料特性如摩擦系数,导热性和剪切强度的影响。另一个重要问题是取决于工艺参数和材料的芯片,工件和工具之间的热通量分配。当前研究的特别新颖之处是使用现代热测量系统和后处理方法的新方法,不仅可以测量正交切削区域中的整个温度场,而且可以计算切削过程中的相关热流分布。因此,切割过程被视为将机械能转化为显热的能量转化过程。这种观点提供了工艺参数和材料之间的兼容性,从而为工艺设计提供了新的可能性。

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