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ANALYSIS ON THE TEMPERATURE RISE PRODUCED BY PLASTIC DEFORMATION HEAT FOR NANOSCALE ORTHOGONAL CUTTING OF COPPER WORKPIECE

机译:铜工件纳米级正交切割塑性变形热量产生的温度升高分析

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The quasi-steady molecular statics nanoscale orthogonal cutting model developed by this paper not only can calculate cutting force, equivalent stress and equivalent strain, but also can calculate the temperature rise of the cut perfect crystal copper workpiece. This paper considers that during nanoscale orthogonal cutting, the temperature rise of the cut perfect crystal copper workpiece is produced by plastic deformation heat only. The calculation method of equivalent stress and equivalent strain uses three-dimensional quasi-steady molecular statics nanocutting model to calculate and simulate the phenomenon. The model for plastic deformation heat developed by this paper can be used to calculate the equivalent stress and equivalent strain of the cut copper workpiece. Furthermore, the calculation method of temperature rise of the cut workpiece produced by plastic deformation heat is developed. Afterwards the analysis of temperature distribution is also conducted. And the obtained temperature distribution of the cut copper workpiece computed by this paper is qualitatively compared with the temperature distribution obtained by molecular dynamics method in the reference.
机译:本文开发的准稳态分子纳米级纳米级正交切割模型不仅可以计算切割力,等效应力和等效应变,而且还可以计算切割完美晶体铜工件的温度升高。本文认为,在纳米级正交切割期间,通过塑性变形热量产生切割完美晶体铜工件的温度升高。等效应力和等同菌株的计算方法使用三维准稳态分子纳米纳入模型计算和模拟现象。本文开发的塑性变形热模型可用于计算切割铜工件的等效应力和等效应变。此外,开发了通过塑性变形热量产生的切割工件的温度升高的计算方法。之后还进行了温度分布的分析。通过本文计算的切割铜工件的温度分布与参考分子动力学方法获得的温度分布进行了定性。

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