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Analysis of Possible Application of Temperature Dependences of Processed Materials' Physical and Mechanical Properties to Define the Maximum Workability Temperature

机译:分析加工材料物理和机械性能的温度依赖性的应用,定义最大可加工性温度

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The results of experimental studies of the different machinability group materials' characteristics, including tool steel DIN C125W, heat-resistant steel (C - 0.1%, Si - 0.6%, Cu - 0.3%, W - 0.1%, Mn - 0.4%, Ni - 23%, P - 0.01%, Cr - 12%, S - 0.01%, V - 0.01, Mo - 1.5%, Ti - 3%, V -0.001%, Al - 0.6), nickel-based superalloy (Fe - 4%, C - 0.1%, Si - 0.6%, Mn - 0.5%, S - 0.01%, P -0.01%, Cr -15%, Ce - 0.01%, Mo - 4%, W - 6%, V - 0.3%, Ti - 2%, Al - 2%, B - 0.01%), the changes in the minimum surface wear, maximum cutting path, and cutting temperature in the processing of these materials, as well as the experimental data analysis showed that the extreme values of changes in the materials' physical and mechanical properties under the temperature impact can be defined as the minimum surface wear temperature and maximum cutting path temperature, that is, the conditions corresponding to the maximum workability of the materials. It is possible to use the materials physical and mechanical property dependence on temperature for defining the maximum material workability temperature when processing it by cutting. The article suggests a method to define the maximum material workability temperature.
机译:实验研究结果不同的可加工群材料的特点,包括刀钢DIN C125W,耐热钢(C - 0.1%,Si - 0.6%,Cu - 0.3%,W - 0.1%,Mn-0.4%, Ni - 23%,P - 0.01%,Cr - 12%,S - 0.01%,V - 0.01,Mo - 1.5%,Ti-3%,V-0.001%,Al-0.6),基于镍的超合金(Fe - 4%,C - 0.1%,Si - 0.6%,Mn - 0.5%,S-0.01%,P-0.01%,Cr -15%,Ce - 0.01%,Mo-4%,W - 6%,V - 0.3%,Ti-2%,Al - 2%,B - 0.01%),最小表面磨损,最大切割路径和切削温度的变化,在这些材料的加工中,以及实验数据分析显示在温度撞击下,材料物理和机械性能变化的极端值可以定义为最小表面磨损温度和最大切割路径温度,即对应于材料的最大可加工性的条件。可以在通过切割加工时使用材料物理和机械性能依赖于温度来定义最大材料可加工温度。该文章表明一种定义最大材料可加工性温度的方法。

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