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Cutting Tool Temperature Field Reconstruction using Hybrid Macro/micro Scale Modeling for Machining of Titanium Alloy

机译:用杂交宏/微尺度建模切割工具温度场重建以加工钛合金

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In metal cutting, the ability to model its tool temperature distribution is highly desirable as it provides an effective means to monitor the tool and workpiece conditions, particularly when machining titanium alloy that has a low heat conductivity. Because of the complex cutting heat generation, the difficulty to infer the temperature distribution at the cutting interface has been well-recognized as a worldwide problem. In the context of dry lathe-turning of titanium alloy, this paper presents a method that considers both the macro- and micro-scales in the reconstruction of the temperature field at the tool insert. In micro-scale modeling, a modified constitutive material model for TC4 is incorporated in simulating the machining process, which numerically obtains the boundary conditions including contact areas and heat flux following through the tool-chip interface for the macro-scale heat-transfer model. The temperature distribution of the cutting tool can then be solved directly from the heat transfer model, which also provides a basis for experimental validation using infrared thermal imager for temperature measurements.
机译:在金属切割中,非常希望模拟其工具温度分布的能力,因为它提供了监测工具和工件条件的有效手段,特别是当加工具有低导热性的钛合金时。由于切割发热复杂,因此在切割界面处的温度分布难以得到很好的认识到全世界问题。在钛合金的干式车床转动的背景下,本文介绍了一种方法,其考虑了工具插入件温度场的重建中的宏观和微观尺度。在微尺度建模中,在模拟加工过程中结合了用于TC4的改进的组成材料模型,该加工过程是通过用于宏观传热模型的工具芯片界面,在数值上获得包括接触区域和热通量的边界条件。然后可以直接从传热模型中求解切割工具的温度分布,这也为使用红外热成像仪进行实验验证的基础,用于温度测量。

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