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Rear-surface integral method for calculating thermal diffusivity: Finite pulse time correction and two-layer samples

机译:后表面积分法计算热扩散率:有限脉冲时间校正和两层样本

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We study methods for calculating the thermal diffusivity of solids from laser flash experiments. This experiment involves subjecting the front surface of a small sample of the material to a heat pulse and recording the resulting temperature rise on the opposite (rear) surface. Recently, a method was developed for calculating the thermal diffusivity from the rear-surface temperature rise, which was shown to produce improved estimates compared with the commonly used half-time approach. This so-called rear-surface integral method produced a formula for calculating the thermal diffusivity of homogeneous samples under the assumption that the heat pulse is instantaneously absorbed uniformly into a thin layer at the front surface. In this paper, we show how the rear-surface integral method can be applied to a more physically realistic heat flow model involving the actual heat pulse shape from the laser flash experiment. New thermal diffusivity formulas are derived for handling arbitrary pulse shapes for either a homogeneous sample or a heterogeneous sample comprising two layers of different materials. Presented numerical experiments confirm the accuracy of the new formulas and demonstrate how they can be applied to the kinds of experimental data arising from the laser flash experiment. (C) 2019 Elsevier Ltd. All rights reserved.
机译:我们研究了通过激光闪光实验计算固体热扩散率的方法。该实验包括使一小部分材料的前表面经受热脉冲,并记录相对(后)表面上的温度升高。最近,开发了一种用于根据背面温度升高来计算热扩散率的方法,与常用的半时制方法相比,该方法显示出改进的估计值。在热脉冲被瞬时均匀地吸收到前表面的薄层的假设下,这种所谓的后表面积分方法产生了一个计算均质样品热扩散率的公式。在本文中,我们展示了如何将后表面积分方法应用于更实际的热流模型,该模型涉及激光闪光实验中的实际热脉冲形状。推导了新的热扩散公式,用于处理均质样品或包含两层不同材料的异质样品的任意脉冲形状。提出的数值实验证实了新公式的准确性,并演示了如何将其应用于由激光闪光实验产生的各种实验数据。 (C)2019 Elsevier Ltd.保留所有权利。

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