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首页> 外文期刊>International Journal of Heat and Mass Transfer >Time-fractional subdiffusion model for thin metal films under femtosecond laser pulses based on Caputo fractional derivative to examine anomalous diffusion process
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Time-fractional subdiffusion model for thin metal films under femtosecond laser pulses based on Caputo fractional derivative to examine anomalous diffusion process

机译:基于Caputo分数衍生物的飞秒激光脉冲下薄金属膜的时间分数介质模型研究异常扩散过程

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摘要

In this paper, the non-Fourier effects are examined in thin metal films exposed to femtosecond laser pulses. For the first time, the time-fractional subdiffusion model is presented based on the Caputo fractional derivative to examine the anomalous diffusion process in nano-scale metal films. The fractional heat conduction equation is solved numerically, using the finite difference method based on implicit scheme and the numerical results are compared to experimental data. The comparison implies that the numerical results well coincide with experimental data, proving the accuracy and suitability of fractional model to capture thermal behaviors of thin metal films heated by short-pulse laser. Furthermore, the results of time-fractional model are compared to other models including parabolic and hyperbolic two-step models. Having compared, one can be found is that the fractional model is more reliable than other models, because its results are well matched with experimental data. The use of Fourier's law in parabolic and hyperbolic two-step model leads to deviation from experimental data which can be addressed upon applying the proposed time-fractional model in this work. Moreover, the presented time-fractional model can be effectively utilized for studying the heat transport in thin metal films under laser pulses as well as the laser heating process and its applications in engineering. Ultimately, the effect of changes in various parameters such as order of fractional derivative, laser pulse duration, metal materials (gold and chromium), gold film thickness, relaxation time and absorption depth of laser pulses are investigated on temperature response of thin metal films.
机译:在本文中,在暴露于飞秒激光脉冲的薄金属膜中检查非傅立叶效应。首次,基于Caputo分数衍生物来呈现时间分数源区模型,以检查纳米级金属膜中的异常扩散过程。使用基于隐性方案的有限差分方法,使用基于隐式方案的有限差分方法来数量求解,将数值结果与实验数据进行数值。比较意味着数值结果与实验数据相一致,证明了分数模型的准确性和适合性,以捕获短脉冲激光加热的薄金属膜的热行为。此外,将时间分数模型的结果与其他模型进行比较,包括抛物线和双曲两步模型。相比之下,可以找到一个分数模型比其他模型更可靠,因为它的结果与实验数据很好。傅立叶定律在抛物线和双曲线两步模型中的使用导致与实验数据的偏差偏离,这可以在应用本作所提出的时分模型时解决。此外,可以有效地利用所提出的时间分数模型来研究激光脉冲下的薄金属膜中的热传输以及激光加热过程及其在工程中的应用。最终,对薄金属膜的温度响应,研究了各种参数(如分数衍生物,激光脉冲持续时间,金属材料(金和铬),金膜厚度,弛豫时间和吸收深度的各种参数的影响。

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