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首页> 外文期刊>Optics & Laser Technology >Analytical solution of dual-phase-lag based heat transfer model in ultrashort pulse laser heating of A6061 and Cu3Zn2 nano film
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Analytical solution of dual-phase-lag based heat transfer model in ultrashort pulse laser heating of A6061 and Cu3Zn2 nano film

机译:A6061和Cu3ZN2纳米膜超短脉冲激光加热中双相滞后型传热模型的分析解

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The dual-phase-lag model provides the best performance among many existing non-Fourier models and it is particularly more suitable for a short duration of heating. The present literature survey certifies the availability of very few research papers specifically on the development of an exact analytical solution of the dual-phase-lag model illustrating the thermal analysis of ultrashort pulsed laser heating. To address such issues, the present work is intended to develop an exact solution of the thermal response based on the dual-phase-lag heat conduction model utilized for the femtosecond laser heating of nanofilm. The corresponding solution has been derived by a hybrid application of the Duhamel's theorem and the finite integral transform approach. A comparative thermal analysis has been depicted for the laser heating of 5 nm thin A6061 and Cu3Zn2 nanofilm and the necessity of non-Fourier analysis over the Fourier's model has been justified. Existing research works are mostly based on gold and chromium nanofilm. As multi-component microstructures of Cu and Al are scientifically proved to be excellent metallic properties (magnetic and optical) and exhibit strong response during energy driven-chemical reactions, the present analysis is focused on these two materials for the femtosecond laser irradiation. In the present analysis, optical properties (absorptivity and reflectivity) of substrate material have been taken into account to develop a better and realistic analytical model than the existing models. The research output notifies that at 0.1 ps of the laser pulse and 100 J m(-2) of the laser intensity, developed temperature history reaches the melting point temperature of both the materials in combination with other thermophysical properties. The mathematical modeling also provides the appropriate information about the selection of thermal relaxation time lags for respective materials and this also justifies the experimental observation of relaxation time lags as reported in the literature. The thermal response has been captured for both A6061 and Cu3Zn2 material along the various depths of the nanofilm to evolve the irradiation capacity of the pulsed femtosecond laser source. The present research output is well validated through numerical and experimental research works of existing literature with a negligible variation. The inclusion of optical properties of materials in the present research work plays an important role as it is noticed that the maximum deviation of the temperature difference between with and without optical properties is evidenced as 38.86% and 57.70% for A6061 and Cu3Zn2 nanofilms, respectively.
机译:双相滞后模型提供了许多现有的非傅立叶型号的最佳性能,并且特别适合加热持续时间。本文的文献测量专门认真地证明了很少有研究论文的可用性,具体就是在双相滞后模型的精确分析解的开发中,说明了超短脉冲激光加热的热分析的精确分析解。为了解决此类问题,本作本作的工作旨在基于用于纳米膜的飞秒激光加热的双相滞后导热模型来开发热响应的精确解决方案。相应的解决方案是由Duhamel定理的混合应用和有限的积分变换方法来源的。对比较热分析已经描绘了5nm薄A6061和Cu3Zn2纳米丝的激光加热,并且对傅里叶模型的非傅立叶分析的必要性一直是合理的。现有的研究作品主要基于黄金和铬菊粉。由于Cu和Al的多组分微结构进行科学证实是优异的金属性质(磁性和光学)并且在能量驱动 - 化学反应期间表现出强烈的反应,本分析集中在这两种材料上用于飞秒激光照射。在本分析中,已经考虑了基板材料的光学性质(吸收率和反射率),以发展比现有模型更好,更真实的分析模型。研究输出通知激光脉冲的0.1 ps和100j m(-2)的激光强度,开发的温度历史与其他热物理性质结合达到了两种材料的熔点温度。数学建模还提供关于各种材料选择热弛豫时间滞后的适当信息,这也证明了在文献中报道的放松时间滞后的实验观察。沿纳米丝的各种深度沿纳米丝的各种深度捕获热响应,以演变脉冲飞秒激光源的照射容量。本研究产出通过现有文献的数值和实验研究作品验证,变体可忽略不计。在本研究工作中包含材料的光学性质起着重要作用,因为它被注意到,对于A6061和Cu3Zn2纳米丝的最大温差与光学性能之间的最大偏差分别被证明为38.86%和57.70%。

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