飞秒激光加热多层金属薄膜时非傅立叶热传导的热应力

S. Bag, M. Amin
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引用次数: 0

摘要

本文研究了金属薄膜在超短激光加热下的变形行为。预测了100纳米单层或多层薄膜的静态热弹性行为。利用双相滞后非傅立叶热传导模型估计了温度分布。单脉冲后最高温度达到730k。利用该脉冲激光的温度分布计算了系统势能最小化后的弹性应力和变形场。在本工作中,提出了基于双相位滞后效应的三维有限元耦合热弹性模型的仿真方法。超短脉冲激光瞬态温度分布的实验基础是极其困难或几乎不可能的,模型结果已与文献报道的热结果进行了验证。由于脉冲激光源的温度分布随时间变化,应力分析采用增量模式。因此,建立了一个在瞬态问题的每个时间步热分析和力学分析之间同步的顺序耦合热-力模型。最大等效应力达到0.3 GPa。数值结果表明,预测的热应力可能超过材料的抗拉强度,导致薄膜开裂或损坏。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Stress Associated With Non-Fourier Heat Conduction in Femtosecond Laser Heating of Multilayer Metallic Films
In the present work, the deformation behavior in metallic film subjected to ultra-short laser heating is investigated. Static thermo-elastic behavior is predicted for 100 nm thin film of either single layer or multiple layers. The temperature distribution is estimated from dual-phase lag non-Fourier heat conduction model. The maximum temperature after single pulse is achieved 730 K. The temperature profile for this pulse laser is used to compute elastic stress and distortion field following the minimization of potential energy of the system. In the present work, the simulation has been proposed by developing 3D finite element based coupled thermo-elastic model using dual phase lag effect. The experimental basis of transient temperature distribution in ultra-short pulse laser is extremely difficult or nearly impossible, the model results have been validated with literature reported thermal results. Since the temperature distribution due to pulse laser source varies with time, the stress analysis is performed in incremental mode. Hence, a sequentially coupled thermo-mechanical model is developed that is synchronized between thermal and mechanical analysis in each time steps of transient problem. The maximum equivalent stress is achieved 0.3 GPa. Numerical results show that the predicted thermal stress may exceeds the tensile strength of the material and may lead to crack or damage the thin film.
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