首页> 外文会议>Advances in Electronic Packaging 2005 pt.A >AN EFFICIENT NUMERICAL PROCEDURE FOR SOLVING A MICROSCALE HEAT TRANSPORT EQUATION DURING FEMTOSECOND LASER HEATING OF NANOSCALE METAL FILMS
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AN EFFICIENT NUMERICAL PROCEDURE FOR SOLVING A MICROSCALE HEAT TRANSPORT EQUATION DURING FEMTOSECOND LASER HEATING OF NANOSCALE METAL FILMS

机译:纳米薄膜飞秒激光加热过程中求解微观传热方程的高效数值方法。

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摘要

An alternative discretization and solution procedure is developed for implicitly solving a microscale heat transport equation during femtosecond laser heating of nanoscale metal films. The proposed numerical technique directly solves a single partial differential equation, unlike other techniques available in the literature which split the equation into a system of two equations and then apply discretization. It is shown by von Neumann stability analysis that the proposed numerical method is unconditionally stable. The numerical technique is then extended to three space dimensions, and an overall procedure for computing the transient temperature distribution during short-pulse laser heating of thin metal films is presented. Douglas-Gunn time-splitting and delta-form Douglas-Gunn time-splitting methods are employed to solve the discretized 3-D equations; a simple argument for stability is given for the split equation. The performance of the proposed numerical scheme will be compared with the numerical techniques available in the literature and it is shown that the new formulation is comparably accurate and significantly more efficient. Finally, it is shown that numerical predictions agree with available experimental data during sub-picosecond laser heating.
机译:开发了一种替代离散化和求解程序,用于在飞秒激光加热纳米级金属膜的过程中隐式求解微尺度热传递方程。所提出的数值技术直接解决了单个偏微分方程,这与文献中的其他技术不同,该技术将方程分为两个方程组,然后进行离散化。冯·诺依曼稳定性分析表明,所提出的数值方法是无条件稳定的。然后将数值技术扩展到三个空间维度,并提出了计算短脉冲激光加热金属薄膜期间的瞬态温度分布的总体过程。 Douglas-Gunn时间分解和三角形式的Douglas-Gunn时间分解方法用于求解离散的3-D方程。分裂方程给出了一个简单的稳定性论证。拟议的数值方案的性能将与文献中可用的数值技术进行比较,结果表明,新的公式相对准确,效率更高。最后,表明在亚皮秒级激光加热期间,数值预测与可用的实验数据一致。

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