Mihailescu Cristian N, Mahmood Muhammad Arif, Mihailescu Natalia, Oane Mihai
Laser Department, National Institute for Laser, Plasma and Radiation Physics (INFLPR), 077125 Magurele, Romania.
Mechanical Engineering Program, Texas A&M University at Qatar, Doha P.O. Box 23874, Qatar.
Materials (Basel). 2022 Jul 19;15(14):5010. doi: 10.3390/ma15145010.
Recently, ultrafast lasers have been developed and potentially become a point of interest worldwide, as their interaction with matter is yet unknown and can be mediated by new physical mechanisms. Real-time experimentation requires enormous costs, and there is therefore a need to develop computational models for this domain. By keeping in view this idea, a non-Fourier heat equation has solved the case of ultrafast laser-material interaction. Initial and boundary conditions were considered, and a one-dimensional mathematical model was presented. The simulations were compared with the experimental results for ultrashort laser-metallic sample interaction, and a close correlation was proven. It was found that the coupling of electron-phonon becomes "zero" due to short laser-material interaction time. The propagation of thermal waves was identified due to non-Fourier heat implementation. When the pulse duration increases, the variation in the thermal distribution becomes trivial due to an inverse correlation between the pulse duration and total energy within the pulse. When the laser-material interaction time decreases from fs to as, the generation of thermal waves increases and the powerful laser intensity acts as a shock wave during laser-material interaction, which causes a higher intensity of the thermal wave.
最近,超快激光已被研发出来,并有可能成为全球关注的焦点,因为它们与物质的相互作用尚不明确,且可能由新的物理机制介导。实时实验成本高昂,因此有必要为该领域开发计算模型。基于这一想法,一个非傅里叶热方程解决了超快激光与材料相互作用的问题。考虑了初始条件和边界条件,并提出了一个一维数学模型。将模拟结果与超短激光与金属样品相互作用的实验结果进行了比较,结果证明两者具有密切的相关性。研究发现,由于激光与材料的相互作用时间较短,电子-声子耦合变为“零”。由于采用了非傅里叶热模型,确定了热波的传播。当脉冲持续时间增加时,由于脉冲持续时间与脉冲内总能量呈反比关系,热分布的变化变得微不足道。当激光与材料的相互作用时间从飞秒降至阿秒时,热波的产生增加,强大的激光强度在激光与材料相互作用期间起到冲击波的作用,从而导致更高强度的热波。