Rahaman Arifur, Kar Aravinda, Yu Xiaoming
Opt Express. 2019 Feb 18;27(4):5764-5783. doi: 10.1364/OE.27.005764.
Ultrafast lasers have been used for high-precision processing of a wide range of materials, including dielectrics, semiconductors, metals and polymer composites, enabling numerous applications ranging from micromachining to photonics and life sciences. To make ultrafast laser materials processing compatible with the scale and throughput needed for industrial use, it is a common practice to run the laser at a high repetition rate and hence high average power. However, heat accumulation under such processing conditions will deteriorate the processing quality, especially for polymers, which typically have a low melting temperature. In this paper, an analytical solution to a transient, two-dimensional thermal model is developed using Duhamel's theorem and the Hankel transform. This solution is used to understand the effect of laser parameters on ultrafast laser processing of polypropylene (PP). Laser cutting experiments are carried out on PP sheets to correlate with the theoretical calculation. This study shows that, in laser cutting, the total energy absorbed in the material and the intensity are two important figures of merit to predict the cutting performance. Heat accumulation is observed at low scanning speeds and high repetition rates, leading to significant heat-affected zone and even burning of the material, which is supported by experimental data and modelling results. It is found that heat accumulation can be avoided by a proper choice of the processing condition.
超快激光已被用于对包括电介质、半导体、金属和聚合物复合材料在内的多种材料进行高精度加工,从而实现了从微加工到光子学和生命科学等众多应用。为了使超快激光材料加工与工业应用所需的规模和产量相兼容,通常会以高重复频率运行激光,从而获得高平均功率。然而,在这种加工条件下的热量积累会降低加工质量,尤其是对于通常具有低熔点的聚合物而言。本文利用杜哈梅定理和汉克尔变换,开发了一种瞬态二维热模型的解析解。该解用于理解激光参数对聚丙烯(PP)超快激光加工的影响。在PP板材上进行激光切割实验,以与理论计算相关联。本研究表明,在激光切割中,材料吸收的总能量和强度是预测切割性能的两个重要指标。在低扫描速度和高重复频率下观察到热量积累,导致显著的热影响区甚至材料燃烧,这得到了实验数据和建模结果的支持。研究发现,通过适当选择加工条件可以避免热量积累。