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ABSORPTION AND TEMPERATURE DISTRIBUTION DURING ULTRAFAST LASER MICROCUTTING OF POLYMERIC MATERIALS: Paper (Macro 704)

机译:聚合物材料超快激光微加工过程中的吸收和温度分布:纸张(宏704)

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摘要

Material processing by ultrafast lasers is an attractive technology for high-precision fabrication, such as cutting, drilling, and surface modification, of wide range of material, including dielectrics, semiconductor, metals and polymer composites. However, it is still challenging to apply ultrafast laser processing in many applications because some key processes, such as absorption and heat accumulation, are not fully understood, especially for polymeric materials which have low melting temperature, therefore more vulnerable to thermal damage. In this study, an analytical solution to a transient, two-dimensional (2D) thermal model is derived using Duhamel's theorem and the Hankel transform method to understand the effect of laser parameters during ultrafast laser interaction with polypropylene (PP), which is a material widely used in many industrial applications. To correlate with theoretical calculation, laser-cutting experiments are carried out on PP sheets. This study found that the total energy absorbed in the material and the laser intensity are two important factors to estimate the laser processing performance. In addition, time-resolved measurements are performed by using fast photodiodes and an oscilloscope to understand the dynamics of ultrafast laser interaction during the laser cutting process. Transmitted and reflected signals are monitored and analyzed to extract information on nonlinearity and absorption coefficient.
机译:超快激光器的材料加工是一种高精度制造的有吸引力的技术,例如切割,钻孔和表面改性,包括宽范围的材料,包括电介质,半导体,金属和聚合物复合材料。然而,在许多应用中应用超细激光加工仍然具有挑战性,因为一些关键方法,例如吸收和热量,特别是对于具有低熔化温度的聚合物材料,因此更容易受到热损坏的影响。在本研究中,通过Duhamel定理和Hankel变换方法导出了瞬态,二维(2D)热模型的分析解决方法,以了解超快激光相互作用与聚丙烯(PP)的激光参数的影响,这是一种材料广泛用于许多工业应用。为了与理论计算相关,在PP板上进行激光切割实验。本研究发现,材料中吸收的总能量和激光强度是估计激光加工性能的两个重要因素。另外,通过使用快速光电二极管和示波器来执行时间分辨的测量,以了解激光切割过程中超氮激光相互作用的动态。监视和分析发送和反射信号以提取有关非线性和吸收系数的信息。

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