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工艺参数和材料特性对微通道激光微加工的影响。

Effect of Process Parameters and Material Properties on Laser Micromachining of Microchannels.

作者信息

Benton Matthew, Hossan Mohammad Robiul, Konari Prashanth Reddy, Gamagedara Sanjeewa

机构信息

Department of Engineering and Physics, University of Central Oklahoma, Edmond, OK 73034, USA.

Center for Interdisciplinary Biomedical Education and Research, University of Central Oklahoma, Edmond, OK 73034, USA.

出版信息

Micromachines (Basel). 2019 Feb 14;10(2):123. doi: 10.3390/mi10020123.

Abstract

Laser micromachining has emerged as a promising technique for mass production of microfluidic devices. However, control and optimization of process parameters, and design of substrate materials are still ongoing challenges for the widespread application of laser micromachining. This article reports a systematic study on the effect of laser system parameters and thermo-physical properties of substrate materials on laser micromachining. Three dimensional transient heat conduction equation with a Gaussian laser heat source was solved using finite element based Multiphysics software COMSOL 5.2a. Large heat convection coefficients were used to consider the rapid phase transition of the material during the laser treatment. The depth of the laser cut was measured by removing material at a pre-set temperature. The grid independent analysis was performed for ensuring the accuracy of the model. The results show that laser power and scanning speed have a strong effect on the channel depth, while the level of focus of the laser beam contributes in determining both the depth and width of the channel. Higher thermal conductivity results deeper in cuts, in contrast the higher specific heat produces shallower channels for a given condition. These findings can help in designing and optimizing process parameters for laser micromachining of microfluidic devices.

摘要

激光微加工已成为大规模生产微流控器件的一项很有前景的技术。然而,工艺参数的控制与优化以及衬底材料的设计仍是激光微加工广泛应用面临的挑战。本文报道了一项关于激光系统参数和衬底材料热物理性质对激光微加工影响的系统研究。使用基于有限元的多物理场软件COMSOL 5.2a求解了带有高斯激光热源的三维瞬态热传导方程。采用较大的热对流系数来考虑激光处理过程中材料的快速相变。通过在预设温度下去除材料来测量激光切割的深度。进行了网格无关性分析以确保模型的准确性。结果表明,激光功率和扫描速度对通道深度有很大影响,而激光束的聚焦程度对通道的深度和宽度都有影响。较高的热导率会使切割更深,相比之下,在给定条件下,较高的比热容会使通道更浅。这些发现有助于设计和优化微流控器件激光微加工的工艺参数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/de84/6413122/e66ee116a0f0/micromachines-10-00123-g001.jpg

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