Numerical Simulation of Ablative Damage in Gas-Assisted Laser Processing of Wood

Forests Pub Date : 2024-07-25 DOI:10.3390/f15081296
Qingwei Liu, Lijia Ning, Chunmei Yang, Fucheng Wang, Tianxiang Liu
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Abstract

To reduce defects in wood laser processing, this study establishes a multi-field coupling model that reflects the coupling relationship between laser energy, auxiliary gas, and slit quality. It reveals the temperature field distribution and heat transfer during this process at a macroscopic level. Using the COMSOL Multiphysics 5.6 software to simulate laser processing with or without helium gas assistance, we show that helium-assisted laser processing positively affects the quality of wood processing. We further researched the influence of different laser powers and spot radii on ablation damage volume and gasification volume, and the results indicate that the adopted model effectively simulates the influence of laser power and auxiliary gas on laser cutting ability, accurately reflecting the impact of different process parameters on cutting depth and kerf width. The accuracy and effectiveness of this model were validated through comparison with experimental data. This research enhances process reliability and economic benefits through numerical simulation and prediction, expands theoretical research and engineering applications in the laser processing field, and optimizes and innovates wood processing technology. It provides a promising method for enhancing the added value of wood products and efficiently using wood resources.
气体辅助激光加工木材过程中烧蚀损伤的数值模拟
为了减少木材激光加工中的缺陷,本研究建立了一个多场耦合模型,反映了激光能量、辅助气体和狭缝质量之间的耦合关系。该模型从宏观上揭示了加工过程中的温度场分布和热传递。我们使用 COMSOL Multiphysics 5.6 软件模拟了有无氦气辅助的激光加工过程,结果表明氦气辅助激光加工对木材加工质量有积极影响。我们进一步研究了不同激光功率和光斑半径对烧蚀损伤体积和气化体积的影响,结果表明所采用的模型有效地模拟了激光功率和辅助气体对激光切割能力的影响,准确地反映了不同工艺参数对切割深度和切口宽度的影响。通过与实验数据的对比,验证了该模型的准确性和有效性。该研究通过数值模拟和预测,提高了工艺可靠性和经济效益,拓展了激光加工领域的理论研究和工程应用,优化和创新了木材加工技术。它为提高木制品的附加值和有效利用木材资源提供了一种可行的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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