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Numerical simulation of melt ejection during the laser drilling process on aluminum alloy by millisecond pulsed laser

机译:用毫秒脉冲激光铝合金激光钻孔过程中熔喷过程的数值模拟

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In this paper,established a physical model to simulate the melt ejection induced by millisecond pulsed laser on aluminum alloy and use the finite element method to simulate the whole process. A semi-infinite axisymmetric model was established according to the experiment and the analytical solution of temperature in a solid phase was derived based on the thermal conduction equation. Mean while, by assuming that material was removed from the hole once it was melted, the function describing the hole's shape was obtained with the energy balance theory. This simulation is based on the interaction between single pulsed laser with different pulse-width and different peak energy and aluminum alloy material, the result of numerical simulation is that the hole's depth increases with the increase of laser energy and the hole's depth increases with the increase of laser pulse width, the keyhole depth is linearly increased with the increase of laser energy, respectively; the growth of the keyhole radius is in the trend to be gentle.By comparing the theoretical simulation data and the actual test data, we discover that: we discover that: the relative error between the theoretical values and the actual values is about 8.8%, the theoretical simulation curve is well consistent with the actual experimental curve. This research may provide the theoretical references to the understanding of the interaction between millisecond pulsed laser and many kinds of materials, as well as be beneficial to the application of the laser materials processing and military field.
机译:本文建立了一种物理模型,以模拟铝合金毫秒脉冲激光诱导的熔体喷射,并使用有限元法模拟整个过程。根据实验建立了半无限轴对称模型,基于热导通等式导出固相中温度的分析溶液。均值,而通过假设一旦从孔熔化中从孔中除去材料,则通过能量平衡理论获得描述孔形状的功能。该模拟基于单脉冲激光与不同脉冲宽度和不同峰值能量和铝合金材料之间的相互作用,数值模拟的结果是孔的深度随着激光能量的增加而增加,孔的深度随着增加而增加激光脉冲宽度,随着激光能量的增加,锁孔深度分别是线性的增加;钥匙孔半径的生长是趋势,趋势是温柔的。比较理论模拟数据和实际测试数据,我们发现:我们发现:理论值与实际值之间的相对误差约为8.8%,理论模拟曲线与实际实验曲线均匀。该研究可以提供理论参考对毫秒脉冲激光和多种材料之间的相互作用的理解,以及有利于激光材料加工和军事领域的应用。

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