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首页> 外文期刊>Comptes rendus. Mecanique >Computational modeling of heat transfer and sintering behavior during direct metal laser sintering of AlSi10Mg alloy powder
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Computational modeling of heat transfer and sintering behavior during direct metal laser sintering of AlSi10Mg alloy powder

机译:Alsi10mg合金粉末直接金属激光烧结过程中传热和烧结行为的计算建模

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摘要

Direct Metal Laser Sintering (DMLS) is one of the leading additive manufacturing processes, which produces complex metallic parts directly from the powder. One of the major problems of this rapid manufacturing process is an inhomogeneous temperature distribution, which leads to residual stress in the build part. Thus, temperature analyses must be performed, to better understand the temperature distribution and sintering behavior of the powder bed with a different laser recipe. In this study, a comprehensive three-dimensional numerical model was developed to understand the temperature dis(t)ribution during direct metal laser sintering of AlSi10Mg alloy powder. The computer simulation was carried out in ANSYS 17.0 platform. Further, the effect of process parameters such as laser power and scan speed on the temperature distribution and sintering behavior were studied. From the simulation results, it was found that, when the laser power increased from 70 W to 190 W, the maximum temperature of the molten pool increased from 731 degrees C to 2672 degrees C, and the molten pool length changed from 0.286 mm to 2.167 mm. A reverse phenomenon was observed with an increase in scan speed. The sintering depth of the powder layer increases significantly from 0.061 mm to 0.872 mm with increasing the applied laser power, but decreased from 0.973 mm to 0.209 mm as a higher scan speed was applied. The developed model helps to optimize the powder layer thickness and minimize the wastage of excess powders during the sintering process. (C) 2018 Academie des sciences. Published by Elsevier Masson SAS. All rights reserved.
机译:直接金属激光烧结(DML)是主要的添加剂制造方法之一,其直接从粉末产生复合的金属部件。这种快速制造过程的主要问题之一是不均匀的温度分布,这导致构建部分中的残余应力。因此,必须进行温度分析,以更好地理解粉末床的温度分布和烧结行为与不同的激光配方。在这项研究中,开发了一种综合的三维数值模型,以了解Ali10mg合金粉末直接金属激光烧结期间的温度Dis(T)核料。计算机仿真在ANSYS 17.0平台中进行。此外,研究了过程参数如激光功率和扫描速度对温度分布和烧结行为的影响。从模拟结果中发现,当激光功率从70W增加到190W时,熔池的最高温度从731摄氏度增加到2672℃,熔池长度从0.286 mm变为2.167毫米。通过增加扫描速度来观察到反向现象。随着施加的激光功率增加,粉末层的烧结深度随比0.061mm至0.872mm增加,但施加了较高的扫描速度,从0.973mm达0.209mm的减少。开发的模型有助于优化粉末层厚度,并在烧结过程中最小化过量粉末的浪费。 (c)2018年Academie Des Sciences。由Elsevier Masson SA出版。版权所有。

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