The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder
In the selective laser melting process, metal powder melted by the laser heat source generates large instantaneous energy, resulting in transient high temperature and complex stress distribution. Different temperature gradients and anisotropy finally determine the microstructure after melting and af...
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doaj-2182fae2e45441668d67591e4f1952752021-03-29T23:02:02ZengMDPI AGMaterials1996-19442021-03-01141673167310.3390/ma14071673The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy PowderXianyin Duan0Xinyue Chen1Kunpeng Zhu2Tao Long3Shiyang Huang4Fuh Y H Jerry5Key Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430000, ChinaKey Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430000, ChinaInstitute of Advanced Manufacturing Technology, Chinese Academy of Sciences, Changzhou 213000, ChinaKey Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430000, ChinaKey Laboratory of Metallurgical Equipment and Control Technology, Ministry of Education, Wuhan University of Science and Technology, Wuhan 430000, ChinaSuzhou Research Institute, National University of Singapore (NUS), Suzhou 234000, ChinaIn the selective laser melting process, metal powder melted by the laser heat source generates large instantaneous energy, resulting in transient high temperature and complex stress distribution. Different temperature gradients and anisotropy finally determine the microstructure after melting and affect the build quality and mechanical properties as a result. It is important to monitor and investigate the temperature and stress distribution evolution. Due to the difficulties in online monitoring, finite element methods (FEM) are used to simulate and predict the building process in real time. In this paper, a thermo-mechanical coupled FEM model is developed to predict the thermal behaviors of the melt pool by using Gaussian moving heat source. The model could simulate the shapes of the melt pool, distributions of temperature and stress under different process parameters through FEM. The influences of scanning speed, laser power, and spot diameter on the distribution of the melt pool temperature and stress are investigated in the SLM process of Al6063, which is widely applied in aerospace, transportation, construction and other fields due to its good corrosion resistance, sufficient strength and excellent process performance. Based on transient analysis, the relationships are identified among these process parameters and the melt pool morphology, distribution of temperature and thermal stress. It is shown that the maximum temperature at the center point of the scanning tracks will gradually increase with the increment of laser power under the effect of thermal accumulation and heat conduction, as the preceded scanning will preheat the subsequent scanning tracks. It is recommended that the parameters with optimized laser power (<i>P </i>= 175–200 W), scanning speed (<i>v </i>= 200–300 mm/s) and spot diameter (<i>D </i>= 0.1–0.15 mm) of aluminum alloy powder can produce a high building quality of the SLM parts under the pre-set conditions.https://www.mdpi.com/1996-1944/14/7/1673transient temperature fieldselective laser meltingfinite elementstress and deformation |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xianyin Duan Xinyue Chen Kunpeng Zhu Tao Long Shiyang Huang Fuh Y H Jerry |
spellingShingle |
Xianyin Duan Xinyue Chen Kunpeng Zhu Tao Long Shiyang Huang Fuh Y H Jerry The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder Materials transient temperature field selective laser melting finite element stress and deformation |
author_facet |
Xianyin Duan Xinyue Chen Kunpeng Zhu Tao Long Shiyang Huang Fuh Y H Jerry |
author_sort |
Xianyin Duan |
title |
The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder |
title_short |
The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder |
title_full |
The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder |
title_fullStr |
The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder |
title_full_unstemmed |
The Thermo-Mechanical Coupling Effect in Selective Laser Melting of Aluminum Alloy Powder |
title_sort |
thermo-mechanical coupling effect in selective laser melting of aluminum alloy powder |
publisher |
MDPI AG |
series |
Materials |
issn |
1996-1944 |
publishDate |
2021-03-01 |
description |
In the selective laser melting process, metal powder melted by the laser heat source generates large instantaneous energy, resulting in transient high temperature and complex stress distribution. Different temperature gradients and anisotropy finally determine the microstructure after melting and affect the build quality and mechanical properties as a result. It is important to monitor and investigate the temperature and stress distribution evolution. Due to the difficulties in online monitoring, finite element methods (FEM) are used to simulate and predict the building process in real time. In this paper, a thermo-mechanical coupled FEM model is developed to predict the thermal behaviors of the melt pool by using Gaussian moving heat source. The model could simulate the shapes of the melt pool, distributions of temperature and stress under different process parameters through FEM. The influences of scanning speed, laser power, and spot diameter on the distribution of the melt pool temperature and stress are investigated in the SLM process of Al6063, which is widely applied in aerospace, transportation, construction and other fields due to its good corrosion resistance, sufficient strength and excellent process performance. Based on transient analysis, the relationships are identified among these process parameters and the melt pool morphology, distribution of temperature and thermal stress. It is shown that the maximum temperature at the center point of the scanning tracks will gradually increase with the increment of laser power under the effect of thermal accumulation and heat conduction, as the preceded scanning will preheat the subsequent scanning tracks. It is recommended that the parameters with optimized laser power (<i>P </i>= 175–200 W), scanning speed (<i>v </i>= 200–300 mm/s) and spot diameter (<i>D </i>= 0.1–0.15 mm) of aluminum alloy powder can produce a high building quality of the SLM parts under the pre-set conditions. |
topic |
transient temperature field selective laser melting finite element stress and deformation |
url |
https://www.mdpi.com/1996-1944/14/7/1673 |
work_keys_str_mv |
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