Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting
Selective laser surface melting, which brings together the bionic theory and the laser process, is an effective way to enhance the thermal fatigue behavior of materials. In this study, in order to examine the relationship between the mechanical properties and thermal fatigue behavior of materials pr...
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doaj-667556f2469b40cca7b39b40b57c67732020-11-25T00:22:24ZengMDPI AGMetals2075-47012019-07-019777310.3390/met9070773met9070773Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface MeltingChao Meng0Chun Wu1Xuelei Wang2Jingyue Li3Rui Cao4School of Materials Science and Engineering, Liaoning Technical University, Fuxin 123000, ChinaSchool of Materials Science and Engineering, Liaoning Technical University, Fuxin 123000, ChinaSchool of Materials Science and Engineering, Liaoning Technical University, Fuxin 123000, ChinaSchool of Materials Science and Engineering, Liaoning Technical University, Fuxin 123000, ChinaSchool of Materials Science and Engineering, Liaoning Technical University, Fuxin 123000, ChinaSelective laser surface melting, which brings together the bionic theory and the laser process, is an effective way to enhance the thermal fatigue behavior of materials. In this study, in order to examine the relationship between the mechanical properties and thermal fatigue behavior of materials processed by selective laser surface melting, the tensile properties at room temperature and elevated temperature of treated specimens and untreated specimens after different numbers of thermal fatigue cycles were investigated and compared. Moreover, the microstructure evolution and the microhardness of the laser-affected zone were investigated after different numbers of thermal fatigue cycles. The results show that microhardness of the laser-melted zone gradually decreases with an increasing number of thermal fatigue cycles; the number of thermal fatigue cycles has little effect on the grain size in the laser-melted zone, and the percentage of low-angle grain boundaries decreases with an increasing number of thermal fatigue cycles. The strength of specimens gradually decreases, whereas the fracture elongation gradually increases with an increasing number of thermal fatigue cycles at room temperature and elevated temperature. In addition, the stress distribution on the specimen surface during tensile test was investigated using the finite element method, and the results indicate that the stress transfer exists between the laser-affected zone and the untreated zone.https://www.mdpi.com/2075-4701/9/7/773lasertensile propertiesmicrostructurefracturefinite element method |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Chao Meng Chun Wu Xuelei Wang Jingyue Li Rui Cao |
spellingShingle |
Chao Meng Chun Wu Xuelei Wang Jingyue Li Rui Cao Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting Metals laser tensile properties microstructure fracture finite element method |
author_facet |
Chao Meng Chun Wu Xuelei Wang Jingyue Li Rui Cao |
author_sort |
Chao Meng |
title |
Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting |
title_short |
Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting |
title_full |
Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting |
title_fullStr |
Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting |
title_full_unstemmed |
Effect of Thermal Fatigue on Microstructure and Mechanical Properties of H13 Tool Steel Processed by Selective Laser Surface Melting |
title_sort |
effect of thermal fatigue on microstructure and mechanical properties of h13 tool steel processed by selective laser surface melting |
publisher |
MDPI AG |
series |
Metals |
issn |
2075-4701 |
publishDate |
2019-07-01 |
description |
Selective laser surface melting, which brings together the bionic theory and the laser process, is an effective way to enhance the thermal fatigue behavior of materials. In this study, in order to examine the relationship between the mechanical properties and thermal fatigue behavior of materials processed by selective laser surface melting, the tensile properties at room temperature and elevated temperature of treated specimens and untreated specimens after different numbers of thermal fatigue cycles were investigated and compared. Moreover, the microstructure evolution and the microhardness of the laser-affected zone were investigated after different numbers of thermal fatigue cycles. The results show that microhardness of the laser-melted zone gradually decreases with an increasing number of thermal fatigue cycles; the number of thermal fatigue cycles has little effect on the grain size in the laser-melted zone, and the percentage of low-angle grain boundaries decreases with an increasing number of thermal fatigue cycles. The strength of specimens gradually decreases, whereas the fracture elongation gradually increases with an increasing number of thermal fatigue cycles at room temperature and elevated temperature. In addition, the stress distribution on the specimen surface during tensile test was investigated using the finite element method, and the results indicate that the stress transfer exists between the laser-affected zone and the untreated zone. |
topic |
laser tensile properties microstructure fracture finite element method |
url |
https://www.mdpi.com/2075-4701/9/7/773 |
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