Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process
Liquid metal cooling (LMC) process as a powerful directional solidification (DS) technique is prospectively used to manufacture single crystal (SC) turbine blades. An understanding of the temperature distribution and microstructure evolution in LMC process is required in order to improve the propert...
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doaj-1bb27100ede544189613c220b4aa09652020-11-24T21:09:32ZengElsevierProgress in Natural Science: Materials International1002-00712018-02-012817884Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling processXuewei Yan0Hang Zhang1Ning Tang2Changbo Sun3Qingyan Xu4Baicheng Liu5Key Laboratory for Advanced Materials Processing Technology, MoE, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaSchool of Mechanical Engineering, Xi’an Jiao Tong University, State Key Laboratory of Manufacturing System Engineering, Xi’an 710049, ChinaSUVAST Special Alloy Technology Co., LTD, Wuxi 214000, ChinaShenyang Aero Engine Precision Casting Co., LTD, Shenyang 110043, ChinaKey Laboratory for Advanced Materials Processing Technology, MoE, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China; Corresponding author.Key Laboratory for Advanced Materials Processing Technology, MoE, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaLiquid metal cooling (LMC) process as a powerful directional solidification (DS) technique is prospectively used to manufacture single crystal (SC) turbine blades. An understanding of the temperature distribution and microstructure evolution in LMC process is required in order to improve the properties of the blades. For this reason, a multi-scale model coupling with the temperature field, grain growth and solute diffusion was established. The temperature distribution and mushy zone evolution of the hollow blade was simulated and discussed. According to the simulation results, the mushy zone might be convex and ahead of the ceramic beads at a lower withdrawal rate, while it will be concave and laggard at a higher withdrawal rate, and a uniform and horizontal mushy zone will be formed at a medium withdrawal rate. Grain growth of the blade at different withdrawal rates was also investigated. Single crystal structures were all selected out at three different withdrawal rates. Moreover, mis-orientation of the grains at 8 mm/min reached ~30°, while it was ~5° and ~15° at 10 mm/min and 12 mm/min, respectively. The model for predicting dendritic morphology was verified by corresponding experiment. Large scale for 2D dendritic distribution in the whole sections was investigated by experiment and simulation, and they presented a well agreement with each other. Keywords: Hollow blade, Single crystal, Multi-scale simulation, Liquid metal coolinghttp://www.sciencedirect.com/science/article/pii/S1002007117307177 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xuewei Yan Hang Zhang Ning Tang Changbo Sun Qingyan Xu Baicheng Liu |
spellingShingle |
Xuewei Yan Hang Zhang Ning Tang Changbo Sun Qingyan Xu Baicheng Liu Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process Progress in Natural Science: Materials International |
author_facet |
Xuewei Yan Hang Zhang Ning Tang Changbo Sun Qingyan Xu Baicheng Liu |
author_sort |
Xuewei Yan |
title |
Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process |
title_short |
Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process |
title_full |
Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process |
title_fullStr |
Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process |
title_full_unstemmed |
Multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process |
title_sort |
multi-scale simulation of single crystal hollow turbine blade manufactured by liquid metal cooling process |
publisher |
Elsevier |
series |
Progress in Natural Science: Materials International |
issn |
1002-0071 |
publishDate |
2018-02-01 |
description |
Liquid metal cooling (LMC) process as a powerful directional solidification (DS) technique is prospectively used to manufacture single crystal (SC) turbine blades. An understanding of the temperature distribution and microstructure evolution in LMC process is required in order to improve the properties of the blades. For this reason, a multi-scale model coupling with the temperature field, grain growth and solute diffusion was established. The temperature distribution and mushy zone evolution of the hollow blade was simulated and discussed. According to the simulation results, the mushy zone might be convex and ahead of the ceramic beads at a lower withdrawal rate, while it will be concave and laggard at a higher withdrawal rate, and a uniform and horizontal mushy zone will be formed at a medium withdrawal rate. Grain growth of the blade at different withdrawal rates was also investigated. Single crystal structures were all selected out at three different withdrawal rates. Moreover, mis-orientation of the grains at 8 mm/min reached ~30°, while it was ~5° and ~15° at 10 mm/min and 12 mm/min, respectively. The model for predicting dendritic morphology was verified by corresponding experiment. Large scale for 2D dendritic distribution in the whole sections was investigated by experiment and simulation, and they presented a well agreement with each other. Keywords: Hollow blade, Single crystal, Multi-scale simulation, Liquid metal cooling |
url |
http://www.sciencedirect.com/science/article/pii/S1002007117307177 |
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