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Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade

Single crystal superalloys are widely used in the manufacturing of turbine blades for aero-engines due to their superior performance at high temperatures. The directional solidification process is a key technology for producing single crystal turbine blades with excellent properties. In the directio...

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Autores principales: Xue, Yanpeng, Wang, Xiaoguang, Zhao, Jinqian, Shi, Zhenxue, Liu, Shizhong, Li, Jiarong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180312/
https://www.ncbi.nlm.nih.gov/pubmed/37176292
http://dx.doi.org/10.3390/ma16093409
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author Xue, Yanpeng
Wang, Xiaoguang
Zhao, Jinqian
Shi, Zhenxue
Liu, Shizhong
Li, Jiarong
author_facet Xue, Yanpeng
Wang, Xiaoguang
Zhao, Jinqian
Shi, Zhenxue
Liu, Shizhong
Li, Jiarong
author_sort Xue, Yanpeng
collection PubMed
description Single crystal superalloys are widely used in the manufacturing of turbine blades for aero-engines due to their superior performance at high temperatures. The directional solidification process is a key technology for producing single crystal turbine blades with excellent properties. In the directional solidification process, withdrawal rate is one of the critical parameters for microstructure formation and will ultimately determine the blade’s properties. In this paper, the as-cast microstructures in the typical sections of a DD9 single crystal (SX) superalloy turbine blade were investigated with 3 mm/min and 5 mm/min withdrawal rates during the directional solidification process. With increased withdrawal rate, the dendrite morphologies tended to become more refined, and the secondary dendritic arms tended to be highly developed. The dendrite in the blade aerofoil section was more refined than that in the tenon section, given the same withdrawal rate. Additionally, with increasing withdrawal rates, the size and dispersity of the γ′ precipitates in the inter-dendritic (ID) regions and dendritic core (DC) tended to decrease; furthermore, the size distributions of the γ′ precipitates followed a normal distribution law. Compared with the ID regions, an almost 62% reduction in the average γ′ sizes was measured in the DC. Meanwhile, given the same withdrawal rate, at the blade’s leading edge closest to the heater, the γ′ sizes in the aerofoil section (AS) were more refined than those in the tenon section (TS). As compared with the decreasing cross-sectional areas, the increased withdrawal rates clearly brought down the γ′ sizes. The sizes of the γ–γ′ eutectics decreased with increasing withdrawal rates, with the γ–γ′ eutectics showing both lamellar and rosette shapes.
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spelling pubmed-101803122023-05-13 Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade Xue, Yanpeng Wang, Xiaoguang Zhao, Jinqian Shi, Zhenxue Liu, Shizhong Li, Jiarong Materials (Basel) Article Single crystal superalloys are widely used in the manufacturing of turbine blades for aero-engines due to their superior performance at high temperatures. The directional solidification process is a key technology for producing single crystal turbine blades with excellent properties. In the directional solidification process, withdrawal rate is one of the critical parameters for microstructure formation and will ultimately determine the blade’s properties. In this paper, the as-cast microstructures in the typical sections of a DD9 single crystal (SX) superalloy turbine blade were investigated with 3 mm/min and 5 mm/min withdrawal rates during the directional solidification process. With increased withdrawal rate, the dendrite morphologies tended to become more refined, and the secondary dendritic arms tended to be highly developed. The dendrite in the blade aerofoil section was more refined than that in the tenon section, given the same withdrawal rate. Additionally, with increasing withdrawal rates, the size and dispersity of the γ′ precipitates in the inter-dendritic (ID) regions and dendritic core (DC) tended to decrease; furthermore, the size distributions of the γ′ precipitates followed a normal distribution law. Compared with the ID regions, an almost 62% reduction in the average γ′ sizes was measured in the DC. Meanwhile, given the same withdrawal rate, at the blade’s leading edge closest to the heater, the γ′ sizes in the aerofoil section (AS) were more refined than those in the tenon section (TS). As compared with the decreasing cross-sectional areas, the increased withdrawal rates clearly brought down the γ′ sizes. The sizes of the γ–γ′ eutectics decreased with increasing withdrawal rates, with the γ–γ′ eutectics showing both lamellar and rosette shapes. MDPI 2023-04-27 /pmc/articles/PMC10180312/ /pubmed/37176292 http://dx.doi.org/10.3390/ma16093409 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Xue, Yanpeng
Wang, Xiaoguang
Zhao, Jinqian
Shi, Zhenxue
Liu, Shizhong
Li, Jiarong
Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade
title Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade
title_full Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade
title_fullStr Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade
title_full_unstemmed Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade
title_short Effect of Withdrawal Rate on Solidification Microstructures of DD9 Single Crystal Turbine Blade
title_sort effect of withdrawal rate on solidification microstructures of dd9 single crystal turbine blade
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10180312/
https://www.ncbi.nlm.nih.gov/pubmed/37176292
http://dx.doi.org/10.3390/ma16093409
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