Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades

The high temperature mechanical behaviors of Al2O3-based ceramic shell for the directional solidification of turbine blades were investigated. Isothermal uniaxial compression tests of ceramic shell samples were conducted on a Gleeble-1500D mechanical simulator with an innovative auxiliary thermal sy...

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Main Authors: Zilin Xu, Jiangwei Zhong, Xianglin Su, Qingyan Xu, Baicheng Liu
Format: Article
Language:English
Published: Elsevier 2019-01-01
Series:Journal of Materials Research and Technology
Online Access:http://www.sciencedirect.com/science/article/pii/S2238785418301029
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spelling doaj-3f95449dfa90423c8d9461527c86abfe2020-11-25T03:33:49ZengElsevierJournal of Materials Research and Technology2238-78542019-01-0181876886Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine bladesZilin Xu0Jiangwei Zhong1Xianglin Su2Qingyan Xu3Baicheng Liu4Key Laboratory for Advanced Materials Processing Technology (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaKey Laboratory for Advanced Materials Processing Technology (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaKey Laboratory for Advanced Materials Processing Technology (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaCorresponding author.; Key Laboratory for Advanced Materials Processing Technology (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaKey Laboratory for Advanced Materials Processing Technology (MOE), School of Materials Science and Engineering, Tsinghua University, Beijing 100084, ChinaThe high temperature mechanical behaviors of Al2O3-based ceramic shell for the directional solidification of turbine blades were investigated. Isothermal uniaxial compression tests of ceramic shell samples were conducted on a Gleeble-1500D mechanical simulator with an innovative auxiliary thermal system. The microstructures of sintered, heat-treated, and tested samples were characterized using scanning electron microscope and X-ray powder diffraction. The experimental stress–strain results of heat-treated samples were obtained. The eutectic mixture region composed of ZrO2 and SiO2 that regenerated by the decomposition reaction of excess zirconium silicate appears in the samples after heat treatment at 1500. The fracture type of CST25 and CST700 is brittle fracture, but CST1100 and CST1400 have thermo-viscoelastic and viscoplastic properties under stress conditions at high temperatures (>1100). The evolution of zirconium silicate decomposition reaction during the directional solidification process is analyzed. The SiO2 particles provide the major viscosity source of the ceramic shell at high temperatures. The thermo-viscodamage constitutive model of Al2O3-based ceramic shell for the directional solidification of single crystal superalloy is established. Keywords: Single crystal superalloy, Alumina-based shell, High temperature, Mechanical behavior, Constitutive modelhttp://www.sciencedirect.com/science/article/pii/S2238785418301029
collection DOAJ
language English
format Article
sources DOAJ
author Zilin Xu
Jiangwei Zhong
Xianglin Su
Qingyan Xu
Baicheng Liu
spellingShingle Zilin Xu
Jiangwei Zhong
Xianglin Su
Qingyan Xu
Baicheng Liu
Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
Journal of Materials Research and Technology
author_facet Zilin Xu
Jiangwei Zhong
Xianglin Su
Qingyan Xu
Baicheng Liu
author_sort Zilin Xu
title Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
title_short Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
title_full Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
title_fullStr Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
title_full_unstemmed Microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
title_sort microstructure evolution and mechanical behaviors of alumina-based ceramic shell for directional solidification of turbine blades
publisher Elsevier
series Journal of Materials Research and Technology
issn 2238-7854
publishDate 2019-01-01
description The high temperature mechanical behaviors of Al2O3-based ceramic shell for the directional solidification of turbine blades were investigated. Isothermal uniaxial compression tests of ceramic shell samples were conducted on a Gleeble-1500D mechanical simulator with an innovative auxiliary thermal system. The microstructures of sintered, heat-treated, and tested samples were characterized using scanning electron microscope and X-ray powder diffraction. The experimental stress–strain results of heat-treated samples were obtained. The eutectic mixture region composed of ZrO2 and SiO2 that regenerated by the decomposition reaction of excess zirconium silicate appears in the samples after heat treatment at 1500. The fracture type of CST25 and CST700 is brittle fracture, but CST1100 and CST1400 have thermo-viscoelastic and viscoplastic properties under stress conditions at high temperatures (>1100). The evolution of zirconium silicate decomposition reaction during the directional solidification process is analyzed. The SiO2 particles provide the major viscosity source of the ceramic shell at high temperatures. The thermo-viscodamage constitutive model of Al2O3-based ceramic shell for the directional solidification of single crystal superalloy is established. Keywords: Single crystal superalloy, Alumina-based shell, High temperature, Mechanical behavior, Constitutive model
url http://www.sciencedirect.com/science/article/pii/S2238785418301029
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