Microstructure and properties of novel quinary multi-principal element alloys with refractory elements

Five equiatomic alloys (TiZrHfVNb, TiZrHfVTa, TiZrNbMoV, TiZrHfMoV and ZrNbMoHfV) composed of five elements with high melting temperature, respectively were prepared by arc-melting to develop a novel high temperature alloy. The five alloys exhibit different dendritic and interdendritic morphologies....

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Main Authors: Na-na Guo, Liang Wang, Yan-qing Su
Format: Article
Language:English
Published: Foundry Journal Agency 2015-09-01
Series:China Foundry
Subjects:
Online Access:http://ff.foundryworld.com/uploadfile/2015110257778573.pdf
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author Na-na Guo
Liang Wang
Yan-qing Su
author_facet Na-na Guo
Liang Wang
Yan-qing Su
author_sort Na-na Guo
collection DOAJ
description Five equiatomic alloys (TiZrHfVNb, TiZrHfVTa, TiZrNbMoV, TiZrHfMoV and ZrNbMoHfV) composed of five elements with high melting temperature, respectively were prepared by arc-melting to develop a novel high temperature alloy. The five alloys exhibit different dendritic and interdendritic morphologies. The TiZrHfVNb, TiZrHfVTa and TiZrNbMoV alloys formed disordered solid solution phases with body-centered cubic structure, and exhibited high compressive strength and good plasticity. The TiZrHfMoV and ZrNbMoHfV alloys are composed with Laves phase (HfMo2) and disordered solid solution phases with body-centered cubic structure. The TiZrHfMoV and ZrNbMoHfV alloys are harder and more brittle than the other three alloys due to the existence of hard and brittle Laves phases. At high temperatures, the strength decreases to below 300 MPa for the TiZrHfVNb and TiZrHfMoV alloys. Solution strengthening is the primary strengthening mechanism of the TiZrHfVNb, TiZrHfVTa and TiZrNbMoV alloys, and brittle Laves phase is the main cause for the low ductility of the TiZrHfMoV and ZrNbMoHfV alloys.
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spelling doaj.art-6f62df78b989499b97f092c23ae5a80d2022-12-21T23:52:31ZengFoundry Journal AgencyChina Foundry1672-64211672-64212015-09-01125319325Microstructure and properties of novel quinary multi-principal element alloys with refractory elementsNa-na Guo0Liang Wang1Yan-qing Su2ational Key Laboratory for Precision Hot Processing of Metals, School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, Chinaational Key Laboratory for Precision Hot Processing of Metals, School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, Chinaational Key Laboratory for Precision Hot Processing of Metals, School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, ChinaFive equiatomic alloys (TiZrHfVNb, TiZrHfVTa, TiZrNbMoV, TiZrHfMoV and ZrNbMoHfV) composed of five elements with high melting temperature, respectively were prepared by arc-melting to develop a novel high temperature alloy. The five alloys exhibit different dendritic and interdendritic morphologies. The TiZrHfVNb, TiZrHfVTa and TiZrNbMoV alloys formed disordered solid solution phases with body-centered cubic structure, and exhibited high compressive strength and good plasticity. The TiZrHfMoV and ZrNbMoHfV alloys are composed with Laves phase (HfMo2) and disordered solid solution phases with body-centered cubic structure. The TiZrHfMoV and ZrNbMoHfV alloys are harder and more brittle than the other three alloys due to the existence of hard and brittle Laves phases. At high temperatures, the strength decreases to below 300 MPa for the TiZrHfVNb and TiZrHfMoV alloys. Solution strengthening is the primary strengthening mechanism of the TiZrHfVNb, TiZrHfVTa and TiZrNbMoV alloys, and brittle Laves phase is the main cause for the low ductility of the TiZrHfMoV and ZrNbMoHfV alloys.http://ff.foundryworld.com/uploadfile/2015110257778573.pdfhigh temperature alloys; high-entropy alloy; crystal structure and microstructure; hardness; compressive property
spellingShingle Na-na Guo
Liang Wang
Yan-qing Su
Microstructure and properties of novel quinary multi-principal element alloys with refractory elements
China Foundry
high temperature alloys; high-entropy alloy; crystal structure and microstructure; hardness; compressive property
title Microstructure and properties of novel quinary multi-principal element alloys with refractory elements
title_full Microstructure and properties of novel quinary multi-principal element alloys with refractory elements
title_fullStr Microstructure and properties of novel quinary multi-principal element alloys with refractory elements
title_full_unstemmed Microstructure and properties of novel quinary multi-principal element alloys with refractory elements
title_short Microstructure and properties of novel quinary multi-principal element alloys with refractory elements
title_sort microstructure and properties of novel quinary multi principal element alloys with refractory elements
topic high temperature alloys; high-entropy alloy; crystal structure and microstructure; hardness; compressive property
url http://ff.foundryworld.com/uploadfile/2015110257778573.pdf
work_keys_str_mv AT nanaguo microstructureandpropertiesofnovelquinarymultiprincipalelementalloyswithrefractoryelements
AT liangwang microstructureandpropertiesofnovelquinarymultiprincipalelementalloyswithrefractoryelements
AT yanqingsu microstructureandpropertiesofnovelquinarymultiprincipalelementalloyswithrefractoryelements