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The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures

We investigated the strengthening mechanism of laser shock processing (LSP) at high temperatures in the K417 nickel-based alloy. Using a laser-induced shock wave, residual compressive stresses and nanocrystals with a length of 30–200 nm and a thickness of 1 μm are produced on the surface of the nick...

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Autores principales: Li, Yinghong, Zhou, Liucheng, He, Weifeng, He, Guangyu, Wang, Xuede, Nie, Xiangfan, Wang, Bo, Luo, Sihai, Li, Yuqin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5090380/
https://www.ncbi.nlm.nih.gov/pubmed/27877617
http://dx.doi.org/10.1088/1468-6996/14/5/055010
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author Li, Yinghong
Zhou, Liucheng
He, Weifeng
He, Guangyu
Wang, Xuede
Nie, Xiangfan
Wang, Bo
Luo, Sihai
Li, Yuqin
author_facet Li, Yinghong
Zhou, Liucheng
He, Weifeng
He, Guangyu
Wang, Xuede
Nie, Xiangfan
Wang, Bo
Luo, Sihai
Li, Yuqin
author_sort Li, Yinghong
collection PubMed
description We investigated the strengthening mechanism of laser shock processing (LSP) at high temperatures in the K417 nickel-based alloy. Using a laser-induced shock wave, residual compressive stresses and nanocrystals with a length of 30–200 nm and a thickness of 1 μm are produced on the surface of the nickel-based alloy K417. When the K417 alloy is subjected to heat treatment at 900 °C after LSP, most of the residual compressive stress relaxes while the microhardness retains good thermal stability; the nanocrystalline surface has not obviously grown after the 900 °C per 10 h heat treatment, which shows a comparatively good thermal stability. There are several reasons for the good thermal stability of the nanocrystalline surface, such as the low value of cold hardening of LSP, extreme high-density defects and the grain boundary pinning of an impure element. The results of the vibration fatigue experiments show that the fatigue strength of K417 alloy is enhanced and improved from 110 to 285 MPa after LSP. After the 900 °C per 10 h heat treatment, the fatigue strength is 225 MPa; the heat treatment has not significantly reduced the reinforcement effect. The feature of the LSP strengthening mechanism of nickel-based alloy at a high temperature is the co-working effect of the nanocrystalline surface and the residual compressive stress after thermal relaxation.
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spelling pubmed-50903802016-11-22 The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures Li, Yinghong Zhou, Liucheng He, Weifeng He, Guangyu Wang, Xuede Nie, Xiangfan Wang, Bo Luo, Sihai Li, Yuqin Sci Technol Adv Mater Papers We investigated the strengthening mechanism of laser shock processing (LSP) at high temperatures in the K417 nickel-based alloy. Using a laser-induced shock wave, residual compressive stresses and nanocrystals with a length of 30–200 nm and a thickness of 1 μm are produced on the surface of the nickel-based alloy K417. When the K417 alloy is subjected to heat treatment at 900 °C after LSP, most of the residual compressive stress relaxes while the microhardness retains good thermal stability; the nanocrystalline surface has not obviously grown after the 900 °C per 10 h heat treatment, which shows a comparatively good thermal stability. There are several reasons for the good thermal stability of the nanocrystalline surface, such as the low value of cold hardening of LSP, extreme high-density defects and the grain boundary pinning of an impure element. The results of the vibration fatigue experiments show that the fatigue strength of K417 alloy is enhanced and improved from 110 to 285 MPa after LSP. After the 900 °C per 10 h heat treatment, the fatigue strength is 225 MPa; the heat treatment has not significantly reduced the reinforcement effect. The feature of the LSP strengthening mechanism of nickel-based alloy at a high temperature is the co-working effect of the nanocrystalline surface and the residual compressive stress after thermal relaxation. Taylor & Francis 2013-10-22 /pmc/articles/PMC5090380/ /pubmed/27877617 http://dx.doi.org/10.1088/1468-6996/14/5/055010 Text en © 2013 National Institute for Materials Science http://creativecommons.org/licenses/by-nc-sa/3.0/ Content from this work may be used under the terms of the Creative Commons Attribution-NonCommercial-ShareAlike 3.0 licence (http://creativecommons.org/licenses/by-nc-sa/3.0) . Any further distribution of this work must maintain attribution to the author(s) and the title of the work, journal citation and DOI.
spellingShingle Papers
Li, Yinghong
Zhou, Liucheng
He, Weifeng
He, Guangyu
Wang, Xuede
Nie, Xiangfan
Wang, Bo
Luo, Sihai
Li, Yuqin
The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
title The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
title_full The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
title_fullStr The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
title_full_unstemmed The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
title_short The strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
title_sort strengthening mechanism of a nickel-based alloy after laser shock processing at high temperatures
topic Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5090380/
https://www.ncbi.nlm.nih.gov/pubmed/27877617
http://dx.doi.org/10.1088/1468-6996/14/5/055010
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