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Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases

To resist the alternating electromagnetic loads, the International Thermonuclear Experimental Reactor (ITER) correction coils are protected by a 20-mm-thick 316LN austenitic stainless steel case. According to the strict tolerance requirement of the case manufacture, laser welding was applied to encl...

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Autores principales: Xin, Jijun, Fang, Chao, Yang, Wuxiong, Huang, Chuanjun, Dai, Wenhua, Wei, Jing, Song, Yuntao, Li, Laifeng, Fabrice, Simon, Paul, Libeyre, Sgobba, Stefano
Lenguaje:eng
Publicado: 2020
Acceso en línea:https://dx.doi.org/10.1109/TASC.2020.2976588
http://cds.cern.ch/record/2717123
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author Xin, Jijun
Fang, Chao
Yang, Wuxiong
Huang, Chuanjun
Dai, Wenhua
Wei, Jing
Song, Yuntao
Li, Laifeng
Fabrice, Simon
Paul, Libeyre
Sgobba, Stefano
author_facet Xin, Jijun
Fang, Chao
Yang, Wuxiong
Huang, Chuanjun
Dai, Wenhua
Wei, Jing
Song, Yuntao
Li, Laifeng
Fabrice, Simon
Paul, Libeyre
Sgobba, Stefano
author_sort Xin, Jijun
collection CERN
description To resist the alternating electromagnetic loads, the International Thermonuclear Experimental Reactor (ITER) correction coils are protected by a 20-mm-thick 316LN austenitic stainless steel case. According to the strict tolerance requirement of the case manufacture, laser welding was applied to enclosure welding of the cases with a 20-kW high-power laser for root pass and Tungsten Inert Gas welding was applied for filler and cover passes. In this study, the microstructure and mechanical properties of enclosure welding joint were investigated to evaluate the quality of the joints. No porosity, crack or lack of fusion was found on the cross-section of the joints. The microstructure in the weld zone is single austenite phase and the morphology of the joint consists of cellular crystal, columnar crystal, and small amount of the equiaxed grain. The average tensile strength of the joint is 590 MPa, which is 98.3% of the strength of the base material of 600 MPa. The fracture position is located at the base material with an apparent necking morphology, which confirmed the good plasticity. The side bend test specimens were subjected to significant plastic deformation, which bent through 180° and no surface crack can be found. The impact toughness of the weld joint at 4.2 K is larger than 180 J/cm2, and the fracture surface is composed of fine equiaxed dimples and tearing ridges, which indicates that the specimens failed in a ductile manner. All of the test results satisfy the ITER requirements.
id oai-inspirehep.net-1792852
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2020
record_format invenio
spelling oai-inspirehep.net-17928522020-05-05T21:14:46Zdoi:10.1109/TASC.2020.2976588http://cds.cern.ch/record/2717123engXin, JijunFang, ChaoYang, WuxiongHuang, ChuanjunDai, WenhuaWei, JingSong, YuntaoLi, LaifengFabrice, SimonPaul, LibeyreSgobba, StefanoMicrostructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils CasesTo resist the alternating electromagnetic loads, the International Thermonuclear Experimental Reactor (ITER) correction coils are protected by a 20-mm-thick 316LN austenitic stainless steel case. According to the strict tolerance requirement of the case manufacture, laser welding was applied to enclosure welding of the cases with a 20-kW high-power laser for root pass and Tungsten Inert Gas welding was applied for filler and cover passes. In this study, the microstructure and mechanical properties of enclosure welding joint were investigated to evaluate the quality of the joints. No porosity, crack or lack of fusion was found on the cross-section of the joints. The microstructure in the weld zone is single austenite phase and the morphology of the joint consists of cellular crystal, columnar crystal, and small amount of the equiaxed grain. The average tensile strength of the joint is 590 MPa, which is 98.3% of the strength of the base material of 600 MPa. The fracture position is located at the base material with an apparent necking morphology, which confirmed the good plasticity. The side bend test specimens were subjected to significant plastic deformation, which bent through 180° and no surface crack can be found. The impact toughness of the weld joint at 4.2 K is larger than 180 J/cm2, and the fracture surface is composed of fine equiaxed dimples and tearing ridges, which indicates that the specimens failed in a ductile manner. All of the test results satisfy the ITER requirements.oai:inspirehep.net:17928522020
spellingShingle Xin, Jijun
Fang, Chao
Yang, Wuxiong
Huang, Chuanjun
Dai, Wenhua
Wei, Jing
Song, Yuntao
Li, Laifeng
Fabrice, Simon
Paul, Libeyre
Sgobba, Stefano
Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases
title Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases
title_full Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases
title_fullStr Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases
title_full_unstemmed Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases
title_short Microstructure and Mechanical Properties of the Enclosure Welding Joint for ITER Correction Coils Cases
title_sort microstructure and mechanical properties of the enclosure welding joint for iter correction coils cases
url https://dx.doi.org/10.1109/TASC.2020.2976588
http://cds.cern.ch/record/2717123
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