Cargando…

The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel

A multi-strand composite welding wire was applied to join high nitrogen austenitic stainless steel, and microstructures and mechanical properties were investigated. The electrical signals demonstrate that the welding process using a multi-strand composite welding wire is highly stable. The welded jo...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Jianguo, Li, Huan, Liang, Yu, Liu, Pingli, Yang, Lijun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766239/
https://www.ncbi.nlm.nih.gov/pubmed/31514393
http://dx.doi.org/10.3390/ma12182944
_version_ 1783454675639468032
author Li, Jianguo
Li, Huan
Liang, Yu
Liu, Pingli
Yang, Lijun
author_facet Li, Jianguo
Li, Huan
Liang, Yu
Liu, Pingli
Yang, Lijun
author_sort Li, Jianguo
collection PubMed
description A multi-strand composite welding wire was applied to join high nitrogen austenitic stainless steel, and microstructures and mechanical properties were investigated. The electrical signals demonstrate that the welding process using a multi-strand composite welding wire is highly stable. The welded joints are composed of columnar austenite and dendritic ferrite and welded joints obtained under high heat input and cooling rate have a noticeable coarse-grained heat-affected zone and larger columnar austenite in weld seam. Compared with welded joints obtained under the high heat input and cooling rate, welded joints have the higher fractions of deformed grains, high angle grain boundaries, Schmid factor, and lower dislocation density under the low heat input and cooling rate, which indicate a lower tensile strength and higher yield strength. The rotated Goss (G(RD)) ({110}〈1 [Formula: see text] 0〉) orientation of a thin plate and the cube (C) ({001}〈100〉) orientation of a thick plate are obvious after welding, but the S ({123}〈63 [Formula: see text] 〉) orientation at 65° sections of Euler’s space is weak. The δ-ferrite was studied based on the primary ferrite solidification mode. It was observed that low heat input and a high cooling rate results in an increase of δ-ferrite, and a high dislocation density was obtained in grain boundaries of δ-ferrite. M(23)C(6) precipitates due to a low cooling rate and heat input in the weld seam and deteriorates the elongation of welded joints. The engineering Stress–strain curves also show the low elongation and tensile strength of welded joints under low heat input and cooling rate, which is mainly caused by the high fraction of δ-ferrite and the precipitation of M(23)C(6).
format Online
Article
Text
id pubmed-6766239
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-67662392019-09-30 The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel Li, Jianguo Li, Huan Liang, Yu Liu, Pingli Yang, Lijun Materials (Basel) Article A multi-strand composite welding wire was applied to join high nitrogen austenitic stainless steel, and microstructures and mechanical properties were investigated. The electrical signals demonstrate that the welding process using a multi-strand composite welding wire is highly stable. The welded joints are composed of columnar austenite and dendritic ferrite and welded joints obtained under high heat input and cooling rate have a noticeable coarse-grained heat-affected zone and larger columnar austenite in weld seam. Compared with welded joints obtained under the high heat input and cooling rate, welded joints have the higher fractions of deformed grains, high angle grain boundaries, Schmid factor, and lower dislocation density under the low heat input and cooling rate, which indicate a lower tensile strength and higher yield strength. The rotated Goss (G(RD)) ({110}〈1 [Formula: see text] 0〉) orientation of a thin plate and the cube (C) ({001}〈100〉) orientation of a thick plate are obvious after welding, but the S ({123}〈63 [Formula: see text] 〉) orientation at 65° sections of Euler’s space is weak. The δ-ferrite was studied based on the primary ferrite solidification mode. It was observed that low heat input and a high cooling rate results in an increase of δ-ferrite, and a high dislocation density was obtained in grain boundaries of δ-ferrite. M(23)C(6) precipitates due to a low cooling rate and heat input in the weld seam and deteriorates the elongation of welded joints. The engineering Stress–strain curves also show the low elongation and tensile strength of welded joints under low heat input and cooling rate, which is mainly caused by the high fraction of δ-ferrite and the precipitation of M(23)C(6). MDPI 2019-09-11 /pmc/articles/PMC6766239/ /pubmed/31514393 http://dx.doi.org/10.3390/ma12182944 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Jianguo
Li, Huan
Liang, Yu
Liu, Pingli
Yang, Lijun
The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel
title The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel
title_full The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel
title_fullStr The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel
title_full_unstemmed The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel
title_short The Microstructure and Mechanical Properties of Multi-Strand, Composite Welding-Wire Welded Joints of High Nitrogen Austenitic Stainless Steel
title_sort microstructure and mechanical properties of multi-strand, composite welding-wire welded joints of high nitrogen austenitic stainless steel
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6766239/
https://www.ncbi.nlm.nih.gov/pubmed/31514393
http://dx.doi.org/10.3390/ma12182944
work_keys_str_mv AT lijianguo themicrostructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT lihuan themicrostructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT liangyu themicrostructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT liupingli themicrostructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT yanglijun themicrostructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT lijianguo microstructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT lihuan microstructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT liangyu microstructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT liupingli microstructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel
AT yanglijun microstructureandmechanicalpropertiesofmultistrandcompositeweldingwireweldedjointsofhighnitrogenausteniticstainlesssteel