Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel

The effect of Mg treatment on the microstructure and toughness of the heat-affected zone (HAZ) of shipbuilding steel after high-heat-input welding was investigated via laboratory and industrial testing. The welding process and Charpy impact tests were also carried out to evaluate the HAZ toughness o...

Full description

Bibliographic Details
Main Authors: Yan Wang, Liguang Zhu, Qingjun Zhang, Caijun Zhang, Shuoming Wang
Format: Article
Language:English
Published: MDPI AG 2018-08-01
Series:Metals
Subjects:
Online Access:http://www.mdpi.com/2075-4701/8/8/616
_version_ 1818536514781446144
author Yan Wang
Liguang Zhu
Qingjun Zhang
Caijun Zhang
Shuoming Wang
author_facet Yan Wang
Liguang Zhu
Qingjun Zhang
Caijun Zhang
Shuoming Wang
author_sort Yan Wang
collection DOAJ
description The effect of Mg treatment on the microstructure and toughness of the heat-affected zone (HAZ) of shipbuilding steel after high-heat-input welding was investigated via laboratory and industrial testing. The welding process and Charpy impact tests were also carried out to evaluate the HAZ toughness of steel plates. First, typical inclusion characteristics were characterised with an ASPEX PSEM Explorer. Then, confocal laser scanning microscopy (CLSM) was used to observe the diameters of austenite grains under different holding times. The results showed that when the addition of microalloy elements were in the order of Al–Mg–Ti, this had an effect on dispersing inclusions, the largest proportion of which were micro-inclusions that had a particle size range of 1.0–1.5 μm. This accounted for 25.4% of the total inclusions, which was the highest amount. The micro inclusion particle size that was mainly distributed in the range of 0.5–3.5 μm accounted for 82.8% of all the micro-inclusions. The inclusion structure induced intragranular acicular ferrite (IAF) in austenite as follows: MgO and Al2O3 formed the core and Ti2O3 adhered to the Al–Mg complex inclusions to produce smaller particle sizes and dispersions of Al, Mg, and Ti complex inclusions. The 40-mm-thick plate obtained in the industrial test after welding had an average impact absorbed energy 2 mm from the weld joint in the heat-affected zone of 198.9 J at −20 °C, while the welding heat input was 150 kJ/cm, compared with the parent material’s low-temperature performance, which exceeded 88%.
first_indexed 2024-12-11T18:38:56Z
format Article
id doaj.art-7397b48b45394054820022014059f44a
institution Directory Open Access Journal
issn 2075-4701
language English
last_indexed 2024-12-11T18:38:56Z
publishDate 2018-08-01
publisher MDPI AG
record_format Article
series Metals
spelling doaj.art-7397b48b45394054820022014059f44a2022-12-22T00:54:40ZengMDPI AGMetals2075-47012018-08-018861610.3390/met8080616met8080616Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding SteelYan Wang0Liguang Zhu1Qingjun Zhang2Caijun Zhang3Shuoming Wang4Hebei High Quality Steel Continuous Casting Engineering Technology Research Center, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063009, ChinaHebei High Quality Steel Continuous Casting Engineering Technology Research Center, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063009, ChinaAnalysis and Testing Center, North China University of Science and Technology, Tangshan 063009, ChinaHebei High Quality Steel Continuous Casting Engineering Technology Research Center, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063009, ChinaHebei High Quality Steel Continuous Casting Engineering Technology Research Center, College of Metallurgy and Energy, North China University of Science and Technology, Tangshan 063009, ChinaThe effect of Mg treatment on the microstructure and toughness of the heat-affected zone (HAZ) of shipbuilding steel after high-heat-input welding was investigated via laboratory and industrial testing. The welding process and Charpy impact tests were also carried out to evaluate the HAZ toughness of steel plates. First, typical inclusion characteristics were characterised with an ASPEX PSEM Explorer. Then, confocal laser scanning microscopy (CLSM) was used to observe the diameters of austenite grains under different holding times. The results showed that when the addition of microalloy elements were in the order of Al–Mg–Ti, this had an effect on dispersing inclusions, the largest proportion of which were micro-inclusions that had a particle size range of 1.0–1.5 μm. This accounted for 25.4% of the total inclusions, which was the highest amount. The micro inclusion particle size that was mainly distributed in the range of 0.5–3.5 μm accounted for 82.8% of all the micro-inclusions. The inclusion structure induced intragranular acicular ferrite (IAF) in austenite as follows: MgO and Al2O3 formed the core and Ti2O3 adhered to the Al–Mg complex inclusions to produce smaller particle sizes and dispersions of Al, Mg, and Ti complex inclusions. The 40-mm-thick plate obtained in the industrial test after welding had an average impact absorbed energy 2 mm from the weld joint in the heat-affected zone of 198.9 J at −20 °C, while the welding heat input was 150 kJ/cm, compared with the parent material’s low-temperature performance, which exceeded 88%.http://www.mdpi.com/2075-4701/8/8/616heat-affected zoneindustrial testoxide metallurgyIAFmicrostructure
spellingShingle Yan Wang
Liguang Zhu
Qingjun Zhang
Caijun Zhang
Shuoming Wang
Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel
Metals
heat-affected zone
industrial test
oxide metallurgy
IAF
microstructure
title Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel
title_full Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel
title_fullStr Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel
title_full_unstemmed Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel
title_short Effect of Mg Treatment on Refining the Microstructure and Improving the Toughness of the Heat-Affected Zone in Shipbuilding Steel
title_sort effect of mg treatment on refining the microstructure and improving the toughness of the heat affected zone in shipbuilding steel
topic heat-affected zone
industrial test
oxide metallurgy
IAF
microstructure
url http://www.mdpi.com/2075-4701/8/8/616
work_keys_str_mv AT yanwang effectofmgtreatmentonrefiningthemicrostructureandimprovingthetoughnessoftheheataffectedzoneinshipbuildingsteel
AT liguangzhu effectofmgtreatmentonrefiningthemicrostructureandimprovingthetoughnessoftheheataffectedzoneinshipbuildingsteel
AT qingjunzhang effectofmgtreatmentonrefiningthemicrostructureandimprovingthetoughnessoftheheataffectedzoneinshipbuildingsteel
AT caijunzhang effectofmgtreatmentonrefiningthemicrostructureandimprovingthetoughnessoftheheataffectedzoneinshipbuildingsteel
AT shuomingwang effectofmgtreatmentonrefiningthemicrostructureandimprovingthetoughnessoftheheataffectedzoneinshipbuildingsteel