Cargando…

Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method

In this study, an Al–Mg alloy was fabricated by wire arc additive manufacture (WAAM), and the effect of Mg content on the microstructure and properties of Al–Mg alloy deposits was investigated. The effects on the deposition surface oxidation, geometry, burn out rate of Mg, pores, microstructure, mec...

Descripción completa

Detalles Bibliográficos
Autores principales: Ren, Lingling, Gu, Huimin, Wang, Wei, Wang, Shuai, Li, Chengde, Wang, Zhenbiao, Zhai, Yuchun, Ma, Peihua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6947433/
https://www.ncbi.nlm.nih.gov/pubmed/31835781
http://dx.doi.org/10.3390/ma12244160
_version_ 1783485549793771520
author Ren, Lingling
Gu, Huimin
Wang, Wei
Wang, Shuai
Li, Chengde
Wang, Zhenbiao
Zhai, Yuchun
Ma, Peihua
author_facet Ren, Lingling
Gu, Huimin
Wang, Wei
Wang, Shuai
Li, Chengde
Wang, Zhenbiao
Zhai, Yuchun
Ma, Peihua
author_sort Ren, Lingling
collection PubMed
description In this study, an Al–Mg alloy was fabricated by wire arc additive manufacture (WAAM), and the effect of Mg content on the microstructure and properties of Al–Mg alloy deposits was investigated. The effects on the deposition surface oxidation, geometry, burn out rate of Mg, pores, microstructure, mechanical properties and fracture mechanisms were investigated. The results show that, when the Mg content increased, the surface oxidation degree increased; a “wave”-shaped deposition layer occurred when the Mg content reached 8%. When the Mg content was more than 6%, the burning loss rate of the Mg element increased significantly. With the increase of Mg content, the number of pores first decreased and then increased, and the size first decreased and then increased. When the Mg content reached 7% or above, obvious crystallization hot cracks appeared in the deposit bodies. When the Mg content increased, the precipitated phase (FeMn)Al(6) and β(Mg(2)Al(3)) increased, and the grain size increased. When the Mg content was 6%, the comprehensive mechanical properties were best. The horizontal tensile strength, yield strength and elongation were 310 MPa, 225 MPa and 17%, respectively. The vertical tensile strength, yield strength and elongation were 300 MPa, 215 MPa and 15%, respectively. The fracture morphology was a ductile fracture.
format Online
Article
Text
id pubmed-6947433
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-69474332020-01-13 Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method Ren, Lingling Gu, Huimin Wang, Wei Wang, Shuai Li, Chengde Wang, Zhenbiao Zhai, Yuchun Ma, Peihua Materials (Basel) Article In this study, an Al–Mg alloy was fabricated by wire arc additive manufacture (WAAM), and the effect of Mg content on the microstructure and properties of Al–Mg alloy deposits was investigated. The effects on the deposition surface oxidation, geometry, burn out rate of Mg, pores, microstructure, mechanical properties and fracture mechanisms were investigated. The results show that, when the Mg content increased, the surface oxidation degree increased; a “wave”-shaped deposition layer occurred when the Mg content reached 8%. When the Mg content was more than 6%, the burning loss rate of the Mg element increased significantly. With the increase of Mg content, the number of pores first decreased and then increased, and the size first decreased and then increased. When the Mg content reached 7% or above, obvious crystallization hot cracks appeared in the deposit bodies. When the Mg content increased, the precipitated phase (FeMn)Al(6) and β(Mg(2)Al(3)) increased, and the grain size increased. When the Mg content was 6%, the comprehensive mechanical properties were best. The horizontal tensile strength, yield strength and elongation were 310 MPa, 225 MPa and 17%, respectively. The vertical tensile strength, yield strength and elongation were 300 MPa, 215 MPa and 15%, respectively. The fracture morphology was a ductile fracture. MDPI 2019-12-11 /pmc/articles/PMC6947433/ /pubmed/31835781 http://dx.doi.org/10.3390/ma12244160 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
Ren, Lingling
Gu, Huimin
Wang, Wei
Wang, Shuai
Li, Chengde
Wang, Zhenbiao
Zhai, Yuchun
Ma, Peihua
Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method
title Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method
title_full Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method
title_fullStr Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method
title_full_unstemmed Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method
title_short Effect of Mg Content on Microstructure and Properties of Al–Mg Alloy Produced by the Wire Arc Additive Manufacturing Method
title_sort effect of mg content on microstructure and properties of al–mg alloy produced by the wire arc additive manufacturing method
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6947433/
https://www.ncbi.nlm.nih.gov/pubmed/31835781
http://dx.doi.org/10.3390/ma12244160
work_keys_str_mv AT renlingling effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT guhuimin effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT wangwei effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT wangshuai effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT lichengde effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT wangzhenbiao effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT zhaiyuchun effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod
AT mapeihua effectofmgcontentonmicrostructureandpropertiesofalmgalloyproducedbythewirearcadditivemanufacturingmethod