Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting

This article presents a method for manufacturing CuSn/18Ni300 bimetallic porous structure, and it mainly aims to discover microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structure. The microstructure, bonding strength and fracture morphology of CuSn/18Ni300 bimetallic part...

Full description

Bibliographic Details
Main Authors: Mingkang Zhang, Yongqiang Yang, Di Wang, Changhui Song, Jie Chen
Format: Article
Language:English
Published: Elsevier 2019-03-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127519300036
_version_ 1818961481219178496
author Mingkang Zhang
Yongqiang Yang
Di Wang
Changhui Song
Jie Chen
author_facet Mingkang Zhang
Yongqiang Yang
Di Wang
Changhui Song
Jie Chen
author_sort Mingkang Zhang
collection DOAJ
description This article presents a method for manufacturing CuSn/18Ni300 bimetallic porous structure, and it mainly aims to discover microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structure. The microstructure, bonding strength and fracture morphology of CuSn/18Ni300 bimetallic parts manufactured by selective laser melting were examined by X-ray diffraction, tensile test and scanning electron microscopy, respectively. Compression behavior and energy absorption behavior were investigated by compression tests. Analyses of microstructure show that CuSn/18Ni300 specimen consists of α-Fe phase, α-Fe/α-Cu mixed area and α-Cu phase. Microhardness at the interface of CuSn/18Ni300 bimetallic porous structure decreases from 18Ni300 part to CuSn part. The bonding strength of CuSn/18Ni300 specimen is 144.1 ± 41.59 MPa, which is much lower than the tensile strength of CuSn specimen. Additionally, we demonstrate that the compression behavior of CuSn/18Ni300 bimetallic porous structure can be subdivided into five stages, including the first linear elasticity, the first collapse plateau, the second linear elasticity, the second collapse plateau and the end densification. The energy absorption of CuSn/18Ni300 porous structure is higher than that of CuSn porous structure, and energy absorption increases as the porosity decreases. These findings provide a solution for optimizing the compression behavior and energy absorption of porous structure. Keywords: CuSn alloy, 18Ni300 maraging steel, Bimetallic, Porous structures, Selective laser melting
first_indexed 2024-12-20T12:14:07Z
format Article
id doaj.art-83ce6b06b0804bcdad240b90ca1e2687
institution Directory Open Access Journal
issn 0264-1275
language English
last_indexed 2024-12-20T12:14:07Z
publishDate 2019-03-01
publisher Elsevier
record_format Article
series Materials & Design
spelling doaj.art-83ce6b06b0804bcdad240b90ca1e26872022-12-21T19:41:12ZengElsevierMaterials & Design0264-12752019-03-01165Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser meltingMingkang Zhang0Yongqiang Yang1Di Wang2Changhui Song3Jie Chen4School of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou, ChinaCorresponding author.; School of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou, ChinaSchool of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou, ChinaSchool of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou, ChinaSchool of Mechanical & Automotive Engineering, South China University of Technology, Guangzhou, ChinaThis article presents a method for manufacturing CuSn/18Ni300 bimetallic porous structure, and it mainly aims to discover microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structure. The microstructure, bonding strength and fracture morphology of CuSn/18Ni300 bimetallic parts manufactured by selective laser melting were examined by X-ray diffraction, tensile test and scanning electron microscopy, respectively. Compression behavior and energy absorption behavior were investigated by compression tests. Analyses of microstructure show that CuSn/18Ni300 specimen consists of α-Fe phase, α-Fe/α-Cu mixed area and α-Cu phase. Microhardness at the interface of CuSn/18Ni300 bimetallic porous structure decreases from 18Ni300 part to CuSn part. The bonding strength of CuSn/18Ni300 specimen is 144.1 ± 41.59 MPa, which is much lower than the tensile strength of CuSn specimen. Additionally, we demonstrate that the compression behavior of CuSn/18Ni300 bimetallic porous structure can be subdivided into five stages, including the first linear elasticity, the first collapse plateau, the second linear elasticity, the second collapse plateau and the end densification. The energy absorption of CuSn/18Ni300 porous structure is higher than that of CuSn porous structure, and energy absorption increases as the porosity decreases. These findings provide a solution for optimizing the compression behavior and energy absorption of porous structure. Keywords: CuSn alloy, 18Ni300 maraging steel, Bimetallic, Porous structures, Selective laser meltinghttp://www.sciencedirect.com/science/article/pii/S0264127519300036
spellingShingle Mingkang Zhang
Yongqiang Yang
Di Wang
Changhui Song
Jie Chen
Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting
Materials & Design
title Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting
title_full Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting
title_fullStr Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting
title_full_unstemmed Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting
title_short Microstructure and mechanical properties of CuSn/18Ni300 bimetallic porous structures manufactured by selective laser melting
title_sort microstructure and mechanical properties of cusn 18ni300 bimetallic porous structures manufactured by selective laser melting
url http://www.sciencedirect.com/science/article/pii/S0264127519300036
work_keys_str_mv AT mingkangzhang microstructureandmechanicalpropertiesofcusn18ni300bimetallicporousstructuresmanufacturedbyselectivelasermelting
AT yongqiangyang microstructureandmechanicalpropertiesofcusn18ni300bimetallicporousstructuresmanufacturedbyselectivelasermelting
AT diwang microstructureandmechanicalpropertiesofcusn18ni300bimetallicporousstructuresmanufacturedbyselectivelasermelting
AT changhuisong microstructureandmechanicalpropertiesofcusn18ni300bimetallicporousstructuresmanufacturedbyselectivelasermelting
AT jiechen microstructureandmechanicalpropertiesofcusn18ni300bimetallicporousstructuresmanufacturedbyselectivelasermelting