Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties

Selective laser melting (SLM) additive manufacturing of pure tungsten encounters nearly all intractable difficulties of SLM metals fields due to its intrinsic properties. The key factors, including powder characteristics, layer thickness, and laser parameters of SLM high density tungsten are elucida...

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Main Authors: Chaolin Tan, Kesong Zhou, Wenyou Ma, Bonnie Attard, Panpan Zhang, Tongchun Kuang
Format: Article
Language:English
Published: Taylor & Francis Group 2018-12-01
Series:Science and Technology of Advanced Materials
Subjects:
Online Access:http://dx.doi.org/10.1080/14686996.2018.1455154
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spelling doaj-facb4868b92d45d58cff8d4a70861b7c2020-11-25T00:15:30ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142018-12-0119137038010.1080/14686996.2018.14551541455154Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical propertiesChaolin Tan0Kesong Zhou1Wenyou Ma2Bonnie Attard3Panpan Zhang4Tongchun Kuang5South China University of TechnologySouth China University of TechnologyGuangdong Institute of New MaterialsUniversity of BirminghamGuangdong Institute of New MaterialsSouth China University of TechnologySelective laser melting (SLM) additive manufacturing of pure tungsten encounters nearly all intractable difficulties of SLM metals fields due to its intrinsic properties. The key factors, including powder characteristics, layer thickness, and laser parameters of SLM high density tungsten are elucidated and discussed in detail. The main parameters were designed from theoretical calculations prior to the SLM process and experimentally optimized. Pure tungsten products with a density of 19.01 g/cm3 (98.50% theoretical density) were produced using SLM with the optimized processing parameters. A high density microstructure is formed without significant balling or macrocracks. The formation mechanisms for pores and the densification behaviors are systematically elucidated. Electron backscattered diffraction analysis confirms that the columnar grains stretch across several layers and parallel to the maximum temperature gradient, which can ensure good bonding between the layers. The mechanical properties of the SLM-produced tungsten are comparable to that produced by the conventional fabrication methods, with hardness values exceeding 460 HV0.05 and an ultimate compressive strength of about 1 GPa. This finding offers new potential applications of refractory metals in additive manufacturing.http://dx.doi.org/10.1080/14686996.2018.1455154Additive manufacturingselective laser meltingtungstenrefractory metalparameter designdensificationlinear energylaser parametermolten poolproperty
collection DOAJ
language English
format Article
sources DOAJ
author Chaolin Tan
Kesong Zhou
Wenyou Ma
Bonnie Attard
Panpan Zhang
Tongchun Kuang
spellingShingle Chaolin Tan
Kesong Zhou
Wenyou Ma
Bonnie Attard
Panpan Zhang
Tongchun Kuang
Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
Science and Technology of Advanced Materials
Additive manufacturing
selective laser melting
tungsten
refractory metal
parameter design
densification
linear energy
laser parameter
molten pool
property
author_facet Chaolin Tan
Kesong Zhou
Wenyou Ma
Bonnie Attard
Panpan Zhang
Tongchun Kuang
author_sort Chaolin Tan
title Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
title_short Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
title_full Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
title_fullStr Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
title_full_unstemmed Selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
title_sort selective laser melting of high-performance pure tungsten: parameter design, densification behavior and mechanical properties
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2018-12-01
description Selective laser melting (SLM) additive manufacturing of pure tungsten encounters nearly all intractable difficulties of SLM metals fields due to its intrinsic properties. The key factors, including powder characteristics, layer thickness, and laser parameters of SLM high density tungsten are elucidated and discussed in detail. The main parameters were designed from theoretical calculations prior to the SLM process and experimentally optimized. Pure tungsten products with a density of 19.01 g/cm3 (98.50% theoretical density) were produced using SLM with the optimized processing parameters. A high density microstructure is formed without significant balling or macrocracks. The formation mechanisms for pores and the densification behaviors are systematically elucidated. Electron backscattered diffraction analysis confirms that the columnar grains stretch across several layers and parallel to the maximum temperature gradient, which can ensure good bonding between the layers. The mechanical properties of the SLM-produced tungsten are comparable to that produced by the conventional fabrication methods, with hardness values exceeding 460 HV0.05 and an ultimate compressive strength of about 1 GPa. This finding offers new potential applications of refractory metals in additive manufacturing.
topic Additive manufacturing
selective laser melting
tungsten
refractory metal
parameter design
densification
linear energy
laser parameter
molten pool
property
url http://dx.doi.org/10.1080/14686996.2018.1455154
work_keys_str_mv AT chaolintan selectivelasermeltingofhighperformancepuretungstenparameterdesigndensificationbehaviorandmechanicalproperties
AT kesongzhou selectivelasermeltingofhighperformancepuretungstenparameterdesigndensificationbehaviorandmechanicalproperties
AT wenyouma selectivelasermeltingofhighperformancepuretungstenparameterdesigndensificationbehaviorandmechanicalproperties
AT bonnieattard selectivelasermeltingofhighperformancepuretungstenparameterdesigndensificationbehaviorandmechanicalproperties
AT panpanzhang selectivelasermeltingofhighperformancepuretungstenparameterdesigndensificationbehaviorandmechanicalproperties
AT tongchunkuang selectivelasermeltingofhighperformancepuretungstenparameterdesigndensificationbehaviorandmechanicalproperties
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