Cargando…

Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process

Wire-based metal additive manufacturing utilizes the ability of additive manufacturing to fabricate complex geometries with high deposition rates (above 7 kg/h), thus finding applications in the fabrication of large-scale components, such as stamping dies. Traditionally, the workhorse materials for...

Descripción completa

Detalles Bibliográficos
Autores principales: Roy, Sougata, Shassere, Benjamin, Yoder, Jake, Nycz, Andrzej, Noakes, Mark, Narayanan, Badri K., Meyer, Luke, Paul, Jonathan, Sridharan, Niyanth
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7662812/
https://www.ncbi.nlm.nih.gov/pubmed/33138204
http://dx.doi.org/10.3390/ma13214855
_version_ 1783609483757355008
author Roy, Sougata
Shassere, Benjamin
Yoder, Jake
Nycz, Andrzej
Noakes, Mark
Narayanan, Badri K.
Meyer, Luke
Paul, Jonathan
Sridharan, Niyanth
author_facet Roy, Sougata
Shassere, Benjamin
Yoder, Jake
Nycz, Andrzej
Noakes, Mark
Narayanan, Badri K.
Meyer, Luke
Paul, Jonathan
Sridharan, Niyanth
author_sort Roy, Sougata
collection PubMed
description Wire-based metal additive manufacturing utilizes the ability of additive manufacturing to fabricate complex geometries with high deposition rates (above 7 kg/h), thus finding applications in the fabrication of large-scale components, such as stamping dies. Traditionally, the workhorse materials for stamping dies have been martensitic steels. However, the complex thermal gyrations induced during additive manufacturing can cause the evolution of an inhomogeneous microstructure, which leads to a significant scatter in the mechanical properties, especially the toughness. Therefore, to understand these phenomena, arc-based additive AISI 410 samples were fabricated using robotic gas metal arc welding (GMAW) and were subjected to a detailed characterization campaign. The results show significant scatter in the tensile properties as well as Charpy V-notch impact toughness data, which was then correlated to the microstructural heterogeneity and delta (δ) ferrite formation. Post-processing (austenitizing and tempering) treatments were developed and an ~70% reduction in the scatter of tensile data and a four-times improvement in the toughness were obtained. The changes in mechanical properties were rationalized based on the microstructure evolution during additive manufacturing. Based on these, an outline to tailor the composition of “printable” steels for tooling with isotropic and uniform mechanical properties is presented and discussed.
format Online
Article
Text
id pubmed-7662812
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-76628122020-11-14 Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process Roy, Sougata Shassere, Benjamin Yoder, Jake Nycz, Andrzej Noakes, Mark Narayanan, Badri K. Meyer, Luke Paul, Jonathan Sridharan, Niyanth Materials (Basel) Article Wire-based metal additive manufacturing utilizes the ability of additive manufacturing to fabricate complex geometries with high deposition rates (above 7 kg/h), thus finding applications in the fabrication of large-scale components, such as stamping dies. Traditionally, the workhorse materials for stamping dies have been martensitic steels. However, the complex thermal gyrations induced during additive manufacturing can cause the evolution of an inhomogeneous microstructure, which leads to a significant scatter in the mechanical properties, especially the toughness. Therefore, to understand these phenomena, arc-based additive AISI 410 samples were fabricated using robotic gas metal arc welding (GMAW) and were subjected to a detailed characterization campaign. The results show significant scatter in the tensile properties as well as Charpy V-notch impact toughness data, which was then correlated to the microstructural heterogeneity and delta (δ) ferrite formation. Post-processing (austenitizing and tempering) treatments were developed and an ~70% reduction in the scatter of tensile data and a four-times improvement in the toughness were obtained. The changes in mechanical properties were rationalized based on the microstructure evolution during additive manufacturing. Based on these, an outline to tailor the composition of “printable” steels for tooling with isotropic and uniform mechanical properties is presented and discussed. MDPI 2020-10-29 /pmc/articles/PMC7662812/ /pubmed/33138204 http://dx.doi.org/10.3390/ma13214855 Text en © 2020 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
Roy, Sougata
Shassere, Benjamin
Yoder, Jake
Nycz, Andrzej
Noakes, Mark
Narayanan, Badri K.
Meyer, Luke
Paul, Jonathan
Sridharan, Niyanth
Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process
title Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process
title_full Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process
title_fullStr Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process
title_full_unstemmed Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process
title_short Mitigating Scatter in Mechanical Properties in AISI 410 Fabricated via Arc-Based Additive Manufacturing Process
title_sort mitigating scatter in mechanical properties in aisi 410 fabricated via arc-based additive manufacturing process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7662812/
https://www.ncbi.nlm.nih.gov/pubmed/33138204
http://dx.doi.org/10.3390/ma13214855
work_keys_str_mv AT roysougata mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT shasserebenjamin mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT yoderjake mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT nyczandrzej mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT noakesmark mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT narayananbadrik mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT meyerluke mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT pauljonathan mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess
AT sridharanniyanth mitigatingscatterinmechanicalpropertiesinaisi410fabricatedviaarcbasedadditivemanufacturingprocess