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Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal

Laser powder bed fusion (LPBF) of Zn-based metals exhibits prominent advantages to produce customized biodegradable implants. However, massive evaporation occurs during laser melting of Zn so that it becomes a critical issue to modulate laser energy input and gas shielding conditions to eliminate th...

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Autores principales: Qin, Yu, Liu, Jinge, Chen, Yanzhe, Wen, Peng, Zheng, Yufeng, Tian, Yun, Voshage, Maximilian, Schleifenbaum, Johannes Henrich
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8160986/
https://www.ncbi.nlm.nih.gov/pubmed/34065320
http://dx.doi.org/10.3390/ma14102677
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author Qin, Yu
Liu, Jinge
Chen, Yanzhe
Wen, Peng
Zheng, Yufeng
Tian, Yun
Voshage, Maximilian
Schleifenbaum, Johannes Henrich
author_facet Qin, Yu
Liu, Jinge
Chen, Yanzhe
Wen, Peng
Zheng, Yufeng
Tian, Yun
Voshage, Maximilian
Schleifenbaum, Johannes Henrich
author_sort Qin, Yu
collection PubMed
description Laser powder bed fusion (LPBF) of Zn-based metals exhibits prominent advantages to produce customized biodegradable implants. However, massive evaporation occurs during laser melting of Zn so that it becomes a critical issue to modulate laser energy input and gas shielding conditions to eliminate the negative effect of evaporation fume during the LPBF process. In this research, two numerical models were established to simulate the interaction between the scanning laser and Zn metal as well as the interaction between the shielding gas flow and the evaporation fume, respectively. The first model predicted the evaporation rate under different laser energy input by taking the effect of evaporation on the conservation of energy, momentum, and mass into consideration. With the evaporation rate as the input, the second model predicted the elimination effect of evaporation fume under different conditions of shielding gas flow by taking the effect of the gas circulation system including geometrical design and flow rate. In the case involving an adequate laser energy input and an optimized shielding gas flow, the evaporation fume was efficiently removed from the processing chamber during the LPBF process. Furthermore, the influence of evaporation on surface quality densification was discussed by comparing LPBF of pure Zn and a Titanium alloy. The established numerical analysis not only helps to find the adequate laser energy input and the optimized shielding gas flow for the LPBF of Zn based metal, but is also beneficial to understand the influence of evaporation on the LPBF process.
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spelling pubmed-81609862021-05-29 Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal Qin, Yu Liu, Jinge Chen, Yanzhe Wen, Peng Zheng, Yufeng Tian, Yun Voshage, Maximilian Schleifenbaum, Johannes Henrich Materials (Basel) Article Laser powder bed fusion (LPBF) of Zn-based metals exhibits prominent advantages to produce customized biodegradable implants. However, massive evaporation occurs during laser melting of Zn so that it becomes a critical issue to modulate laser energy input and gas shielding conditions to eliminate the negative effect of evaporation fume during the LPBF process. In this research, two numerical models were established to simulate the interaction between the scanning laser and Zn metal as well as the interaction between the shielding gas flow and the evaporation fume, respectively. The first model predicted the evaporation rate under different laser energy input by taking the effect of evaporation on the conservation of energy, momentum, and mass into consideration. With the evaporation rate as the input, the second model predicted the elimination effect of evaporation fume under different conditions of shielding gas flow by taking the effect of the gas circulation system including geometrical design and flow rate. In the case involving an adequate laser energy input and an optimized shielding gas flow, the evaporation fume was efficiently removed from the processing chamber during the LPBF process. Furthermore, the influence of evaporation on surface quality densification was discussed by comparing LPBF of pure Zn and a Titanium alloy. The established numerical analysis not only helps to find the adequate laser energy input and the optimized shielding gas flow for the LPBF of Zn based metal, but is also beneficial to understand the influence of evaporation on the LPBF process. MDPI 2021-05-20 /pmc/articles/PMC8160986/ /pubmed/34065320 http://dx.doi.org/10.3390/ma14102677 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Qin, Yu
Liu, Jinge
Chen, Yanzhe
Wen, Peng
Zheng, Yufeng
Tian, Yun
Voshage, Maximilian
Schleifenbaum, Johannes Henrich
Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal
title Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal
title_full Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal
title_fullStr Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal
title_full_unstemmed Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal
title_short Influence of Laser Energy Input and Shielding Gas Flow on Evaporation Fume during Laser Powder Bed Fusion of Zn Metal
title_sort influence of laser energy input and shielding gas flow on evaporation fume during laser powder bed fusion of zn metal
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8160986/
https://www.ncbi.nlm.nih.gov/pubmed/34065320
http://dx.doi.org/10.3390/ma14102677
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