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Virtual Development of Process Parameters for Bulk Metallic Glass Formation in Laser-Based Powder Bed Fusion

Lindwall, Johan ; Lundbäck, Andreas ; Marattukalam, Jithin James and Ericsson, Anders LU (2022) In Materials 15(2).
Abstract

The development of process parameters and scanning strategies for bulk metallic glass formation during additive manufacturing is time-consuming and costly. It typically involves trials with varying settings and destructive testing to evaluate the final phase structure of the experimental samples. In this study, we present an alternative method by modelling to predict the influence of the process parameters on the crystalline phase evolution during laser-based powder bed fusion (PBF-LB). The methodology is demonstrated by performing simulations, varying the following parameters: laser power, hatch spacing and hatch length. The results are compared in terms of crystalline volume fraction, crystal number density and mean crystal radius... (More)

The development of process parameters and scanning strategies for bulk metallic glass formation during additive manufacturing is time-consuming and costly. It typically involves trials with varying settings and destructive testing to evaluate the final phase structure of the experimental samples. In this study, we present an alternative method by modelling to predict the influence of the process parameters on the crystalline phase evolution during laser-based powder bed fusion (PBF-LB). The methodology is demonstrated by performing simulations, varying the following parameters: laser power, hatch spacing and hatch length. The results are compared in terms of crystalline volume fraction, crystal number density and mean crystal radius after scanning five consecutive layers. The result from the simulation shows an identical trend for the predicted crystalline phase fraction compared to the experimental estimates. It is shown that a low laser power, large hatch spacing and long hatch lengths are beneficial for glass formation during PBF-LB. The absolute values show an offset though, over-predicted by the numerical model. The method can indicate favourable parameter settings and be a complementary tool in the development of scanning strategies and processing parameters for additive manufacturing of bulk metallic glass.

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author
; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Additive manufacturing, Classical nucleation and growth theory, Crystallisation in metallic glass, Metallic glass, Simulation of laser-based powder bed fusion
in
Materials
volume
15
issue
2
article number
450
publisher
MDPI AG
external identifiers
  • pmid:35057168
  • scopus:85122234396
ISSN
1996-1944
DOI
10.3390/ma15020450
language
English
LU publication?
yes
id
241087ff-7602-4367-a2ad-bddb0ba31fe8
date added to LUP
2022-02-02 16:44:10
date last changed
2024-06-16 16:15:31
@article{241087ff-7602-4367-a2ad-bddb0ba31fe8,
  abstract     = {{<p>The development of process parameters and scanning strategies for bulk metallic glass formation during additive manufacturing is time-consuming and costly. It typically involves trials with varying settings and destructive testing to evaluate the final phase structure of the experimental samples. In this study, we present an alternative method by modelling to predict the influence of the process parameters on the crystalline phase evolution during laser-based powder bed fusion (PBF-LB). The methodology is demonstrated by performing simulations, varying the following parameters: laser power, hatch spacing and hatch length. The results are compared in terms of crystalline volume fraction, crystal number density and mean crystal radius after scanning five consecutive layers. The result from the simulation shows an identical trend for the predicted crystalline phase fraction compared to the experimental estimates. It is shown that a low laser power, large hatch spacing and long hatch lengths are beneficial for glass formation during PBF-LB. The absolute values show an offset though, over-predicted by the numerical model. The method can indicate favourable parameter settings and be a complementary tool in the development of scanning strategies and processing parameters for additive manufacturing of bulk metallic glass.</p>}},
  author       = {{Lindwall, Johan and Lundbäck, Andreas and Marattukalam, Jithin James and Ericsson, Anders}},
  issn         = {{1996-1944}},
  keywords     = {{Additive manufacturing; Classical nucleation and growth theory; Crystallisation in metallic glass; Metallic glass; Simulation of laser-based powder bed fusion}},
  language     = {{eng}},
  month        = {{01}},
  number       = {{2}},
  publisher    = {{MDPI AG}},
  series       = {{Materials}},
  title        = {{Virtual Development of Process Parameters for Bulk Metallic Glass Formation in Laser-Based Powder Bed Fusion}},
  url          = {{http://dx.doi.org/10.3390/ma15020450}},
  doi          = {{10.3390/ma15020450}},
  volume       = {{15}},
  year         = {{2022}},
}