Microstructural Characterization of Additively Manufactured AISI 4140 Parts Using Magnetic Barkhausen Noise

This study investigates the application of magnetic Barkhausen noise (MBN) measurements for assessing the microstructural and residual stress characteristics of additively manufactured AISI 4140 steel. The research explores the influence of part geometry, residual stresses, and material hardness on the MBN signal, particularly in thin-walled structures produced using laser-based powder bed fusion (PBF-LB). Results indicate a strong correlation between wall thickness and MBN intensity, attributed to the penetration depth of the magnetic field and the resulting amplification in thinner sections. Furthermore, an anisotropic MBN response is observed due to residual stress distributions, with tensile stresses leading to a higher Barkhausen signal. These findings highlight the potential of MBN as a non-destructive evaluation method for quality assessment in additively manufactured components supporting future approaches for non-destructive assessment of material conditions in additively manufactured components.

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Publication Details

Journal
Materials
Published
2026-09-10
DOI
https://doi.org/10.3390/ma19183858
Primary Topic
Additive Manufacturing Materials and Processes
Type
article
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article

Microstructural Characterization of Additively Manufactured AISI 4140 Parts Using Magnetic Barkhausen Noise

Volker Schulze, Stefan Dietrich, Christian Krämer
Materials
Additive Manufacturing Materials and Processes
article

Microstructural Characterization of Additively Manufactured AISI 4140 Parts Using Magnetic Barkhausen Noise

Volker Schulze, Stefan Dietrich, Christian Krämer
article en

Abstract

This study investigates the application of magnetic Barkhausen noise (MBN) measurements for assessing the microstructural and residual stress characteristics of additively manufactured AISI 4140 steel. The research explores the influence of part geometry, residual stresses, and material hardness on the MBN signal, particularly in thin-walled structures produced using laser-based powder bed fusion (PBF-LB). Results indicate a strong correlation between wall thickness and MBN intensity, attributed to the penetration depth of the magnetic field and the resulting amplification in thinner sections. Furthermore, an anisotropic MBN response is observed due to residual stress distributions, with tensile stresses leading to a higher Barkhausen signal. These findings highlight the potential of MBN as a non-destructive evaluation method for quality assessment in additively manufactured components supporting future approaches for non-destructive assessment of material conditions in additively manufactured components.

MaterialsVol. 19(18)
Karlsruhe Institute of Technology (DE)
Openalex Percentile: Top 19%
Additive Manufacturing Materials and Processes
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Microstructural Characterization of Additively Manufactured AISI 4140 Parts Using Magnetic Barkhausen Noise — Volker Schulze, Stefan Dietrich, et al. · Materials (2026) | TGRS Research Map | TGRS