arXiv Open Access 2024

Harnessing metastability for grain size control in multiprincipal element alloys during additive manufacturing

Akane Wakai Jenniffer Bustillos Noah Sargent Jamesa Stokes Wei Xiong +2 lainnya
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Abstrak

Controlling microstructure in fusion-based metal additive manufacturing (AM) remains a challenge due to numerous parameters directly impacting solidification conditions. Multiprincipal element alloys (MPEAs) offer a vast compositional design space for microstructural engineering due to their chemical complexity and exceptional properties. Here, we establish a novel alloy design paradigm in MPEAs for AM using the FeMnCoCr system. By exploiting the decreasing phase stability with increasing Mn content, we achieve notable grain refinement and breakdown of columnar grain growth. We combine thermodynamic modeling, operando synchrotron X-ray diffraction, multiscale microstructural characterization, and mechanical testing to gain insight into the solidification physics and its ramifications on the resulting microstructure. This work paves way for tailoring grain sizes through targeted manipulation of phase stability, thereby advancing microstructure control in AM.

Topik & Kata Kunci

Penulis (7)

A

Akane Wakai

J

Jenniffer Bustillos

N

Noah Sargent

J

Jamesa Stokes

W

Wei Xiong

T

Timothy M. Smith

A

Atieh Moridi

Format Sitasi

Wakai, A., Bustillos, J., Sargent, N., Stokes, J., Xiong, W., Smith, T.M. et al. (2024). Harnessing metastability for grain size control in multiprincipal element alloys during additive manufacturing. https://arxiv.org/abs/2405.03670

Akses Cepat

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Tahun Terbit
2024
Bahasa
en
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arXiv
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Open Access ✓