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April 27, 2026Scientific Reports0 citationsOpen Access

X-ray tomography of damage dynamics in advanced materials using a laser wakefield accelerator

VSVigneshvar SenthilkumaranNBN. F. BeierSFS. Fourmaux

Key Points

  • This study aims to investigate pore dynamics in advanced materials under stress using x-ray tomography.
  • Introduced laboratory-scale 'betatron' x-rays from laser wakefield acceleration for high-throughput x-ray tomography.
  • Coupled the x-ray method with 3D finite element modeling for detailed analysis.
  • Analyzed pore dynamics in additively manufactured AlSi10Mg alloys.
  • Revealed that pore shape and local triaxiality significantly influence fracture dynamics.
  • Demonstrated the potential of laser-betatron x-ray μCT for generating large datasets.
  • Supported advanced material characterization through insights into stress-porosity interactions.

Abstract

Additively manufactured (AM) metals offer the potential for customizable, cost-effective components, but qualification and certification are crucial. Key to this process is understanding pore dynamics under stress, typically analyzed using micro-computed tomography. This study introduces laboratory-scale “betatron” x-rays from laser wakefield acceleration as a high-throughput alternative for x-ray tomography of advanced materials, such as AM AlSi10Mg alloys. Coupled with 3D finite element modeling, this method provides detailed insights into stress-porosity interactions. The approach delivers high-resolution scans, revealing that pore shape and local triaxiality significantly influence fracture dynamics, supporting advanced material characterization. This work also demonstrates the potential and versatility of laser-betatron x-ray CT for generating large datasets to accelerate our understanding of the stochastic, process-specific nature of pore formation in AM alloys.

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Cite This Study

Senthilkumaran et al. (2026) studied this question.

synapsesocial.com/papers/69eefcf4fede9185760d3b3chttps://doi.org/10.1038/s41598-026-47926-4
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