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April 26, 2026Review of Scientific Instruments0 citations

Development of a broadband hard x-ray radiography platform for pulsed-power experiments

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HSH. SawadaLCL L ChenSGS. Gulihar

Key Points

  • The aim is to develop a diagnostic platform for imaging current-driven compressed matter using advanced radiographic techniques.
  • Integrated point-projection radiography, bremsstrahlung measurements, and pinhole imaging.
  • Conducted laser-pulsed-power coupled experiments to identify background radiation sources.
  • Validated diagnostic platform against known x-ray sources, utilizing both spectral and spatial diagnostics.
  • Identified energetic electrons as the dominant source of background radiation, with energies of 3-4 MeV.
  • Mitigation strategies for background hard x-rays improved radiographic image clarity.
  • Agreement between measured transmission profiles and simulations validated the diagnostic platform for high-density plasma observations.

Abstract

We develop and demonstrate a broadband hard x-ray radiography platform at the Zebra Pulsed Power Laboratory that integrates point-projection radiography, bremsstrahlung measurements, and hard x-ray pinhole imaging, designed to diagnose current-driven, cylindrically compressed matter. Initial laser-pulsed-power coupled experiments revealed that intense background radiation generated during 1 MA Zebra current shots overwhelmed laser-produced hard x-rays, obscuring radiographic images. Using combined spectral and spatial diagnostics, we identify energetic electrons accelerated by return currents as the dominant source of background hard x-rays, with electron energies inferred to be 3-4 MeV based on Monte Carlo simulations, and demonstrate mitigation through modifications to the radiation shielding and return-current configuration. The diagnostic platform was validated using a wire-pinch hard x-ray source, allowing radiographs of static 1-mm-diameter aluminum wires to be obtained while simultaneously measuring x-ray source spectra and spatial emission distributions within a single shot. Measured wire transmission profiles were quantitatively reconstructed using radiation transport simulations that incorporate an experimentally inferred two-temperature exponential x-ray spectrum from bremsstrahlung signal analysis and spatially distributed emission sources identified by pinhole imaging. Agreement between measured and simulated transmission profiles demonstrates the validity of the radiographic and x-ray source characterization approach, establishing this diagnostic platform as a promising tool for diagnosing magnetically driven, high-density plasmas relevant to warm dense matter and inertial fusion energy research.

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Cite This Study

Sawada et al. (2026) studied this question.

synapsesocial.com/papers/69edabb84a46254e215b398bhttps://doi.org/10.1063/5.0320865
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