Implementation of compound refractive lenses for large field-of-view x-ray phase-contrast imaging during hypervelocity impact experiments
Abstract
Synchrotron x-ray phase-contrast imaging (XPCI) offers time-resolved visualization of dynamic compression phenomena, but its intrinsically small field-of-view (FOV) limits the time that key features remain in frame. A novel approach to enlarge the FOV is achieved by positioning a two-dimensional parabolic compound refractive lens (CRL) upstream of the sample to deliberately defocus the white beam. Ray-tracing simulations and XPCI measurements show that this CRL configuration can expand the beam by ∼50% vertically and ∼15% horizontally based on the full width at half-maximum of the beam. Implementing the CRL, however, attenuates the photon flux and lowers signal-to-noise ratio (SNR). Task-based analysis using a calibration grid (30 μm dots) showed that both setups fail to consistently meet the Rose criterion (SNR ≥ 5) for features of this size in single-bunch imaging. Extrapolating the measured SNRRose values suggests that the minimum consistently detectable feature lies closer to 30–40 μm for the standard XPCI setup and above 40 μm for CRL-XPCI. Despite this limitation, the CRL configuration nearly doubles the illuminated area, enabling simultaneous tracking of front and rear observations of boron carbide targets subjected to rod and sphere impacts at 1.0–2.6 km/s. Image tracking algorithms and photonic Doppler velocimetry were used to measure penetration and rear-surface velocity histories. Together, these measurements capture crack fronts, penetration, and material breakout, offering new benchmark data for validating high-strain-rate constitutive models of ceramic materials.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (5)
Emilio S. Loera
The University of Texas at El Paso 1 Department of Metallurgical, Materials, and Biomedical Engineering, , El Paso, Texas 79968,
Yuelin Li
Guangdong Provincial Key Laboratory of Applied Botany, South China Botanical Garden, Guangzhou, China.
Nicholas W. Sinclair
Dynamic Compression Sector (DCS), Institute for Shock Physics, Washington State University 2 , Argonne, Illinois 60439,
Thomas E. Lacy
Texas A&M University 4 Department of Mechanical Engineering, , College Station, Texas 77843,
Brian E. Schuster
The University of Texas at El Paso 1 Department of Metallurgical, Materials, and Biomedical Engineering, , El Paso, Texas 79968,