DOE OSTI · 1890250
Multi-frame, ultrafast, x-ray microscope for imaging shockwave dynamics
Abstract
Inertial confinement fusion (ICF) holds increasing promise as a potential source of abundant, clean energy, but has been impeded by defects such as micro-voids in the ablator layer of the fuel capsules. It is critical to understand how these micro-voids interact with the laser-driven shock waves that compress the fuel pellet. At the Matter in Extreme Conditions (MEC) instrument at the Linac Coherent Light Source (LCLS), we utilized an x-ray pulse train with ns separation, an x-ray microscope, and an ultrafast x-ray imaging (UXI) detector to image shock wave interactions with micro-voids. To minimize the high- and low-frequency variations of the captured images, we incorporated principal component analysis (PCA) and image alignment for flat-field correction. After applying these techniques we generated phase and attenuation maps from a 2D hydrodynamic radiation code (xRAGE), which were used to simulate XPCI images that we qualitatively compare with experimental images, providing a one-to-one comparison for benchmarking material performance. Moreover, we implement a transport-of-intensity (TIE) based method to obtain the average projected mass density (areal density) of our experimental images, yielding insight into how defect-bearing ablator materials alter microstructural feature evolution, material compression, and shock wave propagation on ICF-relevant time scales.
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Hodge, Daniel S. (ORCID:0000000188273086), Leong, Andrew F. T., Pandolfi, Silvia, Kurzer-Ogul, Kelin, Montgomery, David S., Aluie, Hussein, Bolme, Cindy, Carver, Thomas, Cunningham, Eric (ORCID:0000000209764416), Curry, Chandra B., Dayton, Matthew, Decker, Franz-Joseph, Galtier, Eric, Hart, Philip, Khaghani, Dimitri (ORCID:0000000251392310), Ja Lee, Hae, Li, Kenan (ORCID:000000025311930X), Liu, Yanwei (ORCID:0000000181253904), Ramos, Kyle, Shang, Jessica, Vetter, Sharon, Nagler, Bob, Sandberg, Richard L. (ORCID:0000000197198188), Gleason, Arianna E.. 2022-09-30. Multi-frame, ultrafast, x-ray microscope for imaging shockwave dynamics. https://doi.org/10.1364/oe.472275
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