DocumentCode :
1608275
Title :
Development of Talbot-Lau phase-contrast method for high energy density plasma diagnostics
Author :
Valdivia, M.P. ; Stutman, D. ; Finkenthal, M.
Author_Institution :
Dept. of Phys. & Astron., Johns Hopkins Univ., Baltimore, MD, USA
fYear :
2013
Firstpage :
1
Lastpage :
5
Abstract :
Phase-contrast x-ray imaging techniques can detect density gradients in low-Z matter with the sensitivity and spatial resolution necessary to characterize High Energy Density Laboratory Plasma (HEDLP) experiments. The Talbot-Lau interferometer measures x-ray beam angular deviations due to refraction index gradients along its path, thus making it an attractive plasma diagnostic. The Talbot-Lau interferometer can simultaneously provide x-ray attenuation, refraction, and scatter images which may offer a simple diagnostic for micro instabilities. We extend the Talbot-Lau method used for medical applications to lower x-ray energies, high magnification and high spatial resolution HEDLP experiments require. We study and develop single image based phase-retrieval techniques. The experimental and simulated results obtained show a clear advantage of the Talbot-Lau Moiré technique over the attenuation and propagation methods. The Moiré technique can detect both sharp and smooth density gradients, using extended, polychromatic, incoherent, line and continuum x-ray sources, thus allowing for less demanding backlighters than those typically used in HEDLP radiography.
Keywords :
X-ray apparatus; X-ray imaging; X-ray scattering; interferometers; plasma density; plasma diagnostics; radiography; HEDLP radiography; Talbot-Lau Moire technique; Talbot-Lau interferometer; Talbot-Lau phase-contrast method development; X-ray attenuation; X-ray beam angular deviations; X-ray energies; X-ray refraction; attenuation method; attractive plasma diagnostic; continuum X-ray source; density gradient detection; extended, sources; high energy density laboratory plasma experiments; high energy density plasma diagnostics; high magnification; high spatial resolution HEDLP experiments; incoherent, sources; less demanding backlighters; line X-ray source; low-Z matter; medical applications; micro instabilities; phase-contrast X-ray imaging techniques; polychromatic, sources; propagation method; refraction index gradients; sensitivity resolution; sharp density gradient; simple diagnostic; single image based phase-retrieval techniques; smooth density gradient; spatial resolution; x-ray scatter images; Density measurement; Gratings; Physics; Plasma measurements; Plasmas; Spatial resolution; X-ray imaging; Moiré deflectometry; Talbot-Lau Interferometer; phase-contrast imaging; x-ray diagnostics;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Fusion Engineering (SOFE), 2013 IEEE 25th Symposium on
Conference_Location :
San Francisco, CA
Print_ISBN :
978-1-4799-0169-2
Type :
conf
DOI :
10.1109/SOFE.2013.6635477
Filename :
6635477
Link To Document :
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