Title :
Pulsed photofission delayed gamma ray detection for nuclear material identification
Author :
Kavouras, John ; Xianfei Wen ; Norman, Daren R. ; Nakazawa, Dante R. ; Haori Yang
Author_Institution :
Univ. of Utah, Salt Lake City, UT, USA
fDate :
Oct. 27 2012-Nov. 3 2012
Abstract :
Innovative systems with increased sensitivity and resolution are in great demand to detect diversion and to prevent misuse in support of nuclear materials management for the U.S. fuel cycle. Nuclear fission is the most important multiplicative process involved in non-destructive active interrogation. This process produces the most easily recognizable signature for nuclear materials. High-energy gamma rays can also excite a nucleus and cause fission through a process known as photofission. After photofission reactions, delayed signals are easily distinguishable from the interrogating radiation. LINAC-based, advanced inspection techniques utilizing the fission signals after photofission have been extensively studied for homeland security applications. Previous research also showed that a unique delayed gamma ray energy spectrum exists for each fissionable isotope. Isotopic composition measurement methods based on delayed gamma ray spectroscopy will be the primary focus of this work.
Keywords :
gamma-ray detection; gamma-ray spectrometers; gamma-ray spectroscopy; nondestructive testing; photofission; radioactivity measurement; LINAC-based techniques; US fuel cycle; advanced inspection techniques; delayed gamma ray spectroscopy; fission signals; fissionable isotope; gamma ray energy spectrum; high-energy gamma rays; isotopic composition measurement methods; multiplicative process; nondestructive active interrogation; nuclear fission; nuclear materials management; pulsed photofission delayed gamma ray detection;
Conference_Titel :
Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2012 IEEE
Conference_Location :
Anaheim, CA
Print_ISBN :
978-1-4673-2028-3
DOI :
10.1109/NSSMIC.2012.6551068