Coupling High-Energy Radiography And Photon Activation Analysis (PAA) To Optimize The Characterization Of Nuclear Waste Packages

2009 ◽  
Author(s):  
F. Carrel ◽  
M. Agelou ◽  
M. Gmar ◽  
F. Lainé ◽  
T. Lamotte ◽  
...  
2014 ◽  
Vol 61 (4) ◽  
pp. 2137-2143 ◽  
Author(s):  
Frederick Carrel ◽  
Bruno Charbonnier ◽  
Romain Coulon ◽  
Frederic Laine ◽  
Stephane Normand ◽  
...  

2019 ◽  
Vol 25 ◽  
pp. 249
Author(s):  
N. Togia ◽  
T. Vasilopoulou ◽  
E. Filippaki ◽  
P. Georgolopoulou ◽  
T. J. Mertzimekis ◽  
...  

N/A


Minerals ◽  
2021 ◽  
Vol 11 (6) ◽  
pp. 617
Author(s):  
Ivana Krausová ◽  
Jiří Mizera ◽  
Zdeněk Řanda ◽  
David Chvátil ◽  
Pavel Krist

This paper introduces instrumental photon activation analysis (IPAA) utilizing short-lived products of photonuclear reactions, mainly (γ, n) and (γ, p), initiated by bremsstrahlung from the MT-25 microtron. A rapid nondestructive IPAA method for geochemical major element analysis is introduced as a tool for the basic geochemical characterization of rocks. Procedures were developed and parameters such as beam energy and irradiation-decay-counting times optimized with a representative set of geochemical reference materials, and an optimized scheme was applied in analysis of various geological samples. A complete analytical scheme combined with long-time irradiation IPAA and the possibility of utilization of photoexcitation reactions (γ, γ′) are briefly outlined.


2021 ◽  
Vol 4 (1) ◽  
Author(s):  
Francesco Mirani ◽  
Daniele Calzolari ◽  
Arianna Formenti ◽  
Matteo Passoni

AbstractLaser-driven radiation sources are attracting increasing attention for several materials science applications. While laser-driven ions, electrons and neutrons have already been considered to carry out the elemental characterization of materials, the possibility to exploit high-energy photons remains unexplored. Indeed, the electrons generated by the interaction of an ultra-intense laser pulse with a near-critical material can be turned into high-energy photons via bremsstrahlung emission when shot into a high-Z converter. These photons could be effectively exploited to perform Photon Activation Analysis (PAA). In the present work, laser-driven PAA is proposed and investigated. We develop a theoretical approach to identify the optimal experimental conditions for laser-driven PAA in a wide range of laser intensities. Lastly, exploiting the Monte Carlo and Particle-In-Cell tools, we successfully simulate PAA experiments performed with both conventional accelerators and laser-driven sources. Under high repetition rate operation (i.e. 1−10 Hz) conditions, the ultra-intense lasers can allow performing PAA with performances comparable with those achieved with conventional accelerators. Moreover, laser-driven PAA could be exploited jointly with complementary laser-driven materials characterization techniques under investigation in existing laser facilities.


2019 ◽  
Vol 107 (2) ◽  
pp. 149-156
Author(s):  
Canel Eke ◽  
Ismail Boztosun ◽  
Christian Segebade

Abstract The purpose of this study is to demonstrate the feasibility of elemental analysis of sand samples by photon activation induced by high energy bremsstrahlung photons at an end point energy of 18 MeV from a clinical electron linear accelerator. The γ-ray spectra of the activated samples were collected using a high resolution spectrometer. Qualitative analysis of major and trace components of the samples (12 in total) was carried out whilst the spectra of eight of the samples were evaluated quantitatively. The contents of elements obtained by photon activation analysis were compared with values obtained by X-ray fluorescence.


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