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Titlebook: Nuclear Back-end and Transmutation Technology for Waste Disposal; Beyond the Fukushima Ken Nakajima Book‘‘‘‘‘‘‘‘ 2015 The Editor(s) (if app

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Nuclear Transmutation of Long-Lived Nuclides with Laser Compton Scattering: Quantitative Analysis byal photonuclear reaction cross sections versus incident photon energy, are calculated. The incident photon energy obtained by laser Compton scattering is also optimized. It is shown that the transmutation with medium-energy photon with a flux of more than 10./s effectively reduces the radioactivity of the target .Cs.
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Study on Neutron Spectrum of Pulsed Neutron Reactorriticality becomes deep. This fact suggests to us that group constants to be used in the design study should change with the degree of subcriticality of the target system, even in the case of the same composition.
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Development of Nondestructive Assay to Fuel Debris of Fukushima Daiichi NPP (1): Experimental Valida suppressed by applying the self-indication method. Finally, we have demonstrated a nondestructive assay of nuclear material using a mixture composed of a natural uranium foil, sealed minor actinide samples of .Np and .Am. The results indicated that the self-indication method is useful for assaying
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Development of Nondestructive Assay of Fuel Debris of Fukushima Daiichi NPP (2): Numerical Validatiored to the conventional method..In this study, numerical validation for the self-indication method to identify and quantify nuclides in a BWR-MOX pellet is described. The burn-up of the MOX pellet is 0 GWd/t, 10 GWd/t, 20 GWd/t, 30 GWd/t, 40 GWd/t, and 50 GWd/t. The 12-m measurement line in KUR-LINA
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Development of the Method to Assay Barely Measurable Elements in Spent Nuclear Fuel and Application nergy Safety Organization. In this work, a measurement method was developed combining a simple and effective chemical separation scheme of fission products from used nuclear fuel and an inductively coupled plasma mass spectrometry with high sensitivity and high precision. This method was applied to
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Design of J-PARC Transmutation Experimental Facilityrget, and the other is the Transmutation Physics Experimental Facility (TEF-P), which will set up a fast critical/subcritical assembly driven by a low-power proton beam. TEF will be located at the end of the 400 MeV LINAC of J-PARC and accept a 250-kW proton beam with repetition rate of 25 Hz. As ma
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