Smith-Nelson, Mark A.; Cutler, Theresa Elizabeth; Hutchinson, Jesson D.
Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Funding organisation: USDOE National Nuclear Security Administration (NNSA) (United States)2016
Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Funding organisation: USDOE National Nuclear Security Administration (NNSA) (United States)2016
AbstractAbstract
[en] Momentum is a neutron multiplicity analysis software package that calculates a variety of parameters associated with Feynman histograms. While most of these parameters are documented in Cifarelli and Smith-Nelson, there are some parameters which are not. Most prominent of these are the uncertainties in the standard moments, and this paper will explicitly document these parameters. This paper will also document the higher-order Y_n parameters and their associated ω_n functions because they may be useful for future applications. The generation of what is referred to as Feynman histograms is not explained here.
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2 Jun 2016; 10 p; OSTIID--1257079; AC52-06NA25396; Available from http://permalink.lanl.gov/object/tr?what=info:lanl-repo/lareport/LA-UR-16-23837; PURL: http://www.osti.gov/servlets/purl/1257079/
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Madden, Amanda Christine; Schirato, Richard C.; Swift, Alicia L.; Cutler, Theresa Elizabeth; Mayo, Douglas R.; Hunter, James F.
Los Alamos National Laboratory (LANL), Los Alamos, NM (United States). Funding organisation: USDOE National Nuclear Security Administration (NNSA) (United States)2017
Los Alamos National Laboratory (LANL), Los Alamos, NM (United States). Funding organisation: USDOE National Nuclear Security Administration (NNSA) (United States)2017
AbstractAbstract
[en] We present that Los Alamos National Laboratory has developed a prototype of a high-energy neutron time-of-flight imaging system for the non-destructive evaluation of dense, massive, and/or high atomic number objects. High-energy neutrons provide the penetrating power, and thus the high dynamic range necessary to image internal features and defects of such objects. The addition of the time gating capability allows for scatter rejection when paired with a pulsed monoenergetic beam, or neutron energy selection when paired with a pulsed broad-spectrum neutron source. The Time Gating to Reject Scatter and Select Energy (TiGReSSE) system was tested at the Los Alamos Neutron Science Center’s (LANSCE) Weapons Nuclear Research (WNR) facility, a spallation neutron source, to provide proof of concept measurements and to characterize the instrument response. This paper will show results of several objects imaged during this run cycle. In addition, results from system performance metrics such as the Modulation Transfer Function and the Detective Quantum Efficiency measured as a function of neutron energy, characterize the current system performance and inform the next generation of neutron imaging instrument.
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LA-UR--16-24589; OSTIID--1356132; AC52-06NA25396; Available from http://www.osti.gov/pages/biblio/1356132; DOE Accepted Manuscript full text, or the publishers Best Available Version will be available free of charge after the embargo period
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IEEE Transactions on Nuclear Science; ISSN 0018-9499; ; v. PP(99); vp
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Santi, Peter Angelo; Cutler, Theresa Elizabeth; Favalli, Andrea; Koehler, Katrina Elizabeth; Henzl, Vladimir; Henzlova, Daniela; Parker, Robert Francis; Croft, Stephen
Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Funding organisation: USDOE (United States)2015
Los Alamos National Lab. (LANL), Los Alamos, NM (United States). Funding organisation: USDOE (United States)2015
AbstractAbstract
[en] In order to improve the accuracy and capabilities of neutron multiplicity counting, additional quantifiable information is needed in order to address the assumptions that are present in the point model. Extracting and utilizing higher order moments (Quads and Pents) from the neutron pulse train represents the most direct way of extracting additional information from the measurement data to allow for an improved determination of the physical properties of the item of interest. The extraction of higher order moments from a neutron pulse train required the development of advanced dead time correction algorithms which could correct for dead time effects in all of the measurement moments in a self-consistent manner. In addition, advanced analysis algorithms have been developed to address specific assumptions that are made within the current analysis model, namely that all neutrons are created at a single point within the item of interest, and that all neutrons that are produced within an item are created with the same energy distribution. This report will discuss the current status of implementation and initial testing of the advanced dead time correction and analysis algorithms that have been developed in an attempt to utilize higher order moments to improve the capabilities of correlated neutron measurement techniques.
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1 Dec 2015; 28 p; OSTIID--1227253; AC52-06NA25396; Available from http://permalink.lanl.gov/object/tr?what=info:lanl-repo/lareport/LA-UR-15-29225; PURL: http://www.osti.gov/servlets/purl/1227253/
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