Towards Compact Laser-Driven Neutron Sources: A Numerical Study of Liquid Leaf Targets for High Repetition Rate Laser Experiments and Neutron Production Using Deep Learning

Towards Compact Laser-Driven Neutron Sources: A Numerical Study of Liquid Leaf Targets for High Repetition Rate Laser Experiments and Neutron Production Using Deep Learning
Title Towards Compact Laser-Driven Neutron Sources: A Numerical Study of Liquid Leaf Targets for High Repetition Rate Laser Experiments and Neutron Production Using Deep Learning PDF eBook
Author Benedikt Schmitz
Publisher
Pages 0
Release 2023
Genre
ISBN

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Assessment of Laser-Driven Pulsed Neutron Sources for Poolside Neutron-based Advanced NDE - A Pathway to LANSCE-like Characterization at INL.

Assessment of Laser-Driven Pulsed Neutron Sources for Poolside Neutron-based Advanced NDE - A Pathway to LANSCE-like Characterization at INL.
Title Assessment of Laser-Driven Pulsed Neutron Sources for Poolside Neutron-based Advanced NDE - A Pathway to LANSCE-like Characterization at INL. PDF eBook
Author
Publisher
Pages 64
Release 2017
Genre
ISBN

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A variety of opportunities for characterization of fresh nuclear fuels using thermal (~25meV) and epithermal (~10eV) neutrons have been documented at Los Alamos National Laboratory. They include spatially resolved non-destructive characterization of features, isotopic enrichment, chemical heterogeneity and stoichiometry. The LANSCE spallation neutron source is well suited in neutron fluence and temporal characteristics for studies of fuels. However, recent advances in high power short pulse lasers suggest that compact neutron sources might, over the next decade, become viable at a price point that would permit their consideration for poolside characterization on site at irradiation facilities. In a laser-driven neutron source the laser is used to accelerate deuterium ions into a beryllium target where neutrons are produced. At this time, the technology is new and their total neutron production is approximately four orders of magnitude less than a facility like LANSCE. However, recent measurements on a sub-optimized system demonstrated>1010 neutrons in sub-nanosecond pulses in predominantly forward direction. The compactness of the target system compared to a spallation target may allow exchanging the target during a measurement to e.g. characterize a highly radioactive sample with thermal, epithermal, and fast neutrons as well as hard X-rays, thus avoiding sample handling. At this time several groups are working on laser-driven neutron production and are advancing concepts for lasers, laser targets, and optimized neutron target/moderator systems. Advances in performance sufficient to enable poolside fuels characterization with LANSCE-like fluence on sample within a decade may be possible. This report describes the underlying physics and state-of-the-art of the laser-driven neutron production process from the perspective of the DOE/NE mission. It also discusses the development and understanding that will be necessary to provide customized capability for characterization of irradiated fuels. Potential operational advantages compared to a spallation neutron source include reduced shielding complexity, reduced energy requirements, and a production target free of fission products. Contributors to this report include experts in laser-driven neutron production (Roth, Fernandez), laser design (Haefner, Siders, Leemans), laser target design (Glenzer), spallation target/moderator design (Mocko), neutron instrumentation and characterization applications (Vogel, Bourke).

Characterization and Application of a Laser-driven Intense Pulsed Neutron Source Using Trident

Characterization and Application of a Laser-driven Intense Pulsed Neutron Source Using Trident
Title Characterization and Application of a Laser-driven Intense Pulsed Neutron Source Using Trident PDF eBook
Author
Publisher
Pages 6
Release 2016
Genre
ISBN

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A team of Los Alamos researchers supported a final campaign to use the Trident laser to produce neutrons, contributed their multidisciplinary expertise to experimentally assess if laser-driven neutron sources can be useful for MaRIE. MaRIE is the Laboratory's proposed experimental facility for the study of matter-radiation interactions in extremes. Neutrons provide a radiographic probe that is complementary to x-rays and protons, and can address imaging challenges not amenable to those beams. The team's efforts characterize the Laboratory's responsiveness, flexibility, and ability to apply diverse expertise where needed to perform successful complex experiments.

Experimental Results on the First Short Pulse Laser Driven Neutron Source Powerful Enough For Applications In Radiography

Experimental Results on the First Short Pulse Laser Driven Neutron Source Powerful Enough For Applications In Radiography
Title Experimental Results on the First Short Pulse Laser Driven Neutron Source Powerful Enough For Applications In Radiography PDF eBook
Author
Publisher
Pages
Release 2012
Genre
ISBN

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Optimizing Laser-accelerated Ion Beams for a Collimated Neutron Source

Optimizing Laser-accelerated Ion Beams for a Collimated Neutron Source
Title Optimizing Laser-accelerated Ion Beams for a Collimated Neutron Source PDF eBook
Author
Publisher
Pages 201
Release 2010
Genre
ISBN

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High-flux neutrons for imaging and materials analysis applications have typically been provided by accelerator- and reactor-based neutron sources. A novel approach is to use ultraintense (>1018W/cm2) lasers to generate picosecond, collimated neutrons from a dual target configuration. In this article, the production capabilities of present and upcoming laser facilities are estimated while independently maximizing neutron yields and minimizing beam divergence. A Monte-Carlo code calculates angular and energy distributions of neutrons generated by D-D fusion events occurring within a deuterated target for a given incident beam of D+ ions. Tailoring of the incident distribution via laser parameters and microlens focusing modifies the emerging neutrons. Projected neutron yields and distributions are compared to conventional sources, yielding comparable on-target fluxes per discharge, shorter time resolution, larger neutron energies and greater collimation.

High-intensity laser generated neutrons

High-intensity laser generated neutrons
Title High-intensity laser generated neutrons PDF eBook
Author Stefan Karsch
Publisher
Pages
Release 2003
Genre
ISBN

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Neutron Sources from Laser Plasma Interactions

Neutron Sources from Laser Plasma Interactions
Title Neutron Sources from Laser Plasma Interactions PDF eBook
Author Xuejing Jiao
Publisher
Pages 254
Release 2019
Genre
ISBN

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