Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator

<p> Neutrons produced deuterium Z-pinch plasmas are widely acknowledged to be a consequence of highly accelerated deuterons undergoing nuclear fusion with relatively stationary deuterons. The acceleration is thought to occur in intense fields created in the MHD instabilities that punctuate the...

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Main Author: McKee, Erik Scott
Language:EN
Published: University of Nevada, Reno 2017
Subjects:
Online Access:http://pqdtopen.proquest.com/#viewpdf?dispub=10247687
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spelling ndltd-PROQUEST-oai-pqdtoai.proquest.com-102476872017-02-23T16:07:38Z Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator McKee, Erik Scott Plasma physics <p> Neutrons produced deuterium Z-pinch plasmas are widely acknowledged to be a consequence of highly accelerated deuterons undergoing nuclear fusion with relatively stationary deuterons. The acceleration is thought to occur in intense fields created in the MHD instabilities that punctuate the plasma column. Interestingly, the energies of the accelerated ions exceed the applied voltage across the electrode gap. We use the 1 MA Zebra pulsed-power generator at the Nevada Terawatt Facility (NTF) to explore this poorly understood fast neutron production mechanism by creating deuterium Z-pinches in three distinct types of target loads. The loads are a cylindrical shell of deuterium gas, the far less explored deuterided palladium wire arrays, and a deuterium-carbon ablated laser plume target, which is unique to the NTF. </p><p> The pinch dynamics vary considerably in these three targets and provide the opportunity to explore the ion acceleration mechanism. We infer the characteristics of the accelerating fields from a wide range of diagnostic data including the neutron yield, energy spectrum and angular distribution, and the properties of the matching electron beams that are accelerated in the same field, and the energetic X-rays they produce on stopping. The plasma and the instabilities were recorded on several high-speed imaging diagnostics along with time-integrated soft (&lt;10 keV) X-ray pinhole images. The three load types produced total neutron yields in the 10<sup>8</sup>&ndash;10<sup>10</sup> n/pulse range. The synchronization we observe between the ion and electron beams and the development of instabilities leads us to conrm the acceleration hypothesis. We also present the characteristics of the fields and ion beams in these varied pinches.</p> University of Nevada, Reno 2017-02-18 00:00:00.0 thesis http://pqdtopen.proquest.com/#viewpdf?dispub=10247687 EN
collection NDLTD
language EN
sources NDLTD
topic Plasma physics
spellingShingle Plasma physics
McKee, Erik Scott
Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator
description <p> Neutrons produced deuterium Z-pinch plasmas are widely acknowledged to be a consequence of highly accelerated deuterons undergoing nuclear fusion with relatively stationary deuterons. The acceleration is thought to occur in intense fields created in the MHD instabilities that punctuate the plasma column. Interestingly, the energies of the accelerated ions exceed the applied voltage across the electrode gap. We use the 1 MA Zebra pulsed-power generator at the Nevada Terawatt Facility (NTF) to explore this poorly understood fast neutron production mechanism by creating deuterium Z-pinches in three distinct types of target loads. The loads are a cylindrical shell of deuterium gas, the far less explored deuterided palladium wire arrays, and a deuterium-carbon ablated laser plume target, which is unique to the NTF. </p><p> The pinch dynamics vary considerably in these three targets and provide the opportunity to explore the ion acceleration mechanism. We infer the characteristics of the accelerating fields from a wide range of diagnostic data including the neutron yield, energy spectrum and angular distribution, and the properties of the matching electron beams that are accelerated in the same field, and the energetic X-rays they produce on stopping. The plasma and the instabilities were recorded on several high-speed imaging diagnostics along with time-integrated soft (&lt;10 keV) X-ray pinhole images. The three load types produced total neutron yields in the 10<sup>8</sup>&ndash;10<sup>10</sup> n/pulse range. The synchronization we observe between the ion and electron beams and the development of instabilities leads us to conrm the acceleration hypothesis. We also present the characteristics of the fields and ion beams in these varied pinches.</p>
author McKee, Erik Scott
author_facet McKee, Erik Scott
author_sort McKee, Erik Scott
title Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator
title_short Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator
title_full Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator
title_fullStr Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator
title_full_unstemmed Neutron Production from Z-pinch Plasmas at the 1 MA Zebra Generator
title_sort neutron production from z-pinch plasmas at the 1 ma zebra generator
publisher University of Nevada, Reno
publishDate 2017
url http://pqdtopen.proquest.com/#viewpdf?dispub=10247687
work_keys_str_mv AT mckeeerikscott neutronproductionfromzpinchplasmasatthe1mazebragenerator
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