Experimental investigation of the compression and heating of an MHD-driven jet impacting a target cloud
- Creators
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Seo, Byonghoon
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Bellan, Paul M.
Abstract
Adiabatic compression has been investigated by having an MHD-driven plasma jet impact a gas target cloud. Compression and heating of the jet upon impact were observed and compared to theoretical predictions. Diagnostics for comprehensive measurements included a Thomson scattering system, a fast movie camera, a translatable fiber-coupled interferometer, a monochromator, a visible-light photodiode, and a magnetic probe array. Measurements using these diagnostics provided the time-dependent electron density, electron temperature, continuum emission, line emission, and magnetic field profile. Increases in density and magnetic field and a decrease in jet velocity were observed during the compression. The electron temperature had a complicated time dependence, increasing at first, but then rapidly declining in less than 1 μs which is less than the total compression time. Analysis indicates that this sudden temperature drop is a consequence of radiative loss from hydrogen atoms spontaneously generated via three-body recombination in the high-density compressed plasma. A criterion for how fast compression must be to outrun radiative loss is discussed not only for the Caltech experiment but also for fusion-grade regimes. In addition, the results are analyzed in the context of shocks the effects of which are compared to adiabatic compression.
Additional Information
© 2018 Published by AIP Publishing. Received 22 June 2018; accepted 22 October 2018; published online 7 November 2018. The authors would like to thank Dr. Amelia Greig at Cal Poly San Luis Obispo for her effort on the preliminary jet-impact experiment when working at Caltech as a postdoctoral fellow. The authors would also like to acknowledge useful discussions with Dr. Hui Li at the Los Alamos National Laboratory; Dr. Li developed numerical models which are related to this experiment and which will be reported elsewhere. This research was supported by USDOE ARPA-E Grant No. DE-AR0000565.Attached Files
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Additional details
- Eprint ID
- 90717
- Resolver ID
- CaltechAUTHORS:20181107-130421517
- Department of Energy (DOE)
- DE-AR0000565
- Created
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2018-11-07Created from EPrint's datestamp field
- Updated
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2021-11-16Created from EPrint's last_modified field