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Collective optical Thomson scattering in pulsed-power driven high energy density physics experiments (invited)
File | Description | Size | Format | |
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RSI20-CF-HTPD2020-02712-1.pdf | Accepted version | 859.27 kB | Adobe PDF | View/Open |
Title: | Collective optical Thomson scattering in pulsed-power driven high energy density physics experiments (invited) |
Authors: | Suttle, LG Hare, JD Halliday, JWD Merlini, S Russell, DR Tubman, ER Valenzuela-Villaseca, V Rozmus, W Bruulsema, C Lebedev, SV |
Item Type: | Journal Article |
Abstract: | Optical collective Thomson scattering (TS) is used to diagnose magnetized high energy density physics experiments at the Magpie pulsedpower generator at Imperial College London. The system uses an amplified pulse from the second harmonic of a Nd:YAG laser (3 J, 8 ns, 532 nm) to probe a wide diversity of high-temperature plasma objects, with densities in the range of 1017–1019 cm−3 and temperatures between 10 eV and a few keV. The scattered light is collected from 100 μm-scale volumes within the plasmas, which are imaged onto optical fiber arrays. Multiple collection systems observe these volumes from different directions, providing simultaneous probing with different scattering K-vectors (and different associated α-parameters, typically in the range of 0.5–3), allowing independent measurements of separate velocity components of the bulk plasma flow. The fiber arrays are coupled to an imaging spectrometer with a gated intensified charge coupled device. The spectrometer is configured to view the ion-acoustic waves of the collective Thomson scattered spectrum. Fits to the spectra with the theoretical spectral density function S(K, ω) yield measurements of the local plasma temperatures and velocities. Fitting is constrained by independent measurements of the electron density from laser interferometry and the corresponding spectra for different scattering vectors. This TS diagnostic has been successfully implemented on a wide range of experiments, revealing temperature and flow velocity transitions across magnetized shocks, inside rotating plasma jets and imploding wire arrays, as well as providing direct measurements of drift velocities inside a magnetic reconnection current sheet. |
Issue Date: | 23-Mar-2021 |
Date of Acceptance: | 6-Mar-2021 |
URI: | http://hdl.handle.net/10044/1/88499 |
DOI: | 10.1063/5.0041118 |
ISSN: | 0034-6748 |
Publisher: | American Institute of Physics |
Start Page: | 033542-1 |
End Page: | 033542-8 |
Journal / Book Title: | Review of Scientific Instruments |
Volume: | 92 |
Issue: | 3 |
Copyright Statement: | © 2021 Author(s). Published under license by AIP Publishing. This article may be downloaded for personal use only. Any other use requires prior permission of the author and the American Institute of Physics. The following article appeared in Review of Scientific Instruments 92, 033542 (2021) and may be found at https://doi.org/10.1063/5.0041118 |
Keywords: | Science & Technology Technology Physical Sciences Instruments & Instrumentation Physics, Applied Physics Applied Physics 02 Physical Sciences 03 Chemical Sciences 09 Engineering |
Publication Status: | Published |
Article Number: | 033542 |
Online Publication Date: | 2021-03-23 |
Appears in Collections: | Physics Plasma Physics |