Bulletin of the American Physical Society
60th Annual Meeting of the APS Division of Plasma Physics
Volume 63, Number 11
Monday–Friday, November 5–9, 2018; Portland, Oregon
Session CP11: Poster Session II: Basic Plasma Physics; Boundary, PMI, Proto-MPEX; International Tokamaks; Turbulence and Transport; Other Configurations; Z-pinch, Dense Plasma Focus and MagLIF (2:00pm-5:00pm)
Monday, November 5, 2018
OCC
Room: Exhibit Hall A1&A
Abstract ID: BAPS.2018.DPP.CP11.160
Abstract: CP11.00160 : High resolution digital holographic interferometry on the Fusion Z-pinch Experiment FuZE*
Presenter:
Tobin Weber
(University of Washington)
Authors:
Tobin Weber
(University of Washington)
Uri Shumlak
(Univ of Washington)
Brian A Nelson
(Univ of Washington)
Elliot L Claveau
(Univ of Washington)
Eleanor G Forbes
(Univ of Washington)
Raymond Golingo
(Univ of Washington)
Anton Stepanov
(Univ of Washington)
Yue Zhang
(Univ of Washington)
Harry Scott McLean
(Lawrence Livermore Natl Lab)
Drew P Higginson
(Lawrence Livermore Natl Lab)
Andrea Elizabeth Schmidt
(Lawrence Livermore Natl Lab)
Kurt Tummel
(Lawrence Livermore Natl Lab)
The Fusion Z-Pinch Experiment (FuZE) is a sheared flow stabilized (SFS) Z-pinch experiment investigating the scaling of SFS Z-pinch plasmas towards fusion conditions. Sustained neutron production has been measured from cylindrical plasmas of high density (> 1017/cm3), high temperature (> 1 keV), and small radii (< 5 mm) [1]. Diagnosing the size, density and internal structure of these plasmas require a high spatial resolution plasma density diagnostic. Motivated by this, a holographic interferometer with 10 micron spatial resolution has been installed on FuZE [2]. A Nd:YAG laser is used with a digital camera to produce holograms from the plasma assembly region. Digital holograms are numerically reconstructed to obtain the chord-integrated electron density of the compressed plasma, with fine spatial resolution. Assuming cylindrical symmetry, radial density profiles are reconstructed from electron density data. Radial temperature profiles are calculated by assuming radial force balance, and uniform plasma drift velocity. Chord-integrated density, radial density and radial temperature data are presented from FuZE.
[1] Y. Zhang et al., PRL, Manuscript submitted for publication.
[2] M.P. Ross & U. Shumlak, RSI 87, 103502 (2016).
*This work is supported by an award from USDOE ARPA-E.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.DPP.CP11.160
Follow Us |
Engage
Become an APS Member |
My APS
Renew Membership |
Information for |
About APSThe American Physical Society (APS) is a non-profit membership organization working to advance the knowledge of physics. |
© 2024 American Physical Society
| All rights reserved | Terms of Use
| Contact Us
Headquarters
1 Physics Ellipse, College Park, MD 20740-3844
(301) 209-3200
Editorial Office
100 Motor Pkwy, Suite 110, Hauppauge, NY 11788
(631) 591-4000
Office of Public Affairs
529 14th St NW, Suite 1050, Washington, D.C. 20045-2001
(202) 662-8700