Generating Long Scale-Length Plasma Jets Embedded in a Uniform, Multi-Tesla Magnetic-Field
ORAL
Abstract
Collimated plasma jets emerge in many classes of astrophysical objects and are of great interest to explore in the laboratory. In many cases, these astrophysical jets exist within a background magnetic field where the magnetic pressure approaches the plasma pressure. Recent experiments performed at the Jupiter Laser Facility utilized a custom-designed solenoid to generate the multi-tesla fields necessary to achieve proper magnetization of the plasma. Time-gated interferometry, Schlieren imaging, and proton radiography were used to characterize jet evolution and collimation under varying degrees of magnetization. Experimental results will be presented and discussed. This work is funded by the NNSA-DS and SC-OFES Joint Program in High-Energy-Density Laboratory Plasmas, grant number~DE-NA0001840, by the National Laser User Facility Program, grant number~DE-NA0000850, by the Predictive Sciences Academic Alliances Program in NNSA-ASC, grant number DEFC52-08NA28616, and by NASA through Einstein Postdoctoral Fellowship grant number PF3-140111 awarded by the Chandra X-ray Center, which is operated by the Smithsonian Astrophysical Observatory for NASA under contract NAS8-03060.
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Authors
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Mario Manuel
University of Michigan
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Carolyn Kuranz
University of Michigan, University of Michgan
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Alex Rasmus
University of Michigan
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Sallee Klein
University of Michigan
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Jeff Fein
University of Michigan
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Patrick Belancourt
University of Michigan
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R.P. Drake
University of Michigan
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Brad Pollock
Lawrence Livermore National Laboratory
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Andrew Hazi
Lawrence Livermore National Laboratory
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Jaebum Park
Lawrence Livermore National Laboratory
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Jackson WIlliams
Lawrence Livermore National Laboratory
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Hui Chen
Lawrence Livermore National Laboratory