Experimental demonstration of fusion-relevant conditions in magnetized liner inertial fusion

This Letter presents results from the first fully integrated experiments testing the magnetized liner inertial fusion concept [S. A. Slutz et al., Phys. Plasmas 17, 056303 (2010)], in which a cylinder of deuterium gas with a preimposed 10 Taxial magnetic field is heated by Z beamlet, a 2.5 kJ, 1 TW...

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Veröffentlicht in:Physical review letters 2014-10, Vol.113 (15), p.155003-155003, Article 155003
Hauptverfasser: Gomez, M R, Slutz, S A, Sefkow, A B, Sinars, D B, Hahn, K D, Hansen, S B, Harding, E C, Knapp, P F, Schmit, P F, Jennings, C A, Awe, T J, Geissel, M, Rovang, D C, Chandler, G A, Cooper, G W, Cuneo, M E, Harvey-Thompson, A J, Herrmann, M C, Hess, M H, Johns, O, Lamppa, D C, Martin, M R, McBride, R D, Peterson, K J, Porter, J L, Robertson, G K, Rochau, G A, Ruiz, C L, Savage, M E, Smith, I C, Stygar, W A, Vesey, R A
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Sprache:eng
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Zusammenfassung:This Letter presents results from the first fully integrated experiments testing the magnetized liner inertial fusion concept [S. A. Slutz et al., Phys. Plasmas 17, 056303 (2010)], in which a cylinder of deuterium gas with a preimposed 10 Taxial magnetic field is heated by Z beamlet, a 2.5 kJ, 1 TW laser, and magnetically imploded by a 19 MA, 100 ns rise time current on the Z facility. Despite a predicted peak implosion velocity of only 70 km = s, the fuel reaches a stagnation temperature of approximately 3 keV, with T(e) ≈ T(i), and produces up to 2 x 10(12) thermonuclear deuterium-deuterium neutrons. X-ray emission indicates a hot fuel region with full width at half maximum ranging from 60 to 120 μm over a 6 mm height and lasting approximately 2 ns. Greater than 10(10) secondary deuterium-tritium neutrons were observed, indicating significant fuel magnetization given that the estimated radial areal density of the plasma is only 2 mg = cm(2).
ISSN:0031-9007
1079-7114
DOI:10.1103/PhysRevLett.113.155003