Advanced-ignition-concept exploration on OMEGA

Advanced ignition concepts, such as fast ignition and shock ignition, are being investigated at the Omega Laser Facility. Integrated fast-ignition experiments with room-temperature re-entrant cone targets have begun, using 18 kJ of 351 nm drive energy to implode empty 40 νm thick CD shells, followed...

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Hlavní autoři: Theobald, W, Anderson, K, Betti, R, Craxton, R, Delettrez, J, Frenje, J, Glebov, V, Gotchev, O, Kelly, J, Li, C, MacKinnon, A, Marshall, F, McCrory, R, Meyerhofer, D, Myatt, J, Norreys, P, Nilson, P, Patel, P, Petrasso, R, Radha, P, Ren, C, Sangster, T, Seka, W, Smalyuk, V, Solodov, A
Médium: Journal article
Jazyk:English
Vydáno: 2009
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author Theobald, W
Anderson, K
Betti, R
Craxton, R
Delettrez, J
Frenje, J
Glebov, V
Gotchev, O
Kelly, J
Li, C
MacKinnon, A
Marshall, F
McCrory, R
Meyerhofer, D
Myatt, J
Norreys, P
Nilson, P
Patel, P
Petrasso, R
Radha, P
Ren, C
Sangster, T
Seka, W
Smalyuk, V
Solodov, A
author_facet Theobald, W
Anderson, K
Betti, R
Craxton, R
Delettrez, J
Frenje, J
Glebov, V
Gotchev, O
Kelly, J
Li, C
MacKinnon, A
Marshall, F
McCrory, R
Meyerhofer, D
Myatt, J
Norreys, P
Nilson, P
Patel, P
Petrasso, R
Radha, P
Ren, C
Sangster, T
Seka, W
Smalyuk, V
Solodov, A
author_sort Theobald, W
collection OXFORD
description Advanced ignition concepts, such as fast ignition and shock ignition, are being investigated at the Omega Laser Facility. Integrated fast-ignition experiments with room-temperature re-entrant cone targets have begun, using 18 kJ of 351 nm drive energy to implode empty 40 νm thick CD shells, followed by 1.0 kJ of 1053 nm wavelength, short-pulse energy. Short pulses of 10 ps width have irradiated the inside of a hollow gold re-entrant cone at the time of peak compression. A threefold increase in the time-integrated, 2 to 7 keV x-ray emission was observed with x-ray pinhole cameras, indicating that energy is coupled from the short-pulse laser into the core by fast electrons. In shock-ignition experiments, spherical plastic-shell targets were compressed to high areal densities on a low adiabat, and a strong shock wave was sent into the converging, compressed capsule. In one experiment, 60 beams were used with an intensity spike at the end of the laser pulse, and the implosion performance was studied through neutron-yield and areal-density measurements. In a second experiment, the 60 OMEGA beams were split into a 40+20 configuration, with 40 low-intensity beams used for fuel assembly and 20 delayed beams with a short, high-intensity pulse shape (up to 1 × 1016 W cm-2) for shock generation. © 2009 IOP Publishing Ltd.
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spelling oxford-uuid:b6daaa9c-ed95-4d13-afd9-3b9a23a09a4f2022-03-27T04:44:04ZAdvanced-ignition-concept exploration on OMEGAJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:b6daaa9c-ed95-4d13-afd9-3b9a23a09a4fEnglishSymplectic Elements at Oxford2009Theobald, WAnderson, KBetti, RCraxton, RDelettrez, JFrenje, JGlebov, VGotchev, OKelly, JLi, CMacKinnon, AMarshall, FMcCrory, RMeyerhofer, DMyatt, JNorreys, PNilson, PPatel, PPetrasso, RRadha, PRen, CSangster, TSeka, WSmalyuk, VSolodov, AAdvanced ignition concepts, such as fast ignition and shock ignition, are being investigated at the Omega Laser Facility. Integrated fast-ignition experiments with room-temperature re-entrant cone targets have begun, using 18 kJ of 351 nm drive energy to implode empty 40 νm thick CD shells, followed by 1.0 kJ of 1053 nm wavelength, short-pulse energy. Short pulses of 10 ps width have irradiated the inside of a hollow gold re-entrant cone at the time of peak compression. A threefold increase in the time-integrated, 2 to 7 keV x-ray emission was observed with x-ray pinhole cameras, indicating that energy is coupled from the short-pulse laser into the core by fast electrons. In shock-ignition experiments, spherical plastic-shell targets were compressed to high areal densities on a low adiabat, and a strong shock wave was sent into the converging, compressed capsule. In one experiment, 60 beams were used with an intensity spike at the end of the laser pulse, and the implosion performance was studied through neutron-yield and areal-density measurements. In a second experiment, the 60 OMEGA beams were split into a 40+20 configuration, with 40 low-intensity beams used for fuel assembly and 20 delayed beams with a short, high-intensity pulse shape (up to 1 × 1016 W cm-2) for shock generation. © 2009 IOP Publishing Ltd.
spellingShingle Theobald, W
Anderson, K
Betti, R
Craxton, R
Delettrez, J
Frenje, J
Glebov, V
Gotchev, O
Kelly, J
Li, C
MacKinnon, A
Marshall, F
McCrory, R
Meyerhofer, D
Myatt, J
Norreys, P
Nilson, P
Patel, P
Petrasso, R
Radha, P
Ren, C
Sangster, T
Seka, W
Smalyuk, V
Solodov, A
Advanced-ignition-concept exploration on OMEGA
title Advanced-ignition-concept exploration on OMEGA
title_full Advanced-ignition-concept exploration on OMEGA
title_fullStr Advanced-ignition-concept exploration on OMEGA
title_full_unstemmed Advanced-ignition-concept exploration on OMEGA
title_short Advanced-ignition-concept exploration on OMEGA
title_sort advanced ignition concept exploration on omega
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