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Laser-direct-drive fusion target design with a high-Z gradient-density pusher shell.
Hu, S X; Ceurvorst, L; Peebles, J L; Mao, A; Li, P; Lu, Y; Shvydky, A; Goncharov, V N; Epstein, R; Nichols, K A; Goshadze, R M N; Ghosh, M; Hinz, J; Karasiev, V V; Zhang, S; Shaffer, N R; Mihaylov, D I; Cappelletti, J; Harding, D R; Li, C K; Campbell, E M; Shah, R C; Collins, T J B; Regan, S P; Deeney, C.
Affiliation
  • Hu SX; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Ceurvorst L; Department of Mechanical Engineering, University of Rochester, Rochester, New York 14627, USA.
  • Peebles JL; Department of Physics and Astronomy, University of Rochester, Rochester, New York 14627, USA.
  • Mao A; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Li P; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Lu Y; Department of Electrical and Computer Engineering, University of Nebraska-Lincoln, Lincoln, Nebraska 68588, USA.
  • Shvydky A; Department of Electrical and Computer Engineering, University of Nebraska-Lincoln, Lincoln, Nebraska 68588, USA.
  • Goncharov VN; Department of Electrical and Computer Engineering, University of Nebraska-Lincoln, Lincoln, Nebraska 68588, USA.
  • Epstein R; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Nichols KA; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Goshadze RMN; Department of Mechanical Engineering, University of Rochester, Rochester, New York 14627, USA.
  • Ghosh M; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Hinz J; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Karasiev VV; Department of Physics and Astronomy, University of Rochester, Rochester, New York 14627, USA.
  • Zhang S; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Shaffer NR; Department of Physics and Astronomy, University of Rochester, Rochester, New York 14627, USA.
  • Mihaylov DI; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Cappelletti J; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Harding DR; Department of Physics and Astronomy, University of Rochester, Rochester, New York 14627, USA.
  • Li CK; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Campbell EM; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Shah RC; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Collins TJB; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Regan SP; Laboratory for Laser Energetics, University of Rochester, 250 East River Road, Rochester, New York 14623-1299, USA.
  • Deeney C; Department of Mechanical Engineering, University of Rochester, Rochester, New York 14627, USA.
Phys Rev E ; 108(3-2): 035209, 2023 Sep.
Article de En | MEDLINE | ID: mdl-37849111
ABSTRACT
Laser-direct-drive fusion target designs with solid deuterium-tritium (DT) fuel, a high-Z gradient-density pusher shell (GDPS), and a Au-coated foam layer have been investigated through both 1D and 2D radiation-hydrodynamic simulations. Compared with conventional low-Z ablators and DT-push-on-DT targets, these GDPS targets possess certain advantages of being instability-resistant implosions that can be high adiabat (α≥8) and low hot-spot and pusher-shell convergence (CR_{hs}≈22 and CR_{PS}≈17), and have a low implosion velocity (v_{imp}<3×10^{7}cm/s). Using symmetric drive with laser energies of 1.9 to 2.5MJ, 1D lilac simulations of these GDPS implosions can result in neutron yields corresponding to ≳50-MJ energy, even with reduced laser absorption due to the cross-beam energy transfer (CBET) effect. Two-dimensional draco simulations show that these GDPS targets can still ignite and deliver neutron yields from 4 to ∼10MJ even if CBET is present, while traditional DT-push-on-DT targets normally fail due to the CBET-induced reduction of ablation pressure. If CBET is mitigated, these GDPS targets are expected to produce neutron yields of >20MJ at a driven laser energy of ∼2MJ. The key factors behind the robust ignition and moderate energy gain of such GDPS implosions are as follows (1) The high initial density of the high-Z pusher shell can be placed at a very high adiabat while the DT fuel is maintained at a relatively low-entropy state; therefore, such implosions can still provide enough compression ρR>1g/cm^{2} for sufficient confinement; (2) the high-Z layer significantly reduces heat-conduction loss from the hot spot since thermal conductivity scales as ∼1/Z; and (3) possible radiation trapping may offer an additional advantage for reducing energy loss from such high-Z targets.

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Phys Rev E Année: 2023 Type de document: Article Pays d'affiliation: États-Unis d'Amérique

Texte intégral: 1 Collection: 01-internacional Base de données: MEDLINE Langue: En Journal: Phys Rev E Année: 2023 Type de document: Article Pays d'affiliation: États-Unis d'Amérique