Literature DB >> 24580604

Design of a high-foot high-adiabat ICF capsule for the national ignition facility.

T R Dittrich1, O A Hurricane1, D A Callahan1, E L Dewald1, T Döppner1, D E Hinkel1, L F Berzak Hopkins1, S Le Pape1, T Ma1, J L Milovich1, J C Moreno1, P K Patel1, H-S Park1, B A Remington1, J D Salmonson1, J L Kline2.   

Abstract

The National Ignition Campaign's [M. J. Edwards et al., Phys. Plasmas 20, 070501 (2013)] point design implosion has achieved DT neutron yields of 7.5×10(14) neutrons, inferred stagnation pressures of 103 Gbar, and inferred areal densities (ρR) of 0.90  g/cm2 (shot N111215), values that are lower than 1D expectations by factors of 10×, 3.3×, and 1.5×, respectively. In this Letter, we present the design basis for an inertial confinement fusion capsule using an alternate indirect-drive pulse shape that is less sensitive to issues that may be responsible for this lower than expected performance. This new implosion features a higher radiation temperature in the "foot" of the pulse, three-shock pulse shape resulting in an implosion that has less sensitivity to the predicted ionization state of carbon, modestly lower convergence ratio, and significantly lower ablation Rayleigh-Taylor instability growth than that of the NIC point design capsule. The trade-off with this new design is a higher fuel adiabat that limits both fuel compression and theoretical capsule yield. The purpose of designing this capsule is to recover a more ideal one-dimensional implosion that is in closer agreement to simulation predictions. Early experimental results support our assertions since as of this Letter, a high-foot implosion has obtained a record DT yield of 2.4×10(15) neutrons (within ∼70% of 1D simulation) with fuel ρR=0.84  g/cm2 and an estimated ∼1/3 of the yield coming from α-particle self-heating.

Entities:  

Year:  2014        PMID: 24580604     DOI: 10.1103/PhysRevLett.112.055002

Source DB:  PubMed          Journal:  Phys Rev Lett        ISSN: 0031-9007            Impact factor:   9.161


  2 in total

1.  Fuel gain exceeding unity in an inertially confined fusion implosion.

Authors:  O A Hurricane; D A Callahan; D T Casey; P M Celliers; C Cerjan; E L Dewald; T R Dittrich; T Döppner; D E Hinkel; L F Berzak Hopkins; J L Kline; S Le Pape; T Ma; A G MacPhee; J L Milovich; A Pak; H-S Park; P K Patel; B A Remington; J D Salmonson; P T Springer; R Tommasini
Journal:  Nature       Date:  2014-02-12       Impact factor: 49.962

2.  Energy penetration into arrays of aligned nanowires irradiated with relativistic intensities: Scaling to terabar pressures.

Authors:  Clayton Bargsten; Reed Hollinger; Maria Gabriela Capeluto; Vural Kaymak; Alexander Pukhov; Shoujun Wang; Alex Rockwood; Yong Wang; David Keiss; Riccardo Tommasini; Richard London; Jaebum Park; Michel Busquet; Marcel Klapisch; Vyacheslav N Shlyaptsev; Jorge J Rocca
Journal:  Sci Adv       Date:  2017-01-11       Impact factor: 14.136

  2 in total

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