Proof-of-principle experiments for fast ignition and the fast ignition realization experiment

被引:9
作者
Mima, K [1 ]
Takeda, T [1 ]
机构
[1] Osaka Univ, Inst Laser Engn, Suita, Osaka 6560871, Japan
关键词
fast ignition; inertial fusion; proof-of-principle experiments;
D O I
10.13182/FST06-A1154
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
This paper introduces the next generation of fast ignition research facilities now under construction and describes in detail the Japanese project Fast Ignition Realization Experiment (FIREX-I) and its proposed follow-up, FIREX-II. Both the facilities and their scientific objectives are presented. FIREX-I and the other two facilities described in subsequent papers-OMEGA EP at the University of Rochester and the Z-Petawatt at Sandia National Laboratories-will conduct proof-of-principle experiments for the fast ignitor concept. The facilities consist of two components: a long-pulse (tau > ns) driver capable of compressing and assembling the fusion fuel and a separate petawatt-class laser for heating. For the FIREX project, the present status of the construction of the 10-kJ-level, high-energy petawatt Laser for Fusion Experiment is reported, and the theoretical basis for high-density plasma heating with an similar to 10-kJ, 10-ps petawatt laser is discussed to show how this heating pulse is predicted to achieve the plasma parameters required for the fast ignition. The required petawatt spot size, the tolerable carbon fraction in the proposed D-T-loaded foam cryogenic target, appropriate heating laser pulse shape, and the required electron stopping range are explored. The theoretical analysis includes the use of Fokker-Planck simulation to describe the heating of the dense plasma by relativistic electrons created in the petawatt laser-plasma interactions. This modeling indicates that if 30% of the 10-kJ petawatt laser energy is coupled by relativistic electrons into D-T plasmas compressed to 100 to 200 g/cm(3) the plasmas will be subsequently heated to 5 keV and fusion gains, defined as fusion energy produced divided by the total incident (compression and heating) laser energy, as high as 0.1 can result.
引用
收藏
页码:358 / 366
页数:9
相关论文
共 23 条
[1]   Inertial fusion fast ignitor: Igniting pulse parameter window vs the penetration depth of the heating particles and the density of the precompressed fuel [J].
Atzeni, S .
PHYSICS OF PLASMAS, 1999, 6 (08) :3316-3326
[2]  
CAMPBELL RB, 2003, P IN FUS SCI APPL 20, P461
[3]  
CAVAILLER C, 2003, P IN FUS SCI APPL 20, P523
[4]  
JOHZAKI T, 2002, ANN PROGR REPORT
[5]  
JOHZAKI T, 2003, P IFSA 2003, P474
[6]   Nuclear fusion - Fast heating scalable to laser fusion ignition [J].
Kodama, R ;
Shiraga, H ;
Shigemori, K ;
Toyama, Y ;
Fujioka, S ;
Azechi, H ;
Fujita, H ;
Habara, H ;
Hall, T ;
Izawa, Y ;
Jitsuno, T ;
Kitagawa, Y ;
Krushelnick, KM ;
Lancaster, KL ;
Mima, K ;
Nagai, K ;
Nakai, M ;
Nishimura, H ;
Norimatsu, T ;
Norreys, PA ;
Sakabe, S ;
Tanaka, KA ;
Youssef, A ;
Zepf, M .
NATURE, 2002, 418 (6901) :933-934
[7]   Fast heating of ultrahigh-density plasma as a step towards laser fusion ignition [J].
Kodama, R ;
Norreys, PA ;
Mima, K ;
Dangor, AE ;
Evans, RG ;
Fujita, H ;
Kitagawa, Y ;
Krushelnick, K ;
Miyakoshi, T ;
Miyanaga, N ;
Norimatsu, T ;
Rose, SJ ;
Shozaki, T ;
Shigemori, K ;
Sunahara, A ;
Tampo, M ;
Tanaka, KA ;
Toyama, Y ;
Yamanaka, Y ;
Zepf, M .
NATURE, 2001, 412 (6849) :798-802
[8]   Pulse heating and ignition for off-centre ignited targets [J].
Mahdy, AI ;
Takabe, H ;
Mima, K .
NUCLEAR FUSION, 1999, 39 (04) :467-475
[9]   Z pinches as intense x-ray sources for high-energy density physics applications [J].
Matzen, MK .
PHYSICS OF PLASMAS, 1997, 4 (05) :1519-1527
[10]  
MCCRORY RL, 2004, P IN FUS SCI APPL 20, P3