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Implosion and heating experiments of fast ignition targets by Gekko-XII and LFEX lasers

Authors :
Hiroaki Nishimura
M. Nakai
H. Kikuchi
K. Mima
H. Habara
Atsushi Sunahara
Tomoyuki Johzaki
T. Namimoto
K. Sawai
N. Miyanaga
Masakatsu Murakami
Hiroshi Azechi
Hitoshi Sakagami
H. Murakami
S. Matsuo
T. Iwawaki
T. Kawasaki
Nobuhiko Sarukura
John Pasley
Toshihiro Taguchi
Takao Nagai
K. Tsuji
Kazuo Tanaka
Ko. Kondo
H. Homma
Minoru Tanabe
Akifumi Iwamoto
Hideo Nagatomo
Yoichi Sakawa
Takahisa Jitsuno
Y. Fujimoto
T. Sogo
Keiichi Sueda
M. H. Key
O. Maegawa
Yoshiki Nakata
Zhe Zhang
T. Ozaki
Keisuke Shigemori
Shinsuke Fujioka
Y. Fujii
K. Shimada
Peter Norreys
Takayoshi Norimatsu
Y. Ishii
Kouji Tsubakimoto
R. Kodama
S. Ohira
Hirotaka Nakamura
Hiroyuki Shiraga
N. Morio
T. Kanabe
Takeshi Watari
H. Hosoda
Mayuko Koga
J. Kawanaka
Toshihiko Shimizu
Yasunobu Arikawa
Source :
EPJ Web of Conferences, Vol 59, p 01008 (2013)
Publication Year :
2016

Abstract

The FIREX-1 project, the goal of which is to demonstrate fuel heating up to 5 keV by fast ignition scheme, has been carried out since 2003 including construction and tuning of LFEX laser and integrated experiments. Implosion and heating experiment of Fast Ignition targets have been performed since 2009 with Gekko-XII and LFEX lasers. A deuterated polystyrene shell target was imploded with the 0.53- μm Gekko-XII, and the 1.053- μm beam of the LFEX laser was injected through a gold cone attached to the shell to generate hot electrons to heat the imploded fuel plasma. Pulse contrast ratio of the LFEX beam was significantly improved. Also a variety of plasma diagnostic instruments were developed to be compatible with harsh environment of intense hard x-rays (γ rays) and electromagnetic pulses due to the intense LFEX beam on the target. Large background signals around the DD neutron signal in time-of-flight record of neutron detector were found to consist of neutrons via (γ,n) reactions and scattered gamma rays. Enhanced neutron yield was confirmed by carefully eliminating such backgrounds. Neutron enhancement up to 3.5 × 107 was observed. Heating efficiency was estimated to be 10-20% assuming a uniform temperature rise model. © Owned by the authors, published by EDP Sciences, 2013.

Details

Language :
English
Database :
OpenAIRE
Journal :
EPJ Web of Conferences, Vol 59, p 01008 (2013)
Accession number :
edsair.doi.dedup.....467e08659fd4a74c5d0d5c0d8c6ed71c