fast ignition
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2021 ◽  
Author(s):  
Hideo Nagatomo ◽  
Tomoyuki Johzaki ◽  
Masayasu Hata ◽  
Yasuhiko Sentoku ◽  
Shinsuke Fujioka ◽  
...  
Keyword(s):  

2021 ◽  
Vol 16 (0) ◽  
pp. 2404076-2404076
Author(s):  
Tetsuo OZAKI ◽  
Yuki ABE ◽  
Yasunobu ARIKAWA ◽  
Shinichirou OKIHARA ◽  
Eisuke MIURA ◽  
...  

2021 ◽  
Vol 136 (5) ◽  
Author(s):  
Oriza Kamboj ◽  
Harjit Singh Ghotra ◽  
Vishal Thakur ◽  
John Pasley ◽  
Niti Kant

Author(s):  
B. T. Spiers ◽  
M. P. Hill ◽  
C. Brown ◽  
L. Ceurvorst ◽  
N. Ratan ◽  
...  

Fast ignition inertial confinement fusion requires the production of a low-density channel in plasma with density scale-lengths of several hundred microns. The channel assists in the propagation of an ultra-intense laser pulse used to generate fast electrons which form a hot spot on the side of pre-compressed fusion fuel. We present a systematic characterization of an expanding laser-produced plasma using optical interferometry, benchmarked against three-dimensional hydrodynamic simulations. Magnetic fields associated with channel formation are probed using proton radiography, and compared to magnetic field structures generated in full-scale particle-in-cell simulations. We present observations of long-lived, straight channels produced by the Habara–Kodama–Tanaka whole-beam self-focusing mechanism, overcoming a critical barrier on the path to realizing fast ignition. This article is part of a discussion meeting issue ‘Prospects for high gain inertial fusion energy (part 2)’.


Author(s):  
E. Boella ◽  
R. Bingham ◽  
R. A. Cairns ◽  
P. Norreys ◽  
R. Trines ◽  
...  

Two-dimensional particle-in-cell simulations are used to explore collisionless shock acceleration in the corona plasma surrounding the compressed core of an inertial confinement fusion pellet. We show that an intense laser pulse interacting with the long scale-length plasma corona is able to launch a collisionless shock around the critical density. The nonlinear wave travels up-ramp through the plasma reflecting and accelerating the background ions. Our results suggest that protons with characteristics suitable for ion fast ignition may be achieved in this way. This article is part of a discussion meeting issue ‘Prospects for high gain inertial fusion energy (part 2)’.


2020 ◽  
Vol 11 (1) ◽  
Author(s):  
Jieru Ren ◽  
Zhigang Deng ◽  
Wei Qi ◽  
Benzheng Chen ◽  
Bubo Ma ◽  
...  

Abstract Intense particle beams generated from the interaction of ultrahigh intensity lasers with sample foils provide options in radiography, high-yield neutron sources, high-energy-density-matter generation, and ion fast ignition. An accurate understanding of beam transportation behavior in dense matter is crucial for all these applications. Here we report the experimental evidence on one order of magnitude enhancement of intense laser-accelerated proton beam stopping in dense ionized matter, in comparison with the current-widely used models describing individual ion stopping in matter. Supported by particle-in-cell (PIC) simulations, we attribute the enhancement to the strong decelerating electric field approaching 1 GV/m that can be created by the beam-driven return current. This collective effect plays the dominant role in the stopping of laser-accelerated intense proton beams in dense ionized matter. This finding is essential for the optimum design of ion driven fast ignition and inertial confinement fusion.


2020 ◽  
Vol 36 ◽  
pp. 100841
Author(s):  
Tomoyuki Johzaki ◽  
Masaya Hino ◽  
Mie Horio ◽  
Shijuro Takeda ◽  
Wookyung Kim ◽  
...  

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