Issue |
EPJ Web of Conferences
Volume 59, 2013
IFSA 2011 – Seventh International Conference on Inertial Fusion Sciences and Applications
|
|
---|---|---|
Article Number | 06002 | |
Number of page(s) | 4 | |
Section | VI. Radiation Hydrodynamics | |
DOI | https://doi.org/10.1051/epjconf/20135906002 | |
Published online | 15 November 2013 |
https://doi.org/10.1051/epjconf/20135906002
Development of our laser fusion integration simulation
Institute of Applied Physics and Computational Mathematics, PO Box 8009, Beijing 100094, PR China
a e-mail: li_jinghong@iapcm.ac.cnr
Published online: 15 November 2013
In the target design of the Inertial Confinement Fusion (ICF) program, it is common practice to apply radiation hydrodynamics code to study the key physical processes happening in ICF process, such as hohlraum physics, radiation drive symmetry, capsule implosion physics in the radiation-drive approach of ICF. Recently, many efforts have been done to develop our 2D integrated simulation capability of laser fusion with a variety of optional physical models and numerical methods. In order to effectively integrate the existing codes and to facilitate the development of new codes, we are developing an object-oriented structured-mesh parallel code-supporting infrastructure, called JASMIN. Based on two-dimensional three-temperature hohlraum physics code LARED-H and two-dimensional multi-group radiative transfer code LARED-R, we develop a new generation two-dimensional laser fusion code under the JASMIN infrastructure, which enable us to simulate the whole process of laser fusion from the laser beams' entrance into the hohlraum to the end of implosion. In this paper, we will give a brief description of our new-generation two-dimensional laser fusion code, named LARED-Integration, especially in its physical models, and present some simulation results of holhraum.
© Owned by the authors, published by EDP Sciences, 2013
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