4.5 Article

Formation of hot spots at end-on pre-compressed isochoric fuels for fast ignition

期刊

NUCLEAR FUSION
卷 63, 期 12, 页码 -

出版社

IOP Publishing Ltd
DOI: 10.1088/1741-4326/ad08e6

关键词

laser fusion; isochoric fast ignition; hot spot collapse; ignition criterion; burn propagation; heating duration; double cone ignition

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This paper discusses the importance of forming a hot spot that can drive a self-heating nuclear burn propagation in the ignition process of laser fusion. A new energy loss mechanism called hot spot collapse is proposed, and a modified ignition criterion is derived. Simulation experiments show that the competition between hot spot collapse and burn propagation is crucial in the formation of the hot spot.
It is crucial to form a hot spot that can drive a self-heating nuclear burn propagation into the surrounding cold fuel in ignition process of laser fusion. In this paper, we discuss the formation of a hemispherical hot spot located at the edge of an end-on precompressed isochoric fuel instead of a central spherical hot spot surrounded by cold fuel in a corona plasma shell. This configuration leads to a new energy loss mechanism named hot spot collapse, which originates from mass loss of the hot spot through the interface with the vacuum. A semi-analytical model is proposed including alpha particle induced burning, hot spot collapse and other energy loss processes. Then a modified ignition criterion is derived. The results show that the competition between the hot spot collapse and the burn propagation is crucial in the formation of the hot spot. The formation of such a hot spot at end-on precompressed isochoric fuels would require a somewhat higher initial temperature of Th=9 keV for a hot spot with an initial areal density rho d=0.6gcm-2 . Simulations are performed with a 3D hybrid particle-in-cell/fluid code for the heating process by fast electrons and a 3D radiation hydrodynamics code for the burning process. Simulation results agree with the model. Our optimized result shows a 10 ps heating laser pulse with an energy as low as 39 kJ can lead to a fast ignition in the ideal case. This study provides an effective reference for design and evaluation of experiments planned for fast ignition schemes.

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