paper

Hybrid-drive pressure suppressing implosion instabilities and offering nonstagnation hotspot ignition with low convergence ratio for high-gain inertial fusion

arXiv:2011.09082

Abstract

In laser-drive ICF, hybrid drive (HD) combined direct drive (DD) and indirect drive (ID) offers a smoothed HD pressure , far higher than the ablation pressure in ID and DD, to suppress hydrodynamic instabilities. In this letter, simulations of a new robust HD ignition target show that maximal HD pressure as high as 650 Mbar driven by a novel "bulldozer" effect is achieved, resulting in nonstagnation hotspot ignition at the convergence ratio 23, and finally, fusion energy gain 10 in total laser energy = 1.42 MJ. Two-dimensional simulations have confirmed that hydrodynamic instabilities are suppressed. A well-fitted scale of maximal HD pressure (Mbar)= is found from simulations of different targets and laser energies as long as eV, where B is the constant depending on ablator materials, in kJ is DD laser energy and in 100 eV is radiation temperature depending on ID laser energy . 450 Mbar is requested for hotspot ignition. This scale from "bulldozer" effect is also available as is reduced to kJ. Experiments have verified about 3.5 times radiation ablation pressure for CH ablator using kJ (200 eV) and =3.6 kJ, also shown that both backscattering fraction and hot-electron energy fraction for DD laser intensity are about a third of the traditional DD laser-plasma interaction

10 pages, 4 Postscript figures

Hybrid-drive pressure suppressing implosion instabilities and offering nonstagnation hotspot ignition with low convergence ratio for high-gain inertial fusion · wovepaper