Mannion O M, Taitano W T, Appelbe B D, Crilly A J, Forrest C J, Glebov V Yu, Knauer J P, McKenty P W, Mohamed Z L, Stoeckl C, Keenan B D, Chittenden J P, Adrian P, Frenje J, Kabadi N, Gatu Johnson M, Regan S P
Sandia National Laboratories, Albuquerque, New Mexico 87185, USA.
Los Alamos National Laboratory, Los Alamos, New Mexico 87545, USA.
Phys Rev E. 2023 Sep;108(3-2):035201. doi: 10.1103/PhysRevE.108.035201.
The ion velocity distribution functions of thermonuclear plasmas generated by spherical laser direct drive implosions are studied using deuterium-tritium (DT) and deuterium-deuterium (DD) fusion neutron energy spectrum measurements. A hydrodynamic Maxwellian plasma model accurately describes measurements made from lower temperature (<10 keV), hydrodynamiclike plasmas, but is insufficient to describe measurements made from higher temperature more kineticlike plasmas. The high temperature measurements are more consistent with Vlasov-Fokker-Planck (VFP) simulation results which predict the presence of a bimodal plasma ion velocity distribution near peak neutron production. These measurements provide direct experimental evidence of non-Maxwellian ion velocity distributions in spherical shock driven implosions and provide useful data for benchmarking kinetic VFP simulations.
利用氘 - 氚(DT)和氘 - 氘(DD)聚变中子能谱测量,研究了球形激光直接驱动内爆产生的热核等离子体的离子速度分布函数。一种流体动力学麦克斯韦等离子体模型能够准确描述来自较低温度(<10 keV)、类似流体动力学的等离子体的测量结果,但不足以描述来自较高温度、更具动力学特征的等离子体的测量结果。高温测量结果与弗拉索夫 - 福克 - 普朗克(VFP)模拟结果更为一致,后者预测在中子产生峰值附近存在双峰等离子体离子速度分布。这些测量为球形激波驱动内爆中离子速度分布的非麦克斯韦分布提供了直接实验证据,并为动力学VFP模拟的基准测试提供了有用数据。