直接驱动惯性约束聚变中的激光等离子体不稳定性风险与抑制

Risks and mitigation of laser plasma instabilities in direct drive inertial confinement fusion

  • 摘要: 直接驱动惯性约束聚变具有较高的束靶能量耦合效率,是实现激光聚变能源非常有潜力的途径。在直接驱动方式中,激光直接与靶丸烧蚀的冕区等离子体相互作用,容易激发多类激光等离子体不稳定性。这些过程会引起激光散射与能量转移,造成能量耦合损失、驱动不对称和超热电子预热,进而影响靶丸压缩效率和聚变能量增益。本文围绕近年来直接驱动理论模拟与实验研究进展,综述了直接驱动中的主要不稳定性风险,概述了多尺度数值模拟方法和实验诊断技术,并讨论了组分掺杂、激光束匀滑、动态变焦、波长调谐、宽带激光和高倍频激光等抑制方案。

     

    Abstract: Direct-drive inertial confinement fusion offers high laser-target coupling efficiency and is a promising route toward fusion energy. However, when intense laser beams propagate through coronal plasma and overlap near the target, different types of laser-plasma instabilities can be excited. These processes lead to laser scattering and energy transfer, causing coupling loss, drive asymmetry and hot-electron preheating, thereby degrading target compression and fusion gain. This paper reviews recent experimental, theoretical and simulation studies of laser-plasma instabilities in direct drive. It summarizes the main risks, outlines multiscale numerical methods and experimental diagnostics; and discusses mitigation approaches such as material doping, beam smoothing, dynamic zooming, wavelength detuning, broadband lasers and higher-frequency lasers.

     

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