双壳层体点火靶关键物理问题研究进展

Progress on key physical issues of double-shell volume ignition targets

  • 摘要: 双壳层体点火是惯性约束聚变领域极具潜力的点火技术途径,可以在~2.5 kev低温、收缩比约10条件下实现聚变点火。本文主要围绕体点火条件、辐射驱动不对称性演化规律、多界面流体力学不稳定性馈入影响等物理问题展开深入分析:基于能量平衡零维模型,明确了双壳层体点火的临界点火判据;通过构建双壳靶驱动不对称性发展与传递的解析理论模型,揭示了内外壳质量比、动能耦合系数对驱动不对称性馈入过程的调控机制,提出了燃料区内爆压缩对称性的有效调控方法,百千焦耳激光装置最优对称工况下芯区形貌的P2不对称性降低至-2.1%;基于不稳定性增长理论模型和多尺度数值模拟,揭示了内壳外界面是制约双壳靶内爆性能的流体不稳定性主导界面,阐明了内壳薄层结构的扰动馈入机理,并提出了通过垫层结构抑制主导界面不稳定性增长的理论设计,CH垫层可将内铝壳外界面扰动增长因子降低30%、燃料界面馈入扰幅下降60%。这些理论和实验研究结果为突破双壳层体点火的关键技术难题提供了参考。

     

    Abstract:
    Background Double-shell volume ignition is a highly promising ignition approach in the field of inertial confinement fusion, capable of achieving fusion ignition at a low temperature of~2.5 keV and a convergence ratio of approximately 10.
    Purpose This study aims to conduct in-depth analysis of the critical physical issues of double-shell targets, including volume ignition conditions, the evolution of radiation drive asymmetry, and the feedthrough effects of multi-interface hydrodynamic instabilities.
    Methods Based on a zero-dimensional energy balance model, a critical ignition criterion for double-shell target volume ignition is established. An analytical theoretical model is proposed for the development and transfer of drive asymmetry in double-shell targets. The linear or non-linear growth models of Rayleigh-Taylor (RT) and Richtmyer-Meshkov (RM) instability, and multi-scale numerical simulations are used to investigate the feed-in mechanism of the key interface perturbations in double-shell targets.
    Results the modulation mechanisms of the inner-outer shell mass ratio and kinetic energy coupling coefficient on the drive asymmetry feedthrough process are revealed, and an effective method for modulating the implosion compression symmetry in the fuel region is proposed. Under the optimal symmetry condition on a hundred-kilojoule laser facility, the P2 asymmetry of the core morphology is reduced to −2.1%. Furthermore, this work reveals that the outer interface of the inner shell is the dominant hydrodynamic instability interface limiting the implosion performance of double-shell targets, elucidates the perturbation feedthrough mechanism of the thin inner shell, and proposes a theoretical design to suppress instability growth at the dominant interface through a cushion layer. The CH cushion layer can reduce the perturbation growth factor at the outer interface of the inner shell by 30% and decrease the feedthrough perturbation amplitude at the fuel interface by 60%.ConculsionsThese theoretical and experimental results provide valuable references for addressing the critical technical challenges of double-shell volume ignition.

     

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