Chirped pulse-based diagnostic technique for fusion plasma critical surface
编号:41 访问权限:仅限参会人 更新:2025-04-03 14:00:55 浏览:6次 张贴报告

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摘要
Laser-driven inertial confinement fusion (ICF) diagnostics serve as a pivotal methodology for elucidating the intricate physical processes underlying ICF and achieving thermonuclear ignition. During ICF experiments, the interaction between high-power lasers and the ablator layer of a target capsule generates a plasma critical surface, which reflects a substantial fraction of the incident laser energy, thereby impeding efficient energy transfer to the fuel core. This reflection-induced energy loss significantly diminishes the conversion efficiency of laser energy into implosive kinetic energy. Consequently, effective diagnostic characterization of the plasma critical surface is critical for optimizing ICF performance [1-6]. However, the extreme transient nature of the critical surface—characterized by ultrashort temporal scales (sub-nanosecond) and microscopic spatial dimensions (micrometer-scale)—poses formidable challenges for existing diagnostic techniques in resolving its morphology and dynamic evolution.
To address this limitation, we propose a novel optical diagnostic approach based on spectrally chirped pulses for probing the spatiotemporal evolution of the plasma critical surface in ICF experiments. This method exploits the laser spectral modulation effects induced by reflection at the critical surface. Through carefully designed experiments, we have successfully demonstrated the efficacy of this technique in capturing both the temporal evolution of the critical surface morphology and its radial expansion velocity.
By providing unprecedented insights into critical surface behavior, this diagnostic framework offers a transformative strategy for optimizing laser irradiation uniformity, enhancing target surface symmetry, and ultimately improving the laser-to-kinetic-energy conversion efficiency. These advancements hold significant potential to advance ICF research toward achieving robust ignition conditions.
关键词
ICF diagnose,direct drive,critical surface evolution
报告人
李林骏
学生 中国科学院上海光学精密机械研究所

稿件作者
李林骏 中国科学院上海光学精密机械研究所
XieXinglong CAS
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重要日期
  • 会议日期

    05月12日

    2025

    05月15日

    2025

  • 03月26日 2025

    初稿截稿日期

  • 04月30日 2025

    提前注册日期

  • 05月15日 2025

    注册截止日期

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北京应用物理与计算数学研究所
陕西师范大学
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陕西师范大学
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