25 resultados para ICF

em Chinese Academy of Sciences Institutional Repositories Grid Portal


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从靶场反射镜架模块的机械结构设计布局所需几何空间的角度出发,根据大口径、列阵器件的特殊要求,给出符合“神光Ⅲ”装置总体技术要求的ICF靶场光束口径与列阵间隔之间的关系,得出靶场△纵、△横应满足的公式.

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在神光Ⅱ第9路ICF高功率激光装置中,采用可调法布里-珀罗(F-P)滤波器对幅度调制效应进行补偿,根据补偿装置的技术要求,提出-种应用nm量级精度的电容式位移传感器对可调F-P滤波器间距稳定度进行监控的系统,详细论述了监控系统的结构与工作原理。给出了电容式位移传感器的驱动电路及数据处理与控制软件的设计方案,并对电容式位移传感器的精度进行了标定。实验结果表明,该位移监控系统能够使可调F—P滤波器的间距稳定度保持在15nm/h以内,使幅度调制效应的调制深度优于4%。

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运用并联机构原理设计了一种新型惯性约束聚变(Inetial Confinement Fusion, ICF)用可阵列反射镜架结构,并用坐标变换方法分析了机构的调整正交性与旋转轴正交性之间的关系.装置的实际测试结果表明调整正交性与分析结果一致,并且反射镜架的稳定性以及调节准确度均能符合ICF装置的使用要求.

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Ion acceleration by ultrashort circularly polarized laser pulse in a solid-density target is investigated using two-dimensional particle-in-cell simulation. The ions are accelerated and compressed by the continuously extending space-charge field created by the evacuation and compression of the target electrons by the laser light pressure. For a sufficiently thin target, the accelerated and compressed ions can reach and exit from the rear surface as a high-density high-energy ion bunch. The peak ion energy depends on the target thickness and reaches maximum when the compressed ion layer can just reach the rear target surface. The compressed ion layer exhibits lateral striation which can be suppressed by using a sharp-rising laser pulse. (c) 2008 American Institute of Physics.

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Using conventional methods, a laser pulse can be focused down to around 6-8 mu m, but further reduction of the spot size has proven to be difficult. Here it is shown by particle-in-cell simulation that with a hollow cone an intense laser pulse can be reduced to a tiny, highly localized, spot of around 1 mu m radius, accompanied by much enhanced light intensity. The pulse shaping and focusing effect is due to a nonlinear laser-plasma interaction on the inner surface of the cone. When a thin foil is attached to the tip of the cone, the cone-focused light pulse compresses and accelerates the ions in its path and can punch through the thin target, creating highly localized energetic ion bunches of high density.

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A Hohlraum-like configuration is proposed for realizing a simple compact source for neutrons. A laser pulse enters a tiny thin-shelled hollow-sphere target through a small opening and is self-consistently trapped in the cavity. The electrons in the inner shell-wall region are expelled by the light pressure. The resulting space-charge field compresses the local ions into a thin layer that becomes strongly heated. An inward expansion of ions into the shell cavity then occurs, resulting in the formation at the cavity center of a hot spot of ions at high density and temperature, similar to that in inertial electrostatic confinement.

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The impact of a laser-accelerated micron-size projectile on a dense plasma target is studied using two-dimensional particle-in-cell simulations. The projectile is first accelerated by an ultraintense laser. It then impinges on the dense plasma target and merges with the latter. Part of the kinetic energy of the laser-accelerated ions in the projectile is deposited in the fused target, and an extremely high concentration of plasma ions with a mean kinetic energy needed for fusion reaction is induced. The interaction is thus useful for laser-driven impact fusion and as a compact neutron source.

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利用光传输理论对ICF驱动器中使用的光谱色散平滑(SSD)技术作了理论分析,并结合典型的随机相位板(RPP)技术,用计算机模拟了使用光谱色散平滑技术前后激光靶面辐照不均匀性的变化及其技术中不同带宽和调制频率下激光靶面辐照不均匀性的变化。

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在“神光-Ⅱ”装置上进行先进高能多功能激光束系统(简称第九路)研制工程中,由于在原ICF靶室上又增加了输入“汤姆逊探针光”和“X光背光照明探针光”的锥形真空套筒及其终端光学元件,导致原有靶室结构的变化,可能会引入新的不稳定因素.通过有限元分析方法,建立有限元分析模型,进行优化设计.通过位移传感器测量结果可知,第九路终端光学元件径向窜动所引起的打靶误差最大值为2.110 μm,小于“神光-Ⅱ”靶场终端光学系统的最大允许误差值7.785 μm.

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惯性约束聚变(ICF)研究的长远目标,是实现可控核聚变,为人类提供理想的能源。神光Ⅱ高功率激光装置是由中国科学院、中国工程物理研究院、国家“863”计划支持的大科学工程项目。该装置是目前我国规模最大、国际上为数不多的高性能高功率固体激光装置,是我国中近期惯性约束聚变重要实验平台。

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惯性约束聚变(ICF)研究的长远目标,是实现可控核聚变,为人类提供理想的能源。神光Ⅱ高功率激光装置是由中国科学院、中国工程物理研究院、国家高技术863计划支持的大科学工程项目。该装置是目前我国规模最大、国际上为数不多的高性能高功率固体激光装置,是我国中近期惯性约束聚变重要实验平台。

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X光条纹相机在惯性约束聚变实验诊断中具有重要作用.它的性能技术指标的精确标定是实验数据可信度的基础。在上海激光联合实验室的20TW激光器上对X光条纹相机的扫速、时间分辨等时间性能进行了标定,取得了较好的结果。标定结果显示相机的各项性能与出厂标称值有了较大改变。标定的实验结果可有效提高ICF实验数据处理和物理分析的可靠性。