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Research of time fiducial and imaging VISAR laser for Shenguang-Ⅲ laser facility

机译:神光Ⅲ号激光设备的时间基准和成像VISAR激光器的研究

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Time fiducial laser is an important tool for the precise measurement in high energy density physics experiments. The VISAR probe laser is also vital for shock wave diagnostics in ICF experiments. Here, time fiducial laser and VISAR light were generated from one source on SG-Ⅲ laser facility. After generated from a 1064-nm DFB laser, the laser is modulated by an amplitude modulator driven by 10 GS/s arbitrary waveform generator. Using time division multiplexing technology, the ten-pulse time fiducial laser and the 20-ns VISAR pulse were split by a 1×2 multiplexer and then chosen by two acoustic optic modulators. Using the technique, cost of the system was reduced. The technologies adopted in the system also include pulse polarization stabilization, high precision fiber coupling and energy transmission. The time fiducial laser generated synchronized 12-beam 2ω and 4-beam 3ω laser, providing important reference marks for different detectors and making it convenient for the analysis of diagnostic data. After being amplified by fiber amplifiers and Nd:YAG rod amplifiers, the VISAR laser pulse was frequency-converted to 532-nm pulse by a thermally controlled LBO crystal with final output energy larger than 20 mJ. Finally, the green light was coupled into a 1-mm core diameter, multimode fused silica optical fiber and propagated to the imaging VISAR. The VISAR laser has been used in the VISAR diagnostic physics experiments. Shock wave loading and slowdown processes were measured. Function to measure velocity history of shock wave front movement in different kinds of materials was added to the SG-Ⅲ laser facility.
机译:时间基准激光是在高能量密度物理实验中进行精确测量的重要工具。 VISAR探针激光器对于ICF实验中的冲击波诊断也至关重要。在这里,时间基准激光和VISAR光是从SG-Ⅲ激光设备上的一个光源产生的。从1064 nm DFB激光器产生后,该激光器由一个幅度调制器调制,该幅度调制器由10 GS / s任意波形发生器驱动。使用时分多路复用技术,将十脉冲时间基准激光器和20 ns VISAR脉冲通过1×2多路复用器分开,然后由两个声光调制器进行选择。使用该技术,降低了系统成本。该系统采用的技术还包括脉冲偏振稳定,高精度光纤耦合和能量传输。时间基准激光产生了同步的12光束2ω和4光束3ω激光,为不同的探测器提供了重要的参考标记,并方便了诊断数据的分析。经过光纤放大器和Nd:YAG棒状放大器放大后,VISAR激光脉冲通过热控制LBO晶体频率转换为532 nm脉冲,最终输出能量大于20 mJ。最后,将绿光耦合到纤芯直径为1 mm的多模熔融石英光纤中,并传播到成像VISAR。 VISAR激光器已用于VISAR诊断物理实验中。测量了冲击波的加载和减速过程。在SG-Ⅲ激光设备中增加了测量冲击波在各种材料中运动的速度历史的功能。

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