首页> 外文会议>Conference on Gas and Chemical Lasers and Intense Beam Applications Ⅲ, Jan 22-24, 2002, San Jose, USA >Spatially-resolved temperature diagnostic for the chemical oxygen-iodine laser based on a variant of saturation spectroscopy
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Spatially-resolved temperature diagnostic for the chemical oxygen-iodine laser based on a variant of saturation spectroscopy

机译:基于饱和光谱法的化学氧碘激光器的空间分辨温度诊断

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The Chemical Oxygen-Iodine Laser (COIL) depends upon a supersonic mixing nozzle to produce optical gain on the ~2P_(1/2)―~2P_(3/2) atomic iodine transition atλ = 1.315μm. The translational temperature in the gain generator is particularly important, as the yield of singlet oxygen required to reach lasing threshold decreases from 17% at room temperature to 6% at T=150K. We have demonstrated an optical technique for measuring the gas temperature in the COIL supersonic expansion region with a spatial resolution of less than 12 mm~3 using a novel variant of saturated laser spectroscopy. The sub-Doppler hyperfine spectrum of the visible I_2 X~1∑_g~+→B~3II(0_u~+) transition exhibits 15 or 21 transitions and has been recorded using laser saturation spectroscopy with a resolution of about 10 MHz. Pressure broadening of the hyperfine components and cross-relaxation effects have been studied and depend significantly on rotational level. By altering the saturation spectroscopy apparatus so that the pump and probe beams are nearly co-propagating, a Doppler profile, limited to the iodine sample in the volume of the overlapped beams, is obtained. Temperature, as derived from the Doppler profile, is spatially resolved and used to examine the flow from a small supersonic nozzle assembly.
机译:化学氧碘激光器(COIL)依靠超声混合喷嘴在〜2P_(1/2)~~ 2P_(3/2)原子碘跃迁上以λ=1.315μm产生光学增益。增益发生器中的转化温度特别重要,因为达到激射阈值所需的单线态氧的产率从室温的17%降至T = 150K时的6%。我们已经展示了一种光学技术,该技术使用饱和激光光谱的新颖变体来测量空间分辨率小于12 mm〜3的COIL超音速膨胀区域中的气体温度。可见的I_2 X〜1∑_g〜+→B〜3II(0_u〜+)跃迁的亚多普勒超精细光谱表现出15或21跃迁,并已使用约10 MHz分辨率的激光饱和光谱法进行了记录。已经研究了超细组分的压力展宽和交叉松弛效应,并且极大地取决于旋转水平。通过改变饱和光谱仪,使泵浦光束和探测光束几乎同时传播,获得了多普勒轮廓,该轮廓仅限于重叠光束体积中的碘样品。从多普勒轮廓导出的温度在空间上得到解析,并用于检查来自小型超音速喷嘴组件的流量。

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