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Stagnation Temperature Measurements in a Shock-Tunnel Facility using Laser-Induced Grating Spectroscopy

机译:使用激光感应光栅光谱技术在冲击隧道设施中停滞温度测量

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Experimental determination of test gas temperatures in high-enthalpy ground testing is a challenging task, particularly regarding excessive pressure and temperature levels as well as minimum characteristic time scales available in transient facilities. Accurate knowledge of test gas conditions and stagnation enthalpy in reentry experiments is however crucial for a valid comparison with numerical results. Therefore, to contribute to a more accurate quantification of nozzle flow upstream boundary conditions, laser-induced grating spectroscopy - LIGS - is applied to the nozzle reservoir section of the piston-driven reflected shock tunnel HELM -High-Enthalpy Laboratory Munich - for non-intrusive stagnation temperature measurement Single-shot determination of post-shock wave gas temperature involves exact synchronization of the transient event in the test bench with the optical setup. Problems arising from impulse facility recoil are solved and discussed with respect to the laser light geometrical optical pathway. Employing minimum selective seeding by nitric oxide for improved signal intensity, gas temperatures of around 1100 K behind the reflected shock wave are measured by resonant LIGS for a low-enthalpy operation condition in air, at pressure and enthalpy of 6 MPa and 1,2 MJ/kg, respectively.
机译:在高焓地面测试中实验确定测试气体温度是一项艰巨的任务,特别是在过高压力和温度水平以及瞬态设施中可用的最小特征时间标度方面。再入实验中对测试气体条件和停滞焓的准确了解对于与数值结果进行有效比较至关重要。因此,为有助于更准确地量化喷嘴流上游边界条件,激光诱导光栅光谱法-LIGS-应用于活塞驱动反射激波隧道的喷嘴储液器部分HELM-高焓实验室慕尼黑-非侵入式停滞温度测量冲击波后气体温度的单次测定涉及测试台中瞬态事件与光学装置的精确同步。关于激光几何光学路径,解决并讨论了由脉冲设施后坐力引起的问题。通过使用一氧化氮进行最小选择性播种以改善信号强度,通过共振LIGS在空气中处于低焓运行条件下,压力和焓为6 MPa和1,2 MJ的情况下,通过共振LIGS测量了大约1100 K的气体温度/ kg。

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