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首页> 外文期刊>Experiments in Fluids: Experimental Methods and Their Applications to Fluid Flow >Evaluation of nitric oxide laser-induced fluorescence thermometry techniques in a hypersonic boundary layer
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Evaluation of nitric oxide laser-induced fluorescence thermometry techniques in a hypersonic boundary layer

机译:高超声音边界层一氧化氮激光诱导的荧光热体技术评价

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摘要

Nitric oxide planar laser-induced fluorescence was performed to measure the wall-normal distribution of static temperature through a hypersonic boundary layer. A 10-degree half-angle wedge model was oriented at a 5-degree angle of attack in the NASA Langley 31-in Mach 10 facility, resulting in a 5-degree flow turning angle and an edge Mach number of 7.6. Nitric oxide was seeded through a spanwise slot into the boundary layer upstream of the imaging region and was excited with a pulsed ultraviolet planar laser sheet. The laser was spectrally scanned across six fluorescence transitions in the (0, 0) band of the A2S+- X 2. system. Eighteen thermometry methods were assessed through comparison to predictions of the temperature field from computational fluid dynamics simulations. The effect of spectral resolution and laser linewidth on measurement uncertainty was also investigated. The most accurate technique was spectral peak thermometry, which achieved an accuracy of +/- 31.6 K ( 12.6% error relative to CFD temperature). The spectral peak thermometry technique required a minimum spectral resolution between 0.074 and 0.102 cm- 1 and a maximum laser linewidth of 0.49 cm- 1 to extract meaningful temperature information from the spectra.
机译:进行一氧化氮平面激光诱导的荧光,以通过超声边界层测量静态温度的壁正态分布。 10度半角楔形模型以5度攻击NASA Langley 31-In Mach 10设施的攻角为定向,导致5度的流量转向角度和7.6的边缘马赫数。通过血管槽将一氧化氮接种到成像区域上游的边界层中,并用脉冲紫外线激光片激发。在A2S + - X 2.系统的(0,0)条带中的六种荧光转变频谱扫描激光器。通过与计算流体动力学模拟的温度场预测进行评估,评估十八测温方法。还研究了光谱分辨率和激光线宽对测量不确定性的影响。最精确的技术是光谱峰值温度,其达到+/- 31.6 k的精度(相对于CFD温度为12.6%)。光谱峰值温度技术需要0.074至0.102cm-1之间的最小光谱分辨率和0.49cm-1的最大激光线宽,以从光谱中提取有意的温度信息。

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