Liu Xiaonan, Ma Yufei
National Key Laboratory of Science and Technology on Tunable Laser, Harbin Institute of Technology, Harbin 150001, China.
Sensors (Basel). 2022 Aug 15;22(16):6095. doi: 10.3390/s22166095.
The rapidly changing and wide dynamic range of combustion temperature in scramjet engines presents a major challenge to existing test techniques. Tunable diode laser absorption spectroscopy (TDLAS) based temperature measurement has the advantages of high sensitivity, fast response, and compact structure. In this invited paper, a temperature measurement method based on the TDLAS technique with a single diode laser was demonstrated. A continuous-wave (CW), distributed feedback (DFB) diode laser with an emission wavelength near 1.4 μm was used for temperature measurement, which could cover two water vapor (HO) absorption lines located at 7153.749 cm and 7154.354 cm simultaneously. The output wavelength of the diode laser was calibrated according to the two absorption peaks in the time domain. Using this strategy, the TDLAS system has the advantageous of immunization to laser wavelength shift, simple system structure, reduced cost, and increased system robustness. The line intensity of the two target absorption lines under room temperature was about one-thousandth of that under high temperature, which avoided the measuring error caused by HO in the environment. The system was tested on a McKenna flat flame burner and a scramjet model engine, respectively. It was found that, compared to the results measured by CARS technique and theoretical calculation, this TDLAS system had less than 4% temperature error when the McKenna flat flame burner was used. When a scramjet model engine was adopted, the measured results showed that such TDLAS system had an excellent dynamic range and fast response. The TDLAS system reported here could be used in real engine in the future.
超燃冲压发动机中燃烧温度快速变化且动态范围宽广,这给现有的测试技术带来了重大挑战。基于可调谐二极管激光吸收光谱技术(TDLAS)的温度测量具有灵敏度高、响应速度快和结构紧凑等优点。在这篇特邀论文中,展示了一种基于单二极管激光的TDLAS技术的温度测量方法。使用了一台发射波长接近1.4μm的连续波(CW)分布反馈(DFB)二极管激光器进行温度测量,它能够同时覆盖位于7153.749cm和7154.354cm处的两条水汽(H₂O)吸收线。根据时域中的两个吸收峰对二极管激光器的输出波长进行了校准。采用这种策略,TDLAS系统具有对激光波长漂移免疫、系统结构简单、成本降低以及系统鲁棒性增强等优点。两条目标吸收线在室温下的谱线强度约为高温下的千分之一,这避免了环境中H₂O引起的测量误差。该系统分别在麦肯纳平面火焰燃烧器和超燃冲压发动机模型上进行了测试。结果发现,与相干反斯托克斯拉曼散射(CARS)技术测量结果和理论计算结果相比,当使用麦肯纳平面火焰燃烧器时,该TDLAS系统的温度误差小于4%。当采用超燃冲压发动机模型时,测量结果表明这种TDLAS系统具有出色的动态范围和快速响应。本文报道的TDLAS系统未来可用于实际发动机。