Szakáll Miklós, Bozóki Zoltán, Mohácsi Arpád, Varga Attila, Szabó Gábor
Research Group on Laser Physics of the Hungarian Academy of Sciences, H-6701 Pf. 406 Szeged, Hungary.
Appl Spectrosc. 2004 Jul;58(7):792-8. doi: 10.1366/0003702041389373.
A wavelength modulated, distributed feedback diode laser based photoacoustic water vapor mixing ratio measuring system for atmospheric research applications is presented. Laser modulation parameters were optimized either at 180 or 500 mbar total pressure to enhance the system's sensitivity for low or high pressures (upper troposphere/lower stratosphere or biosphere exchange layer), respectively. A wavelength locking method was developed that ensured sub-picometer absolute (5 x 10(-7) relative) wavelength stability of the laser while consuming minimum additional measurement time. At the calibration of the system, correction factors for the pressure- and temperature-dependence of the photoacoustic signal were determined, which were in turn applied to the calculation of the water vapor mixing ratio from the measured signal during the test operation of the system. The introduced features resulted in reliable, sub-ppm-level water vapor detection even under abrupt gas pressure or temperature variations typical in open atmospheric applications.
本文介绍了一种基于波长调制分布反馈二极管激光器的光声水汽混合比测量系统,用于大气研究。激光调制参数分别在180或500毫巴的总压力下进行了优化,以提高系统对低压或高压(对流层上部/平流层下部或生物圈交换层)的灵敏度。开发了一种波长锁定方法,该方法在消耗最少额外测量时间的情况下,确保了激光器亚皮米级的绝对波长稳定性(相对稳定性为5×10⁻⁷)。在系统校准过程中,确定了光声信号随压力和温度变化的校正因子,这些校正因子反过来又应用于系统测试运行期间根据测量信号计算水汽混合比。这些引入的特性使得即使在开放大气应用中典型的突然气压或温度变化情况下,也能实现可靠的亚ppm级水汽检测。