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首页> 外文期刊>Applied optics >Self-calibration and laser energy monitor validations for a double-pulsed 2-mu m CO2 integrated path differential absorption lidar application
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Self-calibration and laser energy monitor validations for a double-pulsed 2-mu m CO2 integrated path differential absorption lidar application

机译:用于双脉冲2微米CO2集成路径差吸收激光雷达应用的自校准和激光能量监测器验证

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Double-pulsed 2-mu m integrated path differential absorption (IPDA) lidar is well suited for atmospheric CO2 remote sensing. The IPDA lidar technique relies on wavelength differentiation between strong and weak absorbing features of the gas normalized to the transmitted energy. In the double-pulse case, each shot of the transmitter produces two successive laser pulses separated by a short interval. Calibration of the transmitted pulse energies is required for accurate CO2 measurement. Design and calibration of a 2-mu m double-pulse laser energy monitor is presented. The design is based on an InGaAs pin quantum detector. A high-speed photoelectromagnetic quantum detector was used for laser-pulse profile verification. Both quantum detectors were calibrated using a reference pyroelectric thermal detector. Calibration included comparing the three detection technologies in the single-pulsed mode, then comparing the quantum detectors in the double-pulsed mode. In addition, a self-calibration feature of the 2-mu m IPDA lidar is presented. This feature allows one to monitor the transmitted laser energy, through residual scattering, with a single detection channel. This reduces the CO2 measurement uncertainty. IPDA lidar ground validation for CO2 measurement is presented for both calibrated energy monitor and self-calibration options. The calibrated energy monitor resulted in a lower CO2 measurement bias, while self-calibration resulted in a better CO2 temporal profiling when compared to the in situ sensor. (C) 2015 Optical Society of America
机译:双脉冲2微米集成路径差分吸收(IPDA)激光雷达非常适合用于大气CO2遥感。 IPDA激光雷达技术依靠归一化为传输能量的气体的强吸收和弱吸收特征之间的波长差异。在双脉冲情况下,发射器的每次发射都会产生两个相隔很短间隔的连续激光脉冲。要精确测量CO2,需要校准发射脉冲能量。介绍了一种2微米双脉冲激光能量监测仪的设计和校准。该设计基于InGaAs引脚量子检测器。高速光电磁量子检测器用于激光脉冲轮廓验证。两个量子探测器都使用参考热释电热探测器进行了校准。校准包括在单脉冲模式下比较三种检测技术,然后在双脉冲模式下比较量子检测器。此外,还介绍了2微米IPDA激光雷达的自校准功能。这一功能使人们可以通过单个检测通道通过残留散射来监视传输的激光能量。这减少了二氧化碳测量的不确定性。提供了用于二氧化碳测量的IPDA激光雷达地面验证,用于校准的能量监测器和自校准选项。与原位传感器相比,经过校准的能量监控器可降低CO2测量偏差,而自校准则可带来更好的CO2时间分布。 (C)2015年美国眼镜学会

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