用中红外激光吸收诊断技术测量超临界CO2燃烧装置的一氧化碳排放

James P. Anderson, Alejandro Camou, E. Petersen, M. Harris, D. Cusano
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摘要

一种坚固耐用的中红外(IR) CO激光吸收诊断系统已被开发出来,用于监测高压CH4-O2燃烧室在超临界CO2条件下(30 MPa和1150°C)产生的CO量。激光系统工作在CO在4.5 μm附近的基吸收波段ν″= 0,R(12)。中红外诊断系统由一个可调谐量子级联激光器(QCL)、一个具有两个窗口端口用于监测CO排气浓度的吸收电池和两个红外光电探测器组成。在吸收电池附近安装了温度和压力传感器,以监测排气流量状况,并通过使用已知的CO和N2混合物的校准过程确定激光器的工作波长。远程室外测试设施的环境条件对红外诊断的数据采集过程造成了重大困难。当操作低温光电探测器和稳定设计为在- 15°C内部温度下工作的QCL时,环境温度的波动被证明是有问题的。红外系统的改进包括通过新的吸收池设计消除有问题的停滞区域和增加CO检测限。在稳态条件下,中红外诊断测量CO浓度在±80.6 ppm。红外诊断被证明具有优越的CO检测响应时间和解决其他CO检测器未检测到的特征的能力。
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Carbon Monoxide Emission Measurements From a Supercritical CO2 Combustor Rig Using a Mid-Infrared Laser Absorption Diagnostic
A rugged, mid-infrared (IR) CO laser absorption diagnostic has been developed to monitor the amount of CO produced by a high-pressure CH4-O2 combustor test rig operating at supercritical CO2 conditions (30 MPa and 1150°C). The laser system operates at the fundamental absorption band, ν″ = 0, R(12), of CO near 4.5 μm. The mid-IR diagnostic was constructed from a tunable quantum cascade laser (QCL), an absorption cell with two window ports for monitoring CO exhaust concentration, and two IR photodetectors. Temperature and pressure sensors were mounted near the absorption cell to monitor exhaust flow conditions, and the operational wavelength of the laser was determined by a calibration process using a known mixture of CO and N2. Environmental conditions at the remote outdoor test facility posed significant difficulties in the data acquisition process for the IR diagnostic. Fluctuating environmental temperatures proved to be problematic when operating cryogenic photodetectors and stabilizing a QCL designed to operate with an internal temperature of −15°C. Improvements to the IR system included elimination of problematic stagnation regions via a new absorption cell design and an increase in the CO detection limit. During steady state conditions, the mid-IR diagnostic measured the CO concentration to within ± 80.6 ppm. The IR diagnostic was shown to have superior CO detection response time and the ability to resolve features not detected by other CO detector counterparts.
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