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首页> 外文期刊>Applied physics >Application of wavelength-scanned wavelength-modulation spectroscopy H_2O absorption measurements in an engineering-scale high-pressure coal gasifier
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Application of wavelength-scanned wavelength-modulation spectroscopy H_2O absorption measurements in an engineering-scale high-pressure coal gasifier

机译:波长扫描波长调制光谱法H_2O吸收测量在工程规模高压煤气化炉中的应用

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摘要

A real-time, in situ water vapor (H_2O) sensor using a tunable diode laser near 1,352 nm was developed to continuously monitor water vapor in the synthesis gas of an engineering-scale high-pressure coal gasifier. Wavelength-scanned wavelength-modulation spectroscopy with second harmonic detection (WMS-2f) was used to determine the absorption magnitude. The 1f-normalized, WMS-2f signal (WMS-2f/1f) was insensitive to non-absorption transmission losses including beam steering and light scattering by the particulate in the synthesis gas. A fitting strategy was used to simultaneously determine the water vapor mole fraction and the collisional-broadening width of the transition from the scanned lf-normalized WMS-2f waveform at pressures up to 15 atm, which can be used for large absorbance values. This strategy is analogous to the fitting strategy for wavelength-scanned direct absorption measurements. In a test campaign at the US National Carbon Capture Center, the sensor demonstrated a water vapor detection limit of ~ 800 ppm (25 Hz bandwidth) at conditions with more than 99.99 % non-absorption transmission losses. Successful unattended monitoring was demonstrated over a 435 h period. Strong correlations between the sensor measurements and transient gasifier operation conditions were observed, demonstrating the capability of laser absorption to monitor the gasification process.
机译:开发了一种实时的原位水蒸气(H_2O)传感器,该传感器使用接近1,352 nm的可调二极管激光器来连续监测工程规模的高压煤气化炉合成气中的水蒸气。带有二次谐波检测的波长扫描波长调制光谱仪(WMS-2f)用于确定吸收幅度。 1f归一化的WMS-2f信号(WMS-2f / 1f)对非吸收传输损耗不敏感,包括光束转向和合成气中颗粒的光散射。拟合策略用于同时确定水蒸气的摩尔分数和在高达15个大气压的压力下从扫描的lf归一化WMS-2f波形的跃迁的碰撞扩展宽度,该值可用于大吸收值。此策略类似于波长扫描直接吸收测量的拟合策略。在美国国家碳捕集中心的一次测试活动中,该传感器在非吸收传输损耗超过99.99%的条件下,证明了水汽检测极限为〜800 ppm(25 Hz带宽)。在435小时内,成功进行了无人值守的监测。观察到传感器测量值与瞬态气化炉运行条件之间存在很强的相关性,这表明激光吸收能够监控气化过程。

著录项

  • 来源
    《Applied physics 》 |2014年第1期| 411-421| 共11页
  • 作者单位

    High Temperature Gasdynamics Laboratory, Stanford University, Stanford, CA 94301, USA;

    High Temperature Gasdynamics Laboratory, Stanford University, Stanford, CA 94301, USA;

    High Temperature Gasdynamics Laboratory, Stanford University, Stanford, CA 94301, USA;

    High Temperature Gasdynamics Laboratory, Stanford University, Stanford, CA 94301, USA;

    National Carbon Capture Center, Southern Company Services, Wilsonville, AL 35186, USA;

    National Carbon Capture Center, Southern Company Services, Wilsonville, AL 35186, USA;

    National Carbon Capture Center, Southern Company Services, Wilsonville, AL 35186, USA;

    National Carbon Capture Center, Southern Company Services, Wilsonville, AL 35186, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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