4.2 Article

A Fire Warning Method Using Tunable Diode Laser Absorption Spectroscopy

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AMER SCIENTIFIC PUBLISHERS
DOI: 10.1166/jno.2021.2921

关键词

Gas Detection; TDLAS; Warning System; Semiconductor Laser; Output Wavelength

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Tunable diode laser absorption spectroscopy (TDLAS) technology is used to detect fire gas in the early stage of a fire, and a fire warning detection system with multiple lasers and detectors is proposed. Multiple drivers input data to keep the output wavelength consistent with the measured gas' absorption peak wavelengths, achieving early fire warning.
Tunable diode laser absorption spectroscopy (TDLAS) technology is adopted herein to detect fire gas produced in the early stage of the fire. Based on this technology, a fire warning detection system with multiple lasers and detectors is proposed. Multiple drivers input laser's temperature and injected current data, making its output wavelength consistent with the measured gas' absorption peak wavelengths in absorption spectroscopy. Multiple light beams are coupled to the same optical fiber. After the light beams pass through the long optical path absorption cell filled with fire gas, the beams are separated by a converter. The signals are demodulated by different detectors and further analyzed for fire warnings. After the fire warning system's design, the system's various hardware modules are designed, including the light source module, TDLAS controller, gas chamber module, photoelectric detector, and data collection. When the temperature remains unchanged, the output wavelength is linearly related to the injected current. When the injected current remains unchanged, the output wavelength is linearly related to the operating temperature. With a semiconductor laser's injected current of 40 mA, the initial temperature of 38.6 degrees C, and the output wavelength of 1578.16 nm, the output wavelength increases continuously as the temperature increases. The harmonic signal amplitude after gas absorption is positively correlated with the measured gas concentration, indicating that the second harmonic signals can estimate the fire gas concentration.

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