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Updated: Jul 31, 2026

Design and Use of a Full Flow Sampling System (FFS) for the Quantification of Methane Emissions
Published on: June 12, 2016
Calibration and enhancement of an intensity-coded NIR laser single-photon system for quantitative methane leak
Abstract:
Methane (CH4) leakage monitoring represents a critical research direction for the accurate quantification of carbon emissions. This paper introduces an active laser detection technique that employs an InGaAs single-photon detector (SPD) combined with a continuous-wave laser and pseudo-random binary sequence (PRBS) modulation to simultaneously measure CH4 concentration and distance. To mitigate the signal distortion caused by detector dead time in single-photon counting, an experimental validation system was established. A dedicated signal correction algorithm was developed to effectively reconstruct the received signals. The calibration characteristics of detector dead time and signal intensity under varying CH4 concentrations were systematically investigated. By evaluating correction coefficients across different operational parameters, the PRBS-modulated CH4 absorption signal was accurately restored, leading to significantly improved recovery of gas absorption intensity. Comparative validation with a reference photodiode detector showed average relative deviations of 2.8% and 5.1% for two different concentration levels, confirming the effectiveness of the proposed correction method. This work successfully demonstrates a signal reconstruction framework for single-photon detection and offers a novel solution and theoretical basis for future applications of InGaAs SPD in CH4 and other greenhouse gas leakage monitoring.

