Qu Shi-min, Wang Ming, Li Nan
Guang Pu Xue Yu Guang Pu Fen Xi. 2016 Oct;36(10):3174-8.
In order to detect trace methane (CH4) with non-contact method, a trace CH4 detector is designed and developed with the combination of tunable diode laser absorption spectroscopy (TDLAS) and wavelength modulation spectroscopy (WMS) detection technology, using the absorption line (1 332.8 cm-1) of CH4 in mid-infrared band. The instrument uses mid-infrared quantum cascaded laser (QCL) with centre wavelength at 7.5 μm, and uses the method of changing the injecting current (0.6~1.6 A) of QCL with fixed working temperature to make the emission wavelength of QCL to scan the methane’s absorption line (1 332.8 cm-1) via tuning parameters 0.2 cm-1·A-1. In terms of optical structure, the instrument using a gas absorption sealed herriott cell with 76 m long optical path, cooperating with difference detection optical path, reduces the noise which caused by the fluctuation of QCL, and guarantees the detection of trace CH4. In the experiment, we adopted minimum mean square error criterion to fit the relationship between methane concentration and harmonic peak signal. In addition, the minimum detection limit is 40×10-9, and the relative error of test results is 0.09%., The stability is better than 2.8%, which verify the feasibility of the instrument.
为了采用非接触式方法检测痕量甲烷(CH₄),结合可调谐二极管激光吸收光谱(TDLAS)和波长调制光谱(WMS)检测技术,利用甲烷在中红外波段的吸收线(1332.8 cm⁻¹),设计并研制了一种痕量CH₄探测器。该仪器采用中心波长为7.5μm的中红外量子级联激光器(QCL),在固定工作温度下,通过改变QCL的注入电流(0.6~1.6 A),利用调谐参数0.2 cm⁻¹·A⁻¹使QCL的发射波长扫描甲烷的吸收线(1332.8 cm⁻¹)。在光学结构方面,该仪器采用光程为76 m的气体吸收密封赫里奥特池,配合差分检测光路,降低了由QCL波动引起的噪声,保证了痕量CH₄的检测。实验中,采用最小均方误差准则拟合甲烷浓度与谐波峰值信号之间的关系。此外,最低检测限为40×10⁻⁹,测试结果的相对误差为0.09%,稳定性优于2.8%,验证了该仪器的可行性。