A mid-infrared methane detection device based on dual-channel lock-in amplifier

Ling-jiao Zheng , Kai-yuan Zheng , Chuan-tao Zheng , Yue Zheng , Mei-mei Chen , Yi-ding Wang

Optoelectronics Letters ›› 2015, Vol. 11 ›› Issue (4) : 298 -302.

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Optoelectronics Letters ›› 2015, Vol. 11 ›› Issue (4) :298 -302. DOI: 10.1007/s11801-015-5102-2
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A mid-infrared methane detection device based on dual-channel lock-in amplifier
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Abstract

A portable dual-channel digital/analogue hybrid lock-in amplifier (LIA) is developed, and its amplitude detection error is less than 10% when the signal-to-noise ratio (SNR) is larger than −12 dB. Then, a differential mid-infrared methane (CH4) detection device is experimentally demonstrated based on a wideband incandescence wire-source and a multi-pass spherical reflector. The experiments are carried out to obtain the sensing performance of the device. With the absorption length of only ∼4.8 cm, the limit of detection (LoD) is about 71.43 mg/m3, and the detection range is from 0 mg/m3 to 5.00×104 mg/m3. As the concentration gets larger than 714.30 mg/m3, the relative detection error falls into the range of −5%–+5%. Two seven-hour-measurements are done on the CH4 samples with concentrations of 1.43×103 mg/m3 and 4.29×103 mg/m3, respectively, and the results show that the maximum relative error is less than 5%. Because of the cost effective incandescence wire-source, the small-size and inexpensive dual-channel LIA, and the small-size absorption pool and reflector, the developed device shows potential applications of CH4 detection in coal mine production and environmental protection.

Keywords

Maximum Relative Error / Detection Device / Absorption Length / Tunable Diode Laser Absorption Spectroscopy / High Concentration Range

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Ling-jiao Zheng, Kai-yuan Zheng, Chuan-tao Zheng, Yue Zheng, Mei-mei Chen, Yi-ding Wang. A mid-infrared methane detection device based on dual-channel lock-in amplifier. Optoelectronics Letters, 2015, 11(4): 298-302 DOI:10.1007/s11801-015-5102-2

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References

[1]

Huang J, Zhai B, Ye W, Zheng C, Wang Y. Journal of Optoelectronics·Laser. 2014, 25: 947

[2]

Lv R, Song N, Song F, Ye W, Zheng C, Wang Y. Journal of Optoelectronics·Laser. 2013, 24: 1350

[3]

Zhang G J, Wu X L. Optics and Lasers in Engineering. 2004, 42: 219

[4]

Grossel A, Zéninari V, Parvitte B, Joly L, Courtois D. Applied Physics B: Lasers and Optics. 2007, 88: 483

[5]

Kamat P C, Roller C B, Namjou K, Jeffers J D, Faramarzalian A, Salas R, McCann P J. Applied Optics. 2007, 46: 3969

[6]

Kan R F, Deng F Z, Zhang Y J, Liu J G, Liu C, Wang M, Gao S H, Chen J. Chinese Physics B. 2005, 14: 1904

[7]

Xia H, Liu W, Zhang Y, Kan R, Wang M, He Y, Cui Y, Ruan J, Geng H. Chinese Optics Letters. 2008, 6: 437

[8]

Liu J, Tan Q, Zhang W, Xue C, Guo T, Xiong J. Measurement. 2011, 44: 823

[9]

Ye W L, Zheng C T, Yu X, Zhao C X, Song Z W, Wang Y D. Sensors and Actuators B: Chemical. 2011, 155: 37

[10]

Zheng C T, Ye W L, Li G L, Yu X, Zhao C X, Song Z W, Wang Y D. Sensors and Actuators B: Chemical. 2011, 160: 389

[11]

Yu X, Lv R H, Song F, Zheng C T, Wang Y D. Spectroscopy Letters. 2014, 47: 30

[12]

Zheng C T, Ye W L, Huang J Q, Cao T S, Lv M, Dang J M, Wang Y D. Sensors and Actuators B: Chemical. 2014, 190: 249

[13]

Sonnaillon M O, Bonetto F J. Review of Scientific Instruments. 2005, 76: 024703

[14]

Ferri G, De Laurentiis P, DiNatale C, D’Amico A. Sensors and Actuators A: Physical. 2001, 92: 263

[15]

Marschner U, Grtz H, Jettkant B, Ruwisch D, Woldt G, Fischer W J, Clasbrummel B. Sensors and Actuators A: Physical. 2009, 156: 145

[16]

De Marcellis A, Ferri G, Di Natale C, Martinelli E, D’Amico A. IEEE Sensors Journal. 2012, 12: 1377

[17]

D’Amico A, De Marcellis A, Di Carlo C, Di Natale C, Ferri G, Martinelli E, Paolesse R, Stornelli V. Sensors and Actuators B: Chemical. 2010, 144: 400

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