Acta Photonica Sinica, Volume. 53, Issue 11, 1130002(2024)

Transformer Fault Characteristic Gas Optical Feedback Frequency Locking Asymmetric Linear F-P Cavity Enhanced Raman Spectroscopy Detection

Fu WAN1,2、*, Yaotian BAI1, Rui WANG1, Lei ZHU1, Yingkai LONG3, and Weigen CHEN1,2
Author Affiliations
  • 1State Key Laboratory of Power Transmission Equipment Technology,School of Electrical Engineering,Chongqing University,Chongqing 400044,China
  • 2National Innovation Center for Industry-Education Integration of Energy Storage Technology,Chongqing University,Chongqing 400044,China
  • 3State Grid Chongqing Electric Power Company Chongqing Electric Power Research Institute,Chongqing 401123,China
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    References(27)

    [1] CAO Lingyan, LI Zhijun, QI Hongchao et al. Ultra-high sensitivity detection technology of dissolved gas in oil based on miniature resonant photoacoustic cell[J]. Acta Photonica Sinica, 52, 0352120(2023).

    [2] YUAN Shuai, WANG Guangzhen, FU Dehui et al. Cross interference characteristics of photoacoustic spectroscopy multi gas analyzer[J]. Acta Photonica Sinica, 50, 0430002(2021).

    [3] WANG Jianxin, CHEN Weigen, WANG Pinyi et al. Analysis of fault characteristic gases dissolved in transformer oil based on hollow-core anti-resonant fiber-enhanced raman spectroscopy[J]. Proceedings of the CSEE, 42, 6136-6144(2022).

    [4] SU Q, MI C, LAI L L et al. A fuzzy dissolved gas analysis method for the diagnosis of multiple incipient faults in a transformer[J]. IEEE Transactions on Power Systems, 15, 593-598(2000).

    [5] SUN H C, HUANG Y C, HUANG C M. A review of dissolved gas analysis in power transformers[J]. Energy Procedia, 14, 1220-1225(2012).

    [6] ABUBAKAR N, ABUSIADA A, ISLAM S. A review of dissolved gas analysis measurement and interpretation techniques[J]. IEEE Electrical Insulation Magazine, 30, 39-49(2014).

    [7] SUN C, OHODNICKI P R, STEWART E M. Chemical sensing strategies for real-time monitoring of transformer oil: a review[J]. IEEE Sensors Journal, 17, 5786-5806(2017).

    [8] WANG Qiang, WANG Hao, XIAO Cong et al. Dual-spectroscopy gas detection technique based on a quartz tuning fork detector[J]. Acta Photonica Sinica, 52, 0352117(2023).

    [9] MA Yufei, Tiantian LlANG, Shunda QlAO et al. Highly sensitive and fast hydrogen detection based on light-induced thermoelastic spectroscopy[J]. Ultrafast Science, 3, 0024(2023).

    [10] TIAN J, ZHAO G, FLEISHER A J et al. Optical feedback linear cavity enhanced absorption spectroscopy[J]. Optics Express, 29, 26831-26840(2021).

    [11] NING L, HONGTAO Z, TIMOTHY Y et al. Sensitive and single-shot OH and temperature measurements by femtosecond cavity-enhanced absorption spectroscopy[J]. Optics Letters, 47, 3171-3174(2022).

    [12] LI S, DONG L, WU H et al. Ppb-level quartz-enhanced photoacoustic detection of carbon monoxide exploiting a surface grooved tuning fork[J]. Analytical Chemistry, 91, 5834-5840(2019).

    [13] WANG P, CHEN W, WANG J et al. Cavity-enhanced raman spectroscopy for detection of trace gaseous impurities in hydrogen for fuel cells[J]. Analytical Chemistry, 95, 6894-6904(2023).

    [14] STEFAN H, TIMEA B, ROBERT K et al. Fast and highly sensitive fiber-enhanced raman spectroscopic monitoring of molecular H2 and CH4 for point-of-care diagnosis of malabsorption disorders in exhaled human breath[J]. Analytical Chemistry, 87, 982-988(2015).

    [15] WANG J, CHEN W, WAN F et al. Fiber-enhanced raman spectroscopy for highly sensitive H2 and SO2 sensing with a hollow-core anti-resonant fiber[J]. Optics Express, 29, 32296-32311(2021).

    [16] ANDREAS K, ROBERT D, DI Y et al. Fiber-enhanced raman gas spectroscopy for 18O-13C-labeling experiments[J]. Analytical Chemistry, 91, 7562-7569(2019).

    [17] ZICONG X, KENICHI O, YOSHITAKA T et al. Stimulated raman scattering spectroscopy with quantum-enhanced balanced detection[J]. Optics Express, 30, 18589-18598(2022).

    [18] FRANC M, HUGO B, LEONARDO C et al. Coherent N2+ emission mediated by coherent raman scattering for gas-phase thermometry[J]. Optics Letters, 47, 6105-6108(2022).

    [19] ADAM J F, LIMBACH C M, YALIN A P. Cavity-enhanced rotational raman scattering in gases using a 20 mW near-infrared fiber laser[J]. Optics Letters, 41, 3193-3196(2016).

    [20] MORVILLE J, KASSI S, CHENEVIER M et al. Fast, low-noise, mode-by-mode, cavity-enhanced absorption spectroscopy by diode-laser self-locking[J]. Applied Physics. B, 80, 1027-1038(2005).

    [21] WAN F, WANG R, GE H et al. Optical feedback frequency locking: impact of directly reflected field and responding strategies[J]. Optics Express, 27, 12428-12437(2024).

    [22] KING D A, PITTARO R J. Simple diode pumping of a power-buildup cavity[J]. Optics Letters, 23, 774-776(1998).

    [23] TOBIAS J, BEATE M, ANNE B et al. Microbial respiration and natural attenuation of benzene contaminated soils investigated by cavity enhanced raman multi-gas spectroscopy[J]. Analyst, 140, 3143-3149(2015).

    [24] KEINER R, FROSCH T, MICHALZIK B et al. Investigation of gas exchange processes in peat bog ecosystems by means of innovative raman gas spectroscopy[J]. Analytical Chemistry, 85, 1295-1299(2013).

    [25] SALTER R, CHU J, HIPPLER M. Cavity-enhanced raman spectroscopy with optical feedback cw diode lasers for gas phase analysis and spectroscopy[J]. Analyst, 137, 4669-4676(2012).

    [26] WANG P, CHEN W, WAN F et al. Cavity-enhanced raman spectroscopy with optical feedback frequency-locking for gas sensing[J]. Optics Express, 27, 33312-33325(2019).

    [27] LI H, ABRAHAM N B. Analysis of the noise spectra of a laser diode with optical feedback from a high-finesse resonator[J]. IEEE Journal of Quantum Electronics, 25, 1782-1793(1989).

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    Fu WAN, Yaotian BAI, Rui WANG, Lei ZHU, Yingkai LONG, Weigen CHEN. Transformer Fault Characteristic Gas Optical Feedback Frequency Locking Asymmetric Linear F-P Cavity Enhanced Raman Spectroscopy Detection[J]. Acta Photonica Sinica, 2024, 53(11): 1130002

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    Paper Information

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    Received: Apr. 9, 2024

    Accepted: May. 20, 2024

    Published Online: Jan. 8, 2025

    The Author Email: Fu WAN (wanfuhappy@163.com)

    DOI:10.3788/gzxb20245311.1130002

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