[1] Giallorenzi T G, Bucaro J A, Dandridge A et al. Optical fiber sensor technology[J]. IEEE Journal of Quantum Electronics, 18, 626-665(1982).
[2] Hong X B, Wu J, Zuo C et al. Dual Michelson interferometers for distributed vibration detection[J]. Applied Optics, 50, 4333-4338(2011).
[3] Zhang G, Xi C, Liang Y J et al. Dual-Sagnac optical fiber sensor used in acoustic emission source location[C], 1598-1602(2011).
[4] Bernini R, Minardo A, Zeni L. Distributed sensing at centimeter-scale spatial resolution by BOFDA: measurements and signal processing[J]. IEEE Photonics Journal, 4, 48-56(2012).
[5] Soto M A, Nannipieri T, Signorini A et al. Raman-based distributed temperature sensor with 1 m spatial resolution over 26 km SMF using low-repetition-rate cyclic pulse coding[J]. Optics Letters, 36, 2557-2559(2011).
[6] Wang Z, Chen J, Wei H et al. Sapphire Fabry–Perot interferometer for high-temperature pressure sensing[J]. Applied Optics, 59, 5189-5196(2020).
[7] Qi X G, Wang S, Jiang J F et al. Fiber optic Fabry-Perot pressure sensor with embedded MEMS micro-cavity for ultra-high pressure detection[J]. Journal of Lightwave Technology, 37, 2719-2725(2019).
[8] Guo K K, He J, Li H et al. High-spatial-resolution high-temperature sensor based on ultra-short fiber Bragg gratings with dual-wavelength differential detection[J]. Journal of Lightwave Technology, 40, 2166-2172(2022).
[9] Nan J, Zhang D S, Wen X Y et al. Elimination of thermal strain interference in mechanical strain measurement at high temperature using an EF-PI-RFBG hybrid sensor with unlimited cavity length[J]. IEEE Sensors Journal, 20, 5270-5276(2020).
[10] Liu T G, Liu K, Jiang J F et al. Partial latest progress of fiber sensing techniques in Tianjin university[J]. Opto-Electronic Engineering, 37, 1-6, 38(2010).
[11] He H L, Zhao C M, Chen D et al. Present status of optic fiber sensors[J]. Laser & Optoelectronics Progress, 41, 39-41, 38(2004).
[12] Lin Z H, Li C F, Liu J C. Optical fiber sensing technology and its application in militarily[J]. Optical Communication Technology, 35, 4-6(2011).
[13] Wang S A, Zhou J E, Jiang J F et al. Multi-channel polarized low-coherence interference synchronous demodulation system based on a matrix charge-coupled device[J]. Chinese Optics Letters, 18, 071202(2020).
[14] Zhang S H, Jiang Y. Phase demodulation method for non-periodic signal in extrinsic Fabry-Perot interferometric sensor[J]. Acta Optica Sinica, 42, 0906002(2022).
[15] Wang N, Zhu Y, Gong T C et al. Multichannel fiber optic Fabry-Perot nonscanning correlation demodulator[J]. Chinese Optics Letters, 11, 70601-70603(2013).
[16] Jia P G, Liang H, Fang G C et al. Batch-producible MEMS fiber-optic Fabry-Perot pressure sensor for high-temperature application[J]. Applied Optics, 57, 6687-6692(2018).
[17] Li J S, Jia P G, Fang G C et al. Batch-producible all-silica fiber-optic Fabry-Perot pressure sensor for high-temperature applications up to 800 ℃[J]. Sensors and Actuators A: Physical, 334, 113363(2022).
[18] Wang X, Jiang J F, Wang S et al. All-silicon dual-cavity fiber-optic pressure sensor with ultralow pressure-temperature cross-sensitivity and wide working temperature range[J]. Photonics Research, 9, 521-529(2021).
[19] Jiang Y G, Li J A, Zhou Z W et al. Fabrication of all-SiC fiber-optic pressure sensors for high-temperature applications[J]. Sensors, 16, 1660(2016).
[20] Liang T, Li W W, Lei C et al. All-SiC fiber-optic sensor based on direct wafer bonding for high temperature pressure sensing[J]. Photonic Sensors, 12, 130-139(2022).
[21] Zhu Y Z, Cooper K L, Pickrell G R et al. High-temperature fiber-tip pressure sensor[J]. Journal of Lightwave Technology, 24, 861-869(2006).
[22] Ran Z L, Rao Y J, Zhang J et al. Laser-machined all-fiber in-line tip pressure sensor[J]. Proceedings of SPIE, 7503, 75032X(2009).
[23] Zhang Y N, Yuan L, Lan X W et al. High-temperature fiber-optic Fabry-Perot interferometric pressure sensor fabricated by femtosecond laser: erratum[J]. Optics Letters, 39, 17(2014).
[24] Xia P, Tan Y G, Li T L et al. A high-temperature resistant photonic crystal fiber sensor with single-side sliding Fabry-Perot cavity for super-large strain measurement[J]. Sensors and Actuators A: Physical, 318, 112492(2021).
[25] Zhang P H, Zhang L, Wang Z Y et al. Sapphire derived fiber based Fabry-Perot interferometer with an etched micro air cavity for strain measurement at high temperatures[J]. Optics Express, 27, 27112-27123(2019).
[26] Yang T T, Ran Z L, He X et al. Temperature-compensated multifunctional all-fiber sensors for precise strain/high-pressure measurement[J]. Journal of Lightwave Technology, 37, 4634-4642(2019).
[27] Zhang P H, Zhang L, Wang Z Y et al. A Fabry-Perot interferometer for simultaneous measuring temperature and strain based on sapphire-derived fiber-air[J]. Proceedings of SPIE, 11569, 115690E(2020).
[28] Jiao J N, Chen J J, Wang N et al. Study of a fiber optic Fabry-Perot strain sensor for fuel assembly strain detection[J]. Sensors, 22, 9097(2022).
[29] Cui Y, Jiang Y, Zhang Y T et al. Sapphire optical fiber high-temperature vibration sensor[J]. Optics Express, 30, 1056-1065(2022).
[30] Mahissi M, Tong X L, Zhang C et al. Study on the vibration performances for a high temperature fiber F-P accelerometer[J]. Optical Fiber Technology, 62, 102471(2021).
[31] Wang B T, Niu Y X, Zheng S W et al. A high temperature sensor based on sapphire fiber Fabry-Perot interferometer[J]. IEEE Photonics Technology Letters, 32, 89-92(2020).
[32] Yu X, Wang S, Jiang J F et al. Self-filtering high-resolution dual-sapphire-fiber-based high-temperature sensor[J]. Journal of Lightwave Technology, 37, 1408-1414(2019).
[33] Shao Z Q, Wu Y L, Wang S et al. All-sapphire fiber-optic pressure sensors for extreme harsh environments[J]. Optics Express, 30, 3665-3674(2022).
[34] Meggit B T, Grattan K T V[M]. Optical fiber sensor technology(1995).
[35] Gunderson L C. Fiber optic sensor applications using Fabry-Perot interferometry[J]. Proceedings of SPIE, 1267, 194-204(1990).
[36] Sun J Y, Chen W M, Zhu Y et al. Influence of optical source spectrum on optical fiber F-P strain sensor[J]. Acta Optica Sinica, 22, 596-600(2002).
[37] Musa S A. Extrinsic Fabry-Pérot interferometer system using wavelength modulated source[D](1996).
[38] Ranade J. Electronic signal processing in an optical fiber-based magnetometer[D](1998).
[39] Wang A B, Xiao H, Wang J et al. Self-calibrated interferometric-intensity-based optical fiber sensors[J]. Journal of Lightwave Technology, 19, 1495-1501(2001).
[40] Kersey A D, Davis M A, Marrone M J. Differential polarimetric fiber-optic sensor configuration with dual wavelength operation[J]. Applied Optics, 28, 204-206(1989).
[41] Schmidt M, Fürstenau N. Fiber-optic extrinsic Fabry-Perot interferometer sensors with three-wavelength digital phase demodulation[J]. Optics Letters, 24, 599-601(1999).
[42] Liu Q, Jing Z G, Li A et al. Common-path dual-wavelength quadrature phase demodulation of EF-PI sensors using a broadly tunable MG-Y laser[J]. Optics Express, 27, 27873-27881(2019).
[43] Jia J S, Jiang Y, Huang J B et al. Symmetrical demodulation method for the phase recovery of extrinsic Fabry-Perot interferometric sensors[J]. Optics Express, 28, 9149-9157(2020).
[44] Zhang L C, Jiang Y, Gao H C et al. Simultaneous measurements of temperature and pressure with a dual-cavity Fabry-Perot sensor[J]. IEEE Photonics Technology Letters, 31, 106-109(2019).
[45] Yang Y, Ma F X, Chen K et al. High-speed and high-resolution low-coherence interferometric demodulation without phase jumps[J]. IEEE Sensors Journal, 20, 12225-12231(2020).
[46] Li J N, Zhu Y, Wang N et al. Research on high speed multichannel fiber optical Fabry-Perot sensor demodulation system[J]. Acta Optica Sinica, 34, s106001(2014).
[47] Deng Y J. Research on key technologies of fiber Fabry-Perot non-scanning correlation demodulation system[D](2018).
[48] Shen F B, Wang A B. Frequency-estimation-based signal-processing algorithm for white-light optical fiber Fabry–Perot interferometers[J]. Applied Optics, 44, 5206-5214(2005).
[49] Belleville C, Duplain G. Fabry-Perot optical sensing device for measuring a physical parameter[P].
[50] Wang X. Research on optical fiber sensing method of atmospheric physical parameters based on MEMS composite Fabry-Perot microcavity[D](2020).
[51] Ma Z B, Cheng S L, Kou W Y et al. Sensitivity-enhanced extrinsic Fabry-Perot interferometric fiber-optic microcavity strain sensor[J]. Sensors, 19, 4097(2019).
[52] Chen S C, Yao F F, Ren S F et al. Fabry-Perot interferometric sensor demodulation system utilizing multi-peak wavelength tracking and neural network algorithm[J]. Optics Express, 30, 24461-24480(2022).
[53] Yu D Y[M]. Engineering optics(2016).
[54] Cheng P Q[M]. Digital signal processing tutorial, 211-250(2017).
[55] Wang X J, Yu M, Zhu Y et al. Research and improvement on demodulation of sapphire crystal high temperature sensor based on discrete cavity length transformation[C](2010).
[56] Liu S Z. Study on monitoring and sensing system for vibration, fatigue, damage and strain of heat transfer tube of PWR steam generator[D](2018).
[57] Li J S, Zhu Y, Wang N et al. An algorithm for improving the signal stability of the fast fiber optic Fabry-Perot nonscanning correlation demodulation system[J]. Acta Photonica Sinica, 44, 0106005(2015).
[58] Tan J H, Wang Q, Wang N et al. Hardware optical correlation method for dynamic detection of micrometer gaps with sub-nanometer resolution[J]. Optics Express, 30, 32660-32669(2022).
[59] Pechstedt R D. Fibre optic pressure and temperature sensor for applications in harsh environments[J]. Proceedings of SPIE, 8794, 879405(2013).
[60] Palmer M, Davis M, Fielder R et al. High-frequency, fiber-optic temperature sensors for characterization of energetic materials[C], 4581(2013).
[61] Huang P J, Wang N, Li J Y et al. Optical fiber demodulation system with high performance for assessing fretting damage of steam generator tubes[J]. Sensors, 18, 201(2018).