Real-time frequency domain temperature and oxygen sensor with a single optical fiber

被引:23
|
作者
Liao, SC
Xu, Z
Izatt, JA
Alcala, JR
机构
[1] Department of Biomédical Engineering, Case Western Reserve University, Cleveland, OH 44106
[2] Department of Biomédical Engineering, Case Western Reserve University, Cleveland
关键词
fiber sensors; frequency domain; lifetime; oxygen; phosphorescence; temperature;
D O I
10.1109/10.641339
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The combined excited-state phosphorescence lifetimes of an alexandrite crystal and platinum tetraphenylporphyrin Pt(TPP) in a single-fiber sensor are used to monitor temperature and oxygen concentration in the physiological range from 15-45 degrees C and 0-50% O-2 with precision of 0.24 degrees C and 0.15% O-2 and accuracy of 0.28 degrees C and 0.2% O-2. A 500-mu m cubic alexandrite crystal bound to the distal end of a 750-mu m-diameter optical fiber core and the Pt(TPP) coated circumferentially with a length of 1 cm from the end of the same fiber are excited with pulsed super-bright blue LED light. This apparatus uses a 125-kHz sampler for data acquisition and frequency domain methods for signal processing. The instrument amplifies both the dc and ac components of the photomultiplier output and band limits the signal to 20 kHz. The fundamental frequency of the excitation is set to 488.3 Hz and the highest harmonic used is the 35th. This bandlimited signal is sampled and averaged over a few hundred cycles in the time domain. The frequency domain representation of the data is obtained by employing fast Fourier transform algorithms. The phase delay and the modulation ratio of each sampled harmonic are then computed. At least four log-spaced harmonic phases or modulations are averaged before decoding the two lifetimes of temperature and oxygen phosphorescent sensors. A component of zero lifetime is introduced to account for the excitation backscatter leakage through optical interference filters seen by the photodetector. Linear and second-order empirical polynomials are employed to compute the temperatures and oxygen concentrations from the inverse lifetimes. In the situation of constant oxygen concentration, the lifetime of Pt(TPP) changes with temperature but can be compensated using the measured temperature lifetime. The system drift is 0.24 degrees C for the temperature measurement and 0.59% for the oxygen concentration measurement over 30 h of continuous operation. The instrumentation and methods allow for 6-s update times and 90-s full-response times.
引用
收藏
页码:1114 / 1121
页数:8
相关论文
共 50 条
  • [41] Real-time monitoring and prediction method of commercial building fire temperature field based on distributed optical fiber sensor temperature measurement system
    Liu, Gang
    Meng, Hongrong
    Qu, Guanhua
    Wang, Lan
    Ren, Lei
    Lu, Hansong
    JOURNAL OF BUILDING ENGINEERING, 2023, 70
  • [42] Monitoring optical fiber sensor networks by optical frequency-domain reflectometry
    Ding, Zhenyang
    Liu, Tiegen
    Liu, Kun
    Du, Yang
    Li, Dingjie
    2012 PHOTONICS GLOBAL CONFERENCE (PGC), 2012,
  • [43] Submarine Optical Fiber Sensing System for the Real-Time Monitoring of Depth, Vibration, and Temperature
    Liu, Zhengyong
    Zhang, Shengqi
    Yang, Chengkun
    Chung, Weng-Hong
    Li, Zhaohui
    FRONTIERS IN MARINE SCIENCE, 2022, 9
  • [44] Temperature measurements in deployed optical fiber networks using single photon optical time domain reflectometry
    Staffas, Theodor
    Troive, Fredrik
    Zwiller, Val
    OPTICS EXPRESS, 2023, 31 (05) : 8170 - 8176
  • [45] Real-time isothermal DNA amplification monitoring in picoliter volumes using an optical fiber sensor
    Janik, Monika
    Hamidi, Seyed Vahid
    Koba, Marcin
    Perreault, Jonathan
    Walsh, Ryan
    Bock, Wojtek J.
    Smietana, Mateusz
    LAB ON A CHIP, 2021, 21 (02) : 397 - 404
  • [46] Unobtrusive Optical Fiber Rectal Balloon Deformation Sensor for Real-Time Prostate Motion Monitoring
    Zhao, D.
    Campos, D.
    Yan, Y.
    Kissick, M.
    MEDICAL PHYSICS, 2011, 38 (06)
  • [47] Real-time simultaneous single snapshot of optical properties and blood flow using coherent spatial frequency domain imaging (cSFDI)
    Ghijsen, Michael
    Choi, Bernard
    Durkin, Anthony J.
    Gioux, Sylvain
    Tromberg, Bruce J.
    BIOMEDICAL OPTICS EXPRESS, 2016, 7 (03): : 870 - 882
  • [48] The application of optical fiber grating(OFG) pressure sensor on train real-time tracing system
    Pei, L
    Zhang, LZ
    Yan, FP
    Zhang, CY
    Ning, TG
    Xie, ZH
    Jian, SS
    OPTICAL MEASUREMENT AND NONDESTRUCTIVE TESTING: TECHNIQUES AND APPLICATIONS, 2000, 4221 : 67 - 69
  • [49] AN OPTICAL ROUGHNESS SENSOR FOR REAL-TIME QUALITY MEASUREMENT
    PAYNE, RD
    MORAN, AL
    MADDEN, CJ
    KELLEY, P
    JOM-JOURNAL OF THE MINERALS METALS & MATERIALS SOCIETY, 1991, 43 (10): : 18 - 21
  • [50] Real-Time Spectrum Analysis Reveals Time Domain Characteristics of Frequency Domain Signals
    Hill, Thomas C.
    72ND ARFTG MICROWAVE MEASUREMENT SYMPOSIUM, 2008, : 102 - 108