Failure Mechanisms of Fiber Optic Temperature Sensors in High Temperature and Vibration Environments

被引:0
|
作者
Tsakalakos, Loucas [1 ]
Dani, Uttara A. [1 ]
Lee, Boon K. [1 ]
Lee, Susanne M. [1 ]
Mandal, Sudeep [1 ]
Smentkowski, Vincent [1 ]
Soni, Sunilkumar [1 ]
机构
[1] GE Global Res, Niskayuna, NY 12309 USA
来源
MRS ADVANCES | 2016年 / 1卷 / 35期
关键词
D O I
10.1557/adv.2016.518
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Fiber optic temperature sensors arc used in a variety of harsh environment applications. We have explored use of such temperature sensors ill commercial gas turbines to measure the temperature at various regions of interest within the turbine system. More specifically, fiber optic temperature rakes were designed and installed on a commercial gas turbine under full load conditions. This work will focus on failure mechanisms observed at multiple length scales that impact the peritinnance of high temperature optical fiber sensors. It was found that Au-coated silica fibers, which arc a standard in the industry, undergo various failure modes when subjected to combinations of high temperature and high vibration. More specifically, the Au coating became soft/ductile as the temperature is increased. We also observed that the Au coating was not well bonded to the silica fiber, as expected since there were no adhesion layers present. These effects led to significant damage of the fiber optic under high vibrations. We also found that vibrations from the gas turbine coupled into fundamental modes of the fiber optic probe assembly; which were analyzed by detailed dynamic mechanical analysis. This led to the fiber impacting the internal wall of the probe assembly, which caused further damage and failure oldie fiber and the Au coating. The silica fibers returned from the field also exhibited significant twisting throughout most of their length. This suggests the fibers reached temperatures above their strain point (about 1000 C for pure silica glass), which is explained by either a) the strain point had been significantly reduced by the presence of the (re dopant; or b) the temperature was higher than expected in the gas turbine exhaust region. It was also hypothesized that complex anelastic effects may play a role under the high temperature; high vibration environment experienced by the probes. Detailed structural analysis of the fiber optic temperature sensors by scanning electron microscopy, ToF-SIMS, and X-ray microscopy will he presented to corroborate the above simulations and proposed damage mechanisms. Finally, we note that the fiber Bragg gratings (ERG) present within the temperature probes provided promising temperature data, and were in fact not damaged/crased by the high temperature environment.
引用
收藏
页码:2427 / 2437
页数:11
相关论文
共 50 条
  • [1] Failure Mechanisms of Fiber Optic Temperature Sensors in High Temperature and Vibration Environments
    Loucas Tsakalakos
    Uttara A. Dani
    Boon K. Lee
    Susanne M. Lee
    Sudeep Mandal
    Vincent Smentkowski
    Sunilkumar Soni
    MRS Advances, 2016, 1 (35) : 2427 - 2437
  • [2] High-temperature distributed fiber optic sensors
    Nam, SH
    Zhun, C
    Yin, S
    ADVANCED SENSOR SYSTEMS AND APPLICATIONS II PT 1AND 2, 2004, 5634 : 10 - 17
  • [3] Phosphor-based fiber optic temperature sensors for harsh environments
    Djeu, Nicholas
    Shimoji, Yutaka
    MICRO- AND NANOTECHNOLOGY SENSORS, SYSTEMS, AND APPLICATIONS VII, 2015, 9467
  • [4] State of the art in high-temperature fiber optic sensors
    Fielder, RS
    Stinson-Bagby, KL
    Palmer, M
    FIBER OPTIC SENSOR TECHNOLOGY AND APPLICATIONS III, 2004, 5589 : 60 - 69
  • [5] High temperature miniature fiber optic interferometric thermal sensors
    Inci, Naci M.
    Kidd, Stephen R.
    Barton, James S.
    Jones, Julian D. C.
    Engineering Optics, 1993, 6 (02): : 211 - 216
  • [6] FIBER OPTIC SENSORS - HIGH TEMPERATURE PRECISION FOR INDUSTRY.
    Cooper, James R.
    Industrial Heating, 1986, 53 (01): : 43 - 44
  • [7] Response of Distributed Fiber Optic Temperature Sensors to High-Temperature Step Transients
    McCary, Kelly M.
    Wilson, Brandon A.
    Birri, Anthony
    Blue, Thomas E.
    IEEE SENSORS JOURNAL, 2018, 18 (21) : 8755 - 8761
  • [8] Fiber optic temperature sensors - A new temperature measurement toolbox
    Rice, T
    Poland, S
    Childers, B
    Palmer, M
    Elster, J
    Fielder, B
    Maleski, D
    Gunther, M
    TEMPERATURE: ITS MEASUREMENT AND CONTROL IN SCIENCE AND INDUSTRY, VOL 7, PTS 1 AND 2, 2003, 684 : 1015 - 1020
  • [9] FIBER OPTIC SENSORS FOR DISPLACEMENT, TEMPERATURE, AND STRAIN
    SNITZER, E
    JOURNAL OF THE OPTICAL SOCIETY OF AMERICA, 1981, 71 (12) : 1565 - 1565
  • [10] Fiber optic temperature sensors for medical applications
    Schaafsma, D
    Palmer, G
    Bechtel, JH
    OPTICAL FIBERS AND SENSORS FOR MEDICAL APPLICATIONS III, 2003, 4957 : 162 - 169