Fiber optic sensor development for real-time in-situ epoxy cure monitoring

被引:51
|
作者
Liu, YM [1 ]
Ganesh, C [1 ]
Steele, JPH [1 ]
Jones, JE [1 ]
机构
[1] COLORADO SCH MINES,DIV ENGN,LAB INTELLIGENT AUTOMATED SYST,GOLDEN,CO 80401
关键词
D O I
10.1177/002199839703100106
中图分类号
TB33 [复合材料];
学科分类号
摘要
Analysis of a new fiber optic sensor based on the principle of Fresnel reflection is presented in order to develop a robust, flexible, readily embedded, high sensitivity and low-cost cure monitoring tool for intelligent control of composite manufacturing. This approach is distinct from previous work on on-line in-situ monitoring sensors in that the transducer is simply the fiber optic/epoxy interface. This leads to a more simple, less intrusive, and lower cost sensing system. The response of the sensor is a function of the mismatch in refractive index between the fiber optic end/resin interface. The refractive index of the resin is a nonlinear function of the temperature and the cure reaction of the resin. The sensing system detects the mismatch in the refractive index and generates a characteristic profile that gives the chemorheological information about the curing resin. Under isothermal cure conditions, the effect of the temperature on the refractive index mismatch can be eliminated. In this situation, the optical response of the sensor is only dependent on the cure kinetics and the state of the cross-linking in the material. A calibration method has been developed to interpret the optical response directly as the degree-of-cure of the resin. This work provides analysis of the fundamental sensor response and correlates it to the material state (degree-of-cure). These results provide a basis for extending the use of this sensor technology for on-line real-time cure monitoring and control.
引用
收藏
页码:87 / 102
页数:16
相关论文
共 50 条
  • [41] Methodology for real-time, multianalyte monitoring of fermentations using an in-situ mid-infrared sensor
    Kornmann, H
    Rhiel, M
    Cannizzaro, C
    Marison, I
    von Stockar, U
    BIOTECHNOLOGY AND BIOENGINEERING, 2003, 82 (06) : 702 - 709
  • [42] Label-Free Tapered Fiber Optic Sensor for Real-Time In Situ Detection of Cell Activity
    Dong, Taiji
    Gao, Bingkun
    Yan, Bing
    Zhou, Yekun
    Wang, Yunkai
    Wang, Weicheng
    Xu, Kaichuan
    Jiang, Chunlei
    Wang, Zengbo
    IEEE SENSORS JOURNAL, 2023, 23 (14) : 15622 - 15627
  • [43] Development and Use of a Real-time In-situ Monitoring Tool for Electrochemical Advanced Oxidation Processes
    Schroeder, Chelsea M.
    Sandoval, Arturo Leon
    Ohlhorst, Kristiane K.
    Leadbeater, Nicholas E.
    CHEMISTRYMETHODS, 2023, 3 (10):
  • [44] Development of In-Situ Real-Time CD Monitoring and Control System through PEB Process
    Yang, Geng
    Tay, Arthur
    Ho, Weng Khuen
    PROCEEDINGS OF THE 2012 24TH CHINESE CONTROL AND DECISION CONFERENCE (CCDC), 2012, : 3080 - 3085
  • [45] Real-time UV cure monitoring
    Zahouily, Khalid
    Decker, Christian
    Kaisersberger, Erwin
    Gruener, Michael
    European Coatings Journal, 2003, (11): : 14 - 18
  • [46] Use of dielectric spectroscopy for real-time in-situ reaction monitoring
    Nahm, Steven H.
    JCT RESEARCH, 2006, 3 (04): : 257 - 265
  • [47] An in-situ, real-time Device for Hg Monitoring in Deep Waters
    Saviozzi, G.
    Bartaloni, F.
    Fornai, F.
    Laschi, C.
    Dario, P.
    Pacini, F.
    Mashyanov, N.
    Sholupov, S.
    Pogarev, S.
    Volpi, L.
    Teti, G.
    OCEANS 2015 - GENOVA, 2015,
  • [48] Use of dielectric spectroscopy for real-time in-situ reaction monitoring
    Steven H. Nahm
    Journal of Coatings Technology and Research, 2006, 3 : 257 - 265
  • [49] In-situ, real-time spectral reflectance monitoring of GaN growth
    Na, H
    Kim, HJ
    Kwon, SY
    Yoon, E
    Moon, Y
    Kim, MH
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2000, 37 (06) : 971 - 974
  • [50] Electrochemical Soil Nitrate Sensor for In Situ Real-Time Monitoring
    Eldeeb, Mohammed A. A.
    Dhamu, Vikram Narayanan
    Paul, Anirban
    Muthukumar, Sriram
    Prasad, Shalini
    MICROMACHINES, 2023, 14 (07)