TECHNICAL PAPERS
Aug 1, 1994

Experimental Study of Embedded Fiber‐Optic Strain Gauges in Concrete Structures

Publication: Journal of Engineering Mechanics
Volume 120, Issue 8

Abstract

Embedded fiber‐optic sensors have the potential of providing valuable information about the condition of the host structure when these sensors are used within an integrated health‐monitoring network attached to the structure. Although such sensors have been developed during the past 15 years for initial specialized applications in aerospace, hydrospace, and biomedical systems, recent attention has been given to the transitioning of these methods to the evaluation of civil structures. This paper reviews the state of the art of the application of fiber‐optic sensors in the structural mechanics field and reports some of the results of an experimental study concerned with the use of embedded short‐gauge‐length optical‐fiber sensors for the quantitative measurement of strain in reinforced concrete structures. Assessment of the validity of the measurements was accomplished through direct comparison between the performance of these sensors and collocated foil strain gauges. Pairs of fiber sensor elements and reference foil strain gauges were attached to specific rebar elements within a three‐dimensional reinforcement cage in a reinforced concrete beam‐column assemblage. The fiber sensors were extrinsic Fabry‐Perot interferometric elements operating at 1,300 nm. The beam‐column joint was subjected to cyclic dynamic loads leading to significant strain levels. Quantitative measurements of those strains were obtained from both the fiber and foil strain gauges. Measured values of strains varied by about 5% between the two types of sensors. Results of this study indicate that properly installed fiber‐optic strain gauges not only can survive the harsh environment involved in the embedment process, but can also yield accurate quantitative strain information from reinforced concrete structures.

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References

1.
Proc., Int. Workshop on Nondestructive Evaluation for Performance of Civ. Struct. (1988). M. S. Agbabian, and S. F. Masri, eds., University of Southern California, USC Publication No. M8805, Los Angeles, Calif.
2.
Akhavan Leilabady, P., Jones, J. D. C., and Jackson, D. A. (1985). “Monomode fiber‐optic strain gauge with simultaneous phase‐ and polarization‐state detection.” Optics Letter, Vol. 10, 576–578.
3.
Blake, J. N., Huang, S. Y., Kim, B. Y., and Shaw, H. J. (1987). Optics Letter, Vol. 12, 732.
4.
Buckman, A. (1992). Guided wave photonics. Saunders, New York, N.Y.
5.
Butter, C. D., and Hocker, G. B. (1978). “Fiber optics strain gauge.” Appl. Optics, Vol. 17, 2867–2869.
6.
Claus, R. O., and Cantrell Jr., J. H. (1980). “Detection of ultrasonic waves in solids by an optical fiber interferometer.” IEEE Ultr. Symp., 719–721.
7.
Claus, R., Dhawan, R., and Gunther, M. F. (1992). “Detection of in‐plane displacements of acoustic wave fields using extrinsic fizeau fiber interferometric sensors.” Proc., Smart Mat. and Struct. Workshop, IOP Publishing, Blacksburg, Va.
8.
Claus, R. O., Gunther, M. F., Wang, A., and Murphy, K. A. (1992). “Extrinsic Fabry‐Perot sensor for strain and crack opening displacement measurements from −200°C to 900°C.” Smart Mat. and Struct., Vol. 1, 237–242.
9.
Culshaw, B., and Dakin, B. (1989). Optical fiber sensors: I & II. Artech House, Inc., Boston, Mass.
10.
Fuhr, P. L., Huston, D. R., Kajenski, P. J., Kunkel, and Ambrose, T. P. (1992). “Performance and health monitoring of the Stafford medical building using embedded sensors.” Smart Mat. and Struct., 1, 63–68.
11.
Giallorenzi, T. G., Bucaro, J. A., Dandridge, A., Sigel, G. H., Coles, J. H., Raslhleigh, S. C., and Priest, R. G. (1982). “Optical fiber sensor technology.” IEEE J. Quantum Electron, QE‐18, 626–665.
12.
Proc., U.S. Nat. Workshop on Struct. Control Res. (1990). G. W. Housner and S. F. Masri, eds., University of Southern California, USC Publication No. M9013, ISBN 0‐9628908‐0‐4.
13.
Huston, D., Fuhr, P. L., Beliveau, J. G., and Spillman, W. B. (1991). “Structural member vibration measurements using a fiber optic sensor: letter to the editor.” J. of Sound and Vibration, 149(2), 348–353.
14.
Huston, D. R., Fuhr, P. L., Kajenski, P. J., Ambrose, T. P., and Spillman, W. B. (1992). “Installation and preliminary results from fiber optic sensors embedded in a concrete building.” Proc., 1st Eur. Conf. on Smart Struct., and Mat., Glasgow, Scotland.
15.
Huston, D. R., Fuhr, P., Kajenski, P., and Snyder, D. (1992). “Concrete beam testing with optical fiber sensors.” Nondestructive testing of concrete, F. Ansari, ed., San Antonio, Tex.
16.
Huston, D. R., Fuhr, P. L., and Ambrose, T. P. (1993). “Dynamic testing of concrete with fiber optic sensors.” Application of fiber optic sensors in engineering mechanics, F. Ansari, ed., ASCE, New York, N.Y.
17.
Keiser, G. (1991). Optical fiber communications, 2nd Ed., McGraw‐Hill, New York, N.Y.
18.
Murphy, K., Gunther, M., Vengsarkar, A., and Claus, R. O. (1991a). “Quadrature phase‐shifted, extrinsic Fabry‐Perot optical fiber sensors.” Optics Letters, 16(4), 273–275.
19.
Murphy, K., Gunther, M., Vengsarkar, A., and Claus, R. (1991b). “Fabry‐Perot fiber optic sensors in full scale testing on an F‐15 aircraft.” Proc., SPIE O/E Fibers Conf., Boston, Mass.
20.
Murphy, K., Gunther, M., Vengsarkar, A., and Claus, R. O. (1991c). “Sapphire fiber interferometer for microdisplacement measurements at high temperature.” Proc., SPIE O/E Fibers Conf., Boston, Mass.
21.
Murphy, K., Gunther, M., Vengsarkar, A., and Claus, R. O. (1991d). “Hige temperature Fabry‐Perot based strain sensors using tapered two‐mode optical fibers.” J. Lightwave Technol., 10(11), 1680–1687.
22.
Murphy, K., Fogg, B. R., and Vengsarkar, A. M. (1992). “Spatially weighted vibration sensors using tapered two‐mode optical fibers.” J. Lightwave Technol., 10(11), 1680–1687.
23.
Narendran, N., Shukla, A., and Letcher, S. (1992). “Optical‐fiber interferometric strain sensor using a single fiber.” Experimental Techniques, 16(2), 33–36.
24.
Sirkis, J. S., and Haslach Jr., H. W. (1990). “Interferometric strain measurement by arbitrarily configured, surface‐mounted optical fibers.” J. Lightwave Technol., LT‐8, 1497–1503.
25.
Vengsarkar, A., Fogg, B., Miller, W., Murphy, K., and Claus, R. (1991). “Ellipticalcore two‐mode optical fibre sensors as vibration filters.” Electrics Letters, Vol. 27, 931.
26.
Wang, A., Vengsarkar, A., and Claus, R. (1991). “Two‐mode elliptical core fiber sensor for measurement of strain and temperature.” Proc., SPIE O/E Fibers Conf., Boston, Mass.
27.
Wang, A., Murphy, K. A., May, R. G., Gollapudi, S., and Claus, R. O. (1992). “Optical fiber sensors for the quantitative measurement of strain in concrete structures.” Proc., 1st Eur. Conf. on Smart Struct. and Mat., Glasgow, Scotland.

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Go to Journal of Engineering Mechanics
Journal of Engineering Mechanics
Volume 120Issue 8August 1994
Pages: 1696 - 1717

History

Received: Oct 22, 1993
Published online: Aug 1, 1994
Published in print: Aug 1994

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Authors

Affiliations

S. F. Masri
Prof., Dept. of Civ. Engrg., Univ. of Southern California, Los Angeles, CA 90089‐2531
M. S. Agbabian
Prof., Dept. of Civ. Engrg., Univ. of Southern California, Los Angeles, CA
A. M. Abdel‐Ghaffar
Prof., Dept. of Civ. Engrg., Univ. of Southern California, Los Angeles, CA
M. Higazy
Res. Assoc., Dept. of Civ. Engrg., Univ. of Southern California, Los Angeles, CA
R. O. Claus
Prof., Fiber & Electro‐Optics Res. Ctr., Virginia Polytech. Inst. and State Univ., Blacksburg, VA 24061
M. J. de Vries
Res. Asst., Fiber & Electro‐Optics Res. Ctr., Virginia Polytech. Inst. and State Univ., Blacksburg, VA

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