光谱学与光谱分析 |
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Measurement of Steel Corrosion in Concrete Structures by Analyzing Long-Period Fiber Grating Spectrum Character |
WANG Yan1,2,LIANG Da-kai1*,ZHOU Bing1 |
1. The Aeronautical Science Key Laboratory for Smart Material and Structures,Nanjing University of Aeronautics & Astronautics, Nanjing 210016,China2. School of Electrical & Information, Anhui University of Technology, Maanshan 243000, China |
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Abstract The consideration on the durability of concrete structures with reinforcement corrosion has become a most urgent problem. A new technique to measure the corrosion of steel in concrete structures was proposed in the present paper. It is based on the microbending characteristic of long period optical grating (LPFG). The temperature spectum character and curvature spectrum character of long period optical fiber grating were studied first. It was shown that the transmission spectrum of long period optical fiber grating shifted right and the transmission of the resonance wavelength was invariable when the temperature increased, while the transmission spectrum of long period optical fiber grating became shallow when the curvature increased, the transmission of the resonance wavelength would increase and it was linear with the curvature. On the basis of the characteristic, a notch shaped pedestal was designed and a long period optical fiber grating was laid on the steel surface. With this method the radial expansion of the steel resulting from the steel corrosion would translate into the curvature of the long period optical fiber grating. The curvature of long period optical fiber grating could be obtained by analyzing the change of spectrum, and then the steel corrosion depth could be measured. This method is simple and immediate and is independent of the variety in temperature, strain and refractive index owing to the inimitable spectrum characteristic of long period optical fiber grating. From the experiment it was found that the precision of the corrosion depth was better than 1.2 μm, and the corrosion depth of 3 mm could be achieved. This measurement could be used to monitor the early to metaphase corrosion of reinforcing steel in concrete structures.
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Received: 2007-08-02
Accepted: 2007-11-08
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Corresponding Authors:
LIANG Da-kai
E-mail: liangdk@nuaa.edu.cn
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[1] DONG Sa-ying, LIAO Yan-biao, TIAN Qian, et al(董飒英,廖延彪,田 芊,等). Journal of Analytical Science(分析科学学报),2004, 20(5): 546. [2] CAO Chu-nan, LIN Hai-chao, SONG Guang-ling, et al(曹楚南,林海潮,宋光铃,等). Corrosion Science and Protection Technology(腐蚀科学与防护技术), 1999, 11(3): 161. [3] Elster J L, Greene J A, Joned M E. Proc. SPIE, 1999, 3540: 251. [4] LI Xue-ming, CHEN Wei-min, HUANG Zong-qing, et al(黎学明,陈伟民,黄宗卿,等). Piezoelectrics & Acoustooptics(压电与声光),1999,21(1): 12. [5] CHEN Wei-min, LI Xue-ming, HUANG Zong-qing, et al(陈伟民,黎学明,黄宗卿,等). Acta Photonica Sinica(光子学报),1999, 28(2): 129. [6] LI Xue-ming, CHEN Wei-min, HUANG Zong-qing, et al(黎学明,陈伟民,黄宗卿,等). Journal of Optoelectronics·Laser(光电子·激光),2001, 12(10): 1037. [7] JIANG Yi, YAN Yun, Christoper K Y Leung(江 毅,严 云,Christoper K Y Leung). Acta Photonica Sinica(光子学报),2006, 35(1): 96. [8] WANG Yan, LIANG Da-kai, ZHOU Bing(王 彦,梁大开,周 兵). Journal of Nanjing University of Aeronautics & Astronautics(南京航空航天大学学报),2007, 39(5):655. [9] Li X M, Chen W M, Huang S L. Proc. SPIE, 2000, 3986: 25. [10] Fuhr P L, Huston D R. Smart Materials and Structures, 1998, 7(2): 217. [11] Montemor M F, Simoes A M P, Ferreira M G S. Cement and Concrete Composites, 2003, 25(4-5): 491. [12] WEN Zhi-yu, CHEN Gang, WANG Jian-guo(温志渝,陈 刚,王建国). Spectroscopy and Spectral Analysis(光谱学与光谱分析),2006, 26(10): 1955. [13] XIONG Yu-hong, WEN Zhi-yu, WANG Ming-yan, et al(熊宇虹,温志渝,王命延,等). Spectroscopy and Spectral Analysis(光谱学与光谱分析),2007, 27(1): 139. |
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