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1. 同济大学 航空航天与力学学院 上海,200092
2. 武汉理工大学 机电工程学院,湖北 武汉,430070
3. 哈尔滨船舶锅炉涡轮机研究所,黑龙江 哈尔滨,150078
收稿日期:2014-05-04,
修回日期:2014-06-20,
纸质出版日期:2014-12-25
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吴入军, 郑百林, 付昆昆等. 表面粘贴式光纤布拉格光栅传感器层状结构对测量应变的影响[J]. 光学精密工程, 2014,22(12): 3183-3190
WU Ru-jun, ZHENG Bai-lin, FU Kun-kun etc. Influence of layered structure for surface-bonded FBG sensor on measured strain[J]. Editorial Office of Optics and Precision Engineering, 2014,22(12): 3183-3190
吴入军, 郑百林, 付昆昆等. 表面粘贴式光纤布拉格光栅传感器层状结构对测量应变的影响[J]. 光学精密工程, 2014,22(12): 3183-3190 DOI: 10.3788/OPE.20142212.3183.
WU Ru-jun, ZHENG Bai-lin, FU Kun-kun etc. Influence of layered structure for surface-bonded FBG sensor on measured strain[J]. Editorial Office of Optics and Precision Engineering, 2014,22(12): 3183-3190 DOI: 10.3788/OPE.20142212.3183.
由于用表面粘贴式光纤布拉格光栅(FBG)传感器测量应变时会影响基体的应变分布
本文研究了光纤应变与基体应变之间的关系.针对该类传感器建立了基体与光纤之间的应变传递函数用以修正测量应变
然后研究了FBG传感器与基体之间的相互作用.最后
利用有限元分析(FEA)和实际实验对提出的理论进行了验证.结果显示:光纤应变的FEA解与理论解的误差在5%以内
实验解与理论解的误差在8%以内
结果表明该理论完全满足表面粘贴式FBG传感器的精度要求.另外
分析了黏结层和基体对应变传递的影响
结果显示:平均应变传递率和应变传递率随着基体弹性模量的增加而增加
但它们随着黏结层顶端厚度和底端厚度的增加而逐渐减小.
When a surface-bonded Fiber Bragg Grating (FBG) sensor is used to measure the strain of a host material
it will effect the strain distribution of the host material. Therefore
this paper explores the relationship between optical fiber strain and host material strain. A theoretical model of strain transfer of the host material to the optical fiber was presented to modify the measured strain
and the interaction between FBG sensor and host material was considered. Finally
the theoretical predictions proposed in this paper were verified by Finite Element Analysis(FEA) and practical experiments. The results show that the error between FEA and theoretical solution is controlled within 5%
and that between theoretical solution and experimental data is controlled within 8%. These mean that the strain transfer mode satisfies the accuracy requirement of surface-bonded FBG sensors. Moreover
the effects of geometrical and material parameters on the average strain transfer rate and the strain transfer rate were analyzed. The obtained results indicate that the average strain transfer rate and the strain transfer rate increase with the Young's modulus of the host material. However
they decrease with increasing the top thickness and bottom thickness of an adhesive layer.
张自嘉.光纤光栅理论基础与传感技术[M]. 北京:科学出版社,2009. ZHANG Z J. Optic Fiber Grating Theoretical Basis and Sensing Technology[M]. Beijing: Science Press, 2009. (in Chinese)
LIU Y Q,GUO Z Y,ZHANG Y,et al..Simultaneous pressure and temperature measurement with polymer-coated fiber Bragg grating[J]. Electronics Letters, 2000,36:564-566.
LAU K T, YUAN L B, ZHOU L M, et al.. Strain monitoring in FRP laminates and concrete beams using FBG sensors[J]. Composite Structures,2001,51:9-20.
CHENG C, LO Y, LI W. Accurate simulations of reflective wavelength spectrum of surface bonded fiber Bragg grating[J]. Applied Optics,2010,49:3394-3402.
ANSARI F, LIBO Y. Mechanics of bond and interface shear transfer in optical fiber sensors[J]. Journal of Engineering Mechanics, 1998,124:385-394.
ZHOU Z, LI J L, OU J P. Interface strain transfer mechanism and error modification of embedded FBG strain sensors[J]. Smart Materials and Structures, 2004,5384:190-198.
LI D S, LI H N. Strain transferring of embedded fiber Bragg grating sensors[J]. Smart Materials and Structures, 2005,5765:1085-1093.
LI D S, LI H N, REN L, et al.. Strain transferring analysis of fiber Bragg grating sensors[J]. Optical Engineering, 2006,45:024402.
LI J L, ZHOU Z,OU J P. Interface transferring mechanism and error modification of embedded FBG strain sensor based on creep part[J]. Smart Materials and Structures, 2005,5765: 1061-1072.
HER S C, HUANG C Y. Effect of coating on the strain transfer of optical fiber sensors[J]. Sensors, 2011,11:6926-6941.
WAN K T, LEUNG C K Y, OLSON N G. Investigation of the strain transfer for surface-attached optical fiber strain sensors[J]. Smart Materials and Structures, 2008,17:035037.
WANG Q B, QIU Y, ZHAO H T, et al.. Analysis of strain transfer of six-layer surface-bonded fiber Bragg gratings[J]. Applied Optics, 2012,51:4129-4138.
ZHAO H T, WANG Q B, QIU Y, et al.. Strain transfer of surface bonded fiber Bragg grating sensors for airship envelope structural health monitoring[J]. Journal of Zhejiang University-Science A:Applied Physics & Engineering, 2012,13:538-545.
吴入军,郑百林,贺鹏飞,等. 埋入式光纤布拉格光栅传感器封装结构对测量应变的影响[J]. 光学 精密工程,2014,22(1):24-30. WU R J, ZHENG B L, HE P F, et al.. Influence of encapsulation structures for embedded fiber-optic Bragg grating sensors on strain measurement[J]. Opt. Precision Eng., 2014,22(1):24-30. (in chinese)
吴俊,陈伟民,章鹏,等. 粘接层弹性模量对光纤Bragg光栅传感器应变传递性能的影响[J]. 光学 精密工程,2011,19(12):2941-2946. WU J, CHEN W M, ZHANG P, et al.. Strain transfer influence of binding layer modulus on fiber-optic Bragg grating sensors[J]. Opt. Precision Eng., 2011, 19(12):2941-2946. (in Chinese)
郭伟,李新良,宋昊. 表面粘帖式光纤光栅传感器的应变传递分析[J]. 计测技术,2011,31(4):1-3. GUO W, LI X L, SONG H. Strain transfer analysis of surface pasted optical fiber grating sensors[J]. Metrology & Measurement Technology. 2011,31(4):1-3.(in Chinese)
吴永红,邵长江,屈文俊,等. 光纤光栅应变传感器光—力转换的非线性时变方程[J]. 同济学报:自然科学,2011,39(1):53-56. WU Y H, SHAO CH J, QU W J, et al.. Nonlinear time-dependent equation of light-force transition of fiber-optic grating strain sensors[J]. Journal of TongJi University :Natural Science, 2011, 39(1):53-56. (in Chinese)
吴家龙.弹性力学[M]. 上海:同济大学出版社,1986. WU J L. Theory of Elastic Mechanics[M]. Shanghai: Tongji University Press,1986. (in Chinese)
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