Material, Structure, Mechanics

Bond Mechanical Properties of Glass Fiber Reinforced Polymer Anti-Floating Anchor in Concrete Baseplate

Expand
  • (1. School of Civil Engineering, Qingdao University of Technology, Qingdao 266033, Shandong, China;2. Cooperative Innovation Center of Engineering Construction and Safety in Shandong Blue Economic Zone,Qingdao 266033, Shandong, China)

Received date: 2019-08-16

  Online published: 2021-12-01

Abstract

Combined with fiber Bragg grating (FBG) sensing technology, four glass fiber reinforced polymer(GFRP) anti-floating anchors and four steel anti-floating anchors were tested for on-site destructive failure toinvestigate the anchoring performance and the bonding characteristics between GFRP anti-floating anchor andconcrete floor. The test results show that bending GFRP anchor will be broken at the common boundary betweenvertical anchorage section and bending section during the pullout process, and the spring-back load provided bythe rupture contributes to a decrease of bearing capacity and an inflection point on the load-slip curve. The loaddisplacementcurve of the straight anchor GFRP anti-floating anchor is smoother and has better predictabilitythan the same type of steel anchor. Additionally, different forms of GFRP anti-floating bolt have different bondslipconstitutive relations. By introducing the sliding-slip correction factor of bending bolt, constitutive modelsdescribing the rising-section of sliding-slip relation of bending and straight-anchored GFRP anti-floating bolt areestablished respectively. The model can fit the test results rightly.

Cite this article

BAI Xiaoyu (白晓宇), ZHENG Chen (郑晨), ZHANG Mingyi ∗ (张明义),LIU Xueying (刘雪颖), KUANG Zheng (匡政) . Bond Mechanical Properties of Glass Fiber Reinforced Polymer Anti-Floating Anchor in Concrete Baseplate[J]. Journal of Shanghai Jiaotong University(Science), 2021 , 26(6) : 804 -812 . DOI: 10.1007/s12204-020-2241-9

References

[1] BAI X, ZHANG M, KOU H. Field experimental studyof load transfer mechanism of GFRP anti-floating anchorsbased on embedded bare fiber Bragg gratingsensing technology [J]. Engineering Mechanics, 2015,32(8): 172-181 (in Chinese). [2] MARANAN G B, MANALO A C, KARUNASENAW, et al. Pullout behaviour of GFRP bars with anchorhead in geopolymer concrete [J]. Composite Structures,2015, 132: 1113-1121. [3] LI G, YU L, WU Y, et al. Bond damage of prestressedsand-coated glass fibre reinforced polymer anchor [J].Chinese Journal of Rock Mechanics and Engineering,2014, 33(8): 1711-1719 (in Chinese). [4] VILANOVA I, BAENA M, TORRES L, et al. Experimentalstudy of bond-slip of GFRP bars in concreteunder sustained loads [J]. Composites Part B: Engineering,2015, 74: 42-52. [5] JIA H, ZHANG P. Thermal contraction measurementof GFRP at low temperature [J]. Journal of ShanghaiJiao Tong University, 2016, 50(4): 502-505 (in Chinese). [6] AHMED E A, EI-SALAKAWY E F, BENMOKRANEB. Tensile capacity of GFRP postinstalled adhesive anchorsin concrete [J]. Journal of Composites for Construction,2008, 12(6): 596-607. [7] LI G, GE W, NI C, et al. Effect of loading rate on tensileproperties of full-scale specimen of large-diameterglass fiber reinforced polymer (GFRP) bar [J]. ChineseJournal of Rock Mechanics and Engineering, 2012,31(7): 1469-1477 (in Chinese). [8] BAI X, ZHANG M, WANG Y, et al. Full-scale testand mechanism analysis on bearing capacity of GFRPanti-floating anchor socketed into rock [J]. Journal ofChongqing Jianzhu University, 2018, 40(5): 78-85 (inChinese). [9] FAVA G, CARVELLI V, PISANI M A. Remarks onbond of GFRP rebars and concrete [J]. CompositesPart B: Engineering, 2016, 93: 210-220. [10] ZHANG M, KOU H, BAI X, et al. Experimental studyand mechanism analysis of the anti-pulling behaviorof glass fiber reinforced polymer anti-float anchor [J].Rock and Soil Mechanics, 2014, 35(4): 1069-1076 (inChinese). [11] TU B, CAI Y, HE J, et al. Analysis of anchorage performanceon new tension-compression anchor III: Fieldtest [J]. Chinese Journal of Geotechnical Engineering,2019, 41(5): 846-854 (in Chinese). [12] ZHOU S, ZHU W, YU S. Analysis of load transfermechanism for fully grouted rockbolts based on thebi-exponential shear-slip model [J]. Chinese Journalof Rock Mechanics and Engineering, 2018, 37(Sup.2):3817-3825 (in Chinese). [13] ZHAO M, HUANG Y, HUANG M. Study on nonlinearcalculation method of load transferring along tensileanchor rod base on finite difference method [J]. Journalof Railway Science and Engineering, 2018, 15(8):1963-1970 (in Chinese). [14] WANG Y, ZHANG M, ZHANG C, et al. Developmentand application of FBG sensors with enchanced sensitivityfor jacked pile driving test [J]. Piezoelectrics &Acoustooptics, 2018, 40(1): 56-59 (in Chinese). [15] CUI Q, CHENG Y, LU X, et al. In-situ pull-out testand parametric study of load-displacement model forhole digging foundation in the strong weathered rockmass [J]. Rock and Soil Mechanics, 2018, 39(12): 4597-4604 (in Chinese). [16] ZHU L. Experimental study on bearing performanceand deformation behavior for GFRP anti-floating anchor[D]. Qingdao: Qingdao University of Technology,2016 (in Chinese). [17] BAI X, ZHANG M, ZHU L, et al. Experimental studyon shear characteristics of interface of full-bondingglass fiber reinforced polymer anti-floating anchors [J].Chinese Journal of Rock Mechanics and Engineering,2018, 37(6): 1407-1418 (in Chinese). [18] JIN Q, WANG L, GAO Y. Experimental researchon bonding performance of GFRP bars under differentloading paths [J]. Industrial Construction, 2017,47(11): 10-14 (in Chinese). [19] COSENZA E, MANFREDI G, REALFONZO R. Analyticalmodelling of bond between FRP reinforcingbars and concrete [M]//TAERWE L. Non-metallic(FRP) reinforcement for concrete structures. London:E&FN Spon Press, 1995. [20] GAO D, ZHU H, XIE J. The constitutive models forbond slip relation between FRP rebars and concrete[J]. Industrial Construction, 2003, 33(7): 41-43 (inChinese). [21] ZHENG Y, YANG X, WANG W, et al. Bond behaviortest and bond-slip constitutive relation between FRPrebars and concrete [J]. Industrial Construction, 2015,45(6): 1-6 (in Chinese).
Outlines

/