SPECIAL TOPIC: UHPC MATERIAL AND ENGINEERING APPLICATION |
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Strenghening and Toughening Granite-powder-contained UHPC by Steel Fibers: Influences of Zinc Phosphate Treatment and Fiber Shape,and Mechanisms |
JI Tao, LIN Xiaoying, LIANG Yongning, CHEN Baochun, YANG Zhengxian
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College of Civil Engineering, Fuzhou University, Fuzhou 350116 |
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Abstract This paper investigates the effect of steel fiber's zinc phosphate (ZnPh) treatment and shape on the strength and toughness of ultra high performance concrete (UHPC) containing granite powders under autoclaved curing. Steel fibers with four dfferent shapes were used: straight with copper plating (S), single-linear hooked-end with copper plating (G1), bi-linear hooked-end with copper plating (G2) and crimped with copper plating (L). The results obtained from customized single steel fiber pullout test and SEM-EDS observation indicated that the mechanical interlock is the dominating effect for the enhanced strength and toughness of UHPC containing granite powders. The average bonding strength and pullout energy are in the order of G1>G2>L>S. The ZnPh treatment modified the fiber geometry, resulting in enhanced surface roughness, which increased the chemical bonding and static friction between the steel fibers and the UHPC matrix, and consequently raised the pullout energy of steel fibers in UHPC. Compared to G1, G2 and L steel fiber, the ZnPh treatment exhibited the most obvious effect toward S steel fiber in terms of enhanced toughness of UHPC.
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Published: 10 December 2017
Online: 2018-05-08
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1 Larrard D F, Sedran T. Optimization of ultra-high-performance concrete by the use of a packing model[J]. Cem Concr Res, 1994, 24(6):997. 2 Richard P, Cheyrezy M. Composition of reactive powder concretes[J]. Cem Concr Res, 1995, 25(7):1501. 3 蔡振哲. 花岗岩石粉在加气混凝土中的应用研究[J]. 墙材革新与建筑节能, 2015(6):32. 4 Ren W G, Zhuang Y Z, Yu L X. Preparation and properties of gra-nite stone powder-high toughness cementitious composite [J]. Sci Technol Eng, 2016, 16(17):269(in Chinese). 任卫岗, 庄一舟, 于丽雪. 花岗岩石粉-高韧性水泥基复合材料的制备与性能[J]. 科学技术与工程, 2016, 16(17):269. 5 黄乙纯. 掺花岗岩石粉RPC的力学性能研究[D]. 福州:福州大学, 2015. 6 Wille K, Naaman A E, El-tawil S, et al. Ultra-high performance concrete and fiber reinforced concrete: Achieving strength and ductility without heat curing[J]. Mater Struct, 2012, 45(3):309. 7 Park S H, Kim D J, Ryu G S, et al.Tensile behavior of ultra high performance hybrid fiber reinforced concrete[J]. Cem Concr Compos, 2012, 34(2):172. 8 Peng G F, Niu X J, Zhao Y L. Effects of deformed steel fiber on strengthening and toughening of ultra-high performance concrete [J]. J Build Mater, 2016(6):1013(in Chinese). 朋改非, 牛旭婧, 赵怡琳. 异形钢纤维对超高性能混凝土增强增韧的影响[J]. 建筑材料学报, 2016(6):1013. 9 Sun M, Wen D J. Test study on the bond strength between zinc phosphate steel fiber and cement [J]. Concrete, 2010(5):29(in Chinese). 孙敏, 闻荻江. 磷酸锌改性钢纤维与水泥基界面的黏接强度试验研究[J]. 混凝土, 2010(5):29. 10 Sugama T, Carciello N, Kukacka L E, et al. Interface between zinc phosphate-deposited steel fibres and cement paste[J]. J Mater Sci, 1992, 27(11):2863. 11 Zhang L H, Liu J Z, Liu J P, et al. Effect of zinc phosphate-treated steel fiber on uniaxial tensile property of ultra-high performance concrete [J]. Concrete, 2016(9):52(in Chinese). 张丽辉, 刘建忠, 刘加平, 等. 磷酸锌改性钢纤维对UHPC单轴拉伸性能的影响[J]. 混凝土, 2016(9):52. 12 Naaman A E, Najm H. Bond-slip mechanisms of steel fibers in concrete[J]. ACI Mater J, 1991, 88(2):135. 13 中国工程建设标准化协会混凝土结构专业委员会. CECS 38-2004 纤维混凝土结构技术规程(附条文说明)[S]. 北京: 中国计划出版社, 2004. 14 Tian W L, Wang X W, Li Z X. Research on the experiment of the bonding strength between deformed steel fiber and concrete [J]. J Build Mater, 2007, 10(3):337(in Chinese). 田稳苓, 王晓伟, 李子祥. 异形钢纤维与混凝土粘结性能试验研究[J]. 建筑材料学报, 2007, 10(3):337. 15 Elliott J C. Structure and chemistry of the apatites and other cal-cium orthophosphates[M]. Holand: Elsevier, 2013. |
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