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Volume 51 Issue 8
Nov.  2021
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MIAO Jianbao, TONG Hanyuan, XU Bing, LI Lifeng. ANALYSIS OF SHEAR CAPACITY OF UHPC GIRDERS BASED ON THE MCFT THEORY[J]. INDUSTRIAL CONSTRUCTION, 2021, 51(8): 60-67,18. doi: 10.13204/j.gyjzG20052801
Citation: MIAO Jianbao, TONG Hanyuan, XU Bing, LI Lifeng. ANALYSIS OF SHEAR CAPACITY OF UHPC GIRDERS BASED ON THE MCFT THEORY[J]. INDUSTRIAL CONSTRUCTION, 2021, 51(8): 60-67,18. doi: 10.13204/j.gyjzG20052801

ANALYSIS OF SHEAR CAPACITY OF UHPC GIRDERS BASED ON THE MCFT THEORY

doi: 10.13204/j.gyjzG20052801
  • Received Date: 2020-05-28
    Available Online: 2021-11-10
  • Publish Date: 2021-11-10
  • In order to study the shear behavior of ultra-high performance concrete beams, based on the MCFT theory, the bending moment effect was superimposed and the UHPC (ultra-high performance concrete) constitutive relation of this part was modified. The contribution of tensile strength of UHPC to its shear performance after cracking was considered. The cross-section analysis model of prestressed UHPC beam under the conmbined action of bending and shearing was established, and the calculation program was compiled. In order to verify the correctness of the model, the shear test of three prestressed UHPC beams with the shear-span ratio as the main factor was conducted. The failure mode, crack distribution characteristics and bearing capacity of the beams were obtained. After using this model to validate the experiment results of other literatures, the results showed that the contrast results were in good agreement and the coefficient of variation was small. Combined with the MCFT model and the test results of a large number of existing literatures, the shearing empirical formula of UHPC beam was proposed considering the influence of shear-span ratio, hooping ratio, prestress and UHPC strength. The calculated value well coincided with the test.
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  • [1]
    RICHARD P.Reactive Powder Concrete:A New Ultra-High-Strength Cementitious Material[C]//Proceedings of the 4th International Symposium on Utilization or High-Strength/High-Performance Concrete.Paris:1996:1343-1349.
    [2]
    GRAYBEAL B A. Material Property Characterization of Ultra-High Performance Concrete:FHWA-HRT-06-103[R]. Mclean:Federal Highway Administration, 2006.
    [3]
    VOO Y L,FOSTER S J,GILBERT R I.Shear Strength of Fiber Reinforced Reactive Powder Concrete Prestressed Girders Without Stirrups[J].Journal of Advanced Concrete Technology, 2006,4(1):123-132.
    [4]
    VOO Y L,POON W K,FOSTER S J.Shear Strength of Steel Fiber-Reinforced Ultra-High Performance Concrete Beams Without Stirrups[J]. Journal of Structural Engineering,2010,136(11):1393-1400.
    [5]
    季文玉,丁波,安明喆.活性粉末混凝土T形梁抗剪试验研究[J].中国铁道科学,2011,32(5):38-42.
    [6]
    陈彬.预应力RPC梁抗剪性能研究[D].长沙:湖南大学,2007.
    [7]
    徐海宾,邓宗才,陈春生,等.超高性能纤维混凝土梁抗剪性能试验研究[J].土木工程学报,2014(12):91-97.
    [8]
    徐海宾,邓宗才.超高性能混凝土梁抗剪承载力计算方法[J].华中科技大学学报(自然科学版),2015(7):24-28.
    [9]
    徐海宾,邓宗才.有腹筋UHPFRC梁抗剪承载力计算[J].哈尔滨工业大学学报,2015,47(12):80-85.
    [10]
    VECCHIO F J, COLLINS M P. The Modified Compression-Field Theory for Reinforced Concrete Elements Subjected to Shear[J]. ACI Journal,1986, 83(2):219-231.
    [11]
    VECCHIO F J,COLLINS M P.Predicting the Response of Reinforced Concrete Beams Subjected to Shear Using Modified Compression Field Theory[J].ACI Structural Journal,1988,85(3):258-268.
    [12]
    Canadian Standards Association. Design of Concrete Structures:CSA A23.3-2004[S]. Mississauga:CSA, 2004.
    [13]
    American Association of State Highway and Transportation Officials. AASHTO LRFD Bridge Design Specifications:AASHTO LRFD-2007[S]. American:AASHTO,2007.
    [14]
    张宏战, 张瑞瑾, 黄承逵. 基于MCFT理论的钢纤维混凝土梁的截面分析[J]. 工程力学, 2008, 25(3):144-150.
    [15]
    徐艳秋,高伟.混凝土软化本构关系研究的发展[J]. 石家庄铁道大学学报(自然科学版), 2000, 13(2):34-38.
    [16]
    杨剑, 方志. 超高性能混凝土单轴受压应力-应变关系研究[J]. 混凝土, 2008(7):11-15.
    [17]
    张哲, 邵旭东, 李文光,等. 超高性能混凝土轴拉性能试验[J]. 中国公路学报, 2015, 28(8):50-58.
    [18]
    李立峰, 范昕, 石雄伟, 等. 大比例预应力UHPC-T形梁抗弯性能试验研究[J]. 土木工程学报, 2018, 51(5):88-98

    ,106.
    [19]
    车惠民.T形截面预应力混凝土梁抗剪强度的试验研究[J]. 铁道工程学报, 1985, 2(2):130-146.
    [20]
    AFGC, SETRA.Ultra High Performance Fibre Reinforced Concretes[S]. Paris:AFGC and SETRA Working Group, 2013.
    [21]
    Swiss Society of Engineers and Architects (SIA). Ultra-High Performance Fiber Reinforced Cement-Based Materials (UHPFRC)-Materials,Design and Execution (SIA2052)[S].Zurich,Switzerland:SIA, 2016:12-22.
    [22]
    中华人民共和国交通运输部.公路钢筋混凝土及预应力混凝土桥涵设计规范:JTG 3362-2018[S].北京:人民交通出版社,2018.
    [23]
    中国工程建设标准化协会.高强混凝土结构技术规程:CECS 104:99[S].北京:中国计划出版社,1999.
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