Shear Strength of Extruded, Prestressed Steel Fiber- Reinforced Concrete Hollow-Core Slabs

被引:0
|
作者
Parra-Montesinos, Gustavo [1 ]
Fargier-Gabaldon, Luis B. [2 ]
Al-Tameemi, Mohamed [1 ]
机构
[1] Univ Wisconsin, Struct Engn, Madison, WI 53706 USA
[2] Univ Notre Dame, Practice Heavy Civil Engn, Notre Dame, IN USA
关键词
extrusion; hooked fibers; precast; shear failure; web cracking;
D O I
10.14359/51738770
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
ACI 318-19 requires that prestressed concrete hollow-core slabs with depths exceeding 12.5 in. (320 mm) and subjected to a factored shear greater than half the design web-cracking shear strength be provided with at least minimum shear reinforcement. Because the use of bar-type shear reinforcement in hollow-core slabs is generally not possible, this requirement limits the use of these members in shear-critical cases. In this research, the use of hooked steel fibers as a means to increase the shear strength of deep hollow core slabs was evaluated through 14 tests on extruded hollow-core slabs. Slab thickness was 16 in. (406 mm) and the shear span -effective depth ratio (a/d) was either 3.0 or 3.5. Two types of hooked steel fibers were evaluated at dosages between 40 and 62 lb/yd3 (24 and 37 kg/m3). Type 1 fibers had a single hook at each end and Type 2 fibers had double hooks at each end. The fiber-reinforced concrete slabs exhibited peak shear strengths that ranged between 0.94 and 1.29 times the ACI 318-19 calculated web-cracking shear strength Vcw, while the two slabs without fibers failed at shear forces corresponding to 0.93 and 0.87Vcw. Besides an increase in shear strength, the presence of fibers, particularly Type 2 fibers, led to a more gradual post-peak strength decay. Failure of the hollow core slabs without fibers occurred as soon as one web exhibited web-shear cracking. In the hollow-core slabs with fibers, on the other hand, fibers bridging the first web-shear crack prevented this web from experiencing a sudden loss of shear capacity, which allowed the slabs to sustain additional shear until multiple webs had cracked in shear.
引用
收藏
页码:127 / 136
页数:10
相关论文
共 50 条
  • [21] DESIGN OF PRESTRESSED HOLLOW-CORE SLABS WITH REFERENCE TO WEB SHEAR FAILURE
    YANG, L
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 1994, 120 (09): : 2675 - 2696
  • [22] SHEAR CAPACITY OF NOTCHED PRESTRESSED HOLLOW-CORE SLABS WITH CIRCULAR VOIDS
    GIRHAMMAR, UA
    PAJARI, M
    STRUCTURAL ENGINEERING REVIEW, 1995, 7 (02): : 63 - 74
  • [23] Transverse flexural and torsional strength of Prestressed Precast Hollow-Core Slabs
    Pisanty, A.
    TAILOR MADE CONCRETE STRUCTURES: NEW SOLUTIONS FOR OUR SOCIETY, 2008, : 126 - 126
  • [24] Behavior of reinforced lightweight aggregate concrete hollow-core slabs
    Al-Azzawi, Adel A.
    Al-Aziz, Basma M. Abdul
    COMPUTERS AND CONCRETE, 2018, 21 (02): : 117 - 126
  • [25] Investigation of the behavior of reinforced concrete hollow-core thick slabs
    Al-Azzawi, Adel A.
    Abed, Sadeq A.
    COMPUTERS AND CONCRETE, 2017, 19 (05): : 567 - 577
  • [26] Shear in steel fiber-reinforced concrete slabs reinforced with high-strength steel
    Talboys, Laura N.
    Lubell, Adam S.
    1600, American Concrete Institute (111): : 1431 - 1440
  • [27] Modeling the Resistance of Precast, Prestressed Concrete Hollow-Core Slabs Exposed to Fire
    Gamble, William L.
    PCI JOURNAL, 2015, : 146 - 146
  • [28] Modeling the resistance of precast, prestressed concrete hollow-core slabs exposed to fire
    Gamble, William L.
    PCI Journal, 2015, 60 (01):
  • [29] Impact of interaction between adjacent webs on the shear strength of prestressed concrete hollow-core units
    Cheng, Shaohong
    Wang, Xuefei
    PCI JOURNAL, 2010, : 46 - 63
  • [30] Modeling the response of precast, prestressed concrete hollow-core slabs exposed to fire
    Kodur, Venkatesh K. R.
    Shakya, Anuj M.
    PCI JOURNAL, 2014, : 78 - 94