全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
-  2018 

聚丙烯纤维增强混凝土干接缝的抗剪性能
Shear strength of polypropylene fiber reinforced concrete dry joints

DOI: 10.13801/j.cnki.fhclxb.20170821.003

Keywords: 预制节段桥梁,干接缝,聚丙烯纤维,抗剪性能,变形能力
precast concrete segmental bridges
,dry joint,polypropylene fibers,shear strength,deformation capacity

Full-Text   Cite this paper   Add to My Lib

Abstract:

为了研究聚丙烯纤维对预制节段混凝土桥梁干接缝剪切性能的影响,本试验以接缝类型、键齿数量、混凝土类型、聚丙烯纤维掺量和水平正应力大小为试验参数,对C40普通混凝土和C40聚丙烯纤维增强混凝土试件进行抗剪性能的试验研究。记录了试件开裂载荷、极限载荷和残余载荷,同时也研究了试件开裂破坏模式和规范化剪应力-竖直位移曲线的关系。试验结果表明:聚丙烯纤维有利于提高干接缝试件的开裂荷载、极限荷载以及有利于试件的塑性变形;聚丙烯纤维对阻止干接缝试件开裂能起到一定的作用,但是聚丙烯纤维不同掺量的影响规律不明显。 In order to research the effect of polypropylene fibers on shear strength of dry joints in precast concrete segmental bridges, experiments were conducted to investigate the shear behavior of C40 regular concrete and C40 polypropylene fiber reinforced concrete. The main parameters for tests were joint types, key numbers, concrete types, amount of polypropylene fibers, and horizontal confining stress levels. The cracking loads, ultimate loads, and residual loads were recorded. The cracking pattern, failure mode and normalized shear stress-vertical slip curve relationship were investigated. It can be concluded that the utilization of polypropylene fibers can improve cracking loads, ultimate loads and the deformation capacity of dry joints specimens. The polypropylene fibers can prevent cracking, but the effect of different amount of polypropylene fibers on the shear behavior is not obvious. 广东省自然科学基金(2016A030313699)

References

[1]  BUYUKOZTURK O, BAKHOUM M M, BEATTIE S M. Shear behavior of joints in precast concrete segmental bridges[J]. Journal of Structural Engineering, 1990, 116(12):3380-3401.
[2]  ISSA M A, ABDALLA H A. Structural behavior of single key joints in precast concrete segmental bridges[J]. Journal of Bridge Engineering, 2007, 12(3):315-324.
[3]  MICKLEBOROUGH N, ZHOU X. Shear strength of joints in precast concrete segmental bridges[J]. ACI Structural Journal, 2005, 102(1):901-904.
[4]  American Association of State Highway and Transportation Officials. Guide specifications for design and construction of segmental concrete bridges:AASHTO 2003[S]. Washington:American Association of State Highway and Transportation Officials, 2003.
[5]  TURMO J, RAMOS G, APARICIO A C. Towards a model of dry shear keyed joints:Modelling of panel tests[J]. Computers & Concrete, 2012, 10(5):469-487.
[6]  ALCALDE M, CIFUENTES H, MEDINA F. Influence of the number of keys on the shear strength of post-tensioned dry joints[J]. Materiales de Construccion, 2013, 63(310):297-307.
[7]  SHAMASS R, ZHOU X, ALFANO G. Finite-element analysis of shear-off failure of keyed dry joints in precast concrete segmental bridges[J]. Journal of Bridge Engineering, 2015, 20(6):04014084.
[8]  JIANG H, CHEN L, MA Z J, et al. Shear behavior of dry joints with castellated keys in precast concrete segmental bridges[J]. Journal of Bridge Engineering, 2015, 20(2):04014062.
[9]  GASTON J R, KRIZ L B. Connections in precast concrete structures-scarf joints[J]. PCI Journal, 1964, 9(3):37-59.
[10]  DIAZ B E. The technique of glueing precast elements of the Rio-Niteroi bridge[J]. Materials and Structures, 1975, 8(1):43-50.
[11]  LEUNG Y W, DEEPRASERTWONG K, TAKEBAYA S T. Full-scale destructive test of a precast segmental box girder bridge with dry joints and external tendons[J]. Structures & Buildings, 1994, 104(3):297-315.
[12]  SAIBABU S, SRINIVAS V, SASMAL S, et al. Performance evaluation of dry and epoxy jointed segmental prestressed box girders under monotonic and cyclic loading[J]. Construction & Building Materials, 2013, 38(2):931-940.
[13]  JIANG H, CHEN Y, LIU A, et al. Effect of high-strength concrete on shear behavior of dry joints in precast concrete segmental bridges[J]. Steel and Composite Structures, 2016, 22(5):1019-1038.
[14]  TURMO J, RAMOS G, APARICIO A C. Shear strength of dry joints of concrete panels with and without steel fibres:Application to precast segmental bridges[J]. Engineering Structures, 2006, 28(1):23-33.
[15]  JIANG H, WEI R, MA Z J, et al. Shear strength of steel fiber-reinforced concrete dry joints in precast segmental bridges[J]. Journal of Bridge Engineering, 2016, 21(11):04016085.
[16]  SIVAKUMAR A, SANTHANAM M. Mechanical properties of high strength concrete reinforced with metallic and non-metallic fibres[J]. Cement & Concrete Composites, 2007, 29(8):603-608.
[17]  BRVCKNER R. Utilizing polypropylene fibers to improve physical and mechanical properties of concrete[J]. Textile Research Journal, 2012, 82(1):88-96.
[18]  SMARZEWSKI P, BARNAT-HUNEK D. Fracture properties of plain and steel-polypropylene fiber reinforced high performance concrete[J]. Materiali in Tehnologije, 2015, 49(4):563-571.
[19]  SHAN J H, ZHOU M K, LI B X, et al. Application of polypropylene fiber concrete in bridge deck pavement[J]. Key Engineering Materials, 2006, 302-303(1):418-423.
[20]  SUN Z, XU Q. Microscopic, physical and mechanical analysis of polypropylene fiber reinforced concrete[J]. Materials Science & Engineering A, 2009, 527(1-2):198-204.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133