Numerical Analysis of Rubberized Steel Fiber Reinforced Concrete Beams Subjected to Static and Blast Loadings

被引:2
|
作者
Nawar, Mahmoud T. [1 ,2 ]
Eisa, Ahmed S. [2 ]
Elshazli, Mohamed T. [3 ]
Ibrahim, Yasser E. [1 ]
El-Zohairy, Ayman [4 ]
机构
[1] Prince Sultan Univ, Coll Engn, Engn Management Dept, Riyadh 11586, Saudi Arabia
[2] Zagazig Univ, Struct Engn Dept, Zagazig 44519, Egypt
[3] Univ Missouri, Dept Civil & Environm Engn, Columbia, MO 65211 USA
[4] Texas A&M Univ, Dept Engn & Technol, Commerce, TX 75429 USA
关键词
finite element; blast loading; concrete beams; rubber; steel fibers; MECHANICAL-PROPERTIES; TIRE RUBBER; ASPHALT; VALIDATION; SIMULATION; BEHAVIOR; FAILURE; IMPACT;
D O I
10.3390/infrastructures9030052
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In recent years, the alarming number of terrorist attacks has highlighted the critical need for extensive research aimed at fortifying structures against explosion-induced loads. However, the insufficient energy absorption and brittleness of conventional concrete make it ineffective in withstanding blast loading, encouraging researchers to explore innovative strategies for augmenting the energy dissipation capabilities of construction materials. This study specifically delves into the incorporation of recycled rubber, a sustainable and environmentally friendly solution to the pressing issue of scrap tire disposal. The primary focus of this research revolves around the integration of rubber recycling and steel fibers into concrete, with the ultimate goal of enhancing the dynamic response of reinforced concrete (RC) beams. This novel approach not only contributes to the structural resilience required for resisting blast impacts, but also aligns with eco-friendly practices by reusing recycled rubber. A meticulous numerical investigation was undertaken to comprehensively assess the static and blast response of these augmented beams. The numerical study involved developing finite element (FE) models using ABAQUS version 6.14 for static implicit analysis and LS-DYNA R11 for blast explicit simulations. The ABAQUS model was validated against previous experimental testing for load-displacement and failure patterns. Similarly, the LS-DYNA model was validated for blast pressure in accordance with UFC-3-340 standards and for material response under blast loading, utilizing existing experimental data. The numerical models were designed to accommodate varying weight percentages of rubber, ranging from 5% to 20%, and a consistent 1.0% incorporation of steel fibers. This comprehensive analysis aims to provide valuable insights into the efficacy of these materials in improving the structural integrity and blast resistance of RC beams, thereby contributing to the development of more secure and sustainable construction practices. By reducing the reinforcement ratio in order to meet the minimum code requirements, it became evident that the failures of the rubberized RC beams tended to exhibit ductility on the tension side under static loading. In addition, the increase in the reinforcement ratio correlated with a higher failure load and decreased deflection. Furthermore, the findings indicated an optimal concrete mixture characterized by improved ductility, energy absorption, and blast load capacity, achieved by combining 5-10% rubber with steel fibers.
引用
收藏
页数:23
相关论文
共 50 条
  • [41] Failure Analysis of FRP-strengthened Reinforced Concrete Beam subjected to Quasi-Static Loadings
    Arshad, Mohammad
    Khan, Ahmar
    Mohammad, Zaid
    Ibrahim, Syed Muhammad
    INTERNATIONAL CONFERENCE ON ADVANCES IN CIVIL ENGINEERING, ICACE 2022, 2024, 3010
  • [42] Numerical study on the behaviour of steel fiber reinforced concrete beams for different crack lengths
    Yadav, Dravesh
    Prashanth, M. H.
    MATERIALS TODAY-PROCEEDINGS, 2022, 65 : 1459 - 1466
  • [43] Progressive collapse behavior of steel fiber-reinforced rubberized concrete frames
    Alshaikh, Ibrahim M. H.
    Abu Bakar, B. H.
    Alwesabi, Emad A. H.
    Abadel, Aref A.
    Alghamdi, Hussam
    Altheeb, Ali
    Tuladhar, Rabin
    JOURNAL OF BUILDING ENGINEERING, 2022, 57
  • [44] Numerical and Analytical Study of Concrete Beams Reinforced with Hybrid Fiber-Reinforced Polymer and Steel Bars
    Xu, Jiajing
    Zhu, Peng
    Qu, Wenjun
    JOURNAL OF COMPOSITES FOR CONSTRUCTION, 2022, 26 (05)
  • [45] Experimental and Numerical Analysis of Hollow and Solid Reinforced Concrete Piers under Static and Impact Loadings
    Yao, Pengfei
    Zhu, Junyu
    Zhu, Lu
    Fang, Hai
    Qian, Changgen
    SHOCK AND VIBRATION, 2021, 2021 (2021)
  • [46] Torsional behavior of steel fiber reinforced concrete beams
    Okay, Fuad
    Engin, Serkan
    CONSTRUCTION AND BUILDING MATERIALS, 2012, 28 (01) : 269 - 275
  • [47] Mechanical properties and constitutive model of steel fiber-reinforced rubberized concrete
    Dong, Shuo
    Zhao, Qiuhong
    Zhu, Han
    CONSTRUCTION AND BUILDING MATERIALS, 2022, 327
  • [48] Behavior of reinforced concrete haunched beams subjected to static shear loading
    Tena-Colunga, Arturo
    Archundia-Aranda, Hans I.
    Gonzalez-Cuevas, Oscar M.
    ENGINEERING STRUCTURES, 2008, 30 (02) : 478 - 492
  • [49] Experimental investigation on fiexural properties of directional steel fiber reinforced rubberized concrete
    Liu, Ruyan
    Li, Hui
    Jiang, Qinghui
    Meng, Xiaoyu
    STRUCTURES, 2020, 27 : 1660 - 1669
  • [50] Shear behaviour of large-scale rubberized concrete beams reinforced with steel fibres
    Ismail, Mohamed K.
    Hassan, Assem A. A.
    CONSTRUCTION AND BUILDING MATERIALS, 2017, 140 : 43 - 57