Finite-element modeling of partially prestressed concrete beams with unbonded tendon under monotonic loadings

被引:4
|
作者
Pandimani [1 ]
Ponnada, Markandeya Raju [2 ]
Geddada, Yesuratnam [1 ]
机构
[1] JNTUK, Dept Civil Engn, Kakinada, India
[2] MVGR Coll Engn, Dept Civil Engn, Vizianagaram, India
关键词
Crack evolution; FE modeling of UPPSC beam; Load-deflection plots; Monotonic loadings; Stress increments in unbonded tendons; Stress-contour diagrams; FLEXURAL STRENGTH;
D O I
10.1108/JEDT-09-2021-0495
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Purpose The partially prestressed concrete beam with unbonded tendon is still an active field of research because of the difficulty in analyzing and understanding its behavior. The finite-element (FE) simulation of such beams using numerical software is very scarce in the literature and therefore this study is taken to demonstrate the modeling aspects of unbonded partially prestressed concrete (UPPSC) beams. This study aims to present the three-dimensional (3-D) nonlinear FE simulations of UPPSC beams subjected to monotonic static loadings using the numerical analysis package ANSYS. Design/methodology/approach The sensitivity study is carried out with three different mesh densities to obtain the optimum elements that reflect on the load-deflection behavior of numerical models, and the model with optimum element density is used further to model all the UPPSC beams in this study. Three half-symmetry FE model is constructed in ANSYS parametric design language domain with proper boundary conditions at the symmetry plane and support to achieve the same response as that of the full-scale experimental beam available in the literature. The linear and nonlinear material behavior of prestressing tendon and conventional steel reinforcements, concrete and anchorage and loading plates are modeled using link180, solid65 and solid185 elements, respectively. The Newton-Raphson iteration method is used to solve the nonlinear solution of the FE models. Findings The evolution of concrete cracking at critical loadings, yielding of nonprestressed steel reinforcements, stress increment in the prestressing tendon, stresses in concrete elements and the complete load-deflection behavior of the UPPSC beams are well predicted by the proposed FE model. The maximum discrepancy of ultimate moments and deflections of the validated FE models exhibit 13% and -5%, respectively, in comparison with the experimental results. Practical implications The FE analysis of UPPSC beams is done using ANSYS software, which is a versatile tool in contrast to the experimental testing to study the stress increments in the unbonded tendons and assess the complete nonlinear response of partially prestressed concrete beams. The validated numerical model and the techniques presented in this study can be readily used to explore the parametric analysis of UPPSC beams. Originality/value The developed model is capable of predicting the strength and nonlinear behavior of UPPSC beams with reasonable accuracy. The load-deflection plot captured by the FE model is corroborated with the experimental data existing in the literature and the FE results exhibit good agreement against the experimentally tested beams, which expresses the practicability of using FE analysis for the nonlinear response of UPPSC beams using ANSYS software.
引用
收藏
页码:235 / 256
页数:22
相关论文
共 50 条
  • [31] Calculation of closed bending moments for unbonded partially prestressed concrete (PPC) beams with high-strength concrete
    Song, Yongfa
    Wang, Qingxiang
    Song, Yupu
    Dalian Ligong Daxue Xuebao/Journal of Dalian University of Technology, 2000, 40 (03): : 348 - 350
  • [32] Finite-Element Modeling to Calculate the Overall Stiffness of Cracked Reinforced Concrete Beams
    Castel, Arnaud
    Vidal, Thierry
    Francois, Raoul
    JOURNAL OF STRUCTURAL ENGINEERING, 2012, 138 (07) : 889 - 898
  • [33] Evolutionarily Coupled Finite-Element Mesh-Free Formulation for Modeling Concrete Behaviors under Blast and Impact Loadings
    Wu, Youcai
    Magallanes, Joseph M.
    Choi, Hyung-Jin
    Crawford, John E.
    JOURNAL OF ENGINEERING MECHANICS, 2013, 139 (04) : 525 - 536
  • [34] FINITE-ELEMENT ANALYSIS OF PRESTRESSED AND REINFORCED-CONCRETE STRUCTURES
    ELMEZAINI, N
    CITIPITIOGLU, E
    JOURNAL OF STRUCTURAL ENGINEERING-ASCE, 1991, 117 (10): : 2851 - 2864
  • [35] NONLINEAR FINITE-ELEMENT ANALYSIS OF REINFORCED AND PRESTRESSED CONCRETE STRUCTURES
    MANG, HA
    MESCHKE, G
    ENGINEERING STRUCTURES, 1991, 13 (02) : 211 - 226
  • [36] FINITE-ELEMENT ANALYSIS OF PRESTRESSED CONCRETE VOIDED BRIDGE DECKS
    JOFRIET, JC
    MCNEICE, GM
    CSAGOLY, P
    JOURNAL PRESTRESSED CONCRETE INSTITUTE, 1973, 18 (03): : 51 - 66
  • [37] The Measuring Test and Finite Element Analysis for Prestressed Concrete Beams
    Li, Yang
    Shen, Lijiao
    VIBRATION, STRUCTURAL ENGINEERING AND MEASUREMENT I, PTS 1-3, 2012, 105-107 : 1052 - 1055
  • [38] A FINITE-ELEMENT FOR MODELING DELAMINATIONS IN COMPOSITE BEAMS
    SANKAR, BV
    COMPUTERS & STRUCTURES, 1991, 38 (02) : 239 - 246
  • [39] Behavior of unbonded partially prestressed concrete frames under vertically reversed cyclic loading
    Yu, Zhiwu
    Zhou, Chaoyang
    Cao, Zuhuai
    Luo, Xiaoyong
    Jianzhu Jiegou Xuebao/Journal of Building Structures, 1997, 18 (03): : 38 - 46
  • [40] Finite-element modeling of reinforced concrete arch under live load
    McGrath, T.J.
    Mastroianni, E.P.
    Transportation Research Record, 2002, (1814) : 203 - 210