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Non-linear FEM for RC shear wall structures

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Published

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Non-linear FEM for RC shear wall structures. / Shen, PS; Ye, Jianqiao; Cai, SB.
Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford. ed. / B. H. V. Topping; B. Kumar. Stirling: Civil-Comp press, 1999. p. 181-186.

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Harvard

Shen, PS, Ye, J & Cai, SB 1999, Non-linear FEM for RC shear wall structures. in BHV Topping & B Kumar (eds), Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford. Civil-Comp press, Stirling, pp. 181-186. https://doi.org/10.4203/ccp.59.7.1

APA

Shen, PS., Ye, J., & Cai, SB. (1999). Non-linear FEM for RC shear wall structures. In B. H. V. Topping, & B. Kumar (Eds.), Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford (pp. 181-186). Civil-Comp press. https://doi.org/10.4203/ccp.59.7.1

Vancouver

Shen PS, Ye J, Cai SB. Non-linear FEM for RC shear wall structures. In Topping BHV, Kumar B, editors, Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford. Stirling: Civil-Comp press. 1999. p. 181-186 doi: 10.4203/ccp.59.7.1

Author

Shen, PS ; Ye, Jianqiao ; Cai, SB. / Non-linear FEM for RC shear wall structures. Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford. editor / B. H. V. Topping ; B. Kumar. Stirling : Civil-Comp press, 1999. pp. 181-186

Bibtex

@inproceedings{6af3626322ed4124be46a322cce566b7,
title = "Non-linear FEM for RC shear wall structures",
abstract = "This paper presents a method which can be used to study the post-failure behavior of low-rise reinforced concrete (RC) shear wall structures subjected to axial and lateral loads. The method is based on a nonlinear plane stress finite element modeling. In the analysis cracked reinforced concretes are located as orthotropic materials on the basis of a smeared, rotating crack model. The geometrical non-linearity is taken into account by using Green's strain formulation. To trace the non-linear equilibrium path beyond the limit point, an iterative incremental displacement method is established by combining the new element formulation and Newton-Raphson method. Numerical examples are provided to show the effectiveness and efficiency of the method. Numerical results for pre-failure analysis obtained by using present method are compared with those obtained either numerically or experimentally and available in the literature. The comparisons show that the present study can provide not only a satisfactory pre-failure analysis but also a higher convergent rate in the non-linear iterations. New results are presented to show the post-failure behavior of the RC shear walls.",
author = "PS Shen and Jianqiao Ye and SB Cai",
year = "1999",
doi = "10.4203/ccp.59.7.1",
language = "English",
pages = "181--186",
editor = "Topping, {B. H. V. } and B. Kumar",
booktitle = "Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford",
publisher = "Civil-Comp press",

}

RIS

TY - GEN

T1 - Non-linear FEM for RC shear wall structures

AU - Shen, PS

AU - Ye, Jianqiao

AU - Cai, SB

PY - 1999

Y1 - 1999

N2 - This paper presents a method which can be used to study the post-failure behavior of low-rise reinforced concrete (RC) shear wall structures subjected to axial and lateral loads. The method is based on a nonlinear plane stress finite element modeling. In the analysis cracked reinforced concretes are located as orthotropic materials on the basis of a smeared, rotating crack model. The geometrical non-linearity is taken into account by using Green's strain formulation. To trace the non-linear equilibrium path beyond the limit point, an iterative incremental displacement method is established by combining the new element formulation and Newton-Raphson method. Numerical examples are provided to show the effectiveness and efficiency of the method. Numerical results for pre-failure analysis obtained by using present method are compared with those obtained either numerically or experimentally and available in the literature. The comparisons show that the present study can provide not only a satisfactory pre-failure analysis but also a higher convergent rate in the non-linear iterations. New results are presented to show the post-failure behavior of the RC shear walls.

AB - This paper presents a method which can be used to study the post-failure behavior of low-rise reinforced concrete (RC) shear wall structures subjected to axial and lateral loads. The method is based on a nonlinear plane stress finite element modeling. In the analysis cracked reinforced concretes are located as orthotropic materials on the basis of a smeared, rotating crack model. The geometrical non-linearity is taken into account by using Green's strain formulation. To trace the non-linear equilibrium path beyond the limit point, an iterative incremental displacement method is established by combining the new element formulation and Newton-Raphson method. Numerical examples are provided to show the effectiveness and efficiency of the method. Numerical results for pre-failure analysis obtained by using present method are compared with those obtained either numerically or experimentally and available in the literature. The comparisons show that the present study can provide not only a satisfactory pre-failure analysis but also a higher convergent rate in the non-linear iterations. New results are presented to show the post-failure behavior of the RC shear walls.

U2 - 10.4203/ccp.59.7.1

DO - 10.4203/ccp.59.7.1

M3 - Conference contribution/Paper

SP - 181

EP - 186

BT - Developments in Analysis & Design Using FEM: 7th Int. Conf. Civil. Struct. Eng., Oxford

A2 - Topping, B. H. V.

A2 - Kumar, B.

PB - Civil-Comp press

CY - Stirling

ER -