Geomechanics and Engineering, Volume 32, Issue 1, Pages 69-84 , 01/01/2023
Nonlinear shear-flexure-interaction RC frame element on Winkler-Pasternak foundation
Abstract
This paper proposes a novel frame element on Winkler-Pasternak foundation for analysis of a non-ductile reinforced concrete (RC) member resting on foundation. These structural members represent flexural-shear critical members, which are commonly found in existing buildings designed and constructed with the old seismic design standards (inadequately detailed transverse reinforcement). As a result, these structures always experience shear failure or flexure-shear failure under seismic loading. To predict the characteristics of these non-ductile structures, efficient numerical models are required. Therefore, the novel frame element on Winkler-Pasternak foundation with inclusion of the shear-flexure interaction effect is developed in this study. The proposed model is derived within the framework of a displacement-based formulation and fiber section model under Timoshenko beam theory. Uniaxial nonlinear material constitutive models are employed to represent the characteristics of non-ductile RC frame and the underlying foundation. The shear-flexure interaction effect is expressed within the shear constitutive model based on the UCSD shear-strength model as demonstrated in this paper. From several features of the presented model, the proposed model is simple but able to capture several salient characteristics of the non-ductile RC frame resting on foundation, such as failure behavior, soil-structure interaction, and shear-flexure interaction. This confirms through two numerical simulations.
Document Type
Article
Source Type
Journal
Keywords
flexure-shear critical membersshear-flexure interactionsoil-structure interactionTimoshenko frame elementWinkler-Pasternak foundation
ASJC Subject Area
Engineering : Civil and Structural EngineeringEarth and Planetary Sciences : Geotechnical Engineering and Engineering Geology
Funding Agency
Thailand Research Fund