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    Experimental and numerical modelling studies of slender reinforced concrete walls with single-layer reinforcement in Peru
    (Elsevier Ltd, 2022-12-15)
    The deficit in affordable residential construction in Lima has generated the construction of several mid to high-rise buildings using the structural system of Slender Reinforced Concrete (RC) Walls. In Peru, this system is known as ‘walls of limited ductility’ and their main characteristics are a fast construction time and an affordable price. Due to the expected non-ductile behaviour, Peruvian RC slender wall buildings follow the same seismic design criteria as traditional RC wall buildings but with a smaller reduction factor of elastic seismic forces and minor permissible story displacement drift. However, there is limited experience of the seismic response of such buildings in severe earthquakes and seismic design criteria have been obtained from just a few experimental tests. This work presents an experimental program of cyclic in-plane testing, developed at the Pontificia Universidad Católica del Perú (PUCP) to obtain more knowledge about the lateral behaviour of typical Peruvian slender walls. According to quasi-static tests, the slender walls reached a maximum story drift of 1.27% after damage occurred, including diagonal tension, diagonal compression, sliding shear, concrete crushing, and buckling of the vertical reinforcement. Experimental results for the slender RC walls were computed to obtain the Damage States, Equivalent Lateral Stiffness (Keff), Ductility (μ), Equivalent Damping Ratio (ξeq) and Bending/Shear/Sliding deformations. In this work, a calibration process on numerical models was developed using OpenSees software. This work shows that slender RC walls in Peru show the typical hysteretic response of structural walls until a maximum drift of 1.27%, despite their deficiencies in slenderness, squat geometry, and the absence of confinement zones.
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    Efficient beam-based model for reinforced concrete walls considering shear-flexure interaction
    (Elsevier Ltd, 2024-09-15)
    This paper presents an efficient beam-based modelling scheme for the seismic analysis of reinforced concrete structural walls. The model combines a force-based beam element with a fibre section for flexural response and a zero-length element for shear response. The fibre-based element simulates the nonlinear flexural behaviour through uniaxial material laws that account for concrete cracking, concrete crushing, and yielding and rupture of reinforcing bars. The zero-length element represents the shear behaviour with a trilinear lateral force-displacement curve representing, in a phenomenological way, nonlinear deformations caused by diagonal cracking. The reduction of shear resistance caused by inelastic flexural deformations is accounted for in the model to reproduce failures due to shear-flexure interaction. The model has been validated using data from 52 tests on wall specimens exhibiting flexure, shear and mixed shear-flexure modes from experimental campaigns reported in the literature, showing good accuracy in predicting the effective stiffness, maximum strength and displacement capacities obtained in the tests. Model results for ultimate displacement capacity correlate better with experimental results than simplified code-oriented expressions in performance-based evaluation standards and recommendations. Considering its balanced accuracy and computational efficiency, it is concluded that the proposed modelling scheme can effectively be used for performance-based seismic design and assessment of RC wall buildings.