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Foundation enhancement for reducing tunnel-building seismic interaction on soft clay
Graphical abstract Display Omitted
Highlights Seismic tunnel-soil-building interaction led to ground motion variability. This seismic interaction is strongly dependent on frequency content. Seismic tunnel-soil interaction reduces the surface ground motions. Accelerations reduce at ground level, but increase at the structure. Enhancement reduces both building displacements and accelerations.
Abstract Seismic tunnel-soil-building interaction in high plasticity soft clays can led to important ground motion variability that affect medium to low rise buildings located adjacent to the underground structure. This paper presents a numerical study aiming at establishing the performance of an enhanced foundation system to be used as a mean to reduce detrimental interaction and enhanced the seismic performance of mid to low buildings located nearby tunnels. Initially, interaction effects are revised considering the effect that frequency content, intensity, and strong ground motion duration have on the interplay between incoming seismic waves reflected in the tunnel, and the energy feeding back from the building swinging back and forth during a large earthquake. Series of three-dimensional finite difference models were developed. Seismic analyses considered both normal and subduction events with a return period of 250 years were carried out. Finally, the seismic performance of the enhanced foundation system was established. From the results gathered in here, it was clearly established the effectiveness of the proposed system to reduce both foundation ground motions and building seismic demand.
Foundation enhancement for reducing tunnel-building seismic interaction on soft clay
Graphical abstract Display Omitted
Highlights Seismic tunnel-soil-building interaction led to ground motion variability. This seismic interaction is strongly dependent on frequency content. Seismic tunnel-soil interaction reduces the surface ground motions. Accelerations reduce at ground level, but increase at the structure. Enhancement reduces both building displacements and accelerations.
Abstract Seismic tunnel-soil-building interaction in high plasticity soft clays can led to important ground motion variability that affect medium to low rise buildings located adjacent to the underground structure. This paper presents a numerical study aiming at establishing the performance of an enhanced foundation system to be used as a mean to reduce detrimental interaction and enhanced the seismic performance of mid to low buildings located nearby tunnels. Initially, interaction effects are revised considering the effect that frequency content, intensity, and strong ground motion duration have on the interplay between incoming seismic waves reflected in the tunnel, and the energy feeding back from the building swinging back and forth during a large earthquake. Series of three-dimensional finite difference models were developed. Seismic analyses considered both normal and subduction events with a return period of 250 years were carried out. Finally, the seismic performance of the enhanced foundation system was established. From the results gathered in here, it was clearly established the effectiveness of the proposed system to reduce both foundation ground motions and building seismic demand.
Foundation enhancement for reducing tunnel-building seismic interaction on soft clay
Mayoral, Juan Manuel (Autor:in) / Mosqueda, Gilberto (Autor:in)
19.05.2021
Aufsatz (Zeitschrift)
Elektronische Ressource
Englisch
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