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Damage evaluation of concrete gravity dams under mainshock–aftershock seismic sequences
Abstract A large mainshock may trigger numerous aftershocks within a short period, and large aftershocks have the potential to cause additional cumulative damage to structures. This paper investigates the effects and potential of aftershocks on the accumulated damage of concrete gravity dams. For that purpose, 30 as-recorded mainshock–aftershock seismic sequences are considered in this study, and a typical two-dimensional gravity dam model subjected to the selected as-recorded seismic sequences is modeled. A Concrete Damaged Plasticity (CDP) model including the strain hardening or softening behavior is selected for the concrete material. This model is used to evaluate the nonlinear dynamic response and the seismic damage process of Koyna dam under mainshock–aftershock seismic sequences. According to the characteristics of the cracking damage development, the local and global damage indices are both established to study the influence of strong aftershocks on the cumulative damage of concrete gravity dams. From the results of this investigation, it is found that the as-recorded sequences of ground motions have a significant effect on the accumulated damage and on the design of concrete gravity dams.
Highlights ► 30 mainshock–aftershock seismic sequences are used as seismic excitations. ► A Concrete Damaged Plasticity model is used in seismic damage analysis. ► Local and global damage indices for damage evaluation are proposed. ► The effects of aftershcok on the accumulated damage of gravity dams are discussed. ► The damage to the upper zone of the dam is more sensitive to the aftershock.
Damage evaluation of concrete gravity dams under mainshock–aftershock seismic sequences
Abstract A large mainshock may trigger numerous aftershocks within a short period, and large aftershocks have the potential to cause additional cumulative damage to structures. This paper investigates the effects and potential of aftershocks on the accumulated damage of concrete gravity dams. For that purpose, 30 as-recorded mainshock–aftershock seismic sequences are considered in this study, and a typical two-dimensional gravity dam model subjected to the selected as-recorded seismic sequences is modeled. A Concrete Damaged Plasticity (CDP) model including the strain hardening or softening behavior is selected for the concrete material. This model is used to evaluate the nonlinear dynamic response and the seismic damage process of Koyna dam under mainshock–aftershock seismic sequences. According to the characteristics of the cracking damage development, the local and global damage indices are both established to study the influence of strong aftershocks on the cumulative damage of concrete gravity dams. From the results of this investigation, it is found that the as-recorded sequences of ground motions have a significant effect on the accumulated damage and on the design of concrete gravity dams.
Highlights ► 30 mainshock–aftershock seismic sequences are used as seismic excitations. ► A Concrete Damaged Plasticity model is used in seismic damage analysis. ► Local and global damage indices for damage evaluation are proposed. ► The effects of aftershcok on the accumulated damage of gravity dams are discussed. ► The damage to the upper zone of the dam is more sensitive to the aftershock.
Damage evaluation of concrete gravity dams under mainshock–aftershock seismic sequences
Zhang, Sherong (author) / Wang, Gaohui (author) / Sa, Wenqi (author)
Soil Dynamics and Earthquake Engineering ; 50 ; 16-27
2013-02-28
12 pages
Article (Journal)
Electronic Resource
English
Damage evaluation of concrete gravity dams under mainshock-aftershock seismic sequences
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