4.7 Article

An internal input framework of earthquake motions for dam-water-foundation rock systems

Journal

SOIL DYNAMICS AND EARTHQUAKE ENGINEERING
Volume 156, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.soildyn.2022.107241

Keywords

Dam -water -foundation rock; Earthquake motion; Internal input; Artificial boundary; User-friendliness

Funding

  1. National Natural Science Foundation of China [51725901, 51639006]
  2. China Three Gorges Corporation [XLD/2117]
  3. State Key Laboratory of Hydroscience and Hydraulic Engineering [2021-KY-04]

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This paper proposes an integrated framework for the input of earthquake motions in dam-water-foundation rock systems, which can simplify the pre-processing work and improve efficiency.
The input mechanism of earthquake motions is a key issue for the seismic analysis and safety evaluation of dams. Although various methods for inputting earthquake motions and recognizing semi-unbounded domains have been proposed, the implementation of existing methods requires users to handle complicated pre-processing works. In this paper, a general internal input framework of earthquake motions is integrated for dam-water -foundation rock systems, which consists of an internal input method and the equivalent viscous-spring finite element boundary. The internal input method is implemented by the internal substructure method (ISM). It is proved that the effective seismic forces in the domain reduction method can be converted into those in the ISM, and thus they can be obtained by one auxiliary dynamic reaction calculation. The equivalent viscous-spring finite element boundary is constructed by general finite elements instead of springs and dampers. The proposed in-tegrated framework is user-friendly for most finite element codes and can significantly save efforts during pre-processing.

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