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Seismic protection of LNG tanks with reliability based optimally designed combined rubber isolator and friction damper

  • Khansefid, Ali (Civil Engineering Department, Sharif University of Technology) ;
  • Maghsoudi-Barmi, Ali (Civil Engineering Department, Sharif University of Technology) ;
  • Khaloo, Alireza (Civil Engineering Department, Sharif University of Technology)
  • 투고 : 2018.10.10
  • 심사 : 2019.03.24
  • 발행 : 2019.05.25

초록

Different types of gas reservoir such as Liquid Natural Gas (LNG) are among the strategic infrastructures, and have great importance for any government or their private owners. To keep the tank and its contents safe during earthquakes especially if the contents are of hazardous or flammable materials; using seismic protection systems such as base isolator can be considered as an effective solution. However, the major deficiency of this system can be the large deformation in the isolation level which may lead to the failure of bearing system. In this paper, as a solution, the efficacy of an optimally designed combined vibration control system, the combined laminated rubber isolator and rotational friction damper, is investigated to evaluate the enhancement of an existing metal tank response under both far- and near-field earthquakes. Responses like impulsive and convective accelerations, base shear, and sloshing height are studied herein. The probabilistic framework is used to consider the uncertainties in the structural modeling, as well as record-to-record variability. Due to the high calculation cost of probabilistic methods, a simplified structural model is used. By using the Mont-Carlo simulation approach, it is revealed that this combined isolation system is a highly reliable system which provides considerable enhancement in the performance of reservoir, not only leads to the reduction of probability of catastrophic failure of the tank but also decrease the reservoir damage during the earthquake. Moreover, the relative displacement of the isolation level is controlled very well by this combined system.

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참고문헌

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피인용 문헌

  1. Shaking table test of liquid storage tank with finite element analysis considering uplift effect vol.77, pp.3, 2019, https://doi.org/10.12989/sem.2021.77.3.369