Abstract

In the recent times, many huge concrete face rockfill dams (CFRDs) have been modelled and constructed in the world, and many of these dams are located on the strong earthquake zones. Examination of the seismic behaviour of a CFR dam built on the seismic zone is very important to assess the safety and future of the dam. For this reason, the nonlinear earthquake behaviour of these dams should be constantly observed taking into account the seismicity of the zone. In this study, three-dimensional (3D) seismic behaviour of the Ilısu dam built on the East Anatolian Fault (EAF) line is examined considering the effect of the important various far-fault earthquakes. The 3D finite difference model of the Ilısu dam is created using the FLAC3D software based on the finite difference method. The dam body, foundation, and concrete slab constantly interact during the lifetime of the CFRDs. Therefore, the special interface elements are defined between the dam body, concrete slab, and foundation to represent the interaction condition. The Mohr–Coulomb nonlinear material model is used for the rockfill materials and foundation. Moreover, the concrete slab is modelled considering the Drucker–Prager nonlinear material model to represent the nonlinearity of the concrete. Very special seismic boundary conditions rarely used for CFR dams in the past are used in this work. These boundary conditions are free-field and quiet boundary conditions. The free-field boundary condition that is a very important boundary condition for the nonlinear seismic analyses is considered for the lateral boundaries of the 3D model. In addition, the quiet artificial boundary condition is used for the bottom of the foundation. While defining these boundary conditions, the special fish functions are created and defined to the software. Moreover, the hysteric damping coefficients are separately calculated for all of the materials. These special damping values are defined to the FLAC3D software using the special fish functions to capture the effects of the variation of the modulus and damping ratio with the dynamic shear-strain magnitude. In the numerical analyses, a total of 7 various strong far-fault earthquakes are used for the 3D nonlinear earthquake analyses, and 7 different numerical analyses are performed for the full-reservoir condition of the Ilısu CFR dam. According to the seismic results, the principal stresses for the three critical nodal points on the dam body surface are examined and evaluated in detail. It is clearly understood that the nonlinear seismic behaviour of the Ilısu dam changes depending on the magnitudes and periods of the far-fault earthquakes. Each far-fault earthquake has different seismic effects on the nonlinear principal stress behaviour of the Ilısu CFR dam.

Highlights

  • In the past, dams very important water structures were constructed for only irrigation

  • Andrianopoulos et al [8] revealed that the predominant period of vibration for a concrete faced rockfill (CFR) dam is highly affected with the input of the ground motion characteristics and its height

  • Xu et al [9] developed nonlinear seismic analysis procedure for the CFR dams taking into account the plastic-damage constitutive model, and it was proposed that this procedure could be adopted into the interaction condition between the foundation and concrete

Read more

Summary

Introduction

Dams very important water structures were constructed for only irrigation. Many investigators examined the nonlinear seismic behaviour of the CFR rockfill dams, and the effect of the strong ground motions was discussed in detail [9, 14,15,16,17,18,19,20,21,22,23,24] Both far-fault and near-fault earthquakes can cause major damages in the CFR dam body. Very few investigators examined the effects of the far-fault earthquakes on the nonlinear seismic behaviour of the CFR dams For this reason, 7 different far-fault ground motions are used in the seismic analyses for the full reservoir condition of the dam in this study, and 7 various numerical analyses are performed and compared with each other. According to the 3D finite difference analyses, principal stresses are assessed for the seismic analyses. e deteriorations and fatigues in the rockfill materials are evaluated considering the effect of the magnitudes and periods of the far-fault earthquakes

General Descriptions of the Ilısu Hydraulic Project
Calculation of Normal and Shear Stiffness considering Rockfill Properties
Finite Difference Model and Material Properties of Ilısu Dam
Geologic Background of Turkey and Ground Motion Inputs
Numerical Results
Conclusion
Full Text
Published version (Free)

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call