Simple superposition approach for dynamic analysis of piled embedded footings
Autor: | L. A. Padrón, D.E. Beskos, George Mylonakis |
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Rok vydání: | 2011 |
Předmět: |
Engineering
Embedment business.industry Computational Mechanics Stiffness Structural engineering Kinematics Geotechnical Engineering and Engineering Geology Superposition principle Mechanics of Materials Soil structure interaction medicine General Materials Science medicine.symptom Pile business Boundary element method Parametric statistics |
Zdroj: | International Journal for Numerical and Analytical Methods in Geomechanics. 36:1523-1534 |
ISSN: | 0363-9061 |
DOI: | 10.1002/nag.1072 |
Popis: | SUMMARY The effectiveness and accuracy of the superposition method in assessing the dynamic stiffness and damping coefficients (impedance functions) of embedded footings supported by vertical piles in homogeneous viscoelastic soil is addressed. To this end, the impedances of piled embedded footings are compared to those obtained by superposing the impedance functions of the corresponding pile groups and embedded footings treated separately, with the magnitude of the relative average differences being around 10–30%. The results are presented in a set of dimensionless graphs and simple expressions that can be used to estimate the dynamic stiffness and damping of piled embedded footings, provided that the impedance functions of the two individual components are known. This is precisely the reason why the superposition approach studied here is appealing, because such impedance functions for both embedded footings and pile groups are available for a wide range of cases. How to estimate the kinematic response functions of the system when those of the individual components are known is also discussed. To address the problem, parametric analyses performed using a 3D frequency-domain elastodynamic BEM-FEM formulation are presented for different pile–soil stiffness contrasts, embedment depths, pile-to-pile separations and excitation frequencies. Vertical, horizontal, rocking, and cross-coupled horizontal-rocking impedance functions, together with translational and rotational kinematic response functions, are discussed. The results suggest that the superposition concept, in conjunction with a correction strategy as that presented herein, can be employed in geotechnical design. For kinematic effects, the response functions of the embedded footing are found to provide reasonable estimates of the system's behaviour. Copyright © 2011 John Wiley & Sons, Ltd. |
Databáze: | OpenAIRE |
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