SIMPLIFIED MODEL FOR THE SEISMIC ANALYSIS OF A SOIL-LONG PILE GROUP-STRUCTURE SYSTEM

Author(s):  
Jue WANG ◽  
Ding ZHOU
2020 ◽  
Vol 138 ◽  
pp. 106299 ◽  
Author(s):  
Chengshun Xu ◽  
Pengfei Dou ◽  
Xiuli Du ◽  
M. Hesham El Naggar ◽  
Masakatsu Miyajima ◽  
...  

2010 ◽  
Vol 37 (1-2) ◽  
pp. 25-39 ◽  
Author(s):  
H. Elahi ◽  
M. Moradi ◽  
H.G. Poulos ◽  
A. Ghalandarzadeh
Keyword(s):  

1998 ◽  
Vol 14 (1) ◽  
pp. 1-34 ◽  
Author(s):  
K. Anastassiadis ◽  
A. Athanatopoulou ◽  
T. Makarios

The equivalent static eccentricities of seismic forces are usually defined by codes with simple expressions of the static eccentricity. This paper presents certain formulae for the exact calculation of these eccentricities on the basis of the dynamic response of a simplified model. From the parametric analysis of such formulae the determinative role of the torsional and lateral stiffness of the system becomes obvious for the correct evaluation of the equivalent static eccentricities. Finally, a proposal is made for the improvement of the static torsional provisions of the current codes.


2008 ◽  
Vol 33-37 ◽  
pp. 1149-1154
Author(s):  
Q.W. Zhang ◽  
Di Tao Niu ◽  
T. Zhang ◽  
B.Y. Zhang

A simplified integrating model is developed for soil-pile dynamic interaction system under seismic loading. Different from previous work, this simplified model constructs the whole system stiffness matrix by combining the stiffness matrix of pile and near region soil system according to the volumetric ratio of pile group and soil system. This simplified model can avoid deviation brought by previous soil-pile surface model and can felicitously simulate the co-working mechanism between soil and piles. The feasibility of the proposed approach is assessed by comparing with in-site observation result of real project.


Author(s):  
Nagavinothini Ravichandran ◽  
Daniele Losanno ◽  
Fulvio Parisi

AbstractAll around the world, non-engineered masonry constructions (NECs) typically have high vulnerability to seismic ground motion, resulting in heavy damage and severe casualties after earthquakes. Even though a number of computational strategies have been developed for seismic analysis of unreinforced masonry structures, a few studies have focussed on NECs located in developing countries. In this paper, different modelling options for finite element analysis of non-engineered masonry buildings are investigated. The goal of the study was to identify the modelling option with the best trade-off between computational burden and accuracy of results, in view of seismic risk assessment of NECs at regional scale. Based on the experimental behaviour of a single-storey structure representative of Indian non-engineered masonry buildings, the output of seismic response analysis of refined 3D models in ANSYS was compared to that of a simplified model based on 2D, nonlinear, layered shell elements in SAP2000. The numerical-experimental comparison was carried out under incremental static lateral loading, whereas nonlinear time history analysis was performed to investigate the dynamic performance of the case-study structure. Analysis results show that the simplified model can be a computationally efficient modelling option for both nonlinear static and dynamic analyses, particularly in case of force-based approaches for design and assessment of base isolation systems aimed at the large-scale seismic vulnerability mitigation of NECs.


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