Redirigiendo al acceso original de articulo en 20 segundos...
Inicio  /  Buildings  /  Vol: 14 Par: 2 (2024)  /  Artículo
ARTÍCULO
TITULO

Seismic Response of MSE Walls with Various Reinforcement Configurations: Effect of Input Ground Motion Frequency

Irem Zeynep Yildirim    
Berk Turkel and Erol Guler    

Resumen

Mechanically stabilized earth (MSE) walls perform well under earthquake loads, and hence they are preferred in earthquake-prone regions. The multifaceted load transfer between the components of the MSE wall under seismic loads can be captured using numerical analysis. This study presents the results of a series of numerical analyses performed to investigate the effects of the frequency of the input ground motion on the seismic response of MSE walls. MSE wall design configurations were prepared using various reinforcement designs (length, vertical spacing, and stiffness). A frequent wall height of 8 m was selected for the analysis. Using two-dimensional finite element analysis, each MSE model was excited with seven (7) different input ground motion accelerograms with equal Arias Intensity, but with different frequencies ranging between 1 Hz and 8 Hz. The results of the numerical analyses indicated rotation at the top of the MSE wall in seismic conditions. The frequency versus acceleration plot for a point close to the top of the MSE wall indicated peaks for the excitations with frequencies f " role="presentation">?? f f   = 1.5 Hz and f " role="presentation">?? f f   = 4 Hz, which are close to the estimated natural frequency of the overall model (including the foundation soil) and the MSE wall, respectively. The highest normalized acceleration amplification factor solely within the MSE wall was recorded as 1.86 for the excitation with a frequency equivalent to its fundamental frequency (f " role="presentation">?? f f   ? 4 Hz). In this study, the 8 m high MSE wall models placed on a firm clayey foundation soil with the reinforcement parameters with length over height ratio in 0.5?1 range, axial stiffness in 600?1200 kPa range, and reinforcement vertical spacing in 0.4?0.6 m range performed satisfactorily under moderate seismic loads.

 Artículos similares

       
 
Yourong Lin, Zhi Zhou, Maoyu Shen, Jili Liu and Wei Huang    
In order to enhance the self-centering capacity of steel frame structures after earthquakes and reduce the tubes of traditional double-tube or triple-tube SC-BRB, an innovative single-tube self-centering buckling restrained brace (ST-SC-BRB) is proposed ... ver más
Revista: Buildings

 
Lei Zhang, Cuikun Wang, Caihua Chen and Mingzhe Cui    
Against the backdrop of China?s continuous promotion of green and low-carbon transformation and the development of construction industrialization, high-strength composite structural systems have significant development prospects. However, their research ... ver más
Revista: Buildings

 
Bikram Kesharee Patra, Rocio L. Segura and Ashutosh Bagchi    
This study addresses the vital issue of the variability associated with modeling decisions in dam seismic analysis. Traditionally, structural modeling and simulations employ a progressive approach, where more complex models are gradually incorporated. Fo... ver más
Revista: Infrastructures

 
Paolo Dabove, Chiara Colombero and Andrea Salerno Quaroni    
Analyses of climate change, due to its impact not only on the weather and the environment but also on human health and life, are one of the most important study activities made in recent years. There is relatively high confidence that glacial melt and he... ver más

 
Qingteng Yuan, Ming Xiao, Ci Kong and Kaicheng Wang    
The foundation of a seismic safety assessment of cross-fault hydraulic tunnels is an acceptable and accurate seismic response. A dynamic contact force algorithm that may take into consideration the interaction between the fault?surrounding rock?lining st... ver más
Revista: Buildings