Performance of Ground Anchored Walls Subjected to Dynamic and Pseudo-Static Loading

سال انتشار: 1400
نوع سند: مقاله ژورنالی
زبان: انگلیسی
مشاهده: 45

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شناسه ملی سند علمی:

JR_CEJ-7-6_003

تاریخ نمایه سازی: 28 تیر 1404

چکیده مقاله:

This study investigates the response of pre-stressed anchored excavation walls under dynamic and pseudo-static loadings. A finite difference numerical model was developed using FLAC۲D, and the results were successfully validated against full-scale experimental data. Analyses were performed on ۱۰, and ۲۰-m-height stabilized excavated slopes with ۶۰° to ۹۰° of inclination angle with the horizon to represent an applicable variety of wall geometries. In dynamic analysis, the statically stabilized models were subjected to ۰.۲ to ۰.۶g of the dynamic peak acceleration to evaluate the effect of ground acceleration on their performance. Furthermore, pseudo-static analyses were performed on the statically stabilized models with pseudo-static coefficients ranging from ۰.۰۶ to ۰.۲۲. The results revealed that ground anchored slopes generally showed acceptable performances under dynamic loading, while higher axial forces were induced to ground anchors in higher and steeper models. Furthermore, comparing the results of dynamic and pseudo-static analyses showed a good agreement between the two methods' predictions in the mobilized axial force along the ground anchors. Pseudo-static coefficients were then proposed to replicate dynamic results, considering the slope geometry and dynamic load peak acceleration. The results revealed that higher and steeper stabilized slopes required higher values of pseudo-static coefficients to match the dynamic predictions successfully. The results indicate that pseudo-static coefficient tend to increase with the increase in dynamic load peak acceleration in any given model. Doi: ۱۰.۲۸۹۹۱/cej-۲۰۲۱-۰۳۰۹۱۷۰۳ Full Text: PDFThis study investigates the response of pre-stressed anchored excavation walls under dynamic and pseudo-static loadings. A finite difference numerical model was developed using FLAC۲D, and the results were successfully validated against full-scale experimental data. Analyses were performed on ۱۰, and ۲۰-m-height stabilized excavated slopes with ۶۰° to ۹۰° of inclination angle with the horizon to represent an applicable variety of wall geometries. In dynamic analysis, the statically stabilized models were subjected to ۰.۲ to ۰.۶g of the dynamic peak acceleration to evaluate the effect of ground acceleration on their performance. Furthermore, pseudo-static analyses were performed on the statically stabilized models with pseudo-static coefficients ranging from ۰.۰۶ to ۰.۲۲. The results revealed that ground anchored slopes generally showed acceptable performances under dynamic loading, while higher axial forces were induced to ground anchors in higher and steeper models. Furthermore, comparing the results of dynamic and pseudo-static analyses showed a good agreement between the two methods' predictions in the mobilized axial force along the ground anchors. Pseudo-static coefficients were then proposed to replicate dynamic results, considering the slope geometry and dynamic load peak acceleration. The results revealed that higher and steeper stabilized slopes required higher values of pseudo-static coefficients to match the dynamic predictions successfully. The results indicate that pseudo-static coefficient tend to increase with the increase in dynamic load peak acceleration in any given model. Doi: ۱۰.۲۸۹۹۱/cej-۲۰۲۱-۰۳۰۹۱۷۰۳ Full Text: PDF

کلیدواژه ها:

Geotechnical Earthquake Engineering Slope Stability Seismic Stability Pre-Stressed Anchors Pseudo-Static Coefficient.

نویسندگان

Arash Saeidi Rashk Olia

Department of Civil Engineering, Kansas State University, ۱۷۰۱C Platt St., Manhattan, KS ۶۶۵۰۶-۵۰۰۰,, United States

Mohammad Oliaei

Department of Geotechnical Engineering, Faculty of Civil and Environmental Engineering, Tarbiat Modares University, Tehran,, Iran, Islamic Republic of

Heisam Heidarzadeh

Department of Civil Engineering, Faculty of Technology and Engineering, Shahrekord University, Shahrekord,, Iran, Islamic Republic of