Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes

To explore the optimal seismic performance of multianchor pile, we carried out a series of shaking table tests. Based on the special form of multianchor piles’ reinforcement, we put forward the optimal design scheme of using EPS foam as damping layers and energy-dissipation springs for improving the...

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Main Authors: Honggang Wu, Lifang Pai, Hao Lei
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2021/6637754
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spelling doaj-1ddd40a4a068407689604de6a1aedad12021-02-15T12:52:54ZengHindawi LimitedAdvances in Civil Engineering1687-80861687-80942021-01-01202110.1155/2021/66377546637754Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against EarthquakesHonggang Wu0Lifang Pai1Hao Lei2Northwest Research Institute Co., Ltd of C.R.E.C, Lanzhou, Gansu 730000, ChinaNorthwest Research Institute Co., Ltd of C.R.E.C, Lanzhou, Gansu 730000, ChinaNorthwest Research Institute Co., Ltd of C.R.E.C, Lanzhou, Gansu 730000, ChinaTo explore the optimal seismic performance of multianchor pile, we carried out a series of shaking table tests. Based on the special form of multianchor piles’ reinforcement, we put forward the optimal design scheme of using EPS foam as damping layers and energy-dissipation springs for improving the self-coordinating devices of anchor head. By measuring acceleration and dynamic soil-pressure response under different intensities of vibration, we analyzed the correlation between acceleration caused by seismic wave action and damage characterized by time-domain and spectral characteristics of dynamic soil-pressure. We discuss in detail the relationship between frequency and specific period of dynamic soil-pressure and acceleration. We then used the SPECTR program to calculate the energy spectrum. Under the reciprocating action of seismic waves of different intensities, our slope model showed the continuous effect of spatial coupling deformation leading to regional damage and failure. Furthermore, the spatial distribution for amplitude of acceleration and dynamic soil-pressure showed the outstanding response of lateral amplitude of pile structures without optimization. The energy-spectrum distribution of acceleration seismic input was orderly, while the dynamic soil-pressure distribution of piles was disordered. Low-frequency (≤10 Hz) seismic waves have a great influence on these structures. The difference of acceleration hysteresis along the elevations was mainly caused by the propagation stage after the main earthquake. The correlation between dynamic soil-pressure and acceleration response in each group before the pile occurred in the same earthquake area was very weak, showing a low correlation. The optimization effect of optimized structures is related to the position of the shock-absorbing layer. Under high acceleration, multianchor piles easily cause bulge failures or shear failures at the positions of sliding surfaces. These results are helpful for improvements to reliably optimize designs in pile structure dynamic parameters.http://dx.doi.org/10.1155/2021/6637754
collection DOAJ
language English
format Article
sources DOAJ
author Honggang Wu
Lifang Pai
Hao Lei
spellingShingle Honggang Wu
Lifang Pai
Hao Lei
Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes
Advances in Civil Engineering
author_facet Honggang Wu
Lifang Pai
Hao Lei
author_sort Honggang Wu
title Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes
title_short Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes
title_full Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes
title_fullStr Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes
title_full_unstemmed Seismic Optimization of High Cantilever Multianchor Pile Strengthening Soil Slopes against Earthquakes
title_sort seismic optimization of high cantilever multianchor pile strengthening soil slopes against earthquakes
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8086
1687-8094
publishDate 2021-01-01
description To explore the optimal seismic performance of multianchor pile, we carried out a series of shaking table tests. Based on the special form of multianchor piles’ reinforcement, we put forward the optimal design scheme of using EPS foam as damping layers and energy-dissipation springs for improving the self-coordinating devices of anchor head. By measuring acceleration and dynamic soil-pressure response under different intensities of vibration, we analyzed the correlation between acceleration caused by seismic wave action and damage characterized by time-domain and spectral characteristics of dynamic soil-pressure. We discuss in detail the relationship between frequency and specific period of dynamic soil-pressure and acceleration. We then used the SPECTR program to calculate the energy spectrum. Under the reciprocating action of seismic waves of different intensities, our slope model showed the continuous effect of spatial coupling deformation leading to regional damage and failure. Furthermore, the spatial distribution for amplitude of acceleration and dynamic soil-pressure showed the outstanding response of lateral amplitude of pile structures without optimization. The energy-spectrum distribution of acceleration seismic input was orderly, while the dynamic soil-pressure distribution of piles was disordered. Low-frequency (≤10 Hz) seismic waves have a great influence on these structures. The difference of acceleration hysteresis along the elevations was mainly caused by the propagation stage after the main earthquake. The correlation between dynamic soil-pressure and acceleration response in each group before the pile occurred in the same earthquake area was very weak, showing a low correlation. The optimization effect of optimized structures is related to the position of the shock-absorbing layer. Under high acceleration, multianchor piles easily cause bulge failures or shear failures at the positions of sliding surfaces. These results are helpful for improvements to reliably optimize designs in pile structure dynamic parameters.
url http://dx.doi.org/10.1155/2021/6637754
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AT lifangpai seismicoptimizationofhighcantilevermultianchorpilestrengtheningsoilslopesagainstearthquakes
AT haolei seismicoptimizationofhighcantilevermultianchorpilestrengtheningsoilslopesagainstearthquakes
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