Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence

In view of the insufficient analysis of the coupled joint seismic response of the intake tower–reservoir water–foundation boundary under the oblique incidence of SV wave space, a three-dimensional dynamic equation of the oblique incidence of SV wave space is established in this paper. The external w...

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Main Authors: Xiaodong Zheng, Yiming Shen, Xingguang Zong, Hui Su, Xun Zhao
Format: Article
Language:English
Published: MDPI AG 2023-07-01
Series:Buildings
Subjects:
Online Access:https://www.mdpi.com/2075-5309/13/7/1704
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author Xiaodong Zheng
Yiming Shen
Xingguang Zong
Hui Su
Xun Zhao
author_facet Xiaodong Zheng
Yiming Shen
Xingguang Zong
Hui Su
Xun Zhao
author_sort Xiaodong Zheng
collection DOAJ
description In view of the insufficient analysis of the coupled joint seismic response of the intake tower–reservoir water–foundation boundary under the oblique incidence of SV wave space, a three-dimensional dynamic equation of the oblique incidence of SV wave space is established in this paper. The external wave input method of viscoelastic artificial boundary combined with equivalent load and the acoustic medium theory are used to simulate the action of reservoir water, and the angle change in the SV wave incidence is realized by controlling the incident vector. The dynamic response of the structure is analyzed and the dynamic response characteristics of the structure at different incidence angles are discussed. The results show that the dynamic response and damage degree of the intake tower decreases first and then increases with the change in angle. When the vertical incidence is 0°, the maximum displacement drop is 82.05%, and the displacement response of the intake tower is more sensitive to the change in SV wave incidence angle. When SV wave is vertically incident at 0° and 35° (near the maximum critical angle of incident), the dynamic response, dynamic water pressure, damage diffusion velocity, damage area, and damage degree of the intake tower are relatively large, which seriously affects the safety and stability of the intake tower. Therefore, the influence of the oblique incidence should be considered comprehensively in the aseismic stability design of the water intake tower to provide a new idea for the safety evaluation of the same type of engineering.
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spelling doaj.art-f24ed891c953410f8c942e6e78e66a012023-11-18T18:37:40ZengMDPI AGBuildings2075-53092023-07-01137170410.3390/buildings13071704Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial IncidenceXiaodong Zheng0Yiming Shen1Xingguang Zong2Hui Su3Xun Zhao4College of Water Resources and Hydropower, Hebei University of Engineering, Handan 056001, ChinaCollege of Water Resources and Hydropower, Hebei University of Engineering, Handan 056001, ChinaHebei Province Water Conservancy Engineering Bureau Group Co., Ltd., Shijiazhuang 050021, ChinaCollege of Water Resources and Hydropower, Hebei University of Engineering, Handan 056001, ChinaHebei Hydraulic Research Institute, Shijiazhuang 050000, ChinaIn view of the insufficient analysis of the coupled joint seismic response of the intake tower–reservoir water–foundation boundary under the oblique incidence of SV wave space, a three-dimensional dynamic equation of the oblique incidence of SV wave space is established in this paper. The external wave input method of viscoelastic artificial boundary combined with equivalent load and the acoustic medium theory are used to simulate the action of reservoir water, and the angle change in the SV wave incidence is realized by controlling the incident vector. The dynamic response of the structure is analyzed and the dynamic response characteristics of the structure at different incidence angles are discussed. The results show that the dynamic response and damage degree of the intake tower decreases first and then increases with the change in angle. When the vertical incidence is 0°, the maximum displacement drop is 82.05%, and the displacement response of the intake tower is more sensitive to the change in SV wave incidence angle. When SV wave is vertically incident at 0° and 35° (near the maximum critical angle of incident), the dynamic response, dynamic water pressure, damage diffusion velocity, damage area, and damage degree of the intake tower are relatively large, which seriously affects the safety and stability of the intake tower. Therefore, the influence of the oblique incidence should be considered comprehensively in the aseismic stability design of the water intake tower to provide a new idea for the safety evaluation of the same type of engineering.https://www.mdpi.com/2075-5309/13/7/1704SV wave oblique incidenceartificial dynamic boundaryacoustic unithydrodynamic pressuredamage characteristics
spellingShingle Xiaodong Zheng
Yiming Shen
Xingguang Zong
Hui Su
Xun Zhao
Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence
Buildings
SV wave oblique incidence
artificial dynamic boundary
acoustic unit
hydrodynamic pressure
damage characteristics
title Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence
title_full Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence
title_fullStr Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence
title_full_unstemmed Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence
title_short Dynamic Response Analysis of Intake Tower-Hydrodynamic Coupling Boundary Based on SV Wave Spatial Incidence
title_sort dynamic response analysis of intake tower hydrodynamic coupling boundary based on sv wave spatial incidence
topic SV wave oblique incidence
artificial dynamic boundary
acoustic unit
hydrodynamic pressure
damage characteristics
url https://www.mdpi.com/2075-5309/13/7/1704
work_keys_str_mv AT xiaodongzheng dynamicresponseanalysisofintaketowerhydrodynamiccouplingboundarybasedonsvwavespatialincidence
AT yimingshen dynamicresponseanalysisofintaketowerhydrodynamiccouplingboundarybasedonsvwavespatialincidence
AT xingguangzong dynamicresponseanalysisofintaketowerhydrodynamiccouplingboundarybasedonsvwavespatialincidence
AT huisu dynamicresponseanalysisofintaketowerhydrodynamiccouplingboundarybasedonsvwavespatialincidence
AT xunzhao dynamicresponseanalysisofintaketowerhydrodynamiccouplingboundarybasedonsvwavespatialincidence