Natural Resources

Volume 3, Issue 1 (March 2012)

ISSN Print: 2158-706X   ISSN Online: 2158-7086

Google-based Impact Factor: 0.89  Citations  h5-index & Ranking

Comparison of Design and Analysis of Concrete Gravity Dam

HTML  Download Download as PDF (Size: 522KB)  PP. 18-28  
DOI: 10.4236/nr.2012.31004    34,177 Downloads   66,952 Views  Citations

ABSTRACT

Gravity dams are solid concrete structures that maintain their stability against design loads from the geometric shape, mass and strength of the concrete. The purposes of dam construction may include navigation, flood damage reduction, hydroelectric power generation, fish and wildlife enhancement, water quality, water supply, and recreation. The design and evaluation of concrete gravity dam for earthquake loading must be based on appropriate criteria that reflect both the desired level of safety and the choice of the design and evaluation procedures. In Bangladesh, the entire country is divided into 3 seismic zones, depending upon the severity of the earthquake intensity. Thus, the main aim of this study is to design high concrete gravity dams based on the U.S.B.R. recommendations in seismic zone II of Bangladesh, for varying horizontal earthquake intensities from 0.10 g - 0.30 g with 0.05 g increment to take into account the uncertainty and severity of earthquake intensities and constant other design loads, and to analyze its stability and stress conditions using analytical 2D gravity method and finite element method. The results of the horizontal earthquake intensity perturbation suggest that the stabilizing moments are found to decrease significantly with the increment of horizontal earthquake intensity while dealing with the U.S.B.R. recommended initial dam section, indicating endanger to the dam stability, thus larger dam section is provided to increase the stabilizing moments and to make it safe against failure. The vertical, principal and shear stresses obtained using ANSYS 5.4 analyses are compared with those obtained using 2D gravity method and found less compares to 2D gravity method, except the principal stresses at the toe of the gravity dam for 0.10 g - 0.15 g. Although, it seems apparently that smaller dam section may be sufficient for stress analyses using ANSYS 5.4, it would not be possible to achieve the required factors of safety with smaller dam section. It is observed during stability analyses that the factor of safety against sliding is satisfied at last than other factors of safety, resulting huge dam section to make it safe against sliding. Thus, it can be concluded that it would not be feasible to construct a concrete gravity dam for horizontal earthquake intensity greater than 0.30 g without changing other loads and or dimension of the dam and keeping provision for drainage gallery to reduce the uplift pressure significantly.

Share and Cite:

Ali, M. , Alam, M. , Haque, M. and Alam, M. (2012) Comparison of Design and Analysis of Concrete Gravity Dam. Natural Resources, 3, 18-28. doi: 10.4236/nr.2012.31004.

Cited by

[1] Stability Analysis of Gravity Dam Using Finite Element Method and Particle Swarm Optimization
Recent Trends in Civil Engineering, 2023
[2] Performance of concrete gravity dam with various height of dam based on static pushover analysis
AIP Conference …, 2021
[3] Improving Resistance of Gravity Dam to Seismic Wave by Using Stepped Base
E3S Web of …, 2021
[4] Performance of Concrete Gravity Dam with Different Height of Dam and Water Level Under Seismic Loadings
2021
[5] Analyzing the Impact of Streamflow Drought on Hydroelectricity Production: A Global‐Scale Study
2021
[6] Effects of the vertical component of ground motion on the seismic performance of Bhakra Gravity Dam
Advances in concrete …, 2021
[7] Hydrologic and Structural Safety Evaluation of Aged Concrete Gravity Dam Using Finite Element Method
2019
[8] Stability Analysis of Overflow Dam using STAAD. Pro
2019
[9] An Empirical Comparison of Multiple Linear Regression and Artificial Neural Network for Concrete Dam Deformation Modelling
2019
[10] 考虑装配块接缝影响的装配式混凝土坝结构分析
水利水电技术, 2019
[11] Dynamic behaviour and hydraulic performance of reaction turbines in embankment dams/Ameen Mohammed Salih Ameen
2018
[12] Structural Stability And 2d Finite Element Analysis of Concrete Gravity Dam
2018
[13] Seismic Probabilistic Risk Assessment of Reservoir Structures Considering Earthquake Hazard and Updated Fragility by Bayesian Inference
2017
[14] Seismic response of concrete gravity dam in Afghanistan.
2017
[15] Stability Analysis of Concrete Gravity Dam for Seismic Loading in Afghanistan
2017
[16] Optimisation of Base Width of a Typical Concrete Gravity Dam under Different Seismic Conditions using Static Seismic Loading
2017
[17] Seismic probabilistic risk assessment of weir structures considering the earthquake hazard in the Korean Peninsula
2017
[18] Effects of Increasing the Base on Concrete Dam Stability
2016
[19] IMPACT OF ATATURK DAM ON REGIONAL RAINFALL
2016
[20] Optimal design of concrete gravity dams of random soil
Qaisi, HA Omran, 2016
[21] Multilevel prediction of missing time series dam displacements data based on artificial neural networks voting evaluation
2016
[22] Optimal Design of Concrete Gravity Dams on Random Soil
2016
[23] Evaluation of failure modes for concrete dams
2015
[24] Study of Structural Behaviour of Gravity Dam with Various Features of Gallery by FEM
ACEE Int. J. on Civil and Environmental Engineering, 2014
[25] Finite Element Modelling and Seismic Response Evaluation of Large Concrete Gravity Dams-An Approach based on Indian Standard Codal Guidelines
International Journal of Emerging Engineering Research and Technology , 2014
[26] Hydrodynamic Analysis of Concrete Gravity Dams Subjected To Ground Motion
9th Symposium of ICOLD European Club. Club IECS201310-12 April, Italy, 2013

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.