Volume 11 Issue 4
Oct.  2018
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Ren-kun Wang, Lin Chen, Chong Zhang. 2018: Seismic design of Xiluodu ultra-high arch dam. Water Science and Engineering, 11(4): 288-301. doi: 10.1016/j.wse.2019.01.002
Citation: Ren-kun Wang, Lin Chen, Chong Zhang. 2018: Seismic design of Xiluodu ultra-high arch dam. Water Science and Engineering, 11(4): 288-301. doi: 10.1016/j.wse.2019.01.002

Seismic design of Xiluodu ultra-high arch dam

doi: 10.1016/j.wse.2019.01.002
Funds:  This work was supported by the Program of Study on the Standard of Overall Safety Control of High Arch Dam of PowerChina Co., Ltd., (Grant No. DJ-ZDXM-2014-19).
More Information
  • Corresponding author: Ren-kun Wang
  • Received Date: 2017-11-24
  • Rev Recd Date: 2018-08-06
  • The 285.5 m-high Xiluodu Arch Dam is located in a seismic region along the Jinsha River in China, where the horizontal components of peak ground accelerations for design and checking earthquakes have been estimated to be 0.355g and 0.423g, respectively (g is the gravitational acceleration). The ground motion parameters of design and checking earthquakes are defined by exceedance probabilities of 2% over 100 years and 1% over 100 years, respectively. The dam shape was first selected and optimized through static analysis of the basic load combinations, and then adjusted after taking into account the seismic loads. The dam should be operational during and after the design earthquake with or without minor repairs, and maintain local and global stabilities during an extreme earthquake. Both standard linear elastic dynamic analysis and nonlinear dynamic analysis considering radiation damping, block joints, and material nonlinearity were conducted to assess the stress in the arch dam. The dynamic analysis shows that the maximum dynamic compressive stresses are less than the allowable levels, while the area with tensile stress over the limit is less than 15% of the dam surface and the maximum block openings range from 10 mm to 25 mm. The arch dam has sufficient earthquake-resistance capacity and meets the safety requirements. Nevertheless, steel reinforcement has been provided at the dam toe and in the zones of high tensile stress on the dam surface out of extra precaution.

     

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  • Aftabi Sani, A., Lotfi, V., 2010. Dynamic analysis of concrete arch dams by ideal-coupled modal approach. Engineering Structctures, 32(5), 1377–1383. https://doi.org/10.1016/j.engstruct.2010.01.016.
    Ahmadi, M.T., Izadinia, M., Bachmann, H., 2001. A discrete crack joint model for nonlinear dynamic analysis of concrete arch dam. Computers and Structctures, 79(4), 403–420. https://doi.org/10.1016/S0045-7949(00)00148-6.
    Australian National Committee on Large Dams (ANCOLD). 2013. Guidelines on Design Criteria for Concrete Gravity Dams. https://www.ancold.org.au/?product=guidelines-on-design-criteria-for-concrete-gravity-dams-september-2013 [Retrieved Nov. 20, 2017].
    Bouaanani, N., Lu, F.Y., 2009. Assessment of potential-based fluid finite elements for seismic analysis of dam-reservoir systems. Computer and Structures,187(3–4), 206–224. https://doi.org/10.1016/j.compstruc.2008.10.006.
    Chen, H., 2011. High Arch Dam Seismic Safety. China Electric Power Press, Beijing (in Chinese).
    Chen, H., 2012. Study on Seismic Strengthening Standard of Hydraulic Structures. China Water Resources, (20), 4–6. (in Chinese)
    Clough, R.W., Raphael, J.M., Mojtahedi, S., 1973. ADAP: A Computer Program for Static and Dynamic Analysis of Arch Dams, Report No. EERC-73/14. University of California, Berkeley.
    Fahjan, Y.M., Borekci, O.S., Erdik, M., 2003. Earthquake-induced hydrodynamic pressures on a 3D rigid dam-reservoir system using DRBEM and a radiation matrix. International Journal for Numerical Methods in Engineering, 56(10), 1511–1532. https://doi.org/10.1002/nme.623.
    Federal Energy Regulatory Commission (FERC), 1999. Engineering Guidelines for the Evaluation of Hydropower Projects, Chapter 11: Arch Dams. FERC, Washington, D.C. http://www.ferc.gov/industries/hydropower/safety/guidelines/eng-guide.asp [Retrieved Nov. 20, 2017].
    Ghaemian, M., Ghobarah, A., 1998. Staggered solution schemes for dam-reservoir interaction. Journal of Fluids and Structures, 12(7), 933–948. https://doi.org/10.1006/jfls.1998.0170.
    Hariri-Ardebili, M.A., Zarringhalam, Y., Estekanchi, H.E., Yahyai, M., 2013. Nonlinear seismic assessment of steel moment frames using time-history, incremental dynamic, and endurance time analysis methods. Scientia Iranica, 20(3), 431–444, https://doi.org/10.1016/j.scient.2013.04.003.
    Jonker, M., Espandar, R., 2014. Evaluation of Existing Arch Dam Design Criteria in Lieu of ANCOLD Guidelines. https://www.ghd.com/en/services/resources/PDF/ANCOLD2014-Evaluation-of-Existing-Arch-Dam-Design-Criteria-in-Lieu-of-ANC OLD-Guidelines---JONKER--ESPANDAR.pdf [Retrieved Nov. 20, 2017].
    Kalateh, F., Attarnejad, R., 2011. Finite element simulation of acoustic cavitation in the reservoir and effects on dynamic response of concrete dams. Finite Elemments in Analysis and Design, 47(5), 543–558. https://doi.org/10.1016/j.finel.2010.12.004.
    Leger, P., Venturelli, J., Bahattacharjee, S.S., 1993. Seasonal temperature and stress distributions in concrete gravity dams, Part 1: Modeling. Canadian Journal of Civil Engineering, 20(6), 999–1017. https://doi.org/10.1139/l93-131.
    Lin, P., Wang, R.K., Li, Q.B., Yang, Q., Zhou, W.Y., 2009. Effect analysis of structural safety of typical large dams in Wenchuan 8.0 Earthquake. Chinese Journal of Rock Mechanics and Engineering, 28(6), 1261–1269 (in Chinese). https://doi.org/10.3321/j.issn:1000-6915.2009.06.023.
    Lombardi, G., 1991. Koelnbrein Dam: An unusual solution for an unusual problem. International Water Power and Dam Construction, 43(6), 31–34.
    Long, Y., Xu, S., Gao, X., 2011. A study of cantilerver reinforcement for high arch dam to resist strong earthquakes. Engineering Mechanics, 28(S1), 178–183.
    Mays, J.R., Roehm, L.H., 1991. Hydrodynamic pressure in a dam-reservoir system. Computers and Structures, 40(2), 281–291. https://doi.org/10.1016/0045-7949(91)90354-O.
    Moradloo, J., Ahmadi, M.T., Vahdani, S., 2008. Nonlinear dynamic analysis of concrete arch dam considering large displacements. In: Proceedings of the 14th World Conference on Earthquake Engineering. Beijing.
    Pan, J., Long, Y., Zhang, C., 2007. Seismic cracking of arch dams and effectiveness of strengthening by reinforcement. Journal of Hydraulic Engineering, 38(8), 926–932 (in Chinese).
    Saouma, V., Miura, F., Lebon, G., Yagome, Y., 2011. Bulletin of Earthquake Engineering, 9, 1387. https://doi.org/10.1007/s10518-011-9261-7.
    Shi, M.G., Zhong, H., Ooi, E.T., Zhang, C.H., Song, C.M., 2013. International Journal of Fracture, 183(1), 29–48. https://doi.org/10.1007/s10704-013-9873-9.
    US Army Corps of Engineers (USACE), 1994. Arch Dam Design, Engineering Manual EM 1110-2-2201. US Army Corps of Engineers, Washington, D.C.
    US Bureau of Reclamation (USBR), 1977. Design Criteria for Concrete Arch and Gravity Dams. US Bureau of Reclamation, Denver.
    Wang, H., Li, D., Chen, H., 2014. Challenge in study of ultimate capacity of high arch dams against earthquakes. Journal of Hydroelectric Engineering, 33(6), 168–180.
    Wang, J.T., Lü, D.D., Jin, F., Zhang, C.H., 2013. Earthquake damage analysis of arch dams considering dam-water-foundation interaction. Soil Dynamics and Earthquake Engineering, 49, 64–74. https://doi.org/10.1016/j.soildyn.2013.02.006.
    Wang, R.K., 2016. Key technologies in the design and construction of 300 m ultra-high arch dams. Engineering, 2(3), 350–359. https://doi.org/10.1016/J.ENG.2016.03.012.
    Westergaard, H.M., 1933. Water pressures on dams during earthquakes. Transactions of ASCE, 98(2), 418–433.
    Zhang, C.H., Jin, F., Pekau, O.A., 1995. Time domain procedure of FE-BE-IBE coupling for seismic interaction of arch dams and canyons. Earthquake Engineering and Structural Dynamics, 24(12), 1651–1666. http://doi.org/10.1002/eqe.4290241208.
    Zhang, C.H., Pan, J.W., Wang, J.T., 2009. Influence of seismic input mechanisms and radiation damping on arch dam response. Soil Dynamics and Earthquake Engineering, 29(9), 1282–1293. https://doi.org/10.1016/j.soildyn.2009.03.003.
    Zhang, C.H., Feng, J., Wang, J.T., Xu, Y.J., 2014. Seismic Safety Evaluation of Concrete Dams. Tsinghua University Press, Beijing. https://doi.org/10.1016/C2012-0-01281-1.
    Zhou, W., Lin, P., Yang, R., Yang, Q., 2008. Method and Application of Geomechanical Model Test on High Arch Dam. China Water Power Press, Beijing (in Chinese).
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