Technical Papers
Dec 15, 2017

Characteristics of the Wave Loads on Coastal Low-Lying Twin-Deck Bridges

Publication: Journal of Performance of Constructed Facilities
Volume 32, Issue 1

Abstract

Failures of coastal low-lying bridges in the United States along the Gulf Coast have attracted substantial research interest. Many of the failures were associated with twin-deck bridges. This study presents a series of numerical experiments on the characteristics of the periodic wave loads on typical coastal low-lying twin-deck bridges. Firstly, a wave model using the Fourier approximation wave theory is used to represent nonlinear waves generated by a hurricane. The relaxation method is adopted for the numerical wave flume solving the Navier-Stokes (NS) equations in order to minimize the effects of wave reflection. The NS-based model is validated against laboratory measurements with good agreement. The characteristics of wave loads on a prototype coastal bridge with twin decks in the numerical wave flume are systematically studied by considering a variety of gap lengths between the twin decks. The deck gap lengths range from 1 to 40 m, covering the usual values for coastal twin bridges. Both the normalized horizontal and vertical loads on the twin decks under the prescribed conditions are analyzed in detail. Finally, a theoretical analysis of the effects of wave reflection by the landward deck on the characteristics of the wave loads for the twin bridge deck–wave interaction is presented. The results show that the wave loads on the seaward deck are larger than those on the landward deck and both the horizontal and vertical loads on the seaward deck vary as a function of the relative deck gap, the ratio of the deck gap to the wave length. The methodology of the twin bridge deck–wave interaction proposed in the current study can serve as a tool to determine the optimal gap length for a given design wave condition.

Get full access to this article

View all available purchase options and get full access to this article.

Acknowledgments

This work was supported by the NSF grants CCF-1539567 and ACI-1338051. High-performance computing resources were provided by LSU, which are highly appreciated. All the findings presented in this study are those of the authors, not necessarily representing those of the sponsors.

References

AASHTO. (2008). “Guide specifications for bridges vulnerable to coastal storms.” Washington, DC.
Afshar, M. A. (2010). “Numerical wave generation in OpenFOAM.” Master thesis, Dept. of Shipping and Marine Technology, Chalmers Univ. of Technology, Gothenburg, Sweden.
Allsop, N. W. H., and Hettiarachchi, S. S. L. (1989). “Wave reflections in harbours; the design, construction and performance of wave absorbing structures.”, Hydraulic Research, Wallingford, U.K.
ANSYS version 15.0 [Computer software]. ANSYS, Canonsburg, PA.
Bihs, H., Kamath, A., Chella, M., and Arntsen, Ø. (2016). “Breaking-wave interaction with tandem cylinders under different impact scenarios.” J. Waterway, Port, Coastal, Ocean Eng., 04016005.
Bradner, C. (2008). “Large-scale laboratory observations of wave forces on a highway bridge superstructure.” M.S. thesis, Dept. of Civil and Construction Engineering, Oregon State Univ., Corvallis, OR.
Bradner, C., Schumacher, T., Cox, D., and Higgins, C. (2011). “Experimental setup for a large-scale bridge superstructure model subjected to waves.” J. Waterway, Port, Coastal, Ocean Eng., 3–11.
Bricker, J. D., and Nakayama, A. (2014). “Contribution of trapped air, deck superelevation, and nearby structures to bridge deck failure during a tsunami.” J. Hydraul. Eng., 05014002.
Chakrabarti, A., Chen, Q., Smith, H., and Liu, D. (2016). “Large eddy simulation of unidirectional and wave flows through vegetation.” J. Eng. Mech., 04016048.
Chen, Q., Wang, L., and Zhao, H. (2009). “Hydrodynamic investigation of coastal bridge collapse during Hurricane Katrina.” J. Hydraul. Eng., 175–186.
Chen, X., Chen, Q., Zhan, J., and Liu, D. (2016). “Numerical simulations of wave propagation over a vegetated platform.” Coastal Eng., 110(Apr), 64–75.
Dean, R., and Dalrymple, R. (1991). Water wave mechanics for engineers and scientists, World Scientific Publishing Company, Singapore.
Do, T., Lindt, J., and Cox, D. (2016). “Performance-based design methodology for inundated elevated coastal structures subjected to wave load.” Eng. Struct., 117(Jun), 250–262.
Du, Q., and Leung, Y. C. D. (2011). “2D numerical simulation of ocean waves.” Proc., World Renewable Energy Congress, Marine Ocean Technology, Linköping University Electronic Press, Linköping, Sweden, 2183–2189.
Duclos, G., Josset, C., Clement, A., Gentaz, L., and Colmard, C. (2004). “Hydrodynamic efficiency of a new design of half-submerged breakwater compared to a rectangular Caisson.” J. Waterway, Port, Coastal, Ocean Eng., 127–133.
Engsig-Karup, A. (2006). “Unstructured nodal DG-FEM solution of high-order Boussinesq-type equations.” Ph.D. dissertation, Technical Univ. of Denmark, Copenhagen, Denmark.
Fenton, J. D. (1988). “The numerical solution of steady water wave problems.” Comput. Geosci., 14(3), 357–368.
Guo, A., Fang, Q., Bai, X., and Li, H. (2015). “Hydrodynamic experiment of the wave force acting on the superstructures of coastal bridges.” J. Bridge Eng., 04015012.
Guo, X., Wang, B., Liu, H., and Miao, G. (2014). “Numerical simulation of two-dimensional regular wave overtopping flows over the crest of a trapezoidal smooth impermeable sea dike.” J. Waterway, Port, Coastal, Ocean Eng., 04014006.
Huang, W., and Xiao, H. (2009). “Numerical modeling of dynamic wave force acting on Escambia Bay bridge deck during Hurricane Ivan.” J. Waterway, Port, Coastal, Ocean Eng., 135(4), 164–175.
Kennedy, A., Gravois, U., and Brian, Z. (2011). “Observations of landfalling wave spectra during Hurricane Ike.” J. Waterway, Port, Coastal, Ocean Eng., 142–145.
Lee, W., McLaughlin, P., and Kaihatu, J. (2016). “Parameterization of maximum significant wave heights in coastal regions due to Hurricanes.” J. Waterway, Port, Coastal, Ocean Eng., 04016016.
Lehrman, J., Higgins, C., and Cox, D. (2012). “Performance of highway bridge girder anchorages under simulated hurricane wave induced loads.” J. Bridge Eng., 259–271.
Liu, C., Huang, Z., and Tan, S. (2009). “Nonlinear scattering of non-breaking waves by a submerged horizontal plate: Experiments and simulations.” Ocean Eng., 36(17–18), 1332–1345.
Mansard, E., and Funke, E. (1980). “The measurement of incident and reflected spectra using a least squares method.” 17th Int. Conf. on Coastal Engineering, ASCE, Reston, VA, 154–172.
Menter, F. R. (1994). “Two-equation eddy-viscosity turbulence models for engineering applications.” AIAA J., 32(8), 1598–1605.
Okeil, A. M., and Cai, C. S. (2008). “Survey of short- and medium-span bridge damage induced by Hurricane Katrina.” J. Bridge Eng., 377–387.
Padgett, J., DesRoches, R., Nielson, B., Yashinsky, M., Kwon, O., Burdette, N., and Tavera, E. (2008). “Bridge damage and repair costs from Hurricane Katrina.” J. Bridge Eng., 6–14.
Patarapanich, M., and Cheong, H. (1989). “Reflection and transmission characteristics of regular and random waves from a submerged horizontal plate.” Coastal Eng., 13(2), 161–182.
Robertson, I. N., Riggs, H. R., Yim, S. C. S., and Young, Y. L. (2007). “Lessons from Hurricane Katrina storm surge on bridges and buildings.” J. Waterway, Port, Coastal, Ocean Eng., 463–483.
Seelig, W. N., and Ahrens, J. T. (1981). “Estimation of wave reflection and energy dissipation coefficients for beaches, revetments and breakwaters.”, U.S. Army Corps of Engineers, Vicksburg, MS.
Sheppard, D. M., and Marin, J. (2009). “Wave loading on bridge decks.”, Florida Dept. of Transportation, Gainesville, FL.
Verduzco-Zapata, M. G., Ocampo-Torres, F. J., Osuna, P., Pares-Sierra, A. F., and Kawasaki, K. (2012). “Practical estimation of wave transmission and reflection from fixed submerged structures.” Ocean Eng., 45(May), 63–74.
Wu, J., Wan, Z., and Fang, Y. (1998). “Wave reflection by a vertical wall with a horizontal submerged porous plate.” Ocean Eng., 25(9), 767–779.
Xiao, H., Huang, W., and Chen, Q. (2010). “Effects of submersion depth on wave uplift force acting on Biloxi Bay Bridge decks during Hurricane Katrina.” Comput. Fluids, 39(8), 1390–1400.
Xu, G., and Cai, C. S. (2015). “Numerical simulations of lateral restraining stiffness effect on bridge deck–wave interaction under solitary waves.” Eng. Struct., 101(Oct), 337–351.
Xu, G., and Cai, C. S. (2017). “Numerical investigation of the lateral restraining stiffness effect on the bridge deck–wave interaction under Stokes waves.” Eng. Struct., 130(Jan), 112–123.
Xu, G., Cai, C. S., and Han, Y. (2015). “Investigating the characteristics of the solitary wave induced forces on coastal twin bridge decks.” J. Perform. Constr. Facil., 04015076.
Xu, G., Cai, C. S., and Deng, L. (2017). “Numerical prediction of solitary wave forces on a typical coastal bridge deck with girders.” Struct. Infrastruct. Eng., 254–272.
Zheng, Y. H., Liu, P. F., Shen, Y. M., Wu, B. J., and Sheng, S. W. (2007). “On the radiation and diffraction of linear water waves by an infinitely long rectangular structure submerged in oblique seas.” Ocean Eng., 34(3–4), 436–450.

Information & Authors

Information

Published In

Go to Journal of Performance of Constructed Facilities
Journal of Performance of Constructed Facilities
Volume 32Issue 1February 2018

History

Received: Feb 25, 2017
Accepted: Aug 16, 2017
Published online: Dec 15, 2017
Published in print: Feb 1, 2018
Discussion open until: May 15, 2018

Permissions

Request permissions for this article.

Authors

Affiliations

Post-Doctoral Research Associate, NatHaz Modeling Laboratory, Univ. of Notre Dame, Notre Dame, IN 46556; formerly, Research Assistant, Center for Computation and Technology, Louisiana State Univ., Baton Rouge, LA 70803 (corresponding author). ORCID: https://orcid.org/0000-0001-9761-2326. E-mail: [email protected]; [email protected]
Qin Chen, M.ASCE [email protected]
Professor, Dept. of Civil and Environmental Engineering, Center for Computation and Technology, Louisiana State Univ., Baton Rouge, LA 70803. E-mail: [email protected]
Post-Doctoral Researcher, Dept. of Civil and Environmental Engineering, Louisiana State Univ., Baton Rouge, LA 70803. E-mail: [email protected]
Agnimitro Chakrabarti [email protected]
Post-Doctoral Researcher, Dept. of Chemical Engineering, Louisiana State Univ., Baton Rouge, LA 70803. E-mail: [email protected]

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share