DOI QR코드

DOI QR Code

Effect of beam slope on the static aerodynamic response of edge-girder bridge-deck

  • Lee, Hoyeop (School of Civil, Environmental and Architectural Engineering, Korea University) ;
  • Moon, Jiho (Department of Civil Engineering, Kangwon National University) ;
  • Chun, Nakhyun (School of Civil, Environmental and Architectural Engineering, Korea University) ;
  • Lee, Hak-eun (School of Civil, Environmental and Architectural Engineering, Korea University)
  • Received : 2017.01.13
  • Accepted : 2017.07.10
  • Published : 2017.08.25

Abstract

2-edge box girder bridges have been widely used in civil engineering practice. However, these bridges show weakness in aerodynamic stability. To overcome this weakness, additional attachments, such as fairing and flap, are usually used. These additional attachments can increase the cost and decrease the constructability. Some previous researchers suggested an aerodynamically stabilized 2-edge box girder section, giving a slope to the edge box instead of installing additional attachments. However, their studies are limited to only dynamic stability, even though static aerodynamic coefficients are as important as dynamic stability. In this study, focus was given to the evaluation of static aerodynamic response for a stabilized 2-edge box girder section. For this, the slopes of the edge box were varied from $0^{\circ}$ to $17^{\circ}$ and static coefficients were obtained through a series of wind tunnel tests. The results were then compared with those from computational fluid dynamics (CFD) analysis. From the results, it was found that the drag coefficients generally decreased with the increasing box slope angle, except for the specific box slope range. This range of box slope varied depending on the B/H ratio, and this should be avoided for the practical design of such a bridge, since it results in poor static aerodynamic response.

Keywords

References

  1. ANSYS Inc. (2016), ANSYS Fluent User's Guide, Release 17.1.
  2. Bruno, L., Khris, S. and Marcillat, J. (2001), "Numerical simulation of the effect of section details and partial streamlining on the aerodynamics of bridge decks", Wind Struct., 4(4), 315-332. https://doi.org/10.12989/was.2001.4.4.315
  3. Daito, Y., Matsumoto, M. and Araki, K. (2002), "Torsional flutter mechanism of two-edge girders for long-span cable-stayed bridge", J. Wind. Eng. Ind. Aerod., 90, 2127-2141. https://doi.org/10.1016/S0167-6105(02)00329-X
  4. Daito, Y., Matsumoto, M. and Takeuchi, T. (2004), "Aerodynamic stabilization for geometrical girder shape of tow edge girder of long span cable stayed bridges", Proceedings of the 18th National Symposium on Wind Engineering, Tokyo, Japan, July.
  5. Fransos, D. and Bruno, L. (2010), "Edge degree-of-sharpness and free-stream turbulence scale effects on the aerodynamics of a bridge deck", J. Wind. Eng. Ind. Aerod., 98, 661-671. https://doi.org/10.1016/j.jweia.2010.06.008
  6. Haque, M.N., Katsuchi, H., Yamada, H. and Nishio, M. (2016), "Investigation of edge fairing shaping effects on aerodynamic response of long-span bridge deck by unsteady RANS", Arch. Civil Mech. Eng., 16, 888-900. https://doi.org/10.1016/j.acme.2016.06.007
  7. Ito, M. (1996) "Cable-supported steel bridges: design problem and solutions", J. Construct. Steel Res., 39(1), 69-84. https://doi.org/10.1016/0143-974X(96)00026-0
  8. Larsen, A. and Wall, A. (2012), "Shaping of bridge box girders to avoid vortex shedding response", J. Wind. Eng. Ind. Aerod., 104-106, 156-165.
  9. Latif Attia, W.A. and Aziz Ahmed, A.A. (2016), "Aeroelastic Investigation of Long Span Suspension Bridge Decks by Numerical CFD and FSI Analyses", Civil Environ.Res., 8(7), 81-90.
  10. Matsumoto, M., Shirato, H. and Yagi, T. (2000), "Recent topics on bridge aerodynamics", Wind Struct., 3(4), 267-277. https://doi.org/10.12989/was.2000.3.4.267
  11. Miyata, T. (2003), "Historical view of long-span bridge aerodynamics", J. Wind. Eng. Ind. Aerod., 91, 1393-1410. https://doi.org/10.1016/j.jweia.2003.09.033
  12. Mstsumoto, M., Nakajima, N., Taniwaki, Y. and Shijo, R. (2001), "Grating effect on flutter instability", J. Wind. Eng. Ind. Aerod., 89, 1487-1497. https://doi.org/10.1016/S0167-6105(01)00143-X
  13. Ricciardelli, F. and Hangan, H. (2001), "Pressure distribution and aerodynamic forces on stationary box bridge sections", Wind Struct., 4(5), 399-412. https://doi.org/10.12989/was.2001.4.5.399
  14. Sakai, Y., Ogawa, K., Shimodoi, H. and Saitoh, T. (1993), "An experimental study on aerodynamic improvements for edge girder bridge", J. Wind. Eng. Ind. Aerod., 49, 459-466. https://doi.org/10.1016/0167-6105(93)90040-U
  15. Salim, S.M. and Cheah, S.C. (2009), "Wall y+ strategy for dealing with wall-bounded turbulent flows", Proceedings of the International MultiConference of Engineers and Computer Scientists, Hong Kong, March.
  16. Simiu, E. and Scanlan, R.H. (1996), Wind Effects on Structures, 3rd Ed., John Wiley and Sons, Inc.
  17. Vaz, D.C., Almeida, R.A.B., Didier, E., Urgueira, A.P.V. and Borges, A.R. Janeiro (2016), "Improving the aerodynamic performance of Vila-Real Bridge deck-section", J. Wind. Eng. Ind. Aerod., 156, 72-83. https://doi.org/10.1016/j.jweia.2016.07.002
  18. Watanabe, S. and Fumoto, K. (2008), "Aerodynamic study of slotted box girder using computational fluid dynamics", J. Wind. Eng. Ind. Aerod., 96, 1885-1894. https://doi.org/10.1016/j.jweia.2008.02.056

Cited by

  1. Static Wind Load Evaluation under Steady-State Wind Flow for 2-Edge Sloped Box Girder by Using Wind Tunnel Test vol.2019, pp.None, 2017, https://doi.org/10.1155/2019/9397527
  2. Fluid-structure interaction of a tensile fabric structure subjected to different wind speeds vol.31, pp.6, 2017, https://doi.org/10.12989/was.2020.31.6.533