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Wind-induced dynamic response and its load estimation for structural frames of single-layer latticed domes with long spans

  • Received : 2002.01.16
  • Accepted : 2002.03.22
  • Published : 2002.12.25

Abstract

The main purpose of this study is to discuss the design wind loads for the structural frames of single-layer latticed domes with long spans. First, wind pressures are measured simultaneously at many points on dome models in a wind tunnel. Then, the dynamic response of several models is analyzed in the time domain, using the pressure data obtained from the wind tunnel experiment. The nodal displacements and the resultant member stresses are computed at each time step. The results indicate that the dome's dynamic response is generally dominated by such vibration modes that contribute to the static response significantly. Furthermore, the dynamic response is found to be almost quasi-static. Then, a series of quasi-static analyses, in which the inertia and damping terms are neglected, is made for a wide range of the dome's geometry. Based on the results, a discussion is made of the design wind load. It is found that a gust effect factor approach can be used for the load estimation. Finally, an empirical formula for the gust effect factor and a simple model of the pressure coefficient distribution are provided.

Keywords

References

  1. Architectural Institute of Japan (1993), Recommendations for Loads on Buildings (in Japanese; the English version was published in 1996).
  2. Davenport, A.G., Surry, D. and Stathopoulos, T. (1977), "Wind loads on low-rise buildings: final report of phase I and II", Engineering Science Report BLWT-SS8, University of Western Ontario.
  3. Davenport, A.G. and Surry, D. (1984), "Turbulent wind forces on a large span roof and their representation by equivalent static loads", Canadian J. Civ. Eng., 11, 955-966. https://doi.org/10.1139/l84-110
  4. Jeong, S.-H., Bienkiewics, B. and Ham, H.-J. (2000), "Proper orthogonal decomposition of building wind pressure specified at non-uniformly distributed pressure taps", J. Wind Eng. Ind. Aerod., 87, 1-14. https://doi.org/10.1016/S0167-6105(00)00012-X
  5. Fukushi, M., Kikuchi, M., Uematsu, Y. and Yamada, M. (1991), "Characteristics of the wind loads on spherical domes - Part 1 Time-averaged wind pressure -", Summaries of Technical Papers of Annual Meeting, Architectural Institute of Japan, Structures I, 191-192 (in Japanese).
  6. Hongo, T. (1995), "Experimental study of wind forces on spherical roofs", Ph.D. Thesis, Tohoku University, (in Japanese).
  7. Letchford, C.W. and Sarkar, P.P. (2000), "Mean and fluctuating wind loads on rough and smooth parabolic domes", J. Wind Eng. Ind. Aerod., 88, 101-117. https://doi.org/10.1016/S0167-6105(00)00030-1
  8. Liu, J., Xue, S. and Yamada, M. (1996), "Comparison between experimental result and numerical analysis for dynamic response of a single-layer latticed dome", Proceedings of Asia-Pacific Conference on Shell and Spatial Structures, Beijing, P.R. China, 668-673.
  9. Mataki, Y., Iwasa, Y., Fukao, Y. and Okada, A. (1988), "Wind induced response of low-profile cable-reinforced, air-supported structures", J. Wind Eng. Ind. Aerod., 29, 253-262. https://doi.org/10.1016/0167-6105(88)90163-8
  10. Nakayama, M., Sasaki, Y., Masuda, K. and Ogawa, T. (1998), "An efficient method for selection of vibration modes contributory to wind response on dome-like roofs", J. Wind Eng. Ind. Aerod., 73, 31-44. https://doi.org/10.1016/S0167-6105(97)00277-8
  11. Ogawa, T., Nakayama, M. and Murayama, S. (1988), "Characteristics of wind pressure on spherical domes in turbulent boundary layers", Proceedings of the 10th National Symposium on Wind Engineering, Tokyo, Japan, 55-60 (in Japanese).
  12. Ogawa, T., Nakayama, M. and Murayama, S. (1989), "Characteristics of wind pressure on spherical domes and response of domes in turbulent flow", J. Struct. Constr. Eng., Architectural Institute of Japan, 404, 95-102 (in Japanese).
  13. Suzuki, Y., Kiya, M., Sampo, T. and Naka, Y. (1987), "Pressure fluctuations on the surface of a hemisphere immersed in a thick turbulent boundary layer", J. Fluid Eng., Transaction of the ASME, 109, 130-135. https://doi.org/10.1115/1.3242632
  14. Taniguchi, T., Taniike, Y. and Nishimura, H. (1996), "POD analysis with weighted-area and time-lag for pressures on spherical roof ", Proceedings of the 14th National Symposium on Wind Engineering, Tokyo, Japan, 323-328 (in Japanese).
  15. Uematsu, Y., Yamada, M. and Fukushi, M. (1994), "Structural characteristics and wind-induced dynamic behavior of a long-span spherical dome", Interactions of Fluids, Structures and Mechanics, Proceedings of 12th Symposium on Engineering Applications of Mechanics, Montreal, Canada, 127-136.
  16. Uematsu, Y., Yamada, M., Inoue, A. and Hongo, T. (1997), "Wind loads and wind-induced dynamic behavior of a single-layer latticed dome", J. Wind Eng. Ind. Aerod., 66, 227-248. https://doi.org/10.1016/S0167-6105(97)00133-5
  17. Uematsu, Y., Kuribara, O., Yamada, M. and Hongo, T. (2001a), "Wind-induced dynamic response of a singlelayer latticed dome", Proceedings of International Symposium on Theory, Design and Realization of Shell and Spatial Structures, Nagoya, Japan (CD-ROM).
  18. Uematsu, Y., Sone, T., Kuribara, O. and Yamada, M. (2001b), "Wind-induced dynamic response and its load estimation of an elliptic dome", Proceedings of International Symposium on Theory, Design and Realization of Shell and Spatial Structures, Nagoya, Japan (CD-ROM).
  19. Uematsu, Y. and Yamada, M. (2002a), "Wind-induced dynamic response and its load estimation for structural frames of circular flat roofs with long spans", Wind Struct., An Int. J., 5(1), 49-60. https://doi.org/10.12989/was.2002.5.1.049
  20. Uematsu, Y., Kuribara, O., Yamada, M., Sasaki, A. and Hongo, T. (2002b), "Wind-induced dynamic behavior and its load estimation of a single-layer latticed dome with a long span", J. Wind Eng. Ind. Aerod., 89, 1671- 1687.
  21. Yamada, M. (1984), "An approximation on the buckling analysis of orthogonally stiffened and framed spherical shells under external pressure", Shell and Spatial Structures Engineering, Pentech Press, London, 177-193.
  22. Yamada, M. and Ishikawa, T. (1987), "Buckling of rigidly jointed single layer latticed spherical shells under external pressure", Proceedings of the International Colloquium on Space Structures for Sports Buildings, Beijing, China, 353-360.

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