PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Parametric analysis of the whole loading process of translation-torsion coupled vibration characteristics of the multi-layer bi-directional eccentric frame structure

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Earthquake investigations confirm that irregular structures suffer more damage than their symmetric counterparts. The vibration mode of irregular structures is affected by the cou- pling of lateral and torsional vibration characteristics. The analysis of the lateral-torsional coupling effect is mainly limited to unidirectional eccentric structure or single-layer eccentric design. To fill this gap, this paper presents a parametric study of the whole loading pro- cess, exploring lateral-torsional coupling vibration characteristics of multi-layer bi-directional eccentric structures. The performed nonlinear static analysis revealed that the natural fre- quency of eccentric frames with different layers exhibited a general pattern with a three-stage evolution from elastic to elastic-plastic stages. Accordingly, three different elastic-plastic de- velopment stages of parametric analysis were defined. The effects of the uncoupled torsion-to- -lateral frequency ratios Ω and stiffness eccentricities on the translation-torsion coupled vi- bration characteristics in the above three stages were simulated via self-compiled programs on the MATLAB platform. The results obtained show that the range of Ω controlling the vibration characteristics was related to the eccentricities. Therefore, it was proposed to set different limit values of Ω in designing and analyzing the structures with different bi- directional eccentric degrees. At Ω = 1.1 ∼ 1.2, the coupling effect between bi-directional eccentricities led to transformation between the first- and second-order vibration modes, while the direction with the lowest lateral stiffness could not be directly judged as the structure first-order principal vibration direction. In the third stage, when the bi-directional eccentricities reached or even exceeded 0.3, the second and third modes transformed into each other.
Rocznik
Strony
479--494
Opis fizyczny
Bibliogr. 25 poz., rys., tab.
Twórcy
autor
  • School of Civil Engineering and Communication, North China University of Water Resources and Electric Power, Zhengzhou, China
autor
  • Renhe Design Engineering Group Co., Ltd., Zhengzhou, China
Bibliografia
  • 1. Alaa K.M., El-Kashif K.F., Salem H.M., 2022, New definition for torsional irregularity based on floor rotations of reinforced concrete buildings, Journal of Engineering and Applied Science, 69, 1, 1-35.
  • 2. Chopra A.K., 2006, Dynamics of Structures: Theory and Applications to Earthquake Engineering (in Chinese), translated by Xie L.L., Lv D.G., Beijing, Higher Education Press, 2nd Ed.
  • 3. Duan X.N., Chandler A.M., 1993, Inelastic seismic response of code-designed multistorey frame buildings with regular asymmetry, Earthquake Engineering and Structural Dynamics, 22, 431-445.
  • 4. Gao D.Y., 1988, Simplified calculation on cross-section moment and curvature of rectangular cross-section member, Journal of Zhengzhou University, Engineering Science, 9, 1, 9-17.
  • 5. GB 50009-2012, 2012, Load Code for the Design of Building Structures (in Chinese), Beijing, China Architecture and Building Press.
  • 6. GB 50011-2010, 2016, Code for Seismic Design of Buildings (2016 Edition) (in Chinese), Beijing, China Architecture and Building Press.
  • 7. Georgoussis G.K., Mamou A., 2018, The effect of mass eccentricity on the torsional response of building structures, Structural Engineering and Mechanics, 67, 6, 671-682.
  • 8. Halabian A.M., Birzhandi M.S., 2014, Inelastic response of bi-eccentric-plan asymmetric reinforced concrete buildings, Proceedings of the Institution of Civil Engineers, Structures and Buildings, 167, 8, 469-485.
  • 9. He Z., Ou J.P., 2007, Non-Linear Analysis of Reinforced Concrete Structure (in Chinese), Harbin, Harbin Institute of Technology Press.
  • 10. JGJ 3-2010, 2011, Technical Specification for Concrete Structures of a Tall Building (in Chinese), Beijing, China Architecture and Building Press.
  • 11. Jiang X.L., Kuang Y.P., 2016, Inelastic parametric analysis of two-way asymmetrical multi-storey buildings, Advances in Structural Engineering, 19, 5, 806-824.
  • 12. Kewalramani M.A., Syed Z.I., 2020, Seismic analysis of torsional irregularity in multi-storey symmetric and asymmetric buildings, Eurasian Journal of Analytical Chemistry, 13, 3, 286-292.
  • 13. Khanal B., Chaulagain H., 2020, Study of seismic response demands of different L-shaped buildings, Himalayan Journal of Applied Science and Engineering, 1, 1, 22-29.
  • 14. Kuang Y.P., Jiang X.L., Jiang N., 2018, Inelastic parametric analysis of seismic responses of multistorey bidirectional eccentric structure, Shock and Vibration, 1-20.
  • 15. Li H.N., Yin Z.Q., 1988, Torsionally coupled response of eccentric structures to multi-dimensional ground motions (in Chinese), Journal of Earthquake Engineering and Engineering Vibration, 8, 4, 45-53.
  • 16. Raheem S.A., Ahmed M.M., Ahmed M.M., Abdel-Shafy A.G.A., 2018a, Evaluation of plan configuration irregularity effects on seismic response demands of L-shaped MRF buildings, Bulletin of Earthquake Engineering, 16, 3845-3869.
  • 17. Raheem S.A., Ahmed M.M., Ahmed M.M., Abdel-Shafy A.G.A., 2018b, Seismic performance of L-shaped multi-storey buildings with moment-resisting frames, Proceedings of the Institution of Civil Engineers, Structures and Buildings, 171, 5, 395-408.
  • 18. Raheem S.A., Omar M., Zaher A.A., Taha A., 2018c, Effects of numerical modeling simplification on seismic design of buildings, Coupled Systems Mechanics, 7, 6, 731-753.
  • 19. Rashidi A., Majid T.A., Fadzli M.N., Faisal A., Noor S.M., 2017, A comprehensive study on the influence of strength and stiffness eccentricities to the on-plan rotation of asymmetric structure, AIP Conference Proceedings, 1892, 1, 120013.
  • 20. Sadashiva V.K., MacRae G.A., Deam B.L., 2012, Seismic response of structures with coupled vertical stiffness-strength irregularities, Earthquake Engineering and Structural Dynamics, 41, 1, 119-138.
  • 21. Sneha K.K., Durgaprasad J., 2022, An investigation of coefficient of torsional irregularity for irregular buildings in plan, Lecture Notes in Civil Engineering, 162, 637-656.
  • 22. Stathopoulos K.G., Anagnostopoulos S.A., 2003, Inelastic earthquake response of single-story asymmetric buildings: an assessment of simplified shear-beam models, Earthquake Engineering and Structural Dynamics, 32, 12, 1813-1831.
  • 23. Stathopoulos K.G., Anagnostopoulos S.A., 2005, Inelastic torsion of multistorey buildings under earthquake excitations, Earthquake Engineering and Structural Dynamics, 34, 12, 1449-1465.
  • 24. Wu R.F., Cai X.H., Qu N.S., 1999, Study on inelastic torsional coupled seismic response of multi-story and high-rise buildings (in Chinese), Journal of Dalian University of Technology, 39, 4, 471-477.
  • 25. Yang S.R., Zhang S.Y., 1988, Perturbation solutions of elastic earthquake response of a class of torsionally coupled multi-storey buildings, Earthquake Engineering and Engineering Vibration, 8, 2, 68-78.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ef7d8481-2479-406a-a46d-c1425f96fd9f
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.