Have a personal or library account? Click to login
EVALUATION OF THE POUNDING FORCES DURING EARTHQUAKE USING EXPLICIT DYNAMIC TIME INTEGRATION METHOD Cover

EVALUATION OF THE POUNDING FORCES DURING EARTHQUAKE USING EXPLICIT DYNAMIC TIME INTEGRATION METHOD

Open Access
|Nov 2017

References

  1. [1] Anagnostopoulos, S. A. (1988). Pounding of buildings in series during earthquakes. Earthquake Engineering and Structural Dynamics. 16, 443-456. 10.1002/eqe.4290160311
  2. [2] Mate N. U., Bakre S. V., Jaiswal O. R. (2012). Comparative Study of Impact Simulation Models for Linear Elastic Structures in Seismic Pounding. Proceedings of the fifthteenth world conference on earthquake engineering. Lisbon, Portugal
  3. [3] Mate N. U., Bakre S. V., Jaiswal O. R. (2014). Seismic pounding of adjacent linear elastic buildings with various contact mechanisms for impact simulation. Asian journal of civil engineering. vol. 16, no. 3, 383-415
  4. [4] Jankowski R. (2004). Non-linear viscoelastic model of structural pounding. 13th World Conference on Earthquake Engineering Vancouver, Canada. Paper No. 3082
  5. [5] Mahmoud S., Jankowski R. (2011). Modified Linear Viscoelastic model of earthquake-induced structural pounding. IJST, Transactions of Civil and Environmental Engineering. Vol. 35, 51-62
  6. [6] Jankowski R. (2007). Theoretical and experimental assessment of parameters for the non-linear viscoelastic model of structural pounding. Journal of theoretical and applied mechanics. Vol. 4, 931-942
  7. [7] Jankowski R., Mahmoud S. (2015) Earthquake-Induced Structural Pounding. Switzerland: Springer International Publishing. 10.1007/978-3-319-16324-6
  8. [8] Salam S. A., Eraky A., Mottaleb H. A., Abdo A. (2015). Pounding Control of Structures Using Base Isolation. International Journal of Engineering and Innovative Technology (IJEIT). Vol. 4, Issue 9, 171-177
  9. [9] Barros R. C., Khatami S. M. (2012). Seismic Response Effect of Shear Walls in Reducing Pounding Risk of Reinforced Concrete Buildings Subjected to Near-Fault Ground Motions. Proceedings of the fifthteenth world conference on earthquake engineering. Lisbon, Portugal
  10. [10] Polycarpou P., Komodromos P. (2013) On the numerical simulation of structural pounding in three Dimensions. World Congress on Advances in Structural Engineering and Mechanics (ASEM13), Jeju, Korea
  11. [11]Yang Y. , Li S., Xie L. (2008). Research on collision of beam-type structures based on hertz-damp model , The 14 th World Conference on Earthquake Engineering, Beijing, China
  12. [12] Efraimiadou S., Hatzigeorgiou G. D., Beskos D. E. (2012). Structural pounding between adjacent buildings: The effects of different structures configurations and multiple earthquakes. Proceedings of the fifthteenth world conference on earthquake engineering. Lisbon, Portugal
  13. [13]Arpitha K, Umadewi R., (2016). Effect of seismic pounding between reinforced concrete buildings. International Journal of Latest Trends in Engineering and Technology (IJLTET). Vol. 7 issue 2, 576-583
  14. [14]Raheem S. E. A. (2006). Seismic Pounding between Adjacent Building Structures. Electronic Journal of Structural Engineering. Vol. 6, 66-74
  15. [15]Ehab M., Salem H., Mostafa H., Yehia N. (2014). Earthquake Pounding Effect on Adjacent Reinforced Concrete Buildings. International Journal of Computer Applications. Vol. 106 ,No.9, 27-34
  16. [16] Chopra A.K. (2007). Dynamics of structures. Pearson Education, [17] Goldsmith W. (1960). Impact. The Theory and physical behavior of colliding solids. London: Edward Arnold LTD
Language: English
Page range: 21 - 39
Published on: Nov 7, 2017
Published by: Technical University of Civil Engineering of Bucharest
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2017 George Bogdan Nica, Andrei Gheorghe Pricopie, published by Technical University of Civil Engineering of Bucharest
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.