Have a personal or library account? Click to login
TECHNICAL CONDITIONS OF THE UNIQUE STRUCTURE OF INVERTED SIPHON – HISTORY & PRESENT Cover

TECHNICAL CONDITIONS OF THE UNIQUE STRUCTURE OF INVERTED SIPHON – HISTORY & PRESENT

By: Jacek HULIMKA and  Marta KAŁUŻA  
Open Access
|Oct 2019

References

  1. Mangus, A. (2014). Orthotropic Steel Decks. In: Superstructure Design. Bridge Engineering Handbook. Second Edition. Edited by Wai-Fah Chen and Lian Duan. CRC Press, Taylor & Francis Group, 589–645.
  2. Eckoldt, M. (1998). Rivers and channels. The history of the German waterways (Flüsse und Kanäle. Die Geschichte der deutschen Wasserstraßen) Hamburg: DSV-Verlag.
  3. Lavis, F. (1915). Building the New Rapid Transit System of New York City. New York: Hill Publishing Co.
  4. Stene, E. A. (1996). Yuma Project and Yuma Auxiliary Project. Bureau of Reclamation.
  5. Breen, J. J. (2017). Winchester Culvert: Location. Towpath topics. 55(2).
  6. Green, M. G. (1994). Construction of the San Antonio, Texas, Flood Control Tunnels. Environmental & Engineering Geosciences. XXXI(1), 15–31.
  7. Fu, H., Yang, K., Guo, X., Guo, Y. & Wang, T. (2015). Safe operation of inverted siphon during ice period. Journal of Hydrodynamics. 27(2), 204–209.
  8. Ettema, R., Kirkil, G. & Day, S. (2009). Frazil ice concerns for channel, pump-lines, penstocks, and tunnels in mountainous regions. Cold Regions Science and Technology. 55, 2002-2011.
  9. Chen, S. H. (2015). Irrigation and Drainage Works. In: Hydraulic Structures. Springer, Berlin, Heidelberg.
  10. Al-Husseini, T. R. (2008). Optimum hydraulic design for inverted siphon. Al-Qadisiya Journal for Engineering Science. 1(1), 46–59.
  11. Aisenbrey, A. J., et al., (1974). Design of small canal structures. Denver, Colorado, USA.
  12. Smith, N. A. F. (1976). Attitudes to Roman Engineering and the question of the Inverted Siphon. History of Technology, I, 45–71, London.
  13. Urbaniak, M. (2015). Hydrotechnical engineering works in Poland. Upper Silesian Canal (Dzieła hydrotechniki w Polsce. Kanał Górnośląski (Gliwicki)). Lodz: Publishing House Michał Kolinski.
  14. Tołkacz, L. (2010). Water transport infrastructure. Vol. 1: Infrastructure of inland transport (orig. Infrastruktura transportu wodnego. Tom I. Infrastruktura transportu śródlądowego). Szczecin (www.zbc.ksiaznica.szczecin.pl).
  15. Szling, Z., Winter, J. (1988). Inland waterways (Drogi wodne śródlądowe). Wroclaw: Publishing House of Wroclaw University of Science and Technology.
  16. www.kanalgliwicki.net/inne_obiekty/syfon/syfon.htm
  17. EN 12504-2:2001, Testing concrete in structures - Part 2: Non-destructive testing – Determination of rebound number.
  18. Claisse, P. (2016) Assessment of concrete structures. In: Civil Engineering Materials. Butterworth-Heinemann.
  19. Balayssac, J-P., Garnier, V., (2018), Non-destructive Testing and Evaluation of Civil Engineering Structures. ISTE Press – Elsevier.
  20. EN 12504-1:2009, Testing concrete in structures – Part 1: Cored specimens – Taking, examining and testing in compression.
  21. Liu, J., Xing, F., Dong, B., Ma, H. & Pan, D. (2014). Study of Surface Permeability of Concrete under Immersion. Materials, 7, 876–886.
  22. EN 206-1:2000/A-2:2005, Concrete – specification, performance, production and conformity.
DOI: https://doi.org/10.21307/acee-2019-039 | Journal eISSN: 2720-6947 | Journal ISSN: 1899-0142
Language: English
Page range: 93 - 104
Submitted on: Jul 3, 2018
|
Accepted on: Jul 22, 2019
|
Published on: Oct 18, 2019
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 Jacek HULIMKA, Marta KAŁUŻA, published by Silesian University of Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.