Khalifa M.A., Hodhod O.A., Zaki M.A.: Analysis and design methodology for an FRP cable-stayed pedestrian bridge. Composites: Part B-Engineering, 27, 3-4, 1996, 307-317
Google Scholar
Aref A.J., Kitane Y., Lee G.C.: Analysis of hybrid FRP-concrete multi-cell bridge superstructure. Composite Structures, 69, 3, 2005, 346-359
Google Scholar
Tromp L.: Composite footbridges and vacuum infusion. A 44 m footbridge for Delft. Proceedings of 3rd International Conference FOOTBRIDGE 2008, 1-7
Google Scholar
Chróścielewski J., Kreja I., Sabik A., Sobczyk B., Witkowski W.: Failure analysis of footbridge made of composite materials. Proceedings of 10th SSTA Conference, Gdańsk, Poland, 16-18 Oct. 2013, CRC Press, Taylor & Francis Group, Balkema, 2013, 389-392
Google Scholar
Santos F.M., Mohan M.: Train Buffeting Measurements on a Fibre-Reinforced Plastic Composite Footbridge. Structural Engineering International, 21, 3, 2011, 285-289
Google Scholar
Flaga A.: Mosty dla pieszych. WKŁ, Warszawa, 2011
Google Scholar
Poneta P., Kulpa M., Własak L., Siwowski T.: Koncepcja i badania innowacyjnego dźwigara mostowego z kompozytów FRP. Inżynieria i Budownictwo, 70, 3, 2014, 147-151
Google Scholar
Radomski W.: Nowoczesne rozwiązania materiałowe i konstrukcyjne w mostownictwie, w: Kładki dla pieszych – Architektura, projektowanie, realizacja, badania. Dolnośląskie Wydawnictwo Edukacyjne, Wrocław, 2007, 89-100
Google Scholar
Zobel H., Karwowski W., Żółtowski K., Kozakiewicz A.: Badania kratownicowej kładki z kompozytu polimerowego zbrojonego włóknem szklanym. Inżynieria i Budownictwo, 61, 4, 2005, 202-206
Google Scholar
Technical guide. Footbridges. Assessment of vibrational behaviour of footbridges under pedestrian loading. Setra/AFGC, Paris, France, 2006
Google Scholar
Madaj A., Sturzbecher K., Wołowicki W.: Badania dynamiczne kładki dla pieszych o pomoście kompozytowym. Inżynieria i Budownictwo, 65, 1-2, 2009, 85-88
Google Scholar
Design of Footbridges. Guideline. RFS2-CT-2007-00033, 2008
Google Scholar
PN-85/S-10030. Bridge objects. Loads [in Polish]
Google Scholar
PN-82/S-10052. Bridge objects. Steel structures. Design [in Polish]
Google Scholar
Camanho P.P.: Failure criteria for fibre-reinforced polymer composites. Secçăo de Mecânica Aplicada, Departamento de Engenharia Mecânica e Gestăo Industrial, Faculdade de Engenharia da Universidade do Porto, 2002
Google Scholar
Soden P.D., Kaddour A.S., Hinton M.J.: Recommendations for designers and researchers resulting from the world-wide failure exercise. Composites Science and Technology, 64, 3-4, 2004, 589-604
Google Scholar
Jones R.M.: Mechanics of composite materials. 2nd Edn., Taylor & Francs, USA, 1999
Google Scholar
Hahn H.T., Tsai S.W.: Introduction to composite materials. Technomic Publishing Co., Lancaster, USA, 1980
Google Scholar
Wu R.Y., Stachurski Z.: Evaluation of the normal stress interaction parameter in the tensor polynomial strength theory for anisotropic material. Journal of Composite Materials, 18, 1984, 456-463
Google Scholar
PN-EN 13121-3+A1:2010E. Ground containers made of plastics reinforced with glass fibre. Part 3. Design and production control [in Polish], 2010
Google Scholar
Królikowski W.: Polimerowe kompozyty konstrukcyjne. PWN, Warszawa, 2012
Google Scholar
Chroscielewski J., Klasztorny M., Miśkiewicz M., Romanowski R., Wilde K.: Innovative design of GFRP sandwich footbridge. Proceedings of Int. Conf. Footbridges: Past, Present & Future FOOTBRIDGE-2014, 16-18 July 2014, London, England
Google Scholar