Acknowledgement
Supported by : Yildiz Technical University
References
- ANSYS AUTODYN, (2016), Swanson Analyses Systems, Ansys Inc., U.S.A.
- ANSYS Workbench, (2016), Swanson Analyses Systems, Ansys Inc., U.S.A.
- Baker, W.E. (1973), Explosions In Air, University of Texas Press, Austin, U.S.A.
- Brode, H.L. (1955), "Numerical solution of spherical blast waves", J. Appl. Phys., 26(6), 766-775. https://doi.org/10.1063/1.1722085
- Han, Y. and Liu, H. (2016), "Failure of circular tunnel in saturated soil subjected to internal blast loading", Geomech. Eng., 11(3), 521-438.
- Henrych, J. (1979), The Dynamics of Explosion and Its Use. Developments in Atmospheric Science, Elsevier Scientific Publishing Company.
- Hopkinson, B. and Cranz, C. (1915), Cube Root Scaling Law.
- IATG (2011), International Ammunition Technical Guideline, Formulae for Ammunition Management, United Nations.
- ICS 91.08.40 (2000), Requirements for Design and Construction of Reinforced Concrete Structures, Turkish Standards Institute, Ankara, Turkey.
- Karlos, V. and Solomos, G. (2013), Calculation of Blast Loads for Application to Structural Components, Administrative Arrangement No JRC 32253-2011 with DG-HOME Activity A5, Blast Simulation Technology Development.
- Kingery, C.N. and Bulmash, G. (1984), Air Blast Parameters from TNT Spherical Air Burst and Hemispherical Burst, Technical Report ARBRL-TR-02555: AD-B082 713, U.S. Army Ballistic Research Laboratory, Aberdeen Proving Ground, MD.
- Kinney, G.F. and Graham, K.J. (1985), Explosive Shocks In Air, Springer Publishing Company, Berlin, Germany.
- Lee, S.W., Choi, S.J. and Kim, J.H.J. (2016), "Analytical study of failure damage to 270,000-Kl LNG storage tank under blast loading", Comput. Concrete, 17(2), 201-204. https://doi.org/10.12989/cac.2016.17.2.201
- Mahmoud, S. (2014), "Blast load induced response and the associated damage of buildings considering SSI", Earthq. Struct., 7(3), 349-365. https://doi.org/10.12989/eas.2014.7.3.349
- Mays, G.C. and Smith P.D. (1955), Blast Effects on Buildings, 2nd Edition, American Society of Civil Engineers, London, U.K.
- Mazek, S.A. (2014), "Performance of sandwich structure strengthened by pyramid cover under blast effect", Struct. Eng. Mech., 50(4), 471-486. https://doi.org/10.12989/sem.2014.50.4.471
- Mills, C.A. (1987), "The design of concrete structures to resist explosions and weapon effects", Proceedings of the 1st International Conference on Concrete for Hazard Protections, Edinburgh, U.K.
- Nam, J.W., Yoon, I.S. and Yi, S.T. (2016), "Numerical evaluation of FRP composite retrofitted reinforced concrete wall subjected to blast load", Comput. Concrete, 17(2), 215-225. https://doi.org/10.12989/cac.2016.17.2.215
- Newmark, N.M. and Hansen, R.J. (1961), Design of Blast Resistant Structures, Shock and Vibration Handbook, Eds. Harris & Crede, McGraw-Hill, New York. U.S.A.
- Rebelo, H.M.B. (2015), Numerical Simulation of Blast Effects on Fibre Grout RC Panels, Faculdade De Ciencias E Tecnologia, Universidade Nova De Lisboa, Portugal.
- Sadovskiy, M.A. (2004), Mechanical Effects of Air Shockwaves from Explosions According to Experiments, Geophysics and Physics of Explosion, Nauka Press, Moscow, Russia.
- TSC (2007), Turkish Seismic Code, Chamber of Civil Engineers, Ankara, Turkey.
- UFC (2008), Unified Facilities Criteria: Structures to Resist the Effects of Accidental Explosions, UFC 3-340-02, Department of Defense, U.S.A.
- Wahab, M.M.A. and Mazek, S.A. (2016), "Performance of double reinforced concrete panel against blast hazard", Comput. Concrete, 18(4), 807-826. https://doi.org/10.12989/cac.2016.18.6.807
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