With the increasing threat of terrorism and the rapid development of technology , the probability of accidental explosions such as incident blasts, mine explosions and terrorist attacks ha s increased. So, protecting important structures against terroristic attacks is a very important topic as terrorist attacks have increased and developed a lot these days especially using blast loads. This study is Carried out to cover the historical background and extensive literature review of the available previous research works focusing on the blast environment characteristics, fundamentals of blast loading and description of the methods used to predict blast loadings. Moreover, the research also covers a literature review on the response of structures subjected to blast loads and material behavior considering high strain rates. Hence blast loading effects can be predicted and utilized in improving the design of important structures.
Sandhu, I.S., Sharma, A., Singh, M.K., Kumari, R., Alegaonkar, P.S. and Saroha, D. (2017) Study of Blast Wave Pressure Modification through Rubber Foam. Procedia Engineering, 173, 570-576. https://doi.org/10.1016/j.proeng.2016.12.099
Wu, C. (2012) Research Development on Protection of Structures against Blast Loading at University of Adelaide. Australian Journal of Structural Engineering, 13, 97-107.
Hajek, R., Foglar, M. and Fladr, J. (2016) Influence of Barrier Material and Barrier Shape on Blast Wave Mitigation. Construction and Building Materials, 120, 54-64. https://doi.org/10.1016/j.conbuildmat.2016.05.078
Berger, S., Ben-Dor, G. and Sadot, O. (2015) Experimental and Numerical Investigations of Shock-Wave Attenuation by Geometrical Means: A Single Barrier Configuration. European Journal of Mechanics-B/Fluids, 50, 60-70. https://doi.org/10.1016/j.euromechflu.2014.11.006
éveillard, S., Lardjane, N., Vincont, J.-Y. and Sochet, I. (2013) Towards a Fast-Running Method for Blast-Wave Mitigation by a Prismatic Blast Wall. Comptes Rendus Mécanique, 341, 625-635. https://doi.org/10.1016/j.crme.2013.06.004
Zhu, F., Zhao, L., Lu, G. and Wang, Z. (2008) Structural Response and Energy Absorption of Sandwich Panels with an Aluminium Foam Core under Blast Loading. Advances in Structural Engineering, 11, 525-536. https://doi.org/10.1260/136943308786412005
Li, S., Wang, Z., Wu, G., Zhao, L. and Li, X. (2014) Dynamic Response of Sandwich Spherical Shell with Graded Metallic Foam Cores Subjected to Blast Loading. Composites Part A: Applied Science and Manufacturing, 56, 262-271. https://doi.org/10.1016/j.compositesa.2013.10.019
Ismail, M.F., Jumahat, A., Abdullah, B., Hashim, U.R. and Aseri, S.E.A. (2015) Investigation on Energy Absorption of Aluminium Foam-CFRP Sandwich Panel Subjected to Impact Loading. Jurnal Teknologi (Sciences & Engineering), 75, 113-116. https://doi.org/10.11113/jt.v75.5226
Aghdamy, S., Wu, C. and Griffith, M. (2013) Simulation of Retrofitted Unreinforced Concrete Masonry Unit Walls under Blast Loading. International Journal of Protective Structures, 4, 21-44. https://doi.org/10.1260/2041-4196.4.1.21
Xia, Y., Wu, C., Zhang, F., Li, Z.-X. and Bennett, T. (2014) Numerical Analysis of foam-Protected RC Members under Blast Loads. International Journal of Protective Structures, 5, 367-390. https://doi.org/10.1260/2041-4196.5.4.367
Montanini, R. (2005) Measurement of Strain Rate Sensitivity of Aluminium Foams for Energy Dissipation. International Journal of Mechanical Sciences, 47, 26-42. https://doi.org/10.1016/j.ijmecsci.2004.12.007
Barnat, W., Panowicz, R., Niezgoda, T. and Gieleta, R. (2010) Analysis of a Protective Composite panel with Energy Adsorbent in the Form of Foamed Aluminium. Journal of Kones, 17, 35-44.
Lu, G. and Yu, T. (2003) Energy Absorption of Structures and Materials. Elsevier, Amsterdam. https://doi.org/10.1533/9781855738584
Gibson, L.J. and Ashby, M.F. (1999) Cellular Solids: Structure and Properties. Cambridge University Press, Cambridge.
Reddy, C. J. and Madhu, V. (2017) Dynamic Behaviour of Foams and Sandwich Panels under Shock Wave Loading. Procedia Engineering, 173, 1627-1634. https://doi.org/10.1016/j.proeng.2016.12.260
Baker, W.E., Cox, P., Kulesz, J., Strehlow, R. and Westine, P. (2012) Explosion Hazards and Evaluation. Elsevier, Amsterdam.
Alsubaei, F.C.F. (2015) Performance of Protective Perimeter Walls Subjected to Explosions in Reducing the Blast Resultants on Buildings. Ph.D. Thesis, Western University, London.
Luccioni, B. and Ambrosini, R. (2010) Numerical Assessment of Blast Effects Scaling Procedures. Mecanica Computacional, 29, 1161-1179.
Tiwari, A.K., Tiwary, A.K. and Dhiman, A. (2016) Analysis of Concrete Wall under Blast Loading. International Journal of Computer Applications, 12-22.
Lu, Y., Wang, Z. and Chong, K. (2005) A Comparative Study of Buried Structure in Soil Subjected to Blast Load Using 2D and 3D Numerical Simulations. Soil Dynamics and Earthquake Engineering, 25, 275-288. https://doi.org/10.1016/j.soildyn.2005.02.007
Nurick, G., Gelman, M. and Marshall, N. (1996) Tearing of Blast Loaded Plates with Clamped Boundary Conditions. International Journal of Impact Engineering, 18, 803-827. https://doi.org/10.1016/S0734-743X(96)00026-7
Nurick, G., Chung Kim Yuen, S., Jacob, N., Verster, W., Bwalya, D. and Vara, A. (2006) Response of Quadrangular Mild-Steel Plates to Large Explosive Load. Proceedings of Second International Conference on Design Analysis of Protective Structures (DAPS), Singapore, 13th-15th November 2006, 30-44.
P. Smith, T. Rose, E. Saotonglang, and CONWEP, (1999) Clearing of Blast Waves from Building Facades. Proceedings of the Institution of Civil Engineers-Structures and Buildings, 134, 193-199. https://doi.org/10.1680/istbu.1999.31385
Igra, O., Wu, X., Falcovitz, J., Meguro, T., Takayama, K. and Heilig, W. (2001) Experimental and Theoretical Study of Shock Wave Propagation through Double- Bend Ducts. Journal of Fluid Mechanics, 437, 255-282. https://doi.org/10.1017/S0022112001004098
Chaudhuri, A., Hadjadj, A., Sadot, O. and Ben-Dor, G. (2013) Numerical Study of Shock-Wave Mitigation through Matrices of Solid Obstacles. Shock Waves, 23, 91-101. https://doi.org/10.1007/s00193-012-0362-2
Nam, J.-W., Yoon, I.-S. and Yi, S.-T. (2016) Numerical Evaluation of FRP Composite Retrofitted Reinforced Concrete Wall Subjected to Blast Load. Computers and Concrete, 17, 215-225. https://doi.org/10.12989/cac.2016.17.2.215
Azmi, M., Kolahchi, R. and Bidgoli, M.R. (2019) Dynamic Analysis of Concrete Column Reinforced with Sio (2) Nanoparticles Subjected to Blast Load. Advances in Concrete Construction, 7, 51-63.
Yoo, D.-Y., Yoon, Y.-S. and Banthia, N. (2015) Predicting the Post-Cracking Behavior of Normal-and High-Strength Steel-Fiber-Reinforced Concrete Beams. Construction and Building Materials, 93, 477-485. https://doi.org/10.1016/j.conbuildmat.2015.06.006
Bruckner, R.O.A. and Curbach, M. (2006) Textile Reinforced Concrete for Strengthening in Bending and Shear. Materials and Structures, 39, 741-748. https://doi.org/10.1617/s11527-005-9027-2
Yoo, D.-Y., Gohil, U., Gries, T. and Yoon, Y.-S. (2016) Comparative Low-Velocity Impact Response of Textile-Reinforced Concrete and Steel-Fiber-Reinforced Concrete Beams. Journal of Composite Materials, 50, 2421-2431. https://doi.org/10.1177/0021998315604039
Wille, K., Naaman, A.E. and Parra-Montesinos, G.J. (2011) Ultra-High Performance Concrete with Compressive Strength Exceeding 150 MPa (22 ksi): A Simpler Way. ACI Materials Journal, 108, 46-54. https://doi.org/10.14359/51664215
Yoo, D.-Y. and Yoon, Y.-S. (2015) Structural Performance of Ultra-High-Performance Concrete Beams with Different Steel Fibers. Engineering Structures, 102, 409-423. https://doi.org/10.1016/j.engstruct.2015.08.029
Lampropoulos, A.P., Paschalis, S.A., Tsioulou, O.T. and Dritsos, S.E. (2016) Strengthening of Reinforced Concrete Beams Using Ultra High Performance Fibre Reinforced Concrete (UHPFRC). Engineering Structures, 106, 370-384. https://doi.org/10.1016/j.engstruct.2015.10.042
Ng, K.W., Garder, J. and Sritharan, S. (2015) Investigation of Ultra High Performance Concrete pIles for Integral Abutment Bridges. Engineering Structures, 105, 220-230. https://doi.org/10.1016/j.engstruct.2015.10.009
Tanarslan, H.M. (2017) Flexural Strengthening of RC Beams with Prefabricated Ultra High Performance Fibre Reinforced Concrete Laminates. Engineering Structures, 151, 337-348. https://doi.org/10.1016/j.engstruct.2017.08.048
Yang, I.-H., Joh, C., Lee, J.W. and Kim, B.-S. (2013) Torsional Behavior of Ultra-High Performance Concrete Squared Beams. Engineering Structures, 56, 372-383. https://doi.org/10.1016/j.engstruct.2013.05.027
Smith, P. and Hetherington, J. (1994) Blast and Ballistic Loading of Structures Butterworth. Heinemann Ltd, Portsmouth.
Mays, G., Smith, P.D. and Smith, P.D. (1995) Blast Effects on Buildings: Design of Buildings to Optimize Resistance to Blast Loading. Thomas Telford, London.
Conrath, E.J. (1999) Structural Design for Physical Security: State of the Practice. American Society of Civil Engineers, Reston.
Remennikov, A.M. (2002) Blast Resistant Consulting: A New Challenge for Structural Engineers. Australian Journal of Structural Engineering, 4, 121-134. https://doi.org/10.1080/13287982.2002.11464913
Brode, H.L. (1955) Numerical Solutions of Spherical Blast Waves. Journal of Applied Physics, 26, 766-775. https://doi.org/10.1063/1.1722085
Criteria, U.F. (2008) Structures to Resist the Effects of Accidental Explosions. UFC3-340-02, UFC.
Newmark, N. and Hansen, R. (1961) Design of Blast Resistant Structures. In: Shock and Vibration Handbook, Vol. 3, McGraw-Hill, New York.
Mills, C. (1987) The Design of Concrete Structure to Resist Explosions and Weapon Effects. Proceedings of the 1st International Conference on Concrete for Hazard Protections, Edinburgh, 27-30 September 1987, 61-73.
Huson, P. (2012) Experimental and Numerical Simulations of Explosive Loading on Structural Components: Composite Sandwich Connections. Ph. D. Thesis, University of California, San Diego.
Moon, N. (2009) Prediction of Blast Loading and Its Impact on Buildings. Master’s Thesis, National Institute of Technology, Trichy.
Khadid, A., Lahbari, N. and Fourar, A. (2007) Blast Loaded Stiffened Plates. Journal of Engineering and Applied Sciences, 2, 456-461.
Le Blanc, G., Adoum, M. and Lapoujade, V. (2005) External Blast Load on Structures–Empirical Approach. Proceedings of 5th European LS-Dyna Users Conference, Birmingham, 25th-26th May 2005, 1-10.
Pandey, A., Kumar, R., Paul, D. and Trikha, D. (2006) Non-Linear Response of Reinforced Concrete Containment Structure under Blast Loading. Nuclear Engineering and Design, 236, 993-1002. https://doi.org/10.1016/j.nucengdes.2005.09.015
Ngo, T., Mendis, P., Hongwei, M. and Mak, S. (2004) High Strain Rate Behaviour of Concrete Cylinders Subjected to Uniaxial Compressive Impact Loading. Proceedings of 18th Australasian Conference on the Mechanics of Structures and Materials, Perth, 1-3 December 2004.
Baker, W., Cox, P., Westine, P., Kulesz, J. and Strehlow, R. (1983) Explosion Hazards and Evaluation. Elsevier Scientific Publishing Co., Amsterdam.
Baker, W.E. (1973) Explosions in Air. University of Texas Press, Austin.
Hetherington, J. and Smith, P. (2014) Blast and Ballistic Loading of Structures. CRC Press, Boca Raton. https://doi.org/10.1201/9781482269277
Beshara, F. (1994) Modelling of Blast Loading on Aboveground Structures—I. General Phenomenology and External Blast. Computers & Structures, 51, 585-596. https://doi.org/10.1016/0045-7949(94)90066-3
ASCE (1985) Design of Structures to Resist Nuclear Weapons Effects. Headquarters of the Society, Rome.
CDG (1945) Structural Defense. British Ministry of Home Security.
Beshara, F. (1994) Modelling of Blast Loading on Aboveground Structures—II. Internal Blast and Ground Shock. Computers & Structures, 51, 597-606. https://doi.org/10.1016/0045-7949(94)90067-1
Lee, E.A. and Seshia, S.A. (2011) Introduction to Embedded Systems—A Cyber-Physical Systems Approach. Second Edition, MIT Press, Cambridge. http://LeeSeshia.org
Biggs, J.M. and Biggs, J.M. (1964) Introduction to Structural Dynamics. McGraw- Hill College, New York.
Ngo, T., Mendis, P., Gupta, A. and Ramsay, J. (2007) Blast Loading and Blast Effects on Structures—An Overview. Electronic Journal of Structural Engineering, 7, 76-91. https://doi.org/10.56748/ejse.671
Grote, D., Park, S. and Zhou, M. (2001) Dynamic Behavior of Concrete at High Strain Rates and Pressures: I. Experimental Characterization. International Journal of Impact Engineering, 25, 869-886. https://doi.org/10.56748/ejse.671
Ceb-Fip, M.C. (1990) Design Code. Comite Euro International du Beton. Thomas Telford, London, 51-59.
Norris, C.H. (1959) Structural Design for Dynamic Loads. McGraw-Hill, New York.
Dowling, A. and Harding, J. (1967) Tensile Properties of Mild Steel under High Strain Rates. Proceedings of the 1st HERF Conference, Irvine, 1 January 1967.
Malvar, L.J. (1998) Review of Static and Dynamic Properties of Steel Reinforcing Bars. Materials Journal, 95, 609-616. https://doi.org/10.14359/403