TECHNICAL PAPERS
Dec 1, 2007

Safe Scaled Distance for Masonry Infilled RC Frame Structures Subjected to Airblast Loads

Publication: Journal of Performance of Constructed Facilities
Volume 21, Issue 6

Abstract

Terrorist bombing and accidental explosion may generate extreme loading conditions on nearby structures, resulting in damage and even collapse of structures. The degree of damage to a structure depends on the capacity of the detonation and its location as well as structural conditions. Some guidelines are available to assess the safety of unstrengthened buildings to airblast loads. These guidelines are usually given in terms of the safe scaled distance between explosion center and structure, whereas the structure conditions, which also affect its performance, are not explicitly defined. The safe scaled distance is obtained primarily from field blasting tests and experiences of structure damage to blast loads. These guidelines can be used for a quick safety assessment of structures, but do not provide clear damage scenarios of the structures. In a previous paper, damages of low-rise masonry infilled reinforced concrete (RC) structures to surface explosion of different scaled distances are numerically simulated. It was found that RC frame would collapse when the scaled distance was less than 1.82mkg13 ; and the front masonry wall would suffer excessive damage when the scaled distance was less than about 4.5mkg13 . The present paper is an extension of the latter work. It employs a more detailed RC model with distinctive definitions of concrete and reinforcement material performance. More thorough analyses are carried out to find the correlation between the scaled distance and the damage level of low-rise and medium-rise masonry infilled RC frames. The different failure mechanisms between the low-rise and medium-rise structures to blast loads are also observed and discussed. The computer program LS-DYNA3D with user defined RC and homogenized masonry material models is used in numerical calculations. The numerical results are also compared with the safe scaled distance recommended in the United Stated Department of Defense’s regulations, ASCE guidelines, and those derived in the previous paper.

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Acknowledgments

The writers greatly acknowledge the support from the Australian Research Council (ARC) under Grant No. UNSPECIFIEDDP0451966.

References

ASCE. (1997). Design of blast resistant buildings in petrochemical facilities, Task Committee on Blast Resistant Design, Reston, Va.
Baylot, J. T., Bullock, B., Slawson, T. R., and Woodson, S. C. (2005). “Blast response of lightly attached concrete masonry unit walls.” J. Struct. Eng., 131(8), 1186–1193.
Century Dynamics. (2003). AUTODYN theory manual.
Connell, J. D. (1999). “Blast response of retrofitted concrete structures.” Technical Rep., Univ. of Alabama at Birmingham, Birmingham, Ala.
Davidson, J. S., Fisher, J. W., Hammons, M. I., Porter, J. R., and Dinan, R. J. (2005). “Failure mechanisms of polymer-reinforced concrete masonry walls subjected to blast.” J. Struct. Eng., 131(8), 1194–1205.
Davidson, J. S., Porter, J. R., Dinan, R. J., Hammons, M. I., and Connell, J. D. (2004). “Explosive testing of polymer retrofit masonry walls.” J. Perform. Constr. Facil., 18(2), 100–106.
Hao, H., and Wu, C. (2006). “Numerical simulation of damage of low-rise RC frame structure with infilled masonry walls to explosive loads.” Australian Journal of Structural Engineering, 7(1), 13–22.
Henrych, J. (1979). The dynamics of explosion and its use, Oxford, New York.
Johnson, C. F., Slawson, T., Cummins, T. K., and Davis, J. L. (2004). “Concrete masonry unit walls retrofitted with elastomeric systems for blast loads.” Prepared for the U.S. Army Engineer Research and Development Center (ERDC).
Kaewkulchai, G., and Williamson, E. B. (2004). “Beam element formulation and solution procedure for dynamic process collapse analysis.” Comput. Struct., 82, 639–651.
Lu, Y., and Xu, K. (2004). “Modeling of dynamic behavior of concrete materials under blast loading.” Int. J. Solids Struct., 41, 131–143.
Luccioni, B. M., Ambrosini, R. D., and Danesi, R. F. (2004). “Analysis of building collapse under blast loads.” Eng. Struct., 26, 63–71.
Marjanishvili, M. S. (2004). “Progressive analysis procedure for progressive collapse.” J. Perform. Constr. Facil., 18(2), 79–85.
Mosalam, K., and Mosallam, A. S. (2001). “Nonlinear transient analysis of reinforced concrete slabs subjected to blast loading and retrofitted with CFRP composites.” Composites, Part B, 32, 623–636.
Salim, H. A., and Townsend, P. T. (2004). “Explosion-resistant steel stud wall system.” Proc., Structures 2004—Building on the Past: Securing the Future, ASCE, Reston, Va., 1–10.
U.S. Dept. of the Army. (1990). “Fundamentals of protective design for conventional weapons.” Technical manual (TM-5-855-1), Headquarters, Washington, D.C.
U.S. Dept. of Defense (US DoD). (2004). “Ammunition and explosives safety standards.” DoD 6055. 9-STD, Assistant Secretary of Defense, Washington, D.C.
Whirley, R. G., and Englemann, B. E. (1991). “DYNA3D: A nonlinear explicit three-dimensional finite element code for solid and structural mechanics—User’s manual.” Rep. No., UCRL-MA-107254 Revision 1, Lawrence Livermore National Laboratory, Livermore, Calif.
Wu, C., and Hao, H. (2005). “Modeling of simultaneous ground shock and airblast pressure on nearby structures from surface explosions.” Int. J. Impact Eng., 31(6), 699–717.
Wu, C., and Hao, H. (2006). “Derivation of 3D masonry properties using numerical homogenization technique.” Int. J. Numer. Methods Eng. 66, 1717–1737.
Wu, C., Hao, H., and Lu, Y. (2005). “Dynamic response and damage analysis of masonry structures and masonry infilled RC frames to blast ground motion.” Eng. Struct., 27, 323–333.

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Published In

Go to Journal of Performance of Constructed Facilities
Journal of Performance of Constructed Facilities
Volume 21Issue 6December 2007
Pages: 422 - 431

History

Received: Dec 4, 2006
Accepted: May 21, 2007
Published online: Dec 1, 2007
Published in print: Dec 2007

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Authors

Affiliations

Chengqing Wu
Lecturer, School of Civil and Environmental Engineering, The Univ. of Adelaide, North Terrace, SA 5005 Australia. E-mail: [email protected]
Hong Hao
Professor, School of Civil and Resource Engineering, The Univ. of Western Australia, 35 Stirling Highway, Crawley WA 6009, Australia.

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