Technical Papers
Jun 28, 2018

Numerical Study of Damage Modes and Assessment of Circular RC Pier under Noncontact Explosions

Publication: Journal of Bridge Engineering
Volume 23, Issue 9

Abstract

Since the September 11, 2001, attack in New York, the number and intensity of terrorist activities around the world have attracted our attention toward infrastructure systems. Also, unintentional explosions resulting from fuel oil (gas) and fireworks in transit can lead to the interruption of the highway system. In addition, crucial bridges in a local war are main targets for hostile forces because they convey military supplies. Bridge piers are main axial bearing components and readily suffer damage under blast loading, so damage modes of bridges in different cases and explosive damage assessments should be studied to provide design advice for protection against explosion. In this paper, numerical models of reinforced concrete (RC) piers are built and verified by the explosion experimental acceleration data and the theoretical ultimate bearing capacity. Based on the verified model, different damage modes of RC piers in three noncontact explosive cases are investigated, in which the locations of explosive centers are at the bottom, the midheight, and the top of the pier. RC piers always experience flexural failure in these cases. The residual bearing capacities of piers before collapse are also studied, and the relations between trinitrotoluene (TNT) mass and residual bearing capacity are fitted by a cubic polynomial, resulting in a downward trend. From damage index and polynomial, the damage extent after blasting can be evaluated.

Get full access to this article

View all available purchase options and get full access to this article.

Acknowledgments

This research was supported by the National Key Research and Development Program of China (Grant 2017YFC0703405); the National Nature Science Foundation of China (Grant 51678141); the Fund of State Key Laboratory of Bridge Engineering Structural Dynamics; and the Key Laboratory of Bridge Earthquake Resistance Technology, Ministry of Communications, PRC (01).

References

Agrawal, A. K., and Z. H. Yi. 2009. Blast load effects on highway bridges. UTRC Rep. New York: City College of New York, Univ. Transportation Research Center.
Agrawal, A. K., S. Alampalli, and M. Ettouney. 2009. “Experimental investigation of seismically resistant bridge piers under blast loading.” In Proc., Workshop on Safety and Behavior of Bridges Subjected to Blast in a Multi-Hazard Environment. New York.
Anwarul Islam, A., and N. Yazdani. 2006. “Blast capacity and protection of AASHTO girder bridges.” In Proc., 4th Forensic Congress. Reston, VA: ASCE.
Bao, X., and B. Li. 2010. “Residual strength of blast damaged reinforced concrete column.” Int. J. Impact Eng. 37 (3): 295–308. https://doi.org/10.1016/j.ijimpeng.2009.04.003.
Davis, C., G. Williams, E. Williamson, K. Marchand, A. McKay, and O. Bayrak. 2009. “Design and detailing guidelines for bridge columns subjected to blast and other extreme loads.” In Proc., 2009 Structures Congress. Reston, VA: ASCE.
Echevarria, A. 2014. “Comparison of the performance of RC and CFFT bridge piers under multiple hazards.” Ph.D. thesis, Univ. of Connecticut.
Echevarria, A., A. Zaghi, V. Chiarito, R. Christenson, and S. Woodson. 2016a. “Experimental comparison of the performance and residual capacity of CFFT and RC bridge columns subjected to blasts.” J. Bridge Eng. 21 (1): 04015026. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000762.
Echevarria, A., A. Zaghi, R. Christenson, and M. Accorsi. 2016b. “CFFT bridge columns for multihazard resilience.” J. Bridge Eng 142 (8): C4015002. https://doi.org/10.1061/(ASCE)ST.1943-541X.0001292.
Elsanadedy, H. M., T. Almusallam, H. Abbas, Y. A. Al-Salloum, and S. H. Alsayed. 2011. “Effect of blast loading on CFRP-retrofitted RC columns-a numerical study.” Lat. Am. J. Solids Struct. 8 (1): 55–81. https://doi.org/10.1590/S1679-78252011000100004.
FHWA (Federal Highway Administration). 2003. Recommendations for bridge and tunnel security. Rep. prepared by the Blue Ribbon Panel on Bridge and Tunnel Security. Washington, DC: Federal Highway Administration.
Fujikura, S., and M. Bruneau. 2008. Experimental and analytical investigation of blast performance of seismically resistant bridge piers. Tech. Rep. MCEER-08-0028. Buffalo, NY: Multidisciplinary Center for Earthquake Engineering Research, State Univ. of New York.
Fujikura, S., and M. Bruneau. 2010. “Experimental investigation of seismically resistant bridge piers under blast loading.” J. Bridge Eng. 16 (1): 63–71. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000124.
Fujikura, S., M. Bruneau, and D. Lopez-Garcia. 2007. Experimental investigation of blast performance of seismically resistant concrete-filled steel tube bridge piers. Tech. Rep. MCEER-07-0005. Buffalo, NY: Multidisciplinary Center for Earthquake Engineering Research, State Univ. of New York.
Fujikura, S., M. Bruneau, and D. Lopez-Garcia. 2008. “Experimental investigation of multihazard resistant bridge piers having concrete-filled steel tube under blast loading.” J. Bridge Eng. 13 (6): 586–594. https://doi.org/10.1061/(ASCE)1084-0702(2008)13:6(586).
Hao, Y. F., and H. Hao. 2014. “Influence of the concrete DIF model on the numerical predictions of RC wall responses to blast loading.” Eng. Struct. 73 (Aug): 24–38. https://doi.org/10.1016/j.engstruct.2014.04.042.
Hyde, D. W. 1988. User’s guide for microcomputer programs ConWep and FunPro, applications of TM5-855-1. Vicksburg, MI: US Army Engineer Waterways Experiment Station.
Kingery, C. N., and G. Bulmash. 1984. Airblast parameters from TNT spherical air burst and hemispherical surface burst. Tech. Rep. ARBRL-TR-02555. Aberdeen Proving Ground, MD: US Armament Research and Development Center, Ballistic Research Laboratory.
Li, B., A. Nair, and Q. Kai. 2012. “Residual axial capacity of reinforced concrete columns with simulated blast damage.” J. Perf. Constr. Facil. 26 (3): 287–299. https://doi.org/10.1061/(ASCE)CF.1943-5509.0000210.
Liu, L. 2016. “Experimental study of differently protective RC piers under blast loading.” [In Chinese.] Master’s thesis, Southeast Univ.
Randers-Pehrson, G., and K. A. Bannister. 1997. Airblast loading model for DYNA2D and DYNA3D. Tech. Rep. ARL-TR-1310. Aberdeen Proving Ground, MD: US Armament Research and Development Center, Ballistic Research Laboratory.
Shi, Y. C. 2009. “Dynamic response and damage mechanism of reinforced concrete structures under blast loading.” [In Chinese.] Ph.D. thesis, Tianjin Univ.
Tang, B. 2016. “Experimental investigation of reinforced concrete bridge piers under blast loading.” [In Chinese.] Master’s thesis, Southeast Univ.
US DOD (United States Dept. of Defense). 2014. Structure to resist the effects of accidental explosions. UFC 3-340-02. Washington, DC: Dept. of Defense.
Wang, H. W., C. Q. Wu, L. Z. Yang, and P. Li. 2016. “Experimental research on residual bearing capacity of full-scale concrete-filled steel tubular column after explosion.” [In Chinese.] J. Build. Struct. 37 (5): 155–160.
Williams, G., and E. Williamson. 2011. “Response of reinforced concrete bridge columns subjected to blast loads.” J. Struct. Eng. 137 (9): 903–913. https://doi.org/10.1061/(ASCE)ST.1943-541X.0000440.
Williams, G., and E. Williamson. 2012. “Procedure for predicting blast loads acting on bridge columns.” J. Bridge Eng. 17 (3): 490–499. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000265.
Williams, G. D. 2009. “Analysis and response mechanisms of blast-loaded reinforced concrete columns.” Ph.D. thesis, Univ. of Texas at Austin.
Williamson, E., O. Bayrak, C. Davis, and G. Williams. 2011a. “Performance of bridge columns subjected to blast loads. I: Experimental program.” J. Bridge Eng. 16 (6): 693–702. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000220.
Williamson, E., O. Bayrak, C. Davis, and G. Williams. 2011b. “Performance of bridge columns subjected to blast loads. II: Results and recommendations.” J. Bridge Eng. 16 (6): 703–710. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000221.
Williamson, E. B., and D. Williams. 2009. “Prediction of airblast loads on bridge columns.” In Proc., 80th Shock & Vibration Symp. San Diego: SAVIAC.
Winget, D., K. Marchand, and E. Williamson. 2005. “Analysis and design of critical bridges subjected to blast loads.” J. Struct. Eng. 131 (8): 1243–1255. https://doi.org/10.1061/(ASCE)0733-9445(2005)131:8(1243).
Winget, D. G., E. Williamson, K. A. Marchand, and J. C. Gannon. 2008. “Recommendations for blast design and retrofit of typical highway bridges.” Transp. Res. Rec. CD11S: 1–8. https://doi.org/10.3141/trr.11s.464361685g144j74.
Wu, J., J. B. Liu, and Y. X. Du. 2007. “Elastic-plastic dynamic calculation and numerical analysis of assembling blast resistant wall under effect of vehicle bombs.” [In Chinese.] J. Disaster Prev. Mitigation Eng. 27 (4): 394–400.
Wu, K. C., B. Li, and K. C. Tsai. 2011a. “Residual axial compression capacity of localized blast-damaged RC columns.” Int. J. Impact Eng. 38 (1): 29–40. https://doi.org/10.1016/j.ijimpeng.2010.09.002.
Wu, K. C., B. Li, and K. C. Tsai. 2011b. “The effects of explosive mass ratio on residual compressive capacity of contact blast damaged composite columns.” J. Constr. Steel Res. 67 (4): 602–612. https://doi.org/10.1016/j.jcsr.2010.12.001.
Yang, L. Z. 2016. “Research of the residual bearing capacity of large size concrete-filled steel tube columns after explosion.” [In Chinese.] Master’s thesis, Guangzhou Univ.
Ye, J. S. 2014. Principles of structure design. 3rd ed. [In Chinese.] Beijing: China Communications Press.
Yi, Z., A. Agrawal, M. Ettouney, and S. Alampalli. 2013a. “Blast load effects on highway bridges. I: Modeling and blast load effects.” J. Bridge Eng. 19 (4): 04013023. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000547.
Yi, Z., A. Agrawal, M. Ettouney, and S. Alampalli. 2013b. “Blast load effects on highway bridges. II: Failure modes and multihazard correlations.” J. Bridge Eng. 19 (4): 04013024. https://doi.org/10.1061/(ASCE)BE.1943-5592.0000548.
Yi, Z. H. 2009. “Blast load effects on highway bridges.” Ph.D. thesis, City Univ. of New York.
Zhang, C. A., Q. Fang, and L. Chen. 2010. “Discussion on K&C model for concrete in DYNA3D.” [In Chinese.] Ind. Constr. 40 (S1): 288–292.
Zong, Z. H., B. Tang, C. Gao, L. Liu, M. H. Li, and S. J. Yuan. 2017. “Experiment on blast-resistance performance of reinforced concrete piers.” [In Chinese.] China J. Highway Transport. 30 (9): 51–60.

Information & Authors

Information

Published In

Go to Journal of Bridge Engineering
Journal of Bridge Engineering
Volume 23Issue 9September 2018

History

Received: Nov 13, 2017
Accepted: Mar 15, 2018
Published online: Jun 28, 2018
Published in print: Sep 1, 2018
Discussion open until: Nov 28, 2018

Permissions

Request permissions for this article.

Authors

Affiliations

Doctoral Student, School of Civil Engineering, Southeast Univ., No.2, Southeast University Rd., Nanjing 211189, China. Email: [email protected]
Professor, School of Civil Engineering, Southeast Univ., No.2, Southeast University Rd., Nanjing 211189, China (corresponding author). Email: [email protected]
Doctoral Student, School of Civil Engineering, Southeast Univ., No.2, Southeast University Rd., Nanjing, 211189, China. Email: [email protected]

Metrics & Citations

Metrics

Citations

Download citation

If you have the appropriate software installed, you can download article citation data to the citation manager of your choice. Simply select your manager software from the list below and click Download.

Cited by

View Options

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Get Access

Access content

Please select your options to get access

Log in/Register Log in via your institution (Shibboleth)
ASCE Members: Please log in to see member pricing

Purchase

Save for later Information on ASCE Library Cards
ASCE Library Cards let you download journal articles, proceedings papers, and available book chapters across the entire ASCE Library platform. ASCE Library Cards remain active for 24 months or until all downloads are used. Note: This content will be debited as one download at time of checkout.

Terms of Use: ASCE Library Cards are for individual, personal use only. Reselling, republishing, or forwarding the materials to libraries or reading rooms is prohibited.
ASCE Library Card (5 downloads)
$105.00
Add to cart
ASCE Library Card (20 downloads)
$280.00
Add to cart
Buy Single Article
$35.00
Add to cart

Media

Figures

Other

Tables

Share

Share

Copy the content Link

Share with email

Email a colleague

Share