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Published in: International Journal of Steel Structures 1/2023

08-12-2022

Impact Response and Structural Optimization of CSCS Sandwich Shells Under Vehicle Impact

Authors: Chen Yan, Yonghui Wang, Ximei Zhai

Published in: International Journal of Steel Structures | Issue 1/2023

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Abstract

In this study, curved steel-concrete-steel (CSCS) shells were employed as protective walls to resist vehicle impact, owing to its high resistance, small deformation and damage found in the former studies. LS-DYNA was employed to numerically study the behaviors of CSCS shells under vehicle impact. Impact force, displacement and internal energy of CSCS shell, displacement of supports and damage contours of concrete were obtained from the FE simulations and discussed in detail. The influences of concrete thickness, steel plate thickness, rise height and impact velocity on the impact response of CSCS shell were also numerically investigated. The results showed that the initial kinetic energy was mainly dissipated through the plastic deformation of the vehicle, and the failure mode was dominated by local deformation. Global deformation only occurred when the CSCS shell was subjected to a high-velocity vehicle impact (i.e., 120 km/h). The comparison between CSCS shell and flat SCS panel subjected to the same vehicle impact showed that the CSCS shell had better performance in terms of higher resistance, smaller deformation and damage level. In order to propose a guideline for designing CSCS shell against vehicle impact, the response surface models for determining displacements of CSCS shell and support were established. Multi-objective optimization method was utilized to obtain the Pareto solution sets between displacement ratio of CSCS shell and vertex displacement of support, as well as between displacement ratio and mass of CSCS shell, which provided the suggestions for the design and application of CSCS shell in protective engineering.

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Literature
go back to reference Abramowicz, W., & Jones, N. (1986). Dynamic progressive buckling of circular and square Tubes. International Journal of Impact Engineering, 4, 243–270.CrossRef Abramowicz, W., & Jones, N. (1986). Dynamic progressive buckling of circular and square Tubes. International Journal of Impact Engineering, 4, 243–270.CrossRef
go back to reference Ali, A., Kim, D., & Cho, S. G. (2013). Modeling of nonlinear cyclic load behavior of I-shaped composite steel-concrete shear walls of nuclear power plants. Nuclear Engineering and Technology, 45(1), 89–98.CrossRef Ali, A., Kim, D., & Cho, S. G. (2013). Modeling of nonlinear cyclic load behavior of I-shaped composite steel-concrete shear walls of nuclear power plants. Nuclear Engineering and Technology, 45(1), 89–98.CrossRef
go back to reference F2656-07. (2007). Standard Test Method for Vehicle Crash Testing of Perimeter Barriers. American Society for Testing and Material. F2656-07. (2007). Standard Test Method for Vehicle Crash Testing of Perimeter Barriers. American Society for Testing and Material.
go back to reference Ardakan, M. A., & Rezvan, M. T. (2018). Multi-objective optimization of reliability–redundancy allocation problem with cold-standby strategy using NSGA-II. Reliability Engineering & System Safety, 172, 225–238.CrossRef Ardakan, M. A., & Rezvan, M. T. (2018). Multi-objective optimization of reliability–redundancy allocation problem with cold-standby strategy using NSGA-II. Reliability Engineering & System Safety, 172, 225–238.CrossRef
go back to reference Cao, R., Agrawal, A. K., Sherif, E. T., Xu, X., & Wong, W. (2019). Heavy truck collision with bridge piers: Computational simulation study. Journal of Bridge Engineering, 24(6), 04019052.CrossRef Cao, R., Agrawal, A. K., Sherif, E. T., Xu, X., & Wong, W. (2019). Heavy truck collision with bridge piers: Computational simulation study. Journal of Bridge Engineering, 24(6), 04019052.CrossRef
go back to reference Chen, L., Xiao, Y., Xiao, G., Liu, C., & Agrawal, A. K. (2015). Test and numerical simulation of truck collision with anti-ram bollards. International Journal of Impact Engineering, 75, 30–39.CrossRef Chen, L., Xiao, Y., Xiao, G., Liu, C., & Agrawal, A. K. (2015). Test and numerical simulation of truck collision with anti-ram bollards. International Journal of Impact Engineering, 75, 30–39.CrossRef
go back to reference SD-STD-02.01. (1985). Specification for Vehicle Crash Test of Perimeter Barriers and Gates. U.S. Department of State. SD-STD-02.01. (1985). Specification for Vehicle Crash Test of Perimeter Barriers and Gates. U.S. Department of State.
go back to reference Do, T. V., Pham, T. M., & Hao, H. (2019). Impact force profile and failure classification of reinforced concrete bridge columns against vehicle impact. Engineering Structures, 183, 443–458.CrossRef Do, T. V., Pham, T. M., & Hao, H. (2019). Impact force profile and failure classification of reinforced concrete bridge columns against vehicle impact. Engineering Structures, 183, 443–458.CrossRef
go back to reference Ferrer, B., Ivorra, S., Segovia, E., & Irles, R. (2010). Tridimensional modelization of the impact of a vehicle against a metallic parking column at a low speed. Engineering Structures, 32(8), 1986–1992.CrossRef Ferrer, B., Ivorra, S., Segovia, E., & Irles, R. (2010). Tridimensional modelization of the impact of a vehicle against a metallic parking column at a low speed. Engineering Structures, 32(8), 1986–1992.CrossRef
go back to reference Guo, Q., & Zhao, W. (2019). Displacement response of steel-concrete composite panels subjected to impact loadings. International Journal of Impact Engineering, 131, 272–281.CrossRef Guo, Q., & Zhao, W. (2019). Displacement response of steel-concrete composite panels subjected to impact loadings. International Journal of Impact Engineering, 131, 272–281.CrossRef
go back to reference Hallquist, J. O. (2006). LS-DYNA theory manual. Livermore Software Technology Corporation (LSTC), Livermore, California Hallquist, J. O. (2006). LS-DYNA theory manual. Livermore Software Technology Corporation (LSTC), Livermore, California
go back to reference Hoff, G. C. (1998). A major research program on steel-concrete-steel sandwich elements. Construction, 174, 37–88. Hoff, G. C. (1998). A major research program on steel-concrete-steel sandwich elements. Construction, 174, 37–88.
go back to reference Huang, Z. Y., & Liew, J. Y. R. (2016). Steel-concrete-steel sandwich composite structures subjected to extreme loads. International Journal of Steel Structures, 16(4), 1009–1028.CrossRef Huang, Z. Y., & Liew, J. Y. R. (2016). Steel-concrete-steel sandwich composite structures subjected to extreme loads. International Journal of Steel Structures, 16(4), 1009–1028.CrossRef
go back to reference Huang, Z. Y., Wang, J. Y., Liew, J. Y. R., & Marshall, P. W. (2015). Lightweight steel–concrete–steel sandwich composite shell subject to punching shear. Ocean Engineering, 102, 146–161.CrossRef Huang, Z. Y., Wang, J. Y., Liew, J. Y. R., & Marshall, P. W. (2015). Lightweight steel–concrete–steel sandwich composite shell subject to punching shear. Ocean Engineering, 102, 146–161.CrossRef
go back to reference Kang, H., & Kim, J. (2015). Progressive collapse of steel moment frames subjected to vehicle impact. Journal of Performance of Constructed Facilities, 29(6), 04014172.CrossRef Kang, H., & Kim, J. (2015). Progressive collapse of steel moment frames subjected to vehicle impact. Journal of Performance of Constructed Facilities, 29(6), 04014172.CrossRef
go back to reference Kang, H., & Kim, J. (2017). Response of a steel column-footing connection subjected to vehicle impact. Structural Engineering and Mechanics, 63(1), 125–136. Kang, H., & Kim, J. (2017). Response of a steel column-footing connection subjected to vehicle impact. Structural Engineering and Mechanics, 63(1), 125–136.
go back to reference Liew, J. Y. R., Sohel, K. M. A., & Koh, C. G. (2009). Impact tests on steel-concrete-steel sandwich beams with lightweight concrete core. Engineering Structures, 31(9), 2045–2059.CrossRef Liew, J. Y. R., Sohel, K. M. A., & Koh, C. G. (2009). Impact tests on steel-concrete-steel sandwich beams with lightweight concrete core. Engineering Structures, 31(9), 2045–2059.CrossRef
go back to reference Specification for vehicle security barriers (2007). London:British Standards Institution. Specification for vehicle security barriers (2007). London:British Standards Institution.
go back to reference Montague, P. (1975). A simple composite construction for cylindrical shells subjected to external pressure. Journal of Mechanical Engineering Science, 17(2), 105–113.CrossRef Montague, P. (1975). A simple composite construction for cylindrical shells subjected to external pressure. Journal of Mechanical Engineering Science, 17(2), 105–113.CrossRef
go back to reference Murray, Y. (2007). Users Manual for LS-DYNA Concrete Material Model 159. Federal Highway Administration, McLean, Virginia. Murray, Y. (2007). Users Manual for LS-DYNA Concrete Material Model 159. Federal Highway Administration, McLean, Virginia.
go back to reference Remennikov, A. M., & Kong, S. Y. (2012). Numerical simulation and validation of impact response of axially-restrained steel–concrete–steel sandwich panel. Composite Structures, 94(12), 3546–3555.CrossRef Remennikov, A. M., & Kong, S. Y. (2012). Numerical simulation and validation of impact response of axially-restrained steel–concrete–steel sandwich panel. Composite Structures, 94(12), 3546–3555.CrossRef
go back to reference Remennikov, A. M., Kong, S. Y., & Uy, B. (2013). The response of axially restrained non-composite steel–concrete–steel sandwich panels due to large impact loading. Engineering Structures, 49, 806–818.CrossRef Remennikov, A. M., Kong, S. Y., & Uy, B. (2013). The response of axially restrained non-composite steel–concrete–steel sandwich panels due to large impact loading. Engineering Structures, 49, 806–818.CrossRef
go back to reference Saini, D., & Shafei, B. (2019). Performance of concrete-filled steel tube bridge columns subjected to vehicle collision. Journal of Bridge Engineering, 24(8), 04019074.CrossRef Saini, D., & Shafei, B. (2019). Performance of concrete-filled steel tube bridge columns subjected to vehicle collision. Journal of Bridge Engineering, 24(8), 04019074.CrossRef
go back to reference SD-STD-02.01, & America (2003). Test Method for Vehicle Crash Testing of Perimeter Barriers and Gates, Revision A. U.S. Department of State. SD-STD-02.01, & America (2003). Test Method for Vehicle Crash Testing of Perimeter Barriers and Gates, Revision A. U.S. Department of State.
go back to reference Sharma, H., Hurlebaus, S., & Gardoni, P. (2012). Performance-based response evaluation of reinforced concrete columns subject to vehicle impact. International Journal of Impact Engineering, 43, 52–62.CrossRef Sharma, H., Hurlebaus, S., & Gardoni, P. (2012). Performance-based response evaluation of reinforced concrete columns subject to vehicle impact. International Journal of Impact Engineering, 43, 52–62.CrossRef
go back to reference Sohel, K. M. A., & Liew, J. Y. R. (2014). Behavior of steel-concrete-steel sandwich slabs subject to impact load. Journal of Constructional Steel Research, 100, 163–175.CrossRef Sohel, K. M. A., & Liew, J. Y. R. (2014). Behavior of steel-concrete-steel sandwich slabs subject to impact load. Journal of Constructional Steel Research, 100, 163–175.CrossRef
go back to reference Sohel, K. M. A., Liew, J. Y. R., & Koh, C. G. (2015). Numerical modelling of lightweight steel-concrete-steel sandwich composite beams subjected to impact. Thin-Walled Structures, 94, 135–146.CrossRef Sohel, K. M. A., Liew, J. Y. R., & Koh, C. G. (2015). Numerical modelling of lightweight steel-concrete-steel sandwich composite beams subjected to impact. Thin-Walled Structures, 94, 135–146.CrossRef
go back to reference Tian, L., & Du, B. (2015). Research on performances of reinforced concrete column under vehicle impact. Journal of Shenyang Jianzhu University (Natural Science), 31(1), 1–10. (in Chinese). Tian, L., & Du, B. (2015). Research on performances of reinforced concrete column under vehicle impact. Journal of Shenyang Jianzhu University (Natural Science), 31(1), 1–10. (in Chinese).
go back to reference Wang, Y., Liew, J. Y. R., & Lee, S. C. (2015). Theoretical models for axially restrained steel-concrete-steel sandwich panels under blast loading. International Journal of Impact Engineering, 76, 221–231.CrossRef Wang, Y., Liew, J. Y. R., & Lee, S. C. (2015). Theoretical models for axially restrained steel-concrete-steel sandwich panels under blast loading. International Journal of Impact Engineering, 76, 221–231.CrossRef
go back to reference Wang, Y., Zhai, X., Lee, S. C., & Wang, W. (2016). Responses of curved steel-concrete-steel sandwich shells subjected to blast loading. Thin-Walled Structures, 108, 185–192.CrossRef Wang, Y., Zhai, X., Lee, S. C., & Wang, W. (2016). Responses of curved steel-concrete-steel sandwich shells subjected to blast loading. Thin-Walled Structures, 108, 185–192.CrossRef
go back to reference Wang, Y., Liew, J. Y. R., & Lee, S. C. (2016). Ultimate strength of steel–concrete–steel sandwich panels under lateral pressure loading. Engineering Structures, 115, 96–106.CrossRef Wang, Y., Liew, J. Y. R., & Lee, S. C. (2016). Ultimate strength of steel–concrete–steel sandwich panels under lateral pressure loading. Engineering Structures, 115, 96–106.CrossRef
go back to reference Yan, C., Wang, Y., Zhai, X., Meng, L., & Zhou, H. (2019). Experimental study on curved steel-concrete-steel sandwich shells under concentrated load by a hemi-spherical head. Thin-Walled Structures, 137, 117–128.CrossRef Yan, C., Wang, Y., Zhai, X., Meng, L., & Zhou, H. (2019). Experimental study on curved steel-concrete-steel sandwich shells under concentrated load by a hemi-spherical head. Thin-Walled Structures, 137, 117–128.CrossRef
go back to reference Yan, C., Wang, Y., & Zhai, X. (2020). Low velocity impact performance of curved steel-concrete-steel sandwich shells with bolt connectors. Thin-Walled Structures, 150, 106672.CrossRef Yan, C., Wang, Y., & Zhai, X. (2020). Low velocity impact performance of curved steel-concrete-steel sandwich shells with bolt connectors. Thin-Walled Structures, 150, 106672.CrossRef
go back to reference Yan, C., Wang, Y., Zhai, X., & Meng, L. (2020). Strength assessment of curved steel-concrete-steel sandwich shells with bolt connectors under concentrated load. Engineering Structures, 212, 110465.CrossRef Yan, C., Wang, Y., Zhai, X., & Meng, L. (2020). Strength assessment of curved steel-concrete-steel sandwich shells with bolt connectors under concentrated load. Engineering Structures, 212, 110465.CrossRef
go back to reference Zhao, W., Guo, Q., Zhao, W., & Guo, Q. (2018). Experimental study on impact and post-impact behavior of steel-concrete composite panels. Thin-Walled Structures, 130, 405–413.CrossRef Zhao, W., Guo, Q., Zhao, W., & Guo, Q. (2018). Experimental study on impact and post-impact behavior of steel-concrete composite panels. Thin-Walled Structures, 130, 405–413.CrossRef
go back to reference Zhao, W., Guo, Q., Dou, X., Zhou, Y., & Ye, Y. (2018). Impact response of steel-concrete composite panels: Experiments and FE analyses. Steel and Composite Structures, 26(3), 255–263. Zhao, W., Guo, Q., Dou, X., Zhou, Y., & Ye, Y. (2018). Impact response of steel-concrete composite panels: Experiments and FE analyses. Steel and Composite Structures, 26(3), 255–263.
Metadata
Title
Impact Response and Structural Optimization of CSCS Sandwich Shells Under Vehicle Impact
Authors
Chen Yan
Yonghui Wang
Ximei Zhai
Publication date
08-12-2022
Publisher
Korean Society of Steel Construction
Published in
International Journal of Steel Structures / Issue 1/2023
Print ISSN: 1598-2351
Electronic ISSN: 2093-6311
DOI
https://doi.org/10.1007/s13296-022-00695-y

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