AN Guo-qing, WANG Rui, ZHAO Hui, LI Tie-ying. Dynamic Response of Double-Skin Steel-Concrete Composite Panel Under Impact Loading[J]. Journal of Northeastern University(Natural Science), 2022, 43(8): 1192-1200.
[1]Hilo S J,Badaruzzaman W H W,Osman S A,et al.A state-of-the-art review on double-skinned composite wall systems [J].Thin-Walled Structures,2015,97:74-100. [2]Liew J Y R,Yan J B,Huang Z Y.Steel-concrete-steel sandwich composite structures—recent innovations [J].Journal of Constructional Steel Research,2017,130:202-221. [3]Wang R,Han L H,Hou C C.Behavior of concrete filled steel tubular(CFST)members under lateral impact:experiment and FEA model [J].Journal of Constructional Steel Research,2013,80:188-201. [4]Wang R,Han L H,Zhao X L,et al.Experimental behavior of concrete filled double steel tubular(CFDST)members under low velocity drop weight impact [J].Thin-Walled Structures,2015,97:279-295. [5]安国青,赵晖,王蕊,等.外包不锈钢圆中空夹层钢管混凝土柱抗撞计算方法研究 [J].工程力学,2021,38(6):227-236.(An Guo-qing,Zhao Hui,Wang Rui,et al.Calculation method for impact resistance of circular concrete-filled double-skin tubular columns with external stainless steel tube [J]. Engineering Mechanics,2021,38(6):227-236.) [6]Zhao H,Wang R,Hou C C,et al.Experimental behaviour of hollow reinforced concrete members with inner octagonal steel tube under lateral impact [J].Advances in Structural Engineering,2019,22(15):3328-3340. [7]Zhao H,Wang R,Li Q M,et al.Experimental and numerical investigation on impact and post-impact behaviours of H-shaped steel members [J].Engineering Structures,2020,216:110750. [8]Cui J L,Wang R,Zhao H,et al.Built-up battened steel columns under impact loading:experimental and numerical analysis [J].Journal of Constructional Steel Research,2021,179:106515. [9]Remennikov A M,Kong S Y.Numerical simulation and validation of impact response of axially-restrained steel-concrete-steel sandwich panels [J].Composite Structures,2012,94(12):3546-3555. [10]Remennikov A M,Kong S Y,Uy B.The response of axially restrained non-composite steel-concrete-steel sandwich panels due to large impact loading [J].Engineering Structures,2013,49:806-818. [11]Sohel K M A,Liew J Y R.Behavior of steel-concrete-steel sandwich slabs subject to impact load [J].Journal of Constructional Steel Research,2014,100:163-175. [12]Zhao W Y,Guo Q Q,Dou X Q,et al.Impact response of steel-concrete composite panels:experiments and FE analyses [J].Steel and Composite Structures,2018,26(3):255-263. [13]Yan C,Wang Y H,Zhai X M.Low velocity impact performance of curved steel-concrete-steel sandwich shells with bolt connectors [J].Thin-Walled Structures,2020,150:106672. [14]中华人民共和国住房和城乡建设部.核电站钢板混凝土结构技术标准:GB/T 51340—2018[S].北京:中国计划出版社,2018.(Ministry of Housing and Urban-Rural Development of the People’s Republic of China.Technical standard for steel plate concrete structures of nuclear power plants :GB/T 51340-2018[S].Beijing:China Plan Press,2018.) [15]Japan Electric Association.Technical guidelines for aseismic design of steel plate reinforced concrete structures buildings and structures:JEAG 4618—2005[S].Tokyo:Japan Electric Association Nuclear Standards Committee,2005. [16]韩林海.钢管混凝土结构——理论与实践 [M].北京:科学出版社,2016.(Han Lin-hai.Concrete filled steel tubular structures—theory and practice [M].Beijing:Science Press,2016.) [17]Al-Thairy H,Wang Y C.A numerical study of the behaviour and failure modes of axially compressed steel columns subjected to transverse impact [J].International Journal of Impact Engineering,2011,38:732-744. [18]Xiang S,Zeng L,Liu Y H,et al.Experimental study on the dynamic behavior of T-shaped steel reinforced concrete columns under impact loading [J].Engineering Structures,2020,208:110307. [19]Comite Euro-International du Beton.CEB-FIP model code 1990 [M].Trowbridge,Wiltshire:Redwood Books,1993:48-51. [20]Malvar L J,Ross C A.Review of strain rate effects for concrete in tension [J].ACI Materials Journal,1998,95(6):735-739. [21]Hao H,Tran T T,Li H W,et al.On the accuracy,reliability and controllability of impact tests of RC beams [J].International Journal of Impact Engineering,2021,157:103979. [22]Timoshenko S,Woinowsky-Krieger S.Theory of plates and shells [M].New York:McGraw-hill,1959. [23]Bruhl J C,Varma A H,Kim J M.Static resistance function for steel-plate composite(SC)walls subject to impactive loading [J].Nuclear Engineering and Design,2015,295:843-859.(上接第1175页) [11]Pourghahramani P,Plson B,Forssberg E.Multivariate projection and analysis of microstructural characteristics of mechanically activated hematite in different grinding mills[J].International Journal of Mineral Processing,2008,87(3/4):73-82. [12]Yao G,Cui T,Zhang J,et al.Effects of mechanical grinding on pozzolanic activity and hydration properties of quartz[J].Advanced Powder Technology,2020,31(11):4500-4509. [13]Yao G,Wang Q,Su Y,et al.Mechanical activation as an innovative approach for the preparation of pozzolan from iron ore tailings[J].Minerals Engineering,2020,145:106068-106075. [14]Yao G,Wang Q,Wang Z,et al.Activation of hydration properties of iron ore tailings and their application as supplementary cementitious materials in cement[J].Powder Technology,2020,360:863-871. [15]李北星,陈梦义,王威,等.粉磨方式对铁尾矿-矿渣基胶凝材料的性能影响[J].硅酸盐通报,2013,32(8):1463-1467.(Li Bei-xing,Chen Meng-yi,Wang Wei,et al.Effect of grinding method on performance of iron tailings-slag based cementitious material[J].Bulletin of the Chinese Ceramic Society,2013,32(8):1463-1467.) [16]李北星,陈梦义,王威,等.梯级粉磨制备铁尾矿-矿渣基胶凝材料[J].建筑材料学报,2014,17(2):206-211.(Li Bei-xing,Chen Meng-yi,Wang Wei,et al.Iron tailings-slag based cementitious materials prepared by cascade grinding[J].Journal of Building Materials,2014,17(2):206-211.) [17]朱志刚,李北星,周明凯.梯级粉磨铁尾矿制备超高性能混凝土的研究[J].功能材料,2015,46(20):20043-20047.(Zhu Zhi-gang,Li Bei-xing,Zhou Ming-kai.Study on preparation of ultra high performance concrete by grinding iron tailings[J].Functional Materials,2015,46(20):20043-20047.) [18]郑永超,倪文,徐丽,等.铁尾矿的机械力化学活化及制备高强结构材料[J].北京科技大学学报,2010,32(4):504-508.(Zheng Yong-chao,Ni Wen,Xu Li,et al.Mechanochemical activation of iron tailings and preparation of high strength structural materials[J].Journal of University of Science and Technology Beijing,2010,32(4):504-508.) [19]徐丽,吴辉,郭珍妮,等.利用微磨球效应制备超高强铁尾矿混凝土[J].金属矿山,2010(12):162-166.(Xu Li,Wu Hui,Guo Zhen-ni,et al. Preparation for ultrahigh strength concrete with tailings by using micro ball effects[J].Metal Mine,2010(12):162-166.) [20]李德忠,倪文,郑永超,等.大掺量铁尾矿高强混凝土材料的制备[J].金属矿山,2010(2):167-170.(Li De-zhong,Ni Wen,Zheng Yong-chao,et al.Experimental research on high-strength concrete preparation with large content of iron tailings[J].Metal Mine,2010(2):167-170.) [21]朴春爱.铁尾矿粉的活化工艺和机理及对混凝土性能的影响研究[D].北京:中国矿业大学,2017.(Piao Chun-ai.Study on the activation process and mechanism of iron tailings powder and its influence on the performance of concrete[D].Beijing:China University of Mining & Technology,2017.) [22]Wang Q,Wang Z,Su Y,et al.Application of calcareous iron ore tailings in the production of cement[J].Energy Sources Part A:Recovery,Utilization and Environmental Effects,2020,42:1-10.