RESEARCH ON ASEISMIC PERFORMANCES OF BASE JOINTS FOR PREFABRICATED COMPOSITE STEEL-CONCRETE COLUMNS
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摘要: 为研究预制装配式钢骨混凝土组合柱基节点的抗震性能,对3根不同剪跨比的新型柱基节点试件进行拟静力试验。利用有限元软件ABAQUS对试验件进行数值模拟,验证有限元模型的合理性。在此基础上,以剪跨比和连接模块内部的钢管截面形状为参数变量,分析不同剪跨比和钢管截面形状对组合柱基节点抗震性能的影响规律。结果表明:随着剪跨比的增大,连接模块内部钢管形状为方钢管的试件(PJ试件)和连接模块内部钢管形状为圆钢管的试件(YG试件)极限承载力和耗能能力均逐渐降低,PJ试件和YG试件极限承载力平均下降幅度分别为14.59%和21.87%,耗能平均降低幅度分别为27.75%和36.71%。随着剪跨比的增大,PJ试件的延性性能逐渐减弱并趋于稳定,而YJ试件的延性性能逐渐减弱。YG试件的屈服承载力、峰值承载力以及极限承载力均低于PJ试件,但耗能能力和延性能力有很大提高。Abstract: To study the seismic performance of base joints for prefabricated composite steel-concrete columns, three new specimens with different ratios of shear span to effective length were conducted by quasi-static tests. The finite-element software ABAQUS was also used to simulate the specimens. The rationality of the numerical model was verified by comparing the results between the simulations and tests.The ratios of shear span to effective length and cross-section shapes of steel tubes inside the connection module were taken as variables, the influences of different rations of shear span to effective length and cross-section shapes of steel tubes on the aseismic performances of the composite column foundation were analyzed. It was indicated that when the ratios of shear span to effective length increased, the ultimate bearing capasity and energy dissipation capacity of the test tubes with steel tubes specimens PJ and YC inside the connection module were gradually reduced.The ultimate bearing capacity of PJ and YG reduced by 14.59% and 21.87% evenly. Correspondingly, the energy consumption reduced by 27.75% and 36.71% evenly. With the increase of the ratios of shear-span to effective lenghth, the ductility of PJ gradually weakened and stable gradually, while the YJ gradually weakened.The yield bearing capacity, peak bearing capacity and ultimate bearing capacity of the YG all were lower than that of the PJ, but the energy dissipation capacity and ductility had been significantly improved.
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[1] 严薇, 曹永红, 李国荣. 装配式结构体系的发展与建筑工业化[J]. 重庆建筑大学学报, 2004(5):131-136. [2] 聂建国, 陶慕轩, 黄远, 等.钢-混凝土组合结构体系研究新进展[J]. 建筑结构学报, 2010, 31(6):71-80. [3] ATAEI A, BRADFORD M A, VALIPOUR H. Sustainable Design of Deconstructable Steel-Concrete Composite Structures[J]. Procedia Engineering, 2016, 145:1153-1160. [4] 芦静夫, 孙占琦, 邱勇, 等. 新型装配式钢-混凝土组合结构梁柱节点在学校教学楼中的应用[J]. 建筑结构, 2019, 49(增刊):498-503. [5] 杨勇, 薛亦聪, 于云龙, 等. 部分预制装配型钢混凝土柱抗震性能试验研究[J]. 建筑结构学报, 2019, 40(8):42-50. [6] 李青宁, 卫碧洋, 刘展, 等. 新型装配整体式柱的抗震性能及连接优化[J]. 建筑结构, 2014, 44(13):34-39. [7] 姜效亭. 装配式型钢混凝土柱连接处抗震性能研究与应用[D]. 合肥:安徽建筑大学, 2016. [8] NZABONIMPA J D, HONG W K. Structural Performance of Detachable Precast Composite Column Joints with Mechanical Metal Plates[J]. Engineering Structures, 2018, 160:366-382. [9] NZABONIMPA J D, HONG W K. Experimental and Nonlinear Numerical Analysis of Precast Concrete Column Splices with High-Yield Metal Plates[J]. Journal of Structural Engineering, 2019, 145(2):. [10] LIU X C, HE X N, WANG H X, et al. Bending-Shear Performance of Column-to-Column Bolted-Flange Connections in Prefabricated Multi-High-Rise Steel Structures[J]. Journal of Constructional Steel Research, 2018, 145(6):28-48. [11] QIAO Q Y, ZHANG W W, MOU B, et al. Seismic Behavior of Exposed Concrete Filled Steel Tube Column Bases with Embedded Reinforcing Bars:Experimental Investigation[J]. Thin Walled Structures, 2019, 136:367-381. [12] KUTTAB A, DOUGILL J W. Grouted and Dowelled Jointed Precast Concrete Columns:Behaviour in Combined Bending and Compression[J]. Magazine of Concrete Research, 1988, 40(144):131-142. [13] WU C L, YU S J, LIU J M, et al. Development and Testing of Hybrid Precast Steel-Reinforced Concretn to H Shape Steel Beam Connections Under Cyclic Loading[J/OL]. Engineering Structures, 2020, 211.https://doi.org/10.1016/j.engstruct.2020.110460. [14] WU C L, LIU J M, SHI W. Seismic Performance of Composite Joints Between Prefabricated Steel-Reinforced Concrete Columns and Steel Beams:Experimental Study[J]. Bulletin of Earthquake Engineering, 2020, 18(8):3817-3841. [15] 陈珊珊, 刘继明, 吴成龙, 等. 装配式SRC柱-钢梁边节点抗震性能分析[J]. 辽宁工程技术大学学报(自然科学版), 2019, 38(6):536-543. [16] 吴成龙, 刘继明, 谭文娅, 等. 装配式型钢混凝土组合节点在静力荷载作用下的有限元分析[J]. 山东农业大学学报(自然科学版), 2020(4):1-7. [17] 朱伟庆, 贾金青. 型钢超高强混凝土柱抗震性能试验研究[J]. 建筑结构学报, 2015, 36(4):57-67. [18] 中华人民共和国住房和城乡建设部.混凝土结构设计规范:GB 50010-2010[S]. 北京:中国建筑工业出版社, 2010.
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