Calculation of Shear Capacity of Shear Walls with Small Shear-Span Ratio Based on Equivalent Diagonal Web Truss-Arch Model
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摘要: 基于等效斜向腹筋桁架-拱模型,考虑不同破坏模式和变形协调条件,提出了一种计算小剪跨比剪力墙受剪承载力的计算方法。该方法通过单位宽度的钢筋强度的等效原理在桁架作用中同时考虑了腹板水平钢筋和竖向钢筋对受剪承载力的作用,同时提出混凝土受压区高度的经验计算式,用以确定斜压杆的截面高度。在收集整理了359片小剪跨比剪力墙的试验数据的基础上,采用提出的方法对构件的受剪承载力进行计算,并与中、美、欧、日的四种相关规范的计算结果进行比较。结果表明:除日本AIJ规范外,其余规范对小剪跨比剪力墙受剪承载力的计算均偏于保守,而AIJ规范过高地估计了拱杆的高度,使其计算结果偏不安全;而提出的建议式可以较为准确地计算小剪跨比剪力墙的受剪承载力。
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关键词:
- 钢筋混凝土剪力墙 /
- 等效斜向腹筋桁架-拱模型 /
- 破坏模式 /
- 变形协调 /
- 受剪承载力
Abstract: Based on the equivalent diagonal web truss-arch model and considering different failure modes and deformation coordination conditions, a method for calculating the shear capacity of small shear-span ratio shear walls was proposed. The effects of both horizontal and vertical reinforcements in the web on the shear capacity of the member through the strain equivalence principle in the truss action were considered in the method, and an empirical formula to calculate the height of the compression zone for determining the section height of the concrete diagonal compression strut were also proposed. The test data of 359 small shear-span ratio shear walls were collected, and their shear capacity was calculated by using the method proposed in the paper, and compared with the Chinese, American, European and Japanese codes. The results showed that except for the Japanese AIJ code, the calculation of shear capacity of small shear-span ratio shear walls were conservative, while the AIJ code overestimated the height of the arch bar, which made its calculation results unsafe; while the proposed formula could calculate the shear bearing capacity of small shear-span ratio shear walls more accurately. -
[1] 徐培福, 黄吉锋, 陈富盛. 近50年剪力墙结构震害及其对抗震设计的启示[J]. 建筑结构学报, 2017, 38(3):1-13. [2] PAULAY T, PRIESTLEY M J N, SYNGE A J. Ductility in earthquake resisting squat shearwalls[J]. ACI Journal Proceedings, 1982, 79(4):257-269. [3] 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. [4] ACI 318 Committee. Building code requirements for structural concrete and commentary:ACI 318-14[S]. Farmington Hill, MI, US:American Concrete Institute, 2014. [5] ECN. Eurocode CEN 8:design of structures for earthquake resistance-part 1:general rules, seismic actions and rules for buildings:EN 1998-1:2004[S]. Brussels:European Committee for Normalization, 2004. [6] AIJ. Structural design guidelines for reinforced concrete buildings[S]. Tokyo, Japan:Architectural Institute of Japan, 1999. [7] HAN K J, MAU S T, HSU T T. Ductile and brittle failures of reinforced concrete wall elements subjected to shear[C]//Preliminary Proceedings Volume of International Workshop on Concrete Shear in Earthquake University of Houston.1991. [8] FARVASHANY F E, FOSTER S J, RANGAN B V. Strength and deformation of high strength concrete shearwalls[J]. ACI Structural Journal, 2008,105(1):21-29. [9] HWANG S J, LEE H J. Strength prediction for discontinuity regions by softened strut-and-tie model[J]. Journal of Structural Engineering, 2002, 128:1519-1526. [10] LEIVA G H, MONTANO E J C. Resistencia al corte de muros de hormigon armado[J]. Revista de Ing Sismica, 2001, 64:1-18. [11] WOOD S L. Shear strength of low-rise reinforced concrete walls[J]. ACI Structural Journal, 1990, 87(1):99-107. [12] LEONHARDT F. Reducing the shear reinforcement in reinforced concrete beams and slabs[J]. Magazine of Concrete Research, 2006, 17(53):187-198. [13] ICHINOSE T. A shear design equation for ductile RC members[J]. Earthquake Engineering and Structural Dynamics, 1992, 21(3):197-214. [14] KIM D J, KIM W, WHITE R N. Prediction of reinforcement tension produced by arch action in RC beams[J]. Journal of Structural Engineering, ASCE, 1998,124(6):611-622. [15] PAN Z F, LI B. Truss-arch model for shear strength of shear-critical reinforced concrete columns[J]. Journal of Structural Engineering, 2013, 139(4):548-560. [16] 金辰华, 潘钻峰, 吴畅, 等. 钢筋混凝土剪力墙剪切刚度计算的斜向腹筋桁架-拱模型[J]. 建筑结构学报, 2018, 39(3):130-138. [17] 金辰华. 高轴压比下小剪跨比RC剪力墙抗震性能和设计方法研究[D]. 南京:东南大学,2019. [18] OESTERLE R G, ARISTIZABAI-OCHOA J D, SHIU K N, et al. Web crushing of reinforced concrete structural walls[J]. ACI Structural Journal, 1984, 81(3):231-241. [19] PRIESTLEY M J N, VERMA R, XIAO Y. Seismic shear strength of reinforced concrete columns[J]. Journal of Structural Engineering, 1994, 120(8):2310-2329. [20] FANG E. Failure modes of RC tall shear walls[C]//Preliminary Proceedings Volume of International Workshop on Concrete Shear in Earthquake University of Houston.1991. [21] WAEL K. Shear strength of squat walls:a strut-and-tie model and closed-form design formula[J]. Engineering Structures, 2015, 84, 430-438. [22] VECCHIO F J, COLLINS M P. The modified compression field theory for reinforced concrete elements subjected to shear[J]. ACI Journal, 1986, 83(2):219-231.
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