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带锚固板纵筋高强混凝土深梁抗剪性能试验研究

Experimental Study of Shear Performance of High-Strength Concrete Deep Beams with Longitudinal Reinforcement with Anchor Plate.

作者信息

Li Shu-Shan, Jin Tian-Cheng, Zheng Li-Ang, Zhang Guang-Yao, Li Hong-Mei, Chen Ai-Jiu, Xie Wei

机构信息

School of Civil Engineering and Communication, North China University of Water Resources and Electric Power, Zhengzhou 450046, China.

Engineering Technology Research Center for Structural Vibration Control and Health Monitoring of Henan Province, Zhengzhou 450046, China.

出版信息

Materials (Basel). 2023 Sep 1;16(17):6023. doi: 10.3390/ma16176023.

Abstract

As a transfer member at the discontinuous place of vertical load, the deep beam has a complex stress mechanism and many influencing factors, such as compressive strength of concrete, shear span ratio, and reinforcement ratio. At the same time, the stress analysis principle of traditional shallow beams is no longer applicable to the design and calculation of deep-beam structure. The main purpose of this paper was to use the strut-and-tie model to analyze its stress mechanism, and to verify the applicability of the model. Nine high-strength concrete deep-beam specimens with longitudinal reinforcement with an anchor plate of the same size were tested by two-point concentrated loading method. The effects of shear span ratio (0.3, 0.6, and 0.9), longitudinal reinforcement ratio (0.67%, 1.05%, and 1.25%), horizontal reinforcement ratio (0.33%, 0.45%, and 0.50%), and stirrup reinforcement ratio (0.25%, 0.33%, and 0.50%) on the failure mode, deflection curve, characteristic load, crack width, steel bar, and concrete strain of the specimens were analyzed. The results showed that the failure mode of deep-beam specimens was diagonal compression failure. The normal section cracking load was about 15 to 20% of the ultimate load, and the inclined section cracking load was about 30~40% of the ultimate load. The shear span ratio increased from 0.3 to 0.9, and the bearing capacity decreased by 32.9%. When the longitudinal reinforcement ratio increased from 0.67% to 1.25%, the ultimate load increased by 42.6%. The shear span ratio and longitudinal reinforcement ratio have a significant effect on the bearing capacity of the high-strength concrete deep beams with longitudinal reinforcement with an anchor plate. The shear capacity of nine high-strength concrete deep-beam specimens with longitudinal reinforcement with an anchor plate was calculated by national standards, and the results were compared with the calculation results of the Tan-Tang model, the Tan-Cheng model, SSTM, and SSSTM. The analysis showed that the softened strut-and-tie model takes into account the softening effect of compressive concrete, and is a more accurate mechanical model, which can be applied to predict the shear capacity of high-strength concrete deep-beam members with longitudinal reinforcement with an anchor plate.

摘要

作为竖向荷载不连续处的传递构件,深梁具有复杂的受力机制和诸多影响因素,如混凝土抗压强度、剪跨比和配筋率等。同时,传统浅梁的应力分析原理已不适用于深梁结构的设计与计算。本文的主要目的是采用拉压杆模型分析其受力机制,并验证该模型的适用性。采用两点集中加载法对9个配置相同尺寸锚固板纵筋的高强混凝土深梁试件进行了试验。分析了剪跨比(0.3、0.6和0.9)、纵筋配筋率(0.67%、1.05%和1.25%)、水平配筋率(0.33%、0.45%和0.50%)以及箍筋配筋率(0.25%、0.33%和0.50%)对试件破坏模式、挠度曲线、特征荷载、裂缝宽度、钢筋和混凝土应变的影响。结果表明,深梁试件的破坏模式为斜压破坏。正截面开裂荷载约为极限荷载的15%至20%,斜截面开裂荷载约为极限荷载的30%至40%。剪跨比从0.3增大到0.9,承载力降低了32.9%。纵筋配筋率从0.67%增大到1.25%时,极限荷载提高了42.6%。剪跨比和纵筋配筋率对配置锚固板纵筋的高强混凝土深梁的承载力有显著影响。按照国家标准对9个配置锚固板纵筋的高强混凝土深梁试件的抗剪承载力进行了计算,并将结果与谭-唐模型、谭-程模型、SSTM和SSSTM的计算结果进行了对比。分析表明,软化拉压杆模型考虑了混凝土受压的软化效应,是一种更为精确的力学模型,可用于预测配置锚固板纵筋的高强混凝土深梁构件的抗剪承载力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f7aa/10488620/363aa45d962d/materials-16-06023-g001.jpg

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