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The Mechanics and Design of a Non-tearing Floor Connection using Slotted Reinforced Concrete Beams

机译:开槽钢筋混凝土梁不撕裂地板连接的力学与设计

摘要

Ductile plastic hinge zones in beams of reinforced concrete frames are known to incur extensive damage and elongate. This ‘beam elongation’ can inflict serious damage to adjacent floor diaphragms, raising concerns of life safety. In light of this, the slotted reinforced concrete beam was investigated as a promising non-tearing floor substitute for conventional design. It consists of a conventional reinforced concrete beam, modified with a narrow vertical slot adjacent to the column face, running approximately three-quarters of the beam depth. Seismic rotations occur about the remaining concrete “top-hinge”, such that deformations are concentrated in the bottom bars of the beam, away from the floor slab, and beam elongation is minimised.The inclusion of the slot raised several design issues which needed to be addressed. These were the shear transfer across the top-hinge, buckling of bottom longitudinal reinforcement, low cycle fatigue, bond anchorage of reinforcement in interior joints, interior joint design, detailing with floor units and beam torsion resulting from eccentric floor gravity loads. These issues were conceptually investigated in this project. It was found that most issues could be resolved by providing additional reinforcement and/or specifying alternative detailing.As part of the experimental investigation, quasi-static cyclic tests were performed on in-plane beam-column joint subassemblies. Specimens tested included exterior and interior joint subassemblies with slotted-beams and a conventional exterior joint as a benchmark. This was followed by a test on a slotted-beam interior joint subassembly with precast floor units and imposed gravity load. Experimental tests revealed significant reductions in damage to both the beam and floor when compared to conventional beams. Issues of bar buckling, bond-slip and altered joint behaviour were also highlighted, but were resolved in the final test.A simple analytical procedure to predict the moment-rotation response of slotted-beams was developed and verified with experimental results. This was used to perform sensitivity studies to determine appropriate limits for the concrete top-hinge depth, top-to-bottom reinforcement ratio and depth of diagonal shear reinforcement.For the numerical investigation, a multi-spring model was developed to represent the flexural response of slotted-beams. This was verified with experimental tests and implemented into a five-storey, three-bay frame for earthquake time history analyses. To provide a benchmark, a conventional frame was also setup using the plastic hinge element developed by Peng (2009). Time history analyses showed that the slotted-beam frame response was very similar to the response of a conventional frame. Due to greater hysteretic damping, there was a slight reduction in the average interstorey drift and lateral displacement envelopes. The slotted-beam frame also exhibited 40% smaller residual drifts than the conventional frame.The research carried out in this thesis showed slotted reinforced concrete beams to be an effective non-tearing floor solution, which could provide a simple and practical substitute for conventional reinforced concrete design.
机译:众所周知,钢筋混凝土框架梁中的延性塑料铰链区会造成广泛的损坏并伸长。这种“光束伸长率”可能会严重损坏相邻的地板隔膜,从而引发生命安全隐患。有鉴于此,对开槽钢筋混凝土梁进行了研究,以作为传统设计的有希望的非撕裂地板替代品。它由传统的钢筋混凝土梁组成,并经过修改后在靠近立柱面的地方有一个狭窄的垂直槽,大约是梁深的四分之三。剩余的混凝土“顶部铰链”发生地震旋转,从而使变形集中在梁的底部钢筋中,远离楼板,并使梁的伸长最小化。狭缝的存在引发了一些设计问题,这些问题需要被解决。这些是穿过顶部铰链的剪力传递,底部纵向钢筋的屈曲,低周疲劳,内部节点中钢筋的粘结锚固,内部节点设计,地板单元的细部设计以及偏心地板重力载荷导致的梁扭转。在本项目中对这些问题进行了概念研究。结果发现,大多数问题都可以通过提供额外的加固和/或指定其他细节来解决。作为实验研究的一部分,对平面内梁柱接头子组件进行了准静态循环测试。测试的标本包括带有开槽梁的外部和内部接头子组件,以及以基准为基准的常规外部接头。接下来是对带有预制地板单元并施加重力载荷的缝梁内部接头子组件的测试。实验测试表明,与传统的横梁相比,横梁和地面的损伤都大大降低了。还强调了钢筋屈曲,粘结滑移和接头行为改变的问题,但这些问题在最终测试中得到了解决。提出了一种简单的分析方法来预测开槽梁的弯矩转动响应,并得到了实验结果的验证。该方法用于进行敏感性研究,以确定混凝土顶部铰链深度,顶部对底部的钢筋比率和对角剪力钢筋的深度的适当限制。为进行数值研究,建立了一个多弹簧模型来表示挠曲响应开槽光束。通过实验测试对此进行了验证,并将其实施为五层,三层的框架,用于地震时程分析。为了提供基准,还使用Peng(2009)开发的塑料铰链元件设置了传统框架。时程分析表明,缝隙光束帧响应与常规帧的响应非常相似。由于更大的滞后阻尼,平均层间漂移和横向位移范围略有减小。开槽梁框架还具有比传统框架小40%的残余漂移。本文的研究表明,开槽钢筋混凝土梁是一种有效的非撕裂地板解决方案,可以为传统的钢筋混凝土提供简单实用的替代方案具体的设计。

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