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Large Scale Testing and Modelling of Reinforced Concrete Flat Plate Systems in Seismic Areas

机译:地震区钢筋混凝土平板系统的大型测试与建模

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摘要

The focus of this research is on developing new punching shear retrofit techniques for slab-column connections to improve the seismic response of flat-plate systems. Previous tests have shown the effectiveness of using shear reinforcement to enhance the shear strength and ductility of individual slab-column connections. However, while ductility reduces the earthquake impact on structures, increased stiffness attracts higher forces. Herein, a new type of punching shear retrofit element, shear bolts with flexible washers, is introduced. The flexible washers allow for shear crack opening during the lateral displacements, while at the same time providing control of the crack width by using the appropriate washer thickness and/or stiffness. A set of six slab-column connections retrofitted with this new type of shear reinforcement was tested. The results show that this technique improves the lateral load-deformation response of the connections, increasing the ductility without a commensurate increase in stiffness. Lower stiffness results in lower shear forces attracted by the column and continuous opening and closing of cracks results in higher energy dissipation through friction within the crack interfaces.The effect of this type of shear reinforcement on the response of an assembled structure is also important. This study investigates such behaviour analytically, using various connection hysteretic responses to check how energy dissipation within individual connections affects the overall energy dissipation of a flat-plate system. Different lateral load supporting systems were investigated to determine the hysteretic response needed at slab-column connections to avoid sudden collapse.This research shows how to achieve the desired characteristics of a flat plate structure subjected to an earthquake - sufficient strength and stiffness to withstand moderate intensity shaking, and sufficient ductility to act in parallel with a more rigid structural system under strong base motions. Such design of slab-column connections is in agreement with the philosophy of ”capacity design”, where the designer ”tells the structure what it should do in the event of a major earthquake”. The presented system was designed for slab retrofit. However, it can be anticipated that similar concepts can be used in the construction of new slabs in seismic zones.
机译:这项研究的重点是开发用于板-柱连接的新型冲切剪切改造技术,以改善平板系统的地震响应。先前的测试表明,使用剪力增强来增强单个平板-柱连接的剪力和延性的有效性。但是,尽管延性减少了地震对结构的影响,但增加的刚度吸引了更大的力。在此,介绍了一种新型的冲切剪切改造元素,即带有柔性垫圈的剪切螺栓。柔性垫圈允许在横向位移期间产生剪切裂纹,同时通过使用适当的垫圈厚度和/或刚度来控制裂纹宽度。测试了用这种新型抗剪钢筋改造的一组六个平板-柱连接。结果表明,该技术改善了连接件的横向载荷-变形响应,从而在不相应增加刚度的情况下提高了延性。较低的刚度导致较低的剪切力被圆柱体吸引,并且裂纹的连续打开和闭合会导致裂纹界面之间的摩擦,从而导致更高的能量耗散。这种类型的剪切增强对组装结构的响应的影响也很重要。本研究使用各种连接滞后响应来分析地研究这种行为,以检查单个连接内的能量耗散如何影响平板系统的整体能量耗散。研究了不同的横向载荷支撑系统以确定在平板-柱连接处需要避免的突然坍塌的滞后响应。这项研究表明了如何获得受地震作用的平板结构的所需特性-足够的强度和刚度以承受中等强度振动和足够的延展性,以在强基础运动下与更刚性的结构系统并行作用。平板-柱连接的这种设计与“容量设计”的哲学相一致,在该设计中,设计师“告诉结构在发生大地震时应采取的措施”。提出的系统是为板坯改造而设计的。然而,可以预见,在地震带中的新板的构造中可以使用类似的概念。

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    Topuzi Dritan;

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  • 年度 2015
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