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Dynamic performance of concrete slabs reinforced with steel and GFRP bars under impact loading

机译:冲击载荷下用钢和GFRP棒加固混凝土板的动态性能

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Reinforced concrete slabs are common structural elements that could be exposed to impact loading. Although use of reinforced concrete slabs and utilization of Fiber Reinforced Polymer (FRP) as alternative to traditional steel reinforcement slabs are growing, but the influence of various parameters on their response under impact loads is not properly evaluated. This study investigated the effect of rebar's material, amount and arrangement of reinforcements, concrete strength and slab thickness on dynamic behavior of reinforced concrete slabs using both laboratory experiments and numerical simulations. Performance of fifteen 1000 x 1000 mm concrete slabs, including two 75 mm thick plain slabs, five 75 mm thick steel reinforced concrete slabs, six 75 mm thick reinforced concrete slabs with Glass Fiber Reinforced Polymer (GFRP) bars and two 100 mm thick steel reinforced concrete slabs under drop weight impact loads was experimentally investigated. Failure mode, crack development, displacement-time, strain-time, and acceleration-time responses were studied and compared between various slabs. Finite element analyses and simulation of specimens were conducted using LS-DYNA explicit software. The results obtained from experiments and numerical models are in good agreement, and they indicate that increasing the reinforcement ratio or the slab thickness enhance the behavior of RC slabs under impact loads. By adjusting the amount and arrangement of GFRP, better performance in GFRP slabs than steel reinforced slabs can be achieved, which considering the corrosion resistance of this material, can make it an appropriate selection of reinforcement material.
机译:钢筋混凝土板是可能暴露于冲击载荷的常见结构元素。虽然使用钢筋混凝土板和纤维增强聚合物(FRP)的使用作为传统钢筋板坯的替代,但不适当评估各种参数对其在冲击载荷下反应的影响。本研究调查了使用实验室实验和数值模拟的钢筋材料,混凝土强度和平板厚度对钢筋混凝土板的动态行为的影响。性能十五×1000毫米混凝土板,包括两块75毫米厚的平板,五个75毫米厚钢筋混凝土板,六个75毫米厚的钢筋混凝土板,玻璃纤维增​​强聚合物(GFRP)条和两种100毫米厚钢加固实验研究了下降重量载荷的混凝土板。在各种板之间进行了失效模式,裂缝开发,置换时间,压力时间和加速时间响应。使用LS-DYNA显式软件进行有限元分析和样本的模拟。从实验和数值模型获得的结果非常一致,并且它们表示增加加强率或板坯厚度在冲击载荷下提高RC板的行为。 By adjusting the amount and arrangement of GFRP, better performance in GFRP slabs than steel reinforced slabs can be achieved, which considering the corrosion resistance of this material, can make it an appropriate selection of reinforcement material.

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