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Development of innovative hybrid sandwich panel slabs: Advanced numerical simulations and parametric studies

机译:创新型混合夹心板的开发:先进的数值模拟和参数研究

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An innovative hybrid sandwich slab for the rehabilitation of floors in old masonry buildings was conceived, designed, and tested. This structural system is a lightweight composite floor consisting of bottom skin and shear ribs in Glass Fiber Reinforced Polymer (GFRP), a top layer of Deflection Hardening Cement Composites (DHCC), and Polyurethane foam core. In the first part of this study, the material/structural performance of the panel's concept was assessed by experimental tests. The second part is now dedicated to the execution of advanced numerical simulations, including parametric studies, for assisting on the optimization of this composite slab system and investigating the influence of the relevant characteristics of GFRP and DHCC components. The influence of considering orthotropic behavior for the GFRP components and linear or nonlinear behavior for the DHCC are also investigated numerically in terms of accomplishing serviceability and ultimate limit state requisites for this structural system. The parametric studies show that the thickness of GFRP rib is the most important parameter to increase the load carrying capacity of this type of slabs. Based on the results of these parametric studies, two slabs are built and tested experimentally, and the obtained results are not only used to demonstrate the effectiveness of the developed structural system, but also to appraise the predictive performance of the constitutive models adopted in the FEM-based simulations. (C) 2016 Elsevier Ltd. All rights reserved.
机译:设计,设计和测试了一种创新的混合夹心板,用于修复旧砖石建筑的地板。该结构系统是一种轻质的复合地板,由玻璃纤维增​​强聚合物(GFRP)中的底部蒙皮和抗剪肋,挠曲硬化水泥复合材料(DHCC)的顶层和聚氨酯泡沫芯组成。在本研究的第一部分中,通过实验测试评估了面板概念的材料/结构性能。第二部分现在致力于执行高级数值模拟,包括参数研究,以帮助优化此复合板系统并调查GFRP和DHCC组件相关特征的影响。还就实现该结构体系的可维护性和最终极限状态的要求,从数值上研究了考虑GFRP组件的正交各向异性行为和DHCC的线性或非线性行为的影响。参数研究表明,GFRP筋的厚度是增加此类板的承载能力的最重要参数。根据这些参数研究的结果,构建并测试了两个平板,获得的结果不仅用于证明已开发结构系统的有效性,而且还可以评估有限元法中采用的本构模型的预测性能。基于的模拟。 (C)2016 Elsevier Ltd.保留所有权利。

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