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首页> 外文期刊>Composites Part A: Applied Science and Manufacturing. >Static and fatigue bending behavior of pultruded GFRP sandwich panels with through-thickness fiber insertions
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Static and fatigue bending behavior of pultruded GFRP sandwich panels with through-thickness fiber insertions

机译:带厚度插入纤维的拉挤GFRP夹芯板的静态和疲劳弯曲行为

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This paper presents the findings of a research program that was undertaken to evaluate the static and fatigue characteristics of an innovative 3-D glass fiber reinforced polymer (GFRP) sandwich panel proposed for civil infrastructure and transportation applications. The research consists of analytical modeling verified by experimental results. A rational analytical model is presented and used to evaluate the effective elastic modulus, shear modulus and degree of composite interaction of the panels to resist one-way bending. The experimental program was conducted in two phases to study the static and fatigue behavior of the panels. In the first phase a total of 730 sandwich beams were tested to evaluate the effect of different parameters on the fundamental behavior of the panel. The parameters considered include the pattern and density of through-thickness fiber insertions, the overall thickness of the panels, and the number of FRP plies in the face skins. The study indicates that the shear behavior and degree of composite interaction of the panels is sensitive to the configuration of the panel core. The second phase of the experimental program included testing of 24 additional sandwich panels to evaluate the fatigue behavior. The results of the experimental program indicate that the panels with stiffer cores generally exhibited a higher degree of degradation than panels with more flexible cores. The findings of this study indicate that the proposed panels represent a versatile construction system which can be configured to achieve the specific design demands for civil engineering infrastructure applications.
机译:本文介绍了一项研究计划的结果,该研究计划旨在评估针对民用基础设施和交通运输应用而提出的创新3D玻璃纤维增​​强聚合物(GFRP)夹芯板的静态和疲劳特性。该研究包括经实验结果验证的分析模型。提出了一种合理的分析模型,并用于评估有效的弹性模量,剪切模量和面板抵抗单向弯曲的复合相互作用程度。实验程序分两个阶段进行,以研究面板的静态和疲劳行为。在第一阶段,总共测试了730个夹层梁,以评估不同参数对面板基本性能的影响。考虑的参数包括全厚度纤维插入物的图案和密度,面板的总厚度以及面部皮肤中FRP层的数量。研究表明,板的剪切行为和复合相互作用程度对板芯的构型敏感。实验程序的第二阶段包括测试24个附加的夹心板以评估疲劳行为。实验程序的结果表明,与具有更柔韧性的芯板相比,具有较硬芯的板通常表现出更高的降解程度。这项研究的结果表明,所提出的面板代表了一种通用的建筑系统,可以对其进行配置以实现土木工程基础设施应用的特定设计需求。

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