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Impact Behaviour of Sandwich Panels Made of Flax Fiber-Reinforced Bio-Based Polymer Face Sheets and Foam Cores

机译:亚麻纤维增强生物基聚合物面板和泡沫芯制成的夹层面板的影响行为

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In this paper, the impact behaviour of sandwich panels constructed of flax fibre-reinforced polymer (FFRP) facings and closed cell polyisocyanurate foam cores is studied. A total of 27 sandwich beam specimens (1200 mm long and 150 mm wide) made of 75 mm thick foam have been fabricated. As a part of this study, three of these specimens have been tested under impact load at several energy levels. The main test parameter is the facing thickness (one, two, or three layers of FFRP). A bidirectional flax fabric (400 g/m2) was used for the face sheets and a foam with a density of 64 kg/m3 was used for the core. A bio-based epoxy resin, with an approximate bio-content of 30%, was used to make the FRP facings. Each specimen was tested multiple times increasing the kinetic energy until failure. The kinetic energy was increased by first increasing the drop height and then, if necessary, adding additional weight to the impactor and resetting the height to keep the increase in energy constant. The acceleration of the impactor, the drop weight velocity, and the top and bottom facing strains at mid-span will be measured. It is expected that ultimate energy absorption and strength of the specimens will increase as both the core density and facing thickness increase. The aim of this paper is to provide data to the field of study, provide insight into the structural behavior of these types of structures, and show their viability for use in infrastructure. With further research, there is the potential that these types of structures could be included in structural building codes. This research is part of a larger on-going study and more results will be available at the time of the conference.
机译:本文研究了亚麻纤维增强聚合物(FFRP)面板和封闭细胞多异氰脲酸酯泡沫芯的夹层面板的影响行为。共有27个夹层梁标本(1200毫米长,150毫米宽)由75毫米厚的泡沫制成。作为本研究的一部分,这些样品中的三种已经在几个能量水平下进行了冲击载荷测试。主测试参数是面向厚度(一个,两个或三层FFRP)。双向亚麻织物(400g / m 2)用于面部片材,并且使用密度为64kg / m 3的泡沫用于芯。使用近似生物含量为30%的生物基环氧树脂,用于使FRP面向朝向。每种样本经过多次测试,增加动能直至发生故障。通过首先增加滴高度,然后,如有必要,增加动能,然后向冲击器增加额外的重量并重置高度以保持能量常数增加。将测量撞击器,下降重量速度和顶部和顶部和底部和底部和底部的突出菌株的加速度。预期,标本的最终能量吸收和强度将随着芯密度和面向厚度的增加而增加。本文的目的是向研究领域提供数据,提供对这些类型结构的结构行为的洞察力,并显示其在基础设施中使用的可行性。通过进一步的研究,存在这些类型的结构可以包括在结构构建代码中。该研究是较大的录课的一部分,在会议时可以获得更多结果。

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