以最大限度的天然原材料为基础的夹层结构的耐久性:发泡聚苯乙烯、纤维素泡沫和聚乳酸在紫外线雨老化下的比较

Q4 Engineering
Pauli Hakala, O. Orell, E. Sarlin, E. Pääkkönen, Lauri Jutila, M. Kanerva
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引用次数: 0

摘要

在这项研究中,寻找商业软木的替代核心材料。此外,还对新型芯材的老化进行了研究。三明治结构中的生物基材料可用于体育器材、交通工具和家具,与合成材料相比,对环境的影响要小得多。本文研究了由纤维增强聚合物(FRP)蒙皮和各种可持续芯材制成的夹芯板,芯材厚度为6mm。核心材料是:软木、发泡聚苯乙烯(EPS)、纤维素泡沫和3D打印的聚乳酸(PLA)蜂窝晶格。使用亚麻纤维增强和生物基环氧树脂(30%生物含量)制成的FRP复合材料来制造皮肤,以与玻璃纤维增强的竞争对手复合材料竞争。面板性能的实验分析集中在平面外行为和在紫外线(UV)照射雨柜中调节引起的老化。结果表明,在机械和环境载荷下,含纤维素泡沫的夹层复合材料在剪切载荷(包括紫外线降雨效应)下的力学性能与含EPS芯的结构相当,甚至更好。使用数字图像相关(DIC)对故障定位进行了研究。3D打印的PLA蜂窝夹层结构具有高的绝对平面拉伸强度和剪切强度,但也具有最大的紫外线雨老化降解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Durability of sandwich structures with a maximized natural raw material basis: comparison of expanded polystyrene, cellulose foam and polylactic acid subjected to UV-rain aging
In this study, alternative core materials to commercial cork were searched for. Additionally, aging of new core materials was studied. Bio-based materials in sandwich structures can be useful for sports equipment, transportation, and furniture with much less impact on the environment in comparison with their synthetic counterparts. In this paper, sandwich panels made of fiber-reinforced polymer (FRP) skins and various sustainable core materials with a core thickness of 6 mm were studied. The core materials were: cork, expanded polystyrene (EPS), cellulose foam, and 3D-printed polylactic acid (PLA) honeycomb lattice. FRP composites made of flax fibre reinforcement and bio-based epoxy resin (30% bio-content) were used to manufacture the skins to compete the glass fibre reinforced rival composite. The experimental analysis of the panel performance focused on the out-of-plane behavior and aging due to conditioning in an ultraviolet (UV) irradiation-rain cabinet. The results showed that under mechanical and environmental loading, the sandwich composite with cellulose foam had comparable or even better mechanical performance under shearing load, including UV-rain effects, than structures with EPS cores. Failure localization was studied using digital image correlation (DIC). The 3D-printed PLA honeycomb sandwich structures had a high absolute flatwise tensile strength and shear strength but also greatest degradation by the UV-rain aging.
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来源期刊
Rakenteiden Mekaniikka
Rakenteiden Mekaniikka Engineering-Mechanical Engineering
CiteScore
0.50
自引率
0.00%
发文量
2
审稿时长
16 weeks
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