湿气老化对由铝皮、竹环芯和生物基粘合剂制成的环保夹芯板机械性能的影响

Flávio Napolitano , Júlio Cesar dos Santos , Rodrigo José da Silva , Guilherme Germano Braga , José Ricardo Tarpani , Túlio Hallak Panzera , Fabrizio Scarpa
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摘要

近期的研究重点是利用可再生资源开发高性能夹层结构。采用竹环作为芯材和生物基粘合剂已成为一种很有前途的板材建筑可持续设计解决方案。因此,对这些材料进行加速老化试验以评估环境湿度对其降解和耐久性的影响至关重要。本研究评估了湿老化对环保夹芯板及其成分(铝皮、竹环芯和蓖麻油生物粘合剂)的物理机械性能的影响。在不同的湿度条件下,对带有压实和间隔竹环芯的夹芯板进行了机械评估。由于有机材料会随着时间的推移而膨胀和流失,竹环表现出不同的体积密度。在自然老化 2 年后,竹环的抗压性能也有所提高,但在相对湿度为 100% 的条件下老化 30 天后,竹环的抗压性能有所下降。生物基聚合物的机械性能在水老化暴露后得到增强。与采用间距环形芯结构的夹芯板相比,采用压实竹环芯结构的夹芯板具有更高的弯曲性能,而采用间距环形芯结构的夹芯板则会出现故障,其特点是两层表皮都出现起皱,然后脱落。
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Moisture ageing effects on the mechanical performance of eco-friendly sandwich panels made of aluminium skins, bamboo ring core and bio-based adhesives
Recent research has been focused on developing high-performance sandwich structures using renewable resources. The adoption of bamboo rings as a core material and bio-based adhesives has emerged as a promising sustainable design solution for panel construction. It is therefore critical to conduct accelerated ageing tests on these materials to evaluate the impact of environmental humidity on their degradation and durability. This study assessed the effects of moisture ageing on the physic-mechanical properties of eco-friendly sandwich panels and their constituents (aluminium skins, bamboo ring core and castor oil bio-adhesive). Mechanical evaluations of sandwich panels with compacted and spaced bamboo ring cores were performed under varying humidity conditions. Bamboo rings exhibited variable bulk density due to swelling and loss of organic material over time. They also demonstrated increased compressive properties after 2 years of natural ageing but reduced performance after 30 days at 100 % relative humidity. The mechanical properties of the bio-based polymer were enhanced through water-ageing exposure. Sandwich panels constructed with compacted bamboo ring cores exhibited higher bending properties than those with spaced ring core architecture, with the latter showing failures characterised by a wrinkling effect on both skins followed by debonding.
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