双紫外光-热固化生物基间苯二酚环氧树脂-硅藻土复合材料的声学性能和阻燃性能

Q.-B. Nguyen, H. Vahabi, A. Rios de Anda, D. Versace, V. Langlois, C. Perrot, V. Nguyen, S. Naili, E. Renard
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引用次数: 6

摘要

利用阳离子聚合的活性特性,采用绿色两步法制备了新型全生物基间苯二酚环氧树脂-硅藻土复合材料。该工艺包括光引发和随后的热暗固化,从而可以获得厚且不透明的环氧硅藻土复合材料,而不需要任何溶剂和胺基硬化剂。研究了硅藻土含量和压实压力对复合材料显微结构、热性能、力学性能、声学性能和火焰性能的影响。对吸声阻燃建筑材料的发展,应考虑力学性能、声学性能和阻燃性能之间的折衷。因此,硅藻土质量分数为50%,压实压力为3.9 MPa的复合材料被认为是本研究的最佳复合材料。该复合材料具有良好的低频吸声性能,修正吸声平均值(MSAA)为0.08(样品厚度仅为5 mm);热解燃烧流量热计(PCFC)分析显示,该复合材料的热释放率峰值(pHRR)为109 W/g,总放热量为5 kJ/g,阻燃性能优异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dual UV-Thermal Curing of Biobased Resorcinol Epoxy Resin-Diatomite Composites with Improved Acoustic Performance and Attractive Flame Retardancy Behavior
This study has developed novel fully bio-based resorcinol epoxy resin–diatomite composites by a green two-stage process based on the living character of the cationic polymerization. This process comprises the photoinitiation and subsequently the thermal dark curing, enabling the obtaining of thick and non-transparent epoxy-diatomite composites without any solvent and amine-based hardeners. The effects of the diatomite content and the compacting pressure on microstructural, thermal, mechanical, acoustic properties, as well as the flame behavior of such composites have been thoroughly investigated. Towards the development of sound absorbing and flame-retardant construction materials, a compromise among mechanical, acoustic and flame-retardant properties was considered. Consequently, the composite obtained with 50 wt.% diatomite and 3.9 MPa compacting pressure is considered the optimal composite in the present work. Such composite exhibits the enhanced flexural modulus of 2.9 MPa, a satisfying sound absorption performance at low frequencies with Modified Sound Absorption Average (MSAA) of 0.08 (for a sample thickness of only 5 mm), and an outstanding flame retardancy behavior with the peak of heat release rate (pHRR) of 109 W/g and the total heat release of 5 kJ/g in the pyrolysis combustion flow calorimeter (PCFC) analysis.
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