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泡沫三聚氰胺树脂-二氧化硅气凝胶复合衍生隔热涂层

Foamy Melamine Resin-Silica Aerogel Composite-Derived Thermal Insulation Coating.

作者信息

Wang Dongfang, Ma Yabin, Ma Yingjie, Liu Baolei, Sun Dewen, Ran Qianping

机构信息

State Key Laboratory of High-Performance Civil Engineering Materials, Jiangsu Sobute New Materials Co., Ltd., Nanjing 210008, China.

School of Materials Science and Engineering, Southeast University, Nanjing 211189, China.

出版信息

Nanomaterials (Basel). 2025 Jan 17;15(2):135. doi: 10.3390/nano15020135.

DOI:10.3390/nano15020135
PMID:39852750
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11767387/
Abstract

A novel class of SiO aerogel-based resin composite with a self-formed foamy structure and an extremely low thermal conductivity, as well as excellent fire resistance, was fabricated via a room temperature and atmospheric pressure route. The self-formed foamy structure was achieved by utilizing SiO aerogel particles not only as a thermal insulative functional additive filler but also as nano-sized solid particles in a Picking emulsion system, adjusting the surface tension as a stabilizer at the interface between the two immiscible phases (liquid and air in this case). The results of foamy structure analyses via scanning electron microscopy, micro-CT, and N adsorption-desorption isotherms validate the successful generation of a micro-scale porous structure with the enhancement of the aerogel nano-scale solid particles at the wall as a stabilizer. A combination of multiscale pores imbues the aerogel-based foamy coating with a low thermal conductivity, as well as a high cohesive strength. For the foamy coating studied, with variable emulsion/foaming agent/aerogel ratios of 1/2/x, the thermal conductivity decreases from 0.141 to 0.031 W/m·K, and the cohesive strength increases from being non-detectable to 0.41 MPa. The temperature difference, which is a direct indicator of the thermal insulation behavior of the foamy coating, can increase from 12.1 °C to 48.6 °C under an 80 °C hot plate.

摘要

通过室温常压法制备了一种新型的具有自形成泡沫结构、极低热导率和优异耐火性的SiO气凝胶基树脂复合材料。自形成泡沫结构的实现是通过将SiO气凝胶颗粒不仅用作隔热功能添加剂填料,还用作Pickering乳液体系中的纳米级固体颗粒,在两种不混溶相(在这种情况下为液体和空气)之间的界面处调节表面张力作为稳定剂。通过扫描电子显微镜、微型CT和N吸附-脱附等温线进行的泡沫结构分析结果证实,成功生成了具有增强的气凝胶纳米级固体颗粒作为壁稳定剂的微观多孔结构。多尺度孔隙的组合赋予气凝胶基泡沫涂层低的热导率以及高的内聚强度。对于所研究的泡沫涂层,乳液/发泡剂/气凝胶的比例为1/2/x时,热导率从0.141 W/m·K降至0.031 W/m·K,内聚强度从不可检测增加到0.41 MPa。温度差是泡沫涂层隔热性能的直接指标,在80°C热板下可从12.1°C增加到48.6°C。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf4f/11767387/e9f2af1b3440/nanomaterials-15-00135-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf4f/11767387/e9f2af1b3440/nanomaterials-15-00135-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf4f/11767387/e9f2af1b3440/nanomaterials-15-00135-g003.jpg

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