混合聚氨酯无机绝热材料在空气和惰性气氛中加热时的物理化学变化

K. A., Naganovsky Yu., K. E., A. R.
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摘要

目的。本文介绍了混合聚氨酯无机绝热材料在不同大气环境下动态加热至800°C时发生的物理化学过程的研究结果。研究的对象是韩国制造的隔热材料“泡沫科技1550”的工业样品。方法。在工作过程中采用了热重分析和红外-傅立叶光谱法。在热重测试过程中,通过暂停实验制备光谱分析样品。发现。采用热重法和红外-傅立叶光谱法对杂化保温材料进行了综合研究,得出:——制备该材料所用的多异氰酸酯本质上为脂肪族;-混合保温样品含有约40%的无机物,大概是气凝胶二氧化硅;-混合绝热材料的分解有三个主要阶段,在空气中和在惰性气氛中;-对混合样品加热时红外光谱变化的分析表明,在分解的第一阶段,无论大气环境如何,二氧化硅气凝胶的硅醇基团都随着水的释放而发生缩合反应;在第二阶段,无机骨架继续增厚,化学聚氨酯与无机物的键被破坏,聚氨酯组分碳化开始。研究应用领域。结果给出了火灾中物质分解过程的概念。在氧化和惰性环境中表现出不同的行为。这对于比较一组新材料与已知类型的聚合物绝热材料的火灾危险性和在建筑施工中的可能应用是很重要的。结论。本文研究了一类新型材料即有机-无机杂化绝热材料在加热时的化学结构和物理化学变化。本文是作者团队对现代类型聚合物绝热材料的热行为进行系统研究的延续。
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PHYSICOCHEMICAL CHANGES OF HYBRID POLYURETHANE INORGANIC THERMAL INSULATION WHEN HEATING IN AIR AND IN AN INERT ATMOSPHERE
Purpose. The article presents the results of a study of physicochemical processes occurring when a hybrid polyurethane inorganic thermal insulation is heated under dynamic conditions up to 800 °C in different atmospheric environments. The object of the study was an industrial sample of thermal insulation “FoamTech 1 550” made in South Korea. Methods. In the course of the work thermo-gravimetric analysis and IR-Fourier spectrometry were used. Samples for spectrometric analysis were prepared in the process of thermogravimetric tests by suspending the experiment. Findings. As the result of the combined studying hybrid thermal insulation material by thermogravimetry and IR-Fourier spectrometry methods, the following was established: – polyisocyanate used for obtaining the material is aliphatic in nature; – the hybrid thermal insulation sample contains about 40 % inorganics, presumably aerogel silica; – there are three main stages of hybrid thermal insulation decomposition, both in air and in an inert atmosphere; – analysis of the changes in IR spectra when heating the hybrid sample showed that at the first stage of decomposition, regardless of the atmospheric environment, the condensation reaction of silanol groups of silica aerogel takes place with the water release; – at the second stage, thickening of the inorganic framework continues, chemical polyurethane bonds with the inorganic are destroyed, and polyurethane component carbonization begins. Research application field. The results give the idea of material decomposition process in a fire. Differences in behavior in oxidizing and inert environments are shown. This is important for comparing a new group of materials with the already known types of polymer thermal insulation in terms of their fire hazard and possible application in building construction. Conclusions. The paper studies the chemical structure and physicochemical changes when heating the new group of materials, namely hybrid organic-inorganic thermal insulation materials. The article is a continuation of a team of authors’ systematic study of a thermal behavior of modern types of polymer thermal insulation.
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