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含钢渣/三聚氰胺焦磷酸盐体系的阻燃硬质聚氨酯泡沫复合材料:一种利用冶金固体废物的新策略。

Flame-Retarded Rigid Polyurethane Foam Composites with the Incorporation of Steel Slag/Dimelamine Pyrophosphate System: A New Strategy for Utilizing Metallurgical Solid Waste.

机构信息

College of Environmental Science and Engineering, Nanjing Tech University, Nanjing 211816, China.

School of Architecture and Civil Engineering, Anhui University of Technology, Ma'anshan 243002, China.

出版信息

Molecules. 2022 Dec 14;27(24):8892. doi: 10.3390/molecules27248892.

Abstract

Rigid polyurethane (RPUF) was widely used in external wall insulation materials due to its good thermal insulation performance. In this study, a series of RPUF and RPUF-R composites were prepared using steel slag (SS) and dimelamine pyrophosphate (DMPY) as flame retardants. The RPUF composites were characterized by thermogravimetric (TG), limiting oxygen index (LOI), cone calorimetry (CCT), and thermogravimetric infrared coupling (TG-FTIR). The results showed that the LOI of the RPUF-R composites with DMPY/SS loading all reached the combustible material level (22.0 vol%~27.0 vol%) and passed UL-94 V0. RPUF-3 with DMPY/SS system loading exhibited the lowest pHRR and THR values of 134.9 kW/m and 16.16 MJ/m, which were 54.5% and 42.7% lower than those of unmodified RPUF, respectively. Additionally, PO· and PO· free radicals produced by pyrolysis of DMPY could capture high energy free radicals, such as H·, O·, and OH·, produced by degradation of RPUF matrix, effectively blocking the free radical chain reaction of composite materials. The metal oxides in SS reacted with the polymetaphosphoric acid produced by the pyrolysis of DMPY in combustion. It covered the surface of the carbon layer, significantly insulating heat and mass transport in the combustion area, endowing RPUF composites with excellent fire performance. This work not only provides a novel strategy for the fabrication of high-performance RPUF composites, but also elucidates a method of utilizing metallurgical solid waste.

摘要

硬质聚氨酯(RPUF)由于其良好的保温性能而被广泛应用于外墙保温材料。在本研究中,使用钢渣(SS)和二氰胺焦磷酸盐(DMPY)作为阻燃剂制备了一系列 RPUF 和 RPUF-R 复合材料。通过热重分析(TG)、极限氧指数(LOI)、锥形量热仪(CCT)和热重红外耦合(TG-FTIR)对 RPUF 复合材料进行了表征。结果表明,添加 DMPY/SS 的 RPUF-R 复合材料的 LOI 均达到可燃材料水平(22.0 vol%~27.0 vol%),并通过 UL-94 V0。添加 DMPY/SS 体系的 RPUF-3 表现出最低的 pHRR 和 THR 值,分别为 134.9 kW/m 和 16.16 MJ/m,比未改性 RPUF 分别降低了 54.5%和 42.7%。此外,DMPY 热解产生的 PO·和 PO·自由基可以捕获 RPUF 基体降解产生的高能自由基,如 H·、O·和 OH·,从而有效阻断复合材料的自由基链式反应。SS 中的金属氧化物与 DMPY 热解产生的聚偏磷酸反应,在燃烧过程中覆盖在碳层表面,显著阻隔了燃烧区的热和质量传递,使 RPUF 复合材料具有优异的防火性能。这项工作不仅为制备高性能 RPUF 复合材料提供了一种新策略,还阐明了一种利用冶金固体废物的方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0da/9783893/09b21e7d8f99/molecules-27-08892-g001.jpg

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