Antolinc David, Filipič Kristina Eleršič
Faculty of Civil and Geodetic Engineering, University of Ljubljana, Jamova 2, SI-1000 Ljubljana, Slovenia.
FILC/Freudenberg, Trata 48, SI-4220 Škofja Loka, Slovenia.
Polymers (Basel). 2021 Sep 14;13(18):3090. doi: 10.3390/polym13183090.
The construction and building sector is responsible for a large share of energy and material used during the life cycle of a building. It is therefore crucial to apply a circular economy model within the process wherever possible to minimize the impact on the environment. In this paper, the possibility of producing thermal and acoustic boards from industrial nonwoven waste textile is studied and presented. The nonwoven polyester textile obtained directly from the production line in the form of strips and bales was first shredded into smaller fractions and then in the form of pile compressed with a hot press to form compact thermal insulation boards. The first set of specimens was prepared only from waste polyester nonwoven textile, whereas the second set was treated with sodium silicate in order to check the material's reaction to fire performance. The experimental work was conducted to define the acoustic properties, reaction to fire behavior and thermal conductivity of the produced specimens. The obtained results show that the thermal conductivity coefficient of specimens without added water glass dissolution is near to the values of conventional materials used as thermal insulation in buildings. The reaction to fire testing proved that the addition of water glass actually propagates the progressive flame over the entire product. It can be concluded that the presented thermal insulation can be used as an adequate and sustainable solution for building construction purposes.
建筑行业在建筑物的生命周期中消耗了大量的能源和材料。因此,尽可能在该过程中应用循环经济模式以尽量减少对环境的影响至关重要。本文研究并介绍了利用工业非织造废弃纺织品生产隔热隔音板的可能性。直接从生产线以条带和捆包形式获得的非织造聚酯纺织品首先被粉碎成较小的部分,然后以堆垛形式用热压机压缩以形成紧凑的隔热板。第一组试样仅由废弃聚酯非织造纺织品制备,而第二组则用硅酸钠处理,以检查材料的防火性能反应。开展实验工作以确定所生产试样的声学性能、防火性能和热导率。所得结果表明,未添加水玻璃溶液的试样的热导率系数接近建筑物中用作隔热材料的传统材料的值。防火测试证明,添加水玻璃实际上会使火焰在整个产品上蔓延。可以得出结论,所提出的隔热材料可作为建筑施工目的的一种适当且可持续的解决方案。