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Sustainable thermal insulation biocomposites from rice husk, wheat husk, wood fibers and textile waste fibers: Elaboration and performances evaluation

机译:稻壳,麦壳,木纤维和纺织废纤维的可持续保温生物复合材料:阐述和表演评估

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Building materials derived from agricultural and industrial waste are becoming more attractive in the civil engineering and architectural applications because of their sustainability and lower environmental impact. In addition, substantial value can be added to the wastes by producing value added products from them. Therefore, four different types of locally available by-products (rice husk, wheat husk, wood fibers and textile waste fibers) were used to produce composites with a biodegradable poly(butylene adipate-co-terephthalate)/poly(lactic acid) (PBAT/PLA) blend binder by hot pressing. The morphological analysis of the composites revealed that the PBAT/ PLA binder had more affinity with wood and textile fibers than with wheat and rice husks. The prepared composites showed thermal stability until 250 degrees C. All the prepared biodegradable composites exhibited good compressive strength (11-40 MPa) and flexural strength (0.80-2.25 MPa). The observed mechanical properties allow easy handling without risk of breaking them when positioned in the buildings. The biodegradable composites were characterized for their thermal conductivity, diffusivity, effusivity and heat capacity. The density and thermal conductivity of the produced composite was in the range of 378-488 kg/m(3) and 0.08-0.14 W/m.K, respectively. The least thermal conductivity ie. 0.08 W/m.K was observed for the rice husk composite with a density of 378 kg/m(3) . A minimum water absorption (42%) was found in the rice husk composites after 24 h immersion in water. The composite samples were still cohesive after 24 h immersion in the water because of the water resistance nature of the binder. The prepared biodegradable composites meet most of the required properties for the indoor building insulation applications and show great potential to replace the conventional building material in current use.
机译:由于其可持续性和对环境影响降低,农业和工业废物的建筑材料在土木工程和建筑应用中变得更加吸引人。此外,可以通过从它们中添加增值产品来加入大量值。因此,使用四种不同类型的本地可用的副产品(稻壳,小麦壳,木纤维和纺织废纤维)用可生物降解的聚(丁烯己二酸丁二醇酯)/聚(乳酸)(PBAT)产生复合材料(PBAT) / PLA)通过热压混合粘合剂。复合材料的形态学分析显示,PBAT / PLA粘合剂与木材和纺织纤维具有比小麦和稻壳更具有亲和力。制备的复合材料显示出热稳定性,直到250℃。所有制备的可生物降解的复合材料表现出良好的抗压强度(11-40MPa)和弯曲强度(0.80-2.25MPa)。观察到的机械性能允许易于处理,而不会在建筑物中拆开它们的风险。可生物降解的复合材料的特征在于其导热率,扩散性,快速性和热容量。所生产的复合材料的密度和导热率分别为378-488kg / m(3)和0.08-0.14 w / m.k。导热率最小,即。稻壳复合材料观察到0.08W / m.K,密度为378 kg / m(3)。在24小时浸入水中,在稻壳复合材料中发现最小吸水性(42%)。由于粘合剂的耐水性质,在水中浸入水中后,复合样品仍然有内聚。制备的可生物降解的复合材料满足室内建筑绝缘应用的大部分所需的特性,并显示出替代当前使用中的传统建筑材料的潜力。

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