Sustainable composite materials with date palm rachis fibers for enhanced insulation and structural integrity

IF 2.6 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY Physica Scripta Pub Date : 2024-08-08 DOI:10.1088/1402-4896/ad69e2
Maroua Ferhat, Hocine Djemai, Elhachmi Guettaf Temam, Adnane Labed, Lemya Lahag and Youcef Sid Amer
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Abstract

This investigation focuses on the development and characterization of sustainable composite materials for insulation and structural components in the automotive and shipbuilding industries, by incorporating date palm Rachis fibers into an epoxy matrix. Thus, we evaluated the effect of the weight ratio (ranging from 0 to 15 wt%) of Rachis fibers (0.315 mm) on the mechanical, physical, surface morphology, thermal properties, and water absorption. It turns out according to the study that, the XRD pattern revealed the amorphous nature of the composite. This new material can be used as composite material itself or as a skin of a sandwich composite material. The Epoxy-Rachis (ER) composite materials exhibited a low thermal conductivity of 0.21 W/ (m.K) and a low thermal diffusivity of 0.17 mm2 s−1 presenting high thermal insulation and construction properties. The SEM images showed that increasing Rachis fiber concentration produces a heterogeneous bio-composite material. The resulting composition showcases ductile fracture behavior with a flexural modulus (Ef) of 3.21 GPa and a bending strength (σ) of 9.28 MPa. These attributes underline the suitability of this composite for applications requiring efficient thermal insulation and robust construction properties, while simultaneously contributing to environmental sustainability and environmental benefits.
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采用枣椰树树轴纤维的可持续复合材料可增强隔热性和结构完整性
这项研究的重点是通过在环氧树脂基体中加入枣椰树 Rachis 纤维,开发和鉴定用于汽车和造船业绝缘和结构部件的可持续复合材料。因此,我们评估了 Rachis 纤维(0.315 毫米)的重量比(0 至 15 wt%)对机械、物理、表面形态、热性能和吸水性的影响。研究结果表明,XRD 图谱显示了复合材料的无定形性质。这种新材料既可用作复合材料本身,也可用作夹层复合材料的表皮。环氧-Rachis(ER)复合材料的热导率低至 0.21 W/(m.K),热扩散率低至 0.17 mm2 s-1,具有很高的隔热性能和建筑性能。扫描电子显微镜图像显示,Rachis 纤维浓度的增加会产生一种异质生物复合材料。由此产生的成分具有韧性断裂行为,弯曲模量(Ef)为 3.21 GPa,弯曲强度(σ)为 9.28 MPa。这些特性突出表明,这种复合材料适用于需要高效隔热和坚固建筑性能的应用,同时还能促进环境的可持续发展并带来环境效益。
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来源期刊
Physica Scripta
Physica Scripta 物理-物理:综合
CiteScore
3.70
自引率
3.40%
发文量
782
审稿时长
4.5 months
期刊介绍: Physica Scripta is an international journal for original research in any branch of experimental and theoretical physics. Articles will be considered in any of the following topics, and interdisciplinary topics involving physics are also welcomed: -Atomic, molecular and optical physics- Plasma physics- Condensed matter physics- Mathematical physics- Astrophysics- High energy physics- Nuclear physics- Nonlinear physics. The journal aims to increase the visibility and accessibility of research to the wider physical sciences community. Articles on topics of broad interest are encouraged and submissions in more specialist fields should endeavour to include reference to the wider context of their research in the introduction.
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