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不同类型木质纤维素基质的菌丝体基复合材料的机械、物理和化学特性。

Mechanical, physical and chemical characterisation of mycelium-based composites with different types of lignocellulosic substrates.

机构信息

Architectural Engineering Research Group, Department of Architectural Engineering, Vrije Universiteit Brussel, Brussels, Belgium.

Research Group of Microbiology, Department of Bioengineering Sciences, Vrije Universiteit Brussel, Brussels, Belgium.

出版信息

PLoS One. 2019 Jul 22;14(7):e0213954. doi: 10.1371/journal.pone.0213954. eCollection 2019.

Abstract

The current physical goods economy produces materials by extracting finite valuable resources without taking their end of the life and environmental impact into account. Mycelium-based materials offer an alternative fabrication paradigm, based on the growth of materials rather than on extraction. Agricultural residue fibres are inoculated with fungal mycelium, which form an interwoven three-dimensional filamentous network binding the feedstock into a lightweight material. The mycelium-based material is heat-killed after the growing process. In this paper, we investigate the production process, the mechanical, physical and chemical properties of mycelium-based composites made with different types of lignocellulosic reinforcement fibres combined with a white rot fungus, Trametes versicolor. This is the first study reporting the dry density, the Young's modulus, the compressive stiffness, the stress-strain curves, the thermal conductivity, the water absorption rate and a FTIR analyse of mycelium-based composites by making use of a fully disclosed protocol with T. versicolor and five different type of fibres (hemp, flax, flax waste, softwood, straw) and fibre processings (loose, chopped, dust, pre-compressed and tow). The thermal conductivity and water absorption coefficient of the mycelium composites with flax, hemp, and straw have an overall good insulation behaviour in all the aspects compared to conventional materials such as rock wool, glass wool and extruded polystyrene. The conducted tests reveal that the mechanical performance of the mycelium-based composites depends more on the fibre processing (loose, chopped, pre-compressed, and tow), and size than on the chemical composition of the fibres. These experimental results show that mycelium-composites can fulfil the requirements of thermal insulation and have the potential to replace fosile-based composites. The methology used to evaluate the suitability and selection of organic waste-streams proved to be effective for the mycelium-material manufacturing applications.

摘要

当前的实物经济在生产物质材料时,没有考虑其使用寿命结束和环境影响,而是从有限的有价值资源中提取物质。基于菌丝体的材料提供了一种替代制造范式,它基于材料的生长而不是提取。农业残余纤维用真菌菌丝体接种,菌丝体形成交织的三维丝状网络,将原料结合成一种轻质材料。在生长过程结束后,用热杀死菌丝体。在本文中,我们研究了不同类型的木质纤维素增强纤维与白腐真菌 Trametes versicolor 结合制成的基于菌丝体的复合材料的生产工艺、力学、物理和化学性能。这是首次利用白腐真菌 T. versicolor 和 5 种不同类型的纤维(大麻、亚麻、亚麻废料、软木、稻草)和纤维加工(松散、切碎、粉尘、预压缩和束)的完全公开协议,报告基于菌丝体复合材料的干密度、杨氏模量、压缩刚度、应力-应变曲线、导热系数、吸水率和 FTIR 分析的研究。与传统材料(如岩棉、玻璃棉和挤塑聚苯乙烯)相比,基于菌丝体的复合材料具有良好的整体隔热性能。所进行的测试表明,基于菌丝体的复合材料的机械性能更多地取决于纤维加工(松散、切碎、预压缩和束)和尺寸,而不是纤维的化学成分。这些实验结果表明,菌丝体复合材料可以满足隔热的要求,并有可能取代基于化石的复合材料。用于评估有机废料适用性和选择的方法证明了其在菌丝体材料制造应用中的有效性。

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