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Anaerobic biodegradation of biocomposites for the building industry.

机译:建筑行业生物复合材料的厌氧生物降解。

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Sustainable construction materials are a new area of interest. Materials are needed that release no greenhouse gas emissions during manufacturing, require minimal energy to produce, and can be recycled into something of equivalent value after their design life is complete. One potential material for construction meeting these demands is biocomposites; bio-based materials that are composed of natural fibers such as hemp and a matrix material that acts as glue holding the fibers together. This matrix material may be made from many plastic-like materials including polyhydroxybutyrate (PHB). Biocomposite materials have many potential applications in construction including formwork, scaffolding, temporary shelters and wall partitions. When no longer needed, these materials will biodegrade anaerobically, without oxygen to produce carbon dioxide and methane, which can be harvested and used as fuel for heat or electricity production, or as a feedstock to produce more biopolymer.;This research explores the anaerobic biodegradation of biocomposite materials with a focus on PHB-hemp fabric composites. A novel experimental procedure is outlined to investigate the rates and properties of anaerobic biocomposite degradation. Among the variations studied are the different matrix materials and fiber orientation, the mixing and temperature effects, and the influence of copolymer content on biodegradation. Additionally, scanning electron microscopy is employed to study the microbial attack on these materials.;The acceleration of the biodegradation rate was seen for biocomposites with exposed fibrous rides, as well as PHB thin films with more exposed surface area. It was revealed that biodegradation of biocomposites is a surface phenomenon during the first two days of microbial exposure, with different morphological appearances in the microbial community on the hemp fibers and PHB thin film. The exploration of pre-exposed inoculums found that the microbes that biodegrade hemp are most likely different than those who biodegrade PHB. On day seven, the microbes have completely penetrated the biocomposite surface, dissolving the top PHB-HHx polymeric film and exposing the hemp fiber fabric. The presence of microbial anchors suggested mechanisms for attachment to the biocomposite surface. Mixing and rinsing experiments revealed that charge interactions and shear forces play a roll in microbial adherence to the sample surface. The biodegradation rates of PHB-HHx depend not only on the copolymer content, but also the processing method. Additionally, the biodegradation of the samples exposed the underlying morphological details of the polymer, which may easily be used by others to explore underlying polymer characteristics.;This work will enhance the knowledge of biocomposites and contribute to the development of green building materials, offering a comparable replacement to traditional materials of timber, engineered wood, plastic and polymer composites that are less environmentally friendly.
机译:可持续建筑材料是新的关注领域。需要的材料在制造过程中不会释放温室气体,生产所需的能源最少,并且可以在设计寿命结束后回收成具有同等价值的材料。满足这些要求的一种潜在的建筑材料是生物复合材料。由天然纤维(例如大麻)和基质材料(将纤维保持在一起的胶水)组成的生物基材料。该基质材料可以由包括聚羟基丁酸酯(PHB)的许多塑料状材料制成。生物复合材料在建筑中具有许多潜在的应用,包括模板,脚手架,临时避难所和墙壁隔板。当不再需要时,这些材料将进行厌氧生物降解,而无需氧气产生二氧化碳和甲烷,可将其收集并用作生产热能或电力的燃料,或用作产生更多生物聚合物的原料。生物复合材料的研究,重点是PHB-大麻织物复合材料。概述了一种新颖的实验程序来研究厌氧生物复合材料降解的速率和性质。研究的变化包括不同的基质材料和纤维取向,混合和温度效应,以及共聚物含量对生物降解的影响。此外,采用扫描电子显微镜研究了微生物对这些材料的侵害。暴露于纤维的生物复合材料以及表面积更大的PHB薄膜的生物降解速度加快了。结果表明,在微生物接触的前两天,生物复合物的生物降解是一种表面现象,在大麻纤维和PHB薄膜上的微生物群落中具有不同的形态学外观。对预先暴露的接种物的探索发现,生物降解大麻的微生物最有可能与PHB生物降解的微生物不同。在第七天,微生物已经完全渗透到生物复合材料的表面,溶解了顶部的PHB-HHx聚合物膜并暴露了大麻纤维织物。微生物锚的存在提示了附着于生物复合材料表面的机制。混合和冲洗实验表明,电荷相互作用和剪切力在微生物对样品表面的附着力方面起着作用。 PHB-HHx的生物降解率不仅取决于共聚物的含量,还取决于加工方法。此外,样品的生物降解暴露了聚合物的潜在形态学细节,其他人可以轻松地使用它来探索聚合物的潜在特性。;这项工作将增强生物复合材料的知识,并有助于绿色建筑材料的发展,可替代传统材料的木材,工程木材,塑料和聚合物复合材料,它们对环境的影响较小。

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