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Investigation of a sustainable alternative - wood bio-plastic composites.

机译:研究一种可持续的替代品-木材生物塑料复合材料。

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摘要

Bio-polymers have become a focus for developing wood bio-plastic composites since they can be sustainably renewed from agricultural resources. One of the bio-polymers, poly-3-hydroxybutyrate (PHB), has been widely studied for its performance enhancement by blending with wood flour and coupling agents. One riddle of the influence from coupling agents on PHB/wood flour (WF) composites was discussed in this study. A lab-scale composting evaluation test was developed based on ASTM standards in order to understand the compostability of PHB/WF composites. During the compostability evaluation, multiple phases of biodegradation such as lag, biodegradation, and slow down phases were observed. Theoretically, microcracks occurred during the lag phase, which is a combination of physical (microcracks) and chemical (decomposition) degradation. The following phase of biodegradation occurs when the organic matter of PHB/WF composites rapidly converts to carbon dioxide, known as mineralization behavior in its biological definition.;In addition, this carbon conversion process is involved in a carbon cycling ecosystem. Mineralization results indicated that PHB was consumed faster than wood flour. Wood flour was then believed to challenge the compostability of the PHB/WF composite. It was also observed that hypha could not reach the PHB located in the core of the composite. This phase is the slow down phase. Without coupling agents, an in accordance with ASTM standards and the results found this study, the PHB/WF composite is certified as a compostable polymeric material. Furthermore, purification of producing neat PHB has been reported as consuming more energy than producing polyolefin. By eliminating the purification step of PHB production, energy consumption could be limited and seen to reduce. In this study, the PHB/wood flour/cell debris (PWC) composites were successfully developed and produced through injection molding and extrusion processes. The mechanical performance and moisture diffusion behaviors of the PWC composites were comparable with a commercial wood plastic composite. Therefore, a sustainable alternative - wood bioplastic composite was developed by maintaining biodegradability and its carbon footprint was effectively controlled, both of which are sustainable requirements.
机译:生物聚合物已成为开发木质生物塑料复合材料的重点,因为可以从农业资源中可持续地更新它们。由于与木粉和偶联剂共混可提高其性能,因此广泛研究了一种生物聚合物聚3-羟基丁酸酯(PHB)。在这项研究中讨论了偶联剂对PHB /木粉(WF)复合材料影响的一个谜。为了了解PHB / WF复合材料的可堆肥性,根据ASTM标准开发了实验室规模的堆肥评估测试。在堆肥性评估期间,观察到了生物降解的多个阶段,例如滞后,生物降解和减慢阶段。从理论上讲,微裂纹发生在滞后阶段,是物理(微裂纹)和化学(分解)降解的组合。当PHB / WF复合材料的有机物迅速转化为二氧化碳时,会发生以下生物降解阶段,在生物学定义上称为矿化行为。此外,这种碳转化过程涉及碳循环生态系统。矿化结果表明,PHB比木粉消耗更快。然后据信木粉挑战了PHB / WF复合材料的可堆肥性。还观察到菌丝无法到达位于复合材料核心的PHB。此阶段是减速阶段。在没有偶联剂的情况下(根据ASTM标准)以及本研究的结果,PHB / WF复合材料被认证为可堆肥聚合物材料。此外,据报道,生产纯净PHB的纯化比生产聚烯烃消耗的能量更多。通过取消PHB生产的纯化步骤,可以限制能源消耗并降低能耗。在这项研究中,PHB /木粉/细胞碎片(PWC)复合材料已成功开发并通过注塑和挤出工艺生产。 PWC复合材料的机械性能和水分扩散行为可与市售木塑复合材料相比。因此,通过维持生物降解性开发了一种可持续的替代品-木材生物塑料复合材料,并有效控制了其碳足迹,这都是可持续的要求。

著录项

  • 作者

    Tsai, Meng-Hsin.;

  • 作者单位

    Washington State University.;

  • 授予单位 Washington State University.;
  • 学科 Agriculture Wood Technology.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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