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Optimized and scaled-up production of cellulose-reinforced biodegradable composite films made up of carrot processing waste

机译:优化和缩放生产的纤维素增强可生物降解复合薄膜由胡萝卜加工废物组成

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The ever-growing environmental concern arising from the unrestricted exploitation of fossil sources for the massive production of non-biodegradable materials encourages research on alternative renewable resources. We herein pave the route for the production of biodegradable biocomposites made up of carrot minimal processing waste (CMPW) by optimizing its combination with hydroxypropyl methylcellulose (HPMC) and high-pressure microfluidized cellulose fibers, which played ligand and mechanical reinforcement roles, respectively. Ternary mixture designs established mathematical models aimed at structure-composition-property correlations, allowing their mechanical performances to be innovatively predicted without the need for further experiments. The optimized formulation comprised 33 wt.% CPMW and led to biodegradable biocomposites featuring ca. 30 MPa of tensile strength, ca. 3% elongation at break, and ca. 2 GPa of Young's modulus, properties which are suitable for food packaging applications. Finally, the film-forming protocol was successfully scaled-up through a continuous casting approach, allowing the production of 1.56 m(2) of biodegradable biocomposite in each hour. While scaling up did not affect film's barrier to moisture, it did impair its mechanical behavior.
机译:从非生物降解材料大量生产的化石源不受限制地产生的不受限制的环境问题促进了替代可再生资源的研究。我们在本文中铺设了通过优化与羟丙基甲基纤维素(HPMC)的组合和高压微流化纤维素纤维的组合而成的可生物降解的生物复合材料的生产途径,分别发挥配体和机械增强作用。三元混合物设计建立了旨在结构构成性质相关性的数学模型,允许其机械性能进行创新预测,而无需进一步实验。优化的制剂包含33重量%的CPMW并导致可生物降解的生物复合材料,包括CA。 30 MPa的拉伸强度,CA。休息3%的伸长率和加利福尼亚州。 2 GPA的杨氏模量,适用于食品包装应用的性能。最后,通过连续铸造方法成功地缩放成膜方案,允许在每小时生产1.56m(2)生物降解的生物复合材料。虽然缩放并没有影响电影的水分障碍,但它确实损害了其机械行为。

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