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Effects of Mould Temperature on Rice Bran-Based Bioplastics Obtained by Injection Moulding

机译:模具温度对注塑成型水稻麸的生物塑料的影响

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摘要

The high production rate of conventional plastics and their low degradability result in severe environmental problems, such as plastic accumulation and some other related consequences. One alternative to these materials is the production of oil-free bioplastics, based on wastes from the agro-food industry, which are biodegradable. Not only is rice bran an abundant and non-expensive waste, but it is also attractive due to its high protein and starch content, which can be used as macromolecules for bioplastic production. The objective of this work was to develop rice-bran-based bioplastics by injection moulding. For this purpose, this raw material was mixed with a plasticizer (glycerol), analysing the effect of three mould temperatures (100, 130 and 150 °C) on the mechanical and microstructural properties and water absorption capacity of the final matrices. The obtained results show that rice bran is a suitable raw material for the development of bioplastics whose properties are strongly influenced by the processing conditions. Thus, higher temperatures produce stiffer and more resistant materials (Young’s modulus improves from 12 ± 7 MPa to 23 ± 6 and 33 ± 6 MPa when the temperature increases from 100 to 130 and 150 °C, respectively); however, these materials are highly compact and, consequently, their water absorption capacity diminishes. On the other hand, although lower mould temperatures lead to materials with lower mechanical properties, they exhibit a less compact structure, resulting in enhanced water absorption capacity.
机译:常规塑料的高生产率及其低可降解性导致严重的环境问题,如塑料积聚和其他一些相关后果。这些材料的一种替代方案是基于来自农业食品工业的废物的无油生物塑料生产,这些生物是可生物降解的。米糠不仅是一种丰富和不昂贵的废物,而且由于其高蛋白质和淀粉含量,它也具有吸引力,可用作用于生物塑化的大分子。这项工作的目的是通过注射成型开发基于米糠的生物塑料。为此目的,将该原料与增塑剂(甘油)混合,分析三种模具温度(100,130和150°C)对最终基质的机械和微观结构性能和吸水能力的影响。得到的结果表明,水稻麸是一种适合于开发生物塑料的原料,其性质受加工条件的强烈影响。因此,当温度从100到130和150℃增加时,较高温度产生更致密的更强,更耐药材料(杨氏模量从12±7MPa改善为12±7MPa至33±6MPa);然而,这些材料非常紧凑,因此,它们的吸水能力减小。另一方面,尽管较低模具温度导致具有较低机械性能的材料,但它们具有较小的结构结构较小,导致吸水能力增强。

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