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The Use of Thermal Techniques in the Characterization of Bio-Sourced Polymers

机译:热技术在生物源聚合物表征中的用途

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摘要

The public pressure about the problems derived from the environmental issues increasingly pushes the research areas, of both industrial and academic sectors, to design material architectures with more and more foundations and reinforcements derived from renewable sources. In these efforts, researchers make extensive and profound use of thermal analysis. Among the different techniques available, thermal analysis offers, in addition to high accuracy in the measurement, smartness of execution, allowing to obtain with a very limited quantity of material precious information regarding the property–structure correlation, essential not only in the production process, but overall, in the design one. Thus, techniques such as differential scanning calorimetry (DSC), differential thermal analysis (DTA), dynamic mechanical analysis (DMA) and thermogravimetric analysis (TGA) were, are, and will be used in this transition from fossil feedstock to renewable ones, and in the development on new manufacturing processes such as those of additive manufacturing (AM). In this review, we report the state of the art of the last two years, as regards the use of thermal techniques in biopolymer design, polymer recycling, and the preparation of recyclable polymers as well as potential tools for biopolymer design in AM. For each study, we highlight how the most known thermal parameters, namely glass transition temperature (Tg), melting temperature (Tf), crystallization temperature (Tc) and percentage (%c), initial decomposition temperature (Ti), temperature at maximum mass loss rate (Tm), and tan δ, helped the researchers in understanding the characteristics of the investigated materials and the right way to the best design and preparation.
机译:关于环境问题的问题的公众压力越来越多地推动工业和学术部门的研究领域,设计材料架构,越来越多的基础和来自可再生来源的增强。在这些努力中,研究人员对热分析进行了广泛和深刻的使用。在可用的不同技术中,除了测量的高精度外,热分析还提供,智能性执行,允许以非常有限的材料珍贵信息,这些材料与属性 - 结构相关性,不仅在生产过程中必不可少,但总的来说,在设计中。因此,诸如差示扫描量热法(DSC),差分热分析(DTA),动态机械分析(DMA)和热重分析(TGA)的技术是,并且将在该转变中从化石原料到可再生的那些,在新制造过程中的开发中,如添加剂制造业(AM)。在本综述中,我们报告了过去两年的艺术状态,关于生物聚合物设计中的热技术,聚合物再循环和可再循环聚合物的制备以及am中的潜在工具。对于每项研究,我们突出了最着名的热参数,即玻璃化转变温度(Tg),熔化温度(Tf),结晶温度(Tc)和百分比(%c),初始分解温度(ti),温度最大质量损失率(TM)和TANδ,帮助研究人员了解所调查的材料的特性和最佳设计和准备的正确方法。

著录项

  • 期刊名称 Materials
  • 作者单位
  • 年(卷),期 2021(14),7
  • 年度 2021
  • 页码 1686
  • 总页数 20
  • 原文格式 PDF
  • 正文语种
  • 中图分类 外科学;
  • 关键词

    机译:生物聚合物;热行为;回收;热性质;可持续性;

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