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In Situ Observation of Plastic Foaming under Static Condition, Extensional Flow and Shear Flow.

机译:静态条件下塑性发泡的原位观察,拉伸流动和剪切流动。

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摘要

Traditional blowing agents (e.g., hydrochlorofluorocarbons) in plastic foaming processes has been phasing out due to environmental regulations. Plastic foaming industry is forced to employ greener alternatives (e.g., carbon dioxide, nitrogen), but their foaming processes are technologically challenging. Moreover, to improve the competitiveness of the foaming industry, it is imperative to develop a new generation of value-added plastic foams with cell structures that can be tailored to different applications. In this context, the objective of this thesis is to achieve a thorough understanding on cell nucleation and growth phenomena that determine cell structures in plastic foaming processes. The core research strategy is to develop innovative visualization systems to capture and study these phenomena. A system with accurate heating and cooling control has been developed to observe and study crystallization-induced foaming behaviors of polymers under static conditions. The cell nucleation and initial growth behavior of polymers blown with different blowing agents (nitrogen, argon and helium, and carbon dioxide-nitrogen mixtures) have also been investigated in great detail. Furthermore, two innovative systems have been developed to simulate the dynamic conditions in industrial foaming processes: one system captures a foaming process under an easily adjustable and uniform extensional strain in a high temperature and pressure environment, while the other achieves the same target, but with shear strain. Using these systems, the extensional and shear effects on bubble nucleation and initial growth processes has been investigated independently in an isolated manner, which has never been achieved previously. The effectiveness of cell nucleating agents has also been evaluated under dynamic conditions, which have led to the identification of new foaming mechanisms based on polymer-chain alignment and generation of microvoids under stress. Knowledge generated from these researches and the wide range of future studies made possible by the visualization systems will be valuable to the development of innovative plastic foaming technologies and foams.
机译:由于环境法规的限制,塑料发泡工艺中的传统发泡剂(例如氢氯氟烃)已被淘汰。塑料发泡行业被迫采用更环保的替代品(例如二氧化碳,氮气),但其发泡工艺在技术上具有挑战性。此外,为了提高发泡行业的竞争力,必须开发具有可适应不同应用的泡孔结构的新一代增值塑料泡沫。在这种情况下,本论文的目的是对决定塑料发泡过程中泡孔结构的泡孔成核和生长现象有一个透彻的了解。核心研究策略是开发创新的可视化系统来捕获和研究这些现象。已经开发了具有精确加热和冷却控制的系统,以观察和研究在静态条件下聚合物的结晶诱导的发泡行为。还已经详细研究了用不同发泡剂(氮气,氩气和氦气以及二氧化碳-氮气混合物)吹塑的聚合物的细胞成核和初始生长行为。此外,已经开发出两种创新的系统来模拟工业发泡过程中的动态条件:一种系统在高温和高压环境下以易于调节且均匀的拉伸应变捕获发泡过程,而另一种系统实现了相同的目标,但具有剪切应变。使用这些系统,已经以孤立的方式独立研究了气泡成核和初始生长过程的拉伸和剪切效应,这是以前从未实现的。还已经在动态条件下评估了细胞成核剂的有效性,这已导致基于聚合物-链排列和在应力下产生微孔的新的发泡机理的鉴定。这些研究产生的知识以及可视化系统使未来的广泛研究对创新的塑料发泡技术和泡沫的发展将具有宝贵的价值。

著录项

  • 作者

    Wong, Anson Sze Tat.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Materials Science.;Plastics Technology.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 244 p.
  • 总页数 244
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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