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Simple gases to replace non-environmentally friendly polymer foaming agents. A thermodynamic investigation

机译:简单的气体可替代非环保的聚合物发泡剂。热力学研究

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摘要

Foaming constitutes one of the most important industrial activities in polymer engineering to produce efficient thermal insulating materials. In particular, rigid insulating boards are produced worldwide on a large scale using blowing agents which eventually are released in the environment where they adversely impact the natural friendly stratospheric ozone layer. Concomitantly, the chemicals used as blowing agents contribute to the creation of the unfriendly tropospheric ozone layer generating the disastrous green house effect around our planet. The traditional foaming intermediates currently named freons, like chlorofluorocarbons (CFCs) currently used as blowing agents as well as the hydrochlorofluorocarbons (HCFCs) often considered as alternative blowing agents, must be banned from industrial processes and new (friendly) foaming agents have to be suggested and evaluated in terms of both easy engineering and environmental neutrality. Undoubtedly thermodynamics plays a major role in assessing the effective capability of those chemicals. Some CFCs still accepted and other possible simple gases like carbon dioxide and nitrogen have been considered. The in-depth thermodynamic investigation has been made possible thanks to new experimental developments to determine gas solubility in polymers and associated swelling as well as the thermodynamic properties of (gas + polymer) systems, including the thermophysical properties of polymers under gas sorption. Pertinent data have been generated for such properties over extended T and p ranges.
机译:发泡是聚合物工程中生产高效隔热材料的最重要的工业活动之一。特别地,刚性绝缘板在全世界范围内使用发泡剂进行大规模生产,这些发泡剂最终释放在对自然友好的平流层臭氧层有不利影响的环境中。随之而来的是,用作发泡剂的化学物质会导致形成不友好的对流层臭氧层,从而在地球周围产生灾难性的温室效应。当前被称为氟利昂的传统发泡中间体,例如目前用作发泡剂的氯氟烃(CFC)以及通常被视为替代发泡剂的氢氯氟烃(HCFC),必须禁止工业生产,必须建议使用新的(友好的)发泡剂并在易于工程设计和环境中立性方面进行了评估。毫无疑问,热力学在评估那些化学物质的有效能力方面起着重要作用。一些氟氯化碳仍被接受,已经考虑了其他可能的简单气体,例如二氧化碳和氮气。得益于新的实验开发,可以进行深入的热力学研究,以确定聚合物在气体中的溶解度和相关的溶胀,以及(气体+聚合物)系统的热力学性质,包括在气体吸附作用下聚合物的热物理性质。已经针对扩展的T和p范围内的此类属性生成了相关数据。

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