Swelling of rubbers of different chemical natures in supercritical carbon dioxide

肿胀 的 材料科学 超临界二氧化碳 弹性体 复合材料 超临界流体 扩散 天然橡胶 丁苯橡胶 溶解度 化学工程 聚合物 化学 苯乙烯 有机化学 共聚物 热力学 物理 工程类
作者
Sakhaya MIKHAYLOVA,S. V. Reznichenko,E. A. Krasnikov,Pavel Tsygankov,Natalia Menshutina,I. D. Simonov-Emelyanov
出处
期刊:Тонкие химические технологии [Moscow State Institute of Radio-engineering Electronics and Automation]
卷期号:18 (6): 534-548 被引量:1
标识
DOI:10.32362/2410-6593-2023-18-6-534-548
摘要

Objectives. To investigate the swelling of the main types of rubbers used in the rubber industry in carbon dioxide in a supercritical state (SC-CO 2 ), in order to assess the possibility of obtaining elastomeric materials with porous structures using fluid technology, based on them. Methods. The process of swelling of rubbers in SC-CO 2 and subsequent foaming was carried out according to a specially developed technique using the original installation. This is a high-pressure apparatus with transparent windows, allowing for the use of an optical technique to directly measure the geometric dimensions of samples during swelling and foaming using a digital video camera. The study of the porous structure of foamed rubbers was carried out using scanning electron microscopy. Results. The study established experimental curves of the swelling kinetics in SC-CO 2 of isoprene, butadiene, styrene butadiene, ethylene propylene, chloroprene, ethylene acrylate, siloxane, and organofluorine rubbers. The influence of temperature and pressure on the rate and equilibrium degree of swelling was studied. The diffusion coefficients of SC-CO 2 in rubbers of various chemical natures were also determined. Conclusions. It was shown that the equilibrium swelling degree of rubbers in SC-CO 2 depends on the chemical nature of rubbers. It does not correlate with the value of their solubility parameters, changes directly proportional to the diffusion coefficient and increases with increasing temperature and pressure. It was found that irrespective of the degree of swelling in SC-CO 2 , all the rubbers studied are intensively foamed at a sharp pressure drop. The size of the pores formed is tens of microns: significantly smaller than the size of pores formed when chemical pore formers are used.
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