...
首页> 外文期刊>Separation and Purification Technology >Enhancing the properties and gas separation performance of PBI-polyimides blend carbon molecular sieve membranes via optimization of the pyrolysis process
【24h】

Enhancing the properties and gas separation performance of PBI-polyimides blend carbon molecular sieve membranes via optimization of the pyrolysis process

机译:通过热解工艺的优化提高PBI-聚酰亚胺共混碳分子筛膜的性能和气体分离性能

获取原文
获取原文并翻译 | 示例
           

摘要

The evolution of desirable physico-chemical structure and properties in high performance gas separation membranes involve steps that must carefully be designed, controlled and optimized. This study investigates the role of key parameters in the fabrication and performance analysis of carbon molecular sieve (CMS) membranes prepared through blending of poly (benzimidazole) (PBI) and three polyimides containing different dianhydride moieties in their chemical structure. Results indicate that the chemical structure of the blend components, microstructure of the precursor, blend composition and the pyrolysis conditions play important roles in the transport properties of the resulting membranes. The influence of the type of polyimide used in the blend on the permeability of the carbon membranes followed a trend. Using a higher pyrolysis temperature resulted in membranes with a lower permeability but higher selectivity. In addition, a higher degree of vacuum in the pyrolysis chamber increased the selectivity of the membranes by as much as 40% at the expense of permeability. The highest gas pair selectivity for O2/N2, CO2/CH4 and CO2/N2 could be obtained from PBI-Kapton carbonized at 10~(-7) Torr and 800 °C. These results also suggest that CMS membranes derived from PBI-Kapton blend precursors are exceptional candidates for the CO2/CH4 separation, offering enhanced selectivity in the range of up to 204.5 depending on the pyrolysis protocol. The results of this study suggest that high performance gas separation membranes can be obtained by adopting a judicious combination of blending technique and optimized pyrolysis conditions.
机译:高性能气体分离膜中理想的理化结构和性能的演变涉及必须仔细设计,控制和优化的步骤。这项研究调查了关键参数在碳分子筛(CMS)膜的制备和性能分析中的作用,该膜是通过将聚(苯并咪唑)(PBI)和三种在化学结构上包含不同二酐部分的聚酰亚胺共混而制备的。结果表明,共混物组分的化学结构,前体的微观结构,共混物的组成和热解条件在所得膜的传输性质中起重要作用。共混物中使用的聚酰亚胺类型对碳膜渗透性的影响呈趋势。使用较高的热解温度导致膜具有较低的渗透性但具有较高的选择性。另外,在热解室中更高的真空度使膜的选择性增加了多达40%,而以渗透性为代价。通过在10〜(-7)Torr和800°C下碳化的PBI-Kapton可以获得O2 / N2,CO2 / CH4和CO2 / N2的最高气体对选择性。这些结果还表明,衍生自PBI-Kapton共混物前体的CMS膜是CO2 / CH4分离的优异候选者,根据热解方案的不同,选择性最高可达204.5。这项研究的结果表明,通过明智地将混合技术和优化的热解条件结合起来,可以获得高性能的气体分离膜。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号