Kalmykov Denis, Balynin Alexey, Yushkin Alexey, Grushevenko Evgenia, Sokolov Stepan, Malakhov Alexander, Volkov Alexey, Bazhenov Stepan
A.V. Topchiev Institute of Petrochemical Synthesis RAS, 29 Leninsky Prospekt, 119991 Moscow, Russia.
Membranes (Basel). 2022 Nov 17;12(11):1160. doi: 10.3390/membranes12111160.
In this work, perspective polymeric materials were developed for membrane contactor applications, e.g., for the dissolved oxygen removal from amine CO capture solvents. Several polymeric blends based on poly[1-trimethylsilyl-1-propyne] (PTMSP) and poly[vinyltrimethylsilane] (PVTMS) were studied. The gas and water vapor sorption and permeability coefficients for the PTMSP/PVTMS blend membranes at different PVTMS contents (0-100%) were obtained under temperatures of 30 and 60 °C for the first time. As the PVTMS content increases, the O and CO permeabilities decrease by 160 and 195 times at 30 °C, respectively. The fractional accessible volume of the polymer blends decreases accordingly. The transport of the CO capture solvent vapors through the PTMSP/PVTMS blend membranes were determined in thermo-pervaporation (TPV) mode using aqueous monoethanolamine (30%), N-methyldiethanolamine (40%), and 2-amino-2-methyl-1-propanol (30%) solutions as model amine solvents at 60 °C. The membranes demonstrated high pervaporation separation factors with respect to water, resulting in low amine losses. A joint analysis of the gas permeabilities and aqueous alkanolamine TPV data allowed us to conclude that the polymer blend composition of PTMSP/PVTMS 70/30 provides an optimal combination of a sufficiently high oxygen permeability and the pervaporation separation factor at a temperature of 60 °C.
在这项工作中,开发了用于膜接触器应用的新型聚合物材料,例如用于从胺基CO捕集溶剂中去除溶解氧。研究了几种基于聚[1-三甲基硅基-1-丙炔](PTMSP)和聚[乙烯基三甲基硅烷](PVTMS)的聚合物共混物。首次在30和60°C的温度下获得了不同PVTMS含量(0-100%)的PTMSP/PVTMS共混膜的气体和水蒸气吸附及渗透系数。随着PVTMS含量的增加,在30°C时,O和CO的渗透率分别降低了160倍和195倍。聚合物共混物的可及体积分数相应降低。使用单乙醇胺(30%)、N-甲基二乙醇胺(40%)和2-氨基-2-甲基-1-丙醇(30%)水溶液作为模型胺溶剂,在60°C下以热渗透蒸发(TPV)模式测定了CO捕集溶剂蒸气通过PTMSP/PVTMS共混膜的传输。这些膜对水表现出高的渗透蒸发分离因子,导致胺损失较低。对气体渗透率和链烷醇胺水溶液TPV数据的联合分析使我们得出结论,PTMSP/PVTMS 70/30的聚合物共混物组成在60°C温度下提供了足够高的氧气渗透率和渗透蒸发分离因子的最佳组合。