...
首页> 外文期刊>Separation and Purification Technology >Intensification potential of hollow fiber membrane contactors for CO2 chemical absorption and stripping using monoethanolamine solutions
【24h】

Intensification potential of hollow fiber membrane contactors for CO2 chemical absorption and stripping using monoethanolamine solutions

机译:中空纤维膜接触器的增强电位,用于二氧化碳化学吸收和汽提的单乙醇胺溶液

获取原文
获取原文并翻译 | 示例

摘要

In this work, the intensification potential of Hollow fiber membrane contactors (HFMC) for CO2 capture by chemical absorption using amine solution have been evaluated by simulation, for both absorption and desorption steps. The simulations have been achieved considering typical industrial relevant conditions for post-combustion capture, based on CASTOR campaign at the Esbjerg pilot plant using packed column, operating at its energetic optimum. Rigorous adiabatic 1D simulations are achieved and revealed important temperature variation as well as significant water transmembrane fluxes in both absorber and desorber. Compared to packed column, a contactor volume reduction (i.e. intensification factor) of about 4 can be achieved in the stripping and absorption section using dry membranes corresponding to a km value of 10(-3) m/s and external fiber radius of 200 mu m. For significant absorber intensification factor, fibers should have an external radius less than 400 gm and membrane mass transfer coefficient should not be less than 5.10(-4) m s(-1). HFMC implementation for high temperature stripping is promising providing that membranes resistant to high temperature (i.e. 120 degrees C) and equally resistant to wetting are available. Due to important water transfer in both absorber and desorber, in addition to wetting of porous membranes by liquid breakthrough, a new possible limiting phenomenon for HFMC technology is wetting by capillary condensation. Even though net solvent losses in the membrane contactor are smaller than those calculated for packed columns, a scrubbing section after the HFMC is still required for solvent recovery in order to meet solvent concentration standard in the CO2 depleted gas stream. This issue represents an opportunity for the membrane contactor technology based on dense-film MEA selective composite membrane. (C) 2017 Elsevier B.V. All rights reserved.
机译:在这项工作中,通过模拟评估了使用胺溶液的化学吸收的CO 2捕获的中空纤维膜接触器(HFMC)的强化电位,用于吸收和解吸步骤。考虑到燃烧后捕获后的典型工业相关条件,基于使用包装柱的斯堡飞行员工厂的蓖麻竞选,在其精力充沛的最佳状态下进行典型的工业相关条件。实现了严格的绝热1D模拟,并揭示了两个吸收器和解吸器中的重要温度变化以及显着的水跨膜通量。与包装柱相比,使用对应于与200μm的Km值为10(-3)M / S和外纤维半径的干膜,可以在剥离和吸收部分中实现约4的接触器体积减少(即强化因子)。 m。对于显着的吸收强度因子,纤维应具有小于400克的外半径,膜传质系数不应小于5.10(-4)m s(-1)。高温剥离的HFMC实现是有前途的,可提供耐高温(即120℃)和耐润湿等抗性膜。由于吸收器和解吸中的重要水转,除了通过液体突破润湿多孔膜之外,通过毛细血管缩合润湿HFMC技术的新可能限制现象。尽管膜接触器中的净溶剂损耗小于用于填充柱的计算,但仍然需要在HFMC之后的洗涤部分仍然需要溶剂恢复,以满足CO 2耗尽气流中的溶剂浓度标准。该问题代表了基于致密膜MEA选择性复合膜的膜接触器技术的机会。 (c)2017 Elsevier B.v.保留所有权利。

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