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用于H₂/CO₂分离的纳米复合方钠石/α-Al₂O₃管状膜的制备与评价

Preparation and Evaluation of Nanocomposite Sodalite/α-AlO Tubular Membranes for H/CO Separation.

作者信息

Eterigho-Ikelegbe Orevaoghene, Bada Samson O, Daramola Michael O

机构信息

DSI-NRF SARChI Clean Coal Technology Research Group, Faculty of Engineering and the Built Environment, University of the Witwatersrand, Wits 2050, Johannesburg, South Africa.

Department of Chemical Engineering, Faculty of Engineering, Built Environment and Information Technology, University of Pretoria, Hatfield 0028, Pretoria, South Africa.

出版信息

Membranes (Basel). 2020 Oct 29;10(11):312. doi: 10.3390/membranes10110312.

Abstract

Nanocomposite sodalite/ceramic membranes supported on α-AlO tubular support were prepared via the pore-plugging hydrothermal (PPH) synthesis protocol using one interruption and two interruption steps. In parallel, thin-film membranes were prepared via the direct hydrothermal synthesis technique. The as-synthesized membranes were evaluated for H/CO separation in the context of pre-combustion CO capture. Scanning electron microscopy (SEM) was used to check the surface morphology while x-ray diffraction (XRD) was used to check the crystallinity of the sodalite crystals and as-synthesized membranes. Single gas permeation of H, CO, N and mixture gas H/CO was used to probe the quality of the membranes. Gas permeation results revealed nanocomposite membrane prepared via the PPH synthesis protocols using two interruption steps displayed the best performance. This was attributed to the enhanced pore-plugging effect of sodalite crystals in the pores of the support after the second interruption step. The nanocomposite membrane displayed H permeance of 7.97 × 10 mol·s·m·Pa at 100 °C and 0.48 MPa feed pressure with an ideal selectivity of 8.76. Regarding H/CO mixture, the H permeance reduced from 8.03 × 10 mol·s·m·Pa to 1.06 × 10 mol·s·m·Pa at 25 °C and feed pressure of 0.18 MPa. In the presence of CO, selectivity of the nanocomposite membrane reduced to 4.24.

摘要

通过使用一次中断和两次中断步骤的孔堵塞水热(PPH)合成方案,制备了负载在α - AlO管状载体上的纳米复合方钠石/陶瓷膜。同时,通过直接水热合成技术制备了薄膜膜。在燃烧前CO捕集的背景下,对合成后的膜进行了H/CO分离评估。使用扫描电子显微镜(SEM)检查表面形态,同时使用X射线衍射(XRD)检查方钠石晶体和合成后膜的结晶度。使用H、CO、N的单气体渗透以及混合气体H/CO来探测膜的质量。气体渗透结果表明,通过使用两次中断步骤的PPH合成方案制备的纳米复合膜表现出最佳性能。这归因于第二次中断步骤后方钠石晶体在载体孔中的孔堵塞效应增强。该纳米复合膜在100°C和0.48 MPa进料压力下显示出7.97×10 mol·s·m·Pa的H渗透率,理想选择性为8.76。对于H/CO混合物,在25°C和0.18 MPa进料压力下,H渗透率从8.03×10 mol·s·m·Pa降至1.06×10 mol·s·m·Pa。在有CO存在的情况下,纳米复合膜的选择性降至4.24。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87c4/7692824/304f8469af64/membranes-10-00312-g001.jpg

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