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High-selectivity membrane absorption process for recovery of ammonia with electrospun hollow fiber membrane.

Authors :
Ma, Xiaofeng
Li, Yuping
Cao, Hongbin
Duan, Feng
Su, Chunlei
Lu, Chun
Chang, Junjun
Ding, He
Source :
Separation & Purification Technology. Jun2019, Vol. 216, p136-146. 11p.
Publication Year :
2019

Abstract

Highlights • Welding electrospun hollow fiber membrane is firstly applied in ammonia removal. • The effect of membrane thickness on selectivity was intensively investigated. • Self-made membrane with high flux and selectivity favors ammonia recovery. • Self-made membrane demonstrates its potential in membrane absorption application. Abstract Excessive ammonia nitrogen in wastewater seriously endangers ecological environment, so high-flux and selectivity membrane is urgently needed for ammonia removal using membrane absorption (MA). In this paper, a high-performance electrospun hollow fiber membrane was fabricated and solvent vapor welding treatment was adopted to enhance mechanical strength. The post-treatment membrane showed 103.8% higher in the Young's modulus than the pristine membrane. High mechanical strength, porosity and hydrophobicity of the membrane make it superior in mass transfer and selectivity. The effects of membrane thickness, pH and temperature of feed solution on experimental overall mass transfer coefficient (K OE) and selectivity coefficient (S NH3/H2O (g)) were intensively investigated to examine the membrane performance in MA application. The results show K OE is 1.35 * 10−5 m s−1 and S NH3/H2O (g) is 7.58 when pH is 11, which are higher than that of commercial membrane. Moreover, the selectivity can be improved greatly from 6.91 to 9.74 by increasing the thickness of the hollow fiber membrane from 55 ± 5 μm to 115 ± 5 μm. The welded electrospun hollow fiber membrane demonstrates great potential for ammonia removal in MA application. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
13835866
Volume :
216
Database :
Academic Search Index
Journal :
Separation & Purification Technology
Publication Type :
Academic Journal
Accession number :
134687196
Full Text :
https://doi.org/10.1016/j.seppur.2019.01.025