Surface modification mechanism of galena with H2SO4 and its effect on flotation separation performance

2022 ◽  
Vol 579 ◽  
pp. 152129
Author(s):  
Haiyun Xie ◽  
Yanling Jin ◽  
Pei Zhang ◽  
Yanhao Liu ◽  
Likun Gao ◽  
...  
2019 ◽  
Vol 80 ◽  
pp. 106152 ◽  
Author(s):  
Amelia S. Wiryoatmojo ◽  
Hafiz Abdul Mannan ◽  
Rizwan Nasir ◽  
Hilmi Mukhtar ◽  
Dzeti Farhah Mohshim ◽  
...  

RSC Advances ◽  
2015 ◽  
Vol 5 (25) ◽  
pp. 19760-19772 ◽  
Author(s):  
Kiyoumars Zarshenas ◽  
Ahmadreza Raisi ◽  
Abdolreza Aroujalian

Corona air plasma was successfully used to modify the surface of dual-layer PA6/PES composite membranes in order to improve their gas separation performance.


Symmetry ◽  
2020 ◽  
Vol 12 (7) ◽  
pp. 1102
Author(s):  
Pei Sean Goh ◽  
Kar Chun Wong ◽  
Lukka Thuyavan Yogarathinam ◽  
Ahmad Fauzi Ismail ◽  
Mohd Sohaimi Abdullah ◽  
...  

CO2 separation is an important process for a wide spectrum of industries including petrochemical, refinery and coal-fired power plant industries. The membrane-based process is a promising operation for CO2 separation owing to its fundamental engineering and economic benefits over the conventionally used separation processes. Asymmetric polymer–inorganic nanocomposite membranes are endowed with interesting properties for gas separation processes. The presence of nanosized inorganic nanofiller has offered unprecedented opportunities to address the issues of conventionally used polymeric membranes. Surface modification of nanofillers has become an important strategy to address the shortcomings of nanocomposite membranes in terms of nanofiller agglomeration and poor dispersion and polymer–nanofiller incompatibility. In the context of CO2 gas separation, surface modification of nanofiller is also accomplished to render additional CO2 sorption capacity and facilitated transport properties. This article focuses on the current strategies employed for the surface modification of nanofillers used in the development of CO2 separation nanocomposite membranes. A review based on the recent progresses made in physical and chemical modifications of nanofiller using various techniques and modifying agents is presented. The effectiveness of each strategy and the correlation between the surface modified nanofiller and the CO2 separation performance of the resultant nanocomposite membranes are thoroughly discussed.


Materials ◽  
2020 ◽  
Vol 13 (2) ◽  
pp. 493 ◽  
Author(s):  
Fatma Yalcinkaya ◽  
Evren Boyraz ◽  
Jiri Maryska ◽  
Klara Kucerova

Cleaning of wastewater for the environment is an emerging issue for the living organism. The separation of oily wastewater, especially emulsified mixtures, is quite challenged due to a large amount of wastewater produced in daily life. In this review, the membrane technology for oily wastewater treatment is presented. In the first part, the global membrane market, the oil spill accidents and their results are discussed. In the second and third parts, the source of oily wastewater and conventional treatment methods are represented. Among all methods, membrane technology is considered the most efficient method in terms of high separation performance and easy to operation process. In the fourth part, we provide an overview of membrane technology, fouling problem, and how to improve the self-cleaning surface using functional groups for effectively treating oily wastewater. The recent development of surface-modified membranes for oily wastewater separation is investigated. It is believed that this review will promote understanding of membrane technology and the development of surface modification strategies for anti-fouling membranes.


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