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210512 ||| eng |
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|a 9783038977902
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|a books978-3-03897-791-9
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|a 9783038977919
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100 |
1 |
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|a Li, Pei
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245 |
0 |
0 |
|a Novel Membrane Technologies for Traditional Industrial Processes
|h Elektronische Ressource
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260 |
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|b MDPI - Multidisciplinary Digital Publishing Institute
|c 2019
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300 |
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|a 1 electronic resource (196 p.)
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653 |
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|a structural stability
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|a nanofiltration
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653 |
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|a draw solutes
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653 |
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|a pre-reforming
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653 |
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|a photocatalytic membrane
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653 |
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|a microalgae
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653 |
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|a supported ionic liquid membranes
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653 |
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|a aquaporins
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653 |
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|a interfacial polymerization
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653 |
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|a carbon dioxide
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653 |
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|a chlorine resistance
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653 |
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|a regeneration
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653 |
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|a steam explosion
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653 |
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|a pore modification
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653 |
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|a thin-film composite
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653 |
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|a n/a
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|a plasticization
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653 |
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|a fine chemistry
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653 |
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|a zeolite membrane
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653 |
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|a glucose
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|a xylose
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653 |
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|a polyimide
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653 |
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|a steam reforming
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|a costs
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653 |
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|a alkanes
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|a single-sites
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653 |
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|a forward osmosis
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653 |
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|a separation
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653 |
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|a photocatalytic membrane reactors
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653 |
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|a fractionation
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653 |
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|a cell disruption
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653 |
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|a lignin
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653 |
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|a immobilization
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653 |
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|a energy
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653 |
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|a dopamine
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653 |
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|a gas separation
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653 |
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|a membrane
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|a wastewater treatment
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|a hydrogen
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|a dynamic membrane filtration
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|a biomimetic
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653 |
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|a membrane separation
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700 |
1 |
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|a Jiang, Lan-Ying
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700 |
1 |
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|a Chung, Neal Tai-Shung
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700 |
1 |
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|a Wang, Yan
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041 |
0 |
7 |
|a eng
|2 ISO 639-2
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989 |
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|b DOAB
|a Directory of Open Access Books
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500 |
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|a Creative Commons (cc), https://creativecommons.org/licenses/by-nc-nd/4.0/
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028 |
5 |
0 |
|a 10.3390/books978-3-03897-791-9
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856 |
4 |
2 |
|u https://directory.doabooks.org/handle/20.500.12854/54875
|z DOAB: description of the publication
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856 |
4 |
0 |
|u https://www.mdpi.com/books/pdfview/book/1216
|7 0
|x Verlag
|3 Volltext
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082 |
0 |
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|a 333
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082 |
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|a 540
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520 |
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|a Through reading this book, you will obtain information on: (1) the main problems in air separation and natural gas treatment by membrane separation and how to solve them; (2) processes involving membranes and new membrane materials for the more economical utilization of bio-resources; (3) energy selection and membrane development for more expedient and stable harnessing of the natural osmosis phenomenon; (4) many excellent contributions about catalytic membrane bioreactors; (5) how to fine-tune the arrangement of aquaporins (i.e., proteins identified in biological cells) to achieve superior water treatment efficiency.
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