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Helvi Heinonen-Tanski and Ville Matikka
Domestic wastewaters, which cannot be disposed through sewage networks, must be treated with different on-site treatment systems; these are usually commercial, small-scale treatment plants or built sand filters. These systems are usually maintained by th...
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Muhammad Raihan Jumat, Nur A. Hasan, Poorani Subramanian, Colin Heberling, Rita R. Colwell, Pei-Ying Hong
Pág. 1 - 19
A membrane bioreactor (MBR)-based wastewater treatment plant in Saudi Arabia was assessed over a nine-month period for virus removal efficiency. Viral diversity was detected using omics-based approaches. Log reduction values (LRV) of Adenoviruses (AdV) a...
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Mukundh N. Balasubramanian, Nejc Racki, José Gonçalves, Katarina Kovac, ... Ion Gutiérrez-Aguirre
Pág. 405 - 414
Currently, around 50% of the world's population lives in towns and cities within 100 km of the coast. Monitoring of viruses that are frequently present in contaminated coastal environments, such as rotavirus (RoV) and norovirus (NoV), which are also the ...
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Lydia S. Abebe, Xinyu Chen and Mark D. Sobsey
The use of porous ceramic filters is promoted globally for household water treatment, but these filters are ineffective in removing viruses from water. In order to increase virus removal, we combine a promising natural coagulant, chitosan, as a pretreatm...
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Amy M. Kahler, Trisha B. Johnson, Donghyun Hahn, Jothikumar Narayanan, Gordana Derado and Vincent R. Hill
In this study, hollow-fiber ultrafiltration (UF) was assessed for recovery of Escherichia coli, Clostridium perfringens spores, Cryptosporidium parvum oocysts, echovirus 1, and bacteriophages MS2 and FX174 from ground and surface waters. Microbes were se...
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N. Jindal, D. P. Patnayak, Y. Chander, A. F. Ziegler, and S. M. Goyal
Pág. 217 - 226
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Mark Wong, Lekha Kumar, Tracie M. Jenkins, Irene Xagoraraki, Mantha S. Phanikumar, Joan B. Rose
Pág. 1137 - 1149
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