In the present work, the thermophilic aerobic membrane reactor technology was studied for the treatment of high strength aqueous wastes mainly containing dyes, surfactants and solvents. The thermophilic biomass resilience and the process stability under critical conditions (such as rapid rise of the mixed liquor pH, oxygen supply interruption, etc.) were also evaluated. The experimental work was carried out with the use of a pilot plant at semi-industrial scale, which was managed throughout for 14 months; the operation temperature was 49 °C and the organic loading rate was increased from 3 to 12 kgCOD m-3 d-1. Critical conditions, especially the interruption of oxygen supply, affected the pilot plant performance but did not cause a complete system break down. After the temporary reduction of process performance, also proven by the decrease in the oxygen consumption, the normal working conditions were restored. Moreover, the longer non-aerated phase involved a significant reduction (40%) of volatile suspended solids concentration in the biological reactor and the increase of 30% in foaming power; nevertheless, once the oxygen supply was reactivated, optimal conditions were rapidly restored. Therefore, the study showed the high resilience of the thermophilic biomass, which was able to recover full functionality after critical events.

Treatment of high strength aqueous wastes in a thermophilic aerobic membrane reactor (TAMR): Performance and resilience

Collivignarelli, Maria Cristina;Abbà, Alessandro;Bertanza, Giorgio;Barbieri, Giacomo
2017-01-01

Abstract

In the present work, the thermophilic aerobic membrane reactor technology was studied for the treatment of high strength aqueous wastes mainly containing dyes, surfactants and solvents. The thermophilic biomass resilience and the process stability under critical conditions (such as rapid rise of the mixed liquor pH, oxygen supply interruption, etc.) were also evaluated. The experimental work was carried out with the use of a pilot plant at semi-industrial scale, which was managed throughout for 14 months; the operation temperature was 49 °C and the organic loading rate was increased from 3 to 12 kgCOD m-3 d-1. Critical conditions, especially the interruption of oxygen supply, affected the pilot plant performance but did not cause a complete system break down. After the temporary reduction of process performance, also proven by the decrease in the oxygen consumption, the normal working conditions were restored. Moreover, the longer non-aerated phase involved a significant reduction (40%) of volatile suspended solids concentration in the biological reactor and the increase of 30% in foaming power; nevertheless, once the oxygen supply was reactivated, optimal conditions were rapidly restored. Therefore, the study showed the high resilience of the thermophilic biomass, which was able to recover full functionality after critical events.
2017
Environmental Engineering/Energy covers resources concerned with the effects of humans on the environment, and the development of controls to minimize environmental degradation. This category also covers the development, production, use, application, conversion, and management of nonrenewable and renewable energy sources.
Esperti anonimi
Inglese
Internazionale
ELETTRONICO
76
12
3236
3245
10
Aerobic membrane biological reactor; Aqueous wastes; Performance assessment; Solvents; Surfactants; Thermophilic reactor; Environmental Engineering; Water Science and Technology
http://wst.iwaponline.com/content/ppiwawst/76/12/3236.full.pdf
no
4
info:eu-repo/semantics/article
262
Collivignarelli, Maria Cristina; Abbà, Alessandro; Bertanza, Giorgio; Barbieri, Giacomo
1 Contributo su Rivista::1.1 Articolo in rivista
none
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/1214515
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