Models for Design of Upflow Anaerobic Filters Separated in Two and Three PhasesSource: Journal of Environmental Engineering:;2020:;Volume ( 146 ):;issue: 003Author:Julio Isaac Maldonado Maldonado
,
Adriana Mercedes Márquez Romance
,
Edilberto Guevara Pérez
,
Demetrio José Rey Lago
,
Sergio Alejandro Pérez Pacheco
DOI: 10.1061/(ASCE)EE.1943-7870.0001577Publisher: ASCE
Abstract: This research presents two hybrid models based on the Streter-Phelps equation associated with nonstationary conditions dS/dt≠0 and advective dS/dZ≠0, statistically adjusted and applicable for the design of anaerobic upflow filters separated in two and three phases, operated on a laboratory scale using landfill leachate as substrate under a 33 experimental factorial design. The factors included (1) volumetric organic load (VOL)=2.25, 3.45, and 4.64 kg CODm−3day−1 [chemical oxygen demand (COD)]; (2) temperature (T)=20°C, 27°C, and 34°C; and (3) height ratios (D1 = height phase 1, D2 = height phase 2, and D3 = height phase); DI-FAFS (Spanish acronym that means Upflow Anaerobic Filter separated in Two Phases): D1/D2=20%/80%, 50%/50%, and 80%/20%, and TRI-FAFS (upflow anaerobic filter separated in three phases): D1/D2/D3=4%/16%/80%, 10%/10%/80%, and 16%/4%/80%. Operating conditions included (1) hydraulic retention time (HRT) between 16 and 18 h; (2) flow rates of 3.5–4.0 mL min−1; (3) surface hydraulic load of 1.82 m3 m−2 day−1; and (4) filter total depth of 1.2 m, filled with plastic material with a specific surface area of 476.35 m2m−3. Fifty-four tests were performed, obtaining efficiency between 27% and 73% in the DI-FAFS and between 84% and 94% in the TRI-FAFS (Spanish acronym that means Upflow Anaerobic Filter separated in Three Phases). Maximum efficiencies were achieved with D1/D2 ratios 20%/80% and D1/D2/D3=10%/10%/80%, respectively, with temperatures ≥27°C and VOL≥3.45 kgCODm−3day−1.
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| contributor author | Julio Isaac Maldonado Maldonado | |
| contributor author | Adriana Mercedes Márquez Romance | |
| contributor author | Edilberto Guevara Pérez | |
| contributor author | Demetrio José Rey Lago | |
| contributor author | Sergio Alejandro Pérez Pacheco | |
| date accessioned | 2022-01-30T19:25:57Z | |
| date available | 2022-01-30T19:25:57Z | |
| date issued | 2020 | |
| identifier other | %28ASCE%29EE.1943-7870.0001577.pdf | |
| identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4265291 | |
| description abstract | This research presents two hybrid models based on the Streter-Phelps equation associated with nonstationary conditions dS/dt≠0 and advective dS/dZ≠0, statistically adjusted and applicable for the design of anaerobic upflow filters separated in two and three phases, operated on a laboratory scale using landfill leachate as substrate under a 33 experimental factorial design. The factors included (1) volumetric organic load (VOL)=2.25, 3.45, and 4.64 kg CODm−3day−1 [chemical oxygen demand (COD)]; (2) temperature (T)=20°C, 27°C, and 34°C; and (3) height ratios (D1 = height phase 1, D2 = height phase 2, and D3 = height phase); DI-FAFS (Spanish acronym that means Upflow Anaerobic Filter separated in Two Phases): D1/D2=20%/80%, 50%/50%, and 80%/20%, and TRI-FAFS (upflow anaerobic filter separated in three phases): D1/D2/D3=4%/16%/80%, 10%/10%/80%, and 16%/4%/80%. Operating conditions included (1) hydraulic retention time (HRT) between 16 and 18 h; (2) flow rates of 3.5–4.0 mL min−1; (3) surface hydraulic load of 1.82 m3 m−2 day−1; and (4) filter total depth of 1.2 m, filled with plastic material with a specific surface area of 476.35 m2m−3. Fifty-four tests were performed, obtaining efficiency between 27% and 73% in the DI-FAFS and between 84% and 94% in the TRI-FAFS (Spanish acronym that means Upflow Anaerobic Filter separated in Three Phases). Maximum efficiencies were achieved with D1/D2 ratios 20%/80% and D1/D2/D3=10%/10%/80%, respectively, with temperatures ≥27°C and VOL≥3.45 kgCODm−3day−1. | |
| publisher | ASCE | |
| title | Models for Design of Upflow Anaerobic Filters Separated in Two and Three Phases | |
| type | Journal Paper | |
| journal volume | 146 | |
| journal issue | 3 | |
| journal title | Journal of Environmental Engineering | |
| identifier doi | 10.1061/(ASCE)EE.1943-7870.0001577 | |
| page | 04020007 | |
| tree | Journal of Environmental Engineering:;2020:;Volume ( 146 ):;issue: 003 | |
| contenttype | Fulltext |