Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater

An integrated real-time anaerobic–anoxic/oxic (A2O) operated with multi-tank called IMT–A2O process was designed and operated with fluctuating influent loads for biological nutrient removal for treating real domestic wastewater. IMT–A2O process, a “phased isolation tank” technology, varies both aera...

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Main Authors: Saad Abualhail, R. Naseer Mohammed, Lu Xiwu
Format: Article
Language:English
Published: Elsevier 2017-02-01
Series:Arabian Journal of Chemistry
Subjects:
A2O
pH
ORP
DO
Online Access:http://www.sciencedirect.com/science/article/pii/S187853521300021X
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spelling doaj-1ba82282bdc844d18a79ec446e32e4132020-11-24T23:16:39ZengElsevierArabian Journal of Chemistry1878-53522017-02-0110S1S1041S105410.1016/j.arabjc.2013.01.009Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewaterSaad Abualhail0R. Naseer Mohammed1Lu Xiwu2School of Energy and Environment, Southeast University, Sipailou Road, Nanjing 210096, PR ChinaSchool of Energy and Environment, Southeast University, Sipailou Road, Nanjing 210096, PR ChinaSchool of Energy and Environment, Southeast University, Sipailou Road, Nanjing 210096, PR ChinaAn integrated real-time anaerobic–anoxic/oxic (A2O) operated with multi-tank called IMT–A2O process was designed and operated with fluctuating influent loads for biological nutrient removal for treating real domestic wastewater. IMT–A2O process, a “phased isolation tank” technology, varies both aeration pattern and flow path in a continuous flow multi-tank system to force fluctuation of organic and nutrient concentrations in process reactors. Using an eight-phase cycle, desired biochemical transformations, are accomplished at different times in the same tank. On-line sensors (pH, ORP, and DO) were used as real-time control parameters to adjust the duration of each operational phase in the IMT–A2O process. The control system is an algorithm that automatically adjusts the cycle length to the influent wastewater characteristics according to the end points. It was found that on-line sensor values of pH, ORP, and DO were somehow related with the dynamic behaviors of nutrient concentrations in IMT–A2O. The algorithm acts in the reaction phases of the IMT–A2O cycle using ORP and pH break points of tank one to distinguish the end of denitrification and the beginning of phosphorus release, pH break point of tank two to control the end of denitrification and beginning of phosphorus release and a sudden increase in DO pattern, pH break point and ORP to control phosphorus uptake and the end of the nitrification process. Although the fluctuations in raw wastewater concentration are extreme; an influent with a low C/N ratio is deficient in organic carbon, and a low carbon source level can limit the overall biological denitrification process, the average removal efficiencies achieved for COD, ammonia–nitrogen, total nitrogen and total phosphorus were not less than 76.11%, 87.78%, 76.45% and 83.75%, respectively, using the integrated real-time control strategy. The integrated IMT–A2O exhibited a better performance in nutrient removal than the fixed-time IMT–A2O process.http://www.sciencedirect.com/science/article/pii/S187853521300021XMulti-tankA2OReal-time controlNutrient removalpHORPDO
collection DOAJ
language English
format Article
sources DOAJ
author Saad Abualhail
R. Naseer Mohammed
Lu Xiwu
spellingShingle Saad Abualhail
R. Naseer Mohammed
Lu Xiwu
Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater
Arabian Journal of Chemistry
Multi-tank
A2O
Real-time control
Nutrient removal
pH
ORP
DO
author_facet Saad Abualhail
R. Naseer Mohammed
Lu Xiwu
author_sort Saad Abualhail
title Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater
title_short Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater
title_full Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater
title_fullStr Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater
title_full_unstemmed Integrated real-time control strategy in multi-tank A2O process for biological nutrient removal treating real domestic wastewater
title_sort integrated real-time control strategy in multi-tank a2o process for biological nutrient removal treating real domestic wastewater
publisher Elsevier
series Arabian Journal of Chemistry
issn 1878-5352
publishDate 2017-02-01
description An integrated real-time anaerobic–anoxic/oxic (A2O) operated with multi-tank called IMT–A2O process was designed and operated with fluctuating influent loads for biological nutrient removal for treating real domestic wastewater. IMT–A2O process, a “phased isolation tank” technology, varies both aeration pattern and flow path in a continuous flow multi-tank system to force fluctuation of organic and nutrient concentrations in process reactors. Using an eight-phase cycle, desired biochemical transformations, are accomplished at different times in the same tank. On-line sensors (pH, ORP, and DO) were used as real-time control parameters to adjust the duration of each operational phase in the IMT–A2O process. The control system is an algorithm that automatically adjusts the cycle length to the influent wastewater characteristics according to the end points. It was found that on-line sensor values of pH, ORP, and DO were somehow related with the dynamic behaviors of nutrient concentrations in IMT–A2O. The algorithm acts in the reaction phases of the IMT–A2O cycle using ORP and pH break points of tank one to distinguish the end of denitrification and the beginning of phosphorus release, pH break point of tank two to control the end of denitrification and beginning of phosphorus release and a sudden increase in DO pattern, pH break point and ORP to control phosphorus uptake and the end of the nitrification process. Although the fluctuations in raw wastewater concentration are extreme; an influent with a low C/N ratio is deficient in organic carbon, and a low carbon source level can limit the overall biological denitrification process, the average removal efficiencies achieved for COD, ammonia–nitrogen, total nitrogen and total phosphorus were not less than 76.11%, 87.78%, 76.45% and 83.75%, respectively, using the integrated real-time control strategy. The integrated IMT–A2O exhibited a better performance in nutrient removal than the fixed-time IMT–A2O process.
topic Multi-tank
A2O
Real-time control
Nutrient removal
pH
ORP
DO
url http://www.sciencedirect.com/science/article/pii/S187853521300021X
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AT rnaseermohammed integratedrealtimecontrolstrategyinmultitanka2oprocessforbiologicalnutrientremovaltreatingrealdomesticwastewater
AT luxiwu integratedrealtimecontrolstrategyinmultitanka2oprocessforbiologicalnutrientremovaltreatingrealdomesticwastewater
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