Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach
Wastewater treatment plants (WWTPs) are known to be one of the most energy-intensive industrial sectors. In this work, demand response was applied to the biological phase of wastewater treatment to reduce plant electricity cost, considering that the daily peak in flowrate typically coincides with th...
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doaj-7e25dba370e64a9eb77b3d546f5028032020-11-25T01:55:22ZengMDPI AGEnergies1996-10732020-09-01134780478010.3390/en13184780Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling ApproachMattia Cottes0Matia Mainardis1Daniele Goi2Patrizia Simeoni3Department Polytechnic of Engineering and Architecture (DPIA), Via delle Scienze 208, University of Udine, 33100 Udine, ItalyDepartment Polytechnic of Engineering and Architecture (DPIA), Via delle Scienze 208, University of Udine, 33100 Udine, ItalyDepartment Polytechnic of Engineering and Architecture (DPIA), Via delle Scienze 208, University of Udine, 33100 Udine, ItalyDepartment Polytechnic of Engineering and Architecture (DPIA), Via delle Scienze 208, University of Udine, 33100 Udine, ItalyWastewater treatment plants (WWTPs) are known to be one of the most energy-intensive industrial sectors. In this work, demand response was applied to the biological phase of wastewater treatment to reduce plant electricity cost, considering that the daily peak in flowrate typically coincides with the maximum electricity price. Compressed air storage system, composed of a compressor and an air storage tank, was proposed to allow energy cost reduction. A multi-objective modelling approach was applied by analyzing different scenarios (with and without anaerobic digestion, AD), considering both plant characteristics (in terms of treated flowrate and influent chemical oxygen demand, COD, concentration) and storage system properties (volume, air pressure), together with the current Italian market economic conditions. The results highlight that air tank volume has a strong positive influence on the obtainable economic savings, with a less significant impact held by air pressure, COD concentration and flowrate. In addition, biogas exploitation from AD led to an improvement in economic indices. The developed model is highly flexible and can be applied to different WWTPs and market conditions.https://www.mdpi.com/1996-1073/13/18/4780wastewater treatmentanaerobic digestionwater-energy nexusdemand responseenergy consumption optimizationmulti-objective model |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mattia Cottes Matia Mainardis Daniele Goi Patrizia Simeoni |
spellingShingle |
Mattia Cottes Matia Mainardis Daniele Goi Patrizia Simeoni Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach Energies wastewater treatment anaerobic digestion water-energy nexus demand response energy consumption optimization multi-objective model |
author_facet |
Mattia Cottes Matia Mainardis Daniele Goi Patrizia Simeoni |
author_sort |
Mattia Cottes |
title |
Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach |
title_short |
Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach |
title_full |
Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach |
title_fullStr |
Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach |
title_full_unstemmed |
Demand-Response Application in Wastewater Treatment Plants Using Compressed Air Storage System: A Modelling Approach |
title_sort |
demand-response application in wastewater treatment plants using compressed air storage system: a modelling approach |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2020-09-01 |
description |
Wastewater treatment plants (WWTPs) are known to be one of the most energy-intensive industrial sectors. In this work, demand response was applied to the biological phase of wastewater treatment to reduce plant electricity cost, considering that the daily peak in flowrate typically coincides with the maximum electricity price. Compressed air storage system, composed of a compressor and an air storage tank, was proposed to allow energy cost reduction. A multi-objective modelling approach was applied by analyzing different scenarios (with and without anaerobic digestion, AD), considering both plant characteristics (in terms of treated flowrate and influent chemical oxygen demand, COD, concentration) and storage system properties (volume, air pressure), together with the current Italian market economic conditions. The results highlight that air tank volume has a strong positive influence on the obtainable economic savings, with a less significant impact held by air pressure, COD concentration and flowrate. In addition, biogas exploitation from AD led to an improvement in economic indices. The developed model is highly flexible and can be applied to different WWTPs and market conditions. |
topic |
wastewater treatment anaerobic digestion water-energy nexus demand response energy consumption optimization multi-objective model |
url |
https://www.mdpi.com/1996-1073/13/18/4780 |
work_keys_str_mv |
AT mattiacottes demandresponseapplicationinwastewatertreatmentplantsusingcompressedairstoragesystemamodellingapproach AT matiamainardis demandresponseapplicationinwastewatertreatmentplantsusingcompressedairstoragesystemamodellingapproach AT danielegoi demandresponseapplicationinwastewatertreatmentplantsusingcompressedairstoragesystemamodellingapproach AT patriziasimeoni demandresponseapplicationinwastewatertreatmentplantsusingcompressedairstoragesystemamodellingapproach |
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