Water Resource Recovery Facilities (WRRFs) are big contributors to greenhouse gas (GHG) emissions and energy consumption. Aeration is the main source of energy consumption in these facilities and nitrous oxide (N2O) is the main form of direct emission which is produced during nitrification and denitrification processes through multiple potential pathways. Mathematical modelling is a widely used tool for optimisation of WRRFs and modelling protocols have been developed, which are widely used in the community. However, carbon footprint reduction has not been the main focus of these protocols. In this study, an innovative model -based protocol for minimising GHG emissions of WRRFs was developed using advanced mathematical modelling paradigms. The protocol was constructed based on three different cases for each of which a flow sheet model, a computational fluid dynamics (CFD) model and a knowledge -based risk assessment model were studied together with high frequency data collected by LESSDRONE (an automated wireless tool for measuring direct off -gas emissions). The risk assessment model helps identify high risk conditions while the CFD model provides valuable insights on the impact of hydrodynamics under non -ideal mixing conditions. The flow sheet model is used to test the proposed mitigation strategies and to provide in-silico data for the risk assessment model. The developed model- based protocol provides a robust guideline for water utilities to optimise their operations for minimising carbon footprint of WRRFs without compromising their removal efficiencies.

An innovative model-based protocol for minimisation of greenhouse gas (GHG) emissions in WRRFs / Daneshgar, S.; Amerlinck, Y.; Amaral, A.; De Mulder, C.; Di Nisio, A.; Bellandi, G.; Gori, R.; Caretti, C.; Ducci, I.; Rehman, U.; Porro, J.; Nopens, I.; Torfs, E.. - In: CHEMICAL ENGINEERING JOURNAL. - ISSN 1385-8947. - ELETTRONICO. - 483:(2024), pp. 148327.0-148327.0. [10.1016/j.cej.2023.148327]

An innovative model-based protocol for minimisation of greenhouse gas (GHG) emissions in WRRFs

Di Nisio, A.;Bellandi, G.;Gori, R.
Writing – Review & Editing
;
Caretti, C.
Visualization
;
Ducci, I.;
2024

Abstract

Water Resource Recovery Facilities (WRRFs) are big contributors to greenhouse gas (GHG) emissions and energy consumption. Aeration is the main source of energy consumption in these facilities and nitrous oxide (N2O) is the main form of direct emission which is produced during nitrification and denitrification processes through multiple potential pathways. Mathematical modelling is a widely used tool for optimisation of WRRFs and modelling protocols have been developed, which are widely used in the community. However, carbon footprint reduction has not been the main focus of these protocols. In this study, an innovative model -based protocol for minimising GHG emissions of WRRFs was developed using advanced mathematical modelling paradigms. The protocol was constructed based on three different cases for each of which a flow sheet model, a computational fluid dynamics (CFD) model and a knowledge -based risk assessment model were studied together with high frequency data collected by LESSDRONE (an automated wireless tool for measuring direct off -gas emissions). The risk assessment model helps identify high risk conditions while the CFD model provides valuable insights on the impact of hydrodynamics under non -ideal mixing conditions. The flow sheet model is used to test the proposed mitigation strategies and to provide in-silico data for the risk assessment model. The developed model- based protocol provides a robust guideline for water utilities to optimise their operations for minimising carbon footprint of WRRFs without compromising their removal efficiencies.
2024
483
0
0
Daneshgar, S.; Amerlinck, Y.; Amaral, A.; De Mulder, C.; Di Nisio, A.; Bellandi, G.; Gori, R.; Caretti, C.; Ducci, I.; Rehman, U.; Porro, J.; Nopens, ...espandi
File in questo prodotto:
File Dimensione Formato  
1-s2.0-S1385894723070596-main.pdf

Accesso chiuso

Tipologia: Pdf editoriale (Version of record)
Licenza: Tutti i diritti riservati
Dimensione 18.61 MB
Formato Adobe PDF
18.61 MB Adobe PDF   Richiedi una copia

I documenti in FLORE sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1356167
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 1
  • ???jsp.display-item.citation.isi??? 1
social impact