Enhancing Waste-to-Energy and Hydrogen Production through Urban–Industrial Symbiosis: A Multi-Objective Optimisation Model Incorporating a Bayesian Best-Worst Method

Author:

Neri Alessandro1ORCID,Butturi Maria Angela2ORCID,Lolli Francesco23ORCID,Gamberini Rita24ORCID

Affiliation:

1. Department of Industrial Engineering, University of Bologna, Via Zamboni 33, 40126 Bologna, Italy

2. Department of Sciences and Methods for Engineering, University of Modena and Reggio Emilia, Via Amendola 2, 42122 Reggio Emilia, Italy

3. En&Tech Interdepartmental Centre, Piazzale Europa 1, 42124 Reggio Emilia, Italy

4. InterMech MO.RE. Interdepartmental Centre, University of Modena and Reggio Emilia, Piazzale Europa, 1, 42124 Reggio Emilia, Italy

Abstract

A surging demand for sustainable energy and the urgency to lower greenhouse gas emissions is driving industrial systems towards more eco-friendly and cost-effective models. Biogas from agricultural and municipal organic waste is gaining momentum as a renewable energy source. Concurrently, the European Hydrogen Strategy focuses on green hydrogen for decarbonising the industrial and transportation sectors. This paper presents a multi-objective network design model for urban–industrial symbiosis, incorporating anaerobic digestion, cogeneration, photovoltaic, and hydrogen production technologies. Additionally, a Bayesian best-worst method is used to evaluate the weights of the sustainability aspects by decision-makers, integrating these into the mathematical model. The model optimises industrial plant locations considering economic, environmental, and social parameters, including the net present value, energy consumption, and carbon footprint. The model’s functionalities are demonstrated through a real-world case study based in Emilia Romagna, Italy. It is subject to sensitivity analysis to evaluate how changes in the inputs affect the outcomes and highlights feasible trade-offs through the exploration of the ϵ-constraint. The findings demonstrate that the model substantially boosts energy and hydrogen production. It is not only economically viable but also reduces the carbon footprint associated with fossil fuels and landfilling. Additionally, it contributes to job creation. This research has significant implications, with potential future studies intended to focus on system resilience, plant location optimisation, and sustainability assessment.

Funder

National Recovery and Resilience Plan

ESF REACT-EU: Programma Operativo Nazionale

Publisher

MDPI AG

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3. Lo Monaco, A., and Mallegni, R. (2023). La Gestione Dei Rifiuti in Emilia-Romagna: Report 2022, Pazzini Stampatore Editore S.r.l.. Technical Report, Regione Emilia-Romagna, Arpae Emilia-Romagna.

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