Exploring the Viability of Utilizing Treated Wastewater as a Sustainable Water Resource for Green Hydrogen Generation Using Solid Oxide Electrolysis Cells (SOECs)

Author:

Maddaloni Marina123ORCID,Marchionni Matteo4,Abbá Alessandro2ORCID,Mascia Michele4ORCID,Tola Vittorio4,Carpanese Maria Paola5ORCID,Bertanza Giorgio2ORCID,Artioli Nancy12ORCID

Affiliation:

1. CEEP Laboratory, Department of Civil Engineering, Architecture, Territory, Environment and Mathematics, University of Brescia, via Branze 38, 25123 Brescia, Italy

2. Department of Civil, Environmental, Architectural Engineering and Mathematics, University of Brescia, via Branze, 43, 25123 Brescia, Italy

3. Consorzio Interuniversitario Nazionale per la Scienza e Tecnologia dei Materiali (INSTM), University of Brescia, via Branze 38, 25123 Brescia, Italy

4. Department of Mechanical, Chemical and Materials Engineering, University of Cagliari, via Marengo 2, 09123 Cagliari, Italy

5. Department of Civil, Chemical and Environmental Engineering, University of Genova (UNIGE-DICCA), via Montallegro 1, 16145 Genoa, Italy

Abstract

In response to the European Union’s initiative toward achieving carbon neutrality, the utilization of water electrolysis for hydrogen production has emerged as a promising avenue for decarbonizing current energy systems. Among the various approaches, Solid Oxide Electrolysis Cell (SOEC) presents an attractive solution, especially due to its potential to utilize impure water sources. This study focuses on modeling a SOEC supplied with four distinct streams of treated municipal wastewaters, using the Aspen Plus software. Through the simulation analysis, it was determined that two of the wastewater streams could be effectively evaporated and treated within the cell, without generating waste liquids containing excessive pollutant concentrations. Specifically, by evaporating 27% of the first current and 10% of the second, it was estimated that 26.2 kg/m3 and 9.7 kg/m3 of green hydrogen could be produced, respectively. Considering the EU’s target for Italy is to have 5 GW of installed power capacity by 2030 and the mass flowrate of the analyzed wastewater streams, this hydrogen production could meet anywhere from 0.4% to 20% of Italy’s projected electricity demand.

Funder

NextGenerationEU

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

Reference59 articles.

1. European Commission (2020). Communication from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of The Regions—A European Strategy for Data, European Commission.

2. Nagpal, D., Abou Ali, A., Feng, J., Bianco, E., Akande, D., Escamilla, G., Reiner, M., Guinto, H., Meattle, C., and Naran, B. (2023, May 02). Global Landscape of Renewable Energy Finance 2023. Available online: www.irena.org/publications.

3. The role of biogas and biogas-derived fuels in a 100% renewable energy system in Denmark;Korberg;Energy,2020

4. Mancò, G., Guelpa, E., Colangelo, A., Virtuani, A., Morbiato, T., and Verda, V. (2021). Innovative Renewable Technology Integration for Nearly Zero-Energy Buildings within the Re-cognition Project. Sustainability, 13.

5. A comprehensive overview of electric vehicle batteries market;Mohammadi;E-Prime-Adv. Electr. Eng. Electron. Energy,2023

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