Published October 1, 2025 | Version v1
Conference paper Open

Static hydrodynamic cavitation as external gas-liquid transfer system for biological biogas upgrading

  • 1. ROR icon University of Naples Federico II
  • 2. ROR icon ENEA Bologna Research Centre
  • 3. ENEA
  • 4. ROR icon ENEA Trisaia Research Centre

Description

The study deals with the use of a static hydrodynamic cavitation device as a gas-to-liquid mass transfer system to provide the biological conversion of carbon dioxide into methane in a dedicated bioreactor. An orifice plate hydrodynamic cavitation device was coupled with a thermophilic pilot-scale bioreactor inoculated with a mixed inoculum sampled from a centralized full-scale anaerobic digester treating sewage sludge. The bioreactor was fed with hydrogen and carbon dioxide and then, with a mix of hydrogen and biogas, and monitored in terms of process efficiency and stability. Gas sparging through the static hydrodynamic cavitation device was feasible under the operating conditions applied, allowing to achieve a methane concentration above 96% in the gas produced and a hydrogen solubilization efficiency of about 100% without compromising biological stability. However, during the biogas upgrading experimental stage a significant foam formation was observed in the reactor headspace, which led to a lower bioavailability of the CO2 and increased complexities in process management.

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References

  • Bellini, R., Bassani, I., Vizzarro, A., Azim, A. A., Vasile, N. S., Pirri, C. F., Verga, F., Menin, B. 2022 Biological Aspects, Advancements and Techno-Economical Evaluation of Biological Methanation for the Recycling and Valorization of CO2. Energies 15(11), 4064.
  • Chatzis, A., Gkotsis, P., Zouboulis, A. 2024 Biological methanation (BM): A state-of-the-art review on recent research advancements and practical implementation in full-scale BM units. Energy Conversion and Management 314, 118733.
  • Giuliano, A., Cellamare, C. M., Chiarini, L., Tabacchioni, S., Petta, L. 2023 Evaluation of the controlled hydrodynamic cavitation as gas mass transfer system for ex-situ biological hydrogen methanation. Chemical Engineering Journal, 471, 144475.
  • Jensen, M. B., Ottosen, L. D. M., Kofoed, M. V. W. 2021 H2 gas-liquid mass transfer: A key element in biological Power-to-Gas methanation. Renewable and Sustainable Energy Reviews 147, 111209.
  • Jiménez-Páez E., Serrano A., Purswani J., Correa-Galeote D., Cubero-Cardoso J., e Fermoso F. G., «Impact on the microbial population during biological volatile fatty acid production from olive mill solid waste», Environmental Technology & Innovation, vol. 32, p. 103409, nov. 2023
  • Mancuso, G., Langone, M., Laezza, M., Andreottola, G. 2016 Decolourization of Rhodamine B: A swirling jet-induced cavitation combined with NaOCl. Ultrasonics Sonochemistry, 32, 18–30.
  • Nakamura K et al., «Methanothermobacter tenebrarum sp. nov., a hydrogenotrophic, thermophilic methanogen isolated from gas-associated formation water of a natural gas field», International Journal of Systematic and Evolutionary Microbiology, vol. 63, fasc. Pt_2, pp. 715–722, feb. 2013
  • Ozonek, J. (2012). Application of Hydrodynamic Cavitation in Environmental Engineering Taylor & Francis Group, CRC Press 2012 London 1.
  • Paillet, F., Crestey, E., Gaval, G., Haddad, M., Lebars, F., Nicolitch, O., Camacho, P. 2025 Utilization of dissolved CO2 to control methane and acetate production in methanation reactor. Bioresource Technology, 416. 131722.
  • Panda, D., Saharan, V. K., Manickam, S. 2020 Controlled hydrodynamic cavitation: A review of recent advances and perspectives for greener processing. Processes 8(2), 220.
  • Tsapekos, P., Alvarado-Morales, M., & Angelidaki, I. 2022 H2 competition between homoacetogenic bacteria and methanogenic archaea during biomethanation from a combined experimental-modelling approach. Journal of Environmental Chemical Engineering, 10(2) 107281.
  • Wagner, T., Watanabe, T., Shima, S. 2018 Hydrogenotrophic Methanogenesis. Biogenesis of Hydrocarbons 1–29
  • Rittmann, S.KM.R. (2015). A Critical Assessment of Microbiological Biogas to Biomethane Upgrading Systems. In: Guebitz, G., Bauer, A., Bochmann, G., Gronauer, A., Weiss, S. (eds) Biogas Science and Technology. Advances in Biochemical Engineering/Biotechnology, vol 151