Hydrogen is a carbon-free energy carrier and the research on alternative production methods, low energy-demanding and not based on fossil sources, plays a key role in the energy transition target. In that context, dark fermentation is considered a promising strategy for bio-hydrogen generation since it allows energy recovery from residual materials such as biodegradable waste. The present work addresses from different perspectives those which are currently believed to be the major challenges of the process. Firstly, a research study on the production yields and the assessment of long-term stability in continuous systems was performed; the results from the experimental campaign involving a number of combinations of operating conditions were reported. Secondly, the feasibility of combining the dark fermentation with electrochemical method was investigated with the aim to overcome the biochemical constraints associated with reduced hydrogen yields. To this purpose, an innovative integrated bio-electrochemical process was designed and tested under different configurations at lab-scale. Lastly, the concept of a multi-stage layout was investigated by means of two different bio-electrochemical systems serving as post processes for the dark fermentation effluent, with the overall aim of achieving a fully energy recovery from the starting substrate through bio-methane and electric current generation as well as providing an adequate level of stabilization of the residual organic matter.

Coupling bio- and electro-chemical processes for hydrogen production from organic residues / Zonfa, Tatiana. - (2022 May 19).

Coupling bio- and electro-chemical processes for hydrogen production from organic residues

ZONFA, TATIANA
19/05/2022

Abstract

Hydrogen is a carbon-free energy carrier and the research on alternative production methods, low energy-demanding and not based on fossil sources, plays a key role in the energy transition target. In that context, dark fermentation is considered a promising strategy for bio-hydrogen generation since it allows energy recovery from residual materials such as biodegradable waste. The present work addresses from different perspectives those which are currently believed to be the major challenges of the process. Firstly, a research study on the production yields and the assessment of long-term stability in continuous systems was performed; the results from the experimental campaign involving a number of combinations of operating conditions were reported. Secondly, the feasibility of combining the dark fermentation with electrochemical method was investigated with the aim to overcome the biochemical constraints associated with reduced hydrogen yields. To this purpose, an innovative integrated bio-electrochemical process was designed and tested under different configurations at lab-scale. Lastly, the concept of a multi-stage layout was investigated by means of two different bio-electrochemical systems serving as post processes for the dark fermentation effluent, with the overall aim of achieving a fully energy recovery from the starting substrate through bio-methane and electric current generation as well as providing an adequate level of stabilization of the residual organic matter.
19-mag-2022
File allegati a questo prodotto
File Dimensione Formato  
Tesi_dottorato_Zonfa.pdf

accesso aperto

Note: Tesi completa
Tipologia: Tesi di dottorato
Licenza: Creative commons
Dimensione 8.2 MB
Formato Adobe PDF
8.2 MB Adobe PDF

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

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1676547
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus ND
  • ???jsp.display-item.citation.isi??? ND
social impact