PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 10, 2026Biomass0 citationsOpen Access

Green Hydrogen and Biomethane Recovery from Slaughterhouse Wastes Using Temperature-Phased Anaerobic Co-Digestion

JFJuana Fernández-RodríguezMMMiguel MuñozMPMontserrat Perez

Key Points

  • The study aimed to evaluate the biodegradability of slaughterhouse waste fractions to optimize energy recovery through anaerobic co-digestion.
  • Conducted a two-phase anaerobic co-digestion process with semi-liquid and liquid waste fractions
  • Operated batch reactors in thermophilic (55 °C) and mesophilic (35 °C) stages
  • Used biochemical hydrogen potential assays to measure hydrogen production
  • Used biochemical methane potential assays to assess biomethane generation
  • Liquid fractions maximized hydrogen recovery, though overall yields were limited
  • The 25L:75S configuration increased soluble COD by 1280%
  • Acidogenic pre-treatment enhanced methane yields, achieving 495.46 mL CH4/g VS
  • A 13.8% improvement over theoretical methane potential was observed, indicating effective substrate balancing

Abstract

Rapid population growth is intensifying global energy demand and waste generation. Slaughterhouse waste is creating important environmental problems. Transforming this into renewable energy through technologies like anaerobic digestion offers a sustainable pathway to reduce environmental impacts and support the energy transition. The main objective of this study was to examine the biodegradability of the slaughterhouse semi-liquid fraction (S), slaughterhouse liquid fractions (L), and their mixtures (25%, 50%, and 75%) through a two-phase anaerobic co-digestion (TPAcD) process. Batch reactors were operated in two separate microbiological and thermal phases. In the first, a thermophilic 55 °C–acidogenic stage, biochemical hydrogen potential (BHP) assays were conducted to evaluate green hydrogen production, while in the second, a mesophilic 35 °C–methanogenic stage, biochemical methane potential (BMP) assays were carried out to assess biomethane generation. The most relevant findings revealed that while liquid fractions maximized hydrogen recovery, overall yields remained limited due to competitive metabolic pathways. Notably, the 25L:75S configuration optimized hydrolysis, with a 1280% increase in soluble COD, establishing the semi-liquid fraction as a critical organic reservoir for thermophilic–acidogenic activity. In the subsequent stage, the acidogenic pre-treatment significantly enhanced methanogenesis, where the same 25L:75S mixture exhibited a synergistic methane yield of 495.46 mL CH4/g VS. This 13.8% improvement over the theoretical additive potential confirms that strategic substrate balancing overcomes individual feedstock limitations, maximizing energy recovery in sequential anaerobic digestion. These results highlight the potential of phase-separated anaerobic co-digestion as a strategy to improve the valorization of slaughterhouse wastes.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Fernández-Rodríguez et al. (2026) studied this question.

synapsesocial.com/papers/69d8948f6c1944d70ce0577fhttps://doi.org/10.3390/biomass6020027
Ask AI
Helpful
Bookmark
Share
View Full Paper