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A review of high-solid anaerobic digestion (HSAD): From transport phenomena to process design

  • Wangliang Li
  • , Rohit Gupta
  • , Zhikai Zhang
  • , Lixia Cao
  • , Yanqing Li
  • , Pau Loke Show
  • , Vijai Kumar Gupta
  • , Sunil Kumar
  • , Kun Yi Andrew Lin
  • , Sunita Varjani
  • , Stephanie Connelly
  • , Siming You
    • Institute of Process Engineering Chinese Academy of Sciences
    • University of Chinese Academy of Sciences
    • University of Glasgow
    • University College London
    • Department of Chemical Engineering
    • Wenzhou University
    • Department of Chemical and Environmental Engineering
    • University of Nottingham Malaysia
    • Department of Sustainable Engineering
    • Saveetha School of Engineering
    • Scotland's Rural College (SRUC)
    • CSIR- National Environmental and Engineering Research Institute (CSIR-NEERI)
    • National Chung Hsing University
    • City University of Hong Kong
    • University of Petroleum & Energy Studies

    Research output: Contribution to journalReview articlepeer-review

    54 Scopus citations

    Abstract

    High-solid anaerobic digestion (HSAD) is an attractive organic waste disposal method for bioenergy recovery and climate change mitigation. The development of HSAD is facing several challenges such as low biogas and methane yields, low reaction rates, and ease of process inhibition due to low mass diffusion and mixing limitations of the process. Therefore, the recent progress in HSAD is critically reviewed with a focus on transport phenomena and process modelling. Specifically, the work discusses hydrodynamic phenomena, biokinetic mechanisms, HSAD-specific reactor simulations, state-of-the-art multi-stage reactor designs, industrial ramifications, and key parameters that enable sustained operation of HSAD processes. Further research on novel materials such as bio-additives, adsorbents, and surfactants can augment HSAD process efficiency, while ensuring the stability. Additionally, a generic simulation tool is of urgent need to enable a better coupling between biokinetic phenomena, hydrodynamics, and heat and mass transfer that would warrant HSAD process scale-up.

    Original languageBritish English
    Article number113305
    JournalRenewable and Sustainable Energy Reviews
    Volume180
    DOIs
    StatePublished - Jul 2023

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 7 - Affordable and Clean Energy
      SDG 7 Affordable and Clean Energy
    2. SDG 12 - Responsible Consumption and Production
      SDG 12 Responsible Consumption and Production
    3. SDG 13 - Climate Action
      SDG 13 Climate Action

    Keywords

    • Anaerobic digestion
    • Heat transfer
    • High-solid
    • Machine learning
    • Mass transfer
    • Waste management

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