4.7 Article

Impacts of different biochar types on hydrogen production promotion during fermentative co-digestion of food wastes and dewatered sewage sludge

Journal

WASTE MANAGEMENT
Volume 80, Issue -, Pages 73-80

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.wasman.2018.08.042

Keywords

Pyrolysis; Biochar property; Buffering capacity; Fermentative hydrogen production; Bio-wastes management

Funding

  1. National Natural Science Foundation of China [51608430]
  2. Natural Science Foundation for Young Scientists of Xi'an University of Architecture and Technology, China [QN1615]
  3. Shaanxi Provincial Education Department [17JS077]

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Pyrolysis and anaerobic digestion are two important strategies for waste management that may be combined for clean energy production. This article investigates the effects of 12 types of biochars derived from four feedstocks at three pyrolysis temperatures on H-2 production via fermentative co-digestion of food wastes and dewatered sewage sludge. The results show that feedstock type and pyrolysis temperature significantly influence biochar properties such as pH, specific surface area and ash contents. Despite the wide range of BET specific surface areas (1.2-511.3 m(2)/g) and ash contents (5.3-73.7( wt%)) of biochars produced, most biochars promoted the VFAs production process and altered the fermentative type from that of acetate type to butyrate type, which seemed to have a higher efficiency for H-2 production. Moreover, fitting of the results to the modified Gompertz model shows that biochar addition shortens the lag time by circa 18-62% and increases the maximum H-2 production rate by circa 18-110%. Furthermore, the biochar derived at higher pyrolysis temperatures enhances H-2 production dramatically over those derived at low temperatures. Principal components analysis demonstrated that the pH buffering capacity of biochar was critical to the promotion of fermentative H-2 production by mitigating the pH decrease caused by VFAs accumulation. Consequently, a sustainable integrated waste management strategy combining pyrolysis and anaerobic digestion is proposed for the efficient treatment of various bio-wastes. (C) 2018 Elsevier Ltd. All rights reserved.

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