101. Kim DH, Wu JY, Jeong KW, Kim MS, Shin HS (2011) Natural inducement of hydrogen from
food waste by temperature control. Int J Hydrog Energy 36(17):10666–10673
102. Han SK, Shin HS (2004) Performance of an innovative two-stage process converting food
waste to hydrogen and methane. J Air Waste Manag Assoc 54(2):242–249
103. Han SK, Shin HS (2004) Biohydrogen production by anaerobic fermentation of food waste.
Int J Hydrog Energy 29(6):569–577
104. Kim SH, Han SK, Shin HS (2004) Feasibility of biohydrogen production by anaerobic
co-digestion of food waste and sewage sludge. Int J Hydrog Energy 29(15):1607–1616
105. Lee YW, Chung J (2010) Bioproduction of hydrogen from food waste by pilot-scale combined
hydrogen/methane fermentation. Int J Hydrog Energy 35(21):11746–11755
106. Wongthanate J, Chinnacotpong K, Khumpong M (2014) Impacts of pH, temperature, and
pretreatment method on biohydrogen production from organic wastes by sewage microflora.
Int J Energy Environ Eng 5(1):6
107. Hassan GK, Massanet-Nicolau J, Dinsdale R, Jones RJ, Abo-Aly MM, El-Gohary FA, Guwy
A (2019) A novel method for increasing biohydrogen production from food waste using
electrodialysis. Int J Hydrog Energy 44(29):14715–14720
108. Abreu AA, Tavares F, Alves MM, Cavaleiro AJ, Pereira MA (2019) Garden and food waste
co-fermentation for biohydrogen and biomethane production in a two-step hyperthermophilicmesophilic process. Bioresour Technol 278:180–186
109. Shin HS, Youn JH (2005) Conversion of food waste into hydrogen by thermophilic
acidogenesis. Biodegradation 16(1):33–44
110. Lee ZK, Li SL, Lin JS, Wang YH, Kuo PC, Cheng SS (2008) Effect of pH in fermentation of
vegetable kitchen wastes on hydrogen production under a thermophilic condition. Int J Hydrog
Energy 33(19):5234–5241
111. Lee ZK, Li SL, Kuo PC, Chen IC, Tien YM, Huang YJ, Chuang CP, Wong SC, Cheng SS
(2010) Thermophilic bio-energy process study on hydrogen fermentation with vegetable
kitchen waste. Int J Hydrog Energy 35(24):13458–13466
112. Chu CF, Li YY, Xu KQ, Ebie Y, Inamori Y, Kong HN (2008) A pH- and temperature-phased
two-stage process for hydrogen and methane production from food waste. Int J Hydrog Energy
33(18):4739–4746
113. Lay JJ, Fan KS, Chang J, Ku CH (2003) Influence of chemical nature of organic wastes on
their conversion to hydrogen by heat-shock digested sludge. Int J Hydrog Energy 28
(12):1361–1367
114. Wongthanate J, Chinnacotpong K (2015) Optimal conditions for biological hydrogen production from food waste. Environ Eng Res 20(2):121–125
115. De Gioannis G, Muntoni A, Polettini A, Pomi R (2013) A review of dark fermentative
hydrogen production from biodegradable municipal waste fractions. Waste Manag 33
(6):1345–1361
116. Kayhanian M (1995) Biodegradability of the organic fraction of municipal solid-waste in a
high-solids anaerobic digester. Waste Manag Res 13(2):123–136
117. Themelis NJ, Kim YH (2002) Material and energy balances in a large-scale aerobic bioconversion cell. Waste Manag Res 20(3):234–242
118. Li SL, Kuo SC, Lin JS, Lee ZK, Wang YH, Cheng SS (2008) Process performance evaluation
of intermittent-continuous stirred tank reactor for anaerobic hydrogen fermentation with
kitchen waste. Int J Hydrog Energy 33(5):1522–1531
119. Liu DW, Liu DP, Zeng RJ, Angelidaki I (2006) Hydrogen and methane production from
household solid waste in the two-stage fermentation process. Water Res 40(11):2230–2236
120. Alzate-Gaviria LM, Sebastian PJ, Perez-Hernandez A, Eapen D (2007) Comparison of two
anaerobic systems for hydrogen production from the organic fraction of municipal solid waste
and synthetic wastewater. Int J Hydrog Energy 32(15):3141–3146
121. Ebrahimian F, Karimi K (2020) Efficient biohydrogen and advanced biofuel coproduction
from municipal solid waste through a clean process. Bioresour Technol 300:122656
362
A. Hajizadeh et al.
Précédent

- 377/458

Suivant