84
69. Moset V, Xavier CDAN, Feng L, Wahid R, Møller HB (2018) Combined low thermal alkali
addition and mechanical pre-treatment to improve biogas yield from wheat straw. J Clean
Prod 172:1391–1398
70. Dahadha S, Amin Z, Lakeh AAB, Elbeshbishy E (2017) Evaluation of different pretreatment processes of lignocellulosic biomass for enhanced biomethane production. Energy Fuel
Energy Fuels 31(10):10335–10347
71. Baruah J, Nath BK, Sharma R, Kumar S, Deka RC, Baruah DC, Kalita E (2018) Recent
trends in the pretreatment of lignocellulosic biomass for value-added products. Front Energy
Res 6:141. https://doi.org/10.3389/fenrg.2018.00141
72. Córdova O, Santis J, Ruiz-Fillipi G, Zuñiga ME, Fermoso FG, Chamy R (2018) Microalgae
digestive pretreatment for increasing biogas production. Renew Sustain Energy Rev
82:2806–2813
73. Torres LM, Espinosa L (2008) Effect of alkaline pretreatment on anaerobic digestion of solid
wastes. Waste Manag 28:2229–2234. https://doi.org/10.1016/j.wasman.2007.10.006
74. Passos F, Hom-Diaz A, Blanquez P, Vicent T, Ferrer I (2016) Improving biogas production
from microalgae by enzymatic pretreatment. Bioresour Technol 199:347–351
75. Wagner AO, Lackner N, Mutschlechner M, Prem EV, Markt R, Illmer P (2018) Biological
pretreatment strategies for second-generation lignocellulosic resources to enhance biogas
production. Energies 11:1797
76. Parthiba Karthikeyan O, Trably E, Mehariya S, Bernet N, Wong JWC, Carrere H (2018)
Pretreatment of food waste for methane and hydrogen recovery: a review. Bioresour Technol
249:1025–1039
77. Premier GC, Kim JR, Massanet-Nicolau J, Kyazze G, Esteves S, Penumathsa B, Rodríguez
R, Maddy J, Dinsdale J, Guwy AJ (2013) Integration of biohydrogen, biomethane and bioelectrochemical systems. Renew Energy 49:188–192
78. Martinez-Perez N, Cherryman SJ, Premier GC, Dinsdale RM, Hawkes DL, Hawkes FR,
Kyazze G, Guwy AJ (2007) The potential for hydrogen-enriched biogas production from
crops: scenarios in the UK. Biomass Bioenergy 31:95–104
79. Show KY, Lee DJ, Zhang ZP (2011) Production of biohydrogen: current perspectives and
future prospects. In: Pandey A, Larroche C, Ricke SC, Dussap CG, Gnansoinou E (eds)
Biofuels alternative feedstocks and conversion processes. Academic Press, Amsterdam,
pp 467–479
80. Cysneiros D, Banks CJ, Heaven S, Karatzas KAG (2012) The effect of pH control and
‘hydraulic flush’ on hydrolysis and volatile fatty acids (VFA) production and profile in
anaerobic leach bed reactors digesting a high solids content substrate. Bioresour Technol
123:263–271
81. Bharathiraja B, Sudharsanaa T, Jayamuthunagaib J, Praveenkumarc R, Chozhavendhand S,
Iyyappan J (2018) Biogas production—a review on composition, fuel properties, feed stock
and principles of anaerobic digestion. Renew Sustain Energy Rev 90:570–582
82. Dobre T, Pârvulescu OC, Răducanu C, Trică B, Jinescu G (2018) Stochastic modelling of
poly-saccharide hydrolysis. J Eng Sci Innov 3(1):25–38
83. Van DP, Fujiwara T, Tho BL, Toan PS, Minh GH (2020) A review of anaerobic digestion
systems for biodegradable waste: configurations, operating parameters, and current trends.
Environ Eng Res 25(1):1–17
84. Cirne DG, Paloumet X, Björnsson L, Alves MM, Mattiasson B (2007) Anaerobic digestion of
lipid-rich waste—effects of lipid concentration. Renew Energy 32:965–975
85. Stams AJM, Plugge CM (2009) Electron transfer in syntrophic communities of anaerobic
bacteria and archaea. Nat Rev Microbiol 7:568–577
86. Lovley DR, Klug MJ (1983) Methanogenesis from methanol and methylamines and acetogenesis from hydrogen and carbon dioxide in the sediments of a eutrophic lake. Appl Environ
Microbiol 45:1310–1315
87. Deublein D, Steinhauser A (2008) Biogas from waste and renewable resources: an introduction. Wiley, Hoboken, NJ. ISBN 978-3-527-31841-4
C. Mateescu and A.-D. Dima
69. Moset V, Xavier CDAN, Feng L, Wahid R, Møller HB (2018) Combined low thermal alkali
addition and mechanical pre-treatment to improve biogas yield from wheat straw. J Clean
Prod 172:1391–1398
70. Dahadha S, Amin Z, Lakeh AAB, Elbeshbishy E (2017) Evaluation of different pretreatment processes of lignocellulosic biomass for enhanced biomethane production. Energy Fuel
Energy Fuels 31(10):10335–10347
71. Baruah J, Nath BK, Sharma R, Kumar S, Deka RC, Baruah DC, Kalita E (2018) Recent
trends in the pretreatment of lignocellulosic biomass for value-added products. Front Energy
Res 6:141. https://doi.org/10.3389/fenrg.2018.00141
72. Córdova O, Santis J, Ruiz-Fillipi G, Zuñiga ME, Fermoso FG, Chamy R (2018) Microalgae
digestive pretreatment for increasing biogas production. Renew Sustain Energy Rev
82:2806–2813
73. Torres LM, Espinosa L (2008) Effect of alkaline pretreatment on anaerobic digestion of solid
wastes. Waste Manag 28:2229–2234. https://doi.org/10.1016/j.wasman.2007.10.006
74. Passos F, Hom-Diaz A, Blanquez P, Vicent T, Ferrer I (2016) Improving biogas production
from microalgae by enzymatic pretreatment. Bioresour Technol 199:347–351
75. Wagner AO, Lackner N, Mutschlechner M, Prem EV, Markt R, Illmer P (2018) Biological
pretreatment strategies for second-generation lignocellulosic resources to enhance biogas
production. Energies 11:1797
76. Parthiba Karthikeyan O, Trably E, Mehariya S, Bernet N, Wong JWC, Carrere H (2018)
Pretreatment of food waste for methane and hydrogen recovery: a review. Bioresour Technol
249:1025–1039
77. Premier GC, Kim JR, Massanet-Nicolau J, Kyazze G, Esteves S, Penumathsa B, Rodríguez
R, Maddy J, Dinsdale J, Guwy AJ (2013) Integration of biohydrogen, biomethane and bioelectrochemical systems. Renew Energy 49:188–192
78. Martinez-Perez N, Cherryman SJ, Premier GC, Dinsdale RM, Hawkes DL, Hawkes FR,
Kyazze G, Guwy AJ (2007) The potential for hydrogen-enriched biogas production from
crops: scenarios in the UK. Biomass Bioenergy 31:95–104
79. Show KY, Lee DJ, Zhang ZP (2011) Production of biohydrogen: current perspectives and
future prospects. In: Pandey A, Larroche C, Ricke SC, Dussap CG, Gnansoinou E (eds)
Biofuels alternative feedstocks and conversion processes. Academic Press, Amsterdam,
pp 467–479
80. Cysneiros D, Banks CJ, Heaven S, Karatzas KAG (2012) The effect of pH control and
‘hydraulic flush’ on hydrolysis and volatile fatty acids (VFA) production and profile in
anaerobic leach bed reactors digesting a high solids content substrate. Bioresour Technol
123:263–271
81. Bharathiraja B, Sudharsanaa T, Jayamuthunagaib J, Praveenkumarc R, Chozhavendhand S,
Iyyappan J (2018) Biogas production—a review on composition, fuel properties, feed stock
and principles of anaerobic digestion. Renew Sustain Energy Rev 90:570–582
82. Dobre T, Pârvulescu OC, Răducanu C, Trică B, Jinescu G (2018) Stochastic modelling of
poly-saccharide hydrolysis. J Eng Sci Innov 3(1):25–38
83. Van DP, Fujiwara T, Tho BL, Toan PS, Minh GH (2020) A review of anaerobic digestion
systems for biodegradable waste: configurations, operating parameters, and current trends.
Environ Eng Res 25(1):1–17
84. Cirne DG, Paloumet X, Björnsson L, Alves MM, Mattiasson B (2007) Anaerobic digestion of
lipid-rich waste—effects of lipid concentration. Renew Energy 32:965–975
85. Stams AJM, Plugge CM (2009) Electron transfer in syntrophic communities of anaerobic
bacteria and archaea. Nat Rev Microbiol 7:568–577
86. Lovley DR, Klug MJ (1983) Methanogenesis from methanol and methylamines and acetogenesis from hydrogen and carbon dioxide in the sediments of a eutrophic lake. Appl Environ
Microbiol 45:1310–1315
87. Deublein D, Steinhauser A (2008) Biogas from waste and renewable resources: an introduction. Wiley, Hoboken, NJ. ISBN 978-3-527-31841-4
C. Mateescu and A.-D. Dima
