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Product Inhibition of Biological Hydrogen Production in Batch Reactors

Permanent link
https://hdl.handle.net/10037/18614
DOI
https://doi.org/10.3390/en13061318
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Date
2020-03-12
Type
Journal article
Tidsskriftartikkel
Peer reviewed

Author
Das, Subhashis; Calay, Rajnish K; Chowdhury, Ranjana; Nath, kaustav; Eregno, Fasil
Abstract
In this paper, the inhibitory effects of added hydrogen in reactor headspace on fermentative hydrogen production from acidogenesis of glucose by a bacterium, Clostridium acetobutylicum, was investigated experimentally in a batch reactor. It was observed that hydrogen itself became an acute inhibitor of hydrogen production if it accumulated excessively in the reactor headspace. A mathematical model to simulate and predict biological hydrogen production process was developed. The Monod model, which is a simple growth model, was modified to take inhibition kinetics on microbial growth into account. The modified model was then used to investigate the effect of hydrogen concentration on microbial growth and production rate of hydrogen. The inhibition was moderate as hydrogen concentration increased from 10% to 30% (v/v). However, a strong inhibition in microbial growth and hydrogen production rate was observed as the addition of H2 increased from 30% to 40% (v/v). Practically, an extended lag in microbial growth and considerably low hydrogen production rate were detected when 50% (v/v) of the reactor headspace was filled with hydrogen. The maximum specific growth rate (µmax), substrate saturation constant (ks), a critical hydrogen concentration at which microbial growth ceased (H2*) and degree of inhibition were found to be 0.976 h−1, 0.63 ± 0.01 gL, 24.74 mM, and 0.4786, respectively
Is part of
Das, S. (2021). Mathematical modelling of bioenergy systems for stability analysis and parametric sensitivity. (Doctoral thesis). https://hdl.handle.net/10037/20637
Publisher
MDPI (Molecular Diversity Preservation International)
Citation
Das, S., Calay, R.K., Chowdhury, R., Nath, K.; Eregno, F.E.(2020) Product Inhibition of Biological Hydrogen Production in Batch Reactors. Energies, 13, (6), 1318
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