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Feasibility of biohydrogen production at low temperatures in unbuffered reactors
Authors:Venkataramana Gadhamshetty  David C Johnson  Nagamany Nirmalakhandan  Geoff B Smith  Shuguang Deng
Affiliation:1. Air Force Research Laboratory, Tyndall AFB, 139 Barnes Drive, Panama City, FL 32403, USA;2. Institute for Energy and Environment, New Mexico State University, Las Cruces, NM 88003, USA;3. Civil Engineering Department, New Mexico State University, Las Cruces, NM 88003, USA;4. Biology Department, New Mexico State University, Las Cruces, NM 88003, USA;5. Chemical Engineering Department, New Mexico State University, Las Cruces, NM 88003, USA
Abstract:Feasibility of biohydrogen production by dark fermentation at two temperatures (22 °C and 37 °C) in unbuffered batch reactors was evaluated using heat-treated compost as inocula and sucrose as substrate, without any initial pH adjustment or inorganic nutrient supplements. Gas production was quantified by two different pressure release methods – intermittent pressure release (IPR) and continuous pressure release (CPR). Hydrogen production (47.2 mL/g COD/L) and sucrose-to-hydrogen conversion efficiency (53%) were both found to be highest at the lower temperature and IPR conditions. Hydrogen production was higher at the lower temperature irrespective of the pressure release condition. The high yield of 4.3 mol of hydrogen/mole of sucrose obtained in this study under IPR conditions at 22 °C is equivalent to or better than the literature values reported for buffered reactors. Even though literature reports have implied potential inhibition of hydrogen production at high hydrogen partial pressures resulting from IPR conditions, our results did not show any negative effects at hydrogen partial pressures exceeding 5.0 × 104 Pa. While our findings are contrary to literature reports, they make a strong case for cost-effective hydrogen production by dark fermentation.
Keywords:Biohydrogen  Intermittent pressure release  Temperature  Anaerobic fermentation  Gibbs free energy  Unbuffered  Bioenergy
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