Ammonium Recovery and Biogas Upgrading in a Tubular Micro-Pilot Microbial Electrolysis Cell (MEC)
Lorenzo Cristiani, Marco Zeppilli, Cristina Porcu, Mauro Majone
AI summary
82% confidenceA 12-liter tubular microbial electrolysis cell (MEC) was developed for simultaneous biogas upgrading and ammonium recovery from anaerobic digestion effluent. The system employed a cation exchange membrane separating anodic and cathodic chambers filled with graphite granules. Operating at three nitrogen load rates (73–2229 mg N/Ld), the MEC achieved 65% CO2 removal via bioelectromethanogenesis and alkalinity-driven sorption, with ammonium migration increasing from 1% to 100% of ionic current. Energy consumption was competitive with benchmarks: 0.47 kW/(N·m³) for CO2 removal and 2.3 kW·h/kg N for ammonium recovery.
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Abstract
Here, a 12-liter tubular microbial electrolysis cell (MEC) was developed as a post treatment unit for simultaneous biogas upgrading and ammonium recovery from the liquid effluent of an anaerobic digestion process. The MEC configuration adopted a cation exchange membrane to separate the inner anodic chamber and the external cathodic chamber, which were filled with graphite granules. The cathodic chamber performed the CO2 removal through the bioelectromethanogenesis reaction and alkalinity generation while the anodic oxidation of a synthetic fermentate partially sustained the energy demand of the process. Three different nitrogen load rates (73, 365, and 2229 mg N/Ld) were applied to the inner anodic chamber to test the performances of the whole process in terms of COD (Chemical Oxygen Demand) removal, CO2 removal, and nitrogen recovery. By maintaining the organic load rate at 2.55 g COD/Ld and the anodic chamber polarization at +0.2 V vs. SHE (Standard Hydrogen Electrode), the increase of the nitrogen load rate promoted the ammonium migration and recovery, i.e., the percentage of current counterbalanced by the ammonium migration increased from 1% to 100% by increasing the nitrogen load rate by 30-fold. The CO2 removal slightly increased during the three periods, and permitted the removal of 65% of the influent CO2, which corresponded to an average removal of 2.2 g CO2/Ld. During the operation with the higher nitrogen load rate, the MEC energy consumption, which was simultaneously used for the different operations, was lower than the selected benchmark technologies, i.e., 0.47 kW/N·m³ for CO2 removal and 0.88 kW·h/kg COD for COD oxidation were consumed by the MEC while the ammonium nitrogen recovery consumed 2.3 kW·h/kg N.
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- Journal
- Molecules
- Year
- 2020