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Innovative bioelectrochemical-anaerobic-digestion integrated system for ammonia recovery and bioenergy production from ammonia-rich residues

机译:创新的生物电化学 - 厌氧 - 消化综合系统,用于从富含氨的残留物中回收氨和生物能

摘要

Ammonia (NH4+/NH3) inhibition during anaerobic digestion process is one of the most frequent problems existing in biogas plants, resulting in unstable process and reduced biogas production. In this study, we developed a novel hybrid system, consisted of a submersed microbial resource recovery cell (SMRC) and a continuous stirred tank reactor (CSTR), to prevent ammonia toxicity during anaerobic digestion by in-situ ammonia recovery and electricity production (Figure 1). In batch experiment, the ammonia concentration in the CSTR decreased from 6 to 0.7 g-N/L with an average recovery rate of 0.18 g-N/L(CSTR)/d. Meanwhile, a maximum power density of 0.71±0.5 W/m2 was produced (10 Ω). Both current driven NH4+ migration and free NH3 diffusion were identified as the mechanisms responsible for the ammonia transportation. With an increase in initial ammonia concentration and a decrease in external resistance, the SMRC performance was enhanced. In addition, the coexistence of other cations in CSTR or cathode had no negative effect on the ammonia transportation. In continuous reactor operation, 112% extra biogas production was achieved due to ammonia recovery. High-throughput molecular sequencing analysis showed an impact of ammonia recovery on the microbial community composition in the integrated system. Results clearly indicate the great potential of the SMRC-CSTR-coupled system for efficient and cost-effective ammonia recovery, energy production and treatment of ammonia-rich residues.
机译:厌氧消化过程中的氨(NH4 + / NH3)抑制是沼气厂中最常见的问题之一,导致工艺不稳定和沼气产量降低。在这项研究中,我们开发了一种新型的混合系统,该系统由潜水式微生物资源回收池(SMRC)和连续搅拌釜反应器(CSTR)组成,以通过原位氨回收和发电来防止厌氧消化过程中的氨毒性(图1)。在分批实验中,CSTR中的氨浓度从6降至0.7 g-N / L,平均回收率为0.18 g-N / L(CSTR)/ d。同时,产生的最大功率密度为0.71±0.5 W / m2(10Ω)。电流驱动的NH4 +迁移和自由的NH3扩散均被认为是造成氨迁移的机制。随着初始氨浓度的增加和外部电阻的降低,SMRC性能得到了增强。此外,CSTR或阴极中其他阳离子的共存对氨的迁移没有负面影响。在连续反应器操作中,由于氨的回收,实现了112%的额外沼气生产。高通量分子测序分析表明氨回收对集成系统中微生物群落组成的影响。结果清楚地表明,SMRC-CSTR耦合系统在高效和经济高效的氨回收,能源生产和富氨残渣处理方面具有巨大潜力。

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