Department of Environmental Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark.
Department of Environmental Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark.
Chemosphere. 2018 Mar;195:735-741. doi: 10.1016/j.chemosphere.2017.12.139. Epub 2017 Dec 26.
Ammonia monitoring is important to control anaerobic digestion (AD) process due to inhibition effect. Here, an electrolysis cell (EC) was integrated with a complete nitrification reactor as an alternative approach for online monitoring of ammonia during AD processes. The AD effluent was pumped into nitrification reactor to convert ammonia to nitrate, followed by the introduction of nitrate-rich effluent to EC cathode. It was first evaluated with synthetic ammonia-rich digesters and was observed that the current at 5 min were linearly corresponding to the ammonia levels (from 0 to 7.5 mM NH-N, R = 0.9673). The linear relationship was always observed regardless of different wastewater pH and external voltage. Pre-removal of other electron acceptors from digestate at cathode could eliminate their disturbances to sensor performance. Finally, the accuracy of biosensor was verified with real digestate test. The simple and reliable biosensor showed great promising for online ammonia monitoring of AD processes.
氨监测对于控制厌氧消化(AD)过程很重要,因为氨会产生抑制作用。在这里,将电解池(EC)与完全硝化反应器集成作为 AD 过程中在线监测氨的替代方法。将 AD 流出物泵入硝化反应器以将氨转化为硝酸盐,然后将富硝酸盐的流出物引入 EC 阴极。首先用富含合成氨的消化器进行了评估,结果表明,电流在 5 分钟内与氨水平呈线性对应(从 0 到 7.5 mM NH-N,R = 0.9673)。无论废水 pH 值和外加电压如何,均始终观察到线性关系。在阴极预先去除消化物中的其他电子受体可以消除它们对传感器性能的干扰。最后,通过实际消化物测试验证了生物传感器的准确性。这种简单可靠的生物传感器为 AD 过程的在线氨监测提供了很大的前景。