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Role of hydraulic retention time in integration of microalgae and activated sludge process for nutrient recycle from diluted dairy liquid digestate

作者:Siran Feng, Fen Liu, Shunni Zhu, Zhongbin Xu, Lei Qin, Pingzhong Feng, Zhongming Wang, Huan Chen, Wenshan Guo, Huu Hao Ngo · 发表于:Chemical Engineering Journal · 年份:2024 · DOI:10.1016/j.cej.2024.149538 · 被引用次数:21 · 研究领域:Wastewater Treatment and Nitrogen Removal、Constructed Wetlands for Wastewater Treatment、Algal biology and biofuel production

The integration of microalgae and activated sludge (MAS) processes presents a promising method for recycling nutrients from animal digestates. However, the effects of operational factors such as hydraulic retention time (HRT) on this process remain unclear. Therefore, this study utilized semi-continuous photobioreactor systems with a working volume of 800 mL to investigate the impact of three different HRTs (4 d, 6 d, and 8 d) on the performance of MAS processes for nutrient recycling from diluted dairy liquid digestate (DLD). Results indicated that the 8 d HRT yielded the highest biomass concentration, ranging from 2.20 to 2.52 g/L. However, extending the HRT beyond 6 d decreased biomass productivity. The growth of MAS biomass favoured nutrient removal, with C. vulgaris the primary contributor. Longer HRTs improved nutrient removal, with the 8 d HRT achieved the highest total nitrogen (TN) removal of 87.68 ± 4.57 % and complete phosphorus elimination. Complete total ammonia nitrogen (TAN) removal occurred when HRT ≥ 6 d. All systems exhibited poor COD removal due to the poor biodegradability of DLD and the algal organic matter (AOM) produced by microalgae, with the highest COD removal of 16.43 ± 3.65 % (8 d HRT). Metagenomic analysis revealed that HRTs affected bacterial communities significantly, with the highest richness and diversity occurring at a 6 d HRT. Dominant phyla in all three systems were Proteobacteria and Bacteroidetes. Longer HRTs enhanced lipid accumulation a...