School of Grain Science and Technology, Jiangsu University of Science and Technology, Zhenjiang 212100, China.
College of Resources and Environment, Zhongkai University of Agriculture and Engineering, Guangzhou 510225, China.
Bioresour Technol. 2023 Nov;387:129671. doi: 10.1016/j.biortech.2023.129671. Epub 2023 Aug 12.
Integration of zeolite-based ammonia adsorption and algae-yeast consortia was developed to remediate piggery wastewater (PW) containing high concentrations of total ammonia nitrogen (TAN) and total organic carbon (TOC). After optimizing the conditions of ammonia adsorption in the PW. Zeolite addition mitigated ammonia toxicity, allowing zeolites to gradually release ammonia while effectively attenuating algal oxidative stress caused by high TAN concentration. Coupling zeolite-based adsorption and yeast co-incubation further increased TOC degradation and available C/N ratio, thus improving biomass (4.51 g/L), oil yield (2.11 g/L), and nutrient removal (84.18%-99.14%). The integrated microalgae-based PW treatment exhibited higher carbon migration into biomass (46.14%) and reduced treatment costs than conventional approaches. Simultaneously, the lowest carbon migration to wastewater also meant the smallest carbon emission into water bodies. These findings demonstrate that this novel strategy can remove nutrients in raw PW effectively and produce high oil-rich biomass in a sustainable and environmentally-friendly manner.
沸石基氨吸附与藻类-酵母共生体的集成被开发用于修复含有高浓度总氨氮(TAN)和总有机碳(TOC)的养猪废水(PW)。在优化 PW 中氨吸附条件后。沸石的添加减轻了氨的毒性,使沸石在有效减轻高 TAN 浓度引起的藻类氧化应激的同时,逐渐释放氨。沸石基吸附与酵母共孵育的耦合进一步提高了 TOC 降解和有效 C/N 比,从而提高了生物量(4.51g/L)、产油量(2.11g/L)和养分去除率(84.18%-99.14%)。与传统方法相比,基于集成微藻的 PW 处理表现出更高的碳向生物质的迁移(46.14%)和降低的处理成本。同时,最低的碳向废水中的迁移意味着进入水体的碳排放量最小。这些发现表明,这种新策略可以有效地去除原 PW 中的营养物质,并以可持续和环保的方式生产富含油的高生物质。