FCC aqualia, Avenida del camino de Santiago N°40, 28050 Madrid, Spain.
IMDEA Energía, Avda. Ramón de la Sagra, 3, 28935 Móstoles, Spain.
Sci Total Environ. 2017 Jul 1;589:66-72. doi: 10.1016/j.scitotenv.2017.02.206. Epub 2017 Mar 6.
Special attention is required to the removal of nitrogen and phosphorous in treated wastewaters. Although, there are a wide range of techniques commercially available for nutrient up-take, these processes entail high investment and operational costs. In the other hand, microalgae growth can simultaneously remove inorganic constituents of wastewater and produce energy rich biomass. Among all the cultivation technologies, High Rate Algae Ponds (HRAPs), are accepted as the most appropriate system. However, the optimization of the operation that maximizes the productivity, nutrient removal and lipid content in the biomass generated has not been established. In this study, the effect of two levels of depth and the addition of CO were evaluated. Batch essays were used for the calculation of the kinetic parameters of microbial growth that determine the optimum conditions for continuous operation. Nutrient removal and lipid content of the biomass generated were analyzed. The best conditions were found at depth of 0.3m with CO addition (biomass productivity of 26.2gTSSmd and a lipid productivity of 6.0glipidsmd) in continuous mode. The concentration of nutrients was in all cases below discharge limits established by the most restrictive regulation for wastewater discharge.
特别需要注意处理废水中的氮和磷的去除。虽然,有广泛的商业上可用于营养吸收的技术,但这些过程需要高的投资和运营成本。另一方面,微藻生长可以同时去除废水中的无机成分并产生富含能量的生物质。在所有的培养技术中,高负荷藻类塘(HRAPs)被认为是最合适的系统。然而,尚未确定优化操作以最大限度地提高生成的生物质的生产力、养分去除和脂质含量。在这项研究中,评估了两个深度水平和添加 CO2 的影响。分批试验用于计算微生物生长的动力学参数,以确定连续操作的最佳条件。分析了生成的生物质的养分去除和脂质含量。在连续模式下,在添加 CO2 的 0.3m 深度下找到了最佳条件(生物量生产力为 26.2gTSSmd,脂质生产力为 6.0glipidsmd)。在所有情况下,养分浓度都低于最严格的废水排放标准规定的排放限值。