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Improving the energy balance of an integrated microalgal wastewater treatment process

机译:改善微藻废水综合处理过程的能量平衡

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摘要

The inclusion of a microalgal system in a wastewater treatment flowsheet for residual nutrient uptake can be justified by processing the waste biomass for energy recovery. Low energy harvesting technologies and pre-treatment of the algal biomass are required to improve the overall energy balance of this integrated system. Scenedesmus obliquus and Chlorella sp., achieving nitrogen and phosphorus removal rates higher than 90 %, were used to compare cells recovery efficiency and energy requirements of two energy efficient harvesting systems: dissolved air flotation (DAF) and ballasted dissolved air flotation (BDAF). In addition, thermal hydrolysis was used as a pre-treatment to improve biogas production during anaerobic digestion. The energy required for both systems was then considered to estimate the daily energy demand and efficiency of two microalgae wastewater treatment plants with a capacity of 25,000 and 230,000 p.e., respectively. Overall, a high algal cells recovery efficiency (99 %) was achieved using low energy demand (0.04 kWh m-3 for BDAF) and a coagulant dose reduction between 42 and 50 % depending on the algal strain. Anaerobic digestion of pre-treated S. obliquus showed a threefold increase in methane yield. Compared to a traditional activated sludge process, the additional tertiary microalgal treatment generates an integrated process potentially able to achieve up to 76 % energy efficiency.
机译:通过处理废物生物质以回收能量,可以证明废水处理流程中包含微藻系统以吸收残留的养分。需要低能量收集技术和藻类生物质的预处理才能改善此集成系统的总体能量平衡。斜生Scendesmus obliquus和小球藻(Chlorella sp。)的脱氮率和磷去除率均高于90%,用于比较两种高效节能收获系统:溶解空气浮选(DAF)和压载溶解空气浮选(BDAF)的细胞回收效率和能量需求。另外,热水解被用作预处理以改善厌氧消化过程中沼气的产生。然后考虑两个系统所需的能量来估计两个分别产能为25,000和230,000 p.e.的微藻类废水处理厂的每日能量需求和效率。总体而言,使用低能量需求(BDAF为0.04 kWh m-3),并根据藻株的不同,可将凝结剂剂量减少42%至50%,从而实现高藻类细胞回收效率(99%)。预处理斜生链球菌的厌氧消化显示甲烷产量增加了三倍。与传统的活性污泥工艺相比,附加的第三级微藻处理产生了一个集成工艺,潜在地可以实现高达76%的能效。

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