GENOCOV, Department of Chemical, Biological and Environmental Engineering, Universitat Autònoma de Barcelona, Bellaterra, Spain.
Water Environ Res. 2020 Dec;92(12):2072-2085. doi: 10.1002/wer.1368. Epub 2020 Jul 2.
A systematic comparison framework for selecting the best retrofitting alternative for a water resource recovery facility (WRRF) is proposed in this work. The procedure is applied comparing different possible plant configurations to retrofit an existent anoxic/oxic (A/O) WRRF (Manresa, Spain) aiming to include enhanced biological phosphorus removal (EBPR). The framework for comparison was built on system analysis using a calibrated IWA ASM2d model. A multicriteria set of performance variables, as the operational and capital expenditures (OPEX and CAPEX, respectively) and robustness tests for measuring how fast the plant configuration refuses external disturbances (like ammonium and phosphate peak loads), were used for comparison. Starting from the existent WRRF, four plant configurations were tested: single A /O (only one anoxic reactor converted to anaerobic), double A /O (two anoxic reactors converted to anaerobic), BARDENPHO, and UCT. The double A /O plant configuration was the most economical and reliable alternative for improving the existent Manresa WRRF capacity and implementing EBPR, since the effluent quality increased 3.8% compared to the current plant configuration. In addition, the double A /O CAPEX was close to €165,000 which was at the same order of the single A /O and lower than the BARDENPHO and UCT alternatives. PRACTITIONER POINTS: Four configurations including EBPR were evaluated for retrofitting an A/O WRRF. A new multicriteria comparison framework was used to select the best configuration. Up to 13 criteria related to effluent quality, robustness and costs were included. A single function based on the combination of all the criteria was also evaluated.
本工作提出了一种系统比较框架,用于选择最佳的水资源回收设施(WRRF)改造方案。该方法应用于比较不同的工厂配置,以改造现有的缺氧/好氧(A/O)WRRF(西班牙马内萨),旨在纳入强化生物除磷(EBPR)。比较框架是基于使用校准的 IWA ASM2d 模型进行系统分析构建的。采用多标准集性能变量(如运营和资本支出(OPEX 和 CAPEX))和稳健性测试来衡量工厂配置对外部干扰(如铵和磷酸盐峰值负荷)的快速拒绝能力,用于比较。从现有的 WRRF 开始,测试了四种工厂配置:单 A/O(仅一个缺氧反应器转换为厌氧)、双 A/O(两个缺氧反应器转换为厌氧)、BARDENPHO 和 UCT。双 A/O 工厂配置是改善现有马内萨 WRRF 容量和实施 EBPR 的最经济和可靠的选择,因为与当前工厂配置相比,出水质量提高了 3.8%。此外,双 A/O 的 CAPEX 接近 16.5 万欧元,与单 A/O 相近,低于 BARDENPHO 和 UCT 等替代方案。
评估了四种包括 EBPR 的配置,用于改造 A/O WRRF。使用了一种新的多标准比较框架来选择最佳配置。包括了多达 13 个与出水质量、稳健性和成本相关的标准。还评估了基于所有标准组合的单一功能。