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Nitrogen removal via core-shell bio-ceramic/Zn-layer double hydroxides synthesized with different composites for domestic wastewater treatment

机译:核壳生物陶瓷/锌层双氢氧化物与不同复合物合成后用于生活污水的脱氮

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Powdered layer double hydroxides are small with low density, which results in problems when they are applied to constructed wetlands. The removal efficiency of many original substrate materials tends to decrease with nitrogenous saturation. To overcome these defects, a co-precipitation method was used to prepare modified bio-ceramic coated with ZnFe-layer double hydroxides (Zn:Fe =1:1, 2:1, 3:1) and ZnAllayer double hydroxides (Zn:Al =1:1, 2:1, 3:1) under alkaline conditions. Different molar ratios were firstly considered in bio-ceramic/Zn-layer double hydroxides to screen for the best modification methods. Fourteen simulated columns were produced to treat the nitrogen-containing domestic wastewater, and these columns were filled with different modified bio-ceramics and original bioceramics. The nitrogen removal rates of modified bio-ceramic improved. Group A was the experimental group, and group B was the control group. Group B had chloroform added to influent wastewater to retard the microbial growth. The NH4+-N removal rates in group A were higher than group B. Nitrates accumulated and fluctuated throughout the purification experiments due to the dominance of dissolved oxygen in the vertical-flow simulated columns. Isothermal adsorption tests were subsequently performed. The nitrogen adsorption capacity and microbial action were measured to verify the best modified coating method for bio-ceramics and to explore the mechanisms of nitrogen removal. Bioceramic/ZnFe (2:1)-layer double hydroxides were the best coating for the bio-ceramics. The treated water met Class 1A level for Chinese discharge standards from municipal wastewater treatment plant (GB18918-2002) in the aspect of the NH4--N concentration. The reagent cost of the bio-ceramic/ZnFe (2:1)-layer double hydroxides was RMB 0.07/kg. Within an assumed service cycle of one year, bioceramican-layer double hydroxides could increase the cost to 0.3500/m(3) wastewater, while the NH4+-N removal rates improved 15.11%. In summary, the layer double hydroxides-coating modification of the original bio-ceramic is an economical and promising strategy for new types of highly efficient, durable, and stable substrates. It enhances the adsorption capacity and improves the microbial effect. (C) 2018 Elsevier Ltd. All rights reserved.
机译:粉末状双氢氧化物小且密度低,在将其应用于人工湿地时会产生问题。许多原始基质材料的去除效率往往会随着含氮饱和度而降低。为了克服这些缺陷,采用共沉淀法制备了改性的生物陶瓷,该生物陶瓷包覆有ZnFe层双氢氧化物(Zn:Fe = 1:1,2:1,3:1)和ZnAl层双氢氧化物(Zn:Al = 1:1、2:1、3:1)。首先在生物陶瓷/锌层双氢氧化物中考虑不同的摩尔比,以筛选最佳的改性方法。生产了十四个模拟柱来处理含氮生活污水,这些柱中装有不同的改性生物陶瓷和原始生物陶瓷。改性生物陶瓷的脱氮率提高。 A组为实验组,B组为对照组。 B组在进水废水中添加了氯仿,以阻止微生物的生长。 A组中的NH4 + -N去除率高于B组。由于在垂直流模拟色谱柱中溶解氧占优势,因此在整个纯化实验过程中,硝酸盐累积并波动。随后进行等温吸附测试。测量了氮的吸附能力和微生物作用,以验证用于生物陶瓷的最佳改性涂层方法并探讨脱氮的机理。生物陶瓷/ ZnFe(2:1)层双氢氧化物是生物陶瓷的最佳涂层。经处理的水在NH4-N浓度方面达到了中国城市污水处理厂的排放标准(GB18918-2002)的1A级标准。生物陶瓷/ ZnFe(2:1)层双氢氧化物的试剂成本为0.07元/ kg。在假定的一年服务周期内,生物陶瓷层双层氢氧化物可能使成本增加到0.3500 / m(3),而NH4 + -N去除率提高了15.11%。总之,对于新型的高效,耐用和稳定的基材,原始生物陶瓷的双层氢氧化物涂层改性是一种经济且有前途的策略。它增强了吸附能力并改善了微生物效果。 (C)2018 Elsevier Ltd.保留所有权利。

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