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Chemical characterization and anaerobic biodegradability of hydrothermal liquefaction aqueous products from mixed-culture wastewater algae

机译:混合养殖废水藻类水热液化水产品的化学表征和厌氧生物降解性

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This study examined the chemical characteristics and the anaerobic degradability of the aqueous product from hydrothermal liquefaction (HTL-ap) from the conversion of mixed-culture algal biomass grown in a wastewater treatment system. The effects of the HTL reaction times from 0 to 1.5 h, and reaction temperatures from 260 degrees C to 320 degrees C on the anaerobic degradability of the HTL-ap were quantified using biomethane potential assays. Comparing chemical oxygen demand data for HTL-ap from different operating conditions, indicated that organic matter may partition from organic phase to aqueous phase at 320 degrees C. Moderate lag phase and the highest cumulative methane production were observed when HTL-ap was obtained at 320 degrees C. The longest lag phase and the smallest production rate were observed in the process fed with HTL-ap obtained at 300 degrees C. Nevertheless, after overcoming adaptation issues, this HTL-ap led to the second highest accumulated specific methane production. Acetogenesis was identified as a possible rate-limiting pathway. (C) 2014 Elsevier Ltd. All rights reserved.
机译:这项研究检查了在废水处理系统中生长的混合培养藻类生物质转化产生的水热液化(HTL-ap)水产品的化学特性和厌氧降解性。使用生物甲烷电势分析定量了HTL反应时间从0到1.5 h,反应温度从260摄氏度到320摄氏度对HTL-ap厌氧降解性的影响。比较不同操作条件下HTL-ap的化学需氧量数据,表明有机物可能在320摄氏度下从有机相分配到水相。当在320℃获得HTL-ap时,观察到适度的滞后相和最高的累计甲烷生成量在以300摄氏度获得的HTL-ap进料的过程中,观察到最长的滞后阶段和最小的生产率。尽管如此,在克服适应性问题后,这种HTL-ap导致了第二高的累积比甲烷产量。产乙酸被鉴定为可能的限速途径。 (C)2014 Elsevier Ltd.保留所有权利。

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