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基于高碘酸盐预处理强化剩余活性污泥的厌氧消化

Enhanced anaerobic digestion of waste activated sludge with periodate-based pretreatment.

作者信息

Guo Haixiao, Tian Lixin, Wang Yufen, Zheng Kaixin, Hou Jiaqi, Zhao Yingxin, Zhu Tingting, Liu Yiwen

机构信息

School of Environmental Science and Engineering, Tianjin University, Tianjin, 300072, China.

出版信息

Environ Sci Ecotechnol. 2022 Oct 22;13:100208. doi: 10.1016/j.ese.2022.100208. eCollection 2023 Jan.

Abstract

The potential of periodate (PI) in sludge anaerobic digestion is not tapped, although it has recently attracted great research interest in organic contaminants removal and pathogens inactivation in wastewater treatment. This is the first work to demonstrate significant improvement in methane generation from waste activated sludge (WAS) with PI pretreatment and to provide underlying mechanisms. Biochemical methane potential tests indicated that methane yield enhanced from 100.2 to 146.3 L per kg VS (VS, volatile solids) with PI dosages from 0 to 100 mg per g TS (TS, total solids). Electron spin resonance showed PI could be activated without extra activator addition, which might be attributed to the native transition metals (e.g., Fe) in WAS, thereby generating hydroxyl radical (•OH), superoxide radicals (•O ), and singlet oxygen (O). Further scavenging tests demonstrated all of them synergistically promoted WAS disintegration, and their contributions were in the order of •O > •OH > O, leading to the release of substantial biodegradable substances (i.e., proteins and polysaccharides) into the liquid phase for subsequent biotransformation. Moreover, fluorescence and ultraviolet spectroscopy analyses indicated the recalcitrant organics (especially lignocellulose and humus) could be degraded by reducing their aromaticity under oxidative stress of PI, thus readily for methanogenesis. Microbial community analysis revealed some microorganisms participating in hydrolysis, acidogenesis, and acetoclastic methanogenesis were enriched after PI pretreatment. The improved key enzyme activities and up-regulated metabolic pathways further provided direct evidence for enhanced methane production. This research was expected to broaden the application scope of PI and provide more diverse pretreatment choices for energy recovery through anaerobic digestion.

摘要

尽管高碘酸盐(PI)最近在废水处理中的有机污染物去除和病原体灭活方面引起了极大的研究兴趣,但污泥厌氧消化中高碘酸盐的潜力尚未得到挖掘。这是第一项证明用PI预处理可显著提高废弃活性污泥(WAS)产甲烷量并提供潜在机制的研究。生化甲烷潜力测试表明,随着PI剂量从0增加到100 mg/g总固体(TS),甲烷产量从每千克挥发性固体(VS)100.2升提高到146.3升。电子自旋共振表明,无需额外添加活化剂即可激活PI,这可能归因于WAS中的天然过渡金属(如Fe),从而产生羟基自由基(•OH)、超氧自由基(•O)和单线态氧(O)。进一步的清除试验表明,它们都协同促进了WAS的解体,其贡献顺序为•O > •OH > O,导致大量可生物降解物质(即蛋白质和多糖)释放到液相中以便后续生物转化。此外,荧光和紫外光谱分析表明,难降解有机物(特别是木质纤维素和腐殖质)在PI的氧化应激下可通过降低其芳香性而被降解,从而易于进行甲烷生成。微生物群落分析表明,PI预处理后,一些参与水解、产酸和乙酸裂解产甲烷的微生物得到了富集。关键酶活性提高和代谢途径上调进一步为甲烷产量增加提供了直接证据。本研究有望拓宽PI的应用范围,并为通过厌氧消化进行能量回收提供更多样化的预处理选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a600/9640319/c9874567fba7/ga1.jpg

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