Citation: | ZHOU Yu-han, PAN Yang, ZHANG Rui-liang, ZHENG Chao-ting, ZHI Zhong-xiang, ZHEN Guang-yin. EFFECT OF ACID-ALKALI MICROWAVE COMBINED PRETREATMENT ON RUPTURE OF SLUDGE EXTRACELLULAR POLYMERIC SUBSTANCES AND METHANE PRODUCTION[J]. ENVIRONMENTAL ENGINEERING , 2020, 38(12): 19-25,31. doi: 10.13205/j.hjgc.202012004 |
中华人民共和国住房和城乡建设部.2018年城乡建设统计年鉴[EB/OL].http://www.mohurd.gov.cn/,2020.
|
中华人民共和国中央人民政府. 国务院关于印发水污染防治行动计划的通知[EB/OL]. http://www.gov.cn/zhengce/content/2015-04/16/content_9613.htm. 2015-4-16.
|
刘强,闫军伟,徐德兰,等. 基于EPS分析的污泥龄对HMBR中膜污染的影响与作用机理[J]. 环境工程,2018,36(1):32-36.
|
李学军,梁英,黄国平,等. 微波、碱及其联合技术预水解市政污泥的研究[J]. 环境工程,2013,31(增刊1):522-526,516.
|
YANG S F, LI X Y. Influences of extracellular polymeric substances (EPS) on the characteristics of activated sludge under non-steady-state conditions[J]. Process Biochemistry,2009,44(1):91-96.
|
GUAN B H, YU J, FU H L, et al. Improvement of activated sludge dewaterability by mild thermal treatment in CaCl2 solution[J]. Water Research,,2012,46(2):425-432.
|
SHAO L M, WANG G Z, XU H C, et al. Effects of ultrasonic pretreatment on sludge dewaterability and extracellular polymeric substances distribution in mesophilic anaerobic digestion[J]. Journal of Environmental Sciences,2010,22(3):474-480.
|
RAO B Q, SU X Y, LU X L, et al. Ultrahigh pressure filtration dewatering of municipal sludge based on microwave pretreatment[J]. Journal of Environmental Management,2019,247:588-595.
|
GHARIBI H, SOWLAT M H, MAHVI A H, et al. Performance evaluation of a bipolar electrolysis/electrocoagulation (EL/EC) reactor to enhance the sludge dewaterability[J]. Chemosphere,2013,90(4):1487-1494.
|
彭海军. 市政污泥热解产物特性及工艺条件的研究[D].长沙:湖南农业大学,2014.
|
ZHANG S W, LIANG J L, HUANG J J, et al. Analysis of the relationship of extracellular polymeric substances to the dewaterability and rheological properties of sludge treated by acidification and anaerobic mesophilic digestion[J]. Journal of Hazardous Materials,2019.369:31-39.
|
SHAO L M, WANG X Y, XU H C, et al. Enhanced anaerobic digestion and sludge dewaterability by alkaline pretreatment and its mechanism[J]. Journal of Environmental Sciences,2012,24(10):1731-1738.
|
GE D D, ZHANG W R, BIAN C, et al. Insight into a new two-step approach of ozonation and chitosan conditioning for sludge deep-dewatering[J]. Science of The Total Environment,2019,697:134032.
|
YUAN H P, CHENG X B, CHEN S P, et al. New sludge pretreatment method to improve dewaterability of waste activated sludge[J]. Bioresource Technology,2011,102(10):5659-5664.
|
ZHEN G Y, TAN Y J, WU T P, et al. Strengthened dewaterability of coke-oven plant oily sludge by altering extracellular organics using Fe(Ⅱ)-activated persulfate oxidation[J]. Science of The Total Environment,2019,688:1155-1161.
|
ZHU L, QI H Y, LV M L, et al. Component analysis of extracellular polymeric substances (EPS) during aerobic sludge granulation using FTIR and 3D-EEM technologies[J]. Bioresource Technology,2012,124:455-459.
|
倪丙杰,徐得潜,刘绍根. 污泥性质的重要影响物质-胞外聚合物(EPS)[J]. 环境科学与技术,2006,29(3):108-110.
|
ZHEN G Y, LU X Q, LI Y Y, et al. Combined electrical-alkali pretreatment to increase the anaerobic hydrolysis rate of waste activated sludge during anaerobic digestion[J]. Applied Energy,2014,128:93-102.
|
廖足良,冉小珊,刘长青,等. 热水解和超声波预处理对污泥厌氧消化效能的影响研究[J]. 环境工程, 2014,32(6):52-56.
|
付志敏,陶兰兰,徐静,等. 中温碱解预处理促进剩余污泥厌氧产甲烷的研究[J]. 环境工程, 2016,34(1):91-95.
|
ZHEN G Y, WANG J H, LU X Q, et al. Effective gel-like floc matrix destruction and water seepage for enhancing waste activated sludge dewaterability under hybrid microwave-initiated Fe(Ⅱ)-persulfate oxidation process[J]. Chemosphere,2019,221:141-153.
|
FRØLUND B, PALMGREN R, KEIDING K, et al. Extraction of extracellular polymers from activated sludge using a cation exchange resin[J]. Water Research,1996,30(8):1749-1758.
|
陈汉龙,严媛媛,何群彪,等. 酸碱法预处理低有机质污泥的效果研究及条件优化[J]. 环境科学学报,2013,33(2):458-463.
|
肖本益,刘俊新. 不同预处理方法对剩余污泥性质的影响研究[J]. 环境科学,2008,29(2):327-331.
|
PEI H S, LIU L, ZHANG X Q, et al. Flow-through pretreatment with strongly acidic electrolyzed water for hemicellulose removal and enzymatic hydrolysis of corn stover[J]. Bioresource Technology,2012,110:292-296.
|
郝晓地,刘斌,曹兴坤,等. 污泥预处理强化厌氧水解与产甲烷实验研究[J]. 环境工程学报,2015,9(1):335-340.
|
连广浒,程刚,张霖钰,等. 水力空化-酸化调理增强污泥脱水性能的研究[J]. 环境工程,2020,38(8): 96-100
,70.
|
ZHEN G Y, LU X Q, KOBAYASHI T, et al. Anaerobic co-digestion on improving methane production from mixed microalgae (Scenedesmus sp., Chlorella sp.) and food waste: kinetic modeling and synergistic impact evaluation[J]. Chemical Engineering Journal,2016,299:332-341.
|
CARRERE H, RAFRAFI Y, BATTIMELLI A, et al. Improving methane production during the codigestion of waste-activated sludge and fatty wastewater: impact of thermo-alkaline pretreatment on batch and semi-continuous processes[J]. Chemical Engineering Journal,2012,210:404-409.
|
刘伟,陆佳,苏小红,等. 超声预处理时间对污泥厌氧发酵产甲烷潜力的影响研究[J]. 中国沼气,2019,37(4):41-46.
|
朱开金,谢树莲,朱鹏宇,等. 优势微生物菌群消减有机污泥作用效果分析[J]. 环境与可持续发展,2014,39(1):81-82.
|
孙连鹏,崔语涵,黄剑明,等. 分子生物技术在污泥微生物群落多样性研究中的应用:污泥微生物群落研究[J]. 生物过程,2012,2(1):13-20.
|
LI Z W, LIN L, LIU X, et al. Understanding the role of extracellular polymeric substances in the rheological properties of aerobic granular sludge[J]. Science of the Total Environment,2020,705: 135948.
|
任仙娥,李春枝,杨锋,等. 涡流空化改善大豆分离蛋白溶解性的分子间作用机制[J]. 食品科学,2020,41(3): 93-98.
|
王长远,全越,许凤,等. pH处理对米糠蛋白理化特性及结构的影响[J]. 中国生物制品学杂志,2015,28(5):483-487.
|
王贺飞,李贵霞,钟为章,等. 基于厌氧消化的剩余污泥细胞破壁预处理技术研究进展[J]. 煤炭与化工,2017,40(5):17-21.
|
薛咏海,左健,崔静,等. 污泥水解处理及微生物蛋白资源化利用[J]. 中国给水排水,2014,30(24):102-104.
|