1 |
AMIN Farrukh Raza, KHALID Habiba, EL-MASHAD Hamed M, et al. Functions of bacteria and Archaea participating in the bioconversion of organic waste for methane production[J]. Science of the Total Environment, 2021, 763: 143007.
|
2 |
ZHANG Zhuowei, YU Yin, XI Hongbo, et al. Review of micro-aeration hydrolysis acidification for the pretreatment of toxic and refractory organic wastewater[J]. Journal of Cleaner Production, 2021, 317: 128343.
|
3 |
HUO Shuhao, ZHU Feifei, ZOU Bin, et al. A two-stage system coupling hydrolytic acidification with algal microcosms for treatment of wastewater from the manufacture of acrylonitrile butadiene styrene (ABS) resin[J]. Biotechnology Letters, 2018, 40(4): 689-696.
|
4 |
RAZA Waseem, LEE Jechan, RAZA Nadeem, et al. Removal of phenolic compounds from industrial waste water based on membrane-based technologies[J]. Journal of Industrial and Engineering Chemistry, 2019, 71: 1-18.
|
5 |
NARAYAN THORAT Bhaskar, KUMAR SONWANI Ravi. Current technologies and future perspectives for the treatment of complex petroleum refinery wastewater: A review[J]. Bioresource Technology, 2022, 355: 127263.
|
6 |
SONG Guangqing, XI Hongbo, ZHOU Yuexi, et al. Influence of organic load rate (OLR) on the hydrolytic acidification of 2-butenal manufacture wastewater and analysis of bacterial community structure[J]. Bioresource Technology, 2017, 243: 502-511.
|
7 |
VEEKEN Adrie, HAMELERS Bert. Effect of temperature on hydrolysis rates of selected biowaste components[J]. Bioresource Technology, 1999, 69(3): 249-254.
|
8 |
刘豪. 水解酸化-BSBR处理印染废水试验研究[D]. 西安: 长安大学, 2007.
|
|
LIU Hao. Experimental study on treatment of printing and dyeing wastewater by hydrolytic acidification-BSBR[D]. Xi'an: Changan University, 2007.
|
9 |
LUO Xuan, LIU Yuhuan, MUHMOOD Atif, et al. Effect of time and temperature of pretreatment and anaerobic co-digestion of rice straw and swine wastewater by domesticated paddy soil microbes[J]. Journal of Environmental Management, 2022, 323: 116218.
|
10 |
VERMOREL N, SAN-VALERO P, IZQUIERDO M, et al. Anaerobic degradation of 2-propanol: Laboratory and pilot-scale studies[J]. Chemical Engineering Science, 2017, 172: 42-51.
|
11 |
苏大雄. 改良型水解酸化池运行效果与微生物菌群分析[J]. 中国资源综合利用, 2020, 38(1): 190-193.
|
|
SU Daxiong. Analysis on operation results by modified hydrolytic acidification process and microbial community[J]. China Resources Comprehensive Utilization, 2020, 38(1): 190-193.
|
12 |
曾薇, 郭京京, 纪兆华, 等. pH值对剩余污泥微氧水解酸化溶出物及微生物群落结构的影响[J]. 应用基础与工程科学学报, 2018, 26(3): 471-482.
|
|
ZENG Wei, GUO Jingjing, JI Zhaohua, et al. Effect of p H values on hydrolysis and acidfication of waste activated sludge and microbial community structures at microaerobic conditions[J]. Journal of Basic Science and Engineering, 2018, 26(3): 471-482.
|
13 |
ZEPPILLI Marco, VILLANO Marianna, AULENTA Federico, et al. Effect of the anode feeding composition on the performance of a continuous-flow methane-producing microbial electrolysis cell[J]. Environmental Science and Pollution Research, 2015, 22(10): 7349-7360.
|
14 |
DEDKOV Yu M, ELIZAROVA O V, S Yu KEL'INA. Dichromate method for the determination of chemical oxygen demand[J]. Journal of Analytical Chemistry, 2000, 55(8): 777-781.
|
15 |
中华人民共和国生态环境部. 水质pH值的测定 电极法: [S]. 北京: 中国环境出版集团, 2020.
|
|
Ministry of Ecology and Environment of the People's Republic of China. Water quality—Determination of pH—Electrode method: [S]. Beijing: China Environmental Publishing Group, 2020.
|
16 |
林奕, 李国文, 普学伟, 等. 稀释接种法和压差法在五日生化需氧量测定中的方法比对[J]. 节能与环保, 2020(10): 86-87.
|
|
LIN Yi, LI Guowen, PU Xuewei, et al. Comparison of dilution inoculation method and differential pressure method in five-day biochemical oxygen demand determination[J]. Energy Conservation & Environmental Protection, 2020(10): 86-87.
|
17 |
LIANG Jiahao, CHEN Chunmao, YOZA Brandon A, et al. Hydrolysis and acidification of activated sludge from a petroleum refinery[J]. Petroleum Science, 2019, 16(2): 428-438.
|
18 |
FANG Zhi, LI Lijie, JIANG Bin, et al. Molecular composition and transformation of dissolved organic matter (DOM) in coal gasification wastewater[J]. Energy & Fuels, 2019, 33(4): 3003-3011.
|
19 |
LI Ruiqiang, LI Yingrui, KRISTIANSEN Karsten, et al. SOAP: Short oligonucleotide alignment program[J]. Bioinformatics, 2008, 24(5): 713-714.
|
20 |
SONG Guangqing, YU Yin, LIU Tao, et al. Performance of microaeration hydrolytic acidification process in the pretreatment of 2-butenal manufacture wastewater[J]. Journal of Hazardous Materials, 2019, 369: 465-473.
|
21 |
Lisandra ROCHA-MENESES, ZANNERNI Rawan, INAYAT Abrar, et al. Current progress in anaerobic digestion reactors and parameters optimization[J]. Biomass Conversion and Biorefinery, 2022: 1-24.
|
22 |
WU Changyong, ZHOU Yuexi, WANG Peichao, et al. Improving hydrolysis acidification by limited aeration in the pretreatment of petrochemical wastewater[J]. Bioresource Technology, 2015, 194: 256-262.
|
23 |
Lotta LEVÉN, Anna SCHNÜRER. Effects of temperature on biological degradation of phenols, benzoates and phthalates under methanogenic conditions[J]. International Biodeterioration & Biodegradation, 2005, 55(2): 153-160.
|
24 |
LEITÃO Renato Carrhá, VAN HAANDEL Adrianus Cornelius, ZEEMAN Grietje, et al. The effects of operational and environmental variations on anaerobic wastewater treatment systems: A review[J]. Bioresource Technology, 2006, 97(9): 1105-1118.
|
25 |
Jon GARCIA-AGUIRRE, AYMERICH Enrique, DE GOÑI Jaime González-Mtnez, et al. Selective VFA production potential from organic waste streams: Assessing temperature and pH influence[J]. Bioresource Technology, 2017, 244: 1081-1088.
|
26 |
NIE Erqi, HE Pinjing, ZHANG Hua, et al. How does temperature regulate anaerobic digestion?[J]. Renewable and Sustainable Energy Reviews, 2021, 150: 111453.
|
27 |
LI Dandan, FAN Jinjuan, ZHANG Xinyu, et al. Hydrolase kinetics to detect temperature-related changes in the rates of soil organic matter decomposition[J]. European Journal of Soil Biology, 2017, 81: 108-115.
|
28 |
WANG Yu, WANG Qinghong, LI Min, et al. An alternative anaerobic treatment process for treatment of heavy oil refinery wastewater containing polar organics[J]. Biochemical Engineering Journal, 2016, 105: 44-51.
|
29 |
MORGAN-SAGASTUME F, JACOBSSON S, OLSSON L E, et al. Anaerobic treatment of oil-contaminated wastewater with methane production using anaerobic moving bed biofilm reactors[J]. Water Research, 2019, 163: 114851.
|
30 |
HE Zhangwei, ZOU Zhengshuo, SUN Qian, et al. Freezing-low temperature treatment facilitates short-chain fatty acids production from waste activated sludge with short-term fermentation[J]. Bioresource Technology, 2022, 347: 126337.
|
31 |
LIU Xuyan, YANG Hong, FANG Xiaoyue, et al. Comparative study on the performance of hydrolytic acidification immobilized filler and sludge in the pretreatment of municipal wastewater[J]. Environmental Technology & Innovation, 2021, 24: 101885.
|
32 |
LIU Xiang, CHEN Qiuwen, ZHU Liang. Improving biodegradation potential of domestic wastewater by manipulating the size distribution of organic matter[J]. Journal of Environmental Sciences, 2016, 47: 174-182.
|
33 |
HSU Chang S, HENDRICKSON Christopher L, RODGERS Ryan P, et al. Petroleomics: Advanced molecular probe for petroleum heavy ends[J]. Journal of Mass Spectrometry, 2011, 46(4): 337-343.
|
34 |
MA Xiaoke, LIU Bing, MA Tianxiang, et al. Characterization of petroleum sulfonate synthesized via gas-phase SO3 sulfonation in rotating packed bed and its application in enhanced oil recovery[J]. Chemical Engineering Science, 2021, 230: 116216.
|
35 |
KIM Ji Young, Seung Han WOO, LEE Min Woo, et al. Sequential treatment of PTA wastewater in a two-stage UASB process: Focusing on p-toluate degradation and microbial distribution[J]. Water Research, 2012, 46(8): 2805-2814.
|
36 |
XIE Xuehui, LIU Na, YANG Bo, et al. Comparison of microbial community in hydrolysis acidification reactor depending on different structure dyes by Illumina MiSeq sequencing[J]. International Biodeterioration & Biodegradation, 2016, 111: 14-21.
|
37 |
Juan LYU, WANG Yan, FU Mengya, et al. Removal of tetramethylammonium hydroxide (TMAH) from thin-film transistor liquid crystal display (TFT-LCD) industry wastewater by hydrolysis acidification-aerobic and anaerobic processes[J]. Journal of Cleaner Production, 2021, 279: 123502.
|
38 |
Hang T DAM, VOLLMERS John, SOBOL Morgan S, et al. Targeted cell sorting combined with single cell genomics captures low abundant microbial dark matter with higher sensitivity than metagenomics[J]. Frontiers in Microbiology, 2020, 11: 1377.
|
39 |
GENDERJAHN Steffi, ALAWI Mashal, MANGELSDORF Kai, et al. Desiccation- and saline-tolerant bacteria and Archaea in kalahari pan sediments[J]. Frontiers in Microbiology, 2018, 9: 2082.
|
40 |
WASI Samina, TABREZ Shams, AHMAD Masood. Use of Pseudomonas spp. for the bioremediation of environmental pollutants: A review[J]. Environmental Monitoring and Assessment, 2013, 185: 8147-8155.
|
41 |
FARAG Soha, SOLIMAN Nadia A, ABDEL-FATTAH Yasser R. Statistical optimization of crude oil bio-degradation by a local marine bacterium isolate Pseudomonas sp. sp48[J]. Journal of Genetic Engineering and Biotechnology, 2018, 16(2): 409-420.
|
42 |
Patricia BOVIO-WINKLER, CABEZAS Angela, ETCHEBEHERE Claudia. Database mining to unravel the ecology of the phylum Chloroflexi in methanogenic full scale bioreactors[J]. Frontiers in Microbiology, 2021, 11: 603234.
|
43 |
邓芷妮. 水解酸化-SBR-芬顿工艺处理污泥热水解脱水滤液的效能研究[D]. 哈尔滨: 哈尔滨工业大学, 2021.
|
|
DENG Zhini. Study on the efficiency of hydrolytic acidification-SBR-Fenton process in treating sludge hot water dehydration filtrate[D]. Harbin: Harbin Institute of Technology, 2021.
|
44 |
GENG Shuying, FU Weizhang, CHEN Weifeng, et al. Effects of an external magnetic field on microbial functional genes and metabolism of activated sludge based on metagenomic sequencing[J]. Scientific Reports, 2020, 10: 8818.
|
45 |
TOLEDO M, GUTIÉRREZ M C, SILES J A, et al. Chemometric analysis and NIR spectroscopy to evaluate odorous impact during the composting of different raw materials[J]. Journal of Cleaner Production, 2017, 167: 154-162.
|
46 |
WEI Huawei, WANG Liuhong, HASSAN Muhammad, et al. Succession of the functional microbial communities and the metabolic functions in maize straw composting process[J]. Bioresource Technology, 2018, 256: 333-341.
|
47 |
RHYS-WILLIAMS W, TAYLOR S C, WILLIAMS P A. A novel pathway for the catabolism of 4-nitrotoluene by Pseudomonas [J]. Journal of General Microbiology, 1993, 139(9): 1967-1972.
|
48 |
MOONEY Aisling, WARD Patrick G, O'CONNOR Kevin E. Microbial degradation of styrene: Biochemistry, molecular genetics, and perspectives for biotechnological applications[J]. Applied Microbiology and Biotechnology, 2006, 72(1): 1-10.
|
49 |
CAO Bin, NAGARAJAN Karthiga, Kai-Chee LOH. Biodegradation of aromatic compounds: Current status and opportunities for biomolecular approaches[J]. Applied Microbiology and Biotechnology, 2009, 85(2): 207-228.
|