[1] 周玉文, 赵洪宾. 排水管网理论与计算[M]. 北京: 中国建筑工业出版社, 2000.
[2] 张伟, 余健, 李葳, 等. 广州市排水管道沉积现状研究分析[J]. 给水排水, 2012, 38(7): 147-150. doi: 10.3969/j.issn.1002-8471.2012.07.035
[3] METCALF L, EDDY H P, TCHOBANOGLOUS G. Wastewater engineering: treatment, disposal, and reuse [M]. New York: McGraw-Hill , 1991.
[4] BRIDGES O. Double trouble: Health risks of accidental sewage release[J]. Chemosphere, 2003, 52(9): 1373-1379. doi: 10.1016/S0045-6535(03)00472-7
[5] ASHLEY R M, FRASER A, BURROWS R, et al. The management of sediment in combined sewers[J]. Urban Water, 2000, 2(4): 263-275. doi: 10.1016/S1462-0758(01)00010-3
[6] WILLIAMS J, CLARKSON C, MANT C, et al. Fat, oil and grease deposits in sewers: Characterisation of deposits and formation mechanisms[J]. Water Research, 2012, 46(19): 6319-6128. doi: 10.1016/j.watres.2012.09.002
[7] HUSAIN I A F, ALKHATIB M A F, JAMMI M S, et al. Problems, control, and treatment of fat, oil, and grease (FOG): A review[J]. Journal of Oleo Science, 2014, 63(8): 747-752. doi: 10.5650/jos.ess13182
[8] MARLOW D R, BOULAIRE F, BEALE D J, et al. Sewer performance reporting: Factors that influence blockages[J]. Journal of Infrastructure Systems, 2011, 17(1): 42-51. doi: 10.1061/(ASCE)IS.1943-555X.0000041
[9] SOUTHERLAND R. Sewer fitness: Cutting the fat[J]. American City and County, 2002, 117(15): 27-27.
[10] YOUSEFELAHIYEH R, DOMINIC C C S, DUCOSTE J. Modeling fats, oil and grease deposit formation and accumulation in sewer collection systems[J]. Journal of Hydroinformatics, 2017, 19(3): 443-455. doi: 10.2166/hydro.2017.016
[11] WALLACE T, GIBBONS D, O'DWYER M, et al. International evolution of fat, oil and grease (FOG) waste management-A review[J]. Journal of Environmental Management, 2017, 187: 424-435.
[12] COLLIN T, CUNNINGHAM R, JEFFERSON B, et al. Characterisation and energy assessment of fats, oils and greases (FOG) waste at catchment level[J]. Waste Management, 2020, 103: 399-406. doi: 10.1016/j.wasman.2019.12.040
[13] SINCERO A P, SINCERO G A. Physical-chemical treatment of water and wastewater[M]. CRC press, 2002: 59-63.
[14] NIEUWENHUIS E, LANGEVELD J, CLEMENS F O. The relationship between fat, oil and grease (FOG) deposits in building drainage systems and FOG disposal patterns; proceedings of the Iwa/iahr International Conference on Urban Drainage, F, 2018[C
[15] GROSS M A, JENSEN J L, GRACZ H S, et al. Evaluation of physical and chemical properties and their interactions in fat, oil, and grease (FOG) deposits[J]. Water Research, 2017, 123: 173-182. doi: 10.1016/j.watres.2017.06.072
[16] KEENER K M, DUCOSTE J J, HOLT L M. Properties influencing fat, oil, and grease deposit formation[J]. Water Environment Research, 2008, 80(12): 2241-2246. doi: 10.2175/193864708X267441
[17] SHIN H, HAN S, HWANG H. Analysis of the characteristics of fat, oil, and grease (FOG) deposits in sewerage systems in the case of Korea[J]. Desalination and Water Treatment, 2015, 54(4/5): 1318-1326.
[18] KUSUM S A, POUR-GHAZ M, DUCOSTE J J. Reducing fat, oil, and grease (FOG) deposits formation and adhesion on sewer collection system structures through the use of fly ash replace d cement-base materials[J]. Water Research, 2020, 186: 116304. doi: 10.1016/j.watres.2020.116304
[19] BARTON P. Enhancing separation of fats, oils and greases (FOGs) from catering establishment wastewater[D]. Cranfield: Cranfield University, 2012.
[20] MOHAMED R, CHAN C M, GHANI H, et al. Application of peat filter media in treating kitchen wastewater[J]. International Journal of Zero Waste Generation, 2013, 1(1): 11-16.
[21] GURD C, JEFFERSON B, VILLA R. Characterisation of food service establishment wastewater and its implication for treatment[J]. Journal of Environmental Management, 2019, 252: 109657. doi: 10.1016/j.jenvman.2019.109657
[22] BRUICE P Y. Organic Chemistry[M]. London: Pearson, 2017.
[23] HE X, LEMING M L, DEAN L O, et al. Mechanisms of fat, oil and grease (FOG) deposit formation in sewer lines[J]. Water Research, 2013, 47(13): 4451-4459. doi: 10.1016/j.watres.2013.05.002
[24] 王越. 污水管道中油脂沉积物的形成机理及控制方法的研究进展[J]. 当代化工研究, 2018(3): 104-107.
[25] HE X, DE LOS REYES III F L, DUCOSTE J J. A critical review of fat, oil, and grease (FOG) in sewer collection systems: Challenges and control[J]. Critical Reviews in Environmental Science and Technology, 2017, 47(13): 1191-1217. doi: 10.1080/10643389.2017.1382282
[26] HE X, IASMIN M, DEAN L O, et al. Evidence for fat, oil, and grease (FOG) deposit formation mechanisms in sewer lines[J]. Environmental Science & Technology, 2011, 45(10): 4385-4391.
[27] IASMIN M, DEAN L O, LAPPI S E, et al. Factors that influence properties of FOG deposits and their formation in sewer collection systems[J]. Water Research, 2014, 49: 92-102. doi: 10.1016/j.watres.2013.11.012
[28] GUTIéRREZ-PADILLA M G D, BIELEFELDT A, OVTCHINNIKOV S, et al. Biogenic sulfuric acid attack on different types of commercially produced concrete sewer pipes[J]. Cement and Concrete Research, 2010, 40(2): 293-301. doi: 10.1016/j.cemconres.2009.10.002
[29] OAKES K. Rise of the fatbergs[J]. New Scientist, 2019, 241(3214): 22-23. doi: 10.1016/S0262-4079(19)30159-9
[30] DEL MUNDO D M N, SUTHEERAWATTANANONDA M. Influence of fat and oil type on the yield, physico-chemical properties, and microstructure of fat, oil, and grease (FOG) deposits[J]. Water Research, 2017, 124: 308-319. doi: 10.1016/j.watres.2017.07.047
[31] FIRESTONE D. Physical and chemical characteristics of oils, fats, and waxes[M]. AOCS press, 2006: 123-126.
[32] IASMIN M, DEAN L O, DUCOSTE J J. Quantifying fat, oil, and grease deposit formation kinetics[J]. Water Research, 2016, 88: 786-795. doi: 10.1016/j.watres.2015.11.009
[33] SULTANA N, RODDICK F, GAO L, et al. Understanding the properties of fat, oil, and grease and their removal using grease interceptors[J]. Water Research, 2022, 225.
[34] DOMINIC C C S, SZAKASITS M, DEAN L O, et al. Understanding the spatial formation and accumulation of fats, oils and grease deposits in the sewer collection system[J]. Water Science and Technology, 2013, 68(8): 1830-1836. doi: 10.2166/wst.2013.428
[35] DUCOSTE J J, KEENER K M, GRONINGER J W, et al. Assessment of grease interceptor performance[J]. Water Environment Research Foundation: Alexandria, Virginia, 2008.
[36] DUCOSTE J J, KEENER K M, GRONINGER J W, et al. Fats, roots, oils, and grease (FROG) in centralized and decentralized systems[M]. IWA Publishing, 2009.
[37] OSTBERG J, MARTINSSON M, STAL O, et al. Risk of root intrusion by tree and shrub species into sewer pipes in Swedish urban areas[J]. Urban Forestry & Urban Greening, 2012, 11(1): 65-71.
[38] AZIZ T N, HOLT L M, KEENER K M, et al. Performance of grease abatement devices for removal of fat, oil, and grease[J]. Journal of Environmental Engineering-Asce, 2011, 137(1): 84-92. doi: 10.1061/(ASCE)EE.1943-7870.0000295
[39] MOORE G, DANG H. An experimental investigation of wastewater treatment in a grease interceptor trap[J]. Water Practice and Technology, 2009, 4(2).
[40] GALLIMORE E, AZIZ T N, MOVAHED Z, et al. Assessment of internal and external grease interceptor performance for removal of food-based fats, oil, and grease from food service establishments[J]. Water Environment Research, 2011, 83(9): 882-892. doi: 10.2175/106143011X12989211840972
[41] CHU W, NG F L. Upgrading the conventional grease trap using a tube settler[J]. Environment International, 2000, 26(1-2): 17-22. doi: 10.1016/S0160-4120(00)00073-8
[42] AL-GHEETHI A. Establish in-house: A pre-treatment method of fat, oil and grease (FOG) in kitchen wastewater for safe disposal[J]. International Journal of Integrated Engineering, 2019, 11(2).
[43] HERRERO M, STUCKEY D C. Bioaugmentation and its application in wastewater treatment: A review[J]. Chemosphere, 2015, 140: 119-128. doi: 10.1016/j.chemosphere.2014.10.033
[44] HE X, OSBORNE J, DE LOS REYES F L, III. Physico-chemical characterization of grease interceptors with and without biological product addition[J]. Water Environment Research, 2012, 84(3): 195-201. doi: 10.2175/106143012X13280358613345
[45] ROETS-DLAMINI Y, LALLOO R, MOONSAMY G, et al. Development of Bacillus spp. consortium for one-step “Aerobic Nitrification-Denitrification” in a fluidized-bed reactor[J]. Bioresource Technology Reports, 2022, 17: 100922. doi: 10.1016/j.biteb.2021.100922
[46] BORAH D, YADAV R. Bioremediation of petroleum based contaminants with biosurfactant produced by a newly isolated petroleum oil degrading bacterial strain[J]. Egyptian Journal of Petroleum, 2017, 26(1): 181-188. doi: 10.1016/j.ejpe.2016.02.005
[47] YANG Y, XIE L, TAO X, et al. Municipal wastewater treatment by the bioaugmentation of Bacillus sp. K5 within a sequencing batch reactor[J]. PLoS One, 2017, 12(6): e0178837. doi: 10.1371/journal.pone.0178837
[48] OGBONNA D N, NRIOR R R, EZINWO F E. Bioremediation efficiency of Bacillus amyloliquefaciens and Pseudomonas aeruginosa with the nutrient amendment on crude oil polluted the soil[J]. Microbiology Research Journal International, 2019, 29(5): 1-13.
[49] MARKOSSIAN S, BECKER P, MARKL H, et al. Isolation and characterization of lipid-degrading Bacillus thermoleovorans IHI-91 from an icelandic hot spring[J]. Extremophiles, 2000, 4(6): 365-371. doi: 10.1007/s007920070006
[50] NISOLA G M, CHO E S, SHON H K, et al. Cell immobilized fog-trap system for fat, oil, and grease removal from restaurant wastewater[J]. Journal of Environmental Engineering, 2009, 135(9): 876-884. doi: 10.1061/(ASCE)0733-9372(2009)135:9(876)
[51] LAUPRASERT P, CHANSIRIRATTANA J, PAENGJAN J. Effect of selected bacteria as bioremediation on the degradation of fats oils and greases in wastewater from cafeteria grease traps[J]. European Journal of Sustainable Development, 2017, 6.
[52] TZIRITA M, PAPANIKOLAOU S, QUILTY B. Enhanced fat degradation following the addition of a Pseudomonas species to a bioaugmentation product used in grease traps[J]. Journal of Environmental Sciences, 2019, 77: 174-188. doi: 10.1016/j.jes.2018.07.008
[53] WAKELIN N G, FORSTER C F. An investigation into microbial removal of fats, oils and greases[J]. Bioresource Technology, 1997, 59(1): 37-43. doi: 10.1016/S0960-8524(96)00134-4
[54] BROOKSBANK A M, LATCHFORD J W, MUDGE S M. Degradation and modification of fats, oils and grease by commercial microbial supplements[J]. World Journal of Microbiology & Biotechnology, 2007, 23(7): 977-985.
[55] TANG H L, XIE Y F, CHEN Y-C. Use of Bio-Amp, a commercial bio-additive for the treatment of grease trap wastewater containing fat, oil, and grease[J]. Bioresource Technology, 2012, 124: 52-58. doi: 10.1016/j.biortech.2012.08.012
[56] TAHREEN A, JAMI M S, ALI F. Role of electrocoagulation in wastewater treatment: A developmental review[J]. Journal of Water Process Engineering, 2020, 37: 101440. doi: 10.1016/j.jwpe.2020.101440
[57] CHEN X M, CHEN G H, YUE P L. Separation of pollutants from restaurant wastewater by electrocoagulation[J]. Separation and Purification Technology, 2000, 19(1/2): 65-76.
[58] PRIYA M, JEYANTHI J. Removal of COD, oil and grease from automobile wash water effluent using electrocoagulation technique[J]. Microchemical Journal, 2019, 150: 104070. doi: 10.1016/j.microc.2019.104070
[59] AHMAD I, ABDULLAH N, KOJI I, et al. The role of restaurant wastewater for producing bioenergy towards a circular bioeconomy: A review on compositions, environmental impacts, and sustainable integrated management[J]. Environmental Research, 2022: 113854.
[60] CHAN H. Separation of pollutants from restaurant effluents as animal feed, fertilizer and renewable energy to produce high water quality in a compact area[J]. Water Resources and Industry, 2013, 3: 35-47. doi: 10.1016/j.wri.2013.09.001
[61] WANG L, ZHOU Q, CHUA H. Evaluation of a novel integrated bioreactor - AOS system for treating oil-containing restaurant wastewater on site in Hong Kong[J]. Journal of Environmental Science and Health Part a-Toxic/Hazardous Substances & Environmental Engineering, 2005, 40(1): 227-243.
[62] ZHENG T, WANG Q, SHI Z, et al. Separation of pollutants from oil-containing restaurant wastewater by novel microbubble air flotation and traditional dissolved air flotation[J]. Separation Science and Technology, 2015, 50(16): 2568-2577.
[63] CHAN H. Removal and recycling of pollutants from Hong Kong restaurant wastewaters[J]. Bioresource Technology, 2010, 101(17): 6859-6867. doi: 10.1016/j.biortech.2010.03.104
[64] JI M, JIANG X, WANG F. A mechanistic approach and response surface optimization of the removal of oil and grease from restaurant wastewater by electrocoagulation and electroflotation[J]. Desalination and Water Treatment, 2015, 55(8): 2044-2052. doi: 10.1080/19443994.2014.929034
[65] ROBERTS R L. Pipeline Cleaning [M]. Oil and Gas Pipelines, 2015.
[66] SIRINGI D O, HOME P G, KOEHN E. Cleaning Methods for Pipeline Renewals[J]. International Journal of Engineering and Technical Research (IJETR), 2014, 2(9): 44-47.
[67] 李华飞. 大管径排水管道水力清淤技术研究[D]. 重庆: 重庆大学, 2012.
[68] 孙勇, 杨向东, 孙建宇, 等. 排水管道清淤方法及开发新设备的构想[J]. 给水排水, 1996, 22(8): 52-54.
[69] 边艳玲, 董巍. 排水管道中的清淤方法[J]. 黑龙江水利科技, 2003, 31(3): 1.
[70] 李婧琳, 缑变彩, 杨志远. 市政排水管道清淤技术浅谈[J]. 山西建筑, 2017, 43(27): 2. doi: 10.3969/j.issn.1009-6825.2017.27.057
[71] ZHU Y, MENG Z, LV H. Application of high pressure water in pipeline cleaning[J]. IOP Conference Series Earth and Environmental Science, 2019, 300: 022032. doi: 10.1088/1755-1315/300/2/022032
[72] 王健, 刘嘉, 宋鸽. 城市排水管道沉积物新型清除方法[J]. 水科学与工程技术, 2009(6): 46-48. doi: 10.3969/j.issn.1672-9900.2009.06.020
[73] KAMALI M, PIROUZ M, GHOBADIAN M, et al. Investigation of Capabilities and Limitations of Different Cleaning Methods for Sewer Lines[J]. Journal of Water and Sustainable Development, 2017, 3(2): 43-54.
[74] FOSTER W, AZIMOV U, GAUTHIER-MARADEI P, et al. Waste-to-energy conversion technologies in the UK: Processes and barriers - A review[J]. Renewable & Sustainable Energy Reviews, 2021, 135.
[75] POH P, GOUWANDA D, MOHAN Y, et al. Optimization of wastewater anaerobic digestion using mechanistic and meta-heuristic methods: current limitations and future opportunities[J]. Water Conservation Science and Engineering, 2016, 1: 1-20. doi: 10.1007/s41101-016-0001-3
[76] LONG J H, AZIZ T N, III F L D L R, et al. Anaerobic co-digestion of fat, oil, and grease (FOG): A review of gas production and process limitations[J]. Process Safety and Environmental Protection, 2012, 90(3): 231-245. doi: 10.1016/j.psep.2011.10.001
[77] RINZEMA A, BOONE M, VANKNIPPENBERG K, et al. Bactericidal effect of long-chain fatty-acids in anaerobic-digestion[J]. Water Environment Research, 1994, 66(1): 40-49. doi: 10.2175/WER.66.1.7
[78] YAU Y-H, RUDOLPH V, LO C C-M, et al. Restaurant oil and grease management in Hong Kong[J]. Environmental Science and Pollution Research, 2021, 28(30): 40735-40745. doi: 10.1007/s11356-018-2474-4
[79] TU Q, WANG J, LU M, et al. A solvent-free approach to extract the lipid fraction from sewer grease for biodiesel production[J]. Waste Management, 2016, 54(aug.): 126-130.
[80] KARNASUTA S, PUNSUVON V, CHIMCHAISRI C, et al. Optimization of biodiesel production from trap grease via two-step catalyzed process[J]. Energy Environment, 2007, 8: 145-168.
[81] NIJU S, MEERA S B, K. M. , ANANTHARAMAN N. Modification of egg shell and its application in biodiesel production[J]. Journal of Saudi Chemical Society, 2014, 18(5): 702-706.
[82] B N N T A, C M E G, A S L, et al. Enzymatic pretreatment of recycled grease trap waste in batch and continuous-flow reactors for biodiesel production[J]. Chemical Engineering Journal, 2021, 426: 131703. doi: 10.1016/j.cej.2021.131703
[83] TRAN N N, TISMA M, BUDZAKI S, et al. Production of biodiesel from recycled grease trap waste: A review[J]. Industrial & Engineering Chemistry Research, 2021(46): 60.
[84] LEUNG K K, YAU Y H. The utilization of leftover as acid catalyst to catalyse the transesterification and esterification reactions; proceedings of the 3rd International Conference on Water Resource and Environment (WRE), Qingdao, PEOPLES R CHINA, F 2017Jun 26-29, 2017[C]. 2017.
[85] CANAKCI M. The potential of restaurant waste lipids as biodiesel feedstocks[J]. Bioresource Technology, 2007, 98(1): 183-190. doi: 10.1016/j.biortech.2005.11.022
[86] GHERGHEL A, TEODOSIU C, DE GISI S. A review on wastewater sludge valorisation and its challenges in the context of circular economy[J]. Journal of Cleaner Production, 2019, 228(AUG.10): 244-263.
[87] CARUS M, CARREZ D, KAEB H, et al. Level playing field for biobased chemistry and materials[J]. Nova Institute, 2011: 4-18.
[88] SUN Z, YI J, HUANG Y, et al. Properties of asphalt binder modified by bio-oil derived from waste cooking oil[J]. Construction and Building Materials, 2016, 102: 496-504. doi: 10.1016/j.conbuildmat.2015.10.173
[89] DAVIDSSON A, LOVSTEDT C, LA COUR JANSEN J, et al. Co-digestion of grease trap sludge and sewage sludge[J]. Waste Management, 2008, 28(6): 986-992. doi: 10.1016/j.wasman.2007.03.024
[90] KABOURIS J C, TEZEL U, PAVLOSTATHIS S G, et al. The anaerobic biodegradability of municipal sludge and fat, oil, and grease at mesophilic conditions[J]. Water Environment Research, 2008, 80(3): 212-221. doi: 10.2175/106143007X220699
[91] GROSSER A, NECZAJ E. Enhancement of biogas production from sewage sludge by addition of grease trap sludge[J]. Energy Conversion And Management, 2016, 125: 301-308. doi: 10.1016/j.enconman.2016.05.089
[92] HAO J, HE X. Fat, oil, and grease (FOG) deposits yield higher methane than FOG in anaerobic co-digestion with waste activated sludge[J]. Journal of Environmental Management, 2020, 268: 110708. doi: 10.1016/j.jenvman.2020.110708