[1] CETIN M H, KILINCARSLAN S K. Effects of cutting fluids with nano-silver and borax additives on milling performance of aluminium alloys[J]. Journal of Manufacturing Processes, 2020, 50: 170-182. doi: 10.1016/j.jmapro.2019.12.042
[2] COCA-PRADOS J, GUTIÉRREZ-CERVELLÓ G. Water Purification and Management[M]. Dordrecht the Netherlands: Springer Press, 2011.
[3] SHEN J, LIU B, WU J, et al. Characterization of fluorescent dissolved organic matters in metalworking fluid by fluorescence excitation-emission matrix and high-performance liquid chromatography[J]. Chemosphere, 2020, 239: 124703. doi: 10.1016/j.chemosphere.2019.124703
[4] GREELEY M, RAJAGOPALAN N. Impact of environmental contaminants on machining properties of metalworking fluids[J]. Tribology International, 2004, 37(4): 327-332. doi: 10.1016/j.triboint.2003.11.001
[5] AHMAD T, GURIA C, MANDAL A. Synthesis, characterization and performance studies of mixed-matrix poly(vinyl chloride)-bentonite ultrafiltration membrane for the treatment of saline oily wastewater[J]. Process Safety and Environmental Protection, 2018, 116: 703-717. doi: 10.1016/j.psep.2018.03.033
[6] AL-HUSAINI I S, YUSOFF A R M, LAU W J, et al. Fabrication of polyethersulfone electrospun nanofibrous membranes incorporated with hydrous manganese dioxide for enhanced ultrafiltration of oily solution[J]. Separation and Purification Technology, 2019, 212: 205-214. doi: 10.1016/j.seppur.2018.10.059
[7] NAJIHA M S, RAHMAN M M, YUSOFF A R. Environmental impacts and hazards associated with metal working fluids and recent advances in the sustainable systems: A review[J]. Renewable and Sustainable Energy Reviews, 2016, 60: 1008-1031. doi: 10.1016/j.rser.2016.01.065
[8] PARK R M. Risk assessment for metalworking fluids and cancer outcomes[J]. American Journal of Industrial Medicine, 2018, 61(3): 198-203. doi: 10.1002/ajim.22809
[9] SOKOVIĆ M, MIJANOVIĆ K. Ecological aspects of the cutting fluids and its influence on quantifiable parameters of the cutting processes[J]. Journal of Materials Processing Technology, 2001, 109(1/2): 181-189.
[10] 李延珍. 废金属切削液中的废水处理工艺的研究[D]. 长春: 长春工业大学, 2016.
[11] 环境保护部. 国家危险废物名录[S]. 2016.
[12] CHENG C, PHIPPS D, ALKHADDAR R M. Treatment of spent metalworking fluids[J]. Water Research, 2005, 39(17): 4051-4063. doi: 10.1016/j.watres.2005.07.012
[13] DEBNATH S, REDDY M M, YI Q S. Environmental friendly cutting fluids and cooling techniques in machining: A review[J]. Journal of Cleaner Production, 2014, 83: 33-47. doi: 10.1016/j.jclepro.2014.07.071
[14] WICKRAMASINGHE K C, SASAHARA H, RAHIM E A, et al. Green metalworking fluids for sustainable machining applications: A review[J]. Journal of Cleaner Production, 2020, 257: 120552. doi: 10.1016/j.jclepro.2020.120552
[15] YALCINKAYA F, BOYRAZ E, MARYSKA J, et al. A review on membrane technology and chemical surface modification for the oily wastewater treatment[J]. Materials, 2020, 13(2): 493. doi: 10.3390/ma13020493
[16] MILIĆ J K, MURIĆ A, PETRINIĆ I, et al. Recent developments in membrane treatment of spent cutting-oils: A review[J]. Industrial & Engineering Chemistry Research, 2013, 52(23): 7603-7616.
[17] DEMIRBAS E, KOBYA M. Operating cost and treatment of metalworking fluid wastewater by chemical coagulation and electrocoagulation processes[J]. Process Safety and Environmental Protection, 2017, 105: 79-90. doi: 10.1016/j.psep.2016.10.013
[18] BUNTURNGPRATOOMRAT A, PORNSUNTHORNTAWEE O, NITIVATTANANON S, et al. Cutting oil removal by continuous froth flotation with packing media under low interfacial tension conditions[J]. Separation and Purification Technology, 2013, 107: 118-128. doi: 10.1016/j.seppur.2013.01.024
[19] HILAL N, BUSCA G, HANKINS N, et al. The use of ultrafiltration and nanofiltration membranes in the treatment of metal-working fluids[J]. Desalination, 2004, 167(1/2/3): 227-238.
[20] MACADAM J, OZGENCIL H, AUTIN O, et al. Incorporating biodegradation and advanced oxidation processes in the treatment of spent metalworking fluids[J]. Environmental Technology, 2012, 33(22/23/24): 2741-2750.
[21] SUN Y J, ZHU C Y, ZHENG H L, et al. Characterization and coagulation behavior of polymeric aluminum ferric silicate for high-concentration oily wastewater treatment[J]. Chemical Engineering Research and Design, 2017, 119: 23-32. doi: 10.1016/j.cherd.2017.01.009
[22] PADAKI M, MURALI R S, ABDULLAH M S, et al. Membrane technology enhancement in oil-water separation: A review[J]. Desalination, 2015, 357: 197-207. doi: 10.1016/j.desal.2014.11.023
[23] PARK H B, KAMCEV J, ROBESON L M, et al. Maximizing the right stuff: The trade-off between membrane permeability and selectivity[J]. Science, 2017, 356(6343): eaab0530. doi: 10.1126/science.aab0530
[24] PENG J X, LIU Q X, XU Z H, et al. Novel magnetic demulsifier for water removal from diluted bitumen emulsion[J]. Energy & Fuels, 2012, 26(5): 2705-2710.
[25] ROMANOVA Y N, MARYUTINA T А, MUSINA N S, et al. Demulsification of water-in-oil emulsions by exposure to magnetic field[J]. Journal of Petroleum Science and Engineering, 2019, 179: 600-605. doi: 10.1016/j.petrol.2019.05.002
[26] XU X, CAO D, LIU J, et al. Research on ultrasound-assisted demulsification/dehydration for crude oil[J]. Ultrasonics Sonochemistry, 2019, 57: 185-192. doi: 10.1016/j.ultsonch.2019.05.024
[27] MOOSAI R, DAWE R A. Gas attachment of oil droplets for gas flotation for oily wastewater cleanup[J]. Separation and Purification Technology, 2003, 33(3): 303-314. doi: 10.1016/S1383-5866(03)00091-1
[28] AN C, HUANG G, YAO Y, et al. Emerging usage of electrocoagulation technology for oil removal from wastewater: A review[J]. Science of the Total Environment, 2017, 579: 537-556. doi: 10.1016/j.scitotenv.2016.11.062
[29] RUBIO J, SOUZA M L, SMITH R W. Overview of flotation as a wastewater treatment technique[J]. Minerals Engineering, 2002, 15(3): 139-155. doi: 10.1016/S0892-6875(01)00216-3
[30] MOFRAD M M G, POURZAMANI H, AMIN M M, et al. In situ treatment of metalworking wastewater by chemical addition-dissolved air flotation coupled with UV, H2O2 & ZnO[J]. Heliyon, 2020, 6(1): e03091. doi: 10.1016/j.heliyon.2019.e03091
[31] CHAKRABARTY B, GHOSHAL A K, PURKAIT M K. Ultrafiltration of stable oil-in-water emulsion by polysulfone membrane[J]. Journal of Membrane Science, 2008, 325(1): 427-437. doi: 10.1016/j.memsci.2008.08.007
[32] DUONG P H, CHUNG T S, WEI S, et al. Highly permeable double-skinned forward osmosis membranes for anti-fouling in the emulsified oil-water separation process[J]. Environmental Science & Technology, 2014, 48(8): 4537-4545.
[33] LU D W, ZHANG T, MA J. Ceramic membrane fouling during ultrafiltration of oil/water emulsions: Roles played by stabilization surfactants of oil droplets[J]. Environmental Science & Technology, 2015, 49(7): 4235-4244.
[34] PRINCE J A, BHUVANA S, ANBHARASI V, et al. Ultra-wetting graphene-based PES ultrafiltration membrane: A novel approach for successful oil-water separation[J]. Water Research, 2016, 103: 311-318. doi: 10.1016/j.watres.2016.07.042
[35] YANG Y, RAZA A, BANAT F, et al. The separation of oil in water (O/W) emulsions using polyether sulfone & nitrocellulose microfiltration membranes[J]. Journal of Water Process Engineering, 2018, 25: 113-117. doi: 10.1016/j.jwpe.2018.07.007
[36] YUAN T, MENG J, HAO T, et al. A scalable method toward superhydrophilic and underwater superoleophobic PVDF membranes for effective oil/water emulsion separation[J]. ACS Applied Materials & Interfaces, 2015, 7(27): 14896-14904.
[37] 杨振生, 冯立建, 赵改, 等. 基于精密超滤法的废切削液处理与回用研究[J]. 现代化工, 2019, 39(11): 158-162.
[38] HESAMPOUR M, KRZYZANIAK A, NYSTRÖM M. Treatment of waste water from metal working by ultrafiltration, considering the effects of operating conditions[J]. Desalination, 2008, 222(1/2/3): 212-221.
[39] 郑帅飞, 冯凡让, 胡元娟, 等. 振动膜技术处理切削液废水的研究[J]. 广东化工, 2019, 46(1): 236-237.
[40] POPOVIĆ S, KARADŽIĆ M, CAKL J. Optimization of ultrafiltration of cutting oil wastewater enhanced by application of twisted tapes: Response surface methodology approach[J]. Journal of Cleaner Production, 2019, 231: 320-330. doi: 10.1016/j.jclepro.2019.05.184
[41] HUANG S, RAS R H A, TIAN X L. Antifouling membranes for oily wastewater treatment: Interplay between wetting and membrane fouling[J]. Current Opinion in Colloid & Interface Science, 2018, 36: 90-109.
[42] MILIĆ J K, DRAŽEVIĆ E, KOŠUTIĆ K, et al. Microfiltration of cutting-oil emulsions enhanced by electrocoagulation[J]. Desalination and Water Treatment, 2015, 57(24): 10959-10968.
[43] CHANG Q B, ZHOU J E, WANG Y Q, et al. Application of ceramic microfiltration membrane modified by nano-TiO2 coating in separation of a stable oil-in-water emulsion[J]. Journal of Membrane Science, 2014, 456: 128-133. doi: 10.1016/j.memsci.2014.01.029
[44] LI L N, DING L H, TU Z H, et al. Recovery of linseed oil dispersed within an oil-in-water emulsion using hydrophilic membrane by rotating disk filtration system[J]. Journal of Membrane Science, 2009, 342(1/2): 70-79.
[45] WANG Y X, LI Y J, YANG H, et al. Super-wetting, photoactive TiO2 coating on amino-silane modified PAN nanofiber membranes for high efficient oil-water emulsion separation application[J]. Journal of Membrane Science, 2019, 580: 40-48. doi: 10.1016/j.memsci.2019.02.062
[46] RAJASEKHAR T, TRINADH M, VEERA B P, et al. Oil-water emulsion separation using ultrafiltration membranes based on novel blends of poly(vinylidene fluoride) and amphiphilic tri-block copolymer containing carboxylic acid functional group[J]. Journal of Membrane Science, 2015, 481: 82-93. doi: 10.1016/j.memsci.2015.01.030
[47] SHI H, HE Y, PAN Y, et al. A modified mussel-inspired method to fabricate TiO2 decorated superhydrophilic PVDF membrane for oil/water separation[J]. Journal of Membrane Science, 2016, 506: 60-70. doi: 10.1016/j.memsci.2016.01.053
[48] ZHANG F, GAO S J, ZHU Y Z, et al. Alkaline-induced superhydrophilic/underwater superoleophobic polyacrylonitrile membranes with ultralow oil-adhesion for high-efficient oil/water separation[J]. Journal of Membrane Science, 2016, 513: 67-73. doi: 10.1016/j.memsci.2016.04.020
[49] ZUO J H, CHENG P, CHEN X F, et al. Ultrahigh flux of polydopamine-coated PVDF membranes quenched in air via thermally induced phase separation for oil/water emulsion separation[J]. Separation and Purification Technology, 2018, 192: 348-359. doi: 10.1016/j.seppur.2017.10.027
[50] GAO Y, LI Z H, CHENG B, et al. Superhydrophilic poly(p-phenylene sulfide) membrane preparation with acid/alkali solution resistance and its usage in oil/water separation[J]. Separation and Purification Technology, 2018, 192: 262-270. doi: 10.1016/j.seppur.2017.09.065
[51] MATOS M, GUTIÉRREZ G, LOBO A, et al. Surfactant effect on the ultrafiltration of oil-in-water emulsions using ceramic membranes[J]. Journal of Membrane Science, 2016, 520: 749-759. doi: 10.1016/j.memsci.2016.08.037
[52] TSURU T, NARITA M, SHINAGAWA R, et al. Nanoporous titania membranes for permeation and filtration of organic solutions[J]. Desalination, 2008, 233(1/2/3): 1-9.
[53] ZHOU J E, CHANG Q B, WANG Y Q, et al. Separation of stable oil-water emulsion by the hydrophilic nano-sized ZrO2 modified Al2O3 microfiltration membrane[J]. Separation and Purification Technology, 2010, 75(3): 243-248. doi: 10.1016/j.seppur.2010.08.008
[54] MURIĆ A, PETRINIĆ I, CHRISTENSEN M L. Comparison of ceramic and polymeric ultrafiltration membranes for treating wastewater from metalworking industry[J]. Chemical Engineering Journal, 2014, 255: 403-410. doi: 10.1016/j.cej.2014.06.009
[55] AGHILI F, GHOREYSHI A A, RAHIMPOUR A, et al. New chemistry for mixed matrix membranes: Growth of continuous multilayer UiO-66-NH2 on UiO-66-NH2-based polyacrylonitrile for highly efficient separations[J]. Industrial & Engineering Chemistry Research, 2020, 59(16): 7825-7838.
[56] GAO J, WEI W, YIN Y, et al. Continuous ultrathin UiO-66-NH2 coatings on a polymeric substrate synthesized by a layer-by-layer method: A kind of promising membrane for oil-water separation[J]. Nanoscale, 2020, 12(12): 6658-6663. doi: 10.1039/C9NR10049K
[57] WU H, CHUA Y S, KRUNGLEVICIUTE V, et al. Unusual and highly tunable missing-linker defects in zirconium metal-organic framework UiO-66 and their important effects on gas adsorption[J]. Journal of the American Chemical Society, 2013, 135(28): 10525-10532. doi: 10.1021/ja404514r
[58] LI X, LIU Y, WANG J, et al. Metal-organic frameworks based membranes for liquid separation[J]. Chemical Society Reviews, 2017, 46(23): 7124-7144. doi: 10.1039/C7CS00575J
[59] 吴文珍, 景有海. 酸析及混凝法处理切削废水研究[J]. 能源与环境, 2013(2): 78-80. doi: 10.3969/j.issn.1672-9064.2013.02.034
[60] RÍOS G, PAZOS C, COCA J. Destabilization of cutting oil emulsions using inorganic salts as coagulants[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 1998, 138(2/3): 383-389.
[61] YU L, HAN M, HE F. A review of treating oily wastewater[J]. Arabian Journal of Chemistry, 2017, 10: 1913-1922. doi: 10.1016/j.arabjc.2013.07.020
[62] ALWI H, IDRIS J, MUSA M, et al. A preliminary study of banana stem juice as a plant-based coagulant for treatment of spent coolant wastewater[J]. Journal of Chemistry, 2013, 2013: 1-7.
[63] 韩卓然, 于静洁, 王少坡, 等. 铝盐和铁盐混凝对切削液废水中有机物的去除特性[J]. 工业水处理, 2018, 38(3): 81-85.
[64] CHEN W, PENG J J, DU B, et al. Fabricating a hydrophobic modified flocculant through UVC irradiation initiation for metalworking wastewater treatment[J]. Chemical Engineering Research and Design, 2020, 153: 220-232. doi: 10.1016/j.cherd.2019.10.041
[65] SONG P, YANG Z H, XU H Y, et al. Investigation of influencing factors and mechanism of antimony and arsenic removal by electrocoagulation using Fe-Al electrodes[J]. Industrial & Engineering Chemistry Research, 2014, 53(33): 12911-12919.
[66] SAHU O, MAZUMDAR B, CHAUDHARI P K. Treatment of wastewater by electrocoagulation: A review[J]. Environmental Science and Pollution Research, 2014, 21(4): 2397-2413. doi: 10.1007/s11356-013-2208-6
[67] EMAMJOMEH M M, SIVAKUMAR M. Review of pollutants removed by electrocoagulation and electrocoagulation/flotation processes[J]. Journal of Environmental Management, 2009, 90(5): 1663-1679. doi: 10.1016/j.jenvman.2008.12.011
[68] AVANCINI D O, PERINI M E, DA SILVA PORTO P S. Electrocoagulation using perforated electrodes: An increase in metalworking fluid removal from wastewater[J]. Chemical Engineering and Processing: Process Intensification, 2019, 139: 113-120. doi: 10.1016/j.cep.2019.03.021
[69] KOBYA M, OMWENE P I, UKUNDIMANA Z. Treatment and operating cost analysis of metalworking wastewaters by a continuous electrocoagulation reactor[J]. Journal of Environmental Chemical Engineering, 2020, 8(2): 103526. doi: 10.1016/j.jece.2019.103526
[70] GUVENC S Y, OKUT Y, OZAK M, et al. Process optimization via response surface methodology in the treatment of metal working industry wastewater with electrocoagulation[J]. Water Science and Technology, 2017, 75(3/4): 833-846.
[71] CANIZARES P, JIMENEZ C, MARTINEZ F, et al. The pH as a key parameter in the choice between coagulation and electrocoagulation for the treatment of wastewaters[J]. Journal of Hazardous Materials, 2009, 163(1): 158-164. doi: 10.1016/j.jhazmat.2008.06.073
[72] 边艳勇, 谭洪毅. 芬顿氧化处理机加工行业切削液的研究[J]. 环境与发展, 2018, 30(8): 77-78.
[73] BRILLAS E, SIRES I, OTURAN M A. Electro-Fenton process and related electrochemical technologies based on Fenton’s reaction chemistry[J]. Chemical Reviews, 2009, 109(12): 6570-6631. doi: 10.1021/cr900136g
[74] RAHIM P S, AZIZ A A R, DAUD W W M A. Review on the main advances in photo-Fenton oxidation system for recalcitrant wastewaters[J]. Journal of Industrial and Engineering Chemistry, 2015, 21: 53-69. doi: 10.1016/j.jiec.2014.05.005
[75] AMIN M M, MOFRAD G M M, POURZAMANI H, et al. Treatment of industrial wastewater contaminated with recalcitrant metal working fluids by the photo-Fenton process as post-treatment for DAF[J]. Journal of Industrial and Engineering Chemistry, 2017, 45: 412-420. doi: 10.1016/j.jiec.2016.10.010
[76] MARTINEZ-HUITLE C A, FERRO S. Electrochemical oxidation of organic pollutants for the wastewater treatment: Direct and indirect processes[J]. Chemical Society Reviews, 2006, 35(12): 1324-1340. doi: 10.1039/B517632H
[77] BONFATTI F, FERRO S, LAVEZZO F, et al. Electrochemical incineration of glucose as a model organic substrate. II. Role of active chlorine mediation[J]. Journal of the Electrochemical Society, 2000, 147(2): 592-596. doi: 10.1149/1.1393238
[78] CHEN G H. Electrochemical technologies in wastewater treatment[J]. Separation and Purification Technology, 2004, 38(1): 11-41. doi: 10.1016/j.seppur.2003.10.006
[79] KAUR R, SANGAL V K, KAUR P, et al. Demulsification of cutting oil emulsion by electro-oxidation process: Batch and continuous mode[J]. Journal of the Electrochemical Society, 2017, 164(13): E496-E504. doi: 10.1149/2.1841713jes
[80] DEBORDE M, GUNTEN U V. Reactions of chlorine with inorganic and organic compounds during water treatment: Kinetics and mechanisms: A critical review[J]. Water Research, 2008, 42(1/2): 13-51.
[81] YANG S B, JANG S H, HONG S C, et al. Treatment of COD from wasted soluble cutting fluids using Ti-IrO2 electrode[J]. Journal of Korea Society of Waste Management, 2017, 34(7): 744-750. doi: 10.9786/kswm.2017.34.7.744
[82] CARVALHINHA P P, FLORES A, RODRIGUES J A, et al. AnSBBR applied to the treatment of metalworking fluid wastewater: Effect of organic and shock load[J]. Applied Biochemistry and Biotechnology, 2010, 162(6): 1708-1724. doi: 10.1007/s12010-010-8952-x
[83] TELI A, VYRIDES I, STUCKEY D C. Treatment of metalworking fluids using a submerged anaerobic membrane bioreactor (SAMBR)[J]. Journal of Chemical Technology & Biotechnology, 2015, 90(3): 507-513.
[84] GERULOVÁ K, SOLDÁN M. Study on the metalworking wastewater pre-treatment using Fenton’s reaction[J]. Journal of Chemical Technology and Metallurgy, 2018, 53(3): 491-495.
[85] JAGADEVAN S, DOBSON P, THOMPSON I P. Harmonisation of chemical and biological process in development of a hybrid technology for treatment of recalcitrant metalworking fluid[J]. Bioresource Technology, 2011, 102(19): 8783-8789. doi: 10.1016/j.biortech.2011.07.031
[86] THILL P G, AGER D K, VOJNOVIC B, et al. Hybrid biological, electron beam and zero-valent nano iron treatment of recalcitrant metalworking fluids[J]. Water Research, 2016, 93: 214-221. doi: 10.1016/j.watres.2016.02.028
[87] ZHANG Q, YU C J, FANG J, et al. Using the combined Fenton-MBR process to treat cutting fluid wastewater[J]. Polish Journal of Environmental Studies, 2017, 26(3): 1375-1383. doi: 10.15244/pjoes/68229
[88] VYRIDES I, RIVETT D W, BRUCE K D, et al. Selection and assembly of indigenous bacteria and methanogens from spent metalworking fluids and their potential as a starting culture in a fluidized bed reactor[J]. Microbial Biotechnology, 2019, 12(6): 1302-1312. doi: 10.1111/1751-7915.13448
[89] 陈益成. 某汽车制造厂切削液废水处理工程实例[J]. 广东化工, 2019, 46(11): 164-165. doi: 10.3969/j.issn.1007-1865.2019.11.070
[90] 赵路霞, 张洛红, 王蔚, 等. 混凝-热活化过硫酸盐氧化处理金属切削液废水[J]. 西安工程大学学报, 2017, 31(2): 192-196.
[91] 黄腾蛟, 汪清环, 孙启元, 等. 混凝与芬顿工艺联用处理切削废液[J]. 环境工程学报, 2016, 10(3): 1253-1258. doi: 10.12030/j.cjee.20160340
[92] JAGADEVAN S, JAYAMURTHY M, DOBSON P, et al. A novel hybrid nano zerovalent iron initiated oxidation-biological degradation approach for remediation of recalcitrant waste metalworking fluids[J]. Water Research, 2012, 46(7): 2395-2404. doi: 10.1016/j.watres.2012.02.006