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Articles

A critical review of fat, oil, and grease (FOG) in sewer collection systems: Challenges and control

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Pages 1191-1217 | Published online: 28 Nov 2017

References

  • Alves, M. M., Pereira, M. A., Sousa, D. Z., Cavaleiro, A. J., Picavet, M., Smidt, H., and Stams, A. J. M. (2009). Waste lipids to energy: How to optimize methane production from long-chain fatty acids (LCFA). Microb. Biotechnol., 2, 538–550.
  • Anon (2002, May/June). In a FOG: Wastewater system managers struggle with fat, oil, and grease. Water Resources Research Institute News of The University of North Carolina. Retrieved from https://repository.lib.ncsu.edu/bitstream/handle/1840.4/4221/WRRINews_335.pdf?sequence=1&isAllowed=y
  • Araghi, H. J., Nikbin, I. M., Reskati, S. R., Rahmani, E., and Allahyari, H. (2015). An experimental investigation on the erosion resistance of concrete containing various PET particles percentages against sulfuric acid attack. Constr. Build. Mater., 77, 461–471.
  • ASME (2001). ASME A112.14.3-2000: The American National Standard – Grease Interceptors. New York, NY: American Society of Mechanical Engineers.
  • Aziz, T. N., Holt, L. M., Keener, K. M., Groninger, J. W., and Ducoste, J. J. (2011). Performance of grease abatement devices for removal of fat, oil, and grease. J. Environ. Eng., 137, 84–92.
  • Aziz, T. N., Holt, L. M., Keener, K. M., Groninger, J. W., and Ducoste, J. J. (2012). Field characterization of external grease abatement devices. Water Environ. Res., 84, 237–246.
  • Benecke, H. P., Allen, S. K., and Garbark, D. B. (2017). Efficient fractionation and analysis of fatty acids and their salts in Fat, Oil and Grease (FOG) deposits. J. Oleo Sci., 66, 123–131.
  • Berndt, M. L. (2011). Evaluation of coatings, mortars and mix design for protection of concrete against sulphur oxidising bacteria. Constr. Build. Mater., 25, 3893–3902.
  • Bielefeldt, A., Gutierrez-Padilla, M.G.D., Ovtchinnikov, S., Silverstein, J., and Hernandez, M. (2010). Bacterial kinetics of sulfur oxidizing bacteria and their biodeterioration rates of concrete sewer pipe samples. J. Environ. Eng., 136, 731–738.
  • Bober, K., and Garus, M. (2006). RP HPTLC application in the investigation of solubility in water of long chain fatty acids. J. Liq. Chromatogr. Relat. Technol., 29, 2787–2794.
  • Brooksbank, A. M., Latchford, J. W., and Mudge, S. M. (2007). Degradation and modification of fats, oils and grease by commercial microbial supplements. World J. Microbiol. Biotechnol., 23, 977–985.
  • Cairncross, R. A., Olson, M., and Spatari, S. (2016). Extraction of lipids from wastewater to produce biofuels (Report No. U3R13). Alexandria, VA: Water Environment & Reuse Foundation (US).
  • Canakci, M. (2007). The potential of restaurant waste lipids as biodiesel feedstocks. Bioresour. Technol., 98, 183–190.
  • Chakrabarti, A. R., Hake, J. M., Zarchi, I., and Gray, D.M.D. (2008). 4Waste grease biodiesel production at a wastewater treatment plant. Proc. Water Environ. Fed., 2770–2789.
  • Chu, W., and Ng, F. L. (2000). Upgrading the conventional grease trap using a tube settler. Environ. Int., 26, 17–22.
  • Cotte, M., Checroun, E., Susini, J., Dumas, P., Tchoreloff, P., Besnard, M., and Walter, P. (2006). Kinetics of oil saponification by lead salts in ancient preparations of pharmaceutical lead plasters and painting lead mediums. Talanta, 70, 1136–1142.
  • Cummings, J. H., Wiggins, H. S., Jenkins, D.J.A., Houston, H., Jivraj, T., Drasar, B. S., and Hill, M. J. (1978). Influence of diets high and low in animal fat on bowel habit, gastrointestinal transit time, fecal microflora, bile acid, and fat excretion. J. Clin. Invest., 61, 953–963.
  • Davidsson, Å., Lövstedt, C., la Cour Jansen, J., Gruvberger, C., and Aspegren, H. (2008). Co-digestion of grease trap sludge and sewage sludge. Waste Manag., 28, 986–992.
  • Davis, A. P., Torrents, A., Khorsha, G., and Ducoste, J. (2011). The production and fate of fats, oils and grease from small dairy-based food service establishments. Retrieved from https://www.wsscwater.com/files/live/sites/wssc/files/PDFs/WSSC%20FInal%20Report%20DAIRY%20APR%202011_4384558.pdf
  • Dayton, S. (2010, February). Marketing grease trap waste. Pumper Magazine. Retrieved from http://www.pumper.com/magazine/2010/02
  • Del Mundo, D.M.N., and Sutheerawattananonda, M. (2017). Influence of fat and oil type on the yield, physico-chemical properties, and microstructure of fat, oil, and grease (FOG) deposits. Water Res., 124, 308–319.
  • Dominic, C.C.S., Szakasits, M., Dean, L. O., and Ducoste, J. J. (2013). Understanding the spatial formation and accumulation of fats, oils and grease deposits in the sewer collection system. Water Sci. Technol., 68, 1830–1836.
  • Ducoste, J., Malyala, D., Hao, Z., and Dean, L. (2016). Determination of long chain free fatty acids concentration from grease interceptor effluent waste streams (Report No. 12016). Racine, WI: Emerson Electric Company (US).
  • Ducoste, J. J., Keener, K. M., Groninger, J. W., and Holt, L. M. (2008). Fats, roots, oils and grease (FROG) in centralized and decentralized systems. London: Water Environment Research Foundation.
  • Eren, B., and Karadagli, F. (2012). Physical disintegration of toilet papers in wastewater systems: Experimental analysis and mathematical modeling. Environ. Sci. Technol., 46, 2870–2876
  • Foubert, I., Vanrolleghem, P. A., Vanhoutte, B., and Dewettinck, K. (2002). Dynamic mathematical model of the crystallization kinetics of fats. Food Res. Int., 35, 945–956.
  • Gallimore, E., Aziz, T. N., Movahed, Z., and Ducoste, J. (2011). Assessment of internal and external grease interceptor performance for removal of food-based fats, oil, and grease from food service establishments. Water Environ. Res., 83, 882–892.
  • Ganigue, R., Gutierrez, O., Rootsey, R., and Yuan, Z. (2011). Chemical dosing for sulfide control in Australia: An industry survey. Water Res., 45, 6564–6574.
  • Grengg, C., Mittermayr, F., Baldermann, A., Böttcher, M. E., Leis, A., Koraimann, G., Grunert, P., and Dietzel, M. (2015). Microbiologically induced concrete corrosion: A case study from a combined sewer network. Cem. Concr. Res., 77, 16–25.
  • Gutierrez, O., Mohanakrishnan, J., Sharma, K. R., Meyer, R. L., Keller, J., and Yuan, Z. (2008). Evaluation of oxygen injection as a means of controlling sulfide production in a sewer system. Water Res., 42, 4549–4561.
  • Gutierrez, O., Sudarjanto, G., Ren, G., Ganigué, R., Jiang, G., and Yuan, Z. (2014). Assessment of pH shock as a method for controlling sulfide and methane formation in pressure main sewer systems. Water Res., 48, 569–578.
  • Gutierrez-Padilla, M.G.D., Bielefeldt, A., Ovtchinnikov, S., Hernandez, M., and Silverstein, J. (2010). Biogenic sulfuric acid attack on different types of commercially produced concrete sewer pipes. Cem. Concr. Res., 40, 293–301.
  • Haile, T., and Nakhla, G. (2008). A novel zeolite coating for protection of concrete sewers from biological sulfuric acid attack. Geomicrobiol. J., 25, 322–331.
  • Haile, T., Nakhla, G., and Allouche, E. (2008). Evaluation of the resistance of mortars coated with silver bearing zeolite to bacterial-induced corrosion. Corros. Sci., 50, 713–720.
  • Haile, T., Nakhla, G., Allouche, E., and Vaidya, S. (2010). Evaluation of the bactericidal characteristics of nano-copper oxide or functionalized zeolite coating for bio-corrosion control in concrete sewer pipes. Corros. Sci., 52, 45–53.
  • Hanaki, K., Nagase, M., and Matsuo, T. (1981). Mechanism of inhibition caused by long chain fatty acids in anaerobic digestion process. Biotechnol. Bioeng., 23, 1591–1610.
  • Hao, Z., Malyala, D., Dean, L., and Ducoste, J. (2017). Attenuated total reflectance fourier transform infrared spectroscopy for determination of long chain free fatty acid concentration in oily wastewater using the double wavenumber extrapolation technique. Talanta, 165, 526–532.
  • Hatamoto, M., Imachi, H., Yashiro, Y., Ohashi, A., and Harada, H. (2007). Diversity of anaerobic microorganisms involved in long-chain fatty acid degradation in methanogenic sludges as revealed by RNA-based stable isotope probing. Appl. Environ. Microbiol., 73, 4119–4127.
  • He, X., de los Reyes, F. L., Leming, M. L., Dean, L. O., Lappi, S. E., and Ducoste, J. J. (2013). Mechanisms of fat, oil and grease (FOG) deposit formation in sewer lines. Water Res., 47, 4451–4459.
  • He, X., Iasmin, M., Dean, L. O., Lappi, S. E., Ducoste, J. J., and de los Reyes, F. L. (2011). Evidence for fat, oil, and grease (FOG) deposit formation mechanisms in sewer lines. Environ. Sci. Technol., 45, 4385–4391.
  • He, X., Osborne, J., and de los Reyes, F. L. (2012). Physico-chemical characterization of grease interceptors with and without biological product addition. Water Env. Res., 84, 195–201.
  • He, X., So, M. J., and de los Reyes, F. L. (2016). Shifts in microbial communities in bioaugmented grease interceptors removing fat, oil, and grease (FOG). Appl. Microbiol. Biotechnol., 100, 7025–7035.
  • He, X., and Yan, T. (2016). Impact of microbial activities and hydraulic retention time on the production and profile of long chain fatty acids in grease interceptors: A laboratory study. Environ. Sci. Water Res. Technol., 2, 474–482.
  • He, X., Zhang, Q., Cooney, M. J., and Yan, T. (2015). Biodegradation of fat, oil and grease (FOG) deposits under various redox conditions relevant to sewer environment. Appl. Microbiol. Biotechnol., 99, 6059–6068.
  • Henriksson, J. (2016). Characterization of composition of the fat-rich residues from grease separators. Retrieved from https://www.diva-portal.org/smash/get/diva2:944380/FULLTEXT01.pdf
  • Hums, M. E., Cairncross, R. A., and Spatari, S. (2016). Life-cycle assessment of biodiesel produced from grease trap waste. Environ. Sci. Technol., 50, 2718–2726.
  • Husain, I., Alkhatib, M., Jammi, M., Mirghani, M., Zainuddin, Z., and Hoda, A. (2014). Problems, control, and treatment of fat, oil, and grease (FOG): A review. J. Oleo Sci., 52, 747–752.
  • Iasmin, M. (2014). Quantifying fat, oil and grease (FOG) deposits formation kinetics (Doctoral dissertation). Retrieved from https://www.lib.ncsu.edu/etds
  • Iasmin, M., Dean, L. O., and Ducoste, J. J. (2016). Quantifying fat, oil, and grease deposit formation kinetics. Water Res., 88, 786–795.
  • Iasmin, M., Dean, L. O., Lappi, S. E., and Ducoste, J. J. (2014). Factors that influence properties of FOG deposits and their formation in sewer collection systems. Water Res., 49, 92–102.
  • Jansson, M. B., and Wadsborn, R. (2011). Equilibrium calculations for fatty acid calcium soaps in pulp washing. Retrieved from http://www.innventia.com/Documents/Rapporter/STFI-Packforsk%20report%20140.pdf
  • Kabouris, J. C., Tezel, U., Pavlostathis, S. G., Engelmann, M., Dulaney, J. A., Todd, A. C., and Gillette, R. A. (2009). Mesophilic and thermophilic anaerobic digestion of municipal sludge and fat, oil, and grease. Water Environ. Res., 81, 476–485.
  • Keener, K. M., Ducoste, J. J., and Holt, L. M. (2008). Properties influencing fat, oil, and grease deposit formation. Water Environ. Res., 80, 2241–2246.
  • Kim, D., Vardon, D. R., Murali, D., Sharma, B. K., and Strathmann, T. J. (2016). Valorization of waste lipids through hydrothermal catalytic conversion to liquid hydrocarbon fuels with in situ hydrogen production. ACS Sustain. Chem. Eng., 4, 1775–1784.
  • Kim, H. J., Hilger, H., and Bae, S. (2013). NiSO4/SiO2 catalyst for biodiesel production from free fatty acids in brown grease. J. Energ. Eng., 139 (1), 35–40.
  • Kim, S. H., Han, S. K., and Shin, H. S. (2004). Two-phase anaerobic treatment system for fat-containing wastewater. J. Chem. Technol. Biotechnol., 79, 63–71.
  • Kis, A., Laczi, K., Zsiros, S., Rakhely, G., and Perei, K. (2015). Biodegradation of animal fats and vegetable oils by Rhodococcus erythropolis PR4. Int. Biodeterior. Biodegrad., 105, 114–119.
  • Long, J. H., Aziz, T. N., Reyes, F.L.D.L., and Ducoste, J. J. (2012). Anaerobic co-digestion of fat, oil, and grease (FOG): A review of gas production and process limitations. Process Saf. Environ. Prot., 90, 231–245.
  • Luostarinen, S., Luste, S., and Sillanpää, M. (2009). Increased biogas production at wastewater treatment plants through co-digestion of sewage sludge with grease trap sludge from a meat processing plant. Bioresour. Technol., 100, 79–85.
  • Marlow, D. R., Boulaire, F., Beale, D. J., Grundy, C., and Moglia, M. (2011). Sewer performance reporting: factors that influence blockages. J. Infrastruct. Syst., 17, 42–51.
  • Mattsson, J., Hedstrom, A., Viklander, M., and Blecken, G.-T., (2014). Fat, oil, and grease accumulation in sewer systems: Comprehensive survey of experiences of Scandinavian municipalities. J. Environ. Eng., 140 (3), 1–7.
  • Metcalf , and Eddy, I., 1991. Wastewater engineering: Treatment and reuse. New York: McGraw-Hill.
  • Montefrio, M. J., Xinwen, T., and Obbard, J. P. (2010). Recovery and pre-treatment of fats, oil and grease from grease interceptors for biodiesel production. Appl. Energy., 87, 3155–3161.
  • Neczaj, E., Bien, J., Grosser, A., Worwag, M., and Kacprzak, M. (2012). Anaerobic treatment of sewage sludge and grease trap sludge in continuous co-digestion. Glob. Nest J., 14, 141–148.
  • Negishi, A., Muraoka, T., Maeda, T., Takeuchi, F., Kanao, T., Kamimura, K., and Sugio, T. (2005). Growth inhibition by tungsten in the sulfur-oxidizing bacterium Acidithiobacillus thiooxidans. Biosci. Biotechnol. Biochem., 69, 2073–2080.
  • Ngo, H. L., Xie, Z. G., Kasprzyk, S., Haas, M., and Lin, W. B. (2011). Catalytic synthesis of fatty acid methyl esters from extremely low quality greases. J. Am. Oil Chem. Soc., 88, 1417–1424.
  • Nielsen, A. H., Vollertsen, J., Jensen, H. S., Wium-Andersen, T., and Hvitved-Jacobsen, T. (2008). Influence of pipe material and surfaces on sulfide related odor and corrosion in sewers. Water Res., 42, 4206–4214.
  • Nisola, G. M., Cho, E. S., Shon, H. K., Tian, D., Chun, D. J., Gwon, E. M., and Chung, W. J. (2009). Cell Immobilized FOG-Trap System for Fat, Oil, and Grease Removal from Restaurant Wastewater. J. Environ. Eng., 135, 876–884.
  • Niyonzima, F. N., and More, S. S. (2015). Microbial detergent compatible lipases. J. Sci. Ind. Res., 74, 105–113.
  • Noeiaghaei, T., Mukherjee, A., Dhami, N., and Chae, S. (2017). Biogenic deterioration of concrete and its mitigation technologies. Constr. Build. Mater., 149, 575–586.
  • Park, K., Lee, H., Phelan, S., Liyanaarachchi, S., Marleni, N., Navaratna, D., Jegatheesan, V., and Shu, L. (2014). Mitigation strategies of hydrogen sulphide emission in sewer networks – A review. Int. Biodeterior. Biodegrad., 95, 251–261.
  • Pastore, C., Barca, E., Del Moro, G., Lopez, A., Mininni, G., and Mascolo, G. (2015). Recoverable and reusable aluminium solvated species used as a homogeneous catalyst for biodiesel production from brown grease. Appl. Catal. A Gen., 501, 48–55.
  • Perl, M., and Diamant, Y. (1963). Lipase of avacado – purification and properties of enzyme. Isr. J. Chem., 1, 61.
  • Ragauskas, A.M.E., Pu, Y., and Ragauskas, A. J. (2013). Biodiesel from grease interceptor to gas tank. Energy Sci. Eng., 1, 42–52.
  • Rinzema, A., Alphenaar, A., and Lettinga, G. (1993). Anaerobic digestion of long-chain fatty acids in UASB and expanded granular sludge bed reactors. Process Biochem., 28, 527–537.
  • Robbins, D. M., George, O., and Burton, R. (2011). Developing Programs to Manage Fats, Oil, and Grease (FOG) for Local Governments in India. Retrieved from https://www.rti.org/sites/default/files/resources/managing_fats_oil_and_grease_for_local_governments_in_india.pdf
  • Sousa, D. Z., Alcina Pereira, M., Stams, A.J.M., Alves, M. M., and Smidt, H. (2007). Microbial communities involved in anaerobic degradation of unsaturated or saturated long-chain fatty acids. Appl. Environ. Microbiol., 73, 1054–1064.
  • Stephen, A. M., and Cummings, J. H. (1980). The microbial contribution to human faecal mass. J. Med. Microbiol., 13, 45–56.
  • Stoll, U., and Gupta, H. (1997). Management strategies for oil and grease residues. Waste Manag. Res., 15, 23–32.
  • Sun, X., Jiang, G., Bond, P. L., Keller, J., and Yuan, Z. (2015). A novel and simple treatment for control of sulfide induced sewer concrete corrosion using free nitrous acid. Water Res., 70, 279–287.
  • Suto, P., Gray, D.M.D., Larsen, E., and Hake, J. (2006). Innovative anaerobic digestion of fats, oils, and grease. Proc. Water Environ. Fed., 858–879.
  • Szostak, R. (2013). Free fatty acid content of cleaning and personal care products (Report No. 11447952). Tolland, CT: Nerac, Inc. (US).
  • Tang, H. L., Xie, Y. F., and Chen, Y. C. (2012). Use of Bio-Amp, a commercial bio-additive for the treatment of grease trap wastewater containing fat, oil, and grease. Bioresour. Technol., 124, 52–58.
  • Tu, Q., Lu, M., and Knothe, G. (2017). Glycerolysis with crude glycerin as an alternative pretreatment for biodiesel production from grease trap waste: Parametric study and energy analysis. J. Clean. Prod., 162, 504–511.
  • Tu, Q., and McDonnell, B. E. (2016). Monte Carlo analysis of life cycle energy consumption and greenhouse gas (GHG) emission for biodiesel production from trap grease. J. Clean. Prod., 112, 2674–2683.
  • USEPA (2004). Report to congress on impacts and control of combined sewer overflows and sanitary sewer overflows. Retrieved from https://www.epa.gov/sites/production/files/2015-10/documents/csossortc2004_full.pdf
  • Vasudevan, P. T., and Fu, B. (2010). Environmentally sustainable biofuels: Advances in biodiesel research. Waste Biomass Valorizat., 1, 47–63.
  • Vulic, T., Rudic, O., Vucetic, S., Lazar, D., and Ranogajec, J. (2015). Cement & concrete composites photocatalytic activity and stability of TiO 2 / ZnAl layered double hydroxide based coatings on mortar substrates. Cem. Concr. Compos., 58, 50–58.
  • Wan, C., Zhou, Q., Fu, G., and Li, Y. (2011). Semi-continuous anaerobic co-digestion of thickened waste activated sludge and fat, oil and grease. Waste Manag., 31, 1752–1758.
  • Wang, L., Aziz, T. N., and de los Reyes, F. L. (2013). Determining the limits of anaerobic co-digestion of thickened waste activated sludge with grease interceptor waste. Water Res., 47, 3835–3844.
  • Wang, Z. M., Lee, J. S., Park, J. Y., Wu, C. Z., and Yuan, Z. H. (2008). Optimization of biodiesel production from trap grease via acid catalysis. Korean J. Chem. Eng., 25, 670–674.
  • Williams, J. B., Clarkson, C., Mant, C., Drinkwater, A., and May, E. (2012). Fat, oil and grease deposits in sewers: Characterisation of deposits and formation mechanisms. Water Res., 46, 6319–6328.
  • Wong, N. H., Law, P. L., and Lai, S. H. (2007). Field tests on a grease trap effluent filter. Int. J. Environ. Sci. Technol., 4, 345–350.
  • Yamanaka, T., Aso, I., Togashi, S., Tanigawa, M., Shoji, K., Watanabe, T., Watanabe, N., Maki, K., and Suzuki, H. (2002). Corrosion by bacteria of concrete in sewerage systems and inhibitory effects of formates on their growth. Water Res., 36, 2636–2642.
  • Yan, J., Li, A., Xu, Y., Ngo, T.P.N., Phua, S., and Li, Z. (2012). Efficient production of biodiesel from waste grease: One-pot esterification and transesterification with tandem lipases. Bioresour. Technol., 123, 332–337.
  • Yousefelahiyeh, R., Dominic, C.C.S., and Ducoste, J. (2017). Modeling fats, oil and grease deposit formation and accumulation in sewer collection systems. J. Hydroinformatics, 19 (3), 443–455.
  • Zhang, L., De Schryver, P., De Gusseme, B., De Muynck, W., Boon, N., and Verstraete, W. (2008). Chemical and biological technologies for hydrogen sulfide emission control in sewer systems: A review. Water Res., 42, 1–12.

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