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Fate of Graywater Constituents After Long-Term Application for Landscape Irrigation

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Abstract

While interest in and adoption of graywater reuse for irrigation has rapidly grown in recent years, little is known about the long-term effects of graywater irrigation. Concerns exist in relation to the presence of pathogenic organisms, fate of personal care products, and accumulation of salts. The purpose of this research was to evaluate the long-term effects of graywater irrigation to soil quality under real conditions where homeowners may not always apply graywater in a highly controlled manner. Four households from different climatic and geological conditions were selected for sampling (AZ, CA, CO, and TX) where graywater was applied for irrigation for a minimum of 5 years. Soil samples were collected in areas irrigated with graywater and areas irrigated with freshwater within the same yard. Soil cores were taken at depths of 0–15, 15–30, and 30–100 cm and analyzed separately for surfactants, antimicrobials, sodium adsorption ratio (SAR), electrical conductivity (EC), extractable boron, fecal indicator organisms (E. coli, enterococci, and Clostridium perfringens), and soil dehydrogenase activity. In surface soil samples (0–15 cm), the average total surfactant concentration (over all sites) was higher in graywater-irrigated soil (0.078 ± 0.033) compared to freshwater-irrigated soil (0.030 ± 0.025 mg kg−1). This difference was not found to be significant (P > 0.05). Triclosan and triclocarban were detected in surface soil samples at some locations (3.8–6.3 and 3.5–9.1 μg kg−1, respectively), but not in samples deeper than 15 cm. Among the sampling locations, the TX household appeared to be most impacted by graywater, as evidenced by elevated SAR, potentially toxic levels of B, and relatively high numbers of E. coli and enterococci due to 30 years of graywater application for irrigation.

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References

  • Abu-Zreig, M. (2003). Effect of application of surfactants on hydraulic properties of soils. Biosystems Engineering, 84(3), 363–372.

    Article  Google Scholar 

  • ADEQ (2003). ADEQ regulation for using graywater. Publication no. C 01–06, Phoenix, Arizona.

  • Belvins, D. G., & Lukaszewski, K. M. (1998). Boron in plant structure and function. Annual Review of Plant Physiology and Plant Molecular Biology, 49, 481–500.

    Article  Google Scholar 

  • Berna, J. L., & Moreno, J. A. (1991). The behavior of LAS in the environment. Journal of Chemical Technology and Biotechnology, 50(3), 387–398.

    CAS  Google Scholar 

  • Berna, J. L., Ferrer, J., Moreno, J. A., & Prats, D. (1989). The fate of LAS in the environment. Tenside Surfactants Detergents, 26(2), 101–107.

    CAS  Google Scholar 

  • Birošová, L., & Mikulášová, M. (2009). Development of triclosan and antibiotic resistance in Salmonella enterica serovar Typhimurium. Journal of Medical Microbiology, 58(4), 436–441.

    Article  Google Scholar 

  • Boluda-Botella, N., León, V. M., Cases, V., Gomis, V., & Prats, D. (2010). Fate of linear alkylbenzenesulfonate in agricultural soil columns during inflow of surfactant pulses. Journal of Hydrology, 395(3–4), 141–152.

    Article  CAS  Google Scholar 

  • Borselli, L., Torri, D., Poesen, J., & Sanchis, P. S. (2001). Effects of water quality on infiltration, runoff and interrill erosion processes during simulated rainfall. Earth Surface Processes and Landforms, 26(3), 329–342.

    Article  CAS  Google Scholar 

  • Casanova, L. M., Little, V., Frye, R. J., & Gerba, C. P. (2001). A survey of the microbial quality of recycled household graywater. Journal of the American Water Resources Association, 37(5), 1313–1319.

    Article  Google Scholar 

  • Cha, J., & Cupples, A. M. (2009). Detection of the antimicrobials triclocarban and triclosan in agricultural soils following land application of municipal biosolids. Water Research, 43(9), 2522–2530.

    Article  CAS  Google Scholar 

  • Christova-Boal, D., Eden, R. E., & McFarlane, S. (1996). An investigation into greywater reuse for urban residential properties. Desalination, 106(1–3), 391–397.

    CAS  Google Scholar 

  • City of Los Angeles: Office of Water Reclamation. (1992). Graywater pilot project—final project report. Los Angeles, CA.

  • DK-EPA. (2001). DK-EPA, Environmental Project 615: environmental and health assessment of substances in household detergents and cosmetic detergent products. http://www.mst.dk/udgiv/Publications/2001/87-7944-596-9/html/helepubl_eng.htm.

  • Dyer, S. D., Sanderson, H., Waite, S. W., Van Compernolle, R., Price, B., Nielsen, A. M., et al. (2006). Assessment of alcohol ethoxylate surfactants and fatty alcohols mixtures in river sediments and prospective risk assessment. Environmental Monitoring and Assessment, 120(1–3), 45–63.

    Article  CAS  Google Scholar 

  • Eriksson, E., & Donner, E. (2009). Metals in greywater: sources, presence and removal efficiencies. Desalination, 248(1–3), 271–278.

    Article  CAS  Google Scholar 

  • Eriksson, E., Auffarth, K., Henze, M., & Ledin, A. (2002). Characteristics of grey wastewater. Urban Water, 4(1), 85–104.

    Article  CAS  Google Scholar 

  • Figge, K., & Schoberl, P. (1989). LAS the application of sewage sludge in agriculture. Tenside Surfactants Detergents, 26(2), 122–128.

    CAS  Google Scholar 

  • Finley, S., Barrington, S., & Darwin, L. (2009). Reuse of domestic greywater for the irrigation of food crops. Water, Air, and Soil Pollution, 199(1–4), 235–245.

    Article  CAS  Google Scholar 

  • Gee, G.W., & Bauder, J.W. (1986). Particle-size analysis. In A. Klute (Eds.), Methods of soil analysis. Part 1. Physical and mineralogical methods, 2nd ed. (pp. 383–411). Madison: Soil Science Society of America.

  • Gil-Sotres, F., Trasar-Cepeda, C., Leirós, M. C., & Seoane, S. (2005). Different approaches to evaluating soil quality using biochemical properties. Soil Biology and Biochemistry, 37(5), 877–887.

    Article  CAS  Google Scholar 

  • Gross, A., Shmueli, O., Ronen, Z., & Raveh, E. (2007). Recycled vertical flow constructed wetland (RVFCW)—a novel method of recycling greywater for irrigation in small communities and households. Chemosphere, 66(5), 916–923.

    Google Scholar 

  • Halden, R. U., & Paull, D. H. (2005). Co-occurrence of triclocarban and triclosan in U.S. Water Resources. Environmental Science and Technology, 39, 1420–1426.

    Article  CAS  Google Scholar 

  • Higgins, C. P., Paesani, Z. J., Abbot Chalew, T. E., & Halden, R. U. (2009). Bioaccumulation of triclocarban in Lumbriculus variegatus. Environmental Toxicology and Chemistry, 28(12), 2580–2586.

    Article  CAS  Google Scholar 

  • Ishii, S., Ksoll, W. B., Hicks, R. E., & Sadowsky, M. J. (2006). Presence and growth of naturalized Escherichia coli in temperate soils from Lake Superior watersheds. Applied and Environmental Microbiology, 72, 612–621.

    Article  CAS  Google Scholar 

  • Jeppesen, B. (1996). Domestic greywater re-use: Australia’s challenge for the future. Desalination, 106(1–3), 311–315.

    CAS  Google Scholar 

  • Keren, R. (1996). Boron. In D.L. Sparks (ed.) Methods of soil analysis. Part 3. Chemical methods (pp. 603–626). Madison: Soil Science Society of America.

  • Lanfax Laboratories. (2009). The 2009 round of laundry products testing and reporting [web page]. http://www.lanfaxlabs.com.au/laundry.htm

  • Mace, J. E., & Amrhein, C. (2001). Leaching and reclamation of a soil irrigated with moderate SAR waters. Soil Science Society of America Journal, 65(1), 199–204.

    Article  CAS  Google Scholar 

  • Macromini, A., Capel, P. D., Lichtenseiger, T. H., Brunner, P. H., & Giger, W. (1989). Behavior of aromatic surfactants and PCBs in sludge-treated soil and landfills. Journal of Environmental Quality, 18(4), 523–528.

    Google Scholar 

  • Mahler, R. L., & Shafii, B. (2009). Relationship between soil test boron and pea yields in the Inland Pacific Northwest. Communications in Soil Science and Plant Analysis, 40(15–16), 2603–2615.

    Article  CAS  Google Scholar 

  • Margesin, R., Zimmerbauer, A., & Schinner, F. (2000). Monitoring of bioremediation by soil biological activities. Chemosphere, 40, 339–346.

    Article  CAS  Google Scholar 

  • Mayer, P. W., De Oreo, W.B., et al. (1999). Residential end uses of water. Denver: American Water Works Association Research Foundation.

  • McAvoy, D. C., Eckhoff, W. S., & Rapaport, R. A. (1993). Fate of linear alkylbenzene sulfonate in the environment. Environmental Toxicology & Chemistry, 12(6), 977–987.

    Article  CAS  Google Scholar 

  • Misra, R. K., & Sivongxay, A. (2009). Reuse of laundry greywater as affected by its interaction with saturated soil. Journal of Hydrology, 366(1–4), 55–61.

    Article  CAS  Google Scholar 

  • Modler, R. F., Gubler, R., & Inoguchi, Y. (2004). Detergent alcohols chemical economics handbook marketing research report. Menlo Park: SRI International.

    Google Scholar 

  • Nable, R. O., Bañuelos, G. S., & Paull, J. G. (1997). Boron toxicity. Plant and Soil, 193(1–2), 181–198.

    Article  CAS  Google Scholar 

  • National Institute of Health, National Library of Medicine, Specialized Information Services. (2004). The household Products Database of the National Library of Medicine. [Web page] http://householdproducts.nlm.nih.gov/index.html.

  • Nelson, D. W., & Sommers, L. E. (1996). Total carbon, organic carbon, and organic matter. 961–1010. In D. L. Sparks (Ed.), Methods of soil analysis. Part 3. Chemical methods. Madison: Soil Science Society of America.

    Google Scholar 

  • NPD Group (1999). Graywater awareness & usage study. For the Soap and Detergent Association.

  • Oster, J. D., & Schroer, F. W. (1979). Infiltration as influenced by irrigation water quality. Soil Science Society of America Journal, 43(3), 444–447.

    Article  CAS  Google Scholar 

  • Ottoson, J., & Stenström, T. A. (2003). Fecal contamination of graywater and associated microbial risks. Water Research, 37(3), 645–655.

    Article  CAS  Google Scholar 

  • Pinto, U., Maheshwari, B. L., & Grewal, H. S. (2010). Effects of greywater irrigation on plant growth, water use and soil properties. Resources, Conservation and Recycling, 54(7), 429–435.

    Article  Google Scholar 

  • Qian, Y. L., & Mecham, B. (2005). Long-term effects of recycled wastewater irrigation on soil chemical properties on golf course fairways. Agronomy Journal, 97(3), 717–721.

    Article  CAS  Google Scholar 

  • Rhoades, J. D. (1996). Salinity: electrical conductivity and total dissolved solids. In D. L. Sparks (Ed.), Methods of soil analysis. Part 3. Chemical methods (pp. 417–435). Madison: Soil Science Society of America.

    Google Scholar 

  • Rose, J. B., Sun, G. S., Gerba, C. P., & Sinclair, N. A. (1991). Microbial quality and persistence of enteric pathogens in graywater from various household sources. Water Research, 25(1), 37–42.

    Article  Google Scholar 

  • Sanderson, H., Dyer, S. D., Price, B. B., Nielsen, A. M., van Compernolle, R., Selby, M., et al. (2006). Occurrence and weight-of-evidence risk assessment of alkyl sulfates, alkyl ethoxysulfates, and linear alkylbenzenesulfonates (LAS) in river water and sediments. The Science of the Total Environment, 368(2–3), 695–712.

    Article  CAS  Google Scholar 

  • Sanderson, H., Price, B. B., Dyer, S. D., DeCarvalho, A. J., Robaugh, D., Waite, S. W., et al. (2006). Occurrence and hazard screening of alkyl sulfates and alkyl ethoxysulfates in river sediments. The Science of the Total Environment, 367(1), 312–323.

    Article  CAS  Google Scholar 

  • Schweizer, H. P. (2001). Triclosan: a widely used biocide and its link to antibiotics. FEMS Microbiology Letters, 202(1), 1–7.

    Article  CAS  Google Scholar 

  • Shafran, A. W., Gross, A., Ronen, Z., Weisbrod, N., & Adar, E. (2005). Effects of surfactants originating from reuse of greywater on capillary rise in the soil. Water Science and Technology, 52(10–11), 157–166.

    CAS  Google Scholar 

  • Sumner, M. E., & Miller, W. P. (1996). Cation exchange capacity and exchange coefficients. In D. L. Sparks (Ed.), Methods of soil analysis. Part 3. Chemical methods (pp. 1201–1229). Madison: Soil Science Society of America.

    Google Scholar 

  • Tarchouna, L. G., Merdy, P., Raynaud, M., Pfeifer, H. R., & Lucas, Y. (2010). Effects of long-term irrigation with treated wastewater. Part I: evolution of soil physico-chemical properties. Applied Geochemistry, 25(11), 1703–1710.

    Article  Google Scholar 

  • Tate, R. L., III. (1978). Cultural and environmental factors affecting the longevity of Escherichia coli in histosols. Applied and Environmental Microbiology, 35, 925–929.

    Google Scholar 

  • Travis, M. J., Weisbrod, N., & Gross, A. (2008). Accumulation of oil and grease in soils irrigated with greywater and their potential role in soil water repellency. The Science of the Total Environment, 394(1), 68–74.

    Google Scholar 

  • Travis, M. J., Wiel-Shafran, A., Weisbrod, N., Adar, E., & Gross, A. (2010). Greywater reuse for irrigation: effect on soil properties. The Science of the Total Environment, 408(12), 2501–2508.

    Article  CAS  Google Scholar 

  • Trevors, J. T. (1984). Dehydrogenase activity in soil: a comparison between the INT and TTC assay. Soil Biology and Biochemistry, 16, 673–674.

    Article  CAS  Google Scholar 

  • U.S. Environmental Protection Agency (USEPA). (2009). Initial risk-bases prioritization of high production volume (HPV) chemicals: triclocarban (CASRN 101-20-2) (CA index name: urea, N-(4-chlorophenyl)-N′-(3,4-dichlorophenyl)-). Risk-based characterization document, April 2009.

  • US EPA (2002). Triclocarban Consortium. High production volume (HPV) chemical challenge program data availability and screening level assessment for triclocarban. Washington, DC: US Environment Protection Agency.

  • USDA (1954). Diagnosis and improvement of saline and alkali soils. U.S. Salinity Laboratory Staff. USDA handbook no. 60.

  • van Compernolle, R., McAvoy, D. C., Sherren, A., Wind, T., Cano, M. L., Belanger, S. E., et al. (2006). Predicting the sorption of fatty alcohols and alcohol ethoxylates to effluent and receiving water solids. Ecotoxicology and Environmental Safety, 64(1), 61–74.

    Article  Google Scholar 

  • Washington, S. P., Karlaftis, M. G., & Mannering, F. (2003). Statistical and econometric methods for transportation data analysis. New York: Chapman & Hall.

    Book  Google Scholar 

  • Wiel-Shafran, A., Ronen, Z., Weisbrod, N., Adar, E., & Gross, A. (2006). Potential changes in soil properties following irrigation with surfactant-rich greywater. Ecological Engineering, 26(4), 348–354.

    Article  Google Scholar 

  • Wu, C., Spongberg, A. L., & Witter, J. D. (2009). Adsorption and degradation of triclosan and triclocarban in soils and biosolids-amended soils. Journal of Agricultural and Food Chemistry, 57, 4900–4905.

    Article  CAS  Google Scholar 

  • Yazdankhah, S. P., Scheie, A. A., Hoiby, E. A., Lunestad, B. T., Heir, E., Fotland, F. O., Naterstad, K., et al. (2006). Triclosan and antimicrobial resistance in bacteria: an overview. Microbial Drug Resistance, 12(2), 83–90.

    Article  CAS  Google Scholar 

  • Ying, G. (2006). Fate, behavior and effects of surfactants and their degradation products in the environment. Environment International, 32(3), 417–431.

    Article  CAS  Google Scholar 

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Acknowledgments

This study was part of a project, which has been funded by Water and Environment Research Foundation project number 06-CTS-1CO.

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Correspondence to Sybil E. Sharvelle.

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Negahban-Azar, M., Sharvelle, S.E., Stromberger, M.E. et al. Fate of Graywater Constituents After Long-Term Application for Landscape Irrigation. Water Air Soil Pollut 223, 4733–4749 (2012). https://doi.org/10.1007/s11270-012-1229-y

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