Use of Treated Municipal Wastewater on Artichoke Crop
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Use of Treated Municipal Wastewater on Artichoke Crop

Authors: Disciglio G., Gatta G., Libutti A., Tarantino A., Frabboni L., Tarantino E.

Abstract:

Results of a field study carried out at Trinitapoli (Puglia region, southern Italy) on the irrigation of an artichoke crop with three types of water (secondary-treated wastewater, SW; tertiary-treated wastewater, TW; and freshwater, FW) are reported. Physical, chemical and microbiological analyses were performed on the irrigation water, and on soil and yield samples.

The levels of most of the chemical parameters, such as electrical conductivity, total suspended solids, Na+, Ca2+, Mg+2, K+, sodium adsorption ratio, chemical oxygen demand, biological oxygen demand over 5 days, NO3 –N, total N, CO32, HCO3, phenols and chlorides of the applied irrigation water were significantly higher in SW compared to GW and TW. No differences were found for Mg2+, PO4-P, K+ only between SW and TW. Although the chemical parameters of the three irrigation water sources were different, few effects on the soil were observed. Even though monitoring of Escherichia coli showed high SW levels, which were above the limits allowed under Italian law (DM 152/2006), contamination of the soil and the marketable yield were never observed. Moreover, no Salmonella spp. were detected in these irrigation waters; consequently, they were absent in the plants. Finally, the data on the quantitative-qualitative parameters of the artichoke yield with the various treatments show no significant differences between the three irrigation water sources. Therefore, if adequately treated, municipal wastewater can be used for irrigation and represents a sound alternative to conventional water resources.

Keywords: Artichoke, soil chemical characteristics, fecal indicators, treated municipal wastewater, water recycling.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1092267

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References:


[1] S. Barbagallo, G.L. Cirelli, S. Indelicato, "Wastewater reuse in Italy”, Water Science and Technology, no 43, pp.45-50, 2001.
[2] R.K.X. Bastos, D.D. Mara, "The bacterial quality of salad crops drip and furrow irrigated with waste stabilization pond effluent: an evaluation of the WHO guidelines”, Water Sci. Technol., no 12, pp. 425-430, 1995.
[3] B. El Hamouri, A Handouf, M. Mekrane, M. Touzani, A. Khana, K. Khallayoune, T, Benchokroun, "Use of wastewater for crop production under arid and saline conditions: yield and hygienic quality of the crop and soil contaminations”, Water Sci. Technol., vol. 33, no 10-11, pp. 335-344, 1994.
[4] A. Lopez, A. Pollice, A. Lonigro, S. Masi, A.M. Palese, G.L. Cirelli, A. Toscano, R. Pasino, "Agricultural wastewater reuse in southern Italy”, Desalination, vol. 187, pp. 323-334, 2006.
[5] A. Lopez, A. Pollice, G. Laera, A. Lonigro, P. Rubino, "Membrane filtration of municipal wastewater effluents for implementing agricultural reuse in southern Italy”, Water Science &Technology, no 625, pp. 1121-1128, 2010.
[6] M.L. Ndiaye, S. Niang, H.R. Pfeifer, R. Peduzzi, M. Tonolia, Y Dieng, "Effect of irrigation water and processing on the microbial quality of lettuces produced and sold on markets in Dakar (Senegal)”. Irrigation Drainage, no 60, pp. 509-517, 2011.
[7] S.R. Petterson, N.J Ashbolt, A. Snarma, "Microbial risks from wastewater irrigation of salad crops: a screening-level risk assessment”, Water Environment Research, no 73, pp. 667-672, 2011.
[8] A. Pollice, A. Lopez, G. Laera, P. Rubino, A. Lonigro, "Tertiary filtered municipal wastewater as alternative water source in agriculture: a field investigation in Southern Italy”, Science of the Total Environmental , no 324, pp. 201-210, 2004.
[9] S. Toze, "Microbial pathogens in wastewater”. Literature review for urban water system multi-divisional research program CSIRO LAND and WATER Technical Report, no 1/97, 1977
[10] S. Toze, "PCR and the detection of microbial pathogens in water and wastewater”, Water Research, vol. 33, no 17, pp. 3545-3556, 1999.
[11] T. Asano, A.D. Levine, "Wastewater reclamation, recycling and reuse: an introduction”, in: Wastewater Reclamation and Reuse, vol. 10, T. Asano Ed., CRC Press. Boca Raton, Fla, pp. 1-56, 1998.
[12] A. Lonigro, M. Catalano, P. Rubino, "Impiego in agricoltura di acque reflue urbane depurate nel rispetto della sostenibilità ambientale”, Ital. J. Agron/Riv. Agr., no 2, pp. 217-259, 2007.
[13] P. Rubino, A. Lonigro, "Municipal treated wastewater irrigation: Microbiological risk evaluation”, Italian J. Agron., no 2, pp. 119-124, 2008.
[14] M. Solimando, "Acque reflue per i campi, una pratica da incrementare”. Agricoltura, pp. 87-89, 2008.
[15] www.consorzio.fg.it. Agroclimatic data: 2012-2013.
[16] P. Soldo, G. Tucci, "Riutilizzo in agricoltura delle acque reflue urbane depurate del Comune di Trinitapoli”, in Acque reflue della Capitanata. La sperimentazione di Trinitapoli (a cura di G. Arcangelo), pp. 67-95, 2005.
[17] R.G Allen, L.S., Pereira, D. Raes, M. Smith, "Crop Evapotranspiration Guidelines for Computing Crop Water Requirements”. In Irrigation and Drainage Paper, no 56, Food and Agriculture Organization of the United Nations (FAO), Rome, 1998.
[18] E. Tarantino, A. Caliandro, "Studio sulla distribuzione dei consumi idrici durante il ciclo colturale del carciofo nel Metapontino”, Atti del 3° Congresso Internazionale di Studi sul Carciofo, pp. 505-523, Bari, 1981.
[19] APAT, IRSA-CNR, "Analytical methods for water”, and guidelines, 2003. Available from: http://www.irsa.cnr.it.
[20] APHA, AWWA, WEF, "Standard Methods for the Examination of Water and Wastewater”, XXI ed. American Public Health Association, Washington, D.C., 2005.
[21] L.A. Richards, "Diagnosis and Improvement of Saline and Alkali Soils”. USDA Agriculture Handbook, no 60, Washington D.C., 1954.
[22] S.R. Olsen, C.V. Cole., F.S. Watanabe, L.A Dean, "Estimation of available phosphorus in soil by extraction with sodium bicarbonate”. USDA Circular 939, Washington, D.C., pp. 1-19, 1954.
[23] A. Walkley, I.A. Black, "An examination of the Degtjareff method for determining organic carbon in soils: Effect of variations in digestion conditions and of inorganic soil constituents”, Soil Sci., no 63, pp. 251-263, 1934.
[24] D.R Keeney, D.W. Nelson, "Nitrogen inorganic forms”. Methods of soil analysis. Part. 2 2nd ed. Agr. Monogr. 9 ASA and SSA. Madison, USA, pp. 643-698, 1982.
[25] P. Tallon, B. Magagna, C. Lofranco, K.T. Leung, "Microbial indicators of faecal contamination in water: a current perspective”, Water Air Soil Pollut., no 166, pp. 139-166, 2005.
[26] M. Salgot, E. Huertas, S. Weber, W Dott, J. Hollender, "Wastewater reuse and risk. Definition of key objectives”, Desalinitation, no 187, pp. 29-40, 2006.
[27] A. Pourcher, F. Picard-Bonnaud, V. Ferré, A. Gosinska, V. Stan, G. Moguedet,. "Survival of faecal indicators and enteroviruses in soil land-spreading of municipal sewage sludge”, Appl. Soil Ecol., no 35, pp. 473-479. 2007.
[28] JMP, Statistical software (Version 8.1). SAS Institute. Inc, Cary, North Caroline 27513, 2008.
[29] Decree of Ministry of the Environmental, No 152, April 3, 2006. Gazzetta Ufficiale n. 88, Italian Guidelines for water reuse, Rome, April 14, 2006.
[30] A.M Palese, V. Pasquale, G. Celano, G. Figliolo, S. Masi, C. Xiloyannis, "Irrigation of olive groves in Southern Italy treated municipal wastewater: effects on microbiological quality of soil and fruits. Agriculture”, Ecosystems and Environment, no 129, pp. 43-51, 2009.
[31] G.A. Vivaldi, S. Camposeo, P. Rubino, A. Lonigro,. "Microbial impact of different types of municipal wastewaters used to irrigate nectarines in Southern Italy”, Agriculture, Ecosystems and Environment, no 181, pp. 50-57, 2013.
[32] J.L Mawdsley, R.D. Bardgett, R.J Merry, B.F. Pan, M.K. Theodorou, "Pathogens in livestock waste, their potential for movement through soil and environmental pollution”. Applied Soil and Ecology, no 2, pp. 1-5, 1995.
[33] J.B. Rose, P.R. Epstein, EK Lipp, B.H. Sherman, S.M. Bernard, J.A. Pat, "Climate variability and change in the United States: potential impacts on water and foodborne diseases caused by microbiological agents”; Environmental Health Perspectives, vol. 2, no 109, pp. 211-221, 2001.