Governing Peri-Urban Waste Water Used by Farmers: Implications for Design and Management

Chapter

Abstract

Worldwide, population is increasingly centralized in metropolitan areas. This has an impact on water systems and complex metropolitan watersheds emerge. Flows of varying water quality are generated and distributed among different users who develop new opportunities and coping mechanisms for dealing with marginal quality waters. In developing countries waste water management often fails to cope with the increasing number and volumes of flows. Financial and institutional limitations force waste water managers to discharge substantial amounts of untreated or partially treated waste water into surface waters. Consequently, use of polluted water is increasingly common in the downstream peri-urban agricultural areas. This, albeit productive, may lead to negative impacts on human health and environment, if management of this water is not rightly done. Mitigation of the problems requires rethinking of conventional ‘top-down’ waste water system design and management, in combination with expected down-stream use. In this chapter the applicability of water governance principles in design and operation of waste water systems with an effluent use component is investigated. Acknowledgement of the treatment potential of subsequent uses and the significance of use-based practices as opposed to zero-pollution design will certainly change design and treatment procedures. Inclusion of agriculture and nature as a treatment step and participation of users in decision-making are expected to optimize use of finances, infrastructure and personnel.

Keywords

Waste Water Crop Water Requirement Water Governance Treat Waste Water Waste Water System 
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.

References

  1. ASCE. (1998). Design of municipal wastewater treatment plants (4th ed., Vol. 1). Water Environment Federation manual of practice no.8 and American Society of Civil Engineers manual and report on engineering practice no. 76. Alexandria: WEF; Reston, VA: ASCE.Google Scholar
  2. Bahri, A. & Brissaud, F. (1996). Wastewater reuse in Tunisia: Assessing a national policy. Water Science Technology, 33(10-11), 87-94.CrossRefGoogle Scholar
  3. Biswas, A. K. (2006). Water management for major urban centres. International Journal of Water Resources Development, 22(2), 183-197.CrossRefGoogle Scholar
  4. Drechsel, P., Quansah, C., & Penning De Vries, F. (1999). Urban and peri-urban agriculture in West Africa. In O. B. Smith (Ed.), Urban agriculture in West-Africa - contribution to food security and urban sanitation. Ottawa, Canada: International Development Research Centre.Google Scholar
  5. Ducrot, R., Chagas de Carvalho, Y. M., Jacobi, P. R., Clavel, L., Barban, V., Madazio, V., et al. (2007). Building capacities to tackle the infrastructural and environmental crisis in São Paulo: Role-playing games for participatory modelling. In J. Butterworth, R. Ducrot, N. Faysse, & S. Janakarajan (Eds.), Peri-urban water conflicts. Supporting dialogue and negotiation. Delft, The Netherlands: IRC International Water and Sanitation Centre.Google Scholar
  6. Ensink, J. H. J., Simmons, R. W., & Van der Hoek, W. (2004). Wastewater use in Pakistan: The cases of Haroonabad and Faisalabad. In C. A. Scott, N. I. Faruqui, & L. Raschid-Sally (Eds.), Wastewater use in irrigated agriculture - coordinating the livelihood and environmental realities. UK: CAB International, International Water Management Institute and International Development Research Centre.Google Scholar
  7. Evers, J. G. (2006). Everybody’s business is nobody’s business. A study on the use of wastewater in (peri-) urban irrigated agriculture in Hanoi, Vietnam. Unpublished M.Sc. thesis, Irrigation and Water Engineering Group, Environmental Policy Group, Wageningen University, The Netherlands.Google Scholar
  8. Evers, J. G., Huibers, F. P., & Van Vliet, B. J. M. (2008). Institutional aspects of integrating irrigation into urban wastewater management: The case of Hanoi. Irrigation and Drainage, Online first, doi:  10.1002/ird.466.
  9. Faysse, N. (2006). Troubles on the way: An analysis of the challenges faced by multi-stakeholder platforms. Natural Resources Forum, 30, 219-229.CrossRefGoogle Scholar
  10. Hamilton, A. J., Stagnitti, F., Xiong, X., Kredil, S. L., Benke, K. K., & Maher, P. (2007). Wastewater irrigation: The state off play. Vadose Zone Journal, 6(4), 823-840.CrossRefGoogle Scholar
  11. Huibers, F. P. & Van Lier, J. B. (2005). Use of wastewater in agriculture: The water chain approach. Irrigation and Drainage, 54, S3-S9.CrossRefGoogle Scholar
  12. Hussain, I., Raschid, L., Hanjra, M. A., Marikar, F., & Van der Hoek, W. (2002). Wastewater use in agriculture: Review of impacts and methodological issues in valuing impacts. Working paper 37. Colombo, Sri Lanka: International Water Management Institute.Google Scholar
  13. Jiménez, B. (2005). Treatment technology and standards for agricultural wastewater reuse: A case study in Mexico. Irrigation and Drainage, 54, S23-S33.CrossRefGoogle Scholar
  14. Kahn, S. J. & Gerrard, L. E. (2006). Stakeholder communications for successful wastewater reuse operations. Desalinisation, 187, 191-202.CrossRefGoogle Scholar
  15. Kjaer, A. M. (Ed.) (2004). Introduction: The meaning of governance. Governance. Book in the Key Concepts series. New York: Wiley.Google Scholar
  16. Marcotullio, P. J. (2007). Urban water-related environmental transition in Southeast Asia. Sustainability Science, 2, 27-54.CrossRefGoogle Scholar
  17. Martijn, E. J. & Huibers, F. P. (2001). Use of treated wastewater in irrigated agriculture. A design framework. Wageningen: Coretech.Google Scholar
  18. Neubert, S. (2002). Wastewater reuse in agriculture - A challenge for administrative coordination and implementation. In S. Neubert, W. Scheumann, & A. van Edig (Eds.), Reforming institutions for sustainable water management. Reports and Working Papers 6. Bonn: German Development Institute.Google Scholar
  19. NRC. (1996). Use of reclaimed water and sludge in food crop production. National Research Council. Washington, DC: National Academy Press.Google Scholar
  20. Panebianco, S. & Pahl-Wostl, C. (2006). Modelling socio-technical transformations in wastewater treatment - A methodological proposal. Technovation, 26, 1090-1100.CrossRefGoogle Scholar
  21. Parkinson, J. & Tayler, K. (2003). Decentralized wastewater management in peri-urban areas in low-income countries. Environment and Urbanisation, 15, 75-91.Google Scholar
  22. Rafter, G. W. (1897). Sewage irrigation. United States Geological Survey (100 pp.). Water Supply and Irrigation Papers No. 3.Google Scholar
  23. Ratner, B. D. & Gutiérrez, A. R. (2004). Reasserting community: The social challenge of wastewater management in Panajachel, Guatamala. Human Organization, 63(1), 47-56.Google Scholar
  24. Redwood, M. (2009). Agriculture in urban planning. Generating livelihoods and food security. IDRC-Earthscan: London.Google Scholar
  25. Robbins, P. T. (2007). The reflexive engineer: Perceptions of integrated development. Journal of International Development, 19, 99-110.CrossRefGoogle Scholar
  26. Scott, C. A., Faruqui, N. I., & Raschid-Sally, L. (2004). Wastewater use in irrigated agriculture: Management challenges in developing countries. In C. A. Scott, N. I. Faruqui, & L. Raschid-Sally (Eds.). Wastewater use in irrigated agriculture - confronting the livelihood and environmental realities (pp. 1-10). UK: CAB International, International Water Management Institute and International Development Research Centre.CrossRefGoogle Scholar
  27. Smit, J. & Nasr, J. (1992). Urban agriculture for sustainable cities: Using wastes and idle land and water bodies as resources. Environment and Urbanization, 4(2), 141-152.CrossRefGoogle Scholar
  28. Tandraatmadja, G., Bum, S., McLaughlin, M., & Biswas, T. (2005). Rethinking urban water systems - revisiting concepts in urban wastewater collection and treatment to ensure infrastructure sustainability. Water Science and Technology: Water Supply, 5(2), 145-154.Google Scholar
  29. Toze, S. (2005). Reuse of effluent water - Benefits and risks. Agricultural Water Management, 80, 147-159.CrossRefGoogle Scholar
  30. Van Lier, J. B., & Huibers, F. P. (2007). The reversed water chain approach: Optimizing agricultural use of urban wastewater. 6th IWA Specialist Conference on Wastewater Reclamation and Reuse for Sustainability in Antwerp, Belgium, October 9-12, 2007.Google Scholar
  31. Van Loohuizen, K. (2006). Afvalwaterzuivering in Nederland: Van beerput tot oxidatiesloot. RWS-RIZA, The Netherlands: Ministerie van Verkeer en Waterstaat.Google Scholar
  32. Varis, O., Biswas, A. K., Tortajada, C., & Lundqvist, J. (2006). Megacities and water management. International Journal of Water Resources Development, 22(2), 377-394.CrossRefGoogle Scholar
  33. Warner, J. (2006). More sustainable participation? Multi-stakeholder platforms for integrated catchment management. International Journal of Water Resources Development, 22(1), 15-35.CrossRefGoogle Scholar
  34. Weber, B., Cornel, P., & Wagner, M. (2007). Semi-centralised supply and treatment systems for (fast growing) urban areas. Water Science and Technology, 55(1-2), 349-356.CrossRefGoogle Scholar
  35. WHO. (2006). Wastewater use in agriculture. WHO guidelines for the safe use of wastewater, excreta and greywater (Vol. 2). Geneva, Switzerland: WHO.Google Scholar

Copyright information

© Springer Science+Business Media B.V. 2010

Authors and Affiliations

  1. 1.Irrigation and Water Engineering GroupWageningen UniversityWageningenThe Netherlands

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