Economic Analysis and Feasibility of Rainwater Harvesting Systems in Urban and Peri-Urban Environments: A Review of the Global Situation with a Special Focus on Australia and Kenya
Abstract
:1. Introduction
2. Economic Analysis
2.1. Life Cycle Cost Analysis
2.2. Water Price, Interest, Inflation, and Period of Analysis
2.3. Costs
2.4. Benefits
3. Modeling and Design
3.1. The Water Demand Profile
3.2. Quantity of Rainwater Harvested
3.3. Design Methods
3.4. Real-Life RWH System Studies
- contribution of water efficient devices;
- the effect of imposed water restrictions;
- the effect of other water conservation programs; and
- Information such as lawn/garden size, roof size, and household size.
4. Feasibility of RWH Systems
4.1. Implementation in Developing Countries
4.2. Individuals, NGOs, and Policy Makers
5. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
- Budge, E.A.W. The Queen of Sheba and Her Only Son Menyelek (I): Being the “Book of the Glory of Kings” (Kebra Nagast); Routledge: London, UK, 1932. [Google Scholar]
- Cowan, M.K. Some ancient water systems and patterns of land degradation. 2014. Available online: http://ancient-water-systems.com/wp-content/uploads/2014/06/AWS-4-June-2014-reviewed.pdf (accessed on 31 March 2016).
- Mecometer. Average Yearly Precipitation. Available online: http://mecometer.com (accessed on 31 March 2016).
- Kenya Facts and Figures; Kenya National Bureau of Statistics: Nairobi, Kenya, 2015.
- Australia Bureau of Statistics. 1345.0-Key Economic Indicators. Available online: http://www.abs.gov.au/AUSSTATS/[email protected]/mf/1345.0#NationalAccounts (accessed on 31 March 2016).
- Economic Analysis. Available online: http://www.businessdictionary.com/definition/economic-analysis.html (accessed on 31 March 2016).
- Scarborough, H.; Sahin, O.; Porter, M.; Stewart, R. Long-term water supply planning in an Australian coastal city: Dams or desalination? Desalination 2015, 358, 61–68. [Google Scholar] [CrossRef]
- Bichai, F.; Ryan, H.; Fitzgerald, C.; Williams, K.; Abdelmoteleb, A.; Brotchie, R.; Komatsu, R. Understanding the role of alternative water supply in an urban water security strategy: An analytical framework for decision-making. Urban Water J. 2015, 12, 175–189. [Google Scholar] [CrossRef]
- Gato-Trinidad, S.; Jayasuriya, N.; Roberts, P. Calculating potential water savings of efficient water using appliances. In Hydrology, Hydraulics and Water Resources in an Uncertain Environment, 2010, Proceedings of the International Conference on Water Resources and Environment Research, Quebec City, QC, Canada, 5–7 July 2010; pp. 1–7.
- Devkota, J.; Schlachter, H.; Anand, C.; Phillips, R.; Apul, D. Development and application of EEAST: A life cycle based model for use of harvested rainwater and composting toilets in buildings. J. Environ. Manag. 2013, 130, 397–404. [Google Scholar] [CrossRef] [PubMed]
- Harvey, P.A.; Reed, R.A. Sustainable rural water supply in Africa: Rhetoric and reality. In Proceedings of the 29th WEDC Conference, Abuja, Nigeria, 22–26 September 2003.
- Parry-Jones, S.; Reed, R.; Skinner, B. Sustainable handpump projects in Africa. A Literature Review. In Water Engineering and Development Center (WEDC); Loughborough University: Loughborough, UK, 2001. [Google Scholar]
- Barthwal, S.; Chandola-Barthwal, S.; Goyal, H.; Nirmani, B.; Awasthi, B. Socio-economic acceptance of rooftop rainwater harvesting-A case study. Urban Water J. 2014, 11, 231–239. [Google Scholar] [CrossRef]
- Kim, H.W. Equitable Cost Allocation for Rainwater Harvesting System: Framework Analysis: Case of Austin, TX; The University of Texas at Austin: Austin, TX, USA, May 2011. [Google Scholar]
- Australian Government Department of Infastructure and regional Development; State of Australian Cities: Canberra, Australia, 2013.
- Australian Government Department of Infastructure and regional Development; State of Australian Cities: Canberra, Australia, 2015.
- The World FactBook. CIA. Available online: https://www.cia.gov/library/publications/the-world-factbook/fields/2212.html (accessed on 31 March 2016).
- McGranahan, G.; Satterthwaite, D. Urbanisation Concepts and Trends; IIED Working Paper; IIED: London, UK, 2014. [Google Scholar]
- Kumar, M.D. Roof water harvesting for domestic water security: Who gains and who loses? Water Int. 2004, 29, 43–53. [Google Scholar] [CrossRef]
- Maheshwari, B.; Connellan, G. Irrigation in peri-urban environments: Coping with challenges of urbanisation in Australia. Irrig. Aust. Off. J. Irrig. Aust. 2015, 31, 4–5. [Google Scholar]
- An Interactive Data Visual. International Institute for Environment and Development. Available online: http://www.iied.org/cities-interactive-data-visual (accessed on 31 March 2016).
- Urbanization. Encyclopædia Britannica. Available online: http://www.search.eb.com/topic/urbanization (accessed on 31 March 2016).
- What are Peri-Urban Areas. La Trobe University. Available online: http://www.latrobe.edu.au/periurban/about/focus (accessed on 31 March 2016).
- Hajani, E.; Rahman, A. Reliability and cost analysis of a rainwater harvesting system in peri-urban regions of greater Sydney, Australia. Water 2014, 6, 945–960. [Google Scholar] [CrossRef]
- Hajani, E.; Rahman, A.; Al-Amin, M.; Rahman, A. Reliability analysis for rainwater harvesting system in peri-urban regions of greater Sydney, Australia. In Proceedings of the 20th International Congress on Modelling and Simulation, Modelling and Simulation Society of Australia and New Zealand Adelaide, Adelaide Convention Centre in Adelaide, South Australia, 1–6 December 2013.
- Oard, M.J. The Frozen Record: Examining the Ice Core History of the Greenland and Antarctic Ice Sheets. Institute for Creation Research: Santee, CA, USA.
- Hebert, J. Weather Channel Founder Blasts “Climate Change”. Available online: http://www.icr.org/article/8382 (accessed on 31 March 2016).
- Beatty, R.; McLindin, M. Rainwater harvesting and urban design in Australia. Proc. Water Environ. Fed. 2012, 2012, 6435–6447. [Google Scholar] [CrossRef]
- Gardner, T.; Begbie, D.; Sharma, A.K.; Tjandraatmadja, G. Rainwater tanks in Australia: Their social/political context, a research overview, policy implications, future research needs, and application of findings to other countries. In Rainwater Tank Systems for Urban Water Supply: Design, Yield, Energy, Health Risks, Economics and Social Perceptions; IWA Publishing: London, UK, 2015; p. 319. [Google Scholar]
- Burton, A.; Bambrick, H.; Friel, S. If you don’t know how can you plan? Considering the health impacts of climate change in urban planning in Australia. Urban Clim. 2015, 12, 104–118. [Google Scholar]
- Beatty, R.J.; Coombes, P.J.; Kozorovski, P. Integrated Water Resources Planning Efforts in Australia Need to Grow Up. In Proceedings of the H2009: 32nd Hydrology and Water Resources Symposium, Newcastle, UK, 30 November–3 December 2009.
- Tularam, G.A.; Murali, K.K. Water security problems in asia and longer term implications for Australia. In Sustainable Water Use and Management; Springer: Cham, Switzerland, 2015; pp. 119–149. [Google Scholar]
- Europe, U.N.E.C.F. The Water Energy and Food Security Resource Platform. Available online: http://www.water-energy-food.org/ (accessed on 24 February 2016).
- Kenya: Who Statistical Profile; World Health Organization: Geneva, Switzerland, 2015.
- World Health Organization. Progress on Drinking Water and Sanitation-2014 Update; World Health Organization: Geneva, Switzerland, 2014. [Google Scholar]
- Un-Water Global Analysis and Assessment of Sanitation and Drinking-Water (Glass) 2014 Report: Investing in Water and Sanitation: Increasing Access, Reducing Inequalities; World Health Organization: Geneva, Switzerland, 2014.
- Millenium Project, U.N. Millennium project. Available online: http://www.unmillenniumproject.org/goals/ (accessed on 31 March 2016).
- Dickson, E.O.; Otor, S.C.; Afullo, A. Effect of household water-user preference on the sustainable supply of safe water in obunga slums of kisumu municipality, Kenya. Int. J. Innov. Res. Dev. 2015, 4, 313–321. [Google Scholar]
- Kahariri, M.M. Assessment of the challenges of water supply and sanitation in uncontrolled residential developments of huruma estate. Environmental Planning and Management of Kenyatta University: Nairobi, Kenya, 2014. [Google Scholar]
- Balana, B.B.; Catacutan, D.; Mäkelä, M. Assessing the willingness to pay for reliable domestic water supply via catchment management: Results from a contingent valuation survey in Nairobi city, Kenya. J. Environ. Plan. Manag. 2013, 56, 1511–1531. [Google Scholar] [CrossRef]
- Thorn, J.; Thornton, T.F.; Helfgott, A. Autonomous adaptation to global environmental change in peri-urban settlements: Evidence of a growing culture of innovation and revitalisation in mathare valley slums, Nairobi. Glob. Environ. Chang. 2015, 31, 121–131. [Google Scholar] [CrossRef]
- Liddle, E.S.; Mager, S.M.; Nel, E.L. The importance of community-based informal water supply systems in the developing world and the need for formal sector support. Geogr. J. 2014, 182, 85–96. [Google Scholar] [CrossRef]
- Standards Australia Online 1999 Australian/New Zealand Standard™. As/nzs 4536:1999 Life Cycle Costing-An Application Guide. Reconfirmed 2014. Avaliable online: https://www.saiglobal.com/online/ (accessed on 23 January 2016).
- Fuller, S.K.; Petersen, S.R. Nist Handbook 135: Life-Cycle Costing Manual for the Federal Energy Management Program; DEPARTMENT OF COMMERCE Technology Administration National Institute of Standards and Technology: Gaithersburg, MD, USA, 1995. [Google Scholar]
- Morales-Pinzón, T.; Lurueña, R.; Gabarrell, X.; Gasol, C.M.; Rieradevall, J. Financial and environmental modelling of water hardness-Implications for utilising harvested rainwater in washing machines. Sci. Total Environ. 2014, 470, 1257–1271. [Google Scholar] [CrossRef] [PubMed]
- Matos, C.; Bentes, I.; Santos, C.; Imteaz, M.; Pereira, S. Economic analysis of a rainwater harvesting system in a commercial building. Water Resour. Manag. 2015, 29, 3971–3986. [Google Scholar] [CrossRef]
- Khastagir, A.; Jayasuriya, N. Investment evaluation of rainwater tanks. Water Resour. Manag. 2011, 25, 3769–3784. [Google Scholar] [CrossRef]
- Hall, M.R. Review of rainwater tank cost-effectiveness in South East Queensland. In Urban Water Security Research Alliance Technical Report; The Urban Water Security Research Alliance: Brisbane, QLD, Australia, 2013. [Google Scholar]
- Zhang, F.; Polyakov, M.; Fogarty, J.; Pannell, D.J. The capitalized value of rainwater tanks in the property market of perth, Australia. J. Hydrol. 2015, 522, 317–325. [Google Scholar] [CrossRef]
- BusinessDictionary. Financial Indicators. Available online: http://www.businessdictionary.com (accessed on 31 March 2016).
- Investinganswers. Financial-Dictionary. Available online: http://www.investinganswers.com/financial-dictionary (accessed on 31 March 2016).
- Mitchell, C.; Rahman, A. Life cycle cost analysis of rainwater tank in a multistorey residential building in Sydney. In Proceedings of 30th Hydrology & Water Resources Symposium: Past, Present & Future, Launceston, Australia, 4–7 December 2006; pp. 279–284.
- Gato-Trinidad, S.; Gan, K. Rainwater tank rebate scheme in greater melbourne, Australia. J. Water Supply Res. Technol. 2014, 63, 601–610. [Google Scholar] [CrossRef]
- Maheepala, S.; Coultas, E.; Neumann, L.; Sharma, A. Quantification of Regional Scale Water Quantity and Quality Implications of Rainwater Tanks in South East Queensland; Urban Water Security Research Alliance Technical Report; The Urban Water Security Research Alliance: Brisbane, QLD, Australia, 2013. [Google Scholar]
- Gathenya, J.M.; Kinyari, P.K.; Home, P.G. Domestic roof rainwater harvesting tank sizing calculator and nomograph. J. Agric. Sci. Technol. 2010, 12, 115–125. [Google Scholar]
- Essendi, S.M. Enhancing Household Water Use Efficiency and Domestic Rainwater Harvesting Potential in Nairobi County. Master’s Thesis, University of Nairobi, Nairobi, Kenya, 2014. [Google Scholar]
- Roebuck, R.M.; Oltean-Dumbrava, C.; Tait, S. Can simplified design methods for domestic rainwater harvesting systems produce realistic water-saving and financial predictions? Water Environ. J. 2012, 26, 352–360. [Google Scholar] [CrossRef]
- Abdulla, F.A.; Al-Shareef, A. Roof rainwater harvesting systems for household water supply in Jordan. Desalination 2009, 243, 195–207. [Google Scholar] [CrossRef]
- Roebuck, R.; Oltean-Dumbrava, C.; Tait, S. Whole life cost performance of domestic rainwater harvesting systems in the United Kingdom. Water Environ. J. 2011, 25, 355–365. [Google Scholar] [CrossRef]
- Rahman, A.; Dbais, J.; Mitchell, C.; Ronaldson, P.; Shrestha, S. Study of rainwater tanks as a source of alternative water supply in a multistory residential building in Sydney, Australia. In Proceedings of the World Environmental and Water Resources Congress, Tampa, FL, USA, 15–19 May 2007; pp. 1–10.
- Ishida, C.; Grantham, R.; Stober, T.; Willobee, M.; Quigley, M.; Reidy, P. A regional cost-benefit analysis of rainwater harvesting: Sustainable economics to justify green technologies. Proc. Water Environ. Fed. 2011, 2011, 454–461. [Google Scholar] [CrossRef]
- Morales-Pinzón, T.; Rieradevall, J.; Gasol, C.M.; Gabarrell, X. Modelling for economic cost and environmental analysis of rainwater harvesting systems. J. Clean. Prod. 2015, 87, 613–626. [Google Scholar] [CrossRef]
- The Cost-Effectiveness of Rainwater Tanks in Urban Australia. Australian Government National Water Commission Home page. Available online: http://archive.nwc.gov.au/library/waterlines/1 (accessed on 31 March 2016).
- Domènech, L.; Saurí, D. A comparative appraisal of the use of rainwater harvesting in single and multi-family buildings of the metropolitan area of barcelona (Spain): Social experience, drinking water savings and economic costs. J. Clean. Prod. 2011, 19, 598–608. [Google Scholar] [CrossRef]
- Essential Services Commission. Metropolitan Melbourne Water Price Review 2008–2009-Final Decision, June; Essential Services Commission: Melbourne, Australia, 2009. [Google Scholar]
- Fund, I.M. World Economic Outlook April 2010; International Monetary Fund: Washington, WA, USA, 2010. [Google Scholar]
- Sydney Water Proposes Lower Bills in New Pricing Proposal. Available online: http://sydneywaternews.com.au/pricing-regulatory/sydney-water-proposes-lower-bills-in-new-pricing-proposal/ (accessed on 31 March 2016).
- Kenya National Bureau of statistics. Economic survey. Available online: http://www.knbs.or.ke/ (accessed on 31 March 2016).
- Melville-Shreeve, P.; Ward, S.; Butler, D. A preliminary sustainability assessment of innovative rainwater harvesting for residential properties in the UK. J. Southeast Univ. 2014, 30, 135–142. [Google Scholar]
- Preece, M. Discussion of Costs Involved in Installing Rainwater Tank, Associated Plumbing; Mitchell, C., Ed.; Matthew Preece Hydraulic Engineer, Hughes Trueman PTY Ltd.: Sydney, Australia, 2006. [Google Scholar]
- Central European University; SPoD Technical Advisory Group-Kenya. Sustainable Building Policies in Developing Countries (Spod) Local Situation Review-Kenya; United Nations Environment Programme (UNEP): Budapest, Hungary, 2013. [Google Scholar]
- Moglia, M.; Walton, A.; Gardner, J.; Tjandraatmadja, G. Management and operational needs for urban rainwater tanks. In Rainwater Tank Systems for Urban Water Supply: Design, Yield, Energy, Health Risks, Economics and Social Perceptions; IWA Publishing: London, UK, 2015; pp. 151–179. [Google Scholar]
- Vieira, A.S.; Beal, C.D.; Ghisi, E.; Stewart, R.A. Energy intensity of rainwater harvesting systems: A review. Renew. Sustain. Energy Rev. 2014, 34, 225–242. [Google Scholar] [CrossRef]
- Ward, S.; Butler, D.; Memon, F.A. Benchmarking energy consumption and CO2 emissions from rainwater-harvesting systems: An improved method by proxy. Water Environ. J. 2012, 26, 184–190. [Google Scholar] [CrossRef]
- Chao, P.R.; Umapathi, S.; Saman, W. Water consumption characteristics at a sustainable residential development with rainwater-sourced hot water supply. J. Clean. Prod. 2015, 109, 190–202. [Google Scholar] [CrossRef]
- Willis, R.M.; Stewart, R.A.; Giurco, D.P.; Talebpour, M.R.; Mousavinejad, A. End use water consumption in households: Impact of socio-demographic factors and efficient devices. J. Clean. Prod. 2013, 60, 107–115. [Google Scholar] [CrossRef]
- Australia Standards As 3498–2009 Authorization Requirements for Plumbing Productsewater Heaters and Hot Water Storage Tanks; Committee EL–020, Electric Water-heating Appliances: Sydney, Australia, 2009.
- Hedberg, Y.S.; Hedberg, J.F.; Herting, G.; Goidanich, S.; Odnevall Wallinder, I. Critical review: Copper runoff from outdoor copper surfaces at atmospheric conditions. Environ. Sci. Technol. 2014, 48, 1372–1381. [Google Scholar] [CrossRef] [PubMed]
- EnHealth. In Guidance on Use of Rainwater Tanks; Department of Health and Ageing: Canberra, Australia, 2010.
- Coombes, P.J.; Kuczera, G. A sensitivity analysis of an investment model used to determine the economic benefits of rainwater tanks. In Proceedings of the 28th International Hydrology and Water Resources Symposium, Wollongong, NSW, Australia, 10–13 November 2003; Institution of Engineers, Australia: Canberra, Australia, 2003. [Google Scholar]
- White, I.W. Decentralised Environmental Technology Adoption: The Household Experience with Rainwater Harvesting; Griffith University: Brisbane, Australia, 2009. [Google Scholar]
- Marsden, J.; Pickering, P. Securing Australia’s Water Supplies. Opportunities and Impediments; A Discussion Paper Prepared for the Department of the Prime Minister and Cabinet by Marsden Jacob Associates, Melbourne; Marsden Jacob Associates: Victoria, Australia, 2006. [Google Scholar]
- Gwenzi, W.; Nyamadzawo, G. Hydrological impacts of urbanization and urban roof water harvesting in water-limited catchments: A review. Environ. Process. 2014, 1, 573–593. [Google Scholar] [CrossRef]
- DeBusk, K.; Hunt, W. Rainwater harvesting: A comprehensive review of literature. In The Department of Biological and Agricultural Engineering; North Carolina State University: Raleigh, NC, USA, 2014. [Google Scholar]
- Morgan, P. Toilets that Make Compost: Low-Cost, Sanitary Toilets that Produce Valuable Compost for Crops in an African Context; Stockholm Environment Institute: Stockholm, Sweden, 2007. [Google Scholar]
- Helmreich, B.; Horn, H. Opportunities in rainwater harvesting. Desalination 2009, 248, 118–124. [Google Scholar] [CrossRef]
- Kahinda, J.-M.M.; Taigbenu, A.E.; Boroto, J.R. Domestic rainwater harvesting to improve water supply in rural South Africa. Phys. Chem. Earth Parts A/B/C 2007, 32, 1050–1057. [Google Scholar] [CrossRef]
- Wachira, M.I. Assessment of Impact of Rainwater Harvesting in Kieni EAST-A Case Study of Burguret Dam; University of Nairobi: Nairobi, Kenya, 2015. [Google Scholar]
- Ngigi, S.N.; Savenije, H.H.; Rockström, J.; Gachene, C.K. Hydro-economic evaluation of rainwater harvesting and management technologies: Farmers’ investment options and risks in semi-arid laikipia district of Kenya. Phys. Chem. Earth Parts A/B/C 2005, 30, 772–782. [Google Scholar] [CrossRef]
- Sydney Water. Water Restrictions. Available online: http://www.sydneywater.com.au/SW/water-the-environment/what-we-re-doing/water-restrictions/ (accessed on 31 March 2016).
- An, K.J.; Lam, Y.F.; Hao, S.; Morakinyo, T.E.; Furumai, H. Multi-purpose rainwater harvesting for water resource recovery and the cooling effect. Water Res. 2015, 86, 116–121. [Google Scholar] [CrossRef] [PubMed]
- Coombes, P.; Barry, M. The impact of spatial and temporal averages on prediction of water security using systems analysis-towards understanding the true potential of wsud. In WSUD 2012: Water Sensitve Urban Design; Proceedings of the 7th International Conference on Water Sensitive Urban Design, Melbourne, Australia, 21–23 February 2012; p. 618.
- World Water Assessment Programme. The United Nations World Water Development Report 3: Water in a Changing World; UNESCO: Paris, France, 2009. [Google Scholar]
- Technical Report No. 18 small Community Water Supply; International Reference Centre: The Hague, The Netherlands, 1983.
- Wanyonyi, J.M. Rainwater Harvesting Possibilities and Challenges in Kenya; Kenya Rainwater Association: Nairobi, Kenya, 2000. [Google Scholar]
- Wafula, P.; Ngigi, T.; Dave, S.; Khan, A.; Kamble, Y.; Dabholkar, V.; Damle, S.; Dayana, P.M.; Adline, S.D.; Abdullah, M. Gis based analysis of supply and forecasting piped water demand in Nairobi. Int. J. Eng. Sci. Invent. 2015, 4, 1–11. [Google Scholar]
- Ryan, A.M.; Spash, C.L.; Measham, T.G. Socio-economic and psychological predictors of domestic greywater and rainwater collection: Evidence from australia. J. Hydrol. 2009, 379, 164–171. [Google Scholar] [CrossRef]
- Caroma. High Efficiency Dual Flush Toilet. Available online: http://www.caromausa.com/products/index/cu_products/39.php (accessed on 31 March 2016).
- Ngumbah, P. Greywater Reuse Technology for Urban and Periurban Residences; University of Nairobi: Nairobi, Kenya, 2014. [Google Scholar]
- Mayer, P.; DeOreo, W.; Towler, E.; Martien, L.; Lewis, D. Tampa Water Department Residential Water Conservation Study: The Impacts of High Efficiency Plumbing Fixture Retrofits in Single-Family Homes; Aquacraft, Inc. Water Engineering and Management: Boulder, Colorado, CO, USA, 2004. [Google Scholar]
- Inman, D.; Jeffrey, P. A review of residential water conservation tool performance and influences on implementation effectiveness. Urban Water J. 2006, 3, 127–143. [Google Scholar] [CrossRef] [Green Version]
- Incorporated, C.M. Clivus Multrum Composting Toilets. Available online: http://www.clivusmultrum.com/science-technology.php (accessed on 13 October 2015).
- Merrey, D.J.; Langan, S. Review paper on ‘garden kits’ in Africa: Lessons learned and the potential of improved water management. In IWMI Working Paper; International Water Management Institute: Colombo, Sri Lanka, 2014. [Google Scholar]
- Braun, H.M.H. Agro-Climatic Zone Map of Kenya. Appendix 2 to Report No. E1. Available online: http://eusoils.jrc.ec.europa.eu/esdb_archive/eudasm/africa/lists/k2_cke.htm (accessed on 31 March 2016).
- Londra, P.; Theocharis, A.; Baltas, E.; Tsihrintzis, V. Optimal sizing of rainwater harvesting tanks for domestic use in Greece. Water Resour. Manag. 2015, 29, 4357–4377. [Google Scholar] [CrossRef]
- Fewkes, A.; Butler, D. Simulating the performance of rainwater collection and reuse systems using behavioural models. Build. Serv. Eng. Res. Technol. 2000, 21, 99–106. [Google Scholar] [CrossRef]
- Munzimi, Y.A.; Hansen, M.C.; Adusei, B.; Senay, G.B. Characterizing congo basin rainfall and climate using tropical rainfall measuring mission (trmm) satellite data and limited rain gauge ground observations. J. Appl. Meteorol. Climatol. 2015, 54, 541–555. [Google Scholar] [CrossRef]
- Prakash, S.; Mitra, A.K.; Momin, I.M.; Pai, D.; Rajagopal, E.; Basu, S. Comparison of Tmpa-3b42 versions 6 and 7 precipitation products with gauge-based data over india for the southwest monsoon period. J. Hydrometeorol. 2015, 16, 346–362. [Google Scholar] [CrossRef]
- Ciabatta, L.; Brocca, L.; Moramarco, T.; Wagner, W. Comparison of different satellite rainfall products over the italian territory. In Engineering Geology for Society and Territory-Volume 3; Springer international publishing: Berlin, Germany, 2015; pp. 623–626. [Google Scholar]
- Li, D.; Ding, X.; Wu, J. Simulating the regional water balance through hydrological model based on trmm satellite rainfall data. Hydrol. Earth Syst. Sci. Discuss. 2015, 12, 2497–2525. [Google Scholar] [CrossRef]
- Design manual for water supply in kenya; Belgium Study and Consultancy Fund; Belgium, Belgium, 2005.
- British Standards (BSI). BS 8515:2009 Rainwater Harvesting Systems-Code of Practice; BSI: London, UK, 2009. [Google Scholar]
- Code for Sustainable Homes Technical Guide; Department for Communities and Local Government: London, UK, 2010.
- UK building regulations sanitation, hot water safety and water efficiency. Available online: https://www.gov.uk/government/publications/sanitation-hot-water-safety-and-water-efficiency-approved-document-g (accessed on 10 January 2016).
- Engineering, W.S.O. Rainwater Tank Performance Calculator. Available online: http://www2.warwick.ac.uk/fac/sci/eng/research/civil/dtu/rwh/model/ (accessed on 31 March 2016).
- Andersen, M.K. Development of a Rainwater Harvesting System for the Village Ngumbulu, Kenya. Master’s Thesis, Norwegian University of Science and Technology, Trondheim, Norway, 2014. [Google Scholar]
- Morales-Pinzón, T.; Lurueña, R.; Rieradevall, J.; Gasol, C.M.; Gabarrell, X. Financial feasibility and environmental analysis of potential rainwater harvesting systems: A case study in Spain. Resour. Conserv. Recycl. 2012, 69, 130–140. [Google Scholar] [CrossRef]
- Ward, S.; Memon, F.; Butler, D. Performance of a large building rainwater harvesting system. Water Res. 2012, 46, 5127–5134. [Google Scholar] [CrossRef] [PubMed]
- Belinskij, A. Water-energy-food nexus within the framework of international water law. Water 2015, 7, 5396–5415. [Google Scholar] [CrossRef]
- Beal, C.D.; Chong, M.N.; Fyfe, J.; Turner, A.; Gardner, T. Quantifying Mains Water Savings from Residential Rainwater Tanks. In Rainwater Tank Systems for Urban Water Supply: Design, Yield, Energy, Health Risks, Economics and Social Perceptions; Taylor & Francis Group: Abingdon, UK, 2015; p. 47. [Google Scholar]
- Tam, V.W.; Tam, L.; Zeng, S. Cost effectiveness and tradeoff on the use of rainwater tank: An empirical study in australian residential decision-making. Resour. Conserv. Recycl. 2010, 54, 178–186. [Google Scholar] [CrossRef]
- ACF, N. The Economics of Rainwater Tanks and Alternative Water Supply Options, a Report Prepared for Australian Conservation Foundation; Nature Conservation Council (NSW) and Environment Victoria: Newtown, New South Wales, Australia, 2007. [Google Scholar]
- Taylor, B. Rapid estimation of rainwater yield throughout Australia and review of Queensland rainwater harvesting operating policy. In Proceedings of the 2011 SSEE International Conference, Brisbane, Australia, 26 October 2011; pp. 24–26.
- Karpouzoglou, T.; Barron, J. A global and regional perspective of rainwater harvesting in sub-saharan Africa’s rainfed farming systems. Phys. Chem. Earth Parts A/B/C 2014, 72, 43–53. [Google Scholar] [CrossRef]
- Binagwaho, A.; Sachs, J.D. Investing in Development: A Practical Plan to Achieve the Millennium Development Goal. Stud. Fam. Plan. 2005, 36, 145–147. [Google Scholar]
- Woltersdorf, L.; Jokisch, A.; Kluge, T. Benefits of rainwater harvesting for gardening and implications for future policy in Namibia. Water Policy 2014, 16, 124–143. [Google Scholar] [CrossRef]
- TEAM, O.T. Strategic Financial Planning for Water Supply and Sanitation; A report from the OECD task team on sustainable financing to ensure affordable access to water supply and sanitation; OECD: Pairs, France, 2009. [Google Scholar]
- Banerjee, S.G.; Foster, V.; Ying, Y.; Skilling, H.; Wodon, Q.T. Cost recovery, equity, and efficiency in water tariffs: Evidence from African utilities. In World Bank Policy Research Working Paper Series; Social Science Electronic Publishing: Rochester, NY, USA, 2010. [Google Scholar]
- Owuor, S.O.; Foeken, D.W. Water Reforms and Interventions in Urban Kenya: Institutional Set-Up, Emerging Impact and Challenges; African Studies Centre: Leiden, The Netherlands, 2009. [Google Scholar]
- Perkins, P.E.; Lorimer, E.; Saad, A. Strengthening the Role of Civil Society in Water Sector Governance towards Climate Change Adaptation in African Cities-Durban, Maputo, Nairobi; York University: Toronto, ON, Canada, 2013. [Google Scholar]
- Corporate-News. Council by-laws force rainwater down the drain. Available online: http://www.businessdailyafrica.com/Corporate-News/-/539550/621884/-/15og0i9/-/index.html (accessed on 31 March 2016).
- Act of Parliament (Kenya). Public health act (by-laws as to buildings and sanitation). Available online: http://www.kenyalaw.org:8181/exist/kenyalex/actview.xql?actid=CAP.%20242#KE/LEG/EN/AR/P/CHAPTER%20242/sec_126A (1/11/2015) (accessed on 31 March 2016).
- Gathenya, J.M. Rainwater Tanks in Nairobi; Amos, C.C., Ed.; Jomo Kenyatta University of Agriculture & Technology, Biomechanical & Environmental Engineering Department: Nairobi, Kenya, 2015. [Google Scholar]
- Japan International Cooperation Agency. The Project on Integrated Urban Development Master Plan for the City of Nairobi in the Republic of Kenya: Final Report (Draft); Japan International Cooperation Agency: Nairobi, Kenya, 2014. [Google Scholar]
- Planning and Building Regulations; National Planning and Building Authority, Kenya: Nairobi, Kenya, 2009.
- Gakungu, J.N. Qualitative assessment of rain water harvested from roof top catchments: Case study of embakasi, Nairobi county. Int. J. Soft Comput. Eng. 2013, 3, 263–266. [Google Scholar]
- Berger, M. Rainwater Harvesting in Kenya: How Do Institutions and Policies Hinder or Promote Rainwater Harvesting? Bachelor Thesis, University of Berne, Bern, Switzerland, 2011. [Google Scholar]
- Cherunya, P.; Janezic, C.; Leuchner, M. Sustainable supply of safe drinking water for underserved households in kenya: Investigating the viability of decentralized solutions. Water 2015, 7, 5437–5457. [Google Scholar] [CrossRef]
- Alexander, K.T.; Oduor, C.; Nyothach, E.; Laserson, K.F.; Amek, N.; Eleveld, A.; Mason, L.; Rheingans, R.; Beynon, C.; Mohammed, A. Water, sanitation and hygiene conditions in kenyan rural schools: Are schools meeting the needs of menstruating girls? Water 2014, 6, 1453–1466. [Google Scholar] [CrossRef]
- Fisher, H.; Hohnen, L. Aciar’s Activities in Africa: A Review; Australian Centre for International Agricultural Research: Canberra, Australia, 2012. [Google Scholar]
- Butcher, J. The unfinished business of nation-building. In Australia under Construction: Nation-Building: Past, Present and Future; ANU E Press: Canberra, Australia, 2008. [Google Scholar]
- Tisdell, J.G.; Ward, J.; Grudzinski, T. The Development of Water Reform in Australia; CRC For Catchment Hydrology: Barton, Australia, 2002. [Google Scholar]
- Herrmann, T.; Schmidt, U. Rainwater utilisation in Germany: Efficiency, dimensioning, hydraulic and environmental aspects. Urban Water 1999, 1, 307–316. [Google Scholar] [CrossRef]
Location | Water Price *1 | Water Price Increase | Inflation | Interest (i) | Life Cycle | PP * | NPV * | LC * | BCR * |
---|---|---|---|---|---|---|---|---|---|
(Reference) | AU$/m3 | Annual % Increase | % | % | Years | Years | AU$ Over Project Life | AU$/m3 | |
Sydney, Australia [52] | 1.48 | 3 | 1 | 5–15 | 60 | None | – | – | 0.15–1.01 |
Perth, Australia [49] | 2.76–5.22 | – | – | 5, 7, 9 | 15 | None *1 | – | – | – |
Melbourne, Australia [53] | 1.5–2.7 | 6 | – | – | 20 | 1–12, 12–47 *2 | 191760–980566 | 0.09–0.71 | – |
Brisbane, Australia [48] | – | – | – | 3, 6, 9 | 25,50 | – | – | 7.62–11.17 | – |
Brisbane, Australia [54] | used to calculate yield for financial analysis in Hall [48] cf. Table 2 | ||||||||
Kenya [55] | “Nomographs” of roof area-tank size for financial decisions. No LCC analysis done. | ||||||||
Nairobi, Kenya [56] | 0.3–0.8, 6.3 | – | – | – | 25 | 25 *3 | 139, 236 | – | – |
Spain [45] | 1.3–4.2 | – | 3 | – | 50 | 5.5–204 *4 | – | −6.9 to 2.4 | >1 *4 |
Yorkshire, UK [57] | 5.1 | – | – | 3.5–15 | 50 | None | – | – | – |
Location | Annual Rainfall | Roof Area | Tank Size | Usages *1 | Water Use | Reliability | Water Savings | Costs *3 |
---|---|---|---|---|---|---|---|---|
(Reference) | mm | m2 | m3 | – | m3/p/d *2 | % | m3/hh/yr *2 | – |
Sydney, Australia [52] | – | 4000 | 75 | O, L, T | – | 70, 99 | 45 | C, M, I |
Perth, Australia [49] | 826 | 125, 250 | 2, 5 | O | – | – | – | C, M |
Melbourne, Australia [53] | 550–900 | – | 0.6–5+ | O, T, L | 0.26 | – | 105 | – |
Brisbane, Australia [48] | – | 100 | 5 | – | – | – | – | – |
Brisbane, Australia [54] | – | 98–117 | 4.4–6.7 | O, L, T | 0.11–0.16 | 68–80 | 43 | – |
Kenya [55] | 454–1296 | 160, 220 | 12, 6 | – | – | 110 | – | |
Nairobi, Kenya [56] | 938 | 15 | 48.8 | All | 0.03–0.05 | 30–65 | – | C, M |
Spain [45] | 284–1794 | 80–4580 | 3–125 | L | – | 8–96 | 1–12 | – |
West Yorkshire, UK [57] | – | 76 | 1.2, 2.4 | – | – | 58–65 | – | C, M |
Jordan [58] | 42–582 | 100–500+ | 20 | All | 0.07–0.4 | 0.27–19.7 | 0.3%–20% *4 | C |
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Christian Amos, C.; Rahman, A.; Mwangi Gathenya, J. Economic Analysis and Feasibility of Rainwater Harvesting Systems in Urban and Peri-Urban Environments: A Review of the Global Situation with a Special Focus on Australia and Kenya. Water 2016, 8, 149. https://doi.org/10.3390/w8040149
Christian Amos C, Rahman A, Mwangi Gathenya J. Economic Analysis and Feasibility of Rainwater Harvesting Systems in Urban and Peri-Urban Environments: A Review of the Global Situation with a Special Focus on Australia and Kenya. Water. 2016; 8(4):149. https://doi.org/10.3390/w8040149
Chicago/Turabian StyleChristian Amos, Caleb, Ataur Rahman, and John Mwangi Gathenya. 2016. "Economic Analysis and Feasibility of Rainwater Harvesting Systems in Urban and Peri-Urban Environments: A Review of the Global Situation with a Special Focus on Australia and Kenya" Water 8, no. 4: 149. https://doi.org/10.3390/w8040149