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The Value of Rain: Benefit-Cost Analysis of Rainwater Harvesting Systems

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An Erratum to this article was published on 02 September 2017

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Abstract

Rainwater harvesting is increasingly viewed as a practical means of reducing stormwater runoff and supplementing water supply in water-scarce regions, although its widespread adoption has been limited in urban areas. While a number of studies have examined the potential of rainwater harvesting to reduce potable water use, stormwater runoff, energy associated with delivering potable water supplies, or the associated costs, none have assessed these costs and benefits collectively. Using a densely urbanized watershed in southern California as a test case, this study quantifies the economic benefits and costs of rainwater harvesting to investigate whether capturing and using rainwater can be an efficient regional policy. Given the watershed’s land use, topography, and rainfall variability, a range of cistern sizes is evaluated to estimate the magnitude of water, energy and carbon savings for two rainwater use scenarios: outdoor use only and outdoor plus non-potable indoor use. With water prices held constant, only the smallest cistern (208 l) used for outdoor irrigation is efficient from an economic standpoint. In contrast, with a modest annual increase in water rates over the life of the project, the study shows that rainwater capture for outdoor use is an efficient policy for any cistern size. Finally, due to the higher installation and maintenance costs required to pipe the water indoors, outdoor/indoor uses show only modest economic benefits. The potential volume of water captured annually is significant, depending on the cistern size, equivalent to the total water needs of 13,345 to 31,138 single-family residences.

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  • 02 September 2017

    An erratum to this article has been published.

References

  • Arora M, Aye L, Malano H, Ngo T (2013) Water-Energy-GHG emissions accounting for urban water supply: A case study on an urban redevelopment in Melbourne. Water Utility Journal 6:9–18

    Google Scholar 

  • Banasiak A, Bilmes L, Loomis J (2015) Carbon sequestration in the U.S. national parks: A value beyond visitation. Discussion paper 15–66, Harvard Project on Climate Agreements, Harvard Kennedy School

  • Berbel J, Gutiérrez-Martín C, Rodríguez-Díaz J, Camacho E, Montesinos P (2015) Literature review on rebound effect of water saving measures and analysis of a Spanish case study. Water Resour Manag 29(3):663–678

  • Bureau of Labor Statistics (2016) Average energy prices, Los Angeles-Riverside-Orange County. http://data.bls.gov/cgi-bin/dsrv. Accessed 6 June 2016

  • Butler D (1993) The influence of dwelling occupancy and day of the week on domestic appliance wastewater discharges. Build Environ 28(1):73–79

    Article  Google Scholar 

  • City of Los Angeles (2005) Integrated Resources Plan, Volume 1: Wastewater Management. https://www.lacitysan.org/cs/groups/public/documents/document/y250/mdew/~edisp/cnt010374.pdf. Accessed June 2016

  • Dallman S, Piechota T (2010) Stormwater: Asset not liability. Los Angeles & San Gabriel Rivers Watershed Council

    Google Scholar 

  • DeBusk K, Hunt W, Wright J (2013) Characterizing rainwater harvesting performance and demonstrating stormwater management benefits in the humid southeast USA. J. American Water Resources Association 49(6):1398–1411

    Article  Google Scholar 

  • DWP (Department of Water Resources) (2015) California Water Plan. http://www.water.ca.gov/waterplan/. Accessed June 2016

  • Elkind E (2011) Drops of energy: Conserving urban water in California to reduce greenhouse gas emissions. https://law.ucla.edu/centers/environmental-law/emmett-institute-on-climate-change-and-the-environment/publications/drops-of-energy/. Accessed April 2015

  • EPA (2014) eGRID, U.S. Annual non-baseload CO2 output emission rate, year 2010 data. U.S. Environmental Protection Agency, Washington, DC

  • Fried C, Ponomareva S, Ventura R (2014) Rainwater harvesting in Los Angeles: Cost benefit analysis of the feasibility of rainwater harvesting. Tree People, Los Angeles, CA

    Google Scholar 

  • Gilroy K, McCuen R (2009) Spatio-temporal effects of low impact development practices. J. Hydrology 367:228–236

    Article  Google Scholar 

  • Hanak E, Davis M (2006) Lawns and water demand in California. California Economic Policy 2(2):1–23

    Google Scholar 

  • IWG (2013) Technical update of the social cost of carbon for regulatory impact analysis under Executive Order 12866. Interagency Working Group on Social Cost of Carbon. U.S. Government, Washington DC

    Google Scholar 

  • Jung K, Lee T, Choi B, Hong S (2015) Rainwater harvesting system for continuous water supply to the regions with high seasonal rainfall variations. Water Resour Manag 29(3):961–972

  • LACDPW (Los Angeles County Department of Public Works) (2005) Land Use 2005. http://www.ladpw.org/wrd/Publication/index.cfm. Accessed May 2015

  • LACDPW (2004) Ballona Creek Watershed management plan. LACDPW, Watershed management division.

  • LADWP (2015) 2015 Briefing Book. Los Angeles Department of Water and Power. https://issuu.com/ladwp7/docs/2015_ladwp_briefing_book. Accessed May 2016

  • LADWP (2014) L.A.'s drinking water quality report Jan. 1 through Dec. 31, 2014.

  • Los Angeles Regional Water Quality Control Board (2012) MS4 discharges within the coastal watersheds of Los Angeles County, Order No. R4–2012–0175 Attachment B: Watershed management area maps http://www.waterboards.ca.gov/losangeles/water_issues/programs/stormwater/municipal/ Accessed June 2016

  • Malinowski P, Stillwell A, Wu J, Schwarz P (2015) Energy-Water nexus: Potential energy savings and implications for sustainable integrated water management in urban areas from rainwater harvesting and gray-water reuse. J. Water Resources Planning and Management 141(12):A4015003

  • Matos C, Bentes I, Santos C, Imteaz M, Pereira S (2015) Economic analysis of a rainwater harvesting system in a commercial building. Water Resour Manag 29(11):3971–3986

  • Mayer P, DeOreo W (1999) Residential end uses of water. AWWA Research Foundation and American Water Works Association

    Google Scholar 

  • Muleta M, McMillan J, Amenu G, Burian S (2013) Bayesian approach for uncertainty analysis of a stormwater management model and its application to a heavily urbanized watershed. J. Hydrologic Engineering 18:1360–1371

    Article  Google Scholar 

  • MWD (Metropolitan Water District of Southern California) (2016) Financial Information. http://www.mwdh2o.com/WhoWeAre/Management/Financial-Information/Pages/default.aspx. Accessed June 2016

  • Nordhaus W (2007) A review of the Stern Review on the economics of climate change. J. Economic Literature 45(3):686–702

    Article  Google Scholar 

  • NRC (National Research Council) (2008) Urban stormwater management in the United States. National Academies Press, Washington, DC

    Google Scholar 

  • Rossman L (2010) Stormwater Management Model user’s manual, Version 5. EPA/600/R-05/040

  • Ruberto A, Lee J, Bayer A (2013) Water energy nexus analysis of a public university in California. Water Efficiency 8(3):36–41

    Google Scholar 

  • Steffen J, Jensen M, Pomeroy C, Burian S (2013) Water supply and stormwater management benefits of residential rainwater harvesting in U.S. Cities. J. American Water Resources Association 49(4):810–824

    Article  Google Scholar 

  • Stern N (2006) Stern Review: The economics of climate change. HM Treasury, London

    Google Scholar 

  • Sunstein C, Weisbach D (2009) Climate change and discounting the future: A guide for the perplexed. Yale Law & Policy Review 27(2):433–457

    Google Scholar 

  • Tol R (2005) The marginal damage costs of carbon dioxide emissions: an assessment of the uncertainties. Energy Policy 33(16):2064–2074

    Article  Google Scholar 

  • U.S. Census Bureau (2015) Quick Facts, United States. http://quickfacts.census.gov/qfd/states/06/06037.html. Accessed June 2015

  • USGS (2014) National Map Viewer and Download Platform. U.S. Geological Survey, Washington, DC. http://nationalmap.gov/viewer.html. Accessed May 2015

  • Vieira A, Beal C, Ghisi E, Stewart R (2014) Energy intensity of rainwater harvesting systems: A review. Renewable & Sustainable Energy Reviews 34:225–242

    Article  Google Scholar 

  • Vivas E, Maia R (2013) Economic valuation of drought impacts on urban water supply systems: Application to a Portuguese drought prone area. European Water 44:11–22

    Google Scholar 

  • Walsh T, Pomeroy C, Burian S (2014) Hydrologic modeling analysis of a passive, residential rainwater harvesting program in an urbanized, semi-arid watershed. J. Hydrology 508:240–253

    Article  Google Scholar 

  • Wang C, Blackmore J (2012) Supply–demand risk and resilience assessment for household rainwater harvesting in Melbourne, Australia. Water Resour Manag 26(15):4381–4396

  • Wang R, Zimmerman J (2015) Economic and environmental assessment of office building rainwater harvesting systems in various U.S. Cities. Environmental Science Technology 49(3):1768–1778

    Article  Google Scholar 

  • Washburn B, Yancey K, Mendoza J (2010) User’s guide for the California impervious surface coefficients. California Environmental Protection Agency

    Google Scholar 

  • Wilkinson R, Wolff G, Kost W, Shwom R (2006) An analysis of the energy intensity of water in California: Providing a basis for quantification of energy savings from water system Improvements. European Council for an Energy Efficient Economy

    Google Scholar 

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Correspondence to Suzanne Dallman.

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The authors have no potential conflicts of interest related to this research. No outside funding sources were utilized to support this study. Human subjects were not involved in this research.

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An erratum to this article is available at https://doi.org/10.1007/s11269-017-1798-z.

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Dallman, S., Chaudhry, A.M., Muleta, M.K. et al. The Value of Rain: Benefit-Cost Analysis of Rainwater Harvesting Systems. Water Resour Manage 30, 4415–4428 (2016). https://doi.org/10.1007/s11269-016-1429-0

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