A Review of Cost Estimates for Flood Adaptation
Abstract
:1. Introduction
2. Data and Approach
- (1)
- Cost estimations are mostly made during the design phase of a flood adaptation measure [14]. However, while the aggregate cost of such projects after construction can be found, the underlying cost details and the different cost components, are rarely available online.
- (2)
- The unit costs differ greatly across the literature in terms of what cost components (labor, land purchase, and materials, etc.) are included. This makes the comparison of unit cost prices difficult [13].
- (3)
- Unit cost estimates for the same flood management measures vary across countries and regions depending on local geographic and socio-economic conditions [22]. For example, in many countries, constructing a levee in a rural area is much cheaper than developing a similar structure in an urban area, as labor rates and land prices are often higher in cities. Furthermore, the design requirements (e.g., protection levels) are higher in urban environments due to the larger exposed population and greater economic assets [17].
- (4)
- (1)
- (2)
- Peer-reviewed literature was accessed using the Web of Science search engine and different combinations of general key words (#flood, #cost, #management, #adaptation, #cost-benefit). Key words representing the different adaptation categories and measures (protection, nature-based solutions, levee, mangrove, beach nourishment, coral reefs, urban drainage, etc.) were also used. This resulted in a few hundred papers, of which the unit cost information was manually ordered into project and/or construction- and/or maintenance-related activities. In many papers, though economic aspects of flood management investment were discussed, specific cost estimates were either not provided or cost information was incomplete. Only the papers which contained unit cost prices were selected
- (3)
- Following [19], the unit cost estimates provided in this study—provided that information is available—are distributed over developed and developing countries. In this way, differences in socio-economic conditions that exist across countries and that may affect unit cost prices are addressed, albeit in a simplified manner.
- (4)
- All numbers are converted into comparable units, and cost estimations were converted to U.S. dollars at 2016 price levels, unless otherwise specified. This was done using inflation rates for each country based on the consumer price index (CPI) (https://data.worldbank.org/indicator/fp.cpi.totl). For global average numbers, a flat inflation rate of 4% per year was applied, as in [14]. Local currencies for a particular country were first converted to U.S. dollars by using the XE currency converter (www.xe.com/currencyconverter). At the time of submission of this paper, EUR1 was equal to US$1.202. Unit cost prices were not converted into a “purchasing power parity” unit [24], but future studies can use the estimates in this study to further process the data if required.
- (5)
- Cost estimates are presented in six sub-sections: flood-proofing buildings, flood protection, beach nourishment and dunes, nature-based solutions (coast, channel management, and nature-based solutions for riverine systems), and urban drainage. In a few instances, this classification is somewhat arbitrary, and some measures could have been placed in another category. Each section starts with a short description of the measures followed by a discussion of cost estimates.
- (6)
- In some studies, operation and maintenance costs are specified, whereas other sources use fixed percentages of the total construction costs. If available, both types are addressed, and it is assumed that these are valid for the lifetime of a measure.
3. Results
3.1. Flood-Proofing and Elevating Buildings
3.1.1. Elevation and Re-Location
3.1.2. Dry Flood-Proofing
3.1.3. Wet Flood-Proofing
3.2. Flood Protection
3.3. Coastal Protection by Beaches and Dunes
3.3.1. Beach Nourishment
3.3.2. Dune Restoration
3.4. Nature-Based Solutions for Coastal Ecosystems
3.4.1. General Restoration Estimates
3.4.2. Seagrass and Saltmarches
3.4.3. Mangrove Restoration
3.4.4. Coral, Oyster and Artificial Reef Restoration
3.5. Channel Management and Nature-Based Solutions for Riverine Systems
3.5.1. Dredging and River Widening
3.5.2. Operation and Maintenance
3.5.3. Nature-Based “Soft Bank” Protection and Water Buffering
3.6. Measures Against Local Inundations
4. Discussion and Conclusions
Funding
Acknowledgments
Conflicts of Interest
Appendix A
Country | Building Type | Measure | Unit | year | Source |
---|---|---|---|---|---|
Bangladesh/Vietnam | Wooden frame | Elevation: Stilts Bamboo/Reinforced concrete | $1250/2500 | 2015 | [32]/http://de.phaidon.com/agenda/architecture/articles/2013/april/17/vietnams-flood-proof-bamboo-houses/ |
United Kingdom | Residential | Dry flood-proofing | $1950–5759 | 2008 | [26] |
United Kingdom | Shop | Dry flood-proofing | $1989–8632 | 2008 | [26] |
United Kingdom | Office | Dry flood-proofing | $2990–9399 | 2008 | [26] |
United Kingdom | Residential | Wet flood-proofing | $8073–18369 | 2008 | [26] |
United Kingdom | Shop | Wet flood-proofing | $11,063–17,706 | 2008 | [26] |
United Kingdom | Office | Wet flood-proofing | $14,937–24,895 | 2008 | [26] |
Appendix B
Country | Type of Flood-Proofing Measure | Costs Expressed Per | Costs | Reference |
---|---|---|---|---|
United States | Sprayed-on cement | Linear foot of wall covered | U.S.$16.80 (2009) | [25] |
United States | Waterproof membrane | Linear foot of wall covered | U.S.$5.70 (2009) | [25] |
United States | Asphalt | Linear foot of wall covered | U.S.$12.00 (2009) | [25] |
United States | Drainage line around house | Linear foot | U.S.$31 (2009) | [25] |
United States | Plumbing check valve | Each | U.S.$1060 (2009) | [25] |
United States | Sump and sump pump (with back-up battery) | Lump sum | U.S.$1710 (2009) | [25] |
United States | Metal flood shield | Linear foot of shield surface | U.S.$375 (2009) | [25] |
United States | Wooden flood shield | Linear foot of shield surface | U.S.$117 (2009) | [25] |
Country | Type of Flood Proofing Measure | Cost | Comment |
---|---|---|---|
United Kingdom | Periphery wall (based on a 40-m length) | £3500–4500 | May require ancillary pumps (maintenance costs required) Depends on size of curtilage |
United Kingdom | Periphery wall residential gate (1.2 m) | £2500–4500 | |
United Kingdom | Raise threshold | £1200–1500 | |
United Kingdom | Storm porch (per door) | £5800–8800 | Includes additional cost of locking mechanism |
United Kingdom | Flood resistant door (per door) | £875–2500 | |
United Kingdom | Periscope airbricks (assumes 12 per property) | £2500–3000 | Includes installation costs |
United Kingdom | Flood resistant door | £750–2500+ | |
United Kingdom | Automatic door guards (domestic 2 m opening) | £8000 | Costs exclusive of ground work and construction |
United Kingdom | Free-standing barriers (for detached house) | £5000–12,000 | Ancillary pumps may also be required |
United Kingdom | Flood skirt (per house) | £10,000–35,000 | Costs include construction, fitting, and training |
United Kingdom | Sump and pump | £50–2500 | Costs depend on pump capacity and sump size |
United Kingdom | Anti-flood valves | £50–500 | Costs excluding labor to fit and construct an inspection chamber |
Appendix C
Appendix D
Pump Station | Capacity | Capacity | Project | Cost | Cost | Year | Cost 2016 | Note |
---|---|---|---|---|---|---|---|---|
Cubfeet/s | m3/s | ($ million) | ($million/m3/s) | ($million/m3/s) | ||||
Henderson Bayou P. station | 1000 | 28.3 | East Ascension | 15.8 | 0.6 | 2011 | 0.7 | 1 |
Bayou Trepagnier p. station | 800 | 22.7 | Pontchartrain | 11.5 | 0.5 | 2004 | 0.8 | 1 |
Levee District | ||||||||
Dwyer Road Pump station | 875 | 24.8 | New Orleans S&WB | 13.6 | 0.5 | 2010 | 0.7 | 1 |
Ijmuiden | 260 | Noordzeekanaal | 68 | 0.3 | 2003 | 0.4 | 2, 3 | |
Katwijk | 40 | Boezemkanaal | 46.8 | 1.2 | 2014 | 1.3 | 4 | |
Egypt-1 | 0.55 | Urban drainage | 0.58 | 1.06 | 2011 | 1.3 | 5 | |
Egypt-2 | 1.1 | Urban drainage | 0.75 | 0.7 | 2011 | 0.9 | 5 | |
Uzbekistan | 91.5 | Bhukara 1 | 139 | 1.5 | 2013 | 1.7 | 6 |
Appendix E
SUDS Option | Maintenance Cost | Source |
---|---|---|
Green roofs | £2500 per year for first 2 years for covered roof with sedum mat, £600 per year after. £1250 per year for first 2 years for covered roof with biodiverse roof, £150 per year after | Bamfield (2005) |
Simple rainwater harvesting (water butts) | Negligible | |
Advanced rainwater harvesting | £250 per year per property for external maintenance contract | RainCycle 2005 |
Permeable paving | £0.5–1/m3 of storage volume | HR Wallingford, 2004 |
Filter drain/perforated pipes | £0.2–1/m2 of filter surface area | HR Wallingford, 2004 |
Swales | £0.1/m2 of swale surface area, £350 per year | HR Wallingford, 2004 |
Infiltration basin | £0.1–0.3/m2 of detention basin area £0.25–1/m3 of detention volume | HR Wallingford, 2004 |
Soakaways | £0.1/m2 of treated area | HR Wallingford, 2004 |
Infiltration trench | £0.2–1/m2 of filter surface area | HR Wallingford, 2004 |
Filter strip | £0.1/m2 of filter surface area | HR Wallingford, 2004 |
Constructed wetland | £0.1/m2 of wetland surface area. Annual maintenance of £200–250/year for first five years (declining to £80–100/year after three years). | HR Wallingford, 2004 |
Retention (wet) pond | £0.5–1.5/m2 of retention pond surface area, £0.1–£2/m3 of pond volume | HR Wallingford, 2004 |
Detention basin | £0.1–0.3/m2 of detention basin area, £0.25–1/m3 of detention volume, £250–1000 per basin | HR Wallingford, 2004 |
HR Wallingford, 2004 |
Appendix F
Country | Measures | Unit | $2016 | Source |
---|---|---|---|---|
United States | Sandbag | $3–6/bag | http://www.aquadam.net/Flood_Control/fldcntrl.html | |
United States | Sandbag wall +1 m high | ~300,000/km | http://www.aquadam.net/Flood_Control/fldcntrl.html | |
United States | Sandbag wall +1.2 m high | $760,000/km | http://geocellsystems.com/brochures/pdfs/True_Cost_of_Sandbags.pdf | |
United States | Sandbag wall +1.2 m high | #bags | #72,000/km | https://www.sandbaggy.com/blogs/articles/sandbags-calculator |
References
- Munich, R.E. Natural Catastrophe Review: Series of Hurricanes Makes 2017 Year of Highest Insured Losses Ever. Available online: https://www.munichre.com/en/media-relations/publications/press-releases/2018/2018-01-04-press-release/index.html (accessed on 2 July 2018).
- Jongman, B.; Ward, P.J.; Aerts, J.C. Global exposure to river and coastal flooding: Long term trends and changes. Glob. Environ. Chang. 2012, 22, 823–835. [Google Scholar] [CrossRef]
- Hall, J.W.; Grey, D.; Garrick, D.; Fung, F.; Brown, C.; Dadson, S.J.; Sadoff, C.W. Water Security: Coping with the curse of freshwater variability. Science 2014, 346, 429–430. [Google Scholar] [CrossRef] [PubMed]
- Dawson, R.J.; Dickson, M.E.; Nicholls, R.J.; Hall, J.W.; Walkden, M.J.; Stansby, P.K.; Mokrech, M.; Richards, J.; Zhou, J.; Milligan, J.; et al. Integrated analysis of risks of coastal flooding and cliff erosion under scenarios of long term change. Clim. Chang. 2009, 95, 249–288. [Google Scholar] [CrossRef] [Green Version]
- Nicholls, R.J.; Cazenave, A. Sea-Level Rise and Its Impact on Coastal Zones. Science 2010, 328, 1517–1520. [Google Scholar] [CrossRef] [PubMed]
- Hall, J.W.; Watts, G.; Keil, M.; De Vial, L.; Street, R.; Conlan, K.; O’Connell, P.E.; Beven, K.J.; Kilsby, C.G. Towards risk-based water resources planning in England and Wales under a changing climate. Water Environ. J. 2012, 26, 118–129. [Google Scholar] [CrossRef]
- Kreibich, H.; Van Den Bergh, J.C.; Bouwer, L.M.; Bubeck, P.; Ciavola, P.; Green, C.; Hallegatte, S.; Logar, I.; Meyer, V.; Schwarze, R.; et al. Costing Natural Hazards. Nat. Clim. Chang. 2014, 4, 303–306. [Google Scholar] [CrossRef]
- Thieken, A.; Cammerer, H.; Dobler, C.; Lammel, J.; Schöberl, F. Estimating changes in flood risks and benefits of non-structural adaptation strategies—A case study from Tyrol, Austria. Mitig. Adapt. Strateg. Glob. Chang. 2016, 21, 343–356. [Google Scholar] [CrossRef] [PubMed]
- Ward, P.; Aerts, J.C.J.H.; Botzen, W.J.; Bates, P.; Kwadijk, J.; Hallegatte, S.; Scussolini, P.; Winsemius, H. Future costs and benefits of river flood protection in urban areas: A global framework. Nat. Clim. Chang. 2017, 6, 381–385. [Google Scholar] [CrossRef]
- Merz, B.; Aerts, J.C.; Arnbjerg-Nielsen, K.; Baldi, M.; Becker, A.; Bichet, A.; Blöschl, G.; Bouwer, L.M.; Brauer, A.; Cioffi, F.; et al. Floods and climate: Emerging perspectives for flood risk assessment and management. Nat. Hazards Earth Syst. Sci. 2014, 14, 1921–1942. [Google Scholar] [CrossRef] [Green Version]
- Aerts, J.C.; Botzen, W.W.; Emanuel, K.; Lin, N.; de Moel, H.; Michel-Kerjan, E.O. Evaluating flood resilience strategies for coastal megacities. Science 2014, 344, 473–475. [Google Scholar] [CrossRef] [PubMed]
- Kind, J.M. Economically efficient flood protection standards for The Netherlands. J. Flood Risk Manag. 2014, 7, 103–117. [Google Scholar] [CrossRef]
- Lenk, S.; Rybski, D.; Heidrich, O.; Dawson, R.J.; Kropp, J.P. Costs of sea dikes—Regressions and uncertainty estimates. Nat. Hazards Earth Syst. Sci. 2016, 17, 765–779. [Google Scholar] [CrossRef]
- Jonkman, S.N.; Hillen, M.M.; Nicholls, R.J.; Kanning, W.; van Ledden, M. Costs of adapting coastal defences to sea-level rise—New estimates and their implications. J. Coast. Res. 2013, 29, 1212–1226. [Google Scholar] [CrossRef]
- Linham, M.M.; Green, C.H.; Nicholls, R.J. Costs of Adaptation to the Effects of Climate in the World’s Largest Port Cities; AVOID: London, UK, 2010; p. 225. [Google Scholar]
- Aerts, J.C.; Botzen, W.W.; de Moel, H.; Bowman, M. Cost estimates for flood resilience and protection strategies in New York City. Ann. N. Y. Acad. Sci. 2013, 1294, 1–104. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Aerts, J.C.; Barnard, P.L.; Botzen, W.J.; Grifman, P.; Finzi Hart, J.; De Moel, H.; Newton Mann, A.; de Ruig, L.; Sadrpour, N. Sea Level Rise, Flood Risk, and Adaptation Options in Los Angeles. Ann. N. Y. Acad. Sci. 2018. [Google Scholar] [CrossRef] [PubMed]
- Lasage, R.; Veldkamp, T.I.E.; de Moel, H.; Van, T.C.; Phi, H.L.; Vellinga, P.; Aerts, J.C.J.H. Assessment of the effectiveness of flood adaption strategies for HCMC. Nat. Hazards Earth Syst. Sci. 2014, 14, 1441–1457. [Google Scholar] [CrossRef] [Green Version]
- Bayraktarov, E.; Saunders, M.; Abdullah, S.; Mills, M.; Beher, J.; Possingham, H.P.; Mumby, P.J.; Lovelock, C.E. The cost and feasibility of marine coastal restoration. Ecol. Appl. 2016, 26, 1055–1074. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Lamond, J.; Rose, C.; Bhattacharya-Mis, N.; Joseph, R. Evidence Review for Property Flood Reliance Phase 2 Report. 2017. Available online: https://www.floodre.co.uk/wp-content/uploads/UWE-report_Evidence-review-for-PFR_Phase-2-report.pdf (accessed on 10 November 2018).
- Narayan, S.; Beck, M.; Reguero, B.; Losada, I.; Van Wesenbeeck, B.; Pontee, N.; Sanchirico, J.; Ingram, J.; Lange, G.; Burks-Copes, K. The Effectiveness, Costs and Coastal Protection Benefits of Natural and Nature-Based Defences. PLoS ONE 2016, 11, e0154735. [Google Scholar] [CrossRef] [PubMed]
- Prahl, B.F.; Rybski, D.; Kropp, J.P.; Burghoff, O.; Held, H. Applying stochastic small-scale damage functions to German winter storms. Geophys. Res. Lett. 2012, 39, L06806. [Google Scholar] [CrossRef]
- Armitage, N.; Vice, M.; Fisher-Jeffes, L.; Winter, K.; Spiegel, A.; Dunstan, J. Alternative Technology for Stormwater Management. The South African Guidelines for Sustainable Drainage Systems; No. TT 558/13; Water Research Commission: Gezina, South Africa, 2013. [Google Scholar]
- Jongman, B.; Winsemius, H.; Aerts, J.C.J.H.; Ward, P.J. Declining vulnerability to river floods and the global benefits of adaptation. Proc. Nat. Acad. Sci. USA 2015, E2271–E2280. [Google Scholar] [CrossRef] [PubMed]
- FEMA. Homeowner’s Guide to Retrofitting, 2nd ed.; US Department of Homeland Security, Federal Insurance and Mitigation Administration (FEMA): Washington, DC, USA. Available online: https://www.fema.gov/homeowners-guide-retrofitting (accessed on 17 August 2018).
- Keating, K.; May, P.; Pettit, A.; Pickering, R. Cost Estimation for Household Flood Resistance and Resilience Measures—Summary of Evidence. Environment Agency, 2015. Available online: http://evidence.environment-agency.gov.uk/FCERM/Libraries/FCERM_Project_Documents/SC080039_cost_house_resist_and_resilience.sflb.ashx (accessed on 4 April 2018).
- Kreibich, H.; Christenberger, S.; Schwarze, R. Economic motivation of households to undertake private precautionary measures against floods. Nat. Hazards Earth Syst. Sci. 2011, 11, 309–321. [Google Scholar] [CrossRef] [Green Version]
- Kousky, C. Financing Flood Losses: A Discussion of the National Flood Insurance Program. 2017. Available online: http://www.rff.org/files/document/file/RFF-DP-17-03.pdf (accessed on 10 November 2018).
- USACE. North Atlantic Coast Comprehensive Study: Resilient Adaptation to Increasing Risk, Final Report. January 2015, p. 144. Available online: http://www.nad.usace.army.mil/Portals/40/docs/NACCS/NACCS_main_report.pdf (accessed on 10 November 2018).
- Jones, C.P.; Coulbourne, W.L.; Marshall, J.; Rogers, S.M. Evaluation of the National Flood Insurance Program’s Building Standards. American Institutes for Research and the NFIP Evaluation Working Group, 2006. Available online: http://www.fema.gov/library/viewRecord.do?id=2592 (accessed on 10 November 2018).
- Home Advisor. How Much Does It Cost to Raise a House? 2016. Available online: https://www.homeadvisor.com/cost/foundations/raise-a-foundation/#cost (accessed on 14 September 2018).
- Biswas, S.; Hasan, M.A.; Islam, M.S. Stilt Housing Technology for Flood Disaster Reduction in the Rural Areas of Bangladesh. Int. J. Res. Civ. Eng. 2015, 3, 1–6. [Google Scholar]
- Wright and Pierce. Waste Water Pump Station Flooding Vulnerability Evaluation. 2016. Available online: http://www.waterfordct.org/sites/waterfordct/files/final_waterfordpsfloodreport_0.pdf (accessed on 1 May 2018).
- Noble, N.; Roy, D.C. Flood Resistant Housing. Low-Cost Disaster-Resistant Housing in Bangladesh; Practical Action Technical Brief: Warwickshire, UK, 2010. [Google Scholar]
- Swiss RE. Flood Risk in Brazil: Prevention, Adaptation and Insurance. Available online: https://www.researchgate.net/profile/David_Bresch/publication/253327670_Flood_risk_Brazil_full_study/links/00b4951f7f5db0793d000000/Flood-risk-Brazil-full-study.pdf (accessed on 10 November 2018).
- Thanh Danh, V.; Viet Khai, H. Using a Risk Cost-Benefit Analysis for a Sea Dike to Adapt to the Sea Level in the Vietnamese Mekong River Delta. Climate 2014, 2, 78–102. [Google Scholar] [CrossRef]
- Dijkman, J. A Dutch Perspective on Coastal Louisiana Flood Risk Reduction and Landscape Stabilization; United States Army—European Research Office of the US Army: London, UK, 2007; p. 226. [Google Scholar]
- Smith, D.L.; Miner, S.P.; Theiling, C.H.; Behm, R.; Nestler, J.M. Levee Setbacks: An Innovative, Cost-Effective, and Sustainable Solution for Improved Flood Risk Management. 2017. Available online: https://pdfs.semanticscholar.org/ed2f/6d8f9db6fb7af40ce1ad17999bdb3fdd2eea.pdf (accessed on 10 November 2018).
- van Ogtrop, F.F.; Hoekstra, A.Y.; van der Meulen, F. Flood management in the lower Incomati river basin, Mozambique: Two Alternatives. J. Am. Water Resour. Assoc. 2005, 41, 607–619. [Google Scholar] [CrossRef]
- Bos, A.J. Optimal Safety Level for the New Orleans East Polder, A Preliminary Risk Analysis. Master’s Thesis, University of Amsterdam, Amsterdam, The Netherlands, 2008. [Google Scholar]
- GCCPRD. Storm Surge Surpression Study, Phase 3. 2016. Available online: http://www.gccprd.com/pdfs/GCCPRD%20Phase%203%20Report%20-%20Recommended%20Actions.pdf (accessed on 10 November 2018).
- Tutuarima, W.H.; d’Angremond, W.H. Cost Comparison of Breakwater Types. Coast. Eng. 1998, 1934–1944. [Google Scholar] [CrossRef]
- PPIC. California Coastal Management with a Changing Climate. Available online: http://www.ppic.org/content/pubs/report/R_1108GMR.pdf (accessed on 1 May 2018).
- ERG Economic and Social Impacts of a Changing Coastline in California. Available online: ftp://reef.csc.noaa.gov/pub/socioeconomic/NSMS/California/Economic%20and%20Social%20Impacts%20CA_3_30_12_final.docx (accessed on 1 May 2018).
- Heberger, M.; Cooley, H.; Herrera, P.; Gleick, P.; Moore, E. The Impacts of Sea-Level Rise on the California Coast. Report nr. CEC-500-2009-024-D. California Climate Change Center of the Pacific Institute, 2009. Available online: http://www.pacinst.org/reports/sea_level_rise/report.pdf (accessed on 10 November 2018).
- Nelson, S.A. Hurricane Katrina—What Happened? Available online: http://www.tulane.edu/~sanelson/Katrina/katrina_images.htm (accessed on 14 September 2018).
- JCS. US$65-Million Riverside Project Set to Begin Construction: Pakse. Available online: http://jclao.com/us65-million-riverside-project-set-begin-construction-pakse/ (accessed on 10 November 2018).
- Ardhiansyah-Arifin, M.F. Cost analysis for heavy equipment in earthfill work—An optimization of heavy equipment fleet (Case study: Jabung ring dike project). AIP Conf. Proc. 2017, 1818, 020005. [Google Scholar] [CrossRef]
- SEPA. Bank Protection, Rivers and Lochs. Engineering in the Water Environment, Good Practice Guide WAT-SG-23; Scottish Environment Protection Agency: Stirling, Scotland, 2008; Available online: https://www.sepa.org.uk/media/150971/wat_sg_23.pdf (accessed on 10 November 2018).
- Hanley, M.E.; Hoggart, S.P.G.; Simmonds, D.J. Shifting sands? Coastal protection by sand banks, beaches, and dunes. Coast. Eng. 2014, 87, 136–146. [Google Scholar] [CrossRef]
- Dean, R.G.; Houston, J.R. Determining shoreline response to sea level rise. Coast. Eng. 2016, 114, 1–8. [Google Scholar] [CrossRef]
- Zhu, X.; Linham, M.M.; Nicholls, R.J. Technologies for Climate Change Adapatation—Coastal Erosion and Flooding; TNA Guidebook Series; Danmarks Tekniske Universitet, Risø Nationallaboratoriet for Bæredygtig Energi: Roskilde, Denmark, 2010. [Google Scholar]
- Boos, S.; Dahlstrom, A. Coastal Evolution at Nha Trang Bay, Vietnam. Water Resources Engineering TVVR-15/5006. Lund University, 2015. Available online: http://lup.lub.lu.se/luur/download?func=downloadFile&recordOId=7448002&fileOId=7448014 (accessed on 10 November 2018).
- Verburg, R.W.; Hennen, W.H.G.J.; Puister, L.F.; Michels, R.; van Duijvendijk, K. Estimating Costs of Nature Management in the European Union; Exploration Modelling for PBL’s Nature Outlook; Wageningen University, Natuur & Milieu: Wageningen, The Netherlands, 2017. [Google Scholar]
- Garcia-Lozano, C.; Pinto, J. Current status and future restoration of coastal dune systems on the Catalan shoreline (Spain, NW Mediterranean Sea). J. Coast. Conserv. 2018, 22, 519–532. [Google Scholar] [CrossRef]
- Martinez, M.L.; Gallego-Fernández, J.B.; Hesp, P. Restoration of Coastal Dunes; Springer: Berlin, Germany; New York, NY, USA, 2013. [Google Scholar]
- Nordstrom, K.F.; Arens, S.M. The role of human actions in evolution and management of foredunes in The Netherlands and New Jersey, USA. J. Coast. Conserv. 1998, 4, 169–180. [Google Scholar] [CrossRef]
- Rozé, F.; Lemauviel, S. Sand dune restoration in North Brittany, France: A 10-year monitoring program. Restor. Ecol. 2004, 12, 29–35. [Google Scholar] [CrossRef]
- Morris, R.; Konlecher, T.; Ghisalberti, M.; Swearer, S. From grey to green: Efficacy of eco-engineering solutions for nature-based coastal defence. Glob. Chang. Biol. 2017, 24, 1827–1842. [Google Scholar] [CrossRef] [PubMed]
- Beck, M.W.; Losada, I.J.; Menéndez, P.; Reguero, B.G.; Díaz-Simal, P.; Fernández, F. The global flood protection savings provided by coral reefs. Nat. Commun. 2018, 9, 2186. [Google Scholar] [CrossRef] [PubMed]
- Burke, L.; Reytar, K.; Spalding, M.; Perry, A. Reefs at Risk Revisited; World Resources Institute: Washington, DC, USA, 2011; 130p, Available online: http://www.wri.org/publication/reefs-risk-revisited (accessed on 10 November 2018).
- Reguero, B.; Beck, M.; Bresch, D.; Calil, J.; Meliane, I. Comparing the cost effectiveness of nature-based and coastal adaptation: A case study from the Gulf Coast of the United States. PLoS ONE 2018. [Google Scholar] [CrossRef] [PubMed]
- United States Geological Survey (USGS). Wetland Restoration and Creation. Available online: https://water.usgs.gov/nwsum/WSP2425/restoration.html (accessed on 4 April 2018).
- United States Environmental Protection Agency (EPA). Wetlands Protection and Restoration. Available online: https://www.epa.gov/wetlands (accessed on 4 April 2018).
- Spalding, M.D.; Ruffo, S.; Lacambra, C.; Meliane, I.; Hale, L.Z.; Shepard, C.C.; Beck, M.W. The role of ecosystems in coastal protection: Adapting to climate change and coastal hazards. Ocean Coast. Manag. 2014, 90, 50–57. [Google Scholar] [CrossRef]
- Hakim, L.L. Cost and Benefit Analysis for Coastal Management. A Case Study of Improving Aquaculture and Mangrove Restoration Management in Tambakbulusan Village Demak Indonesia. 2016. Available online: http://edepot.wur.nl/421310 (accessed on 10 November 2018).
- Marchand, M. Mangrove Restoration in Vietnam: Key Considerations and a Practical Guide. TU Delft Report T2666. 2008, p. 36. Available online: https://repository.tudelft.nl/islandora/object/uuid:98b5ba43-1452-4631-81dc-ad043ef3992c?collection=research (accessed on 10 November 2018).
- Climate-ADAPT (European Climate Adaptation Network). Groynes, Breakwaters and Artificial Reefs. Available online: http://climate-adapt.eea.europa.eu/metadata/adaptation-options/groynes-breakwaters-and-artificial-reefs (accessed on 14 September 2018).
- Ondiviela, B.; Losada, I.J.; Lara, J.L.; Maza, M.; Galván, C.; Bouma, T.; van Belzen, J. The role of seagrasses in coastal protection in a changing climate. Coast. Eng. 2014, 87, 158–168. [Google Scholar] [CrossRef]
- Van Loon-Steensma, J.M. Salt marshes to adapt the flood defences along the Dutch Wadden Sea coast. Mitigat. Adapt. Strateg. Glob. Chang. 2015, 20, 929–948. [Google Scholar] [CrossRef] [PubMed]
- Beck, M.W.; Narayan, S.; Trespalacios, D.; Pfliegner, K.; Losada, I.J.; Menéndez, P.; Espejo, A.; Torres, S.; Díaz-Simal, P.; Fernandez, F.; et al. The Global Value of Mangroves for Risk Reduction; Summary Report; The Nature Conservancy: Berlin, Geramny, 2018. [Google Scholar]
- United Nations Environment Program (UNEP). Mangrove Conservation and Restoration. Available online: http://web.unep.org/coastal-eba/content/mangrove-conservation-and-restoration (accessed on 4 April 2018).
- Lewis, R.R. Mangrove Restoration—Costs and Benefits of Successful Ecological Restoration. In Proceedings of the Mangrove Valuation Workshop, Universiti Sains Malaysia, Penang, Malaysia, 4–8 April 2001; Beijer International Institute of Ecological Economics: Stockholm, Sweden, 2001. Available online: http://www.fao.org/forestry/10560-0fe87b898806287615fceb95a76f613cf.pdf (accessed on 10 November 2018).
- Losada, I.J.; Menéndez, P.; Espejo, A.; Torres, S.; Díaz-Simal, P.; Abad, S.; Beck, M.W.; Narayan, S.; Trespalacios, D.; Pfliegner, K.; et al. The Global Value of Mangroves for Risk Reduction; Technical Report; The Nature Conservancy: Berlin, Germany, 2018; p. 176. [Google Scholar]
- Reef Resilience Network (RRN). Restoration. Retrieved. Available online: http://www.reefresilience.org/restoration/ (accessed on 4 April 2018).
- National Oceanic and Atmospheric Administration (NOAA). What Is an Artificial Reef? Available online: https://oceanservice.noaa.gov/facts/artificial-reef.html (accessed on 4 April 2018).
- EPA. Guidelines and Management Practices for Artificial Reef Siting, Use, Construction, and Anchoring in Southeast Florida. Southeast Florida Coral Reef Initiative. TP-176. 2011, p. 162. Available online: http://nsgl.gso.uri.edu/flsgp/flsgph11003.pdf (accessed on 10 November 2018).
- EA, Environment Agency. Cost Estimation for Channel Management—Summary of Evidence. Report—SC080039/R3. 2015, p. 67. Available online: http://evidence.environment-agency.gov.uk/FCERM/Libraries/FCERM_Project_Documents/SC080039_cost_channel_mgmt.sflb.ashx (accessed on 10 November 2018).
- Timmermans, M. Beheerplan Baggerwerken Waterschap Hollandse Delta. 2014, p. 32. Available online: https://www.wshd.nl/binaries/content/assets/wshd---website/common/agendapunt_12_beheerplan_baggerwerken_2014-2018.pdf (accessed on 10 November 2018). (In Dutch).
- World Bank. People’s Republic of Bangladesh Revival of Inland Water Transport: Options and Strategies Bangladesh; Development Series Paper No. 20; World Bank: Washington, DC, USA, 2007; Available online: http://siteresources.worldbank.org/INTBANGLADESH/Resources/BDS20.pdf (accessed on 10 November 2018).
- City of Bath. Bath and North East Somerset Flood Risk Management Strategy Report. Appendix J. Available online: http://www.bathnes.gov.uk/sites/default/files/sitedocuments/Planning-and-Building-Control/Planning-Policy/Evidence-Base/Flood-Risk/FRMSAppendixJ.pdf (accessed on 17 August 2018).
- CPB. Kosteneffectiviteit van maatregelen en pakketten Kosten-batenanalyse voor Ruimte voor de Rivier. J. Ebregt (In Dutch). C.J.J. Eijgenraam en H.J.J. Stolwijk. CPB Document 83. 2005. Available online: https://www.cpb.nl/sites/default/files/publicaties/download/kosteneffectiviteit-van-maatregelen-en-pakketten-kosten-batenanalyse-voor-ruimte-voor-de.pdf (accessed on 10 November 2018).
- Die Rheinpfalz, Mehr Geld vom Bund für Hochwasserschutz. Available online: https://www.rheinpfalz.de/lokal/artikel/mehr-geld-vom-bund-fuer-hochwasserschutz/ (accessed on 4 April 2018). (In German).
- Mechler, R. Cost-Benefit Analysis of Natural Disaster Risk Management in Developing Countries; Disaster Risk Management in Development Cooperation; GTZ: Bonn, Germany, 2005; p. 126. [Google Scholar]
- Tyndall, J.; Bowman, T. Iowa Nutrient Reduction Strategy Best Management Practice Cost Overview Series: Constructed Wetlands; Department of Ecology & Natural Resource Management, Iowa State University: Ames, IA, USA, 2016. [Google Scholar]
- Klijn, F.; Asselman, N.; Wagenaar, D. Room for Rivers: Risk Reduction by Enhancing the Flood Conveyance Capacity of The Netherlands’ Large Rivers. Geosciences 2018, 8, 224. [Google Scholar] [CrossRef]
- Palmer, M.A.; Hondula, K.L.; Koch, B.J. Ecological Restoration of Streams and Rivers: Shifting Strategies and Shifting Goals. Annu. Rev. Ecol. Evol. Syst. 2014, 45, 247–269. [Google Scholar] [CrossRef]
- STOWA, Stichting Toegepast Onderzoek Waterbeheer. Deltaproof. Room for the River. Available online: http://deltaproof.stowa.nl/Publicaties/deltafact/Room_for_the_river?subject=9 (accessed on 14 September 2018).
- Roca, M. Green Approaches in River Engineering, HR Wallingford. Available online: http://www.hrwallingford.com/ (accessed on 14 September 2018).
- Schielen, R.M.; Jesse, P.; Botwidt, L.J. On the use of flexible spillways to control the discharge ratio of the Rhine in The Netherlands: Hydraulic and morphological. Neth. J. Geosci. 2007, 86, 77–88. [Google Scholar]
- Wierig, H.P.; Kretschmer, W. Reserve Area for Flood Retention Hördt. Alfa Project Presentation. Available online: http://alfa-project.eu/_userdata/files/2%20SGD%20S%C3%BCd%20-%20Wierig%20-%20ALFA%20conference%20%5BCompatibiliteitsmodus%5D.pdf (accessed on 14 September 2018).
- Woods Ballard, W.; Wilson, S.; Udale-Clarke, H.; Illman, S.; Scott, T.; Ashley, R.; Kellagher, R. The SUDS Manual. CIRIA C697, London. 2015. Available online: www.scotsnet.org.uk/documents/NRDG/CIRIA-report-C753-the-SuDS-manual-v6.pdf (accessed on 10 November 2018).
- Narayanan, A.; Pitt, R. Costs of Urban Stormwater Control Practices. University of Alabama, 2006. Available online: http://rpitt.eng.ua.edu/class/International%20urban%20water%20systems/Arvind%20Costs%20of%20Urban%20Stormwater%20Control%20Feb%2005%202006%20clean%20copy.htm (accessed on 10 November 2018).
- Environment Agency. Cost Estimation for SUDS—Summary of Evidence. Report–SC080039/R9; 2015. Available online: http://evidence.environment-agency.gov.uk/FCERM/Libraries/FCERM_Project_Documents/SC080039_cost_SUDS.sflb.ashx (accessed on 10 November 2018).
- Marzouk, M.M.; Ahmed, R.M. A case-based reasoning approach for estimating the costs of pump station projects. J. Adv. Res. 2011, 2, 289–295. [Google Scholar] [CrossRef]
- Environmental Protection Agency. EPA Preliminary Data Summary of Urban Storm Water Best Management Practices; EPA-821-R-99-012; Environmental Protection Agency: Washington, DC, USA, 1999; p. 214.
- Environmental Protection Agency (EPA). Storm-Water Wet Pond and Wetland Management Handbook. EPA 833-B-09-11; 2009; p. 80. Available online: https://www3.epa.gov/npdes/pubs/pondmgmtguide.pdf (accessed on 10 November 2018).
- Mentens, J.; Raes, D.; Hermy, M. Green roofs as a tool for solving the rainwater runoff problem in the urbanized 21st century? Landsc. Urban Plan. 2006, 77, 217–226. [Google Scholar] [CrossRef]
- Tempesta, T. Benefits and costs of urban parks: A review. Aestimum 2015, 67, 127–143. [Google Scholar]
- DuMoulin, A.; Welle, B.; Harnik, P.; Pierson, C.; DeCoster, K.; McGillivray, B.; Evers, T. Downtown Parks: Funding Methods, Management Structures, and Costs; City of Minneapolis: Minneapolis, MN, USA, 2008; p. 123. [Google Scholar]
- Dvorak, B.; Volder, A. A Green Roof Pilot Study at the Texas A&M Architecture Center Langford Building a Final Report, January 29 2010. Available online: https://faculty-legacy.arch.tamu.edu/bdvorak/research.htm (accessed on 10 November 2018).
- GSA. The Benefits and Challenges of Green Roofs on Public and Commercial Buildings. United States General Services Administration, 2011; p. 129. Available online: https://www.gsa.gov/cdnstatic/The_Benefits_and_Challenges_of_Green_Roofs_on_Public_and_Commercial_Buildings.pdf (accessed on 10 November 2018).
- Niu, H.; Clark, C.; Zhou, J.; Adriaens, P. Scaling of economic benefits from green roof implementation in Washington, DC. Environ. Sci. Technol. 2010, 44, 4302–4308. [Google Scholar] [CrossRef] [PubMed]
- Wong, N.H.; Tay, S.F.; Wong, R.; Leng Ong, C.; Sia, A. Life cycle cost analysis of rooftop gardens in Singapore. Build. Environ. 2003, 38, 499–509. [Google Scholar] [CrossRef]
- BI. The Difficult Beginnings of Green Roofs, Walls in PH. Available online: https://business.inquirer.net/2649/the-difficult-beginnings-of-green-roofs-walls-in-ph#ixzz5V0xOfZSj (accessed on 10 November 2018).
- Kind, J.; Gauderis, J.; van Velzen, E.; Silva, W. Kengetallen Kosten-batenanalyse Waterveiligheid 21e eeuw. Report 2008.044. Dutch Ministry of Water and Transport, 2008. Available online: https://repository.tudelft.nl/islandora/object/uuid%3A8834660b-e573-4c0b-a2c2-ab771223094f (accessed on 10 November 2018). (In Dutch).
- Maharjan, M.; Pathirana, A.; Gersonius, B.; Vairavamoorthy, K. Staged cost optimization of urban storm drainage systems based on hydraulic performance in a changing environment. Hydrol. Earth Syst. Sci. 2009, 13, 481–489. [Google Scholar] [CrossRef] [Green Version]
- Eijgenraam, C.; Brekelmans, R.; den Hertog, D.; Roos, K. Optimal Strategies for Flood Prevention. Manag. Sci. 2017, 63, 1644–1656. [Google Scholar] [CrossRef]
- Aerts, J.C.J.H.; Sprong, T.; Bannink, B. Aandacht voor Veiligheid; VU University Press: Amsterdam, The Netherlands, 2008; p. 213. Available online: https://research.vu.nl/en/publications/aandacht-voor-veiligheid-leven-met-water-klimaat-voor-ruimte-dg-w (accessed on 10 November 2018). (In Dutch)
- Maurer, M.; Scheidegger, A.; Herlyn, A. Quantifying costs and lengths of urban drainage systems with a simple static sewer infrastructure model. Urban Water J. 2013, 10, 234–254. [Google Scholar] [CrossRef]
- (EA) Environment Agency. Available online: http://evidence.environment-agency.gov.uk/FCERM/Libraries/FCERM_Project_Documents/SC080039_cost_house_resist_and_resilience.sflb.ashx (accessed on 10 October 2018).
Country | Building Type | Measure | Cost | Year | $2016/CPI 1 | Reference 2 |
---|---|---|---|---|---|---|
United States | Average residential building | Elevation existing building +2ft | $33,239–82,498/building | 2009 | $37,281–92,531/building | [30] [16] P |
United States | Average residential building | Elevation existing building +4ft | $35,464–87,535/building | 2009 | $39,777–98,180/building | [30] [16] P |
United States | Average residential building | Elevation existing +6ft | $37,319–91,732/building | 2009 | $41,857–102,888/building | [30] [16] P |
United States | Average building | Elevation | $19,231–192,000/building | 2015 | $19,481–194,496/building | [29] [31] |
Bangladesh/Vietnam | Rural house, wooden frame | Stilts bamboo, reinforced concrete | $1250–2500/house | 2015 | $1287–2574/house | [32] P |
Vietnam | Residential house | Fill sand +2 m | $1500–3000/building | 2014 | $1544–3088/building | [18] P |
United States | Average building | Re-location | $349,000 | 2015 | $353,537 | [29] |
Country | Building Type | Measure | Cost | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|---|
United States | Residential building | +0.6 m | $8290–13,690 | 2009 | $9298–15,354 | n.a. | [16] P |
United States | Residential building | +2 m | $12,576–21,126 | 2009 | $14,105–3695 | n.a. | [16] P |
United Kingdom | Residential building | +0.9 m | $13,000–18,200 | 2008 | $15,299–21,418 | 1–3% | [26] |
Germany | Average building | +1 m | $732/m length | 2011 | $771/m length | n.a. | [27] P |
United States | Waste water pump station | +1 m | $45,571 | 2016 | $45,571 | n.a. | [33] |
Vietnam | Residential building | +1 m | $500–9361 | 2013 | $569–10,667 | n.a. | [18] P |
Vietnam | Residential building | +1 m | $516/m2 | 2014 | $588/m2 | n.a. | [18] P |
Bangladesh | Residential building (23 m2) | n.a. | $679–1300 | 2010 | $773–1481 | n.a. | [34] |
Country | Building Type | Design Requirement | Costs | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|---|
United States | Basement waterproof | +0.6–2.7 m | $31–184/m2 | 2009 | $35–206/m2 | n.a. | [16] P |
Germany | Basement waterproof | n.a. | $606/m2 | 2011 | $638/m2 | n.a. | [27] P |
United States | Residential building | +0.6 m | $2151–4869 | 2009 | $2412–5461 | n.a. | [16] P |
United States | Residential building | +2.7 m | $8531–19,307 | 2009 | $9561–21,655 | n.a. | [16] P |
United Kingdom | Residential building | +0.9 m | $8073–18,369 | 2008 | $9054–20,602 | <1% | [26] P |
United Kingdom | Office | +0.9 m | $14,937–24,895 | 2008 | $20,442–34,070 | <1% | [26] P |
Germany | Residential (65 m2) | n.a. | $22,237 | 2011 | $23,424 | n.a. | [27] P |
Brazil | Residential | n.a. | $962 | 2010 | $1024 | n.a. | [35] |
Vietnam | Residential (60 m2) | +1 m | $248 | 2014 | $273 | n.a. | [18] P |
Germany | Oil tank | Proofing against buoyancy | $1210/tank | 2011 | $1550 | n.a. | [27] P |
Country | Flood Protection | Design Water Level (m) | Unit Cost | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|---|
Global | Storm surge barrier | <7 m | $0.27–3.6 billion/km | 2012 | $0.32–4.2 billion/km | $0.6–22 million/year | [14] P [16] P |
The Netherlands | Sea dike | 4–6 m | $18.7–22.4 million/km per m dike raised | 2009 | $20.8–25 million/km per m dike raised | $0.15 million/km per year | [14] P |
United States | Sea dike | 7 m | $25.6 million/km | 2013 | $26.4 million/km | 0.01–1% | [16] P |
European cities | Sea dike | varying | $18.6–26.7 million/km per m dike raised | 2012 | $21.8–31.2 million/km per m dike raised | 0.01–1% | [22] P |
Vietnam | Sea dike | n.a. | $2 million/km | 2013 | $2.3 million/km | n.a. | [36] P |
Vietnam | Sea dike | 3–5 m | $0.7–1.2 million/km per m dike raised | 2009 | $0.9–1.7 million/km per m dike raised | $0.03 million/km per year | [14] P |
United States | River dike | 3–6 m | $10.5–16.2 million/km | 2013 | $10.9–16.8 million/km | 0.01–1% | [37] P [38] P |
Laos | River dike | n.a. | n.a. | n.a | $4.1 million/km | n.a. | [47] |
Canada | River dike | n.a. | $5 million/km per m dike raised | 2012 | $5.3 million/km per m dike raised | 0.01–1% | [13] P |
The Netherlands | Rural dike | 4–6 m | $4.5–12.4 million/km per m dike raised | 2009 | $5–14 million/km per m dike raised | $0.15 million/km per year | [14] P |
Canada | Rural dike | n.a. | $1.8 million/km per m dike raised | 2012 | $1.9 million/km per m dike raised | n.a. | [13] P |
Philippines/Mozambique | Small earthen dike | 1 m | $0.1–0.2 million/km | 2009 | $0.1–0.2 million/km | n.a. | [36] [37] [39] P |
Vietnam | Rural dike | n.a. | $0.7–1.2 million/km per m dike raised | 2013 | $1–1.7 million/km per m dike raised | $0.03 million/km per year | [14] P |
Indonesia | Rural dike | n.a. | n.a | n.a | $3.4–3.9/m3 | n.a. | [48] |
United States | Deployable floodwall | n.a. | $5.5 million/km | 2015 | $5.6 million/km | $0.26 million/km | [29] P |
United States | T-Wall | 4 m | $12.5 million/km | 2008 | $13.8 million/km | 0.01–1% | [40]; [16] P [17]P [29] |
United States | T-Wall | 7.2 m | $26.5 million/km | 2008 | $29.3 million/km | 0.01–1% | [40]; [16] P [17] P |
Vietnam | Breakwater | (<2 m waterdepth) | $0.13–0.5 million/km | 2015 | $0.14–0.5 million/km | n.a. | [21] P |
Developed countries | Breakwater | (<2 m waterdepth) | $1.3–4.8 million/km | 2015 | $1.4–6 million/km | n.a. | [21] P |
United States | Breakwater (Ruble mound) | (17 m deep, 3 m high) | $60 million/km | 2015 | $60.8 million/km | 0.01–1% | [17] P |
United States | Rip-rap | 2–3 m | $250–666/m | 2012 | $262–699/m | 2–4% | [43] [44] [17] P |
United States | Rip-rap | n.a. | $80/ton | 2016 | $80/ton | n.a. | [41] |
United Kingdom | Rip-rap | n.a. | $130–330/m2 | 2016 | $130–330/m2 | n.a. | [49] |
United States | Sandbag wall | +1 m | - | - | ~$200.000–400.000/km | n.a. | Appendix F |
United States | (Retrofit-) Bulkhead | n.a. | $10–41 million/km | 2010 | $12.7–51.9 million/km | 0.01–1% | [16] P |
Country | Type | Cost | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|
The Netherlands | Beach nourishment | $3–7.5/m3 | 2009 | $4.3–8.4/m3 | n.a. | [14] P |
European Union | Beach nourishment | $4.2–8.4/m3 | 2009 | $5.5–11/m3 | n.a. | [15] P |
United States | Beach nourishment | $4.7–17.6/m3 | 2015 | $4.8–17.8/m3 | n.a. | [17] P |
South Africa | Beach nourishment | $14.3/m3 | 2009 | $20.6/m3 | n.a. | [15] P |
Australia | Beach nourishment | $6.4/m3 | 2009 | $7.7/m3 | n.a. | [15] P |
Vietnam | Beach nourishment | $5.6/m3 | 2015 | $5.8/m3 | n.a. | [53] |
Australia/United States | Dune Restoration | n.a. | n.a. | $7.636–13.888/ha | $333–2.526/ha | Appendix C; [54] P |
United States | Dune recovery from oil spill | n.a. | n.a. | $52.000–76.000/ha | $333–2.526/ha | Appendix C; [54] P |
United States | Beach restoration | $10.5 million/km | 2015 | $10.8 million/km | $0.5 million/km | [29] |
United States | Beach restoration and groins | $22.1 million/km | 2015 | $22.4 million/ha | $0.55 million/km | [29] |
United States | Groin | $1.6 million/groin | 2010 | $1.8 million/groin | 0.01–1% | [16] P |
Country | Type | Costs | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|
Developed countries | Wetland restoration | $67,128/ha | 2010 | $84,938/ha | n.a. | [19] P |
United States | Wetland restoration | $228,647/ha | 2015 | $231,619/ha | $11.027/ha | [29] |
United States | Marshland creation | $3/m3 | 2007 | $3.5/m3 | n.a. | [37] |
Global | Salt marshes | $11,100/ha | 2014 | $12,005/ha | n.a. | [21] P |
Developed | Salt marshes | - | - | $1191/ha | n.a. | [19] P |
Developing | Salt marshes | - | - | $67,128/ha | n.a. | [19] P |
Developed | Seagrass | - | - | $106,782/ha | n.a. | [19] P |
Developed countries | Mangrove restoration | $38,982/ha | 2010 | $49,324/ha | n.a. | [19] P |
Developing countries | Mangrove restoration | $1191/ha | 2010 | $1506/ha | $7–85/ha | [66] [67] [19] P |
Global | Mangrove restoration | $1000–3000/ha | 2014 | $1081–3244/ha | n.a. | [21] P |
Vietnam | Mangrove restoration | $25–200/m | 2014 | $25–200/m | $7–85/ha | [22] P [66] [67] |
Developed countries | Coral reef restoration | $1,826,651/ha | 2010 | $2,311,296/ha | n.a. | [19] P |
Global | Coral reef restoration | $1,156,200/ha | 2014 | $1,250,546/ha | n.a. | [21] P |
Developing countries | Coral reef restoration | $89,269/ha | 2010 | $112,953/ha | n.a. | [19] P |
Developed | Oyster Reef | $66,821/ha | 2014 | $72,273/ha | n.a. | [19] P |
United Kingdom | Artificial reef Construction | $30,000–90,000/100 m | 2015 | $30,263–90,789/100 m | n.a. | [68] |
Country | Type | Cost | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|
United Kingdom | Mechanical dredging + storage | $36–48/m3 | 2007 | $44–59/m3 | $1.680–51.311/km | [78] |
United Kingdom | Suction dredging | $10.6/m3 | 2007 | $13/m3 | $1.680–51.311/km | [78] |
United Kingdom | Bank dredging | $48,400/km | 2007 | $59,805/km | n.a. | [78] |
The Netherlands | Dredging and transport | $15–18.9/m3 | 2013 | $15.1–19.4/m3 | n.a. | [79] |
Bangladesh | Dredging | $1.16/m3 | 2007 | $2/m3 | n.a. | [80] |
United Kingdom | Channel widening | $4–16/m3 | 2010 | $4.5–18/m3 | n.a. | [81] |
The Netherlands | River widening | $2.64 billion | 2005 | $3.11 billion | n.a. | [82] |
United Kingdom | Eco engineered bank protection | $44,000–792,000/km | 2007 | $54,000–978,000/km | n.a. | [78] |
Germany | Detention area (32 million m3) | $3/m3 | 2015 | $3/m3 | n.a. | [83] O |
Peru | Detention area (373 million m3) | 1/m3 | 2005 | $1.9/m3 | $5 million | [84] |
Global | Inland wetlands | - | - | $45,752/ha | n.a. | [19] P |
United States | Inland wetland | - | - | $10,022/ha | $785/ha | [85] |
Country | Type | Costs | Year | $2016/CPI 1 | O&M/year $2016 | Reference 2 |
---|---|---|---|---|---|---|
United Kingdom | Sewer pipe, urban (concrete) | $183–385/m | 2008 | $215–453/m | 0.5–10% | [94] |
United States | Sewer pipe, urban (metal) | $51–723/m | 2006 | $61–861/m | n.a. | [93] |
South Africa | Lined channel | $59/m | 2013 | $67/m | ~$10/m | [23] |
Global | Pumping station | - | - | $0.4–1.7 million/m3/s | n.a. | Appendix D |
United Kingdom | Retention pond | $13–22/m3 | 2015 | $15–26/m3 | 0.5–10% | [94] |
United States | Retention area | $17.5–35/m3 | 1999 | $24.8–50.6/m3 | <1% (dry); 3–6% (wet) | [96] [93] |
United Kingdom | Wetland | $22–26/m3 | 2008 | $26–30/m3 | 0.5–10% | [94] |
United Kingdom | Green roof | $70–79/m2 | 2008 | $82–93/m2 | 0.5–10% | [94] |
South Africa | Green roof | $27–33/m2 | 2013 | $32–39/m2 | n.a. | [23] |
United States | Green roofs | $107–211/m2 | 2010 | $114–225/m2 | $2.3–3.5/m2 | [102] [103] P |
Singapore | Green roof | $54–120/m2 | 2003 | $74–164/m2 | n.a. | [104] P |
Phillipines | Green roof | $59–64/m2 | 2001 | $67–73/m2 | n.a. | [105] |
United States/United Kingdom | Park construction | $1110/m2 | 2008 | $1227/m2 | $0.4–2/m2 | [100] [99] p |
United Kingdom | Infiltration trench | $65–87/m | 2015 | $77–102/m | 20% | [94] |
United Kingdom | Concrete storage tank | $395–455/m3 | 2015 | $465–535/m3 | 0.5–10% | [94] |
© 2018 by the author. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Aerts, J.C.J.H. A Review of Cost Estimates for Flood Adaptation. Water 2018, 10, 1646. https://doi.org/10.3390/w10111646
Aerts JCJH. A Review of Cost Estimates for Flood Adaptation. Water. 2018; 10(11):1646. https://doi.org/10.3390/w10111646
Chicago/Turabian StyleAerts, Jeroen C. J. H. 2018. "A Review of Cost Estimates for Flood Adaptation" Water 10, no. 11: 1646. https://doi.org/10.3390/w10111646
APA StyleAerts, J. C. J. H. (2018). A Review of Cost Estimates for Flood Adaptation. Water, 10(11), 1646. https://doi.org/10.3390/w10111646