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3 - Urban climate

Processes, trends, and projections

Published online by Cambridge University Press:  05 August 2012

Reginald Blake
Affiliation:
New York City College of Technology
Alice Grimm
Affiliation:
Universidade Federal do Paranà
Toshiaki Ichinose
Affiliation:
Nagoya University/National Institute for Environmental Studies
Radley Horton
Affiliation:
Center for Climate Systems Research, Columbia University
Stuart Gaffin
Affiliation:
Center for Climate Systems Research, Columbia University
Shu Jiong
Affiliation:
East China Normal University
Daniel Bader
Affiliation:
Center for Climate Systems Research, Columbia University
L. DeWayne Cecil
Affiliation:
US Geological Survey
Cynthia Rosenzweig
Affiliation:
NASA Goddard Institute for Space Studies
William D. Solecki
Affiliation:
Hunter College, City University of New York
Stephen A. Hammer
Affiliation:
Columbia University, New York
Shagun Mehrotra
Affiliation:
Columbia University, New York
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Summary

Introduction

Cities play a multidimensional role in the climate change story. Urban climate effects, in particular the urban heat island effect, comprise some of the oldest observations in climatology, dating from the early nineteenth century work of meteorologist Luke Howard (Howard, 1820). This substantially predates the earliest scientific thought about human fossil fuel combustion and global warming by chemist Svante Arrhenius (Arrhenius, 1896). As areas of high population density and economic activity, cities may be responsible for upwards of 40 percent of total worldwide greenhouse gas emissions (Satterthwaite, 2008), although various sources have claimed percentages as high as 80 percent (reviewed in Satterthwaite, 2008). Figure 3.1 shows a remotely sensed map of nocturnal lighting from urban areas that is visible from space and vividly illustrates one prodigious source of energy use in cities. Megacities, often located on the coasts and often containing vulnerable populations, are also highly susceptible to climate change impacts, in particular sea level rise. At the same time, as centers of economic growth, information, and technological innovation, cities will play a positive role in both climate change adaptation and mitigation strategies.

Urban population recently surpassed non-urban population worldwide and is projected to grow from 50 percent currently to 70 percent by 2050 (UNFPA, 2007). The urban population growth rate will be even more rapid in developing countries. In terms of absolute numbers, urban population will grow from ~3.33 billion today to ~6.4 billion in 2050, about a 90 percent increase.

Type
Chapter
Information
Climate Change and Cities
First Assessment Report of the Urban Climate Change Research Network
, pp. 43 - 82
Publisher: Cambridge University Press
Print publication year: 2011

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References

Arrhenius, S. (1896). On the influence of carbonic acid in the air upon the temperature of the ground. London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science (fifth series), 41, 237–275.CrossRefGoogle Scholar
,Australian Bureau of Meteorology (2009). Climate information. www.bom.gov.au/climate/.
Balling, R. C. and Brazel, S. W. (1987). Diurnal variations in Arizona monsoon precipitation. Monthly Weather Review, 115, 342–346.2.0.CO;2>CrossRefGoogle Scholar
Barras, J. et al. (2003). Historical and Projected Coastal Louisiana Land Changes: 1978–2050. USGS.Google Scholar
Bornstein, R. and LeRoy, M. (1990). Urban barrier effects on convective and frontal thunderstorms. Fourth Conference on Mesoscale Processes, American Meteorological Society, 2.Google Scholar
Burian, S. J. and Shepherd, J. M. (2005). Effect of urbanization on the diurnal rainfall pattern in Houston. Hydrological Processes, 19, 1089–1103.CrossRefGoogle Scholar
Carbonell, A. and Meffert, D. J. (2009). Climate Change and the Resilience of New Orleans: the Adaptation of Deltaic Urban Form. Commissioned Research Report for the World Bank 2009 Urban Research Symposium, Marseilles, France.Google Scholar
,Census of Canada (2006). Statistics Canada, accessed 2010, www.statcan.gc.ca/.Google Scholar
Changnon, S. A. (1968). The La Port weather anomaly – fact or fiction? Bulletin of the American Meteorological Society, 49, 4–11.CrossRefGoogle Scholar
Changnon, S. A. and Westcott, N. E. (2002). Heavy rainstorms in Chicago: Increasing frequency altered impacts, and future implications. Journal of American Water Resources, 48, 1467–1475.CrossRefGoogle Scholar
Charlson, R. J., Schwartz, S. E., Hales, J. M., et al. (1992). Climate forcing by anthropogenic aerosols. Science, 255, 423–430.CrossRefGoogle ScholarPubMed
Chen, T. C., Wang, S. Y., and Yen, M. C. (2007). Enhancement of afternoon thunderstorm activity by urbanization in a valley: Tapei. Journal of Applied Meteorology and Climatology, 46, 1324–1340.CrossRefGoogle Scholar
Chen, Q., Wang, L. and Tawes, R. (2008). Hydrodynamic response of northeastern Gulf of Mexico to Hurricanes. Estuaries and Coasts 31, 1098–1116.CrossRefGoogle Scholar
Christensen, J.H., et al. (2007) Regional Climate Projection. Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change, eds. Solomon, S., et al. Cambridge University Press, 849–940.Google Scholar
Coleman, J. M., Roberts, H. H. and Stone, G. W. (1998). The Mississippi Delta: An overview. Journal of Coastal Research 14, 698–716.Google Scholar
Coleman, J. M. and Prior, D. B. (1980). Deltaic Sand Bodies. 171.
Collins, M. (2005). El Nino- or La Nina-like climate change? Climate Dynamics, 24, 89–104.CrossRefGoogle Scholar
Cunha, L. R. and Miller Santos, M. (1993). The Rio reconstruction project: the first two years. In Towards A Sustainable Urban Environment: The Rio de Janeiro Study, World Bank Discussion Paper 195, Washington, DC, USA:World Bank.Google Scholar
Day, J. W. et al. (2007). Restoration of the Mississippi Delta: Lessons from Hurricanes Katrina and Rita. Science, 315, 1679–1684.CrossRefGoogle ScholarPubMed
Dixon, T. H. et al. (2006). Subsidence and flooding in New Orleans. Nature 441, 587–588.CrossRefGoogle ScholarPubMed
Dilley, M. (2000). Reducing vulnerability to climate variability in Southern Africa: the growing role of climate information. Climatic Change, 45, 63–73.CrossRefGoogle Scholar
Donnelly, J. P. and Woodruff, J. D. (2007). Intense hurricane activity over the past 5,000 years controlled by El Nino and the West African monsoon. Nature, 447, 465–468.CrossRefGoogle ScholarPubMed
Dunion, J. P. and Velden, C. S. (2004). The impact of the Saharan air layer on Atlantic tropical cyclone activity. Bulletin of the American Meteorological Society, 85, 353–365.CrossRefGoogle Scholar
Emanuel, K. (2005). Increasing destructiveness of tropical cyclones over the past 30 years. Nature, 436, 686–688.CrossRefGoogle ScholarPubMed
Emanuel, K. (2007). Environmental factors affecting tropical cyclone power dissipation. Journal of Climate, 20, 5497–5509.CrossRefGoogle Scholar
Emanuel, K. (2008). Hurricanes and global warming: results from downscaling IPCC AR4 simulations. Bulletin of the American Meteorological Society, 89, 347–367.CrossRefGoogle Scholar
,Environment Canada (2009). Canada's National Climate and Weather Data Archive. www.climate.weatheroffice.gc.ca.
Eri, S., Aishali, N., and Horowitz, L. W. (2009). Present and potential future contributions of sulfate, black and organic carbon aerosols from China to global air quality, premature mortality and radiative. Atmospheric Environment, 43, 2814–2822.Google Scholar
Evan, A. T., Dunion, J. P., Foley, J. A., Heidinger, A. K., and Velden, C. S. (2006). New evidence for a relationship between Atlantic tropical cyclone activity and African dust outbreaks. Geophysical Research Letters, 33, L19813, doi:19810.11029/12006GL026408.CrossRefGoogle Scholar
Fairbanks, R. G. (1989). 17,000-year glacio-eustatic sea level record: influence of glacial melting rates on the Younger Dryas event and deep-ocean circulation. Nature, 342, 637–642.CrossRefGoogle Scholar
Fernandes, E. (2000). The legalisation of favelas in Brazil: problems and prospects. Third World Planning Review, 22(2), 167–188.CrossRefGoogle Scholar
Fritz, H. M. et al. (2008). Hurricane Katrina storm surge reconnaissance. Journal of Geotechnical and Geoenvironmental Engineering 134, 644–656.CrossRefGoogle Scholar
Gaffin, S. R., Rosenzweig, C., Khanbilvardi, R., et al. (2008). Variations in New York City's urban heat island strength over time and space. Theoretical and Applied Climatology, 94, 1–11.CrossRefGoogle Scholar
Gao, X., Yong, L., and Lin, W. (2003). Simulation of effects of land use change by a regional climate model. Advances in Atmospheric Sciences, 20, 583–592.Google Scholar
Goldenberg, S. B., Landsea, C., Mestas-Nunez, A. M., and Gray, W. M. (2001). The recent increase in Atlantic hurricane activity: causes and implications. Science, 293, 474–479.CrossRefGoogle ScholarPubMed
Gould, H. R. (1970), in Deltaic Sedimentation Vol. Special Publication 15, ed. Morgan, J. P.. Society of Economic Paleontologists and Mineralogists.Google Scholar
Gray, W. M. (1979). Hurricanes: their formation, structure, and likely role in the tropical circulation. In Shaw, D. B. (Ed.), Meteorology Over the Tropical Oceans, London, UK: Royal Meteorological Society, pp. 155–218.Google Scholar
Gray, W. M. (1984). Atlantic seasonal hurricane frequency. Part I: El Nino and 30 mb quasi-biennial oscillation influences. Monthly Weather Review, 112, 1649–1668.2.0.CO;2>CrossRefGoogle Scholar
Grimm, A. M. (2000). Climate variability in southern South America associated with El Nino and La Nina events. Journal of Climate, 13, 35–58.2.0.CO;2>CrossRefGoogle Scholar
Grimm, A. M. (2003). The El Nino impact on the summer monsoon in Brazil: regional processes versus remote influences. Journal of Climate, 16, 263–280.2.0.CO;2>CrossRefGoogle Scholar
Grimm, A. (2004). How do La Niña events disturb the summer monsoon system in Brazil? Climate Dynamics, 22, 123–138CrossRefGoogle Scholar
Grimm, A. M. and Tedeschi, R. G. (2009). ENSO and extreme rainfall events in South America. Journal of Climate, 22, 1589–1609.CrossRefGoogle Scholar
Gupta, P., Christopher, S. A., Wang, J., et al. (2006). Satellite remote sensing of particulate matter and air quality assessment over global cities. Atmospheric Environment, 40, 5880–5892.CrossRefGoogle Scholar
Gusmão, P. P., Serrano do Carmo, P., and Vianna, S. B. (2008). Rio Proximos 100 Anos. Rio De Janiero, Brazil: Instituto Municipal de Urbanismo Pereira Passos.Google Scholar
Guttman, N. B. (1989). Statistical descriptors of climate. Bulletin of the American Meteorological Society, 70, 602–607.2.0.CO;2>CrossRefGoogle Scholar
Hachadoorian, L., Gaffin, S. R., and Engelman, R. (2011). Mapping the population future: projecting a gridded population of the World using ratio methods of trend extrapolation. In R. P. Cincotta and L. J. Gorenflo (Eds.), Human Population: The Geography of Homo Sapiens and its Influence on Biological Diversity, Heidelberg,Germany: Springer-Verlag.Google Scholar
Harshvardhan, S., Schwartz, E., Benkovitz, C. M., and Guo, G. (2002). Aerosol influence on cloud microphysics examined by satellite measurements and chemical transport modeling. Journal of the Atmospheric Sciences, 59, 714–725.2.0.CO;2>CrossRefGoogle Scholar
Hoerling, M. P., Kumar, A., and Zhong, M. (1997). El Nino, La Nina and the nonlinearity of their teleconnections. Journal of Climate, 10, 1769–1786.2.0.CO;2>CrossRefGoogle Scholar
Horton, R. E. (1921). Thunderstorm breeding spots. Monthly Weather Review, 49, 193.Google Scholar
Horton, R. (2007). An Observational and Modeling Study of the Regional Impacts of Climate Variability, Columbia University.
Horton, R., Herweijer, C., Rosenzweig, C., et al. (2008). Sea level rise projects for the current generations CGCMs based on the semi-empirical method. Geophysical Research Letters, 35.CrossRefGoogle Scholar
Horton, R., Gornitz, V., Bowman, M., and Blake, R. (2010). Climate observations and projections. Ann. New York Acad. Sci., 1196, 41–62, doi:10.1111/j.1749–6632.2009.05314.x.CrossRefGoogle ScholarPubMed
Horton, R., and Rosenzweig, C. (2010). Climate Risk Information. Ann. New York Acad. Sci., 1196, 147–228, doi:10.1111/j.1749–6632.2010.05323.x.CrossRefGoogle ScholarPubMed
Howard, L (1820). The Climate of London, Deduced from Meteorological Observations, Made at Different Places in the Neighbourhood of the Metropolis. 2, London, 1818–1820.Google Scholar
Huff, F. A. and Changnon, S. A. (1972a). Climatological assessment of urban effects on precipitation at St. Louis. Journal of Applied Meteorology, 11, 823–842.2.0.CO;2>CrossRefGoogle Scholar
Huff, F. A. and Changnon, S. A. (1972b) Climatological Assessment of Urban Effects on Precipitation St. Louis: Part II. Final Report, NSF Grant GA-18781, Illinois State Water Survey.
Hurrell, J. W. (1995). Decadal trends in the North Atlantic Oscillation and relationships to regional temperature and precipitation. Science, 269, 676–679.CrossRefGoogle Scholar
Hurrel, J. W., Kushnir, Y., Ottersen, G., and Visbeck, M. (2003). An overview of the North Atlantic Oscillation. In Hurrell, J. W. et al. (Eds.), The North Atlantic Oscillation: Climatic Significance and Environmental Impact, Geophysical Monograph 134, Washington, DC, USA:American Geophysical Union, pp. 1–35.CrossRefGoogle Scholar
Ichinose, T. and Bai, Y. (2000). Anthropogenic heat emission in Shanghai City. In Proceedings of Annual Meeting of Environmental Systems Research, Vol. 28, pp. 329–337.Google Scholar
,IPCC (2007). Climate Change 2007: The Physical Science Basis. Contribution of Working Group I to the Fourth Assessment Report of the Intergovernmental Panel on Climate Change, Cambridge, UK: Cambridge University Press.Google Scholar
Jáuregui, E. (1997). Heat island development in Mexico City. Atmospheric Environment, 31(22), 3821–3831.CrossRefGoogle Scholar
Jauregui, E. and Romales, E. (1996). Urban effects on convective precipitation in Mexico City. Atmospheric Environment, 30, 3383–3389.CrossRefGoogle Scholar
Jiong, S. (2004). Shanghai's land use pattern, temperature, relative humidity and precipitation. Atlas of Shanghai Urban Physical Geography.
Karl, T. R. and Knight, R. W. (1998). Secular trends of precipitation amount, frequency and intensity in the United States. Bulletin of the American Meteorological Society, 79, 231–241.2.0.CO;2>CrossRefGoogle Scholar
Kaufmann, R. K., Seto, K. C., Schneider, A., et al. (2007). Climate response to rapid urban growth: evidence of a human-induced precipitation deficit. Journal of Climate, 20, 2299–2306.CrossRefGoogle Scholar
Kolb, C. R. and Saucier, R. T. (1982). Engineering geology of New Orleans. Review of Engineering Geology 5, 75–93.CrossRefGoogle Scholar
Kothawale, D. R. and Rupa Kumar, K. (2005). On the recent changes in surface temperature trends over India. Geophysical Research Letters, 32.CrossRefGoogle Scholar
Kratzer, P. (1937). Das stadtklima, Braunschweig: F.Viewg uE Sohne.Google Scholar
Kratzer, P. (1956). Das stadtklima (2nd edition), Braunschweig: F Vieweg uE Sohn (tranlated by the U.S. Air Force, Cambridge Research Laboratories).Google Scholar
Landsberg, H. (1956). The climate of towns. In Thomas, W. L. (Ed.), Man's Role in Changing the Face of the Earth, Chicago, IL, USA: The University of Chicago Press.Google Scholar
Landsberg, H. E. (1970). Man-made climate changes. Science, 170, 1265–1274CrossRefGoogle Scholar
Lawrence, M. B. and Gross, J. M. (1989). Annual summaries: Atlantic hurricane season of 1988. Monthly Weather Review, 117, 2248–2459.2.0.CO;2>CrossRefGoogle Scholar
Lian, L. and Shu, J. (2007). Numerical simulation of summer climate over center and east China using a regional climate model. Journal of Tropical Meteorology, 23, 162–169.Google Scholar
Liu, K. B. and Fearn, M. L. (2000). Reconstruction of prehistoric landfall frequencies of catastrophic hurricanes in northwestern Florida from lake sediment records. Quaternary Research 54, 238–245.CrossRefGoogle Scholar
Lopez, J. A. (2007). The Multiple Lines of Defense Strategy to Sustain Coastal Louisiana. Lake Pontchartrain Basin Foundation, New Orleans.Google Scholar
Mann, M. E., Woodruff, J. D., Donnelly, J. P., and Zhang, Z. (2009). Atlantic hurricanes and climate over the past 1,500 years. Nature, 460, 880–883.CrossRefGoogle ScholarPubMed
Marengo, J. A. and Camargo, C. C. (2008). Surface air temperature trends in Southern Brazil for 1960–2002. International Journal of Climatology, 28, 893–904.CrossRefGoogle Scholar
McTaggart-Cowan, R., Bosart, L. F., Gyakum, J. R. and Altallah, E. H. (2007). Hurricane Katrina (2005) Part 1: Complex life cycle of an intense tropical cyclone. Monthly Weather Review 135, 3905–3926.CrossRefGoogle Scholar
Morton, R. A., Benier, J. C. and Barras, J. A. (2006). Evidence of regional subsidence and associated interior wetland loss induced by hydrocarbon production, Gulf Coast region, USA. Environmental Geology 50, 261–274.CrossRefGoogle Scholar
Nakicenovic, N. and Coauthors, (2000). Special Report on Emissions Scenarios: A Special Report of Working Group III of the Intergovernmental Panel on Climate Change, Cambridge, UK: Cambridge University Press.Google Scholar
Nastos, P. T. and Zerefos, C. S. (2007). On extreme daily precipitation totals at Athens, Greece. Advances in Geosciences, 10, 59–66.CrossRefGoogle Scholar
,National Climatic Data Center, Global Historical Climatology Network: Version 2 (2008). www.ncdc.noaa.gov/oa/climate/ghcn-monthly/index.php.
Nelson, S. A. and LeClair, S. F. (2006). Katrina's unique splay deposits in a New Orleans neighborhood. GSA Today 16, 4–10, doi: 10.1130/GSAT01609A.1.CrossRefGoogle Scholar
Ohashi, Y., Genchi, Y., Kondo, H., et al. (2007). Influence of air-conditioning waste heat on air temperature in Tokyo during summer: numerical experiments using an urban canopy model coupled with a building energy model. Journal of Applied Meteorology and Climatology, 46, 66–81.CrossRefGoogle Scholar
Oke, T. R. (1987). Boundary Layer Climates (2nd edition), London, UK: Routledge.Google Scholar
Orr, J. C., Fabry, V. J., Aumont, O., et al. (2005). Anthropogenic ocean acidification over the twenty-first century and its impact on calcifying organisms. Nature, 437, 681–686.CrossRefGoogle ScholarPubMed
Parson, E., Burkett, V., Fisher-Vanden, K., et al. (2007). Global change scenarios: their development and use. Sub-report 2.1B of Synthesis and Assessment Product 2.1 by the US Climate Change Science Program and the Subcommittee on Global Change Research, Washington, DC, USA: Department of Energy, Office of Biological and Environmental Research, p. 106.
Pawan, G., Sundar, C. A., and Jun, W. (2006). Satellite remote sensing of particulate matter and air quality assessment over global cities. Atmospheric Environment, 40, 5880–5892.Google Scholar
Pielke, R. A. (2005). Land use and climate change. Science, 310, 1625–1626.CrossRefGoogle ScholarPubMed
Reed, D. J. (2002). Sea-level rise and coastal marsh sustainability: geological and ecological factors in the Mississippi delta plain. Geomorphology 48, 233–243.CrossRefGoogle Scholar
Ren, G. Y., Chu, Z. Y., Chen, Z. H., and Ren, Y. Y. (2007). Implications of temporal change in urban heat island intensity observed at Beijing and Wuhan stations, Geophysical Research Letters, 34, L05711, doi:10.1029/2006GL027927.CrossRefGoogle Scholar
Rignot, E. and Kanagaratnam, P. (2006). Changes in the velocity structure of the Greenland ice sheet. Science, 311, 986–990.CrossRefGoogle ScholarPubMed
Rogers, J. D. et al. (2008). Geological Conditions Underlying the 2005 17th Street Canal Levee Failure in New Orleans. Journal of Geotechnical and Geoenvironmental Engineers 134, 583–601.CrossRefGoogle Scholar
Ropelewski, C. (1999). The Great El Nino of 1997 and 1998: impacts on precipitation and temperature. Consequences, 5, 17–25.Google Scholar
Rosenzweig, C., Solecki, W. D., Parshall, L., and Hodges, S. (Eds.) (2006). Mitigating New York City's Heat Island with Urban Forestry, Living Roofs, and Light Surfaces, New York City Regional Heat Island Initiative, Final Report 06–06, New York State Energy Research and Development Authority.
Russel, G. (2005) in The Times Picayune Vol. 169 A1 (New Orleans, 2005).
Sanderson, E. and Boyer, M. (2009). Mannahatta: A Natural History of New York City, New York, USA: Abrams Books.Google Scholar
Satterthwaite, D. (2008). Cities' contribution to global warming: notes on the allocation of greenhouse gas emissions. Journal of Environment and Urbanization, 20, 539–549.CrossRefGoogle Scholar
Seed, R. B. et al. (2008). New Orleans and Hurricane Katrina 1: Introduction, overview, and the east flank. Journal of Geotechnical and Geoenvironmental Engineering 135, 701–739.CrossRefGoogle Scholar
Selover, N. (1997). Precipitation patterns around an urban desert environment: topographic or urban influences? Association of American Geographers Convention, 2.Google Scholar
Shepherd, J. M. (2005). A review of current investigations of urban-induced rainfall and recommendations for the future. Earth Interactions, 9, 1–27.CrossRefGoogle Scholar
Shepherd, J. M. (2006). Evidence of urban-induced precipitation variability in arid cliamte regimes. Journal of Arid Environments, 67, 607–628.CrossRefGoogle Scholar
Shepherd, J. M., Pierce, H., and Negri, A. J. (2002). Rainfall modification by major urban areas: observations from spaceborne rain radar on the TRMM satellite. Journal of Applied Meteorology, 41, 689–701.2.0.CO;2>CrossRefGoogle Scholar
Shu, J., Dearing, J. A., Morse, A. P., Yu, L., and Li, C. (2000). Magnetic properties of daily sampled total suspended particulates in Shanghai. Environment Science and Technology, 34, 2393–2400.CrossRefGoogle Scholar
Shu, J., Dearing, J. A., Morse, A. P., Yu, L., and Yuan, N. (2001). Determining the sources of atmospheric particles in Shanghai, China, from magnetic and geochemical properties. Atmospheric Environment, 35, 2615–2625.CrossRefGoogle Scholar
Simpson, M. D. (2006). Role of Urban Land Use on Mesoscale Circulations and Precipitation, North Carolina State University.Google Scholar
Stout, G. E. (1962). Some observations of cloud initiation in industrial areas. In Air Over Cities, Technical Report A62–5. Washington, DC: US Public Health Service.Google Scholar
Tayanc, M. and Toros, H. (1997). Urbanization effects on regional climate change in the case of four large cities of Turkey. Climate Change, 35, 501–524.CrossRefGoogle Scholar
Tornqvist, T. E.et al. (2008). Mississippi Delta subsidence primarily caused by compaction of Holocene strata. Nature Geoscience 1, 173–176.CrossRefGoogle Scholar
Trenberth, K. (1984). Signal versus noise in the Southern Oscillation. Monthly Weather Review 112, 326–3322.0.CO;2>CrossRefGoogle Scholar
Trenberth, K. E. and Caron, J. M. (2000). The Southern Oscillation revisited: sea level pressures, surface temperatures and precipitation. Journal of Climate, 13, 4358–4365.2.0.CO;2>CrossRefGoogle Scholar
Trenberth, K. E. and Fasullo, J. (2008). Energy budgets of Atlantic hurricanes and changes from 1970. Geochemistry, Geophysics, Geosystems 9, doi:2007GC001847.CrossRefGoogle Scholar
,UK Met Office and Hadley Centre (2009). Observations datasets. http://hadobs.org/.
,UNFPA (2007). The State of World Population 2007. United Nations Population Fund, United Nations Publications.
,UN-HABITAT (2006). State of the World's Cities, London, UK: Earthscan.Google Scholar
,United Nations Statistical Division Demographic Yearbook (2010). http://unstats.un.org/unsd/demographic/products/dyb/dyb2007.htm.
Vecchi, G. A. and Soden, B. J. (2007). Increased tropical Atlantic wind shear in model projections of global warming. Geophysical Research Letters, 34, L08702, doi:08710.01029/02006GL028905.CrossRefGoogle Scholar
Velicogna, I. and Wahr, J. (2006). Acceleration of Greenland ice mass loss in spring 2004. Nature, 443, 329–331.CrossRefGoogle ScholarPubMed
Visbeck, M. H., Hurrell, J. W., Polvani, L., and Cullen, H. M. (2001). The North Atlantic Oscillation: past, present, and future. Proceedings of the National Academy of Sciences, 98, 12, 876–12,877.CrossRefGoogle ScholarPubMed
Wilby, R. L., O'Hare, G., and Barnsley, N. (1997). The North Atlantic Oscillation and British Isles climate variability. Weather, 52, 266–276.CrossRefGoogle Scholar
Yin, J., Schlesinger, M. E., and Stouffer, R. J. (2009). Model projections of rapid sea-level rise on the northeast coast of the United States. Nature Geoscience, 2, 262–266.CrossRefGoogle Scholar
Zhang, X., Vincent, L. A., Hogg, W. D., and Niitsoo, A. (2000). Temperature and precipitation trends in Canada during the 20th century. Atmosphere-Ocean, 38, 395–429.CrossRefGoogle Scholar
Yiqun, Zheng, Yongfu, Qian, Manqian, Miao, et al. (2002). The effects of vegetation change on regional climate I: Simulation results. Acta Meteorologica Sinica, 60, 1–16 (in Chinese).Google Scholar
Blake, R., Grimm, A., Ichinose, T., Horton, R., Gaffin, S., Jiong, S., Bader, D., Cecil, L. D., 2011: Urban climate: Processes, trends, and projections. Climate Change and Cities: First Assessment Report of the Urban Climate Change Research Network, Rosenzweig, C., Solecki, W. D., Hammer, S. A., Mehrotra, S., Eds., Cambridge University Press, Cambridge, UK, 43–81CrossRefGoogle Scholar

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