Fog Water Collection in a Subtropical Elfin Laurel Forest of the Garajonay National Park (Canary Islands): A Combined Approach Using Artificial Fog Catchers and a Physically Based Impaction Model

A. Ritter Instituto Canario de Investigaciones Agrarias, Tenerife, Spain

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C. M. Regalado Instituto Canario de Investigaciones Agrarias, Tenerife, Spain

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G. Aschan Applied Botany, University of Duisburg-Essen, Essen, Germany

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Abstract

Fog precipitation has long been assumed as an additional water source in the relic laurel ecosystems of the Canary Islands, located at 500–1400 m MSL. However, to what extent fog water can contribute to the laurel forest water balance is not yet clear. Combining data from artificial fog catchers and a physically based impaction model, the authors evaluated the potential contribution of fog water captured by needle-leafed Erica arborea L. trees in a selected watershed of the Garajonay National Park (La Gomera Island) for a 2-yr period (February 2003–January 2005). Fog water collection was measured with artificial catchers at four micrometeorological stations placed at 1145, 1185, 1230, and 1270 m MSL. Average fog water collection was only significant at the highest measurement site (one order of magnitude greater than at lower altitudes), totaling 496 L m−2 yr−1 during the 2-yr period. The average fog water yield in the first and second annual periods ranged between 0.2–5.0 and 0.1–2.1 L m−2 day−1, respectively. Rainfall exhibited seasonality, distinguishing between rainy and dry seasons, while fog water collection was distributed more evenly throughout the year. Regarding fog water captured by the vegetation, the impaction model predicted a significant amount of fog water potentially collected by a single E. arborea tree, on the order of 1810–2090 L yr−1. Taking tree population density into account, the yearly average water contribution to the soil surface by wind-driven fogs was 251–281 mm, whereas annual rainfall was 635 and 1088 mm, respectively. The hourly course of micrometeorological variables shows a 58% reduction in global radiation under foggy conditions and a concomitant 3°–6°C mean temperature decrease compared to fog-free periods. Thus, limiting evapotranspiration may also be a relevant effect of fog in this subtropical elfin cloud forest.

Corresponding author address: A. Ritter, Instituto Canario de Investigaciones Agrarias (ICIA), Apdo. 60 La Laguna, Tenerife 38200, Spain. Email: aritter@icia.es

Abstract

Fog precipitation has long been assumed as an additional water source in the relic laurel ecosystems of the Canary Islands, located at 500–1400 m MSL. However, to what extent fog water can contribute to the laurel forest water balance is not yet clear. Combining data from artificial fog catchers and a physically based impaction model, the authors evaluated the potential contribution of fog water captured by needle-leafed Erica arborea L. trees in a selected watershed of the Garajonay National Park (La Gomera Island) for a 2-yr period (February 2003–January 2005). Fog water collection was measured with artificial catchers at four micrometeorological stations placed at 1145, 1185, 1230, and 1270 m MSL. Average fog water collection was only significant at the highest measurement site (one order of magnitude greater than at lower altitudes), totaling 496 L m−2 yr−1 during the 2-yr period. The average fog water yield in the first and second annual periods ranged between 0.2–5.0 and 0.1–2.1 L m−2 day−1, respectively. Rainfall exhibited seasonality, distinguishing between rainy and dry seasons, while fog water collection was distributed more evenly throughout the year. Regarding fog water captured by the vegetation, the impaction model predicted a significant amount of fog water potentially collected by a single E. arborea tree, on the order of 1810–2090 L yr−1. Taking tree population density into account, the yearly average water contribution to the soil surface by wind-driven fogs was 251–281 mm, whereas annual rainfall was 635 and 1088 mm, respectively. The hourly course of micrometeorological variables shows a 58% reduction in global radiation under foggy conditions and a concomitant 3°–6°C mean temperature decrease compared to fog-free periods. Thus, limiting evapotranspiration may also be a relevant effect of fog in this subtropical elfin cloud forest.

Corresponding author address: A. Ritter, Instituto Canario de Investigaciones Agrarias (ICIA), Apdo. 60 La Laguna, Tenerife 38200, Spain. Email: aritter@icia.es

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  • Aboal Viñas, J., 1998: Los flujos netos hidrológicos y químicos asociados de un bosque de laurisilva en Tenerife (The hydrological and chemical net fluxes associated with a laurel forest in Tenerife). Ph.D. thesis, University of La Laguna, 184 pp. [Available online at http://dialnet.unirioja.es/servlet/tesis?codigo=637.].

  • Allen, R. G., Pereira L. S. , Raes D. , and Smith M. , 1998: Crop evapotranspiration: Guidelines for computing crop water requirements. FAO Irrigation and Drainage Paper 56, Food and Agriculture Organization of the United Nations, 300 pp.

  • Aschan, G., 1998: Microclimate, Energy Budget and Water Balance of Tropical and Extratropical Forests. (in German). Biology Series, Vol. 159, Tectum-Verlag, 256 pp.

    • Search Google Scholar
    • Export Citation
  • Axelrod, D. I., 1975: Evolution and biogeography of Madrean-Tethyan sclerophyll vegetation. Ann. Mo. Bot. Gard., 62 , 280334.

  • Azevedo, J., and Morgan D. L. , 1974: Fog precipitation in coastal California forests. Ecology, 55 , 11351141.

  • Brewer, C. A., Smith W. K. , and Vogelmann T. C. , 1991: Functional interaction between leaf trichomes, leaf wettability and the optical properties of water droplets. Plant Cell Environ., 14 , 955962.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Bruijnzeel, L. A., 2001: Hydrology of tropical montane cloud forests: A reassessment. Land Use Water Resour. Res., 1 , 1.11.18.

  • Bruijnzeel, L. A., and Proctor J. , 1995: Hydrology and biochemistry of tropical montane cloud forests: What do we really know? Tropical Montane Cloud Forests, L. S. Hamilton, J. O. Juvik, and F. N. Scatena, Eds., Ecological Studies, Vol. 110, Springer-Verlag, 38–78.

    • Search Google Scholar
    • Export Citation
  • Bruijnzeel, L. A., Waterloo M. J. , Proctor J. , Kuiters A. T. , and Kotterink B. , 1993: Hydrological observations in montane rain forests on Gunung Silam, Sabah, Malaysia, with special reference to the “Massenerhebung” effect. J. Ecol., 81 , 145167.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Brunn, R. J., Lewis W. , Perkins P. J. , and Serafini J. S. , 1955: Impingement of cloud droplets on a cylinder and procedure for measuring liquid-water content and droplet sizes in supercooled clouds by rotating multicylinder method. NASA Rep. 1215, 183 pp.

  • Brutsaert, W., 1975: Comments on surface roughness parameters and the height of dense vegetation. J. Meteor. Soc. Japan, 53 , 9697.

  • Cáceres, G., 1981: Hydrological importance of horizontal interception in a humid premontane forest in Balalaica, Turrialba, Costa Rica (in Spanish). M.S. thesis, Centro Agronómico Tropical de Investigación y Enseñanza, University of Costa Rica, 98 pp.

  • Cavelier, J., and Goldstein G. , 1989: Mist and fog interception in elfin cloud forests in Colombia and Venezuela. J. Trop. Ecol., 5 , 309322.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Cavelier, J., Solis D. , and Jaramillo M. A. , 1996: Fog interception in montane forests across the Central Cordillera of Panamá. J. Trop. Ecol., 12 , 357369.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Chang, S-C., Lai I-L. , and Wu J-T. , 2002: Estimation of fog deposition on epiphytic bryophytes in a subtropical montane forest ecosystem in northeastern Taiwan. Atmos. Res., 64 , 159167.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Dohrenwend, R. E., 1979: Hydrologic behavior at the top of a tropical mountain. Ford Forestry Center Research Note 29, Michigan Technological University, 14 pp.

  • Eugster, W., Burkard R. , Holwerda F. , Scatena F. N. , and Bruijnzeel L. A. , 2006: Characteristics of fog and fogwater fluxes in a Puerto Rican elfin cloud forest. Agric. For. Meteor., 139 , 288306.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Fischer, D. T., and Still C. J. , 2007: Evaluating patterns of fog water deposition and isotopic composition on the California Channel Islands. Water Resour. Res., 43 .W04420, doi:10.1029/2006WR005124.

    • Search Google Scholar
    • Export Citation
  • Førland, E. J., and Coauthors, 1996: Manual for operational correction of Nordic precipitation data. Norwegian Meteorological Institute Rep. 24/96, KLIMA, 66 pp.

  • Friedlander, S. K., 2000: Smoke, Dust, and Haze: Fundamentals of Aerosol Dynamics. Oxford University Press, 407 pp.

  • Giambelluca, T. W., and Nullet D. , 1991: Influence of the trade-wind inversion on the climate of a leeward mountain slope in Hawaii. Climate Res., 1 , 207216.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Gioda, A., Maley J. , Guasp R. E. , and Baladón A. A. , 1995: Some low elevation fog forests of dry environments: Applications to African paleoenvironments. Tropical Montane Cloud Forests, L. S. Hamilton, J. O. Juvik, and F. N. Scatena, Eds., Ecological Studies, Vol. 110, Springer-Verlag, 156–164.

    • Search Google Scholar
    • Export Citation
  • Golubic, I., 2001: Vegetation analysis of laurel forest and similar stands within the research framework of the water balance in the Garajonay National Park, La Comera (Canary Islands) (in German). Diploma thesis, Department of Plant Sociology and Ecology, University of Duisburg-Essen, 107 pp.

  • González-Rodríguez, A. M., Morales D. , and Jiménez M. S. , 2002: Leaf gas exchange characteristics of a Canarian laurel forest tree species [Persea indica (L.) K. Spreng.] under natural conditions. J. Plant Physiol., 159 , 695704.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Goodman, J., 1982: Water potential from advection fog. Department of Meteorology Progress Rep. 1, San Jose State University, 45 pp.

  • Gunn, R., and Kinzer G. D. , 1949: The terminal velocity of fall for water droplets in stagnant air. J. Meteor., 6 , 243248.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Gutiérrez, A. G., and Coauthors, 2008: Regeneration patterns and persistence of the fog-dependent Fray Jorge forest in semiarid Chile during the past two centuries. Global Change Biol., 14 , 161176.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Hafkenscheid, R. L. L. J., 2000: Hydrology and biogeochemistry of montane rain forests of contrasting stature in the Blue Mountains of Jamaica. Ph.D. thesis, Vrije Universiteit, 302 pp.

  • Herckes, P., Mirabel P. , and Wortham H. , 2002: Cloud water deposition at a high-elevation site in the Vosges Mountains (France). Sci. Total Environ., 296 , 5975.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Holder, C. D., 2007: Leaf water repellency of species in Guatemala and Colorado (USA) and its significance to forest hydrology studies. J. Hydrol., 336 , 147154.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Höllermann, P., 1981: Microenvironmental studies in the laurel forest of the Canary Islands. Mt. Res. Dev., 1 , 193207.

  • Holwerda, F., Scatena F. N. , and Bruijnzeel L. A. , 2006: Throughfall in a Puerto Rican lower montane rain forest: A comparison of sampling strategies. J. Hydrol., 327 , 592602.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Hutley, L. B., Doley D. , Yates D. J. , and Boonsaner A. , 1997: Water balance of an Australian subtropical rainforest at altitude: The ecological and physiological significance of intercepted cloud and fog. Aust. J. Bot., 45 , 311329.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Ingraham, N. L., and Matthews R. A. , 1988: Fog drip as a source of groundwater recharge in northern Kenya. Water Resour. Res., 24 , 14061410.

  • Joslin, J. D., Mueller S. F. , and Wolfe M. H. , 1990: Tests of models of cloudwater deposition to forest canopies using artificial and living collectors. Atmos. Environ., 24A , 30073019.

    • Search Google Scholar
    • Export Citation
  • Juvik, J. O., and Ekern P. C. , 1978: A climatology of mountain fog on Mauna Loa, Hawaii Island. Water Resources Research Center Tech. Rep. 118, University of Hawaii, 63 pp.

  • Juvik, J. O., and Nullet D. , 1995: Comments on “A proposed standard fog collector for use in high-elevation regions”. J. Appl. Meteor., 34 , 21082110.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Kämmer, F., 1974: Klima und vegetation auf Tenerife, besonders in Hinblick auf den nebelniederschlag. Scr. Geobot., 7 , 178.

  • Klemm, O., Wrzesinsky T. , and Scheer C. , 2005: Fog water flux at a canopy top: Direct measurement versus one-dimensional model. Atmos. Environ., 39 , 53755386.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Langmuir, I., and Blodgett K. B. , 1946: A mathematical investigation of water droplet trajectories. The Collected Works of Irving Langmuir, V. J. Schaefer, Ed., Pergamon Press, 348–393.

    • Search Google Scholar
    • Export Citation
  • Laws, J. O., and Parsons D. A. , 1943: The relation of raindrop-size to intensity. Eos, Trans. Amer. Geophys. Union, 24 , 452460.

  • Lloyd, C. R., Gash J. H. C. , Shuttleworth W. J. U. , Marques F. , and De O F. , 1988: The measurement and modelling of rainfall interception by Amazonian rain forest. Agric. For. Meteor., 43 , 277294.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Lovett, G. M., 1984: Rates and mechanisms of cloud water deposition to a subalpine balsam fir forest. Atmos. Environ., 18 , 361371.

  • McComber, P., and Touzot G. , 1981: Calculation of the impingement of cloud droplets in a cylinder by the finite-element method. J. Atmos. Sci., 38 , 10271036.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Monteith, J., and Unsworth M. , 1990: Principles of Environmental Physics. 2nd ed. Edward Arnold, 291 pp.

  • Müller, S. F., 1991: Estimating cloud water deposition to subalpine spruce-fir forests. I: Modifications to an existing model. Atmos. Environ., 25A , 10931104.

    • Search Google Scholar
    • Export Citation
  • Müller, S. F., Joslin J. D. , and Wolfe M. H. , 1991: Estimating cloud water deposition to subalpine spruce-fir forests. II: Model testing. Atmos. Environ., 25A , 11051122.

    • Search Google Scholar
    • Export Citation
  • Padilla, H., Belmont R. , Torres M. C. , Garcia R. , and Baez A. , 1996: A field comparison of cloud water collectors in a mountainous region under low wind speed conditions in eastern Mexico. Atmósfera, 9 , 189199.

    • Search Google Scholar
    • Export Citation
  • Pérez de Paz, P. L., 1990: Garajonay National Park: World Heritage. (in Spanish). National Institute for the Conservation of Nature, Excmo. Cabildo Insular de La Gomera, 367 pp.

    • Search Google Scholar
    • Export Citation
  • Riehl, H., 1979: Climate and Weather in the Tropics. Academic Press, 611 pp.

  • Ritter, A., Regalado C. M. , and Aschan G. , 2007: An impaction model for estimating fog water collection in a subtropical laurel cloud forest of the Garajonay National Park. Proc. Fourth Int. Conf. on Fog, Fog Collection and Dew, La Serena, Chile, Pontificia Universidad Católica de Chile, 355–358.

  • Santana, L., 1986: Study of Precipitation Fog in Tenerife. (in Spanish). National Institute for the Conservation of Nature, 97 pp.

  • Schemenauer, R. S., and Cereceda P. , 1994: The role of wind in rainwater catchment and fog collection. Water Int., 19 , 7076.

  • Sevruk, B., 2005: Rainfall measurement: Gauges. Encyclopedia of Hydrological Sciences, M. G. Andersen, Ed., Vol. 1, Hydrometeorology, John Wiley, 529–536.

    • Search Google Scholar
    • Export Citation
  • Sharon, D., 1980: Distribution of hydrologically effective rainfall incident on sloping ground. J. Hydrol., 46 , 165188.

  • Shuttleworth, W. J., 1977: The exchange of wind-driven fog and mist between vegetation and the atmosphere. Bound.-Layer Meteor., 12 , 463489.

  • Shuttleworth, W. J., 1993: Evaporation. Handbook of Hydrology, D. R. Maidment, Ed., McGraw-Hill, 4.1–4.53.

  • Sperling, F. G., Washington R. , and Whittaker R. J. , 2004: Future climate change of the subtropical North Atlantic: Implications for the cloud forests of Tenerife. Climatic Change, 65 , 103123.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Stadtmüller, T., 1987: Cloud Forests in the Humid Tropics: A Bibliographic Review. United Nations University Press, 82 pp.

  • Thom, A. S., 1971: Momentum absorption by vegetation. Quart. J. Roy. Meteor. Soc., 97 , 414428.

  • Thom, A. S., 1975: Momentum, mass and heat exchange. Vegetation and the Atmosphere, J. L. Monteith, Ed., Academic Press, 57–109.

  • Thom, A. S., and Oliver H. R. , 1977: On Penman’s equation for estimating regional evaporation. Quart. J. Roy. Meteor. Soc., 103 , 345357.

  • Vermeulen, A. T., Wyers G. P. , Römer F. G. , Van Leeuwen N. F. M. , Draaijers G. P. J. , and Erisman J. W. , 1997: Fog deposition on a coniferous forest in The Netherlands. Atmos. Environ., 31 , 375386.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Vogelmann, H. W., 1973: Fog precipitation in the cloud forests of eastern Mexico. Bioscience, 23 , 96100.

  • Walmsley, J. L., Schemenauer R. , and Bridgman H. A. , 1996: A method for estimating the hydrologic input from fog in mountainous terrain. J. Appl. Meteor., 35 , 22372249.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Wrzesinsky, T., Thalmann E. , Burkard R. , Eugster W. , and Klemm O. , 2001: Fog deposition of nutrients and pollutants to a montane forest site. Proc. Second Int. Conf. on Fog and Fog Collection, St. John’s, NL, Canada, Meteorological Service of Canada, 169–172.

  • Wyslouzil, B. E., Whipple M. , Chatterjee Ch , Walcerz D. B. , Weathers P. J. , and Hart D. P. , 1997: Mist deposition onto hairy root cultures: Aerosol modeling and experiments. Biotechnol. Prog., 13 , 185194.

    • Crossref
    • Search Google Scholar
    • Export Citation
  • Zadroga, F., 1981: The hydrological importance of a montane cloud forest area of Costa Rica. Tropical Agricultural Hydrology: Watershed Management and Land Use, R. Lal and E. W. Russell, Eds., John Wiley, 59–73.

    • Search Google Scholar
    • Export Citation
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