Recent fire regime in peninsular Spain in relation to forest potential productivity and population density
Antonio Vázquez de la Cueva A B , José Manuel García del Barrio A , Marta Ortega Quero A and Otilio Sánchez Palomares AA Centro de Investigación Forestal, CIFOR-INIA, Ctra. A Coruña km 7, E-28040 Madrid, Spain.
B Corresponding author. Email: vazquez@inia.es
International Journal of Wildland Fire 15(3) 397-405 https://doi.org/10.1071/WF05071
Submitted: 15 July 2005 Accepted: 12 February 2006 Published: 5 September 2006
Abstract
The potential productivity of forests is an important parameter in the evaluation of vegetation as a carbon sink. At the same time, potential productivity can be considered as an indicator of growth conditions and also as a measure of available fuel loads, which, in Mediterranean-type ecosystems, are a main factor of regional fire incidence. The present work deals with the relationship between an estimation of forest potential productivity and the fire incidence registered in peninsular Spain. Fire incidence was characterized by means of several fire regime variables. In order to contrast the patterns obtained, a similar analysis of the relationship between fire regime and human population density was also carried out. The results show that higher fire incidence was registered in more productive areas. Potential productivity was correlated to variables related to the number of fires and to the area burned, whereas the population density was also correlated to the number of fire variables and to the area burned, but with lower correlation coefficients. Although it is difficult to establish cause-and-effect relationships between complex phenomena that depend on a large number of factors, finding statistically significant relationships between fire incidence and the estimation of potential forest productivity used over a long time period is considered very relevant. These relationships make it necessary to take into account the fire regime when evaluating both forests and other terrestrial ecosystems as carbon sinks so as to meet the demands of the Kyoto Protocol.
Additional keywords: carbon sinks.
Agee JK, Bahro B, Finney MA, Omi PN, Sapsis DB, Skinner CN, van Wagtendonk JW , Weatherspoon CP (2000) The use of shaded fuelbreaks in landscape fire management. Forest Ecology and Management 127, 55–66.
| Crossref | GoogleScholarGoogle Scholar |
Díaz-Delgado R, Lloret F , Pons X (2004) Statistical analysis of fire frequency models for Catalonia (NE Spain, 1975–1998) based on fire scar maps from Landsat MSS data. International Journal of Wildland Fire 13, 89–99.
| Crossref | GoogleScholarGoogle Scholar |
Hély C, Flannigan M, Bergeron Y , McRae D (2001) Role of vegetation and weather on fire behaviour in the Canadian mixedwood boreal forest using two fire behavior prediction systems. Canadian Journal of Forest Research 31, 430–441.
| Crossref | GoogleScholarGoogle Scholar |
Le Houerou HN (1987) Vegetation wildfires in the Mediterranean basin: evolution and trends. Ecologia Mediterranea 13(4), 3–23.
Li C (2002) Estimation of fire frequency and fire cycle – a computational perspective. Ecological Modelling 154, 103–120.
| Crossref | GoogleScholarGoogle Scholar |
Moritz MA (1997) Analyzing extreme disturbance events: fire in Los Padres National Forest. Ecological Applications 7, 1252–1262.
| Crossref |
Piñol J, Terradas J , Lloret F (1998) Climate warming, wildfire hazard, and wildfire occurrence in coastal eastern Spain. Climatic Change 38, 345–357.
| Crossref | GoogleScholarGoogle Scholar |
Schulze ED, Wirth C , Heimann M (2000) Managing forests after Kyoto. Science 289, 2058–2059.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Stainforth DA, Aina T, Christensen C, Collins M , Faull N (2005) Uncertainty in predictions of the climate response to rising levels of greenhouse gases. Nature 433, 403–406.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Vázquez A , Moreno JM (1993) Sensitivity of fire occurrence to meteorological variables in Mediterranean and Atlantic areas of Spain. Landscape and Urban Planning 24, 129–142.
| Crossref | GoogleScholarGoogle Scholar |
Vázquez A , Moreno JM (1998) Patterns of lightning and people-caused fires in peninsular Spain. International Journal of Wildland Fire 8, 103–115.
| Crossref | GoogleScholarGoogle Scholar |
Vázquez A , Moreno JM (2001) Spatial distribution of forest fires in Sierra de Gredos (Central Spain). Forest Ecology and Management 147, 55–65.
| Crossref | GoogleScholarGoogle Scholar |
Vázquez A, Pérez B, Fernández-Gonzalez F , Moreno JM (2002) Recent fire regime characteristics and potential natural vegetation relationships in Spain. Journal of Vegetation Science 13, 663–676.
| Crossref |
Vélez R (1990) Algunas observaciones para una selvicultura preventiva de incendios forestales. Ecología Fuera de Serie 1, 561–571.
Venevsky S, Thonicke K, Sitch S , Cramer W (2002) Simulating fire regimes in human-dominated ecosystems: Iberian Peninsula case study. Global Change Biology 8, 984–998.
| Crossref | GoogleScholarGoogle Scholar |
Viegas DX , Viegas MT (1994) A relationship between rainfall and burned area for Portugal. International Journal of Wildland Fire 4, 11–16.
| Crossref | GoogleScholarGoogle Scholar |
Wagner HH , Fortin MJ (2005) Spatial analysis of landscapes: concepts and statistics. Ecology 86, 1975–1987.
Wirth C, Schulze ED, Kusznetova V, Milyukova I, Hardes G, Siry M, Schulze B , Vygodskaya NN (2002) Comparing the influence of site quality, stand age, fire and climate on above-ground production in Siberian Scots pine forest. Tree Physiology 22, 537–552.
| PubMed |