Effects of low-intensity fire on soil organic carbon stocks and physicochemical properties in the Mediterranean ecosystem

Due to inherent climate characteristics, forest fires are commonly encountered in the Mediterranean ecosystem. Forest fires influence water resources, flora, fauna, air quality and soil properties. This study was conducted to determine the effects of a low-intensity fire in Lapseki – Dışbudak village on soil physical and chemical properties. Soil samples were taken from 0-5 cm depth on unburned (control) and burned lands 1 month and 3 years after the fire and samples were analyzed for organic carbon stock, texture, aggregate stability, bulk density, pH, electrical conductivity (EC), lime, organic matter, organic carbon, exchangeable K, Ca, Mg, Na, and available Fe, Cu, Mn, and Zn.While the average pH, EC (dS m-1), exchangeable Ca (mg kg-1), Na (mg kg-1), available Mn (mg kg-1) and Zn (mg kg-1) values were respectively measured as 6.37, 0.72, 3504.10, 34.97, 202.31 and 4.23 in burned lands in the 1st month after fire, the values were respectively measured as 6.25, 0.53, 2870.90, 24.89, 127.96 and 2.71 in control areas. At the end of the 3rd year, available Mn was measured as 81.69 mg kg-1 in burned lands and 53.58 mg kg-1 in unburned lands. It was concluded that at the end of 3 years, low-intensity fire was effective in improving soil properties.

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  • Akburak, S., Son, Y., Makineci, E., Çakir, M., 2018. Impacts of low-intensity prescribed fire on microbial and chemical soil properties in a Quercus frainetto forest. Journal of Foresty Research 29(3): 687-696.
  • Alcañiz, M., Oueteiro, L.i Francos, M., Farguell, J., Úbeda, X., 2016. Long-term dynamics of soil chemical properties after a prescribed fire in a Mediterranean forest (Montgrí Massif, Catalonia, Spain). Science of the Total Environment 572: 1329-1335.
  • Alcañiz, M., Outerio, L., Francos, M., Úbeda, X., 2018. Effects of prescribed fires on soil properties: A review. Science of the Total Environment 613-614: 944-957.
  • Bray, R.H., Kurtz, L.T., 1945. Determination of total, organic and available forms of phosphorus in soils. Soil Science 59: 39-45.
  • Camcı Cetin, S., Yılmaz, A.E., Ersahin, S., Dikmen, U., Sunal, S., 2019. Soil properties were evaluated as reflecting parameters in low intensity forest fires in Cankırı, Turkey. Fresenius Environmental Bulletin 28(4): 2575-2581.
  • Caon, L., Vallejo, V.R., Ritsema, C.J., Geissen, V., 2014. Effects of wildfire on soil nutrients in Mediterranean ecosytems. Earth-Science Reviews 139: 47-58.
  • Certini, G., 2005. Effects of fire on properties of forest soils: a review. Oecologia 143: 1–10.
  • Chen, Y., Cao, J., Zhou, L., Li, F., Fu, S., 2019. Effects of prescribed burning on carbon accumulation in two paired vegetation sites in subtropical China. Forest Ecosytems 6: 26.
  • Dindaroglu, T., Babur, E., Yakupoglu, T., Rodrigo-Comino, J., Cerdà, A., 2021. Evaluation of geomorphometric characteristics and soil properties after a wildfire using Sentinel-2 MSI imagery for future fire-safe forest. Fire Safety Journal 122: 103318.
  • Dindaroglu, T., Turan, F., 2019. Investigation of natural resilience capacity of soil features affected by low severity ground wildfire after three years in Mediterranean forest ecosystem. Eurasian Journal of Forest Science 7(2): 145-156.
  • Ekinci, H., 2006. Effect of forest fire on some physical, chemical and biological properties of soil in Çanakkale, Turkey. International Journal of Agriculture and Biology 8(1): 102-106.
  • Fernández-García, V., Miesel, J., Jaime Baeza, M., Marcos, E., Calvo, L., 2019. Wildfire effects on soil properties in fire-prone pine ecosystems: Indicators of burn severity legacy over the medium term after fire. Applied Soil Ecology 135: 147-156.
  • Fonseca, F., Figueiredo, T.D., Nogueira, C., Queirós, A., 2017. Effect of prescribed fire on soil properties and soil erosion in a Mediterranean mountain area. Geoderma 307: 172-180. García-Marco, S., González-Prieto, S., 2008. Short- and medium-term effects of fire and fire-fighting chemicals on soil micronutrient availability. The Science of Total Environment 407: 297-303.
  • Gee, G.W., Or, D., 2002. Particle size analysis. In: Methods of Soil Analysis. Part 4, Physical Methods, Dane, J.H., Topp, G.C., (Eds.). SSSA Book Series 5. Soil Science Society of America, Madison, Wisconsin, USA, pp. 255 – 294.
  • Gómez-Rey, M.X., Couto-Vázquez, A., García-Marco, S., González-Prieto, S.J., 2013. Impact of fire and post-fire management techniques on soil chemical properties. Geoderma 195-196: 155-164.
  • Gonzales Parra, J., Cala Rivero, V., Iglesias Lopez, T., 1996. Forms of Mn in soils affected by a forest fire. Science of Total Environment 181: 231-236.
  • Gross, C.D., Harrison, R.B., 2018. Quantifying and comparing soil carbon stocks: Underestimation with the core sampling method. Soil Science Society of America Journal 82: 949–959.
  • Grossman, R.B., Reinsch, T.G., 2002. Bulk density and linear extensibility. In: Methods of Soil Analysis. Part 4, Physical Methods, Dane, J.H., Topp, G.C., (Eds.). SSSA Book Series 5. Soil Science Society of America, Madison, Wisconsin, USA, pp. 201-228.
  • Helmke, P. A., Sparks, D. L., 1996. Lithium, sodium, potassium, rubidium, and calcium. In: Methods of Soil Analysis. Part 3 Chemical Methods, 5.3. Sparks, D., Page, A., Helmke, P., Loeppert, R., Soltanpour, P.N., Tabatabai, M.A., Johnston C.T., Sumner M.E. (Eds.). American Society of Agronomy, Madison, Wisconsin, USA, pp. 551–574.
  • Hueso-Gonzalez, P., Martinez-Murillo, J.F., Ruiz-Sinoga, J.D., 2018. Prescribed fire impacts on soil properties, overland flow and sediment transport in a Mediterranean forest: A 5 year study. The Science of Total Environment 636: 1480-1489.
  • IBM, 2011. IBM SPSS Statistics for Windows, Version 20.0. IBM Corporation, Armonk, New York, USA.
  • Kaptanoğlu, A.S., Tavşanoğlu, Ç., Turgay, O.C., 2018. Soil chemistry and microbial activity after a surface fire in a mixed temperate forest. Eurasian Journal of Forest Science 6(4): 1-13.
  • Kara, O., Bolat, I., 2009. Short-term effects of wildfire on microbial biomass and abundance in black pine plantation soils in Turkey. Ecological Indicators 9(6): 1151-1155.
  • Knicker, H., 2007. How does fire affect the nature and stability of soil organic nitrogen and carbon? A review. Biogeohemistry 85: 91–118.
  • Koçman, A., 1993. Climate of Turkey. Ege University Faculty of Literature Publications No:72. 83p. İzmir, Turkey. [in Turkish].
  • Kutiel, P., Inbar, M., 1993. Fire impacts on soil nutrients and soil erosion in a Mediterranean pine forest plantation. Catena 20: 129-139.
  • Lal, R., 2015. Forest soils and carbon sequestration. Forest Ecology and Management 220: 242-258.
  • Lasanta, A., Cerdà, A., 2005. Long-term erosional responses after fire in the Central Spanish Pyrenees: 2. Solute release. Catena 60: 80-101.
  • Lindsay, W.L., Norvell, W.A., 1978. Development of a DTPA soil test for zinc, iron, manganese, and copper. Soil Science Society of America Journal 42(3): 421–428.
  • Loeppert, R.H., Suarez, D.L., 1996. Carbonate and gypsum. In: Methods of Soil Analysis. Part 3 Chemical Methods, 5.3. Sparks, D., Page, A., Helmke, P., Loeppert, R., Soltanpour, P.N., Tabatabai, M.A., Johnston C.T., Sumner M.E. (Eds.). American Society of Agronomy, Madison, Wisconsin, USA, pp. 437-475.
  • Merino, A., Jiménez, E., Fernández, C., Fontúrbel, M.T., Campo, J., Vega, J.A., 2019. Soil organic matter and phosphorus dynamics after low intensity prescribed burning in forests and shrubland. Journal of Environmental Management 234: 214-225.
  • MGM, 2021. General Directorate of Meteorology, Climate Data for Çanakkale Province. Available at [access date: 26.03. 2021]: https://www.mgm.gov.tr/veridegerlendirme/il-ve-ilceler-istatistik.aspx?k=H&m=CANAKKALE
  • Mitic, V.D., Stankov Jovanovic, V.P., Illic, M.D., Nikolic Mandic, S.D., 2015. Impact of wildfire on soil characteristics and some metal content in selected plants species of Geraniaceae family. Environmental Earth Sciences 73: 4581–4594.
  • Moya, D., Fonturbel, M.T., Lucas-Borja, M.E., Peña, E., Alfaro-Sanchez, R., Plaza-Álvarez, P.A., González-Romero, J., de Las Heras, J., 2021. Burning season and vegetation coverage influenced the community-level physiological profile of Mediterranean mixed-mesogean pine forest soils. Journal of Environmental Management 277: 111405.
  • Moya, D., González-De Vega, S, Lozano, E., García-Orenes, F., Mataix-Solera, J., Lucas-Borja, M.E., de las Heras, J., 2019. The burn severity and plant recovery relationship affect the biological and chemical soil properties of Pinus halepensis Mill. stands in the short and mid-terms after wildfire. Journal of Environmental Management 235: 250-256.
  • Muñoz-Rojas, M., Erickson, T.E., Martini, D., Dixon, K.W., Merritt, D.J., 2016. Soil physiochemical and microbiological indicators of short, medium and long term post fire recovery in semi-arid ecosystems. Ecological Indicators 63: 14-22.
  • Neill, C., Patterson, W.A., Crary, D.W., 2007. Responses of soil carbon, nitrogen and cations to the frequency and seasonability of prescribed burning in a Cape Cod oak-pine forest. Forest Ecology and Management 250: 234-243.
  • Nelson, D.W., Sommers. L.E., 1996. Total carbon, organic carbon, and organic matter. In: Methods of Soil Analysis. Part 3 Chemical Methods, 5.3. Sparks, D., Page, A., Helmke, P., Loeppert, R., Soltanpour, P.N., Tabatabai, M.A., Johnston C.T., Sumner M.E. (Eds.). American Society of Agronomy, Madison, Wisconsin, USA, pp. 961–1010.
  • Nimmo, J.R., Perkins, K.S., 2002. Aggregate stability and size distribution. In: Methods of Soil Analysis. Part 4, Physical Methods, Dane, J.H., Topp, G.C., (Eds.). SSSA Book Series 5. Soil Science Society of America, Madison, Wisconsin, USA, pp. 317-328.
  • Norouzi, M., Ramezanpour, H., 2013. Effect of fire on soil nutrient availability in forestes of Gulian, North of Iran. Carpathian Journal of Earth and Environmental Sciences 8(1): 157 – 170.
  • Pardini, G., Gispert, M., Dunjó, G., 2004. Relative influence of wildfire on soil properties and erosion processes in different Mediterranean environments in NE Spain. Science of The Total Environment 328: 237–246.
  • Parlak, M., 2018. The determination of temporal changes in the some physical and chemical properties of soil due to forest fire in Canakkale (Eceabat). Toprak Bilimi ve Bitki Besleme Dergisi 6(1): 29 – 38. [in Turkish].
  • Parlak, M., 2011. Effect of heating on some physical, chemical and mineralogical aspects of forest soil. Bartın Orman Fakültesi Dergisi 13(19): 143-152.
  • Pereira, P., Úbeda, X., Mataix-Solera, J., Oliva, M., Novara, A., 2014. Short-term changes in soil Munsell colour value, organic matter and soil water repellency and soil water repellency after spring grassland fire in Lithuania. Solid Earth 4: 209-225.
  • Rhoades, J.D., 1996. Salinity: Electrical conductivity and total dissolved solids. In: Part 3 Chemical Methods, 5.3. Sparks, D., Page, A., Helmke, P., Loeppert, R., Soltanpour, P.N., Tabatabai, M.A., Johnston C.T., Sumner M.E. (Eds.). American Society of Agronomy, Madison, Wisconsin, USA, pp. 417–436.
  • Roaldson, L.M., Johnson, D.W., Miller, W.W., Murphy, J.D., Walker, R.F., Stein, C.M., Glass, D.W., 2014. Prescribed fire and timber harvesting effects on soil carbon and nitrogen in a pine forest. Soil Science Society of America Journal 78(S1): 548-577.
  • Scharenbronch, B.C., Nix, B., Jabobs, K.A., Bowles, M.L., 2012. Two decades of low-severıty prescribed fire increases soil nutrient availability in a Mid-Western, USA oak (Quercus) forest. Geoderma 183-184: 80-91.
  • Stinca, A., Ravo, M., Marzaioli, R., Marchese, G., Cordella, A., Rutigliano, F.A., Esposito, A., 2020. Changes in multi-level biodiversity and soil features in a burned beech forest in the Southern Italian Coastal Mountain. Forests 11(9): 983.
  • Suarez, D.L., 1996. Beryllium, magnesium, calcium, strontium, and barium. In: Methods of Soil Analysis. Part 3 Chemical Methods, 5.3. Sparks, D., Page, A., Helmke, P., Loeppert, R., Soltanpour, P.N., Tabatabai, M.A., Johnston C.T., Sumner M.E. (Eds.). American Society of Agronomy, Madison, Wisconsin, USA, pp.575-601.
  • Switzer, J.M., Hope, G.D., Grayston, S.J., Prescott, C.E., 2012. Changes in soil chemical and biological properties after thinning and prescribed fire for ecosystem restoration in a Rocky Mountain Douglas-fir forest. Forest Ecology and Management 275: 1-13.
  • Thomas, G.W., 1996. Soil pH and Soil Acidity. In: Methods of Soil Analysis: Part 3 Chemical Methods, 5.3. Sparks, D., Page, A., Helmke, P., Loeppert, R., Soltanpour, P.N., Tabatabai, M.A., Johnston C.T., Sumner M.E. (Eds.). American Society of Agronomy, Madison, Wisconsin, USA, pp.475-490.
  • Vega, J.A., Fonturbel, T., Merino, A., Fernandez, C., Ferreiro, A., Jimenez, E., 2013. Testing the ability of visual indicators of soil burn severity to reflect changes in soil chemical and microbial properties in pine forests and shrubland. Plant and Soil 369: 73–91.
  • WRB, 2015. International soil classification system for naming soils and creating legends for soil maps. World Soil Resources Reports No. 106. Food and Agriculture Organization of the United Nations (FAO), Rome, Italy. 192p. Available at [access date: 11.11.2020]: http://www.fao.org/3/i3794en/I3794en.pdf
  • Yigini, Y., Panagos, P., 2016. Assessment of soil organic carbon stocks under future climate and land cover changes in Europe. Science of the Total Environment 557 –558: 838–850.
  • Zdruli, P., Kapur, S., Celik, I., 2011. Soils of the Mediterranean region, their characteristics, management and sustainable use. In: Sustainable Land Management: Learning from the Past for the Future, Kapur, S., Eswaran, H., Blum, W.E.H.,(Eds.). Springer, Berlin, Heidelberg. pp.125-142.