Skip to main content
Have a personal or library account? Click to login
Response of severity and persistence of water repellency to thermal heating parameters in eucalyptus and pine forest soils in Sri Lanka Cover

Response of severity and persistence of water repellency to thermal heating parameters in eucalyptus and pine forest soils in Sri Lanka

Open Access
|Sep 2026

References

  1. Almendros, G., Dorado, J., González-Vila, F.J. and Martin, F., 1997. Pyrolysis of carbohydrate-derived macromolecules: its potential in monitoring the carbohydrate signature of geopolymers. Journal of Analytical and Applied Pyrolysis, 40, 599-610. https://doi.org/10.1016/S0165-2370(97)00034-X
  2. Almendros, G., Knicker, H. and González-Vila, F.J., 2003. Rearrangement of carbon and nitrogen forms in peat after progressive thermal oxidation as determined by solid-state 13C-and 15N-NMR spectroscopy. Organic Geochemistry, 34(11), 1559-1568. https://doi.org/10.1016/S0146-6380(03)00152-9
  3. Almendros, G., González-Vila, F.J., Martin, F., Fründ, R. and Lüdemann, H.D., 1992. Solid state NMR studies of fire-induced changes in the structure of humic substances. Science of the Total Environment, 117, 63-74. https://doi.org/10.1016/0048-9697(92)90073-2
  4. Atanassova, I. and Doerr, S.H., 2011. Changes in soil organic compound composition associated with heat‐induced increases in soil water repellency. European Journal of Soil Science, 62(4), 516-532. https://doi.org/10.1111/j.1365-2389.2011.01350.x
  5. Bachmann, J., Ellies, A. and Hartge, K.H., 2000. Development and application of a new sessile drop contact angle method to assess soil water repellency. Journal of Hydrology, 231, 66-75. https://doi.org/10.1016/S0022-1694(00)00184-0
  6. Baldock, J.A. and Smernik, R.J., 2002. Chemical composition and bioavailability of thermally altered Pinus resinosa (Red pine) wood. Organic Geochemistry, 33(9), 1093-1109. https://doi.org/10.1016/S0146-6380(02)00062-1
  7. Benito, E., Varela, E. and Rodríguez-Alleres, M., 2019. Persistence of water repellency in coarse-textured soils under various types of forests in NW Spain. Journal of Hydrology and Hydromechanics, 67(2), 129-134. https://doi.org/10.2478/johh-2018-0038
  8. Bernier, P.Y., Gauthier, S., Jean, P.O., Manka, F., Boulanger, Y., Beaudoin, A. and Guindon, L., 2016. Mapping local effects of forest properties on fire risk across Canada. Forests, 7(8), p.157. https://doi.org/10.3390/f7080157
  9. Bruns, T.D., Chung, J.A., Carver, A.A. and Glassman, S.I., 2020. A simple pyrocosm for studying soil microbial response to fire reveals a rapid, massive response by Pyronema species. PLoS One, 15(3), p.e0222691. https://doi.org/10.1371/journal.pone.0222691
  10. Bryant, R., Doerr, S.H. and Helbig, M., 2005. Effect of oxygen deprivation on soil hydrophobicity during heating. International Journal of Wildland Fire, 14(4), 449-455. https://doi.org/10.1071/wf05035
  11. Caltabellotta, G., Iovino, M. and Bagarello, V., 2022. Intensity and persistence of water repellency at different soil moisture contents and depths after a forest wildfire. Journal of Hydrology and Hydromechanics, 70(4), 410-420. https://doi.org/10.2478/johh-2022-0031
  12. Dao, M.T., Henry, D.J., Dell, B., Daniel, N.R. and Harper, R.J., 2022. Induction of water repellency by leaves of contrasting Australian native species: effects of composition and heating. Plant and Soil, 478(1), 505-517. https://doi.org/10.1007/s11104-022-05492-4
  13. Dettweiler, C., Knicker, H., González-Vila, F.J., Almendros Martín, G. and Zancada Fernández, M.C., 2003. Monitoring the fire impacts on soil through chromatographic analysis of the lipid fraction. Proc. 3rd Scientific Meeting of the Spanish Society of Chromatography and Related Techniques Book of Abstracts. Almerıa, Spain: Artes Gra´ficas Gutenburg. p. 149. http://hdl.handle.net/10261/55164
  14. Doerr, S.H., Blake, W.H., Shakesby, R.A., Stagnitti, F., Vuurens, S.H., Humphreys, G.S. and Wallbrink, P., 2004. Heating effects on water repellency in Australian eucalypt forest soils and their value in estimating wildfire soil temperatures. International Journal of Wildland Fire, 13(2), 157-163. https://doi.org/10.1071/wf03051
  15. Doerr, S.H., Douglas, P., Evans, R.C., Morley, C.P., Mullinger, N.J., Bryant, R., Shakesby, R.A., 2005. Effects of heating and post-heating equilibration times on soil water repellency. Soil Research 43(3), 261-267. https://doi.org/10.1071/SR04092
  16. Doerr, S.H., Ritsema, C.J., Dekker, L.W., Scott, D.F. and Carter, D., 2007. Water repellence of soils: new insights and emerging research needs. Hydrological Processes. 21(17), 2223-2228. https://doi.org/10.1002/hyp.6762
  17. Doerr, S.H., Shakesby, R.A. and Walsh, R., 2000. Soil water repellency: its causes, characteristics and hydro-geomorphological significance. Earth-Science Reviews, 51(1-4), 33-65. https://doi.org/10.1016/s0012-8252(00)00011-8
  18. Doerr, S.H., Shakesby, R.A. and Walsh, R.P., 1996. Soil hydrophobicity variations with depth and particle size fraction in burned and unburned Eucalyptus globulus and Pinus pinaster forest terrain in the Águeda Basin, Portugal. Catena, 27(1), 25-47. https://doi.org/10.1016/0341-8162(96)00007-0
  19. Doerr, S.H., Shakesby, R.A., Blake, W.H., Chafer, C.J., Humphreys, G.S. and Wallbrink, P.J., 2006. Effects of differing wildfire severities on soil wettability and implications for hydrological response. Journal of Hydrology, 319(1-4), 295-311. https://doi.org/10.1016/j.jhydrol.2005.06.038
  20. Fajković, H., Ivanić, M., Nemet, I., Rončević, S., Kampić, Š. and Vazdar, L.D., 2022. Heat-induced changes in soil properties: Fires as cause for remobilization of chemical elements. Journal of Hydrology and Hydromechanics. https://doi.org/10.2478/johh-2022-0024
  21. Franco, C.M.M., Michelsen, P.P. and Oades, J.M., 2000. Amelioration of water repellency: application of slow-release fertilisers to stimulate microbial breakdown of waxes. Journal of Hydrology, 231, 342-351. https://doi.org/10.1016/s0022-1694(00)00206-7
  22. Franco, C.M.M., Tate, M.E. and Oades, J.M., 1995. Studies on non-wetting sands. 1. The role of intrinsic particulate organic-matter in the development of water-repellency in non-wetting sands. Australian Journal of Soil Research, 33(2), 253-263. https://doi.org/10.1071/sr9950253
  23. García-Corona, R., Benito, E., De Blas, E. and Varela, M.E., 2004. Effects of heating on some soil physical properties related to its hydrological behaviour in two north-western Spanish soils. International Journal of Wildland Fire, 13(2), 195-199. https://doi.org/10.1071/wf03068
  24. González-Vila, F.J., Tinoco, P., Almendros, G. and Martin, F., 2001. Pyrolysis− GC− MS analysis of the formation and degradation stages of charred residues from lignocellulosic biomass. Journal of Agricultural and Food Chemistry, 49(3), 1128-1131. https://doi.org/10.1021/jf0006325
  25. González-Vila, F.J. and Almendros G. 2003. Thermal transformation of soil organic matter by natural fires and laboratory-controlled heatings. In Natural and laboratory-simulated thermal geochemical processes (pp. 153-200). Dordrecht: Springer Netherlands.
  26. González-Pérez, J.A., González-Vila, F.J., Almendros, G., Knicker, H., 2004. The effect of fire on soil organic matter – a review. Environment International 30 (6), 855–870. https://doi.org/10.1016/j.envint.2004.02.003.
  27. Hansel, F.A., Aoki, C.T., Maia, C.M., Cunha Jr, A. and Dedecek, R.A., 2008. Comparison of two alkaline treatments in the extraction of organic compounds associated with water repellency in soil under Pinus taeda. Geoderma, 148(2), 167-172. https://doi.org/10.1016/j.geoderma.2008.10.002
  28. Hološ, S., Šurda, P., Lichner, Ľ., Zvala, A. and Píš, V., 2022. Fire-induced changes in soil properties depend on age and type of forests. Journal of Hydrology and Hydromechanics, 70(4), 442-449. https://doi.org/10.2478/johh-2022-0034
  29. Iovino, M., Pekárová, P., Hallett, P.D., Pekár, J., Lichner, Ľ., Mataix-Solera, J., Alagna, V., Walsh, R., Raffan, A., Schacht, K. and Rodný, M., 2018. Extent and persistence of soil water repellency induced by pines in different geographic regions. Journal of Hydrology and Hydromechanics, 66(4), 360-368. https://doi.org/10.2478/johh-2018-0024
  30. Jain, A., Yang, G. and Yalkowsky, S.H., 2004. Estimation of melting points of organic compounds. Industrial & engineering chemistry research, 43(23), 7618-7621. https://doi.org/10.1021/ie049378m
  31. Jordan, A., Gonzalez, F.A. and Zavala, L.M., 2010. Re‐ establishment of soil water repellency after destruction by intense burning in a Mediterranean heathland (SW Spain). Hydrological Processes. 24(6), 736-748. https://doi.org/10.1002/hyp.7519
  32. Jordán, A., Zavala, L.M., Mataix-Solera, J., Nava, A.L., Alanís, N., 2011. Effect of fire severity on water repellency and aggregate stability on Mexican volcanic soils. Catena 84(3), 136-147. https://doi.org/10.1016/j.catena.2010.10.007
  33. Keizer, J.J., Doerr, S.H., Malvar, M.C., Prats, S.A., Ferreira, R.S.V., Oñate, M.G., Coelho, C.O.A. and Ferreira, A.J.D., 2008. Temporal variation in topsoil water repellency in two recently burnt eucalypt stands in north-central Portugal. Catena, 74(3), 192-204. https://doi.org/10.1016/j.catena.2008.01.004
  34. Kobayashi, M. and Shimizu, T., 2007. Soil water repellency in a Japanese cypress plantation restricts increases in soil water storage during rainfall events. Hydrological Processes: An International Journal, 21(17), 2356-2364. https://doi.org/10.1002/hyp.6754
  35. Koch, K., Ensikat, H.J., 2008. The hydrophobic coatings of plant surfaces: epicuticular wax crystals and their morphologies, crystallinity and molecular self-assembly. Micron 39, 759-772. https://doi.org/10.1016/j.micron.2007.11.010
  36. Kottek, M., Grieser, J., Beck, C., Rudolf, B. and Rubel, F., 2006. World map of the Köppen-Geiger climate classification updated. https://doi.org/10.1127/0941-2948/2006/0130
  37. Leelamanie, D.A.L., 2016. Occurrence and distribution of water repellency in size fractionated coastal dune sand in Sri Lanka under Casuarina shelter belt. Catena. 142, 206-212. https://doi.org/10.1016/j.catena.2016.03.026
  38. Leelamanie, D.A.L., Piyaruwan, H.I.G.S., Jayasinghe, P.K.S.C. and Senevirathne, P.A.N.R., 2021. Hydrophysical characteristics in water-repellent tropical Eucalyptus, Pine, and Casuarina plantation forest soils. Journal of Hydrology and Hydromechanics, 69(4), 447-455. https://doi.org/10.2478/johh-2021-0027
  39. Li, R., Fu, Y., Bergeron, Y., Valeria, O., Chavardès, R.D., Hu, J., Wang, Y., Duan, J., Li, D. and Cheng, Y., 2022. Assessing forest fire properties in Northeastern Asia and Southern China with satellite microwave Emissivity Difference Vegetation Index (EDVI). ISPRS Journal of Photogrammetry and Remote Sensing, 183, 54-65. https://doi.org/10.1016/j.isprsjprs.2021.10.019
  40. Lichner, Ľ., Capuliak, J., Zhukova, N., Holko, L., Czachor, H. and Kollár, J., 2013. Pines influence hydrophysical parameters and water flow in a sandy soil. Biologia, 68(6), 1104-1108. https://doi.org/10.2478/s11756-013-0254-7 Lichner, L., Holko, L., Zhukova, N., Schacht, K., Rajkai, K.,
  41. Fodor, N. and Sándor, R., 2012. Plants and biological soil crust influence the hydrophysical parameters and water flow in an aeolian sandy soil. J. Hydrol. Hydromech, 60(4), 309-318. https://doi.org/10.2478/v10098-012-0027-y
  42. Lichner, Ľ., Šurda, P., Zvala, A., Kollár, J. and Šimanský, V., 2025. Impact of heating on properties of sandy soil under pine and birch trees. Biologia, 80(5), 1195-1206. https://doi.org/10.1007/s11756-025-01903-w
  43. Maillard, L.C., 1916. Synthèse des matières humiques par action des acides aminés sur les sucres réducteurs. Ann. chim, 5(0), 258-316.
  44. Majid, N., Bahar, M.M., Harper, R., Megharaj, M. and Naidu, R., 2023. Influence of biotic and abiotic factors on the development of non-wetting soils and management approaches: A review. Soil security, 11, p.100091. https://doi.org/10.1016/j.soisec.2023.100091
  45. Mao, J., Nierop, K.G., Damsté, J.S.S. and Dekker, S.C., 2014. Roots induce stronger soil water repellency than leaf waxes. Geoderma, 232, 328-340. https://doi.org/10.1016/j.geoderma.2014.05.024
  46. Mao, J., Nierop, K.G., Rietkerk, M., Damsté, J.S.S. and Dekker, S.C., 2016. The influence of vegetation on soil water repellency-markers and soil hydrophobicity. Science of the total environment, 566, 608-620. https://doi.org/10.1016/j.scitotenv.2016.05.077
  47. Marcos, E., Tárrega, R., Luis, E., 2007. Changes in a Humic Cambisol heated (100–500 C) under laboratory conditions: the significance of heating time. Geoderma, 138, 237-243. https://doi.org/10.1016/j.geoderma.2006.11.017
  48. Mayer, L.M., Xing, B., 2001. Organic matter–surface area relationships in acid soils. Soil Sci. Soc. Am. J. 65, 250–258. https://doi.org/10.2136/sssaj2001.651250x
  49. Mirbabaei, S.M., Shahrestani, M.S., Zolfaghari, A. and Abkenar, K.T., 2013. Relationship between soil water repellency and some of soil properties in northern Iran. Catena, 108, 26-34. https://doi.org/10.1016/j.catena.2013.02.013
  50. National Atlas of Sri Lanka, 2007. Second Edition, Survey Department of Sri Lanka. Colombo, Sri Lanka.
  51. Negri, S., Stanchi, S., Celi, L., Bonifacio, E., 2021. Simulating wildfires with lab-heating experiments: Drivers and mechanisms of water repellency in alpine soils. Geoderma 402, 115357. https://doi.org/10.1016/j.geoderma.2021.115357
  52. Perera, H.T.M., Leelamanie, D.A.L., Maeda, M. and Mori, Y., 2023. Alterations in aggregate characteristics of thermally heated water-repellent soil aggregates under laboratory conditions. Journal of Hydrology and Hydromechanics, 71(2), 177-187. https://doi.org/10.2478/johh-2023-0009
  53. Perera, H.T.M., Mori, Y., Maeda, M. and Leelamanie, D.A.L., 2024. Heat-induced alterations in moisture-dependent repellency of water-repellent forest soils: A laboratory approach with Japanese Andosols. Journal of Hydrology and Hydromechanics, 72(1), 25-33. https://doi.org/10.2478/johh-2023-0035
  54. Piyaruwan, H.I.G.S., Jayasinghe, P.K.S.C., Leelamanie, D.A.L., 2020. Water repellency in eucalyptus and pine plantation forest soils and its relation to groundwater levels estimated with multi-temporal modeling. Journal of Hydrology and Hydromechanics 68(4), 382-391. https://doi.org/10.2478/johh-2020-0030
  55. Plaza-Álvarez, P.A., Lucas-Borja, M.E., Sagra, J., Moya, D., Alfaro-Sánchez, R., González-Romero, J. and De las Heras, J., 2018. Changes in soil water repellency after prescribed burnings in three different Mediterranean forest ecosystems. Science of the total environment, 644, 247-255. https://doi.org/10.1016/j.scitotenv.2018.06.364
  56. Roberts, F.J. and Carbon, B.A., 1972. Water repellence in sandy soils of South-Western Australia. II. Some chemical characteristics of the hydrophobic skins. Australian Journal of Soil Research, 10(1), 35-42. https://doi.org/10.1071/sr9720035
  57. Scarff, F.R. and Westoby, M., 2006. Leaf litter flammability in some semi-arid Australian woodlands. Functional Ecology, 745-752. https://doi.org/10.1111/j.1365-2435.2006.01174.x
  58. Smettem, K.R.J., Rye, C., Henry, D.J., Sochacki, S.J. and Harper, R.J., 2021. Soil water repellency and the five spheres of influence: A review of mechanisms, measurement and ecological implications. Science of the Total Environment, 787, p.147429. https://doi.org/10.1016/j.scitotenv.2021.147429
  59. Soil Survey Staff, 2014. Keys to Soil Taxonomy, 12th ed. USDA-Natural Resources Conservation Service, Washington, DC.
  60. Šurda, P., Lichner, Ľ., Iovino, M., Hološ, S. and Zvala, A., 2023. The effect of heating on properties of sandy soils. Land, 12(9), p.1752. https://doi.org/10.3390/land12091752
  61. Tessler, N., Wittenberg, L., Malkinson, D. and Greenbaum, N., 2008. Fire effects and short-term changes in soil water repellency–Mt. Carmel, Israel. Catena. 74(3), 185-191. https://doi.org/10.1016/j.catena.2008.03.002.
  62. Wallis, M.G., Scotter, D.R. and Horne, D.J., 1991. An evaluation of the intrinsic sorptivity water repellency index on a range of New Zealand soils. Soil Research, 29(3), 353-362. https://doi.org/10.1071/sr9910353
  63. Wu, Y., Zhang, N., Slater, G., Waddington, J.M. and de Lannoy, C.F., 2020. Hydrophobicity of peat soils: Characterization of organic compound changes associated with heatinduced water repellency. Science of the Total Environment 714, 136444. https://doi.org/10.1016/j.scitotenv.2019.136444.
  64. Woods, S.W., Birkas, A. and Ahl, R., 2007. Spatial variability of soil hydrophobicity after wildfires in Montana and Colorado. Geomorphology. 86(3-4), 465-479. https://doi.org/10.1016/j.geomorph.2006.09.015.
  65. Zavala, L.M., Granged, A.J., Jordan, A. and Barcenas-Moreno, G., 2010. Effect of burning temperature on water repellency and aggregate stability in forest soils under laboratory conditions. Geoderma. 158(3-4), 366-374. https://doi.org/10.1016/j.geoderma.2010.06.004
DOI: https://doi.org/10.2478/johh-2026-0021 | Journal eISSN: 1338-4333 (formerly 0042-790X) | Journal ISSN: 0042-790X
Language: English
Page range: 280 - 288
Submitted on: May 24, 2026
Accepted on: Jun 20, 2026
Published on: Sep 5, 2026
Published by: Slovak Academy of Sciences, Institute of Hydrology
In partnership with: Paradigm Publishing Services

© 2026 D.A.L. Leelamanie, H.I.G.S. Piyaruwan, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.