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Changes in soil physical properties and understory vegetation in abandoned skidding trails Cover

Changes in soil physical properties and understory vegetation in abandoned skidding trails

Open Access
|May 2026

References

  1. Abukari, A., Chritian, D., Ochire-Boadu, K., 2021. Bulk density and porosity of soils influenced by skidding operations in the Nkrankwanta Off-Forest Reserve of Ghana. Advance in Forestry Science, 8 (2): 1409–1415. https://doi.org/10.34062/afs.v8i2.9530
  2. Ahmadi, Z., Kartoolinejad, D., Mollashahi, M., Shayanmehr, M., 2018. Effect of fire on the diversity and trophic levels of soil fauna in Hyrcanian forests after 5 years (case study: Galandroud forest). Environmental Sciences, 16 (3): 135–152.
  3. Akay, A.E., Wing, G.M., Sivrikaya, F., Sakar, D., 2012. A GIS based decision support system for determining the shortest and safest route to forest fires: a case study in Mediterranean region of Turkey. Environmental Monitoring and Assessment, 184: 1391–1407. https://doi.org/10.1007/s10661-011-2049-z
  4. Babaei Ahmadabad, A., Jourgholami, M., Etemad, V., Oveisi, M., 2023. Long-term assessment of vegetation restoration in the skid trails after ground-based logging operations (case study: Kheyrud forest). Forest and Wood Products, 76 (2): 103–111. DOI: 10.22059/jfwp.2023.358785.1252
  5. Behjou, F.K., 2017. Tree regeneration following ground-based skidding in a Caspian Forest. Austrian Journal of Forest Science, 134 (2):149–161.
  6. Blake, G.R., Hartge, K.H., 1986. Bulk density. In Klute, A. (ed). Methods of soil analysis. Part 1: Physical and mineralogical methods. Agronomy Monograph, No. 9 (5). Madison, WI: American Society of Agronomy, p. 363–375
  7. Bouyoucos, G.J., 1962. Hydrometer method improved for making particle size analysis of soils. Agronomy Journal, 54: 464–465.
  8. Buckley, D.S., Crow, T.R., Nauertz, E.A., Schulz, K.E., 2003. Influence of skid trails and haul roads on under-story plant richness and competition in managed forest landscape in upper Michigan, USA. Forest Ecology and Management, 175 (1-3): 509–520. https://doi.org/10.1016/S0378-1127(02)00185-8
  9. Dearmond, D., Ferraz, J.B.S., De Oliveira, L.R., Lima, A.J.N., De Souza Falcao, N.P., Higuchi, N., 2023. Soil compaction in skid trails still affects topsoil recovery 28 years after logging in Central Amazonia. Geoderma, 434: 116473. https://doi.org/10.1016/j.geoderma.2023.116473
  10. Ezzati, S.; Najafi, A., Rab, M., Zenner, E.K., 2012. Recovery of soil bulk density, porosity and rutting from ground skidding over a 20-year period after timber harvesting in Iran. Silva Fennica, 46 (4): 521–538. https://doi.org/10.14214/SF.908
  11. Fakhar, N., Keshtkar, H., 2020. Investigating the effects of distribution patterns on ecological indices of plant species in a simulated environment, Desert, 25 (2): 201–211. https://doi.org/10.22059/jdesert.2020.79257
  12. Fery, B., Kremer, J., Rudt, A., Sciacca. S., Matthies, D., Luscher P., 2009. Compaction of forest soils with heavy logging machinery affects soil bacterial community structure. European Journal of Soil Biology, 45 (4): 312–320. https://doi.org/10.1016/j.ejsobi.2009.05.006
  13. Jafari, F., Kartoolinejad, D., Amiri, M., Shayanmehr, M. Akbarian, M., 2017. Long term effect of oil mulch on richness and biodiversity of soil macro-fauna and vegetation in Jask, Iran. Journal of Arid Biome, 7 (1): 27–38.
  14. Jamalzehi Samareh, Y., Sharriari, A., Pahlavan-Rad, M., Ziaie Javiad, A., Bameri, A., 2024. Three-dimensional mapping of soil saturation percentage using the combination of geostatistical methods and environmental variables in the Sistan Plain. Journal of Water and Soil Conservation, 31 (4): 89–111. https://doi.10.22069/jwsc.2025.22614.3746.
  15. Han, S.K., Han, H.S., Page-Dumroese, D.S., Jahnson. L.R., 2009. Soil compaction associated with cut to length and whole tree harvesting of coniferous forest. Canadian Journal of Forest Research, 39: 976–989. https://doi.org/10.1139/X09-02
  16. IUSS Working Group WRB, 2022. World reference base for soil resources. International soil classification system for naming soil and creating legends for soil maps. 4th ed. Vienna: International Union of Soil Sciences (IUSS).
  17. Kartoolinejad, D., Najafi, A. Kazemi-Najafi, S., 2017. Long-term impacts of ground skidding on standing trees: assessment of decay using stress waves. Environmental Engineering and Management Journal (EEMJ), 16 (10): 2283–2291. https://doi.org/10.30638/eemj.2017.236
  18. Kartoolinejad, D., Najafi, A., Shyamehr, M., 2013. Long term impacts of ground skidding on structure of soil macrofauna associations in Hyrcanian Beech Forests. IAU Entomological Research Journal, 5 (2): 115–131.
  19. Lacey, S.T., Ryan P.J, 2000. Cumulative management impacts on soil physical properties and early growth of Pinus radiata. Forest Ecology and Management, 138 (1-3): 321–333. https://doi.org/10.1016/s0378-1127(00)00422-9
  20. Lotfalian, M., Parsakhoo, A., 2019. Investigation of forest soil disturbance caused by rubber-tired skidder traffic. International Journal of Natural and Engineering Sciences, 3 (1): 79–82. [cit. 2025-10-13]. https://ijnes.org/index.php/ijnes/article/view/446
  21. Mashayekhi, P., 2021. Estimation of field capacity and permanent wilting point of plant using double-rings data and inverse numerical solution in different soil textures. Iranian Journal of Soil and Water Research, 52 (7): 1753–1763. https://doi.org/10.22059/ijswr.2021.318649.668888
  22. Marra, E., LaschI, A., Fabiano, F., Foderi, C., Neri, F., Mastrolonardo, G., Nordfiell, T., Marchi, E., 2022. Impacts of wood extraction on soil: assessing rutting and soil compaction caused by skidding and forwarding by means of traditional and innovative methods. European Journal of Forest Research, 141: 71–86. https://doi.org/10.1007/s10342-021-01420-w
  23. Mercier, P., Aas, G., Dengler, J., 2019. Effects of skid trails on understory vegetation in forests: a case study from Northern Bavaria (Germany). Forest Ecology and Management, 453: 127–141. https://doi.org/10.1016/j.foreco.2019.117579
  24. Mounmemei, H.K., Ekue, M.R.M., Forbi, F.P., Banoho, L.P. R.K., Tiokeng, B., Maffo, N.L.M., Betti, L.J., Tochupou, C.M.V., Nmrn, A.F.Y., Taedoumg, H.E. Louis Z., 2023. Assessing plant diversity change in logged and unlogged dense semi-deciduous production forest of eastern Cameroon. Heliyon, 9: e16199. https://doi.org/10.1016/j.heliyon.2023.e16199
  25. Naghdi, R., Pourbabaie, H., Heidary, M., Tavankar, F., Nouri, M. Dey, D.C., 2022. Soil changes and plants reaction to road construction in a temperate mixed forest. Forestist, 73 (1): 2–10.
  26. Naghdi, R., Solgi, A., Ilstedt, U., 2016a. Soil chemical and physical properties after skidding by rubber-tired skidder in Hyrcanian Forest, Iran. Geoderma, 265: 12–18. https://doi.org/10.1016/j.geoderma.2015.11.009
  27. Naghdi, R., Solgi, A., Labelle, E.R. Nikooy, M., 2020. Combined effects of soil texture and machine operating trail gradient on changes in forest soil physical properties during ground-based skidding. Pedosphere, 30 (4): 508-–516.
  28. Naghdi, R., Solgi, A., Zenner, E.K., Tsioras, P.A., Nikooy, M., 2016b. Soil disturbance caused by ground-based skidding at different soil moisture conditions in Northern Iran. International Journal of Forest Engineering, 27 (3): 169–178. https://doi.org/10.1080/14942119.2016.1234196
  29. Najafi, A, Solgi A., Sadeghi, S.H.R., 2009. Soil disturbance following four-wheel rubber skidder logging on the steep trail in the north mountainous forest of Iran. Soil and Tillage Research Journal, 130: 165–169. https://doi.org/10.1016/j.still.2008.10.003
  30. Nielsen, S.S., 2010. Determination of moisture content. In Nielsen, S.S. (ed.). Food analysis laboratory manual. Food Science Texts Series. Boston, MA: Springer, p. 17–27. https://doi.org/10.1007/978-1-4419-1463-7_3
  31. Niu, Y., Yang, S., Wang, G., Liu, L., Hua, L., 2018. Effects of grazing disturbance on plant diversity, community structure and direction of succession in an alpine meadow on Tibet Plateau, China. Acta Ecologica Sinica, 38: 179–185. https://doi.org/10.1016/j.chnaes.2017.06.011
  32. Salehi, A., Taheri Abkenar, K., Basiri, R., 2012. Study of the recovery soil physical properties and establishment of natural regeneration in skid trails (case study: Nav-E Asalem forests). Journal of Iranian Forestry, 3: 317–329.
  33. Solgi, A., Najafi, A., 2014. The impacts of ground-based logging equipment on forest soil. Journal of Forest Science, 60 (1): 28–34.
  34. Soltanpour, S., Jourgholami, M., 2013. Soil bulk density and porosity changes due to ground-based timber extraction in the Hyrcanian forest. Notulae Scientia Biologicae, 5 (2): 263–269. https://doi.org/10.15835/nsb528951
  35. Tan, X., Kabzemes, R., Chang, S.X., 2006. Response of forest vegetation and foliar δ13C and δ15N to soil compaction and forest floor removal in boreal aspen forest. Forest Ecology and Managment, 222: 450–458. https://doi.org/10.1016/j.foreco.2005.10.051
  36. Wei, L., Villemey, A., Hulin, F., Bilger, I., Yann, D., Chevalier, R., Archaux, F., Gosselin, F., 2015. Plant diversity on skid trails in oak high forests: a matter of disturbance, micro-environmental conditions or forest age. Forest Ecology and Management, 338: 20–31. https://doi.org/10.1016/j.foreco.2014.11.018
  37. Zhao, Y., Krzic. M., Bulmer. C.E., Schmidt, M.G., Simard, S.W., 2010. Relative bulk density as a measure of compactionand its influence on tree height. Canadian Journal of Forest Research, 40: 1724–1734. https://doi.org/10.1139/X10-115
  38. Zemke, J.J., Enderling, M., Klein, A. Skubski, M., 2019. The influence of soil compaction on runoff formation. A case study focusing on skid trails at forested andosol sites. Geosciences, 9 (5): 204. https://doi.org/10.3390/geosciences9050204
DOI: https://doi.org/10.2478/foecol-2026-0014 | Journal eISSN: 1338-7014 | Journal ISSN: 1336-5266
Language: English
Page range: 160 - 168
Submitted on: Oct 25, 2025
Accepted on: Mar 26, 2026
Published on: May 31, 2026
In partnership with: Paradigm Publishing Services
Publication frequency: 3 issues per year

© 2026 Mohammad Moghadasi, Maryam Mollashahi, Alireza Moshki, Davoud Kartoolinejad, published by Slovak Academy of Sciences, Institute of Forest Ecology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.