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Evaluation of soil properties in variously aged Scots pine plantations established on sandy soil


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Achilles, F., Tischer, A., Bernhardt-Romermann, M., Heinze, M., Reinhardt, F., Makeschin, F., Michalzik, B., 2021. European beech leads to more bioactive humus forms but stronger mineral soil acidification as Norway spruce and Scots pine - Results of a repeated site assessment after 63 and 82 years of forest conversion in Central Germany. Forest Ecology and Management, 483, Article Number: 118769. DOI: 10.1016/j.foreco.2020.11876910.1016/j.foreco.2020.118769 Search in Google Scholar

Ahtikoski, A., Alenius, V., Makitalo, K., 2010. Scots pine stand establishment with special emphasis on uncertainty and cost-effectiveness, the case of northern Finland. New Forests, 40, 69–84.10.1007/s11056-009-9183-2 Search in Google Scholar

Alagna, V., Iovino, M., Bagarello, V., Mataix-Solera, J., Lichner, Ľ., 2017. Application of minidisk infiltrometer to estimate water repellency in Mediterranean pine forest soils. Journal of Hydrology and Hydromechanics, 65, 254–263.10.1515/johh-2017-0009 Search in Google Scholar

Alagna, V., Iovino, M., Bagarello, V., Mataix-Solera, J., Lichner, L., 2019. Alternative analysis of transient infiltration experiment to estimate soil water repellency. Hydrological Processes, 33, 661–674.10.1002/hyp.13352 Search in Google Scholar

Benito, E., Varela, E., 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, 129–134.10.2478/johh-2018-0038 Search in Google Scholar

Bisdom, E.B.A., Dekker, L.W., Schoute, J.F.T., 1993. Water repellency of sieve fractions from sandy soils and relationships with organic material and soil structure. Geoderma, 56, 105–118.10.1016/B978-0-444-81490-6.50013-3 Search in Google Scholar

Bolte, A., Villanueva, I., 2005. Interspecific competition impacts on the morphology and distribution of fine roots in European beech (Fagus sylvatica L.) and Norway spruce (Picea abies (L.) Karst.). Eur. J. Forest Res., 125, 15–26. https://doi.org/10.1007/s10342-005-0075-510.1007/s10342-005-0075-5 Search in Google Scholar

Buczko, U., Bens, O., Fischer, H., Hüttl, R.F., 2002. Water repellency in sandy luvisols under different forest transformation stages in northeast Germany. Geoderma, 109, 1–18.10.1016/S0016-7061(02)00137-4 Search in Google Scholar

Buczko, U., Bens, O., Hüttl, R.F., 2005. Variability of soil water repellency in sandy forest soils with different stand structure under Scots pine (Pinus sylvestris) and beech (Fagus sylvatica). Geoderma, 126, 3–4, 317–336.10.1016/j.geoderma.2004.10.003 Search in Google Scholar

Cesarano, G., Incerti, G., Bonanomi, G., 2016. The influence of plant litter on soil water repellency: insight from 13C NMR spectroscopy. PLoS One, 11, 3, Article Number: e0152565.10.1371/journal.pone.0152565481156627022916 Search in Google Scholar

Clothier, B.E., Vogeler, I., Magesan, G.N., 2000. The breakdown of water repellency and solute transport through a hydrophobic soil. Journal of Hydrology, 231–232, 255–264.10.1016/S0022-1694(00)00199-2 Search in Google Scholar

Decagon, 2007. Minidisk Infiltrometer User’s Manual. Decagon Devices, Inc., Pullman. Search in Google Scholar

Diehl, D., 2013. Soil water repellency: Dynamics of heterogeneous surfaces. Colloids and Surfaces A: Physicochem. Eng. Aspects, 432, 8–18.10.1016/j.colsurfa.2013.05.011 Search in Google Scholar

Doerr, S.H., 1998. On standardizing the “Water Drop Penetration Time” and the “Molarity of an Ethanol Droplet” techniques to classify soil hydrophobicity: a case study using medium textured soils. Earth Surface Processes and Land-forms, 23, 663–668.10.1002/(SICI)1096-9837(199807)23:7<663::AID-ESP909>3.0.CO;2-6 Search in Google Scholar

Doerr, S.H., Shakesby, R.A., Walsh, R.P.D., 2000. Soil water repellency: its causes, characteristics and hydro-geomorphological significance. Earth-Science Reviews, 51, 33–65.10.1016/S0012-8252(00)00011-8 Search in Google Scholar

Fér, M., Leue, M., Kodešová, R., Gerke, H.H., Ellerbrock, R.H., 2016. Droplet infiltration dynamics and soil wettability related to soil organic matter of soil aggregate coatings. Journal of Hydrology and Hydromechanics, 64, 111–120.10.1515/johh-2016-0021 Search in Google Scholar

Goebel, M.-O., Bachmann, J., Woche, S.K., Fischer, W.R., 2005. Soil wettability, aggregate stability, and the decomposition of soil organic matter. Geoderma, 128, 80–93.10.1016/j.geoderma.2004.12.016 Search in Google Scholar

Hallett, P.D., Young, I.M., 1999. Changes to water repellence of soil aggregates caused by substrate-induced microbial activity. European Journal of Soil Science, 50, 35–40.10.1046/j.1365-2389.1999.00214.x Search in Google Scholar

Hewelke, E., Oktaba, L., Gozdowski, D., Kondras, M., Olejniczak, I., Górska, E.B., 2018. Intensity and persistence of soil water repellency in pine forest soil in a temperate continental climate under drought conditions. Water, 10, 9, Article Number: 1121.10.3390/w10091121 Search in Google Scholar

Hrabovský, A., Dlapa, P., Cerda, A., Kollár, J., 2020. The impacts of vineyard afforestation on soil properties, water repellency and near-saturated infiltration in the Little Carpathians mountains. Water, 12, Article Number: 2550.10.3390/w12092550 Search in Google Scholar

Iovino, M., Pekárová, P., Hallett, P.D., Pekár, J., Lichner, L., Mataix-Solera, J., Alagna, V., Walsh, R., Raffan, A., Schacht, K., Rodný, M., 2018. Extent and persistence of soil water repellency induced by pines in different geographic regions. Journal of Hydrology and Hydromechanics, 66, 360–368.10.2478/johh-2018-0024 Search in Google Scholar

ISO 10390, 2005. Soil quality. Determination of pH. International Organization of Standardization, Geneva. (https://www.iso.org/standard/40879.html) Search in Google Scholar

ISO 10693, 1995. Soil quality. Determination of carbonate content. Volumetric method. International Organization of Standardization, Geneva. (https://www.iso.org/standard/18781.html) Search in Google Scholar

ISO 10694, 1995. Soil quality. Determination of organic and total carbon after dry combustion (elementary analysis). International Organization of Standardization, Geneva. (https://www.iso.org/standard/18782.html) Search in Google Scholar

ISO 11277, 2009. Soil quality. Determination of particle size distribution in mineral soil material. Method by sieving and sedimentation. International Organization of Standardization, Geneva. (https://www.iso.org/standard/54151.html) Search in Google Scholar

Jandl, R., Lindner, M., Vesterdal, L., Bauwens, B., Baritz, R., Hagedorn, F., Johnson, D.W., Minkkinen, K., Byrne, K.A., 2007. How strongly can forest management influence soil carbon sequestration? Geoderma, 137, 3–4, 253–268.10.1016/j.geoderma.2006.09.003 Search in Google Scholar

Kalivodová, E., Kubíček, F., Bedrna, Z., Kalivoda, H., Gavlas, V., Kollár, J., Gajdoš, P., Štepanovičová, O., 2002. Sand dunes of Slovakia. Luka-Press, Bratislava, 60 p. (In Slovak.) Search in Google Scholar

Kottek, M., Grieser, J., Beck, C., Rudolf, B., Rubel, F., 2006. World map of the Köppen-Geiger climate classification updated. Meteorologische Zeitschrift, 15, 259–263.10.1127/0941-2948/2006/0130 Search in Google Scholar

Krippel, E., 1965. Post-glacial development of forests in the Záhorská nížina lowland. Biol. práce, Bratislava, 11, 3, 1–100. (In Slovak.) Search in Google Scholar

Leelamanie, D.A.L., Nishiwaki, J., 2019. Water repellency in Japanese coniferous forest soils as affected by drying temperature and moisture. Biologia, 74, 127–137.10.2478/s11756-018-0157-8 Search in Google Scholar

Lichner, Ľ., Babejová, N., Dekker, L.W., 2002. Effects of kaolinite and drying temperature on the persistence of soil water repellency induced by humic acids. Rostlinná Výroba, 48, 203–207.10.17221/4225-PSE Search in Google Scholar

Lichner, L., Capuliak, J., Zhukova, N., Holko, L., Czachor, H., Kollár, J., 2013. Pines influence hydrophysical parameters and water flow in a sandy soil. Biologia, 68, 1104–1108.10.2478/s11756-013-0254-7 Search in Google Scholar

Lichner, L., Felde, V.J.M.N.L., Büdel, B., Leue, M., Gerke, H.H., Ehlerbrock, R.H., Kollár, J., Rodný, M., Šurda, P., Fodor, N., Sándor, R., 2018. Effect of vegetation and its succession on water repellency in sandy soils. Ecohydrology, 11, 6, Article Number: UNSP e1991.10.1002/eco.1991 Search in Google Scholar

Lichner, Ľ., Alagna, V., Iovino, M., Laudicina, V.A., Novák, V., 2020a. Evaporation from soils of different texture covered by layers of water repellent and wettable soils. Biologia, 75, 6, 865–872.10.2478/s11756-020-00471-5 Search in Google Scholar

Lichner, L., Iovino, M., Šurda, P., Nagy, V., Zvala, A., Kollár, J., Pecho, J., Píš, V., Sepehrnia, N., Sándor, R., 2020b. Impact of secondary succession in abandoned fields on some properties of acidic sandy soils. Journal of Hydrology and Hydromechanics, 68, 1, 12–18.10.2478/johh-2019-0028 Search in Google Scholar

Löf, M., Rydberg, D., Bolte, A., 2006. Mounding site preparation for forest restoration: Survival and growth responses in Quercus robur L. seedlings. For. Ecol. Manage., 232, 1–3, 19–25.10.1016/j.foreco.2006.05.003 Search in Google Scholar

Löf, M., Dey, D.C., Navarro, R.M., Jacobs, D.F., 2012. Mechanical site preparation for forest restoration. New Forests, 43, 825–848.10.1007/s11056-012-9332-x Search in Google Scholar

Luoranen, J., Rikala, R., 2013. Field performance of Scots pine (Pinus sylvestris L.) seedlings planted in disc trenched or mounded sites over an extended planting season. New Forests, 44, 147–162.10.1007/s11056-012-9307-y Search in Google Scholar

Marhold, K., Hindák, F., 1998. Checklist of Nonvascular and Vascular Plants of Slovakia. Veda, Bratislava, 687 p. (In Slovak.) Search in Google Scholar

McKissock, I., Walker, E.L., Gilkes, R.J., Carter, D.J., 2000. The influence of clay type on reduction of water repellency by applied clays: a review of some West Australian work. Journal of Hydrology, 231–232, 323–332.10.1016/S0022-1694(00)00204-3 Search in Google Scholar

NCSS 12 Statistical Software, 2018. NCSS, LLC. Kaysville, Utah, USA, ncss.com/software/ncss. Search in Google Scholar

Pekárová, P., Pekár, J., Lichner, Ľ., 2015. A new method for estimating soil water repellency index. Biologia, 70, 1450–1455.10.1515/biolog-2015-0178 Search in Google Scholar

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, 382–391.10.2478/johh-2020-0030 Search in Google Scholar

Reynolds, W.D., Elrick, D.E., Youngs, E.G., Amoozegar, A., Booltink, H.W.G., Bouma, J., 2002. Saturated and field-saturated water flow parameters. In: Dane, J.H., Topp, G.C. (Eds.): Methods of Soil Analysis, Part 4. Soil Science Society of America, Inc., Madison, pp. 797–878. Search in Google Scholar

Roper, M.M., 2005. Managing soils to enhance the potential for bioremediation of water repellency. Australian Journal of Soil Research, 43, 803–810.10.1071/SR05061 Search in Google Scholar

Roper, M.M., 2006. Potential for remediation of water repellent soils by inoculation with wax-degrading bacteria in southwestern Australia. Biologia, 61, Suppl. 19, S358–S362.10.2478/s11756-006-0189-3 Search in Google Scholar

Rye, C.F., Smettem, K.R.J., 2017. The effect of water repellent soil surface layers on preferential flow and bare soil evaporation. Geoderma, 289, 142–149.10.1016/j.geoderma.2016.11.032 Search in Google Scholar

Sarvaš, M., Tučeková, A., Takáčová, E., Chválová, K., Lengyelová, A., Varínsky, J., Longauerová, V., Sušková, M., 2007. Forest establishment in changing ecological conditions. Národné lesnícke centrum, Zvolen, 107 p. (In Slovak.) Search in Google Scholar

Soil Survey Division Staff, 1993. Soil Survey Manual. Soil Conservation Service. U.S. Department of Agriculture Handbook, 18 p. Search in Google Scholar

Šomšák, L., Šimonovič, V., Kollár J., 2003. Phytocoenoses of pine forests in the central part of the Záhorská nížina Lowland. Biologia, Bratislava, 59, 101–113. Search in Google Scholar

Šurda, P., Lichner, Ľ., Nagy, V., Kollár, J., Iovino, M., Horel, Á., 2015. Effects of vegetation at different succession stages on soil properties and water flow in sandy soil. Biologia, 70, 11, 1474–1479.10.1515/biolog-2015-0172 Search in Google Scholar

Sutton, R.F., 1993. Mounding site preparation: A review of European and North American experience. New Forests, 7, 151–192.10.1007/BF00034198 Search in Google Scholar

Tinebra, I., Alagna, V., Iovino, M., Bagarello, V., 2019. Comparing different application procedures of the water drop penetration time test to assess soil water repellency in a fire affected Sicilian area. Catena, 177, 41–48.10.1016/j.catena.2019.02.005 Search in Google Scholar

Turfan, N., Alay, M., Sariyildiz, T., 2018. Effect of tree age on chemical compounds of ancient Anatolian black pine (Pinus nigra subsp. pallasiana) needles in Northwest Turkey. iForest, 11, 406–410.10.3832/ifor2665-011 Search in Google Scholar

Villarreal, R., Lozano, L.A., Melani, E.M., Salazar, M.P., Otero, M.F., Soracco, C.G., 2019. Diffusivity and sorptivity determination at different soil water contents from horizontal infiltration. Geoderma, 338, 88–96.10.1016/j.geoderma.2018.11.045 Search in Google Scholar

WRB, 2014. World Reference Base for Soil Resources 2014. World Soil Resources Reports No. 106. Rome, 192 p. Search in Google Scholar

Zavala, L.M., González, F.A., Jordán, A., 2009. Intensity and persistence of water repellencyin relation to vegetation types and soil parameters in Mediterranean SW Spain. Geoderma, 152, 361–374.10.1016/j.geoderma.2009.07.011 Search in Google Scholar

Zema, D.A., Plaza-Alvarez, P.A., Xu, X.Z., Carra, B.G., Lucas-Borja, M.E., 2021. Influence of forest stand age on soil water repellency and hydraulic conductivity in the Mediterranean environment. Science of the Total Environment, 753, Article Number: 142006.10.1016/j.scitotenv.2020.14200632890878 Search in Google Scholar

Zhang, R., 1997. Determination of soil sorptivity and hydraulic conductivity from the disk infiltrometer. Soil Science Society of America Journal, 61, 1024–1030.10.2136/sssaj1997.03615995006100040005x Search in Google Scholar

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