INFORMAZIONI SU QUESTO ARTICOLO

Cita

Al-Shammary, A.A.G., Kouzani, A., Gyasi-Agyei, Y., Gates, W., Rodrigo-Comino, J., 2020. Effects of solarisation on soil thermal-physical properties under different soil treatments: a review. Geoderma, 363, 114137.10.1016/j.geoderma.2019.114137 Search in Google Scholar

Bang-Andreasen, T., Nielsen, J.T., Voriskova, J., Heise, J., Rønn, R., Kjøller, R., Hansen, H.C.B., Jacobsen, C.S., 2017. Wood ash induced pH changes strongly affect soil bacterial numbers and community composition. Front. Microbiol., 8, 1400.10.3389/fmicb.2017.01400553239628804476 Search in Google Scholar

Dane, J.H., Hopmans, J.W., 2002. Water retention and storage. In: Dane, J.H., Topp, G.C. (Eds.): Methods of Soil Analysis. Part 4. Physical Methods. SSSA Book Series No. 5. Soil Science Society of America Madison USA. ISBN: 0–89118–841–X.10.2136/sssabookser5.4 Search in Google Scholar

Dane, J.H., Topp, G.C., 2002. Methods of Soil Analysis. Part 4. Physical Methods. SSSA, Madison, WI, 1692 p.10.2136/sssabookser5.4 Search in Google Scholar

Dexter, A.R, Czyz, E.A., 2007. Application of S–theory in study of soil physical degradation and its consequences. Land Degrad. Dev., 18, 369–381.10.1002/ldr.779 Search in Google Scholar

Dexter, A.R., 2004a. Soil physical quality Part I. Theory effect of soil texture density and organic matter and effect on root growth. Geoderma, 120, 201–214.10.1016/j.geoderma.2003.09.004 Search in Google Scholar

Dexter, A.R., 2004b. Soil physical quality Part II. Friability tillage tilth and hard–setting. Geoderma, 120, 215–226.10.1016/j.geoderma.2003.09.005 Search in Google Scholar

Dexter, A.R., 2004c. Soil physical quality Part III. Unsaturated hydraulic conductivity and general conclusions about S– theory. Geoderma, 120, 227–239.10.1016/j.geoderma.2003.09.006 Search in Google Scholar

Dissanayake, P.D., Palansooriya, K.N., Sang, M.K., Oh, D.X., Park, J., Hwang, S.Y., Igalavithana, A.D., Gu, C., Ok, Y.S., 2022. Combined effect of biochar and soil moisture on soil chemical properties and microbial community composition in microplastic-contaminated agricultural soil. Soil Use Manag., 38, 1–13. https://doi.org/10.1111/sum.12804. Search in Google Scholar

Gardner, W.R., 1958. Some steady state solutions of unsaturated moisture flow equations with application to evaporation from a water table. Soil Sci., 85, 228–232.10.1097/00010694-195804000-00006 Search in Google Scholar

Fér, M., Kodešová, R., Hroníková, S., Nikodem, A., 2020. The effect of 12-year ecological farming on the soil hydraulic properties and repellency index. Biologia, 75, 795–798.10.2478/s11756-019-00373-1 Search in Google Scholar

Fér, M., Kodešová, R., Nikodem, A., Jelenová, K., Klement, A., 2018. Influence of soil–water content on CO2 efflux within the elevation transect heavily impacted by erosion. Ecohydrology, 11, 6, e1989.10.1002/eco.1989 Search in Google Scholar

Fér, M., Kodešová, R., Nikodem, A., Jirků, V., Jakšík, O., Němeček, K., 2016. The impact of the permanent grass cover or conventional tillage on hydraulic properties of Haplic Cambisol developed on paragneiss substrate. Biologia, 71, 10, 1144–1150.10.1515/biolog-2016-0133 Search in Google Scholar

Hlaváčiková, H., Novák, V., Kameyama, K., Brezianská, K., Rodný, M., Vitková, J., 2019. Two types of biochars: one made from sugarcane bagasse, other one produced from paper fiber sludge and grain husks and their effects on water retention. Soil Water Res., 14, 2, 67–75.10.17221/15/2018-SWR Search in Google Scholar

Iovino, M., Pekárová, P., Hallett, D.P., Pekár, J., Lichner, Ľ., 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. J. Hydrol. Hydromech., 66, 4, 360–368.10.2478/johh-2018-0024 Search in Google Scholar

ISO 10390, 2005. International Organization of Standardization, 2005. Soil Quality - Determination of pH. Search in Google Scholar

IUSS, 2014. World Reference Base for Soil Resources 2014. World Soil Resources Reports No. 106. FAO, Rome. Search in Google Scholar

Jirků, V., Kodešová, R., Nikodem, A., Mühlhanselová, M., Žigová, A., 2013. Temporal variability of structure and hydraulic properties of topsoil of three soil types. Geoderma, 204–205, 43–58.10.1016/j.geoderma.2013.03.024 Search in Google Scholar

Kader, M.A., Senge, M., Mojid, M.A., Nakamura, K., 2017. Mulching type-induced soil moisture and temperature regimes and water use efficiency of soybean under rain-fed condition in central Japan. Int. Soil Water Conserv. Res., 5, 302–308.10.1016/j.iswcr.2017.08.001 Search in Google Scholar

Kasirajan, S., Ngouajio, M., 2012. Polyethylene and biodegradable mulches for agricultural applications: a review. Agron. Sustain. Dev., 32, 501–529.10.1007/s13593-011-0068-3 Search in Google Scholar

Kodešová, R., Fér, M., Klement, A., Nikodem, A., Teplá, D., Neuberger, P., Bureš, P., 2014. Impact of various surface covers on water and thermal regime of Technosol. J. Hydrol., 519, 2272–2288.10.1016/j.jhydrol.2014.10.035 Search in Google Scholar

Kodešová, R., Šimůnek, J., Nikodem, A., Jirků, V., 2010. Estimation of parameters of the radially-symmetric dual-permeability model using tension disc infiltrometer and Guelph permeameter experiments. Vadose Zone J., 9, 213–225.10.2136/vzj2009.0069 Search in Google Scholar

Kodešová, R., Jirků, V., Kodeš, V., Mühlhanselová, M., Nikodem, A., Žigová, A., 2011. Soil structure and soil hydraulic properties of Haplic Luvisol used as arable land and grassland. Soil Till. Res., 111, 2, 154–161.10.1016/j.still.2010.09.007 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

Loeppert, R., Suarez, D., 1996. Carbonate and Gypsum. Methods Soil Anal. Part 3-Chemical Methods. In: SSSA B, Ser. No. 5, pp. 437e475.10.2136/sssabookser5.3.c15 Search in Google Scholar

Meter Group AG, 2020. Mini Disk Infiltrometer. Mettlacher Straße 8, München. Search in Google Scholar

Nikodem, A., Kodešová, R., Fér, M., Klement, A., 2021. Variability of topsoil hydraulic conductivity along the hillslope transects delineated in four areas strongly affected by soil erosion. J. Hydrol. Hydromech., 69, 2, 220–231.10.2478/johh-2021-0008 Search in Google Scholar

Nimmo, J.R., Perkins, K.S., 2002. Aggregate stability and size distribution. In: Dane, J.H., Topp, G.C. (Eds.): Methods of Soil Analysis, Part 4. Physical Methods. SSSA, Madison, WI, pp. 317–328.10.2136/sssabookser5.4.c14 Search in Google Scholar

Nzeyimana, I., Hartemink, A.E, Ritsema, C., Stroosnijder, L., Lwanga, E.H., Geissen, V., 2017. Mulching as a strategy to improve soil properties and reduce soil erodibility in coffee farming systems of Rwanda. Catena, 149, 43–51.10.1016/j.catena.2016.08.034 Search in Google Scholar

Pavlů, L., Kodešová, R., Fér, M., Nikodem, A., Němec, F., Prokeš, R., 2021. The impact of various mulch types on soil properties controlling water regime of the Haplic Fluvisol. Soil Till. Res., 205, 104748.10.1016/j.still.2020.104748 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

Philip, J.R., 1957. The theory of infiltration: 1. The infiltration equation and its solution. Soil Sci 83, 345–358.10.1097/00010694-195705000-00002 Search in Google Scholar

Qu, B., Liu, Y., Sun, X., Li, S., Wang, X., Xiong, K., Yun, B., Zhang, H., 2019. Effect of various mulches on soil physico– chemical properties and tree growth (Sophora japonica) in urban tree pits. PLoS ONE, 14, 2, e0210777.10.1371/journal.pone.0210777636496330726253 Search in Google Scholar

Rees, H.W., Chow, T.L., Loro, P.J., Lavoie, J., Monteith, J.O., Blaauw, A., 2002. Hay mulching to reduce runoff and soil loss under intensive potato production in northwestern New Brunswick, Canada. Can. J. Soil Sci., 82, 2, 249–258.10.4141/S01-055 Search in Google Scholar

Reynolds, W.D., Elrick, D.E., 1991. Determination of hydraulic conductivity using a tension infiltrometer. Soil Sci. Soc. Am. J., 55, 633–639.10.2136/sssaj1991.03615995005500030001x Search in Google Scholar

Rhoades, J.D., 1996. Salinity: electrical conductivity and total dissolved aolids. In: Sparks, D.L., Page, A.L., Helmke, P.A., Loepert, R.H., Soltanpour, P.N., Tabatabai, M.A. (Eds.), Methods of Soil Analysis. Part 3. Chemical Methods. SSSA, Madison, WI, pp. 417–435.10.2136/sssabookser5.3.c14 Search in Google Scholar

Sándor, R., Iovino, M., Lichner, L., Alagna, V., Forster, D., Fraser, M., Kollár, J., Šurda, P., Nagy, V., Szabó, A., Fodor, N., 2021. Impact of climate, soil properties and grassland cover on soil water repellency. Geoderma, 383, 114780.10.1016/j.geoderma.2020.114780 Search in Google Scholar

Skjemstad, J., Baldock, J.A., 2008. Total and organic carbon. In: Carter, M. (Ed.): Soil Sampling and Methods of Analysis, 2nd ed. CRC Press, Boca Raton, FL, USA, pp. 225–238.10.1201/9781420005271.ch21 Search in Google Scholar

Soilmoisture Equipment Corp., 2009. 15 Bar pressure plate extractor operating instructions. Soilmoisture Equipment Corp., Santa Barbara, CA. Search in Google Scholar

Šurda, P., Lichner, Ľ., Kollár, J., Zvala, A., Igaz, D., 2021. Evaluation of soil properties in variously aged Scots pine plantations established on sandy soil. J. Hydrol. Hydro-mech., 69, 3, 347–355.10.2478/johh-2021-0012 Search in Google Scholar

Thai, S., Davídek, T., Pavlů, L., 2022. Causes clarification of the soil aggregates stability on mulched soil. Soil Water Res., 17, 2, 91–99.10.17221/151/2021-SWR Search in Google Scholar

Toková, L., Hološ, S., Šurda, P., Kollár, J., Lichner, Ľ., 2022. Impact of duration of land abandonment on infiltration and surface runoff in acidic sandy soil. Agriculture, 12, 168.10.3390/agriculture12020168 Search in Google Scholar

van Genuchten, M.Th., 1980. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Sci. Soc. Am. J., 44, 5, 892–898.10.2136/sssaj1980.03615995004400050002x Search in Google Scholar

Upton, G., Cook, I., 2008. A Dictionary of Statistics, 2nd ed. rev. Oxford University Press, Oxford.10.1093/acref/9780199541454.001.0001 Search in Google Scholar

van Genuchten, M.Th., Leij, F.J., Yates, S.R., 1991. The RETC code for quantifying the hydraulic functions of unsaturated soils. EPA report 600/2–91/065. U.S. Salinity Laboratory, USDA-ARS. Search in Google Scholar

Wang, Q., Liu, X., Li, J., Yang, X., Guo, Z., 2021. Straw application and soil organic carbon change: A meta-analysis. Soil Water Res., 16, 2, 112–120.10.17221/155/2020-SWR Search in Google Scholar

Watson, K.W., Luxmoore, R.J., 1986. Estimating macroporosity in a forest watershed by use of a tension infiltrometer. Soil Sci. Soc. Am. J., 50, 578–582.10.2136/sssaj1986.03615995005000030007x Search in Google Scholar

Wooding, R.A., 1968. Steady infiltration from a shallow circular pond. Water Resour. Res., 4, 1259–1273.10.1029/WR004i006p01259 Search in Google Scholar

Yang, Y., Li, P., Jiao, J., Yang, Z., Lv, M., Li, Y., Zhou, Ch., Wang, Ch., He, Z., Liu, Y., Song, S., 2020. Renewable sourced biodegradable mulches and their environment impact. Sci. Hortic., 268, 109375.10.1016/j.scienta.2020.109375 Search in Google Scholar

Zádorová, T., Žížala, D., Penížek, V., Vaněk, A., 2020. Harmonisation of a large-scale historical database with the actual Czech soil classification system. Soil Water Res., 15, 2, 101–115.10.17221/41/2019-SWR Search in Google Scholar

Zhang, R., 1997. Determination of soil sorptivity and hydraulic conductivity from the disk infiltrometer. Soil Sci. Soc. Am. J., 61, 1024–1030.10.2136/sssaj1997.03615995006100040005x Search in Google Scholar

eISSN:
1338-4333
Lingua:
Inglese
Frequenza di pubblicazione:
4 volte all'anno
Argomenti della rivista:
Engineering, Introductions and Overviews, other