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Rapid and accurate measurement methods for determining soil hydraulic properties: A review Cover

Rapid and accurate measurement methods for determining soil hydraulic properties: A review

Open Access
|May 2021

References

  1. Agnese, C., Bagarello, V., Baiamonte, G., Iovino, M., 2011. Comparing physical quality of forest and pasture soils in a Sicilian watershed. Soil Sci. Soc. Am. J., 75, 1958–1970.10.2136/sssaj2011.0044
  2. Aiello, R., Bagarello, V., Barbagallo, S., Consoli, S., Di Prima, S., Giordano, G., Iovino, M., 2014. An assessment of the Beerkan method for determining the hydraulic properties of a sandy loam soil. Geoderma, 235–236, 300–307.10.1016/j.geoderma.2014.07.024
  3. Alagna, V., Bagarello, V., Di Prima, S., Giordano, G., Iovino, M., 2013. A simple field method to measure the hydrodynamic properties of soil surface crust. J. Agric. Eng., 44, 74–79.10.4081/jae.2013.255
  4. Alagna, V., Bagarello, V., Di Prima, S., Iovino, M., 2016. Determining hydraulic properties of a loam soil by alternative infiltrometer techniques. Hydrol. Process., 30, 263–275.10.1002/hyp.10607
  5. Alagna, V., Bagarello, V., Di Prima, S., Guaitoli, F., Iovino, M., Keesstra, S., Cerdà, A., 2019. Using Beerkan experiments to estimate hydraulic conductivity of a crusted loamy soil in a Mediterranean vineyard. J. Hydrol. Hydromech., 67, 2, 1–10.10.2478/johh-2018-0023
  6. Angulo-Jaramillo, R., Bagarello, V., Iovino, M., Lassabatere, L., 2016. Infiltration Measurements for Soil Hydraulic Characterization. Springer International Publishing, Switzerland (ISBN 978-3-319-31786-1, 978-3-319-31788-5 (eBook) 386 pp.). http://dx.doi.org/10.1007/978-3-319-31788-510.1007/978-3-319-31788-5
  7. Angulo-Jaramillo, R., Bagarello, V., Di Prima, S., Gosset, A., Iovino, M., Lassabatere, L., 2019. Beerkan Estimation of Soil Transfer parameters (BEST) across soils and scales. J. Hydrol., 576, 239–261. https://doi.org/10.1016/j.jhydrol.2019.06.00710.1016/j.jhydrol.2019.06.007
  8. Armenise, E., Simmons, R.W., Ahn, S., Garbout, A., Doerr, S.H., Mooney, S.J., et al., 2018. Soil seal development under simulated rainfall: Structural, physical and hydrological dynamics. J. Hydrol., 556, 211–219.10.1016/j.jhydrol.2017.10.073576106329332951
  9. Assouline, S., Mualem, Y., 2002. Infiltration during soil sealing: the effect of areal het- erogeneity of soil hydraulic properties. Water Resour. Res. 38, 1286.10.1029/2001WR001168
  10. Azam, M.G., Zoebisch, M.A., Wickramarachchi, K.S., 2008. Effects of cropping systems on selected soil structural properties and crop yields in the Lam phra phloeng Watershed-Northeast Thailand. Journal of Agronomy, 7, 56–62.10.3923/ja.2008.56.62
  11. Azam, M. G., Zoebisch, M.A., Wickramarachchi, K.S., Ranamukarachchi, S.L., 2009. Site-specific soil hydraulic quality index to describe the essential conditions for the optimum soil water regime. Can. J. Soil Sci., 89, 645–656.10.4141/CJSS08089
  12. Bagarello, V., Sgroi, A., 2007. Using the simplified falling head technique to detect temporal changes in field-saturated hydraulic conductivity at the surface of a sandy loam soil. Soil and Till. Res., 94, 283–294.10.1016/j.still.2006.08.001
  13. Bagarello, V., Iovino, M., Elrick, D.E., 2004. A simplified falling-head technique for rapid determination of field-saturated hydraulic conductivity. Soil Sci. Soc. Am. J., 68, 66–73.10.2136/sssaj2004.6600
  14. Bagarello, V., Elrick, D.E., Iovino, M., Sgroi, A., 2006. A laboratory analysis of falling head infiltration procedures for estimating the hydraulic conductivity of soils. Geoderma, 135, 322–334.10.1016/j.geoderma.2005.12.008
  15. Bagarello, V., Castellini, M., Iovino, M., Sgroi, A., 2010a. Testing the concentric-disk tension infiltrometer for field measurements of soil hydraulic conductivity. Geoderma 158, 427–435.10.1016/j.geoderma.2010.06.018
  16. Bagarello, V., Di Stefano, C., Ferro, V., Iovino, M., Sgroi, A., 2010b. Physical and hydraulic characterization of a clay soil at the plot scale. J. Hydrol., 387, 54–64.10.1016/j.jhydrol.2010.03.029
  17. Bagarello, V., Di Prima, S., Iovino, M., Provenzano, G., Sgroi, A., 2011. Testing different approaches to characterize Burundian soils by the BEST procedure. Geoderma, 162, 141–150.10.1016/j.geoderma.2011.01.014
  18. Bagarello, V., D’Asaro, F., Iovino, M., 2012. A field assessment of the Simplified Falling Head technique to measure the saturated soil hydraulic conductivity. Geoderma, 187–188, 49–58.10.1016/j.geoderma.2012.04.008
  19. Bagarello, V., Di Stefano, C., Iovino, M., Sgroi, A., 2013a. Using a transient infiltrometric technique for intensively sampling field-saturated hydraulic conductivity of a clay soil in two runoff plots. Hydrol. Process., 27, 3415–3423.10.1002/hyp.9448
  20. Bagarello, V., Castellini, M., Di Prima, S., Giordano, G., Iovino, M., 2013b. Testing a simplified approach to determine field saturated soil hydraulic conductivity. Procedia Environmental Sciences 19, 599–608.10.1016/j.proenv.2013.06.068
  21. Bagarello, V., Di Prima, S., Iovino, M., Provenzano, G., 2014a. Estimating field-saturated soil hydraulic conductivity by a simplified Beerkan infiltration experiment. Hydrol. Process., 28, 1095–1103.10.1002/hyp.9649
  22. Bagarello, V., Castellini, M., Di Prima, S., Iovino, M., 2014b. Soil hydraulic properties determined by infiltration experiments and different heights of water pouring. Geoderma, 213, 492–501.10.1016/j.geoderma.2013.08.032
  23. Bagarello, V., Baiamonte, G., Castellini, M., Di Prima, S., Iovino, M., 2014c. A comparison between the single ring pressure infiltrometer and simplified falling head techniques. Hydrol. Process., 28, 4843–4853.10.1002/hyp.9980
  24. Bagarello, V., Di Prima, S., Giordano, G., Iovino, M., 2014d. A test of the Beerkan Estimation of Soil Transfer parameters (BEST) procedure. Geoderma, 221–222, 20–27.10.1016/j.geoderma.2014.01.017
  25. Bagarello, V., Di Prima, S., Iovino, M., 2014e. Comparing alternative algorithms to analyze the Beerkan infiltration experiment. Soil Sci. Soc. Am. J., 78, 3, 724.10.2136/sssaj2013.06.0231
  26. Bagarello, V., Di Prima, S., Iovino, M., 2017a. Estimating saturated soil hydraulic conductivity by the near steady-state phase of a Beerkan infiltration test. Geoderma, 303, 70–77.10.1016/j.geoderma.2017.04.030
  27. Bagarello, V., Santis, A.D., Giordano, G., Iovino, M., 2017b. Source shape and data analysis procedure effects on hydraulic conductivity of a sandy-loam soil determined by ponding infiltration runs. J. Agric. Eng., 48, 71–80.10.4081/jae.2017.597
  28. Bagarello, V., Cecere, N., Di Prima, S., Giordano, G., Iovino, M., 2017c. Height of water pouring effects on infiltration runs carried out in an initially wet sandy-loam soil. In: Chemical Engineering Transactions, Chemical Engineering Transactions. Italian Association of Chemical Engineering -AIDIC, pp. 721–726. http://dx.doi.org/10.3303/cet1758121
  29. Bagarello, V., Barca, E., Castellini, M., Iovino, M., Morbidelli, R., Saltalippi, C., Flammini, A., 2020. A plot-scale uncertainty analysis of saturated hydraulic conductivity of a clay soil. Journal of Hydrology, Article Number: 125694. https://doi.org/10.1016/j.jhydrol.2020.12569410.1016/j.jhydrol.2020.125694
  30. Baiamonte, G., Bagarello, V., D’Asaro, F., Palmeri, V., 2017. Factors influencing point measurement of near-surface saturated soil hydraulic conductivity in a small Sicilian basin. Land Degrad. Develop., 28, 970–982.10.1002/ldr.2674
  31. Ben Slimene, E., Lassabatere, L., Šimůnek, J., Winiarski, T., Gourdon, R., 2017. The role of heterogeneous lithology in a glaciofluvial deposit on unsaturated preferential flow-a numerical study, Journal of Hydrology and Hydromechanics, 65, 3, 209–221. DOI: 10.1515/johh-2017-0004, 201710.1515/johh-2017-0004
  32. Biddoccu, M., Ferraris, S., Opsi, F., Cavallo, E., 2016. Long-term monitoring of soil management effects on runoff and soil erosion in sloping vineyards in Alto Monferrato (North-West Italy). Soil Till. Res., 155, 176–189.10.1016/j.still.2015.07.005
  33. Biddoccu, M., Ferraris, S., Pitacco, A., Cavallo, E., 2017. Temporal variability of soil management effects on soil hydrological properties, runoff and erosion at the field scale in a hillslope vineyard, North-West Italy. Soil Till. Res., 165, 46–58.10.1016/j.still.2016.07.017
  34. Bien, L.B., Predelus, D., Lassabatere, L., Winiarski, T., Angulo-Jaramillo, R., 2013. Combined effect of infiltration, capillary barrier and sloping layered soil on flow and solute transfer in a heterogeneous lysimeter. J. Mod. Hydrol., 138–153.10.4236/ojmh.2013.33018
  35. Bouarafa, S., Lassabatere, L., Lipeme-Kouyi, G., Angulo-Jaramillo, R., 2019. Hydrodynamic characterization of sustainable urban drainage systems (SuDS) by using Beerkan infiltration experiments. Water, 11, 4, Article Number: 660. DOI: 10.3390/w1104066010.3390/w11040660
  36. Braud, I., De Condappa, D., Soria, J.M., Haverkamp, R., Angulo-Jaramillo, R., Galle, S., et al., 2005. Use of scaled forms of the infiltration equation for the estimation of un-saturated soil hydraulics properties (the Beerkan method). Eur. J. Soil Sci., 56, 361–374.10.1111/j.1365-2389.2004.00660.x
  37. Braud, I., Desprats, J.F., Ayral, P.A., Bouvier, C., Vandervaere, J.P., 2017. Mapping topsoil field-saturated hydraulic conductivity from point measurements using different methods. J. Hydrol. Hydromech., 65, 264–275.10.1515/johh-2017-0017
  38. Brooks, R.H., Corey, T., 1964. hydraulic properties of porous media. Hydrol. Paper 3, Colorado State University, Fort Collins.
  39. Burdine, N.T., 1953. Relative permeability calculation from pore size distribution data. Petr. Trans. Am. Inst. Min. Metall. Eng., 198, 71–77.10.2118/225-G
  40. Cannavo, P., Vidal-Beaudet, L., Béchet, B., Lassabatere, L., Charpentier, S., 2010. Spatial distribution of sediments and transfer properties in soils in a stormwater infiltration basin. J. Soils Sediments, 10, 8, 1499–1509.10.1007/s11368-010-0258-7
  41. Castellini, M., Pirastru, M., Niedda, M., Ventrella, D., 2013. Comparing physical quality of tilled and no-tilled soils in an almond orchard in southern Italy. Ital. J. Agron., 8, 149–157. DOI: 10.4081/ija.2013.e2010.4081/ija.2013.e20
  42. Castellini, M., Giglio, L., Niedda, M., Palumbo, A.D., Ventrella, D., 2015. Impact of biochar addition on the physical and hydraulic properties of a clay soil. Soil Till. Res., 154, 1–13.10.1016/j.still.2015.06.016
  43. Castellini, M., Iovino, M., Pirastru, M., Niedda, M., Bagarello, V., 2016. Use of BEST procedure to assess soil physical quality in the Baratz Lake catchment (Sardinia, Italy). Soil Sci. Soc. Am. J., 80, 742–755.10.2136/sssaj2015.11.0389
  44. Castellini, M., Di Prima, S., Iovino, M., 2018. An assessment of the BEST procedure to estimate the soil water retention curve: a comparison with the evaporation method. Geoderma, 320, 82–94.10.1016/j.geoderma.2018.01.014
  45. Castellini, M., Iovino, M., 2019. Pedotransfer functions for estimating soil water retention curve of Sicilian soils. Archives of Agronomy and Soil Science, 65, 10, 1401–1416. DOI: 10.1080/03650340.2019.156671010.1080/03650340.2019.1566710
  46. Castellini, M., Fornaro, F., Garofalo, P., Giglio, L., Rinaldi, M., Ventrella, D., Vitti, C., Vonella, A.V. 2019a. Effects of notillage and conventional tillage on physical and hydraulic properties of fine textured soils under winter wheat. Water, 11, Article Number: 484. DOI: 10.3390/w1103048410.3390/w11030484
  47. Castellini, M., Stellacci, A.M., Tomaiuolo, M., Barca, E. 2019b. Spatial variability of soil physical and hydraulic properties in a durum wheat field: an assessment by the BEST-procedure. Water, 11, Article Number: 1434. DOI: 10.3390/w1107143410.3390/w11071434
  48. Castellini, M., Stellacci, A.M., Mastrangelo, M., Caputo, F., Manici, L.M., 2020a. Estimating the soil hydraulic functions of some olive orchards: Soil management implications for water saving in soils of Salento peninsula (southern Italy). Agronomy, 10, Article Number: 177. DOI: 10.3390/agronomy1002017710.3390/agronomy10020177
  49. Castellini, M., Vonella, A.V., Ventrella, D., Rinaldi, M., Baiamonte, G. 2020b. Determining soil hydraulic properties using infiltrometer techniques: an assessment of temporal variability in a long-term experiment under minimum- and no-tillage soil management. Sustainability, 12, Article Number: 5019. DOI: 10.3390/su1212501910.3390/su12125019
  50. Celentano, D., Rousseau, G.X., Engel, V.L., Zelarayan, M., Oliveira, E.C., Araujo, A.C.M., et al., 2017. Degradation of riparian forest affects soil properties and ecosystem services provision in eastern Amazon of Brazil. Land Degrad. Develop., 28, 482–493.10.1002/ldr.2547
  51. Cherubin, M.R., Karlen, D.L., Franco, A.L.C., Tormena, C.A., Cerri, C.E.P., Davies, C.A., et al., 2016. Soil physical quality response to sugarcane expansion in Brazil. Geoderma, 267, 156–168.10.1016/j.geoderma.2016.01.004
  52. Chyba, J., Kroulík, M., Kristof, K., Misiewicz, P.A., Chaney, K., 2014. Influence of soilcompaction by farm machinery and livestock on water infiltration rate on grass-land. Agron. Res., 12, 59–64.
  53. Chyba, J., Kroulik, M., Kristof, K., Misiewicz, P.A., 2017. The influence of agricultural traffic on soil infiltration rates. Agronomy Research, 15, 3, 664–673.
  54. Ciollaro, G., Lamaddalena, N., 1998. Effect of tillage on the hydraulic properties of a vertic soil. J. Agric. Eng. Res., 71, 147–155.10.1006/jaer.1998.0312
  55. Concialdi, P., Di Prima, S., Bhanderi, H.M., Stewart, R.D., Abou Najm, M.R., Lal Gaur, M., Angulo-Jaramillo, R., Lassabatere, L., 2020. An open-source instrumentation package for intensive soil hydraulic characterization. J. Hydrol., 582, Article Number 124492. https://doi.org/10.1016/j.jhydrol.2019.12449210.1016/j.jhydrol.2019.124492
  56. Coutinho, A.P., Lassabatere, L., Montenegro, S., Antonino, A.C.D., Angulo-Jaramillo, R., Cabral, J.J.S.P., 2016. Hydraulic characterization and hydrological behaviour of a pilot permeable pavement in an urban centre, Brazil. Hydrol. Process., 30, 4242–4254. DOI: 10.1002/hyp.1098510.1002/hyp.10985
  57. Cullotta, S., Bagarello, V., Baiamonte, G., Gugliuzza, G., Iovino, M., La Mela Veca, D.S., et al., 2016. Comparing different methods to determine soil physical quality in a Mediterranean forest and pasture land. Soil Sci. Soc. Am. J., 80, 1038–1056.10.2136/sssaj2015.12.0447
  58. Dexter, A.R., 2004. Soil physical quality: Part I. Theory, effects of soil texture, density, and organic matter, and effects on root growth. Geoderma, 120, 201–214. https://doi.org/10.1016/J.GEODERMA.2003.09.00410.1016/j.geoderma.2003.09.004
  59. Di Prima, S., 2013. Automatic analysis of multiple Beerkan infiltration experiments for soil Hydraulic Characterization In: Proc. 1st CIGR Inter-Regional Conference on Land and Water Challenges. p.127.
  60. Di Prima, S., 2015. Automated single ring infiltrometer with a low-cost microcontroller circuit. Comput. Electron. Agric., 118, 390–395.10.1016/j.compag.2015.09.022
  61. Di Prima, S., Lassabatere, L., Bagarello, V., Iovino, M., Angulo-Jaramillo, R., 2016. Testing a new automated single ring infiltrometer for Beerkan infiltration experiments. Geoderma, 262, 20–34.10.1016/j.geoderma.2015.08.006
  62. Di Prima, S., Bagarello, V., Lassabatere, L., Angulo-Jaramillo, R., Bautista, I., Burguet, M., et al., 2017. Comparing Beer-kan infiltration tests with rainfall simulation experiments for hydraulic characterization of a sandy-loam soil. Hydrol. Process., 31, 3520–3532.10.1002/hyp.11273
  63. Di Prima, S., Concialdi, P., Lassabatere, L., Angulo-Jaramillo, R., Pirastru, M., Cerda, A.; et al., 2018a. Laboratory testing of Beerkan infiltration experiments for assessing the role of soil sealing on water infiltration. Catena, 167, 373–384.10.1016/j.catena.2018.05.013
  64. Di Prima, S., Rodrigo-Comino, J., Novara, A., Iovino, M., Pirastru, M., Keesstra, S., et al., 2018b. Soil physical quality of citrus orchards under tillage, herbicide, and organic managements. Pedosphere, 28, 463–477.10.1016/S1002-0160(18)60025-6
  65. Di Prima, S., Castellini, M., Abou Najm, M.R., Stewart, R.D., Angulo-Jaramillo, R., Winiarski, T., Lassabatere, L., 2019. Experimental assessment of a new comprehensive model for single ring infiltration data. J. Hydrol., 573, 937–951. https://doi.org/10.1016/J.JHYDROL.2019.03.07710.1016/j.jhydrol.2019.03.077
  66. Di Prima, S., Stewart, R.D., Castellini, M., Bagarello, V., Abou Najm, M.R., Pirastru, M., Giadrossich, F., Iovino, M., Angulo-Jaramillo, R., Lassabatere, L., 2020a. Estimating the macroscopic capillary length from Beerkan infiltration experiments and its impact on saturated soil hydraulic conductivity predictions. Journal of Hydrology, 589, 125159. https://doi.org/10.1016/j.jhydrol.2020.12515910.1016/j.jhydrol.2020.125159
  67. Di Prima, S., Winiarski, T., Angulo-Jaramillo, R., Stewart, R.D., Castellini, M., Abou Najm, M.R., Ventrella, D., Pirastru, M., Giadrossich, F., Capello, G., Biddoccu, M., Lassabatere, L., 2020b. Detecting infiltrated water and preferential flow pathways through time-lapse ground-penetrating radar surveys. Science of the Total Environment, Article Number: 138511. https://doi.org/10.1016/j.scitotenv.2020.13851110.1016/j.scitotenv.2020.13851132320879
  68. Donatelli, M., 2014. BioMA-biophysical model application framework. https://en.wikipedia.org/wiki/BioMA
  69. Erban, T., Stehlik, M., Sopko B., Markovic M., Seifrtova M., Halesova T., et al., 2018. The different behaviors of glyphosate and AMPA in compost-amended soil. Chemosphere, 207, 78–83.10.1016/j.chemosphere.2018.05.00429772427
  70. Elrick, D.E., Reynolds, W.D., 1992. Methods for analyzing constant-head well permeameter data. Soil Sci. Soc. Am. J., 56, 320–323.10.2136/sssaj1992.03615995005600010052x
  71. Fernández-Gálvez, J., Pollacco, J., Lassabatere, L., Angulo-Jaramillo, R., Carrick, S., 2019. A general Beerkan Estimation of Soil Transfer parameters method predicting hydraulic parameters of any unimodal water retention and hydraulic conductivity curves: Application to the Kosugi soil hydraulic model without using particle size distribution data. Advances in Water Resources, 129, 118–130.10.1016/j.advwatres.2019.05.005
  72. Ferrara, R.M., Mazza, G., Muschitiello, C., Castellini, M., Stellacci, A.M., Navarro, A., et al., 2017. Short-term effects of conversion to no-tillage on respiration and chemical -physical properties of the soil: a case study in a wheat cropping system in semi-dry environment. Ital. J. Agrometeorol., 47–58. http://dx.doi.org/10.19199/2017.1.2038-5625.047
  73. Fletcher, T.D., Shuster, W., Hunt, W.F., Ashley, R., Butler, D., Arthur, S., Trowsdale, S., Barraud, S., Semadeni-Davies, A., Bertrand-Krajewski, J.-L., et al., 2015. SUDS, LID, BMPs, WSUD and more–The evolution and application of terminology surrounding urban drainage. Urban Water Journal, 12, 525–542.10.1080/1573062X.2014.916314
  74. Gette-Bouvarot, M., Mermillod-Blondin, F., Angulo-Jaramillo, R., Delolme, C., Lemoine, D., Lassabatere, et al., 2014. Coupling hydraulic and biological measurements highlights the key influence of algal biofilm on infiltration basin performance. Ecohydrology, 7, 950–964.10.1002/eco.1421
  75. Gonzalez-Merchan, C., Barraud, S., Bedell, J.P., 2014. Influence of spontaneous vegetation in stormwater infiltration system clogging. Environ. Sci. Pollut. Res., 21, 5419–5426.10.1007/s11356-013-2398-y24352543
  76. Gonzalez-Sosa, E., Braud, I., Dehotin, J., Lassabatere, L., Angulo-Jaramillo, R., Lagouy, M., et al., 2010. Impact of land use on the hydraulic properties of the topsoil in a small French catchment. Hydrol. Process., 24, 2382–2399.10.1002/hyp.7640
  77. Goutaland, D., Winiarski, T., Lassabatere, L., Dubé, J.S., Angulo-Jaramillo, R., 2013. Sedimentary and hydraulic characterization of a heterogeneous glaciofluvial deposit: application to the modeling of unsaturated flow. Eng. Geol., 168, 127–139.10.1016/j.enggeo.2013.09.006
  78. Grimaldi, M., Oszwald, J., Dolédec, S., Hurtado, del, M.P., de Souza Miranda, I., Arnauld de Sartre, X., et al. 2014. Ecosystem services of regulation and support in Amazonian pioneer fronts: searching for landscape drivers. Landscape Ecol., 29, 311–328.
  79. Haverkamp, R., Ross, P.J., Smettem, K.R.J., Parlange, J.Y., 1994. Three-dimensional analysis of infiltration from the disc infiltrometer: 2. Physically based infiltration equation. Water Resour. Res., 30, 2931–2935. https://doi.org/10.1029/94WR0178810.1029/94WR01788
  80. Iserloh, T., Ries, J.B., Arnáez, J., Boix-Fayos, C., Butzen, V., Cerdà, A., et al., 2013. European small portable rainfall simulators: A comparison of rainfall characteristics. Catena, 110, 100–112. https://doi.org/10.1016/j.catena.2013.05.01310.1016/j.catena.2013.05.013
  81. Jirků, V., Kodešová, R., Nikodem, A., Mühlhanselová, M., Žigová, A., 2013. Temporal variability of structure and hydraulic properties of top soilof three soil types. Geoderma, 204–205, 43–58. https://doi.org/10.1016/j.geoderma.2013.03.02410.1016/j.geoderma.2013.03.024
  82. Kanso, T., Tedoldi, D., Gromaire, M., Ramier, D., Saad, M., Chebbo, G., 2018. Horizontal and vertical variability of soil hydraulic properties in roadside sustainable drainage systems (SuDS)-nature and implications for hydrological performance evaluation. Water, 10, Article Number: 987.10.3390/w10080987
  83. Keller, T., Sutter, J.A., Nisse, K., Rydberg, T., 2012. Using field measurement of saturated soil hydraulic conductivity to detect low-yielding zones in three Swedish fields. Soil Till. Res., 124, 68–77.10.1016/j.still.2012.05.002
  84. Khaledian, M.R., Mailhol, J.C., Ruelle, P., 2012. No-tillage impacts on soil hydraulic properties as compared with conventional tillage. Journal of Biological and Environmental Sciences, 6, 213–218.
  85. Khaledian, M.R., Shabanpour, M., Alinia, H., 2016. Saturated hydraulic conductivity variation in a small garden under drip irrigation. Geosystem Engineering, 19, 266–274.10.1080/12269328.2016.1188030
  86. Khodaverdiloo, H., Cheraghabdal, H.K., Bagarello, V., Iovino, M., Asgarzadeh, H., Dashtaki, S.G., 2017. Ring diameter effects on determination of field-saturated hydraulic conductivity of different loam soils. Geoderma, 303, 60–69.10.1016/j.geoderma.2017.04.031
  87. Klute, A., Dirksen, C., 1986. Hydraulic conductivity and diffusivity: laboratory methods. In: Klute, A. (Ed.): Methods of Soil Analysis. Part 1. Physical and Mineralogical Methods, 2nd ed. Agronomy, vol. 9. American Society of Agronomy, Madison, WI, pp. 687–734.10.2136/sssabookser5.1.2ed.c28
  88. Kovář, S., Mašek, J., Novák, P., 2017. Comparison of tillage systems in terms of water infiltration into the soil during the autumn season. Agronomy Research, 15, 4, 1629–1635.
  89. Lassabatere, L., Winiarski, T., Galvez-Cloutier, R., 2004. Retention of three heavy metals (Zn, Pb, and Cd) in a calcareous soil controlled by the modification of flow with geotextiles. Environmental Science and Technology, 38, 4215–4221. https://doi.org/10.1021/es035029s10.1021/es035029s15352463
  90. Lassabatere, L., Angulo-Jaramillo, R., Soria Ugalde, J.M., Cuenca, R., Braud, I., Haverkamp, R., 2006. Beerkan estimation of soil transfer parameters through infiltration experiments-BEST. Soil Sci. Soc. Am. J., 70, 521–532.10.2136/sssaj2005.0026
  91. Lassabatere, L., Spadini, L., Delolme, C., Février, L., Galvez Cloutier, R., Winiarski, T., 2007. Concomitant Zn-Cd and Pb retention in a carbonated fluvio-glacial deposit under both static and dynamic conditions. Chemosphere, 69, 1499–1508. https://doi.org/10.1016/j.chemosphere.2007.04.05310.1016/j.chemosphere.2007.04.05317583773
  92. Lassabatere, L., Peyrar, X., Angulo-Jaramillo, R., Simunek, J., 2009. Effects of the hydraulic conductivity of the matrix/macropore interface on cumulative infiltrations into dual-permeability media. AGU Fall Meeting Abstracts: A764.
  93. Lassabatere, L., Angulo-Jaramillo, R., Goutaland, D., Letellier, L., Gaudet, J.P., Winiarski, T., Delolme, C., 2010. Effect of settlement of sediments on water infiltration in two urban infiltration basins. Geoderma, 156, 316–325.10.1016/j.geoderma.2010.02.031
  94. Lassabatere, L., Angulo-Jaramillo, R., Yilmaz, D., Winiarski, T., 2013. BEST method: Characterization of soil unsaturated hydraulic properties. In: Caicedo et al. (Eds): Advances in Unsaturated Soils. CRC Press, London, pp. 527–532.
  95. Lassabatére, L., Di Prima, S., Bouarafa, S., Iovino, M., Bagarello, V., Angulo-Jaramillo, R., 2019a. BEST-2D for characterizing dual-permeability unsaturated soils with ponded and tension infiltrometers. Vadose Zone Journal, 18, 1, 1–20. DOI: 10.2136/vzj2018.06.012410.2136/vzj2018.06.0124
  96. Lassabatere, L., Di Prima, S., Angulo-Jaramillo, R., Keesstra, S., Salesa, D., 2019b. Beerkan multi-runs for characterizing water infiltration and spatial variability of soil hydraulic properties across scales. Hydrological Sciences Journal, 64, 2, 165–178. DOI: 10.1080/02626667.2018.156044810.1080/02626667.2018.1560448
  97. Latorre, B., Moret-Fernández, D., Lassabatere, L., Rahmati M., López, M.V., Angulo-Jaramillo, R., et al., 2018. Influence of the β parameter of the Haverkamp model on the transient soil water infiltration curve. J. Hydrol., 567, 22–229.10.1016/j.jhydrol.2018.07.006
  98. Leblanc, M., Tweed, S., Lyon, B.J., Bailey, J., Franklin, C.E., Harrington, G., Suckow, A., 2015. On the hydrology of the bauxite oases, Cape York Peninsula, Australia. J. Hydrol., 528, 668–682.10.1016/j.jhydrol.2015.06.001
  99. Lozano-Baez, S., Cooper, M., Ferraz, S., Ribeiro Rodrigues, R., Pirastru, M., Di Prima, S., 2018. Previous land use affects the recovery of soil hydraulic properties after forest restoration. Water, 10, 1–16.10.3390/w10040453
  100. Lozano-Baez, S.E., Cooper, M., Ferraz, S., Ribeiro Rodrigues, R., Castellini, M., Di Prima, S., 2019. Recovery of soil hydraulic properties for assisted passive and active restoration: Assessing historical land use and forest structure. Water, 11, 1, Article Number: 86. DOI: 10.3390/w1101008610.3390/w11010086
  101. Mubarak, I., Mailhol, J.C., Angulo-Jaramillo, R., Ruelle, P., Boivin, P., Khaledian, M., 2009a. Temporal variability in soil hydraulic properties under drip irrigation. Geoderma, 150, 158–165.10.1016/j.geoderma.2009.01.022
  102. Mubarak, I., Mailhol, J.C., Angulo-Jaramillo, R., Bouarfa, S., Ruelle, P., 2009b. Effect of temporal variability in soil hydraulic properties on simulated water transfer under high-frequency drip irrigation. Agric. Water Manage., 96, 1547–1559.10.1016/j.agwat.2009.06.011
  103. Mubarak, I., Angulo-Jaramillo, R., Mailhol, J.C., Ruelle, P., Khaledian, M., Vauclin, M., 2010. Spatial analysis of soil surface hydraulic properties: is infiltration method dependent? Agric. Water Manage., 97, 1517–1526.10.1016/j.agwat.2010.05.005
  104. Nimmo, J.R., Schmidt, K.M., Perkins, K.S., Stock, J.D., 2009. Rapid measurement of field-saturated hydraulic conductivity for areal characterization. Vadose Zone Journal, 8, 142–149.10.2136/vzj2007.0159
  105. Philip, J.R., 1992. Falling head ponded infiltration. Water Resour. Res., 28, 2147–2148.10.1029/92WR00704
  106. Pirastru, M., Niedda M., Castellini, M., 2014. Effects of maquis clearing on the properties of the soil and on the near-surface hydrological processes in a semi-arid Mediterranean environment. J. Agric. Eng., 45, 176–187.10.4081/jae.2014.428
  107. Preti, F., Guastini, E., Penna, D., Dani, A., Cassiani, G., Boaga, J., et al., 2018. Conceptualization of water flow pathways in agricultural terraced landscapes. Land Degrad. Dev., 29, 651–662.10.1002/ldr.2764
  108. Rahmati, M., Weihermüller, L., Vanderborght, J., Pachepsky, Y.A., Mao, L., Sadeghi, S.H., et al., 2018. Development and analysis of Soil Water Infiltration Global Database. Earth System Science Data Discussions, 10, 1237–1263. https://doi.org/10.5194/essd-2018-1110.5194/essd-2018-11
  109. Rallo, G., Provenzano, G., Castellini, M., Sirera, À.P., 2018. Application of EMI and FDR sensors to assess the fraction of transpirable soil water over an olive grove. Water, 10, Article Number: 168.10.3390/w10020168
  110. Rex, J., Dubé, S., Foord, V., 2013. Mountain pine beetles, salvage logging, and hydrologic change: Predicting wet ground areas. Water, 5, 443–461.10.3390/w5020443
  111. Reyes-Gómez, V.M., Olivas, O.V., Moreno, J.T.A., Sannwald, E.H., Rodríguez, A.R., 2015. Functional ecohydrological differences among native and exotic grassland covers in suburban landscapes of Chihuahua city, Mexico. Landscape and Urban Planning, 139, 54–62.10.1016/j.landurbplan.2015.03.005
  112. Reynolds, W.D., Elrick, D.E., 1985. In situ measurement of field-saturated hydraulic conductivity, sorptivity and the alpha-parameter using the Guelph permeameter. Soil Science, 140, 292–302.10.1097/00010694-198510000-00008
  113. Reynolds, W.D., Elrick, D.E., 1990. Ponded infiltration from a single ring: I. Analysis of steady flow. Soil Sci. Soc. Am. J., 54, 1233–1241.10.2136/sssaj1990.03615995005400050006x
  114. Reynolds, W.D., Elrick, D.E., 2002. Pressure infiltrometer. In: Dane, J.H., Topp, G.C. (Eds.): Methods of Soil Analysis. Physical Methods. Part 4. 3rd ed. Soil Sci. Soc. Am., Madison, WI; pp. 826–836.
  115. Reynolds, W.D., Lewis, J.K., 2012. A drive point application of the Guelph permeameter method for coarse-textured soils. Geoderma, 187–188, 59–66.10.1016/j.geoderma.2012.04.004
  116. Šařec, P., Novak, P., 2017. Influence of manure and activators of organic matter biological transformation on selected soil physical properties of Modal Luvisol. Agronomy Research, 15, 2, 565–575.
  117. Scarabeli, I.G.R., Tormena, C.A., Favilla, H.S., Figueiredo, G.C., 2018. Field-saturated hydraulic conductivity measured by two techniques and at different sampling positions relative to maize-crop rows and interrows. Semina: Ciências Agrárias, Londrina, 9, 1, 403–410.10.5433/1679-0359.2018v39n1p403
  118. Schwen, A., Bodner, G., Scholl, P., Buchan, G.D., Loiskandl, W., 2011. Temporal dnamics of soil hydraulic properties and the water-conducting porosity under different tillage. Soil and Tillage Research, 113, 2, 89–98.10.1016/j.still.2011.02.005
  119. Shelia, V., Šimunek, J., Boote, K., Hoogenbooom, G., 2018. Coupling DSSAT and HYDRUS-1D for simulations of soil water dynamics in the soil-plant-atmosphere system. J. Hydrol. Hydromech., 66, 232–245. https://doi.org/10.1515/johh-2017-005510.1515/johh-2017-0055
  120. Servadio, P., Bergonzoli, S., Beni, C., 2016. Soil tillage systems and wheat yield under climate change scenarios. Agronomy, 6, 43.10.3390/agronomy6030043
  121. Sidoli, P., Lassabatere, L., Angulo-Jaramillo, R., Baran, N., 2016. Experimental and modeling of the unsaturated transports of S-metolachlor and its metabolites in glaciofluvial vadose zone solids. J. Contam. Hydrol., 190, 1–14.10.1016/j.jconhyd.2016.04.00127131475
  122. Siltecho, S., Hammecker, C., Sriboonlue, V., Clermont-Dauphin, C., Trelo-ges, V., Antonino, A.C.D., Angulo-Jaramillo, R., 2015. Use of field and laboratory methods for estimating unsaturated hydraulic properties under different land uses. Hydrol. Earth Syst. Sci., 19, 1193–1207.10.5194/hess-19-1193-2015
  123. Šimŭnek, J., van Genuchten, M.T., Šejna, M., 2016. Recent developments and applications of the HYDRUS computer software packages. Vadose Zone Journal, 15, 7, 1–25. https://doi.org/10.2136/vzj2016.04.003310.2136/vzj2016.04.0033
  124. Smettem, K.R.J., Parlange, J.Y., Ross, P.J., Haverkamp, R., 1994. 3-Dimensional analysis of infiltration from the disc infiltrometer 1. A capillary-based theory. Water Resour. Res., 30, 2925–2929.10.1029/94WR01787
  125. Souza, E.S., Antonino, A.C.D., Heck, R.J., Montenegro, S.M.G.L., Lima, J.R.S., Sampaio, E.V.S.B., et al., 2014. Effect of crusting on the physical and hydraulic properties of a soil cropped with castor beans (Ricinus communis L.) in the north eastern region of Brazil. Soil Till. Res., 141, 55–61.10.1016/j.still.2014.04.004
  126. Souza, R., Souza, E., Netto, A.M., De Almeida, A.Q., J´unior, G.B., Silva, J.R.I., De Sousa Lima, J.R., Antonino, A.C.D., 2017. Assessment of the physical quality of a Fluvisol in the Brazilian semiarid region. Geoderma Reg., 10, 175–182.10.1016/j.geodrs.2017.07.008
  127. Touma, J., Raclot, D., Al-Ali, Y., Zante, P., Hamrouni, H., Dridi, B., 2011. In situ determination of the soil surface crust hydraulic resistance. J. Hydrol., 403, 3–4, 253–260.10.1016/j.jhydrol.2011.04.004
  128. van Genuchten, M.T., 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
  129. Verbist, K.M.J., Cornelis, W.M., Torfs, S., Gabriels, D., 2013. Comparing methods to determine hydraulic conductivities on stony soils. Soil Sci. Soc. Am. J., 77, 1, 25–42.10.2136/sssaj2012.0025
  130. White, I., Sully, M.J., 1987. Macroscopic and microscopic capillary length and time scales from field infiltration. Water Resour. Res., 23, 1514–1522. https://doi.org/10.1029/WR023i008p0151410.1029/WR023i008p01514
  131. Wu, L., Pan, L., Mitchell, J., Sanden, B., 1999. Measuring saturated hydraulic conductivity using a generalized solution for single-ring infiltrometers. Soil Sci. Soc. Am. J., 63, 788–792.10.2136/sssaj1999.634788x
  132. Xu, X., Lewis, C., Liu, W., Albertson, J.D., Kiely, G., 2012. Analysis of single ring infiltrometer data for soil hydraulic properties estimation: comparison of BEST and Wu methods. Agric. Water Manage., 107, 34–41.10.1016/j.agwat.2012.01.004
  133. Yang, J., Xu, X., Liu, M., Xu, C., Luo, W., Song, T., Du, H., Kiely, G., 2016. Effects of Napier grass management on soil hydrologic functions in a karst landscape, southwestern China. Soil Till. Res., 157, 83–92.10.1016/j.still.2015.11.012
  134. Yang, J., Xu, X., Liu, M., Xu, C., Zhang, Y., Luo, W., Zhang, R., Li, Z., Kiely, G., 2017. Effects of Grain for Green program on soil hydrologic functions in karst landscapes, southwestern China. Agric. Ecosyst. Environ., 247, 120–129.10.1016/j.agee.2017.06.025
  135. Yilmaz, D., Lassabatere, L., Angulo-Jaramillo, R., Deneele, D., Legret, M., 2010. Hydrodynamic characterization of basic oxygen furnace slag through an adapted BEST method. Va-dose Zone J., 9, 1, 107.10.2136/vzj2009.0039
  136. Yilmaz, D., Lassabatere, L., Deneele, D., Angulo-Jaramillo, R., Legret, M., 2013. Influence of carbonation on the microstructure and hydraulic properties of a basic oxygen furnace slag. Vadose Zone J., 12, 2. https://doi.org/10.2136/vzj2012.012110.2136/vzj2012.0121
DOI: https://doi.org/10.2478/johh-2021-0002 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 121 - 139
Submitted on: Oct 31, 2020
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Accepted on: Dec 23, 2020
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Published on: May 21, 2021
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2021 Mirko Castellini, Simone Di Prima, David Moret-Fernández, Laurent Lassabatere, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.