Zacytuj

Boogaard, H., van Diepen, C., Rotter, R., Cabrera, J., van Laar, H., 1998. WOFOST 7.1: User's guide for the WOFOST 7.1 crop growth simulation model and WOFOST control center 1.5. Tech. Rep. DLO Winand Staring Ctr., Wageningen, the Netherlands.Search in Google Scholar

Brunetti, G., Šimůnek, J., Piro, P., 2016. A comprehensive analysis of the variably-saturated hydraulic behavior of a green roof in Mediterranean climate. Vadose Zone Journal, 15, 9, 15 p. DOI: 10.2136/vzj2016.04.0032.10.2136/vzj2016.04.0032Open DOISearch in Google Scholar

Brunetti, G., Šimůnek, J., Turco, M., Piro, P., 2017. On the use of surrogate-based modeling for the numerical analysis of Low Impact Development techniques. Journal of Hydrology, 548, 263–277. DOI: 10.1016/j.jhydrol.2017.03.013.10.1016/j.jhydrol.2017.03.013Open DOISearch in Google Scholar

Carsel, R.F., Parrish, R.S., 1988. Developing joint probability distributions of soil water retention characteristics. Water Resources Research, 24, 755–769.10.1029/WR024i005p00755Open DOISearch in Google Scholar

Coffman, L.S., 2002. Low-impact development: An alternative stormwater management technology. In: France, R.L. (Ed.): Handbook of Water Sensitive Planning and Design. Lewis Publ., Boca Raton, FL, pp. 97–123.10.1201/9781420032420.ch1.5Search in Google Scholar

Doussan, C., Pages, L., Vercambre, G., 1998. Modelling of the hydraulic architecture of root systems: An integrated approach to water absorption - Model description. Ann. Bot., 81, 213–223.10.1006/anbo.1997.0540Search in Google Scholar

Han, M., Zhao, C., Šimůnek, J., Feng, G., 2015. Evaluating the impact of groundwater on cotton growth and root zone water balance using Hydrus-1D coupled with a crop growth model. Agricultural Water Management, 160, 64–75. DOI: 10.1016/j.agwat.2015.06.028.10.1016/j.agwat.2015.06.028Open DOISearch in Google Scholar

Hartmann, A., Šimůnek, J., Aidoo, M.K., Seidel, S.J., Lazarovitch, N., 2018. Modeling root growth as a function of different environmental stresses using HYDRUS. Vadose Zone Journal, 16 p. DOI: 10.2136/vzj2017.02.0040.10.2136/vzj2017.02.0040Open DOISearch in Google Scholar

Hinnell, A.C., Lazarovitch, N., Warrick, A.W., 2009. Explicit infiltration function for boreholes under constant head conditions. Water Resour. Res., 45, W10429. DOI: 10.1029/2008WR007685.10.1029/2008WR007685Open DOISearch in Google Scholar

Hoffman, G.J., van Genuchten, M.T., 1983. Soil properties and efficient water use: Water management for salinity control. In: Taylor, H.M., Jordan, W.R., Sinclair, T.R. (Eds.): Limitations and Efficient Water Use in Crop Production. Am. Soc. of Agron., Madison, WI, pp. 73–85.10.2134/1983.limitationstoefficientwateruse.c5Search in Google Scholar

Javaux, M., Schröder, T., Vanderborght, J., Vereecken, H., 2008. Use of a three-dimensional detailed modeling approach for predicting root water uptake. Vadose Zone Journal, 7, 1079–1088. DOI: 10.2136/vzj2007.0115.10.2136/vzj2007.0115Open DOISearch in Google Scholar

Javaux, M., Couvreur, V., Vanderborght, J., Vereecken, H., 2013. Root water uptake: From three-dimensional biophysical processes to macroscopic modeling approaches. Vadose Zone Journal, 12, 4, 16 p. DOI: 10.2136/vzj2013.02.0042.10.2136/vzj2013.02.0042Open DOISearch in Google Scholar

Jones, C., Bland, W., Ritchie, J., Williams, J.R., 1991. Simulation of root growth. Modeling Plant and Soil Systems-Agronomy Monograph, Segoe Rd., Madison, WI 53711, USA, ASA-CSSA-SSSA, 31, pp. 91–123.Search in Google Scholar

Karandish, F., Šimůnek, J., 2016. A comparison of numerical and machine-learning modeling of soil water content with limited input data. Journal of Hydrology, 543, 892–909. DOI: 10.1016/j.jhydrol.2016.11.007.10.1016/j.jhydrol.2016.11.007Open DOISearch in Google Scholar

Lazarovitch, N., Warrick, A.W., Furman, A., Zerihun, D., 2009. Subsurface water distribution from furrows described by moment analyses. J. Irrig. Drain. Eng., 135, 1, 7–12.10.1061/(ASCE)0733-9437(2009)135:1(7)Search in Google Scholar

Li, Y., Kinzelbach, W., Zhou, J., Cheng, G.D., Li, X., 2012. Modelling irrigated maize with a combination of coupledmodel simulation and uncertainty analysis, in the northwest of China. Hydrol. Earth Syst. Sci., 16, 1465–1480.10.5194/hess-16-1465-2012Open DOISearch in Google Scholar

Li, Y., Zou, Q., Zhou, J., Zhang, G., Chen, C., Wang, J., 2014. Assimilating remote sensing information into a coupled hydrology-crop growth model to estimate regional maize yield in arid regions. Ecological Modelling, 291, 15–27.10.1016/j.ecolmodel.2014.07.013Search in Google Scholar

Ramos, T.B., Šimůnek, J., Gonçalves, M.C., Martins, J.C., Prazeres, A., Pereira, L.S., 2012. Two-dimensional modeling of water and nitrogen fate from sweet sorghum irrigated with fresh and blended saline waters. Agricultural Water Management, 111, 87–104. DOI: 10.1016/j.agwat.2012.05.007.10.1016/j.agwat.2012.05.007Open DOISearch in Google Scholar

Roberts, T.L., Lazarovitch, N., Warrick, A.W, Thompson, T.L., 2009. Modeling salt accumulation with subsurface drip irrigation using HYDRUS-2D. Soil Sci. Soc. Am. J., 73, 1, 233–240. DOI: 10.2136/sssaj2008.0033.10.2136/sssaj2008.0033Open DOISearch in Google Scholar

Siyal, A.A., Bristow, K.L., Šimůnek, J., 2012. Minimizing nitrogen leaching from furrow irrigation through novel fertilizer placement and soil management strategies. Agricultural Water Management, 115, 242–251. DOI: 10.1016/j.jconhyd.2012.03.008.10.1016/j.jconhyd.2012.03.00822541896Open DOISearch in Google Scholar

Šimůnek, J., Hopmans, J.W., 2009. Modeling compensated root water and nutrient uptake. Ecological Modeling, 220, 4, 505–521. DOI: 10.1016/j.ecolmodel.2008.11.004.10.1016/j.ecolmodel.2008.11.004Open DOISearch in Google Scholar

Šimůnek, J., van Genuchten, M.T., Šejna, M., 2008. Development and applications of the HYDRUS and STANMOD software packages and related codes. Vadose Zone Journal, 7, 2, 587–600. DOI: 10.2136/VZJ2007.0077.10.2136/vzj2007.0077Open DOISearch in Google Scholar

Šimůnek, J., van Genuchten, M. T., Šejna, M., 2016a. Recent developments and applications of the HYDRUS computer software packages. Vadose Zone Journal, 15, 7, 25 p. DOI: 10.2136/vzj2016.04.0033.10.2136/vzj2016.04.0033Open DOISearch in Google Scholar

Šimůnek, J., Bristow, K.L., Helalia, S.A., Siyal, A.A., 2016b. The effect of different fertigation strategies and furrow surface treatments on plant water and nitrogen use. Irrigation Science, 34, 1, 53–69. DOI: 10.1007/s00271-015-0487-z.10.1007/s00271-015-0487-zOpen DOISearch in Google Scholar

Somma, F., Hopmans, J.W., Clausnitzer, V., 1998. Transient three-dimensional modeling of soil water and solute transport with simultaneous root growth, root water and nutrient uptake. Plant Soil, 202, 281–293.10.1023/A:1004378602378Search in Google Scholar

van Genuchten, M.T., 1980. A closed-form equation for predicting the hydraulic conductivity of unsaturated soils. Soil Sci. Soc. Am. J., 44, 987–996.10.2136/sssaj1980.03615995004400050002xSearch in Google Scholar

Vrugt, J.A., Hopmans, J.W., Šimůnek, J., 2001a. Calibration of a two-dimensional root water uptake model. Soil Sci. Soc. Amer. J., 65, 4, 1027–1037.10.2136/sssaj2001.6541027xOpen DOISearch in Google Scholar

Vrugt, J.A., van Wijk, M.T., Hopmans, J.W., Šimůnek, J., 2001b. One-, two-, and three-dimensional root water uptake functions for transient modeling. Water Resources Research, 37, 10, 2457–2470.10.1029/2000WR000027Search in Google Scholar

Wang, J., Huang, G., Zhan, H., Mohanty, B.P., Zheng, J., Huang, Q., Xu, X., 2014. Evaluation of soil water dynamics and crop yield under furrow irrigation with a twodimensional flow and crop growth coupled model. Agricultural Water Management, 141, 10–22.10.1016/j.agwat.2014.04.007Search in Google Scholar

Wang, X., Huang, G., Yang, J., Huang, Q., Liu, H., Yu, L., 2015. An assessment of irrigation and fertilization practices: Sprinkler irrigation of winter wheat in the North China Plain. Agricultural Water Management, 159, 197–208.10.1016/j.agwat.2015.06.011Search in Google Scholar

Warrick, A.W., Lazarovitch, N., Furman, A., Zerihun, D., 2007. Explicit infiltration function for furrows. J. Irrig. Drain. Eng., 133, 4, 307–313.10.1061/(ASCE)0733-9437(2007)133:4(307)Search in Google Scholar

Williams, J.R., Jones, C.A., Kiniry, J.R., Spanel, D.A., 1989. The EPIC crop growth model. Trans. ASAE, 32, 2, 497–511.10.13031/2013.31032Search in Google Scholar

Zhou, J., Cheng, G., Li, X., Hu, B.X., Wang, G., 2012. Numerical modeling of wheat irrigation using coupled HYDRUS and WOFOST models. Soil Sci. Soc. Amer. J., 76, 2, 648–662. DOI: 10.2136/sssaj2010.0467.10.2136/sssaj2010.0467Open DOISearch in Google Scholar

eISSN:
0042-790X
Język:
Angielski
Częstotliwość wydawania:
4 razy w roku
Dziedziny czasopisma:
Engineering, Introductions and Overviews, other