154
Views
8
CrossRef citations to date
0
Altmetric
Short Communication

Impacts of use of observed and exponential functions of root distribution in soil on water utilization and yield of wheat, simulated with a crop model

&
Pages 1533-1542 | Received 11 Nov 2013, Accepted 07 Mar 2014, Published online: 01 Apr 2014

References

  • Bingham IJ, Wu L. 2011. Simulation of wheat growth using the 3D root architecture model SPACSYS: validation and sensitivity analysis. Eur J Agron. 34:181–189. doi:10.1016/j.eja.2011.01.003
  • Dupuy L, Gregory PJ, Bengough AG. 2010. Root growth models: towards a new generation of continuous approaches. J Exp Bot. 61:2131–2143. doi:10.1093/jxb/erp389
  • Dwyer LM, Ma BL, Stewart DW, Hayhoe HN, Balchin D, Culley JLB, McGovern M. 1996. Root mass distribution under conventional and conservation tillage. Can J Soil Sci. 76:23–28. doi:10.4141/cjss96-004
  • Gerwitz A, Page ER. 1974. An empirical mathematical model to describe plant root systems. J Appl Ecol. 11:773–781. doi:10.2307/2402227
  • Haberle J. 2007. The effect of simulated distribution of soil mineral nitrogen and root traits on wheat yield and grain nitrogen concentration. In: Fourcaud T, Zhang XP, editors. Proceedings of Second International Symposium on Plant Growth Modeling, Simulation, Visualization and Applications, PMA06, 13-17/11/2006. Beijing: IEEE Computer Society; p. 149–152. ISBN 0-7695-2851-1.
  • Haberle J. 2011. Simulace vlivu predikovaného klimatu na ozimou pšenici modelem CERES-Wheat (The simulation of the effect of predicted climate on winter wheat with model CERES-Wheat). Úroda 59:7 p.
  • Haberle J, Svoboda P. 2007. The effect of water supply during grain growth on the utilization of soil mineral nitrogen by winter wheat. Sci Agric Bohem. 38:105–110.
  • Haberle J, Svoboda P, Raimanová I. 2008. The effect of post-anthesis water supply on grain nitrogen yield and concentration in winter wheat. Plant Soil Environ. 54:304–312.
  • Himmelbauer ML, Novák V. 2008. Root distribution functions of spring barley, winter rye and maize. Bodenkultur 59:165–172.
  • Himmelbauer ML, Novák V, Majerčák J. 2008. Sensitivity of soil water content profiles in the root zone to extraction functions based on different root morphological parameters. J Hydrol Hydromech. 56:34–44.
  • Himmelbauer ML, Novák V, Rodný M, Loiskandl W. 2012. Analysis of root distribution function representations and soil water transport simulation. In: Čelková A, editor. 20th International Poster Day. Transport of Water, Chemicals and Energy in the Soil-Plant-Atmosphere System; Nov 15. Bratislava: Institute of Hydrology SAS. ISBN: 978-80-89139-28-6.
  • Hoffman GJ, van Genuchten MTh. 1983. Soil properties and efficient water use: water management for salinity control. In: Taylor HM, Jordan WR, Sinclair TR, editors. Limitations to efficient water use in crop production. Madison (WI): ASA, CSSA, and SSSA; p. 73–85.
  • Jones JW, Hoogenboom G, Porter CH, Boote KJ, Batchelor WD, Hunt LA, Wilkens PW, Singh U, Gijsman AJ, Ritchi JT. 2003. The DSSAT cropping system model. Eur J Agron. 18:235–265. doi:10.1016/S1161-0301(02)00107-7
  • Kirkegaard JA, Lilley JM, Howe GN, Graham JM. 2007. Impact of subsoil water use on wheat yield. Aust J Agric Res. 58:303–315. doi:10.1071/AR06285
  • Kuhlmann H, Barraclough PB, Weir A. 1989. Utilization of mineral nitrogen in the subsoil by winter wheat. Z Pflanz Bodenkunde. 152:291–295. doi:10.1002/jpln.19891520305
  • Li KY, de Jong R, Coe MT, Ramankutty N. 2006. Root-water-uptake based upon a new water stress reduction and an asymptotic root distribution function. Earth Interact. 10:1–22. doi:10.1175/EI177.1
  • Monti A, Zatta A. 2009. Root distribution and soil moisture retrieval in perennial and annual energy crops in Northern Italy. Agric Ecosyst Environ. 132:252–259. doi:10.1016/j.agee.2009.04.007
  • Pedersen A, Zhang K, Thorup-Kristensen K, Jensen LS. 2010. Modelling diverse root density dynamics and deep nitrogen uptake – a simple approach. Plant Soil. 326:493–510. doi:10.1007/s11104-009-0028-8
  • Pretel J, Metelka L, Novický O, Daňhelka J, Rožnovský J, Janouš D. 2011. The improvement of present estimates of climate change impacts in sectors of water management, agriculture and forestry and proposal of adaptation measures [Internet]. Final report of project, Praha, 2011; [cited 2014 Mar 6]. Available from: http://www.chmi.cz/files/portal/docs/meteo/ok/klimazmena/files/vav_TECHNICKE_SHRNUTI_2011.pdf
  • Raimanová I, Haberle J. 2010. The effects of differentiated water supply after anthesis and nitrogen fertilization on δ15N of wheat grain. Rapid Commun Mass Spectrom. 24:261–266. doi:10.1002/rcm.4382
  • Robinson D. 1994. The responses of plants to non-uniform supplies of nutrients. New Phytol. 127:635–674. doi:10.1111/j.1469-8137.1994.tb02969.x
  • Rowse HR. 1974. The effect of irrigation on the length, weight and diameter of lettuce roots. Plant Soil. 40:381–391. doi:10.1007/BF00011520
  • Rowse HR, Barnes A. 1979. Weather, rooting depth and water relations of broad beans – a theoretical analysis. Agric Meteorol. 20:381–391. doi:10.1016/0002-1571(79)90013-X
  • Tennant D. 1975. A test of a modified line intersect method of estimating root length. J Ecol. 63:995–1001. doi:10.2307/2258617
  • Thorup-Kristensen K, Cortasa MS, Loges R. 2009. Winter wheat roots grow twice as deep as spring wheat roots, is this important for N uptake and N leaching losses? Plant Soil. 322:101–114. doi:10.1007/s11104-009-9898-z
  • Zaman-Allah M, Jenkinson DM, Vadez V. 2011. A conservative pattern of water use, rather than deep or profuse rooting, is critical for the terminal drought tolerance of chickpea. J Exp Bot. 62:4239–4252. doi:10.1093/jxb/err139
  • Zhang X, Shao L, Sun H, Chen S, Wang Y. 2012. Incorporation of soil bulk density in simulating root distribution of winter wheat and maize in two contrasting soils. Soil Sci Soc Am J. 76:638–647. doi:10.2136/sssaj2011.0187
  • Zuo Q, Zhang R, Shi J. 2013. Characterization of the root length density distribution of wheat using a generalized function. In: Timlin D, Ahuja LR, editors. Advances in agricultural systems modelling transdisciplinary research, synthesis, and applications. Vol. 4 Enhancing understanding and quantification of soil–root growth interactions. Madison (WI): ASA-CSSA-SSSA Series; p. 93–117. ISBN: 978-0-89118-338-9.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.