DOI QR코드

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Study on the Standards of Proper Effective Rooting Depth for Upland Crops

  • Zhang, Yongseon (National Institute of Agricultural Science, RDA) ;
  • Han, Kyunghwa (National Institute of Agricultural Science, RDA) ;
  • Jung, Kangho (National Institute of Agricultural Science, RDA) ;
  • Cho, Heerae (National Institute of Agricultural Science, RDA) ;
  • Seo, Mijin (National Institute of Agricultural Science, RDA) ;
  • Sonn, Yeonkyu (National Institute of Agricultural Science, RDA)
  • 투고 : 2017.01.24
  • 심사 : 2017.02.20
  • 발행 : 2017.02.28

초록

The study was performed to determine effective soil depth with crop type. Lysimeters, filled with three types of soils (sandy loam, loam and clay loam), were used. Effective soil depths for 25 cm, 50 cm, 75 cm, and 100 cm were considered for each soil. Six crops were investigated for plant height and yield, and rooting depths: Chinese cabbage, maize, lettuce, potato, red pepper, and soybean. Experiment was conducted at the National Institute of Agricultural Sciences in Suwon from 2012 to 2014. Effective rooting depth including 70% of root ranged from 19 cm to 29 cm for Chinese cabbage, from 24 cm to 38 cm for maize, from 17 cm to 24 cm for lettuce, from 27 cm to 32 cm for soybean, and around 50 cm and 30 cm for potato and red pepper. The maximum depth was 60 cm for soybean, 50 cm for Chinese cabbage, lettuce, and potato, and 75 cm for maize and red pepper. Each crop showed high yield in the treatment with soil depth over maximum rooting depth under all soils.

키워드

참고문헌

  1. Allmaras, R.R., W.W. Nelson, and W.B. Voorhees. 1975. Soybean and corn rooting in southwestern Minnesota: II: root distributions and related water inflow. Soil Sci. Soc. Am. J. 39:771-777. https://doi.org/10.2136/sssaj1975.03615995003900040046x
  2. ARD. 2013. Alberta irrigation management manual. Agricultural and Rural Development, Albert, Canada.
  3. AVRDC. 1990. Vegetable production training manual. Asian Vegetable Research and Development Center. Shanhua, Taiwan.
  4. Ball-Coelho, B.R., R.C. Roy, and C.J. Swanton. 1998. Tillage alters corn root distribution in coarse-textured soil. Soil Tillage Res. 45:237-249. https://doi.org/10.1016/S0167-1987(97)00086-X
  5. Buyanovsky, G.A. and G.H. Wagner. 1986. Post-harvest residue input to cropland. Plant Soil 93:57-65. https://doi.org/10.1007/BF02377145
  6. Canadell, J., R.B. Jackson, J.R. Ehleringer, H.A. Mooney, O.E. Sala, and E.D. Schulze. 1996. Maximum rooting depth of vegetation types at the global scale. Oecologia. 108:583-595. https://doi.org/10.1007/BF00329030
  7. Dennis, J.G., L.L. Tiedzen, and M.A. Vetter. 1978. Seasonal dynamics of above-and below ground production of vascular plants at Borrow, Alaska. In:Tieszen L.L.(ed).
  8. Dillewijn, C.V. 1952. Botany of sugarcane. Waltham Mass., U.S.A., The Chronical Coy Book Dept.
  9. Dong, B., Z. Rengel, and R.D. Graham. 1995. Root morphology of wheat genotypes differing in zinc efficiency. J. Plant Nutr. 18:2761-2773. https://doi.org/10.1080/01904169509365098
  10. Dwyer, L.M., B.L. Ma, D.W. Stewart, H.N. Hayhoe, D. Balchin, J.L.B. Culley, and M. McGovern. 1996. Root mass distribution under conventional and conservation tillage. Can. J. Soil Sci. 76:23-28. https://doi.org/10.4141/cjss96-004
  11. Evans, R., R.E. Sneed, and D.K. Cassel. 1996. Irrigation scheduling to improve water and energy use efficiencies. North Carolina Cooperative Extension Service. Publication Number: AG 452-4.
  12. Greenwood, D.J., A. Gerwitz, D.A. Stone, and A. Barnes. 1982. Root development of vegetable crops. Plant Soil 68:75-96. https://doi.org/10.1007/BF02374729
  13. Jang, K.Y., H.Y. Weon, K.H. Lee, S.I. Kwon, W.S. Kong, J.S. Suh, and J.M. Sung. 2006. Comparison of biological characteristics on the organic waste-treated lysimeter soil by RFLP, PLFA, and CLSU. Korean J. Soil Sci. Fert. 41:415-418.
  14. Jennings, C.M.H. 1974. The hydrology of Botswana. Ph. D. thesis, university of Natal, Sough Africa.
  15. Laboski, C.A.M., R.H. Dowdy, R.R. Allmaras, and J.A. Lamb. 1998. Soil strength and water content influences on corn root distribution in a sandy soil. Plant Soil 203:239-247. https://doi.org/10.1023/A:1004391104778
  16. Lee, J.T., K.M. Shim, H.S. Bang, M.H. Kim, K.K. Kang, Y.E. Na, M.S. Han, and D.B. Lee. 2010. An analysis of changes in rice growth and growth period using climatic tables of 1960s (1931-1960) and 2000s (1971-2000). Korean J. Soil Sci. Fert. 43:1018-1023.
  17. Liu, L., Y. Gan, R. Bueckert, and K. Van Rees. 2011. Rooting systems of oilseed and pulse crops. II: vertical distribution patterns across the soil profile. Field Crop Res. 122:248-255. https://doi.org/10.1016/j.fcr.2011.04.003
  18. NAAS. 2010. Fertilizer application recommendations for crop plants. National Academy of Agricultural Science, RDA, Suwon, Korea.
  19. NIAST. 2000. Methods of soil chemical analysis. National Institute of Agricultural Science and Technology, RDA, Suwon, Korea.
  20. NRCS. 1983. National engineering handbook. In sprinkler irrigation. Section 15, Chapter 11. Washington, D.C. USDA. Natural Resources Conservation Service.
  21. Osaki, M., T. Shinano, M. Matsumoto, J. Ushiki, M.M. Shinano, M. Urayama, and T. Tadano. 1995. Productivity of high-yielding crops. Soil Sci. Plant Nutr. 41:635-647. https://doi.org/10.1080/00380768.1995.10417014
  22. Park, H. and M.G. Lee. 1989. Effect of Carbon dioxide of root zone on emergence and early growth of transplanted ginseng. Korean J. Soil Sci. Fert. 22:127-130.
  23. Park, J.M. and H.M. Ro. 1996. Effect of root zone temperature on the growth and the leaf mineral contents of apple (Malus domestica Borkh) trees. Korean J. Soil Sci. Fert. 29:378-384.
  24. Park, J.M. and S.D. Oh. 2001. Effect of root zone temperature in orchard on the air and the chemical properties of the soil, and the growth of 'Fuji' apple trees. Korean J. Soil Sci. Fert. 6:380-386.
  25. Paz-Vergara, J.E., A. Vasquez, Y.W. Iglesics, and J.C. Sevilla. 1980. Root development of the sugarcane cultivars H32-8560 and H57-5174, under normal conditions of cultivation and irrigation in the Chicama Valley. In Congress ISSCT (17, Manila, Phillippines.). Proceedings. p.534-540.
  26. Qin, R., P. Stamp, and W. Richner. 2006. Impact of tillage on maize rooting in a Cambisol and Luvisol in Switzerland. Soil Tillage Res. 85:50-61. https://doi.org/10.1016/j.still.2004.12.003
  27. RCA. 1993. Agricultural technology glossary. Rural Cultural Association. Tokyo, Japan (in Japanese).
  28. Reicosky, D.C., R.J. Millington, A. Klute, and D.B. Reters. 1972. Patterns of water uptake and root distribution of soyabeans(Glycine max) in presence of a water table. Agron. J. 64:292-297. https://doi.org/10.2134/agronj1972.00021962006400030011x
  29. Russel, R.S. 1977. Plan root systems: their functions and interaction with the soil. New York, Mc GrawHill.
  30. Weaver, J.E. and W.E. Bruner. 1927. Root development of vegetable crops. 1st ed. McGraw-Hill, New York, London.
  31. Wiesler, F. and W.J. Horst. 1994. Root growth and nitrate utilization of maize cultivars under field conditions. Plant Soil 163:267-277. https://doi.org/10.1007/BF00007976
  32. Yoo, S.J., K.S. Whang, S.I. Kim, and K.W. Chang. 1996. Effect of organic amendments on rhizosphere microflora of tomato plant. Korean J. Soil Sci. Fert. 29:297-302.
  33. Zeng, X. 2001. Global vegetation root distribution for land modeling. J. Hydrometeorol. 2:525-539. https://doi.org/10.1175/1525-7541(2001)002<0525:GVRDFL>2.0.CO;2