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2015 | 29 | 1 |

Tytuł artykułu

Modification of sandy soil hydrophysical environment through bagasse additive under laboratory experiment

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Until now sandy soils can be considered as one roup having common hydrophysical problems. Therefore, a labo-ratory experiment was conducted to evaluate the influence of bagasse as an amendment to improve hydrophysical properties of sandy soil, through the determination of bulk density, aggregate-size distribution, total porosity, hydraulic conductivity, pore-space structure and water retention. To fulfil this objective, sandy soils were amended with bagasse at the rate of 0, 0.5, 1, 2, 3 and 4% on the dry weight basis. The study results demonstrated that the addition of bagasse to sandy soils in between 3 to 4% on the dry weight basis led to a significant decrease in bulk density, hydraulic conductivity, and rapid-drainable pores, and increase in the total porosity, water-holding pores, fine capillary pores, water retained at field capacity, wilting point, and soil available water as compared with the control treatment.

Wydawca

-

Rocznik

Tom

29

Numer

1

Opis fizyczny

p.101-106,ref.

Twórcy

  • Department of Soil and Water, Tanta University, 31527 Tanta, Egypt
autor
  • Department of Soil Science, Kasetsart University, Kasetsart, Thailand

Bibliografia

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  • Chude V.O., Malgwi W.B., Amapu I.Y., and Ano O.A., 2011. Manual on Soil Fertility Assessment. Federal Fertilizer Department (FFD) in collaboration with National Programme for Food Security, Abuja, Nigeria.
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  • Essien O.E., 2011. Effect of varying rates of organic amendments on porosity and infiltration rate of sandy loam soil. J. Agric. Environ., 12, 51-58.
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  • Gonçalves R.A.B., Gloaguen T.V., Folegatti M.V., Libardi P.L., Lucas Y., and Montes C.R., 2010. Pore size distribution in soils irrigated with sodic water and wastewater. R. Bras. Ci. Solo., 34, 701-707.
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  • Mosesl G., Oriola F.O.P., and Afolayan J.O., 2013. The impact of compactive effort on the long term hydraulic conductivity of compacted foundry sand treated with bagasse ash and permeated with municipal solid waste landfill leachate. Front. Geotech. Eng., 2(1), 7-15.
  • Shepherd M.A., Harrison R., and Webb J., 2002. Managing soil organic matter – implications for soil structure on organic farms. Soil Use Manag., 18, 284-292.
  • Tangkoonboribun R., Rauysoongnern S., Rambo P.V., and Tumsan B., 2006. Effect of organic and clay material amendment on physical properties of degraded sandy soil for sugarcane production. Sugar Technol., 8(l), 44-48.
  • Udomsri S., Huntrakool K., and Watana S., 2004. Characterization of established soil series in the central plain region of Thailand. Office of Surveying and Mapping Technology, Department of Land Development, Kasetsart University, Kamphaeng Saen Campus Nakhon Pathom, Thailand.
  • Wanas Sh.A. and Omran W.M., 2006. Advantages of applying various compost types to different layers of sandy soil: 1- Hydro-physical properties. J. Appl. Sci. Res., 2(12), 1298-130.
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Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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