Changes of chemical properties of soil in steppe and semi steppe Rangelands of Iran

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Research Paper 01/01/2014
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Changes of chemical properties of soil in steppe and semi steppe Rangelands of Iran

Fariba Shahsavand, Hossein Arzani, Ali Tavili, Mohammad Jafari, Shahram Khaliqi Sygarudi
J. Biodiv. & Environ. Sci. 4(1), 39-46, January 2014.
Copyright Statement: Copyright 2014; The Author(s).
License: CC BY-NC 4.0

Abstract

In this paper,soil chemicalchanges in the arid and semi-arid areas areinvestigated. So the characteristics such as PH, Electrical conductivity,Phosphorus,Potassium, Nitrogen, soil organic Carbon in the Steppe areas (Saveh) and Semi-steppe (Isfahan) were studied, that each district had three sites ranges. Data were collected and analyzed in a completely randomized design. Analysis of variance was used for generally comparisons and comparison of average treatment by Duncan’s multiple range test was performed. Results indicate there were significant differences in all parameters between Semi-steppe and Steppe regions of the studied areas.So that there were the maximum amount of Phosphorus, Potassium, PH and Electrical conductivity in Steppe regions and the maximum amount of organic Carbon and Nitrogen in Semi-steppe regions. Accordingly, the climate can have a significant impact on changes in soil chemical properties.

Al-Seekh A, Mohammad A, Amro Y. 2009. Effect of Grazing on Soil Properties at Southern Part of West Bank, Rangeland. Hebron University Research Journal. 35 – 53.

Bowman RA, Mueller DM, McGinnis WJ. 1985. Soil and vegetation relationship in a central plains salt grass meadow. Journal of Range management 38, 325-328.

During C, Weeda WC. 1973. Some effects of cattle dung on soil properties, pasture production, and nutrient uptake. I. Dung as a source of phosphorus. N. Z. J. Agric. Res. 16, 423-430.

El-Dewiny CY, Moursy KHS, El-Aila HI. 2006. Effect of organic matter on the release and availability of phosphorus and their effects on spainch and radish plants. Research Journal of Agriculture and Biological Sciences 2, 103-108.

Garcia M, Sampaio A, Nahas E. 2011. Impact of different grazing systems for bovine cattle on the soil microbiological and chemical characteristics. R. Bras. Zootec 40, 1568-1575.

Grongroft A, Petersen A, Miehlich G. 2003. Edaphical diversity and biodiversity in mutual dependency, Project ID,01LC0024, Biota Africa SO2.

Haynes RJ, Williams PH. 1993. Nutrient cycling and soil fertility in the grazed pasture ecosystem. Adv. Agron 49, 119-199.

Huang D, Wang K, WL. Wu. 2007. Dynamics of soil physical and chemical properties and vegetation succession characteristics during grassland desertification under sheep grazing in an agro-pastoral transition zone in Northern China. Journal of Arid Environment 70, 120-136.

HosseinzadehG,  Jalilvand  H,  Tamartash  R. 2010. Short time impact of enclosure on vegetation cover, productiveity and some physical and chemical soil properties. Journal of Applied Science 10, 2001-2009. (in Persian).

HodgkinsonHS. 1987. Relationship of saltbush species to soil chemical properties, Journal of Range management 40, 23-26.

JonesMB, Donnelly A. 2004. Carbon sequestration in temper ate grassland ecosystems and the influence of management, climate and elevated CO2.New PhytoZ 164, 423–439.

Jafari M, Zare Chahouk M, Tavili A, Azarnivand A, ZahediAmiri H. 2003 . Effective environmental factors in the distribution of vegetation types in Poshtkouh rangelands of Yazd Province, Journal of Arid Environments, 15.(in Persian).

Jafari M, ZareChahouki MA, Azarnivand H, Baghestani N, Zahedi Amiri GH. 2002. Relationships between Poshtkouh rangelands vegetation of Y azd province and soil properties using multivariate analysis methods. Iranian Journal of Natural Resources 55, 433-450. (in Persian).

Javadi SA,    Jafari M, Azarnivand H, Alavi SJ. 2005. an Investigation Of The Grazing Intensity Effects On Variations Of Soil Organic Matter And Nitrogen In Lar Rangeland Iranian Journal Of Natural Resources 58,711-718.(in Persian).

KumbasliM, Makineci2 E,CakirM. 2010. Long term effects of red deer (Cervuselaphus) grazing on soil in a breeding area. Journal of Environmental Biology 31, 185-188.

Khresat SA, Taimeh AY. 1998. Properties and characterization of Vertisols developed on limestone in a semigarid environment. Journal of Arid Environment 40, 235-244.

Kohandel A, Arzani H, Tavassol M. 2009. The Effects of Different Grazing Intensities on Nitrogen, Phosphorus, Potassium and Organic Matter in Step Rangelands.Jwmseirn 3, 59-65. (in Persian).

Kosmas C, Gerontidis ST, Marathianou M. 2000. The effect of land use change on soil and vegetation over various litho logical formation on Lesvos(Greece), Catena 40, 51-68.

Liebig MA, Gross JR, Kronberg SL, Hanson JD, Frank AB, Phillips RL. 2006. Soil response to long term grazing in the northern Great Plains of North America. Agriculture, Ecosystems & Environment 115, 270-276.

Moradi HR, Mirnia SK, Lahorpori S. 2008. Effect of Grazing Intensities on the Soil physical properties and Vegetation cover of Charandoo Summer Rangelands in Kurdistan Province, Iranian Journal of Range and Desert Research 15,(in Persian).

Pin˜eiroG, Paruelo J, Jobba´gy E, Jackson R, Oesterheld M. 2009. Grazing effects on belowground C and N stocks along a network of cattle exclosures in temperate and subtropical grasslands of South America. GLOBAL BIOGEOCHEMICAL CYCLES 23, GB2003, doi:10.1029/2007GB003168

Sarah P. 2004. Special pattern of soil moisture as affected by shrubs, in different climatic conditions. Environmmental Monitoring and Assessment 73, 237-251.

Schuman GE, Ingram LJ, Stahl PD, Derner JD, Vance GF, Morgan JA. 2009. Influence of Management on Soil Organic Carbon Dynamics in Northern Mixed-Grass Rangeland. Soil Carbon Sequestration and the Greenhouse Effect, 2nd edition. SSSA Special Publication 57.

Tahmasebi A. 2003. Stady of Vegetation Cover and Soil in Reiation to Geomorphology Units Watershed using GIS. Thesis submitted for M SC. Tarbiatmod ares University. 67. (in Persian).

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