Land degradation at the southern slopes of Al-Jabal al Akhdar, Libya

Authors

  • Murad M. Aburas Soil and Water Dep., Faculty of Agriculture, Omar Al-Mukhtar University, Albeida, Libya
  • Mohammed S. Yousef Soil and Water Dep., Faculty of Agriculture, Omar Al-Mukhtar University, Albeida, Libya
  • Asama S. Alferjani Soil and Water Dep., Faculty of Agriculture, Omar Al-Mukhtar University, Albeida, Libya

DOI:

https://doi.org/10.54172/mjsc.v30i1.131

Keywords:

Soil properties, Soil erosion, Soil degradation, Plant vegetation

Abstract

Land and Soil degradation at the Southern slopes of Al-Jabal Alkhdar was evaluated; soil degradation-related soil properties were measured. The evaluation included: erosion-related soil surface features, soil depth, mechanical analysis of soil particles, bulk density, organic matter, aggregates stability, soil resistance to penetration and infiltration rate. To achieve the study objectives five different sites were chosen: Meseliba; Marawa; Sirat Alia, Grehat and Qasar Mestashi. The field survey showed that the study area is subjected to intensive soil erosion, the area already suffered from degraded plant vegetation, which resulted in increased loss of soil depth. The investigation of productivity-related soil properties showed a noticeable level of soil degradation in Qasar Mestashi soils compared to the other sites. This can be illustrated by its shallow soil depth which is less than 12.5 cm compared to more than 16 cm at most of the other sites. Organic matter content was 0.39 % compared to more than 1% at the other sites. Clay content and aggregate stability > 2 mm were relatively lower at Qasar Mestashi site compared to the other sites. A low infiltration rate of only 0.03 mm\min indicated the deterioration of soil structure at Qasar Mestashi site. A relative increase in soil resistance to penetration and bulk density were also found and may have contributed to soil degradation. The shallow soil depth will always be a major obstacle preventing the return of balance to this fragile ecosystem. The application of soil conservation measures would improve soil depth and its holding capacity, which are needed to enhance plant cover.

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References

أبوراس، مراد ميلاد. (1997). "تأثير إزالة غطاء الغابات للاستخدام الزراعي على فقد التربة وبعض خصائصها بمنطقتي شحات والحمامة"، رسالة ماجستير، جامعة عمر المختار، البيضاء.

جامعة عمر المختار. (2005). "دراسة وتقييم الغطاء النباتي الطبيعي بمنطقة الجبل الأخضر"، التقرير النهائي، مؤسسة القذافي العالمية للجمعيات الخيرية، ليبيا.

Abu Hammad, A. H., H. Lundervam and T. Berresen. (2005). Adaptation of RUSLE in the Eastern part of the Mediterranean Region. Environmental Management, 34: 829-841. DOI: https://doi.org/10.1007/s00267-003-0296-7

Aburas, M. (2009). Assessment of Soil Erodibility in Relation to Soil Degradation and Land Use in Mediterranean Libya. Ph.D. thesis, University of Newcastle upon Tyne, UK.

Albaladejo, J., V. Castillo and A. Roldan. (1996). Rehabilitation of degraded soils by water erosion in semiareid environments. In: Rubio, J. L. C., Calvo, A. (ed), Soil degradation and desertification in Mediterranean environments. Logrono - Spain: Geoforma Edicones, P: 265-279.

Albaladejo, J., M. Martinez-Mena., A. Roldan and V. Castillo. (1998). Soil degradation and desertification induced by vegetation removal in a semiarid environment. Soil Use and Management, 14: 1-5. DOI: https://doi.org/10.1111/j.1475-2743.1998.tb00602.x

Aranda, V. and C. Oyonarte. (2005). Effect of vegetation with different evolution degree on soil organic matter in a semi-arid environment, SE Spain. Journal of Arid Environments, 62: 631-647. DOI: https://doi.org/10.1016/j.jaridenv.2005.01.019

Black, C. A., D. D. Evans, J. L White, L. E. Ensminger, and F. E. Clark. (1965). Methods of Soil Analysis. American Society of Agronomy, USA. DOI: https://doi.org/10.2134/agronmonogr9.1

Ekwue, E. I. (1984). Experimental investigation on the effect of preparation of soil samples on measured values of soil erodibility. M.Sc. Thesis, Cranfield Institute of Technology, Silso College, UK.

Evans, R., D. K. Cassel, and R. E. Sneed. (1996). Calibrating Soil-Water measuring devices. North Carolina Cooperative Extension Service.

Fox, D. M., R. B. Bryan and A. G. Price. (2005). The role of soil surface crusting in desertification and strategies to reduce crusting. Environmental Monitoring and Assessment, 99: 149-159. DOI: https://doi.org/10.1007/s10661-004-4015-5

Gebril, M. A. (1995). Water erosion on the northern of Al-Jabal Alkhdar of Libya. Ph.D. thesis, Durham University, UK.

Image Landsat. (2013). Google Earth, DigitalGlobe.

Lal, R. (1988). Erodibility and erosivity. In: Lal, R.(ed), Soil erosion research methods. The Soil and Water Conservation Society, Iowa.

Lal, R. (1997). Soil quality and soil erosion. In: Lal, R., W. H. Blum., C. Valentine and B. A. Stewart (eds), Methods for assessment of soil degradation. CRC Press, Boca Raton, NewYork. P: 17-30.

Lal, R. (2001). Soil degradation by erosion. Land degradation and Development, 12: 519-539. DOI: https://doi.org/10.1002/ldr.472

Nelson, D. W. and L. E. Sommers. (1996). Totla carbon, organic carbon and organic matter. In: Sparks, D. L.(ed), Methods of soil analysis. Part 3.Madison: SSSA Book Ser.

OMU. (2005). Study and evaluation of the natural plant cover in Aljabal Alkhdar Region, Libya, final report (in Arabic). Elbieda: Omar Al-Mukhtar University

Okoba, B. O. and G. Sterk. (2006). Farmers identification of erosion indicators and related erosion damage in the Central Highlands of Kenya. CATENA, 65: 292-301. DOI: https://doi.org/10.1016/j.catena.2005.12.004

Oztas, T. (2002). Soil degradation and assessment of soil quality. International conference on sustainable land use and management, Canakkala, Turkey.

Parr, J. F. and A. R. Bertrand, (1960). Water infiltration into soil. Advance Agronomy. 12. P: 311–363. DOI: https://doi.org/10.1016/S0065-2113(08)60086-3

Payton, R. W. and E. K. Sbisbira. (1994). Effects of soil erosion and sedimentation on land quality: Defining pedogenetic baseline in the Kondoa District of Tanzania. In: Syers, J. K. R., D. L. (ed), Soil science and sustainable land management in the tropics. CAB International, UK.

Molina, M. J. and P. Sanroque. (1996). Impact of forest fires on desertification processes: A review in relation to soil Erodibility. In: Rubio, J. L. C., A (ed), Soil degradation and desertification in Mediterranean environments. Geoforma Edicions – Logrono, Spain.

Selkhoze Prom, E. (1980). Soil studies in the eastern zone of Libya. Secretariat of Agriculture, Libya.

Soisungwan, S. (2005). Soil degradation under contrasting cropping regimes following forest clearance in North East Thailand. Ph. D. Thesis, Newcastle upon Tyne, UK.

Stocking, M. A. and N. Murnaghan. (2001). Handbook for the field assessment of land degradation. Earthscan Publications, Ltd, UK.

Van Lynden, G. W. J. (1999). Guidelines for the qualitative assessment of soil degradation, draft report 99. International Soil References and Information Centre (ISRIC), Wageningen.

Vanelslande, A., R. Lal, and D. Gabriels. (1987). The erodibility of some Nigerian soils: A comparison of rainfall simulator results with estimates obtained from the Wischmeier nomogram. Hydrological Processes, 1: 255-265. DOI: https://doi.org/10.1002/hyp.3360010304

Varela, M., E. De-Blas, and E. Benito. (2001). Physical soil degradation induced by deforestation and slope modification in a temperate-humid environment. Land degradation and Development, 12: 477-484. DOI: https://doi.org/10.1002/ldr.456

Published

2015-06-30

How to Cite

Aburas, M. M. . ., Yousef, M. S., & Alferjani, A. S. (2015). Land degradation at the southern slopes of Al-Jabal al Akhdar, Libya. Al-Mukhtar Journal of Sciences, 30(1), 67–79. https://doi.org/10.54172/mjsc.v30i1.131

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