Vegetation structural characteristics and topographic factors in the remnant moist Afromontane forest of Wondo Genet, south central Ethiopia

Mamo Kebede , Markku Kanninen , Eshetu Yirdaw , Mulugeta Lemenih

Journal of Forestry Research ›› 2013, Vol. 24 ›› Issue (3) : 419 -430.

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Journal of Forestry Research ›› 2013, Vol. 24 ›› Issue (3) : 419 -430. DOI: 10.1007/s11676-013-0374-5
Original Paper

Vegetation structural characteristics and topographic factors in the remnant moist Afromontane forest of Wondo Genet, south central Ethiopia

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Abstract

For forest ecosystem management to be effective, knowledge of the horizontal and vertical structural diversity of a forest is essential. The moist Afromontane highlands of Wondo Genet in south-central Ethiopia present an opportunity to restore and rehabilitate and enhance the ecosystem services to be obtained from this forest sustainably. We focused on the forest structural characteristics to better understand the current forest conditions to assist in the sustainable management of this resource. A total of 75 (20 m × 20 m) quadrats were sampled and diameter at breast height (DBH) ≥ 2 cm and stem height ≥ 2 m were measured. Species identity and abundance, elevation, slope, and aspect were recorded for each plot. Structural characteristics were computed for each plot. Relationship of topographic factors with vegetation characteristics was conducted using R-Software. A total of 72 woody species was recorded. Whereas, the overall diameter distribution shows an inverted J-shaped curve, the basal area followed a bell-shaped pattern. Five types of population structures are revealed. The mean tree density and basal area was 397.3 stems·ha−1 and 31.4 m2·ha−1, respectively. Only 2.8% of the tree species have densities of >25 stems·ha−1 and the percentage distribution of trees show 56.2% in the DBH class 2–10 cm, indicating that the forest is dominated by medium-sized trees. Celtis africana (8.81 m2·ha−1) and Pouteria adolfi-friedericii (5.13 m2·ha−1) make the highest contribution to the basal area and species importance value index. The families/species with the highest importance value index are Ulmaceae, Fabacea and Sapotaceae. Species abundance (r 2 =0.32, p <0.001) and species richness (r 2 =0.50, p <0.001) are positively related with tree density. Tree density is negatively related with elevation (r 2 =−0.36, p <0.001), slope (r 2 =−0.15, p <0.001) and aspect (r 2 =−0.07, p <0.05). While basal area is negatively related with elevation (r 2 =−0.14, p <0.001), it has a positive relationship with tree density (r 2 =0.28, p <0.001 and species richness (r 2 =0.098). Species with poor population structure should be assisted by restoration tasks and further anthropogenic disturbance such as illegal logging and fuel wood extraction should be restricted.

Keywords

forest structure / basal area / stratification / topographic factors / Afromontane forest

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Mamo Kebede, Markku Kanninen, Eshetu Yirdaw, Mulugeta Lemenih. Vegetation structural characteristics and topographic factors in the remnant moist Afromontane forest of Wondo Genet, south central Ethiopia. Journal of Forestry Research, 2013, 24(3): 419-430 DOI:10.1007/s11676-013-0374-5

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References

[1]

Albert RS, Christian S. Interactions of elevation, aspect, and slope in models of forest species composition and productivity. Forest Science, 2007, 53(4): 486-492.

[2]

Austin MP, Nicholls AO, Margules CR. Measurement of the realized qualitative niche: Environmental niches of five Eucalyptus species. Ecological Monographs, 1990, 60: 161-177.

[3]

Ayalew A, Bekele T, Demissew S. The undifferentiated Afromomntane forest type of Denkoro in the central highlands of Ethiopia: a floristic and structural analysis. SINET: Ethiopian Journal of Science, 2006, 29: 45-56.

[4]

Bale CL, Williams BJ, Charley JL. The impact of aspect on forest structure and floristics in some eastern Australian sites. Forest Ecol Manage, 1998, 110: 363-377.

[5]

Bekele T. Studies on remnant afromontane forests on the central plateau of Ethiopia. 1994, Sweden: Uppsala University

[6]

Bourgeron PS. Golley FB. Spatial aspects of vegetation structure. Tropical Rainforest Ecosystems: Structure and Function. 1983, Amsterdam: Elsevier, 29 48

[7]

Campbell DG, Daly DC, Prance GT, Maciel UN. A comparison of the phytosociology and dynamics of three floodplains, Western Brazillian Amazon. Botanical Journal of the Linnaean Society, 1992, 108: 213-237.

[8]

Cornell HV, Lawton JH. Species interactions, local and regional processes, and limits to the richness of ecological communities: a theoretical perspective. J Anim Ecol, 1992, 61: 1-12.

[9]

Curtis JT, Cottam G. Plant Ecology. Laboratory and Field Refrencereference Manual. 1956, Minnesota: Burgerts Publ Co., 193.

[10]

Curtis JT, Mcintosh RP. An upland forest continuum in the prairie-forest border region of Wisconsin. Ecology, 1951, 32(3): 476-496.

[11]

Dessie G. Forest Decline in South Central Ethiopia. Extent, history and process. 2007, Stockholm, Sweden: Stockholm University

[12]

Edwards S, Demissew S, Hedberg I. Flora of Ethiopia and Eritrea, Vol. 6. 1997, Ethiopia: National Herbarium, Addis Ababa and Uppsala University, 586.

[13]

Edwards S, Tadesse M, Demissew S, Hedberg I. Flora of Ethiopia and Eritrea, Part 1, Vol. 2. 2000, Ethiopia: National Herbarium, Addis Ababa and Uppsala University, 532.

[14]

Edwards S, Woldemariam Gole M, Hedberg I. Flora of Ethiopia and Eritrea. Vol. 2, Part 2. Canellaceae to Euphorbiaceae. 1995, Uppsala: Addis Ababa and Uppsala University, 456.

[15]

Ellu G, Obusa J. Tree conditions and natural regeneration in disturbed sites of Bwindi Impenetrable forest national park, South-western Uganda. Tropical Ecology, 2005, 46(1): 99-111.

[16]

Fontaine M, Aerts R, Özakan K, Mert A, Gulsoy S, Suel H, Waelkens M, Muys B. Elevation and exposition rather than soil types determine communities and their suitability in Mediterranean mountain forest. Forest Ecol Manage, 2007, 247: 18-25.

[17]

Geldenhuys CJ, Murray B. Floristic and structural composition of Hanglip forest, Northern Transval. 1992, Pretoria: Division of Forest Science and Technology, 22.

[18]

Gentry AH. Changes in plant community diversity and floristic comparisons on environmental and Geographical gradients. Ann Miss Bott Gard, 1988, 75(1): 1-34.

[19]

Godoy R. Some organizing principles in the valuation of tropical forests. Forest Ecol Manage, 1992, 50: 171-180.

[20]

Grubb PJ, Lloyd JR, Pennington JD, Whitmore JC. A comparison of montane and lowland rainforests in Ecuador: the forest structure, physiognomy, and floristics. J Ecol, 1963, 51: 567-601.

[21]

Heaney A, Proctor J. Preliminary studies on forest structure and floristics of Volcan Barva, Costa Rica. Journal of Tropical Ecology, 1990, 6: 307-320.

[22]

Hedberg I, Edwards S, Nemomissa S. Flora of Ethiopia and Eritrea. 2003, Sweden: Addis Ababa, and Uppsala University, Uppsala, 352.

[23]

Hedberg I, Edwards S. Flora of Ethiopia. 1995, Sweden: Addis Ababa and Uppsala University, Ethiopia, 420.

[24]

Holland PG, Steyne DG. Vegetation response to latitudinal variations in slope angle and aspect. J Biogeogr, 1975, 2: 179-183.

[25]

Huston MA. A general hypothesis of species diversity. American Naturalist, 1979, 113: 81-101.

[26]

Huston MA. Biological Diversity: The Coexistence of Species on Changing Landscapes. 1994, Cambridge: Cambridge University Press, 708.

[27]

Kent M, Cooker P. Vegetation Description analysis: A practical Approach. 1992, Chichester: John Willey and Sons Ltd., 424.

[28]

Kharkwal G, Mehrota P, Rawat Y, Rico-Gray V. Distribution of plant life forms along an altitudinal gradient in the Central Himalayan region of India. Current Science, 2005, 89(5): 873-878.

[29]

Kindt R, Coe R. Tree diversity analysis: A manual and software for common statistical methods for ecological and biodiversity studies. 2005, Nairobi: World Agroforestry Centre (ICRAF)

[30]

Lamprecht H. Silviculture in the tropics: Tropical forest ecosystem and their tree species-possibilities and methods for their long-term utilization. 1989, Germany: GTZ, Eschborn, 296.

[31]

Liang J, Boungiorno J, Monserud AR, Kruger E, Zhou M. Effects of diversity of tree species and size on forest basal area growth, recruitment, and mortality. Forest Ecol Manage, 2007, 243: 116-127.

[32]

Liira J, Zobel K, Mägi R, Molenberghs G. Vertical structure of herbaceous canopies: the importance of plant growth form and species-specific traits. Plant Ecology, 2002, 163: 123-134.

[33]

Lulekal E, Kelbessa E, Bekele T, Yineger H. Plant species composition and structure of the Mana Angetu moist montane forest, south-eastern Ethiopia. Journal of East African Natural History, 2008, 97(2): 165-185.

[34]

McCune B, Grace JB. Analysis of Ecological Communities. 2002, Gleneden Beach: MjM Software Design, 300.

[35]

McKinney ML. Extinction vulnerability and selectivity: Combining ecological and paleontological views. Ann Rev Ecol Sys, 1997, 28: 495-516.

[36]

Mulder CPH, Uliassi DD, Doak DF. Physical stress and diversity-productivity relationships: the role of positive interactions. Proc Natl Acad Sci USA, 2001, 98: 6704-6708.

[37]

Ovales FA, Collins ME. Soil-landscape relationships and soil variability in North Central Florida. Soil Sci Soc Am J, 1986, 50: 401-408.

[38]

Philip MS. Measuring Trees and Forests, 1994 2nd Ed. Oxon: CAB International, Wallingford, 310.

[39]

Sahu PK, Sagar R, Singh JS. Tropical forest structure and diversity in relation to altitude and disturbance in a Biosphere Reserve in central India. Applied Vegetation Science, 2008, 11(4): 461-470.

[40]

Senbeta F. Biodiversity and Ecology of Afromontane Rainforests with Wild Coffea arabica L. Populations in Ethiopia. Ecology and Development Series No. 38. 2006, Germany: Center for Development Research, University of Bonn, 152.

[41]

Sharman CM, Suyal S, Gairola S, Ghildiyal SK. Species richness and diversity along an altitudinal gradient in moist temperate forest of Garhwal Himalaya. Journal of American Science, 2009, 5: 119-128.

[42]

Shibru S, Balacha G. Composition, structure, and regeneration status of woody species in Dindin Natural forests, southeast Ethiopia: An application of conservation. Ethiopian Journal of Biological Sciences, 2004, 3: 15-35.

[43]

Smith T, Huston M. A theory of spatial and temporal dynamics of plant communities. Vegetatio, 1989, 83: 49-69.

[44]

Sokpon N, Biaou SH. The use of diameter distribution in sustained-use management of remnant forest in Benin: Case of Bassila forest reserve in Benin. Forest Ecol Manage, 2002, 161: 13-25.

[45]

Stoutjesdijk PH, Barkman JJ. Microclimate. 1992, Uppsala: Vegetation and Fauna OPULUS Press, 216.

[46]

Sudhakar CR, Babar S, Amarnath G, Pattanaik C. Structure and floristic composition of tree stand in tropical forests in Estern Ghat of northern Pradesh, India. Journal of Forestry Research, 2011, 22(4): 491-500.

[47]

Teketay D. Floristic composition of Dakata Valley, south-eastern Ethiopia, an implication for the conservation of biodiversity. Mt Res Dev, 1995, 15: 183-186.

[48]

Tesfaye G, Bekele T, Demissew S. Dryland woody vegetation along an altitudinal gradient on the eastern escarpment of Wello, Ethiopia. Ethiop J Sci, 2008, 31: 43-54.

[49]

Uriarte M, Canham CD, Thompson J, Zimmerman JK, Brokaw J. Seedling recruitment in a hurricane-driven tropical forest: light limitation, density-dependence and the spatial distribution of parent trees. Journal of Ecology, 2005, 93: 291-304.

[50]

Veblen TT, Schlegel FM, Escobar RB. Structure and dynamics of old-growth Nothofagus forests in the Valdivian Andes, Chile. Journal of Ecology, 1980, 68: 1-31.

[51]

Whitford PB. Distribution of woodland plants in relation to succession and clonal growth. Ecology, 1949, 30: 199-208.

[52]

Woldemariam Gole T, Borsch T, Denich M, Teketay D. Floristic composition and environmental factors characterizing coffee forests in south-west Ethiopia. Forest Ecol Manage, 2008, 255: 2138-2150.

[53]

Yeshitela K, Bekele T. The woody species composition and structure of Masha Anderacha forest, South-western Ethiopia. Ethiopian Journal of Biological Sciences, 2003, 2(1): 31-48.

[54]

Yimer F, Abdelkadir A, Ledin S. Soil property Variations in relation to topographic aspect and vegetation community in the South-eastern highlands of Ethiopia. Forest Ecol Manage, 2006, 232: 90-99.

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