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Effect of Collaborative Forest Management on Carbon Stocks, Species Diversity and Stem Density in Mabira Central Forest Reserve, Uganda*

DOI: 10.4236/ojf.2025.151004, PP. 53-68

Keywords: Collaborative Forest Management (CFM), Carbon Stocks, Tree Species Diversity, Tree Stem-Densities, Mabira Central Forest Reserve

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Abstract:

Collaborative forest management (CFM) is a form of forest governance in which local communities are involved in the management and decision-making processes related to forest resources. It is believed that forests under such management are better in tree diversity and conservation status and thus hold more carbon stocks. The study assessed the impact of CFM on carbon stocks, tree species diversity & tree species density in Mabira Central Forest Reserve. Data were collected from plots that were systematically laid in the different purposively selected forest areas. The study findings show that there is no difference in stem density and carbon stocks between CFM and non-CFM areas. CFM areas had lower species richness compared to non-CFM areas. CFM areas, however, exhibited more species diversity than non-CFM areas. Climax colonization may favor a few dominant species over others, hence lowering species diversity despite the number of species being many in the understory, hence at the same time increasing species richness. Likewise, disturbance in CFM area may affect natural colonization and favor the emergency of many species either naturally or through assisted regeneration by reforestation, hence increasing diversity, whereas artificial selection of preferred species through harvesting may lower species richness, as observed. Recommendations for improving collaborative forest management (CFM) areas include implementing targeted interventions to enhance carbon sequestration, such as promoting reforestation and afforestation with high-carbon-storing species and strengthening monitoring and evaluation frameworks to assess carbon stock changes over time. Additionally, efforts should focus on enhancing biodiversity conservation by implementing more stringent protection measures and reducing human disturbance while encouraging community participation in biodiversity monitoring and conservation education.

References

[1]  Barlow, J., Lennox, G. D., Ferreira, J., Berenguer, E., Lees, A. C., Nally, R. M. et al. (2016). Anthropogenic Disturbance in Tropical Forests Can Double Biodiversity Loss from Deforestation. Nature, 535, 144-147.
https://doi.org/10.1038/nature18326
[2]  Boton, D., Mensah, S., Egeru, A., Yamungu, A. B. B., Houedegnon, P., & Namara, B. (2021). Performance of Collaborative Forest Management on Forest Status and Contribution to Adjacent Community Livelihoods in Uganda. Makerere University Journal of Agricultural and Environmental Sciences, 10, 123-143.
[3]  Bowler, D. L. B., Healey, J., Jones, J., Knight, T., & Pullin, A. (2010). The Evidence Base for Community Forest Management as a Mechanism for Supplying Global Environmental Benefits and Improving Local Welfare. Collaboration for Environmental Evidence.
[4]  Braga, C. I., Petrea, S., Radu, G. R., Cucu, A. B., Serban, T., Zaharia, A. et al. (2024). Carbon Sequestration Dynamics in Peri-Urban Forests: Comparing Secondary Succession and Mature Stands under Varied Forest Management Practices. Land, 13, Article 492.
https://doi.org/10.3390/land13040492
[5]  Brazier, R. E., Puttock, A., Graham, H. A., Auster, R. E., Davies, K. H., & Brown, C. M. L. (2020). Beaver: Nature’s Ecosystem Engineers. WIREs Water, 8, e1494.
https://doi.org/10.1002/wat2.1494
[6]  Chave, J., Andalo, C., Brown, S., Cairns, M. A., Chambers, J. Q., Eamus, D. et al. (2005). Tree Allometry and Improved Estimation of Carbon Stocks and Balance in Tropical Forests. Oecologia, 145, 87-99.
https://doi.org/10.1007/s00442-005-0100-x
[7]  Chazdon, R. L. (2017). Tropical Forest Regeneration. Elsevier.
https://doi.org/10.1016/b978-0-12-809633-8.02053-7
[8]  Ekoungoulou, R., Niu, S., Folega, F., Nzala, D., & Liu, X. (2018). Carbon Stocks of Coarse Woody Debris in Central African Tropical Forests. Sustainability in Environment, 3, 142-160.
https://doi.org/10.22158/se.v3n2p142
[9]  Ellis, E. A., Montero, S. A., Hernández Gómez, I. U., Romero Montero, J. A., Ellis, P. W., Rodríguez-Ward, D. et al. (2019). Reduced-Impact Logging Practices Reduce Forest Disturbance and Carbon Emissions in Community Managed Forests on the Yucatán Peninsula, Mexico. Forest Ecology and Management, 437, 396-410.
https://doi.org/10.1016/j.foreco.2019.01.040
[10]  Etigale, E. B., Ajayi, S., Udofia, S. I., & Moses, M. U. (2014). Assessment of Stand Density and Growth Rate of Three Tree Species in an Arboretum within the University of Uyo, Nigeria. Journal of Research in Forestry, Wildlife and Environment, 6, 8-16.
[11]  FAO (2022). Review: The World’s Forests. Geographical Review, 14, 165-166.
https://doi.org/10.2307/208372
[12]  Fielding, K. S., Prober, S. M., Williams, K. J., & Dean, A. J. (2023). Developing an Indicator of Community Appreciation of Biodiversity. Environmental and Sustainability Indicators, 19, Article 100278.
https://doi.org/10.1016/j.indic.2023.100278
[13]  Fleishman, E., Noss, R., & Noon, B. (2006). Utility and Limitations of Species Richness Metrics for Conservation Planning. Ecological Indicators, 6, 543-553.
https://doi.org/10.1016/j.ecolind.2005.07.005
[14]  Giuggiola, A., Rigling, A., & Dobbertin, M. (2012). Reduction of Stand Density as a Management Tool to Mitigate the Effect of Drought. Geophysical Research Abstracts, 14, Article 12847.
[15]  Gumoshabe, M., Anywar, G., & Tugume, P. (2023). Access to Provisioning Services by Local Communities from Mpanga Central Forest Reserve in Central Uganda. Frontiers in Forests and Global Change, 6, Article 1021664.
https://doi.org/10.3389/ffgc.2023.1021664
[16]  Gunawan, B., Abdoellah, O. S., Hadi, F., Alifi, G. J., Suhendi, R. N., Aisharya, I. Y. et al. (2023). From Laborers to Coffee Farmers: Collaborative Forest Management in West Java, Indonesia. Sustainability, 15, Article 7722.
https://doi.org/10.3390/su15097722
[17]  Hairiah, K., Sitompul, S. M., van Noordwijk, M., & Palm, C. (2001). Carbon Stocks of Tropical Land Use Systems as Part of the Global C Balance. Effects of Forest Conversion and Options for Clean Development Activities. International Centre for Research in Agroforestry.
[18]  Jjagwe, A., Kakembo, V., & Bernard, B. (2021). Land Use Cover Types and Forest Management Options for Carbon in Mabira Central Forest Reserve. In N. Oguge, D. Ayal, L. Adeleke, & I. da Silva (Eds.), African Handbook of Climate Change Adaptation (pp. 2733-2754). Springer International Publishing.
https://doi.org/10.1007/978-3-030-45106-6_145
[19]  Kacholi, D. S. (2019). Assessment of Tree Species Richness, Diversity, Population Structure and Natural Regeneration in Nongeni Forest Reserve in Morogoro Region, Tanzania. Tanzania Journal of Science, 45, 330-345.
[20]  Kiprono, C. P., Kalekye, M. G., & Wafula, O. J. (2024). Implications of Gender Relations on Forest Management among the Indigenous Ogiek of Mau Forest in Nakuru County, Kenya. Open Journal of Social Sciences, 12, 127-147.
https://doi.org/10.4236/jss.2024.121009
[21]  Lamsal, P., Aryal, K. R., Adhikari, H., Paudel, G., Maharjan, S. K., Khatri, D. J., & Sharma, R. P. (2023). Effects of Forest Management Approach on Carbon Stock and Plant Diversity: A Case Study from Karnali Province, Nepal. Land, 12, Article 1233.
https://doi.org/10.3390/land12061233
[22]  Melikov, C. H., Bukoski, J. J., Cook-Patton, S. C., Ban, H., Chen, J. L., & Potts, M. D. (2023). Quantifying the Effect Size of Management Actions on Aboveground Carbon Stocks in Forest Plantations. Current Forestry Reports, 9, 131-148.
https://doi.org/10.1007/s40725-023-00182-5
[23]  Monarrez-Gonzalez, J. C., Gonzalez-Elizondo, M. S., Marquez-Linares, M. A., Gutierrez-Yurrita, P. J., & Perez-Verdin, G. (2020). Effect of Forest Management on Tree Diversity in Temperate Ecosystem Forests in Northern Mexico. PLOS ONE, 15, e0233292.
https://doi.org/10.1371/journal.pone.0233292
[24]  Mulugo, L. W., Galabuzi, C., Nabanoga, G. N., Turyahabwe, N., Eilu, G., Obua, J. et al. (2020). Cultural Knowledge of Forests and Allied Tree System Management around Mabira Forest Reserve, Uganda. Journal of Forestry Research, 31, 1787-1802.
https://doi.org/10.1007/s11676-019-00961-6
[25]  MWE (2010). The Republic of Uganda Ministry of Water and Environment Revised Forest Management Plan for Mabira Central Forest Reserves (Mabira, Nandagi, Namukupa, Namawanyi, Namananga & Kalagala Falls Central Forest Reserves).
[26]  National Forestry Authority (NFA) (2020). A Review of Collaborative Forest Management in Uganda.
https://www.nfa.go.ug/images/A_REVIEW_OF_COLLABORATIVE_FOREST_MANAGEMENT_IN_UGANDA.pdf
[27]  Patton, R. M., Kiernan, D. H., Burton, J. I., & Drake, J. E. (2022). Management Trade-Offs between Forest Carbon Stocks, Sequestration Rates and Structural Complexity in the Central Adirondacks. Forest Ecology and Management, 525, Article 120539.
https://doi.org/10.1016/j.foreco.2022.120539
[28]  Ramos, Y. A., Aguiar, B. A. C., Silva, M. V. C., Matos, R. E. S., Coelho, M. C. B., & Giongo, M. (2019). Structure and Floristic Composition in a Dense Ombrophilous Forest AREA under Forest Management. Floresta, 49, 793-802.
https://doi.org/10.5380/rf.v49i4.59264
[29]  Salmi, A., Quarshie, A. M., Scott-Kennel, J., & Kähkönen, A. (2023). Biodiversity Management: A Supply Chain Practice View. Journal of Purchasing and Supply Management, 29, Article 100865.
https://doi.org/10.1016/j.pursup.2023.100865
[30]  Sassen, M., & Sheil, D. (2013). Human Impacts on Forest Structure and Species Richness on the Edges of a Protected Mountain Forest in Uganda. Forest Ecology and Management, 307, 206-218.
https://doi.org/10.1016/j.foreco.2013.07.010
[31]  Shono, K., Cadaweng, E. A., & Durst, P. B. (2007). Application of Assisted Natural Regeneration to Restore Degraded Tropical Forestlands. Restoration Ecology, 15, 620-626.
https://doi.org/10.1111/j.1526-100x.2007.00274.x
[32]  Thammanu, S., Han, H., Marod, D., Srichaichana, J., & Chung, J. (2021). Above-Ground Carbon Stock and REDD+ Opportunities of Community-Managed Forests in Northern Thailand. PLOS ONE, 16, e0256005.
https://doi.org/10.1371/journal.pone.0256005
[33]  Thammanu, S., Marod, D., Han, H., Bhusal, N., Asanok, L., Ketdee, P. et al. (2020). The Influence of Environmental Factors on Species Composition and Distribution in a Community Forest in Northern Thailand. Journal of Forestry Research, 32, 649-662.
https://doi.org/10.1007/s11676-020-01239-y
[34]  Tumusiime, D. M., Turyahabwe, N., Byakagaba, P., & Tumwebaze, S. B. (2018). Impact of Collaborative Forest Management on forest Status and Local Perceptions of Contribution to Livelihoods in Uganda. Journal of Sustainable Development, 6, 36.
[35]  Turyahabwe, N., Godfrey, J., Tweheyo, M., & Balaba, S. (2012). Collaborative Forest Management in Uganda: Benefits, Implementation Challenges and Future Directions. In J. Martin-Garcia, & J. J. Diez (Eds.), Sustainable Forest Management—Case Studies (pp. 51-74). InTech.
https://www.researchgate.net/publication/224830124_Collaborative_Forest_Management_in_Uganda_Benefits_Implementation_Challenges_and_Future_Directions
https://doi.org/10.5772/28906
[36]  Weldemariam, E., Jakisa, E., & Ahebwe, D. (2017). Implication of Forest Zonation on Tree Species Composition, Diversity and Structure in Mabira Forest, Uganda. Environment, Earth and Ecology, 1, 112-122.
https://doi.org/10.24051/eee/69224
[37]  Wood, A., Tolera, M., Snell, M., O'Hara, P., & Hailu, A. (2019). Community Forest Management (CFM) in South-West Ethiopia: Maintaining Forests, Biodiversity and Carbon Stocks to Support Wild Coffee Conservation. Global Environmental Change, 59, Article 101980.
https://doi.org/10.1016/j.gloenvcha.2019.101980

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