Impacts of Adaptive Fire Management on Forest Structure and Regeneration: A Case Study from Ban Pak Thab Community Forest, Uttaradit Province, Thailand
Abstract
There is an urgent need for innovative approaches to forest management given the increasing incidence and intensity of wildfire due to climate change. The impact of interacting prescribed burning, fuel reduction and natural fires on tree structure in Ban Pak Thap community forest; Thailand Twelve, 40 × 40 m, experimental plots were studied for the ecological effects of four different management practices. The findings demonstrate that, not only do prescribed burning and fuel treatments significantly improve forest regeneration by decreasing inter-tree competition, enhancing nutrient recycling and encouraging superior sapling growth but also they also help to conserve species diversity as well as biomass accumulation. However, natural burning led to extensive reductions in tree density, species richness and total biomass. Extensive statistical analysis showed high relationships of the management practices tested on several ecological variables, and this demonstrated well the varying effects of these interventions. This result emphasizes the (compared to non-managed burns) advantageous effect of managed fire on other hand important information for sustainable development of management strategies concerning tropical forest ecosystems. This study highlights the potential benefit of adaptive management in reducing negative impacts of climate change on forest health and resilience.
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References
Boer, M., Sadler, R., Wittkuhn, R. S., McCaw, W., & Grierson, P. (2009). Long-term impacts of prescribed burning on regional extent and incidence of wildfires: Evidence from 50 years of active fire management in SW Australian forests. Forest Ecology and Management, 259(1), 132–142. https://doi.org/10.1016/j.foreco.2009.10.005
Bouget, C., Lassauce, A., & Jonsell, M. (2012). Effects of fuelwood harvesting on biodiversity –A review focused on the situation in Europe. Canadian Journal of Forest Research, 42(8), 1421–1432. https://doi.org/10.1139/X2012-078
Burrows, N., & McCaw, L. (2013). Prescribed burning in southwestern Australian forests. Frontiers in Ecology and the Environment, 11(e1), e25–e34. https://doi.org/10.1890/120356
Certini, G. (2005). Effects of fire on properties of forest soils: A review. Oecologia, 143, 1–10. https://doi.org/10.1007/s00442-004-1788-8
Cochrane, M. (2001). In the line of fire understanding the impacts of tropical forest fires. Environment: Science and Policy for Sustainable Development, 43, 28–38. https://doi.org/10.1080/00139150109604505
Eales, J., Haddaway, N., Bernes, C., Cooke, S., Jonsson, B., Kouki, J., Petrokofsky, G., & Taylor, J. (2018). What is the effect of prescribed burning in temperate and boreal forest on biodiversity, beyond pyrophilous and saproxylic species? A systematic review. Environmental Evidence, 7, Article 9. https://doi.org/10.1186/s13750-018-0131-5
Elliot, W., Miller, I., & Audin, L. (2010). Cumulative watershed effects of fuel management in the western United States. Gen. Tech. Rep. RMRS-GTR-231. Fort Collins, CO: U.S. Department of Agriculture, Forest Service, Rocky Mountain Research Station. https://doi.org/10.2737/RMRS-GTR-231
Fernandes, P. M., & Botelho, H. S. (2003). A review of prescribed burning effectiveness in fire hazard reduction. International Journal of Wildland Fire, 12(2), 117–128. https://doi.org/10.1071/WF02042
Guinto, D., Xu, Z., House, A., & Saffigna, P. (2001). Soil chemical properties and forest floor nutrients under repeated prescribed-burning in eucalypt forests of south-east Queensland, Australia. New Zealand Journal of Forestry Science, 31(2), 170–187.
Hämäläinen, A., Kouki, J., & Lõhmus, P. (2014). The value of retained Scots pines and their dead wood legacies for lichen diversity in clear-cut forests: The effects of retention level and prescribed burning. Forest Ecology and Management, 324, 89–100. https://doi.org/10.1016/J.FORECO.2014.04.016
Holland, G. J., Clarke, M. F., & Bennett, A. F. (2017). Prescribed burning consumes key forest structural components: Implications for landscape heterogeneity. Ecological Applications, 27(3), 845–858. https://doi.org/10.1002/eap.1488
Hutchinson, T., Yaussy, D., Long, R., Rebbeck, J., & Sutherland, E. (2012). Long-term (13-year) effects of repeated prescribed fires on stand structure and tree regeneration in mixed-oak forests. Forest Ecology and Management, 286, 87–100. https://doi.org/10.1016/J.FORECO.2012.08.036
Hyde, J. C., & Strand, E. (2019). Comparing modeled emissions from wildfire and prescribed burning of post-thinning fuel: A case study of the 2016 Pioneer Fire. Fire, 2(2), 22. https://doi.org/10.3390/fire2020022
Khairil, M., Ahmad, W., Said, M., & Faszly, R. (2011). Community structure and biomass of tree species at Chini watershed forest, Pekan, Pahang. Sains Malaysiana, 40(10), 1209–1221.
Kiely, L., Neyestani, S. E., Binte-Shahid, S., York, R. A., Porter, W. C., & Barsanti, K. (2024). California case study of wildfires and prescribed burns: PM2.5 emissions, concentrations, and implications for human health. Environmental Science & Technology, 58(9), 5210–5219. https://doi.org/10.1021/acs.est.3c06421
Liu, X., Huey, L. G., Yokelson, R., Selimovic, V., Simpson, I., Müller, M., Jimenez, J., Campuzano‐Jost, P., Beyersdorf, A., Blake, D., Butterfield, Z., Choi, Y., Crounse, J., Day, D., Diskin, G., Dubey, M., Fortner, E. C., Hanisco, T., Hu, W., … Wolfe, G. (2017). Airborne measurements of western U.S. wildfire emissions: Comparison with prescribed burning and air quality implications. Journal of Geophysical Research: Atmospheres, 122(11), 6108–6129. https://doi.org/10.1002/2016JD026315
López-Cruz, S., Aryal, D., Velázquez-Sanabria, C. A., Guevara-Hernández, F., Venegas-Sandoval, A., Casanova-Lugo, F., La O-Arias, M. A., Venegas-Venegas, J. A., Reyes-Sosa, M. B., Pinto-Ruiz, R., Hernández-López, A., Medina-Jonapá, F., Ramírez-Díaz, R., López-Cruz, A., & Alcudia-Aguilar, A. (2022). Effect of prescribed burning on tree diversity, biomass stocks and soil organic carbon storage in tropical highland forests. Forests, 13(12), 2164. https://doi.org/10.3390/f13122164
Mangle, V. (2022). Examining the effects of forest fire on terrestrial ecosystem – A comprehensive review of literature [Review]. International Journal Name (if known). Retrieved from Academia.edu website.
Merino, A., Jiménez, E., Fernández, C., Fontúrbel, M. T., Campo, J., & Vega, J. A. (2019). Soil organic matter and phosphorus dynamics after low intensity prescribed burning in forests and shrubland. Journal of Environmental Management, 234, 214–225. https://doi.org/10.1016/j.jenvman.2018.12.055
Mitchell, S., Harmon, M., & O’Connell, K. (2009). Forest fuel reduction alters fire severity and long-term carbon storage in three Pacific Northwest ecosystems.. Ecological Applications: a Publication of the Ecological Society of America, 19(3), 643–655 . https://doi.org/10.1890/08-0501.1
Ranius, T., Hämäläinen, A., Egnell, G., Olsson, B., Eklöf, K., Stendahl, J., Rudolphi, J., Sténs, A., & Felton, A. (2018). The effects of logging residue extraction for energy on ecosystem services and biodiversity: A synthesis. Journal of environmental management, 209, 409–425. https://doi.org/10.1016/j.jenvman.2017.12.048
Santana, J., Porto, M., Gordinho, L., Reino, L., & Beja, P. (2012). Long‐term responses of Mediterranean birds to forest fuel management. Journal of Applied Ecology, 49, 632–643. https://doi.org/10.1111/J.1365-2664.2012.02141.X
Schoennagel, T., Balch, J. K., Brenkert-Smith, H., Dennison, P. E., Harvey, B. J., Krawchuk, M. A., Mietkiewicz, N. P., Morgan, P., Moritz, M. A., Rasker, R., Turner, M. G., & Whitlock, C. (2017). Adapt to more wildfire in western North American forests as climate changes. Proceedings of the National Academy of Sciences, 114(18), 4582–4590. https://doi.org/10.1073/pnas.1617464114
Syaufina, L., & Nuruddin, A. (2011). Impacts of fire on SouthEast Asia tropical forests biodiversity: A review. Asian Journal of Plant Sciences, 10, 238–244. https://doi.org/10.3923/AJPS.2011.238.244
Tekalign, W. (2016). Impacts of wildfire and prescribed fire on wildlife and habitats: A review. Journal of Natural Sciences Research, 6(23), 15–27.
Williams, R. J., Hallgren, S. W., & Wilson, G. W. T. (2012). Frequency of prescribed burning in an upland oak forest determines soil and litter properties and alters the soil microbial community. Forest Ecology and Management, 265, 241–247. https://doi.org/10.1016/j.foreco.2011.10.032
Xu, H. (2009). Study on species composition and diversity of tropical forest in distributed area of Hylobates hainanus habitat in Hainan Island. Guangxi Forestry Science.
Yeom, D., & Kim, J. H. (2011). Comparative evaluation of species diversity indices in the natural deciduous forest of Mt. Jeombong. Forest Science and Technology, 7(2), 68–74. https://doi.org/10.1080/21580103.2011.573940
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