PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Climate change control potential of mangrove ecosystems in Rawa Aopa Watumohai National Park, Tinanggea District

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The purpose of this study was to determine the estimation of biomass, carbon stocks, oxygen production and the value of environmental services from mangrove tree stands in Rawa Aopa Watumohai National Park, Tinanggea District in helping the potential to control climate change. Biomass measurements were carried out by making 50×50 m plots of 15 plots divided into three different sampling locations. This tree stand calculation uses the allometric equation of mangrove tree species found in the measurement. The calculation of carbon stock was done by multiplying the biomass against the conversion rate of 0.47 (47%) while the estimation of carbon dioxide uptake was multiplied by the biomass value with a conversion rate of 1.4667 obtained from the photosynthesis equation. The results of this study indicate that the biomass content of mangrove tree stands in Rawa Aopa Watumohai National Park, Tinanggea District is 923.81 tons/hectare; carbon stock in mangrove stands is 434.19 tons/hectare; oxygen production is 95.91 tons/hectare; and carbon dioxide uptake in mangrove stands is 204.07 tons/hectare or 26.42 tons/hectare/year. Carbon dioxide environmental services are worth USD 34.37/hectare/year.
Twórcy
autor
  • Environmental Management Study Program, Graduate School, Hasanuddin University, Makassar, Indonesia
autor
  • Department of Agricultural Social Economics, Faculty of Agriculture, Hasanuddin University, Indonesia
autor
  • Center for Climate Change Studies, Institute for Research and Community Service, Hasanuddin University, Indonesia
Bibliografia
  • 1. Adinugroho, W. C., Indrawan, A., & Arifin, H. S. (2016). Contribution of Agroforestry System to Carbon Reserve in Upper Das Kali Bekasi. Academia.Edu. https://www.academia.edu/64260210/ Kontribusi_Sistem_Agroforestri_Terhadap_Cadangan_Karbon_DI_Hulu_Das_Kali_Bekasi
  • 2. Alongi, D. M. (2016). Climate Regulation by Capturing Carbon in Mangroves. In The Wetland Book (1–7). Springer Netherlands. https://doi. org/10.1007/978-94-007-6172-8_236-5
  • 3. Alongi, D. M. (2022). Impacts of Climate Change on Blue Carbon Stocks and Fluxes in Mangrove Forests. Forests, 13(2), 149. https://doi.org/10.3390/f13020149
  • 4. Amira, S. (2008). Estimation of Biomass of Rhizophora apiculata Bl. species in Batu Ampar Mangrove Forest, Kubu Raya Regency, West Kalimantan.
  • 5. Anshari, G. Z., Gusmayanti, E., Afifudin, M., Ruwaimana, M., Hendricks, L., & Gavin, D. G. (2022). Carbon loss from a deforested and drained tropical peatland over four years as assessed from peat stratigraphy. CATENA, 208, 105719. https://doi.org/ https://doi.org/10.1016/j.catena.2021.105719
  • 6. Azzahra, F. (2020). Estimation of Carbon Sequestration in Mangrove Forest of Bedono Village, Demak, Central Java. JFMR-Journal of Fisheries and Marine Research, 4(2), 308–315. https://doi. org/10.21776/ub.jfmr.2020.004.02.15
  • 7. National Standardization Agency. (2011). SNI 7724:2011 Measurement and accounting of carbon stocks-Field measurement for ground based forest carbon accounting. In Indonesian Standardization Agency 7724.
  • 8. Baharuddin, B., Sanusi, D., & Daud, M. (2014). Potential biomass, carbon reserves and carbon dioxide (CO2) absorption and biomass estimation allometric equations in betung bamboo (Dendrocalamus asper) stands in community bamboo forests in Tana Toraja Regency. Proceedings of the National Seminar on NTFP Research Results, 1(1), 415–428.
  • 9. Bayu, P., Suminarty, N. E., & Sudiarso. (2014). Urban Forest Planning at Brawijaya University. Journal of Plant Production, Department of Agricultural Cultivation, Faculty of Agriculture. https://protan.studentjournal.ub.ac.id/index.php/protan/article/view/127
  • 10. Chatting, M., LeVay, L., Walton, M., Skov, M. W., Kennedy, H., Wilson, S., & Al-Maslamani, I. (2020). Mangrove carbon stocks and biomass partitioning in an extreme environment. Estuarine, Coastal and Shelf Science, 244, 106940. https:// doi.org/10.1016/j.ecss.2020.106940
  • 11. Choudhary, B., Dhar, V., & Pawase, A. S. (2024). Blue carbon and the role of mangroves in carbon sequestration: Its mechanisms, estimation, human impacts and conservation strategies for economic incentives. Journal of Sea Research, 199, 102504. https://doi.org/10.1016/j.seares.2024.102504
  • 12. Christy, Y. A., Setyati, W. A., & Pribadi, R. (2019). Assessment of economic valuation of mangrove forest ecosystems in Kaliwlingi Village and Sawojajar Village, Brebes Regency, Central Java. Journal of Marine Research, 8(1), 94–106. https:// doi.org/10.14710/jmr.v8i1.24334
  • 13. Daud, M. (2020). Estimation of biomass potential, carbon reserves and CO2 absorption in several mangrove stand densities as climate change mitigation efforts. Seminar Proceedings, 1, 129–136.
  • 14. Daud, M., Hikmah, H., & Haerana. (2018). Potential oxygen production in parring bamboo (Gigantochloa atter) stands in the community forest of Tompobulu District, Maros Regency. Journal of Tropical Forests, 6, 27–39.
  • 15. Dharmawan, I. W. S., & Samsoedin, I. (2012). Dynamics of carbon biomass potential in logged forest landscape in malinau research forest. Journal of Forestry Social and Economic Research, 9(1), 12–20.
  • 16. Duarte, C. M., Kennedy, H., Marbà, N., & Hendriks, I. (2013). Assessing the capacity of seagrass meadows for carbon burial: Current limitations and future strategies. Ocean & Coastal Management, 83, 32–38. https://doi.org/10.1016/j. ocecoaman.2011.09.001
  • 17. Forest Digest. (2024, May 30). Social Forestry Absorbs 31.9 Million Tons of Carbon. Social Forestry Areas Sequester 22% of the 4% Target. Could be the mainstay of climate change mitigation. https://www.forestdigest.com/detail/2579/ serapan-karbon-perhutanan-sosial
  • 18. Griscom, B. W., Busch, J., Cook-Patton, S. C., Ellis, P. W., Funk, J., Leavitt, S. M., Lomax, G., Turner, W. R., Chapman, M., Engelmann, J., Gurwick, N. P., Landis, E., Lawrence, D., Malhi, Y., Schindler Murray, L., Navarrete, D., Roe, S., Scull, S., Smith, P., … Worthington, T. (2020). National mitigation potential from natural climate solutions in the tropics. Philosophical Transactions of the Royal Society B: Biological Sciences, 375(1794), 20190126. https:// doi.org/10.1098/rstb.2019.0126
  • 19. Hamilton, S. E., & Friess, D. A. (2018). Global carbon stocks and potential emissions due to mangrove deforestation from 2000 to 2012. Nature Climate Change, 8(3), 240–244. https://doi. org/10.1038/s41558-018-0090-4
  • 20. Hasidu, F., Prasetya, A., Maharani, M., Syaiful, M., & Analuddin, K. (2022). Allometric model, aboveground biomass and carbon sequestration of natural regeneration of Avicennia lanata (Ridley). at in-active Pond of Muna Regency, Southeast Sulawesi. HAYATI Journal of Biosciences, 29(3), 399–408.
  • 21. Jennerjahn, T. C. (2020). Relevance and magnitude of “Blue Carbon” storage in mangrove sediments: Carbon accumulation rates vs. stocks, sources vs. sinks. Estuarine, Coastal and Shelf Science, 247, 107027. https://doi.org/10.1016/j.ecss.2020.107027
  • 22. Johari, H. I., & Sukuryadi. (2023). Environmental economic value of mangrove forests in the southern coastal area of east lombok regency. Journal of Education Studies, Research and Development, 11(1), 172–181. http://journal.ummat.ac.id/index. php/geography
  • 23. Kandasamy, K., Rajendran, N., Balakrishnan, B., Thiruganasambandam, R., & Narayanasamy, R. (2021). Carbon sequestration and storage in planted mangrove stands of Avicennia marina. Regional Studies in Marine Science, 43, 101701. https://doi. org/10.1016/j.rsma.2021.101701
  • 24. Kangkuso, A., Sharma, S., Jamili, J., Septiana, A., Sahidin, I., Rianse, U., Rahim, S., & Nadaoka, K. (2018). Trends in allometric models and aboveground biomass of family Rhizophoraceae mangroves in the Coral Triangle ecoregion, Southeast Sulawesi, Indonesia. Journal of Sustainable Forestry, 37(7), 691–711.
  • 25. Kauffman, J. B., & Donato, D. C. (2012). Protocols for the measurement, monitoring and reporting of structure, biomass and carbon stocks in mangrove forests 86. Cifor Bogor, Indonesia.
  • 26. Komiyama, A., Poungparn, S., & Kato, S. (2005). Common allometric equations for estimating the tree weight of mangroves. Journal of Tropical Ecology, 21(4), 471–477.
  • 27. Kusuma, A. H., Hutahaean, A. A., Siregar, A. M., Faisal, A. R., Yanvika, H., & Marpaung, E. M. (2023). Carbon uptake and stock in mangrove vegetation of Ketapang Beach, Batu Menyan Village, Teluk Pandan District, Pesawaran Regency, Lampung Province. Unram Fisheries Journal, 13(3), 935–946.
  • 28. Mandari, D. Z., Gunawan, H., & Isda, M. N. (2016). Estimation of Biomass and Carbon Stored in Mangrove Forest Ecosystems in Bandar Bakau Dumai Area. https://api.semanticscholar.org/ CorpusID:131719551
  • 29. Rahman, R., Effendi, H., & Rusmana, I. (2017). Estimation of carbon stock and sequestration in mangroves in Tallo River, Makassar. Journal of Forestry Science, 11(1), 19. https://doi.org/10.22146/jik.24867
  • 30. Rifandi, R. A. (2020). Estimation of carbon stocks and carbon sequestration in mangrove tree stands in Trimulyo Mangrove Forest, Genuk, Semarang. Jounal of Enviromental Science Sustainable, 1(2), 11–18.
  • 31. Romañach, S. S., DeAngelis, D. L., Koh, H. L., Li, Y., Teh, S. Y., Raja Barizan, R. S., & Zhai, L. (2018). Conservation and restoration of mangroves: Global status, perspectives, and prognosis. Ocean & Coastal Management, 154, 72–82. https://doi. org/10.1016/j.ocecoaman.2018.01.009
  • 32. Rossler, W., San Lim, H., Jashimuddin, M., Subhan Mollick, A., Ke, G.-N., Ketut Aria Pria Utama, I., Wagner, T., Sweetman, A. K., Arshad, A., Kumar Nath, T., Yi Neoh, J., Surya Muchamad, L., & Santoso Abi Suroso, D. (2022). Influence of mangrove forests on subjective and psychological wellbeing of coastal communities: Case studies in Malaysia and Indonesia.
  • 33. Sribianti, I. (2021). Economic valuation of mangrove ecosystem environmental services based on green economy. IOP Conference Series: Earth and Environmental Science, 886(1), 012116.
  • 34. Sribianti, I., Daud, M., Aziz Abdullah, A., & Sardiawan, A. (2022). Estimation of biomass, carbon reserves, O2 production and environmental services value of CO2 sequestration of forest stands in Abdul Latief Grand Forest Park. Journal of Forests and Society, 14(1), 12–26. https://doi. org/10.24259/jhm.v14i1.18022
  • 35. Sutaryo, D. (2009). Biomass accounting An introduction to carbon studies and carbon trading. Wetlands International Indonesia Program. Bogor, 13.
  • 36. Tang, J., Ye, S., Chen, X., Yang, H., Sun, X., Wang, F., Wen, Q., & Chen, S. (2018). Coastal blue carbon: Concept, study method, and the application to ecological restoration. Science China Earth Sciences, 61(6), 637–646. https://doi.org/10.1007/ s11430-017-9181-x
  • 37. Vanderklift, M. A., Gorman, D., & Steven, A. D. L. (2019). Blue carbon in the Indian Ocean: a review and research agenda. Journal of the Indian Ocean Region, 15(2), 129–138. https://doi.org/10.1080/19 480881.2019.1625209
  • 38. Yaqin, N., Rizkiyah, M., Putra, E. A., Suryanti, S., & Febrianto, S. (2022). Estimation of carbon sequestration in mangrove sites in tugurejo village, Semarang. Marina Oceanography Bulletin, 11(1), 19–29.
  • 39. Yu, C., Feng, J., Yue, W., Wei, L., Ma, Y., Huang, X., Ling, J., & Dong, J. (2023). The role of blue carbon stocks becomes more labile with mangrove development. Ecological Indicators, 154. https:// doi.org/10.1016/j.ecolind.2023.110634
  • 40. Zhang, Y., Zhao, M., Cui, Q., Fan, W., Qi, J., Chen, Y., Zhang, Y., Gao, K., Fan, J., Wang, G., Yan, C., Lu, H., Luo, Y., Zhang, Z., Zheng, Q., Xiao, W., & Jiao, N. (2017). Processes of coastal ecosystem carbon sequestration and approaches for increasing carbon sink. Science China Earth Sciences, 60(5), 809–820. https://doi.org/10.1007/s11430-016-9010-9
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-032ebc38-7792-4aee-a05b-d939864d7a47
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.