Analisis Emisi Karbon di Kesatuan Hidrologi Gambut Sungai Mendahara - Sungai Batanghari
Abstract
Global Warming Due to Carbon Emissions is a threat to life on earth. According to the World Meteorological Organization, the earth's temperature rose by 1.06 °C to 1.26 °C above pre-industrial levels (1850–1900). According to the IPCC report (2021), the impacts of climate change will reach all regions in the world without exception. Indonesia's commitment to reduce carbon emissions by 29% with its efforts and 41% with international cooperation until 2030. Analysis of land cover uses the Unsupervised Classification, the method for calculating carbon emissions above the surface uses the IPCC method, namely the stock differential and the method for analyzing emissions of peat decomposition uses the Hooijer formula et al. (2006, 2010) with estimated water level from the TMAT BRGM data regression equation with NDWI Landsat 8 values then total carbon emissions by adding emissions from above and below the surface. Based on the results of the analysis of land cover at the research location, the area was dominated by plantations at 37.8%, while the forest area was only 7.9%. Ground carbon emissions average 0.23 Mt CO2-eq per year, below Ground carbon emissions are 9.94 Mt CO2-eq and total carbon emissions are 10.17 Mt CO2-eq with total emissions from 2013 - 2022 of 91.6 Mt CO2-eq Carbon emissions in KHG Sungai Mendahara - Batanghari graphically fluctuate, there is an increase and decrease but tends to increase until 2022 this is due to land conversion and massive land clearing in forest areas and the biggest contributor to carbon emissions from decomposition peatlands.
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Agus F, Handayani E, Noordwijk VM, Idrim K, Sabiham S. 2010. Root respiration interferes with peat CO2 emission measurement. 19th World Congress of Soil Science, Soil Solution for a Changing World. 1-6 August 2010. Brisbane. AustraliaBaker
Inas F dan Ibrahim, Saliza. (14 – 15 Desember 2009). Reducing of Nickel from Aqueous Solution Using Palm Activated Carbon, dipresentasikan pada 1st Technical Postgraduate Conference, Kuala Lumpur.
Hooijer A, Silvius M, Wösten H, Page S. 2006. PEAT CO2, Assessment of CO2 Emission from drained peatlands in SE Asia. Wetland International and Delft Hydraulics report Q3943.
Hooijer A, Page S, Canadell JG, Silvius M, Kwadijk J, Wosten H, Jauhiainen J. 2010. Current and future CO2 emissions from drained peatlands in Southeast Asia. Biogeosciences, 7, 1505–1514.
IPCC (Intergovermental Panel on Climate Change). 2006. IPCC Guideline for National Green House Gass Inventories. Volume 4 Agriculture, Forestry and Other Land Use. National Green House Gass Inventories Programme. IGES. Japan
Tosiani, A. 2015. Buku kegiatan serapan dan emisi karbon. Serapan Dan Emisi Karbon, 1–41.
USGS. 2021, Landsat Standard data Product, diakses melalui website http://Landsat.usgs.gov//Landsat_level_1_standard_data_products.php
Zarco-Tejada, P.J., Rueda, C.A., & Ustin, S.L, 2003. Water Content Estimation in Vegetation with MODIS Reflectance Data and Model Inversion Methods.Remote Sensing of Environment, 85(1), 109–124
DOI: http://dx.doi.org/10.33087/jiubj.v24i1.5056
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