Manfaat Ekonomi Dan Kredit Karbon Pabrik Gula Sistem Tertutup Berbasis LCA
Main Article Content
Abstract
Sugar factories (PG) can contribute to efforts to reduce greenhouse gas (GHG) emissions in accordance with the obligations of the Kyoto Protocol and the Paris Agreement. Closed PG systems have the potential to minimise waste and reuse production residues, making them a sustainable solution for reducing environmental impacts and increasing economic benefits. This study models the yield and economic benefits of closed system PG using Life Cycle Assessment (LCA). The aim of this research is to analyse the economic benefits and carbon credits of closed-system sugar production using LCA. The research methodology is descriptive, involving the calculation of carbon credits based on the Kyoto and Paris Agreements. The LCA method is used to assess carbon emissions. The use of bagasse as cogeneration fuel produces an excess of 5 GWh/milling season of electricity, which can meet the electricity needs of 6944 households during the milling season or 3472 households per year. PG X produces 667.5 million liters of clean water during the milling season, which can meet the drinking water needs of 61,805 people throughout the year.
Article Details

This work is licensed under a Creative Commons Attribution 4.0 International License.
References
Gunawan, Rahmawati, and R. Syahputra, “Swa-Sembada Energi dan Air Proses Produksi Gula Tebu,” Lhokseumawe, 2020.
Hermawan, Y. Syahputri, A. S. Aryani, and S. Hasibuan, “Desain Dan Aplikasi Model Pendugaan Beban Lingkungan Industri Gula Kristal Putih,” Semin. Nas. Inform., vol. 2020, no. Semnasif, pp. 73–85, 2020.
C. Nissen, J. Cludius, S. Gores, and H. Hauke, “Trends and projections in the EU ETS in 2022; The EU Emissions Trading System in numbers,” 2022. [Online]. Available: https://www.eionet.europa.eu/etcs/etc-cm/products/etc-cm-report-2022-05
A. Anukam, S. Mamphweli, P. Reddy, E. Meyer, and O. Okoh, “Pre-processing of sugarcane bagasse for gasification in a downdraft biomass gasifier system: A comprehensive review,” Renew. Sustain. Energy Rev., vol. 66, pp. 775–801, 2016, doi: 10.1016/j.rser.2016.08.046.
C. Ramstein, R. Goyal, S. Gray, and A. C. Kallhauge., State and Trends of Carbon Pricing 2018, no. May. 2016. doi: 10.1596/978-1-4648-1001-5.
Gunawan, Rahmawati, D. Haryani, and Kardiyono, “Implementation of life cycle assessment (LCA) in cane sugar,” 2ND Natl. Conf. Math. Educ. 2021 Math. Proof as a Tool Learn. Math., vol. 2811, no. August 2011, p. 100006, 2023, doi: 10.1063/5.0122227.
M. M. Haque, J. C. Biswas, M. Maniruzzaman, M. B. Hossain, and M. R. Islam, “Water management and soil amendment for reducing emission factor and global warming potential but improving rice yield,” Paddy Water Environ., vol. 19, no. 3, pp. 515–527, 2021, doi: 10.1007/s10333-021-00851-w.
Gunawan, T. Bantacut, M. Romli, and E. Noor, “Life Cycle Assessment of Cane-sugar in Indonesian Sugar Mill: Energy Use and GHG Emissions,” IOP Conf. Ser. Mater. Sci. Eng., vol. 536, no. 1, 2019, doi: 10.1088/1757-899X/536/1/012059.
E. Elfiano, P. Subekti, and A. Sadil, “Analisa Proksimat dan Nilai Kalor pada Briket Bioarang Limbah Ampas Tebu dan Arang Kayu,” J. APTEK, vol. 6, no. 1, pp. 57–64, 2014.
W. Gunawan and B. A. Gunawan, “Studi Efisiensi Boiler Terhadap Nilai Kalor Batubara Pada Boiler Jenis Pulverizer Coal Kapasitas 300 T/H,” J. Intent J. Ind. dan Teknol. Terpadu, vol. 3, no. 2, pp. 122–130, 2020, doi: 10.47080/intent.v3i2.958.
W. B. Putra, N. I. K. Dewi, and T. Busono, “Penyediaan Air Bersih Sistem Kolektif: Analisis Kebutuhan Air Bersih Domestik pada Perumahan Klaster,” J. Arsit. TERRACOTTA, vol. 1, no. 2, pp. 115–123, 2020, doi: 10.26760/terracotta.v1i2.4018.
M. Cames, R. O. Harthan, J. Fussler, M. Lazarus, C. M. Lee, and P. Erickson, How additional is the Clean Development Mechanism? 2016.