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Projection of Coal-Fired Power Plant (CFPP) Towards Net Zero Emission 2060 in Indonesia

Author

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  • Dessy Natalia

    (The Republic of Indonesia Defense University, Indonesia)

  • Donny Yoesgiantoro

    (The Republic of Indonesia Defense University, Indonesia)

  • Filda Citra Yusgiantoro

    (The Republic of Indonesia Defense University, Indonesia)

Abstract

Electricity is a strategic commodity in the country and the supply of electricity is one of the factors of national energy security. The supply of electricity is carried out with various sources, fossil energy and renewable energy sources. Global politics has focused on sustainability schemes so environmental issues have become a hot issue. The environmental issue has created a long-term target, namely Net Zero Emission 2060 and has led to the need for an energy transition that was formerly oriented to fossil energy to new and renewable energy (NRE). Coal-Fired Power Plants (CFPP) contribute emissions that are not environmentally friendly so they are not suitable for this purpose. Retirement of CFPP with 2 scenarios: 1) innovation in storage technology that is more economical to replace CFPP with NRE generators, 2) innovation in Carbon Capture, Usage, and Storage (CCUS) technology. The transition in the energy sector does not only affect technology but also has impacts on other sectors. Economic and social challenges arise along with the energy transition. This paper uses a qualitative method with literature studies.

Suggested Citation

  • Dessy Natalia & Donny Yoesgiantoro & Filda Citra Yusgiantoro, 2022. "Projection of Coal-Fired Power Plant (CFPP) Towards Net Zero Emission 2060 in Indonesia," International Journal of Research and Innovation in Social Science, International Journal of Research and Innovation in Social Science (IJRISS), vol. 6(5), pages 465-471, May.
  • Handle: RePEc:bcp:journl:v:6:y:2022:i:5:p:465-471
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    References listed on IDEAS

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    1. Zhang, Shaohui & Worrell, Ernst & Crijns-Graus, Wina, 2015. "Evaluating co-benefits of energy efficiency and air pollution abatement in China’s cement industry," Applied Energy, Elsevier, vol. 147(C), pages 192-213.
    2. Sadhukhan, Jhuma, 2022. "Net zero electricity systems in global economies by life cycle assessment (LCA) considering ecosystem, health, monetization, and soil CO2 sequestration impacts," Renewable Energy, Elsevier, vol. 184(C), pages 960-974.
    3. Harriet Thew, 2018. "Youth participation and agency in the United Nations Framework Convention on Climate Change," International Environmental Agreements: Politics, Law and Economics, Springer, vol. 18(3), pages 369-389, June.
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