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Future availability of natural gas: Can it support sustainable energy transition?

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  • Ediger, Volkan Ş.
  • Berk, Istemi

Abstract

Mitigating the adverse effects of global climate change and limiting global warming to 1.5 °C requires a complete transition from fossil fuels to renewable energy sources. Despite ongoing global efforts, particularly since the Paris Agreement in 2015, renewables are expected to not fully meet global energy demand by 2050. In this context, natural gas is expected to be a complementary fuel to support renewables throughout the transition. This paper assesses whether the future availability of global resources would enable natural gas to support sustainable energy transition. To this end, we first employ R/P ratio and Hubbert curve analyses and then compare our results with the recent natural gas supply/demand forecasts in the literature. Our findings suggest that global natural gas resources, both conventional and unconventional, are enough to meet forecasted global natural gas demand. This requires substantial investment in the natural gas industry, which would further increase greenhouse gas emissions. Therefore, natural gas resource-rich countries and the natural gas industry must adapt their operations to the new global paradigm framed by Paris Agreement and United Nations Sustainable Development Goals.

Suggested Citation

  • Ediger, Volkan Ş. & Berk, Istemi, 2023. "Future availability of natural gas: Can it support sustainable energy transition?," Resources Policy, Elsevier, vol. 85(PA).
  • Handle: RePEc:eee:jrpoli:v:85:y:2023:i:pa:s0301420723005354
    DOI: 10.1016/j.resourpol.2023.103824
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    as
    1. Rawat, Atul & Garg, Chandra Prakash, 2021. "Assessment of the barriers of natural gas market development and implementation: A case of developing country," Energy Policy, Elsevier, vol. 152(C).
    2. Lu, Weiwei & Su, Meirong & Fath, Brian D. & Zhang, Mingqi & Hao, Yan, 2016. "A systematic method of evaluation of the Chinese natural gas supply security," Applied Energy, Elsevier, vol. 165(C), pages 858-867.
    3. Siddiqi, Toufiq A., 2002. "Natural gas reserves/total energy consumption: A useful new ratio for addressing global climate change concerns," Energy Policy, Elsevier, vol. 30(13), pages 1145-1149, October.
    4. Paltsev, Sergey & Jacoby, Henry D. & Reilly, John M. & Ejaz, Qudsia J. & Morris, Jennifer & O'Sullivan, Francis & Rausch, Sebastian & Winchester, Niven & Kragha, Oghenerume, 2011. "The future of U.S. natural gas production, use, and trade," Energy Policy, Elsevier, vol. 39(9), pages 5309-5321, September.
    5. Ferdinand E. Banks, 1987. "The Reserve-Production Ratio," The Energy Journal, International Association for Energy Economics, vol. 0(Number 2), pages 147-151.
    6. Woollacott, Jared, 2020. "A bridge too far? The role of natural gas electricity generation in US climate policy," Energy Policy, Elsevier, vol. 147(C).
    7. Heydarzadeh, Zahra & Mac Kinnon, Michael & Thai, Clinton & Reed, Jeff & Brouwer, Jack, 2020. "Marginal methane emission estimation from the natural gas system," Applied Energy, Elsevier, vol. 277(C).
    8. Jakobsson, Kristofer & Söderbergh, Bengt & Snowden, Simon & Aleklett, Kjell, 2014. "Bottom-up modeling of oil production: A review of approaches," Energy Policy, Elsevier, vol. 64(C), pages 113-123.
    9. Berk, Istemi & Ediger, Volkan Ş., 2016. "Forecasting the coal production: Hubbert curve application on Turkey's lignite fields," Resources Policy, Elsevier, vol. 50(C), pages 193-203.
    10. Gürsan, C. & de Gooyert, V., 2021. "The systemic impact of a transition fuel: Does natural gas help or hinder the energy transition?," Renewable and Sustainable Energy Reviews, Elsevier, vol. 138(C).
    11. Söderbergh, Bengt & Jakobsson, Kristofer & Aleklett, Kjell, 2010. "European energy security: An analysis of future Russian natural gas production and exports," Energy Policy, Elsevier, vol. 38(12), pages 7827-7843, December.
    12. Kan, S.Y. & Chen, B. & Wu, X.F. & Chen, Z.M. & Chen, G.Q., 2019. "Natural gas overview for world economy: From primary supply to final demand via global supply chains," Energy Policy, Elsevier, vol. 124(C), pages 215-225.
    13. Robert J. Brecha, 2013. "Ten Reasons to Take Peak Oil Seriously," Sustainability, MDPI, vol. 5(2), pages 1-31, February.
    14. Esen, Vedat & Oral, Bulent, 2016. "Natural gas reserve/production ratio in Russia, Iran, Qatar and Turkmenistan: A political and economic perspective," Energy Policy, Elsevier, vol. 93(C), pages 101-109.
    15. Megan K. Seibert & William E. Rees, 2021. "Through the Eye of a Needle: An Eco-Heterodox Perspective on the Renewable Energy Transition," Energies, MDPI, vol. 14(15), pages 1-19, July.
    16. De Lellis, Marcelo & Reginatto, Romeu & Saraiva, Ramiro & Trofino, Alexandre, 2018. "The Betz limit applied to Airborne Wind Energy," Renewable Energy, Elsevier, vol. 127(C), pages 32-40.
    17. Brecha, Robert J., 2008. "Emission scenarios in the face of fossil-fuel peaking," Energy Policy, Elsevier, vol. 36(9), pages 3492-3504, September.
    18. Svoboda, Radek & Kotik, Vojtech & Platos, Jan, 2021. "Short-term natural gas consumption forecasting from long-term data collection," Energy, Elsevier, vol. 218(C).
    19. Yuehong Lu & Zafar A. Khan & Manuel S. Alvarez-Alvarado & Yang Zhang & Zhijia Huang & Muhammad Imran, 2020. "A Critical Review of Sustainable Energy Policies for the Promotion of Renewable Energy Sources," Sustainability, MDPI, vol. 12(12), pages 1-31, June.
    20. Siemek, Jakub & Nagy, Stanislaw & Rychlicki, Stanislaw, 2003. "Estimation of natural-gas consumption in Poland based on the logistic-curve interpretation," Applied Energy, Elsevier, vol. 75(1-2), pages 1-7, May.
    21. Ugo Bardi & Alessandro Lavacchi, 2009. "A Simple Interpretation of Hubbert’s Model of Resource Exploitation," Energies, MDPI, vol. 2(3), pages 1-16, August.
    22. Uliasz-Misiak, Barbara & Przybycin, Andrzej & Winid, Bogumila, 2014. "Shale and tight gas in Poland—legal and environmental issues," Energy Policy, Elsevier, vol. 65(C), pages 68-77.
    23. Tao, Zaipu & Li, Mingyu, 2007. "What is the limit of Chinese coal supplies--A STELLA model of Hubbert Peak," Energy Policy, Elsevier, vol. 35(6), pages 3145-3154, June.
    24. Steve Pye & Siân Bradley & Nick Hughes & James Price & Daniel Welsby & Paul Ekins, 2020. "An equitable redistribution of unburnable carbon," Nature Communications, Nature, vol. 11(1), pages 1-9, December.
    25. Caterina Lucarelli & Camilla Mazzoli & Michela Rancan & Sabrina Severini, 2020. "Classification of Sustainable Activities: EU Taxonomy and Scientific Literature," Sustainability, MDPI, vol. 12(16), pages 1-25, August.
    26. Lueken, Roger & Klima, Kelly & Griffin, W. Michael & Apt, Jay, 2016. "The climate and health effects of a USA switch from coal to gas electricity generation," Energy, Elsevier, vol. 109(C), pages 1160-1166.
    27. Voudouris, Vlasios & Matsumoto, Ken'ichi & Sedgwick, John & Rigby, Robert & Stasinopoulos, Dimitrios & Jefferson, Michael, 2014. "Exploring the production of natural gas through the lenses of the ACEGES model," Energy Policy, Elsevier, vol. 64(C), pages 124-133.
    28. Edward W. Erickson, 1985. "Prospects for a Tighter World Oil Market," The Energy Journal, International Association for Energy Economics, vol. 0(Number 1), pages 3-8.
    29. Dan Tong & Qiang Zhang & Yixuan Zheng & Ken Caldeira & Christine Shearer & Chaopeng Hong & Yue Qin & Steven J. Davis, 2019. "Committed emissions from existing energy infrastructure jeopardize 1.5 °C climate target," Nature, Nature, vol. 572(7769), pages 373-377, August.
    30. Ediger, Volkan S. & Hosgor, Enes & Surmeli, A. Nesen & Tatlidil, Huseyin, 2007. "Fossil fuel sustainability index: An application of resource management," Energy Policy, Elsevier, vol. 35(5), pages 2969-2977, May.
    31. Jiang, Haibo & Li, Yanru & Cheng, Zhongqing, 2015. "Performances of ideal wind turbine," Renewable Energy, Elsevier, vol. 83(C), pages 658-662.
    32. Guseo, Renato & Mortarino, Cinzia & Darda, Md Abud, 2015. "Homogeneous and heterogeneous diffusion models: Algerian natural gas production," Technological Forecasting and Social Change, Elsevier, vol. 90(PB), pages 366-378.
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