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Modeling the Impact of Renewable Energy Technologies on Atmospheric Carbon Dioxide Mitigation

Author

Listed:
  • Maitri Verma

    (Babasaheb Bhimrao Ambedkar University)

  • Alok Kumar Verma

    (Babasaheb Bhimrao Ambedkar University)

Abstract

Energy-related carbon dioxide ( $$\text {CO}_2$$ CO 2 ) emissions have significantly contributed to the increase in atmospheric $$\text {CO}_2$$ CO 2 concentrations. Curbing the carbon dioxide emissions associated with energy generation is crucial for reducing the radiative forcing of carbon dioxide and tackling the climate change issue. The use of renewable energy technologies is one of the most advocated avenues to reduce the carbon footprint of the energy sector. This study presents a mathematical model designed to analyze the influence of renewable energy technologies on the control of atmospheric $$\text {CO}_2$$ CO 2 concentrations. The proposed model consists of a set of nonlinear differential equations that describe the dynamic interplay among the human population, carbon dioxide level, energy use, and renewable energy technologies. An extensive mathematical analysis of the model is presented to delve into the long-term impact of renewable energy technologies on the control of atmospheric $$\text {CO}_2$$ CO 2 levels. The model’s analysis reveals that increasing the adoption rate of renewable energy technologies and improving their efficiency in reducing carbon dioxide emissions contribute to a reduction in the equilibrium $$\text {CO}_2$$ CO 2 levels in Earth’s atmosphere. One of the primary challenges to the widespread implementation of renewable energy technologies is the associated implementation costs. This study identifies optimal control strategies for lowering $$\text {CO}_2$$ CO 2 levels while simultaneously minimizing the expenses linked to the deployment of renewable energy technologies by employing optimal control theory. Furthermore, sensitivity analysis is conducted to illustrate how changes in key parameters affect the system’s dynamics. Numerical simulations confirm the validity of the theoretical conclusions.

Suggested Citation

  • Maitri Verma & Alok Kumar Verma, 2024. "Modeling the Impact of Renewable Energy Technologies on Atmospheric Carbon Dioxide Mitigation," Journal of Optimization Theory and Applications, Springer, vol. 203(1), pages 1027-1053, October.
  • Handle: RePEc:spr:joptap:v:203:y:2024:i:1:d:10.1007_s10957-024-02542-y
    DOI: 10.1007/s10957-024-02542-y
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    References listed on IDEAS

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    1. El-Fadel, M. & Chedid, R. & Zeinati, M. & Hmaidan, W., 2003. "Mitigating energy-related GHG emissions through renewable energy," Renewable Energy, Elsevier, vol. 28(8), pages 1257-1276.
    2. Lonngren, Karl E. & Bai, Er-Wei, 2008. "On the global warming problem due to carbon dioxide," Energy Policy, Elsevier, vol. 36(4), pages 1567-1568, April.
    3. Allen,Robert C., 2009. "The British Industrial Revolution in Global Perspective," Cambridge Books, Cambridge University Press, number 9780521868273, November.
    4. John P DeLong & Oskar Burger, 2015. "Socio-Economic Instability and the Scaling of Energy Use with Population Size," PLOS ONE, Public Library of Science, vol. 10(6), pages 1-12, June.
    5. Hussain, Akhtar & Arif, Syed Muhammad & Aslam, Muhammad, 2017. "Emerging renewable and sustainable energy technologies: State of the art," Renewable and Sustainable Energy Reviews, Elsevier, vol. 71(C), pages 12-28.
    6. Caetano, Marco Antonio Leonel & Gherardi, Douglas Francisco Marcolino & Yoneyama, Takashi, 2011. "An optimized policy for the reduction of CO2 emission in the Brazilian Legal Amazon," Ecological Modelling, Elsevier, vol. 222(15), pages 2835-2840.
    7. David I. Stern and Astrid Kander, 2012. "The Role of Energy in the Industrial Revolution and Modern Economic Growth," The Energy Journal, International Association for Energy Economics, vol. 0(Number 3).
    8. Abolhosseini, Shahrouz & Heshmati, Almas & Altmann, Jörn, 2014. "The Effect of Renewable Energy Development on Carbon Emission Reduction: An Empirical Analysis for the EU-15 Countries," IZA Discussion Papers 7989, Institute of Labor Economics (IZA).
    9. Maitri Verma & Alok Kumar Verma & A. K. Misra, 2021. "Mathematical modeling and optimal control of carbon dioxide emissions from energy sector," Environment, Development and Sustainability: A Multidisciplinary Approach to the Theory and Practice of Sustainable Development, Springer, vol. 23(9), pages 13919-13944, September.
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