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The Functioning Concept of the Stabilization System of the Power Grids Operation in Terms of Supply Chain Phases in Operations Based on a Hydrogen Energy Buffer

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  • Marcin Rabe
  • Barbara Czerniachowicz

Abstract

Purpose: The aim of the research undertaken in the article is to present the concept of the functioning of the system of stabilization of the operation of power grids in terms of supply chain phases into activities based on the hydrogen energy buffer from the use of hydrogen. Design/Methodology/Approach: There is a research gap in the world literature related to the project of the concept of stabilizing the operation of power grids. This article assumes that the main factor destabilizing the operation of power grids in the long term is the surplus of energy from RES (supply phase). There is no interdisciplinary approach to the presented issues, therefore the common area discussed in the article is of great scientific and application significance. Findings: The current work on hydrogen technologies shows that the use of hydrogen in the economy adjusts the systems to its extraction, production and distribution. In this scope, there must be comprehensive design and management of processes in the phase of supply, production, storage and distribution of hydrogen, in terms of efficiency and maximum support for the achievement of socio-economic goals. Practical Implications: Solving the problem related to the instability of renewable energy sources due to the dependence of the volume of energy produced on uncontrolled factors. In the near future, this problem will only increase due to the increase in the number of producers of electricity from RES and the instability of the operation of power grids. Therefore, it is important to prepare a concept for the operation of the power grid stabilization system in terms of the supply chain phases. Originality/Value: The priority direction of political actions in the field of sustainable development of the energy sector is the course of the energy transformation (decarbonisation) and the flourishing share of renewable energy sources (RES) in the primary energy supply. It is an innovative research area, integrating both theoretical achievements in the field of hydrogen supply chains and the operation and development of power grids.

Suggested Citation

  • Marcin Rabe & Barbara Czerniachowicz, 2022. "The Functioning Concept of the Stabilization System of the Power Grids Operation in Terms of Supply Chain Phases in Operations Based on a Hydrogen Energy Buffer," European Research Studies Journal, European Research Studies Journal, vol. 0(Special A), pages 298-306.
  • Handle: RePEc:ers:journl:v:xxv:y:2022:i:speciala:p:298-306
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    References listed on IDEAS

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    1. 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.
    2. Marzena Frankowska & Marta Mańkowska & Marcin Rabe & Andrzej Rzeczycki & Elżbieta Szaruga, 2022. "Structural Model of Power Grid Stabilization in the Green Hydrogen Supply Chain System—Conceptual Assumptions," Energies, MDPI, vol. 15(2), pages 1-14, January.
    3. Krzysztof Wach & Agnieszka Głodowska & Marek Maciejewski & Marek Sieja, 2021. "Europeanization Processes of the EU Energy Policy in Visegrad Countries in the Years 2005–2018," Energies, MDPI, vol. 14(7), pages 1-23, March.
    4. Hosseini, Seyed Ehsan & Wahid, Mazlan Abdul, 2016. "Hydrogen production from renewable and sustainable energy resources: Promising green energy carrier for clean development," Renewable and Sustainable Energy Reviews, Elsevier, vol. 57(C), pages 850-866.
    5. Marzena Frankowska & Krzysztof Błoński & Marta Mańkowska & Andrzej Rzeczycki, 2022. "Research on the Concept of Hydrogen Supply Chains and Power Grids Powered by Renewable Energy Sources: A Scoping Review with the Use of Text Mining," Energies, MDPI, vol. 15(3), pages 1-26, January.
    6. Reuß, M. & Grube, T. & Robinius, M. & Preuster, P. & Wasserscheid, P. & Stolten, D., 2017. "Seasonal storage and alternative carriers: A flexible hydrogen supply chain model," Applied Energy, Elsevier, vol. 200(C), pages 290-302.
    7. Papadis, Elisa & Tsatsaronis, George, 2020. "Challenges in the decarbonization of the energy sector," Energy, Elsevier, vol. 205(C).
    8. Nikolaidis, Pavlos & Poullikkas, Andreas, 2017. "A comparative overview of hydrogen production processes," Renewable and Sustainable Energy Reviews, Elsevier, vol. 67(C), pages 597-611.
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    More about this item

    Keywords

    Hydrogen; hydrogen energy buffer; renewable energy.;
    All these keywords.

    JEL classification:

    • Q4 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Energy
    • Q2 - Agricultural and Natural Resource Economics; Environmental and Ecological Economics - - Renewable Resources and Conservation
    • L7 - Industrial Organization - - Industry Studies: Primary Products and Construction
    • O13 - Economic Development, Innovation, Technological Change, and Growth - - Economic Development - - - Agriculture; Natural Resources; Environment; Other Primary Products

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