Cite

1. PwC. (2020). The Dawn of Green Hydrogen. Maintaining the GCC’s Edge in a Decarbonized World. Available at https://www.strategyand.pwc.com/m1/en/reports/2020/the-dawn-of-green-hydrogen/the-dawn-of-green-hydrogen.pdf Search in Google Scholar

2. Kobzars, V., Zemite, L., Jasevics, A., Kleperis, J., Dimanta, I., Knoks, A., & Lesnicenoks, P. (2021). Appropriateness of hydrogen production in low-power hydropower plant. Paper presented at the 2021 IEEE 62nd International Scientific Conference on Power and Electrical Engineering of Riga Technical University, RTUCON 2021 - Proceedings, doi:10.1109/RTUCON53541.2021.9711687 Open DOISearch in Google Scholar

3. Kleperis, J., Boss, D., Mezulis, A., Zemite, L., Lesnicenoks, P., Knoks, A., & Dimanta, I. (2021). Analysis of the Role of the Latvian Natural Gas Network for the Use of Future Energy Systems: Hydrogen from RES. Latvian Journal of Physics and Technical Sciences, 58 (3), 214–226. doi:10.2478/lpts-2021-0027 Open DOISearch in Google Scholar

4. Edwards, P., Kuznetsov, V., & David, B. (2007). Hydrogen Energy. Philosophical Transactions. Series A, Mathematical, Physical, and Engineering Sciences, 365. DOI: 10.1098/rsta.2006.196517272235 Open DOISearch in Google Scholar

5. National Grid. (n.d.). Energy Explained. Available at https://www.nationalgrid.com/stories/energy-explained/hydrogen-colour-spectrum Search in Google Scholar

6. Sadik-Zada, E.R. (2021). Political Economy of Green Hydrogen Rollout: A Global Perspective. Sustainability, 13, 13464. https://doi.org/10.3390/su132313464 Search in Google Scholar

7. Colombia, Sipa. (2021.) Hydrogen Fact Sheet: Production of Low-Carbon Hydrogen. Available at https://www.energypolicy.columbia.edu/sites/default/files/pictures/HydrogenProduction_CGEP_FactSheet_052621.pdf Search in Google Scholar

8. Nnabuife, S.G., Ugbeh-Johnson, J., Evaristus Okeke, N., & Ogbonnaya, C. (2022). Present and Projected Developments in Hydrogen Production: A Technological Review. Carbon Capture Science & Technology, 3. https://doi.org/10.1016/j.ccst.2022.100042 Search in Google Scholar

9. IEA. (2021). Global Hydrogen Review 2021. Available at https://www.iea.org/reports/global-hydrogen-review-2021/executive-summary Search in Google Scholar

10. COM (2020) 301 final. Communication from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions. A Hydrogen Strategy for a Climate-Neutral Europe. Available at https://ec.europa.eu/energy/sites/ener/files/hydrogen_strategy.pdf Search in Google Scholar

11. HM Government. (2021). UK Hydrogen Strategy. Available at https://assets.publishing.service.gov.uk/government/uploads/system/uploads/attachment_data/file/1011283/UK-Hydrogen-Strategy_web.pdf Search in Google Scholar

12. UNECE. (2021). Technology Brief. Hydrogen. Available at https://unece.org/sites/default/files/2021-10/Hydrogen%20brief_EN_final_0.pdf Search in Google Scholar

13. Gasforclimate. (2020). European Hydrogen Backbone. How a Dedicated Hydrogen Infrastructure can be Created. Available at https://gasforclimate2050.eu/wp-content/uploads/2020/07/2020_European-Hydrogen-Backbone_Report.pdf Search in Google Scholar

14. US. Department of Energy. (2020). Department of Energy Hydrogen Program Plan. Available at https://www.hydrogen.energy.gov/pdfs/hydrogen-program-plan-2020.pdf Search in Google Scholar

15. CSIS. (2022). China Unveils its First Long-Term Hydrogen Plan. Available at https://www.csis.org/analysis/china-unveils-its-first-long-term-hydrogen-plan Search in Google Scholar

16. COAG Energy Council. (2019). Australia’s National Hydrogen Strategy. Available at https://www.industry.gov.au/sites/default/files/2019-11/australias-national-hydrogen-strategy.pdf Search in Google Scholar

17. Australian Government. (2022). Growing Australia’s Hydrogen Industry. Available at https://www.industry.gov.au/policies-and-initiatives/growing-australias-hydrogen-industry Search in Google Scholar

18. Li, J-Q., Li, J-C., Park, K., Jang, S-J., & Kwon, J-T. (2021). An Analysis on the Compressed Hydrogen Storage System for the Fast-Filling Process of Hydrogen Gas at the Pressure of 82 MPa. Energies, 14 (9): 2635. https://doi.org/10.3390/en14092635 Search in Google Scholar

19. Preuster, P., Papp, C., & Wasserscheid, P. (2016). Liquid Organic Hydrogen Carriers (LOHCs): Toward a Hydrogen-free Hydrogen Economy. Accounts of Chemical Research, 50 (1). doi: 10.1021/acs.accounts.6b00474.28004916 Open DOISearch in Google Scholar

20. US. Department of Energy. (n.d.). Hydrogen Benefits and Considerations. Available at https://afdc.energy.gov/fuels/hydrogen_benefits.html Search in Google Scholar

21. Scientific American. (2018). CO2 Emissions Reached an All-Time High in 2018. Available at https://www.scientificamerican.com/article/co2-emissions-reached-an-all-time-high-in-2018/ Search in Google Scholar

22. Tholen, L., Leipprand, A., Kiyar, D., Maier, S., Küper, M., Adisorn, T., & Fischer, A. (2021). The Green Hydrogen Puzzle: Towards a German Policy Framework for Industry. Sustainability, 13, 12626. https://doi.org/10.3390/su132212626 Search in Google Scholar

23. Stamatakis E., Perwög E., Garyfallos E., Millán M.S., Zoulias E., & Chalkiadakis N. (2022). Hydrogen in Grid Balancing: The European Market Potential for Pressurized Alkaline Electrolyzers. Energies, 15 (2): 637. https://doi.org/10.3390/en15020637 Search in Google Scholar

24. Espegren, K., Damman, S., Pisciella, P., Graabak, I., & Tomasgard, A. (2021). The Role of Hydrogen in the Transition from a Petroleum Economy to a Low-Carbon Society. International Journal of Hydrogen Energy, 46 (45). https://doi.org/10.1016/j.ijhydene.2021.04.143. Search in Google Scholar

25. Clean Energy Partnership. (n.d.). Background Info FCH Regions’ Initiative. Available at https://www.clean-hydrogen.europa.eu/get-involved/regions-hub/background-info-fch-regions-initiative_en Search in Google Scholar

26. Jaribion, A., Khajavi, S., Ohman, M., Knapen, A., & Holmstrom, J. (2020). A digital twin for safety and risk management: A prototype for a hydrogen high-pressure vessel. In 15th International Conference on Design Science Research in Information Systems and Technology, (pp. 369–375), 2–4 December 2020. Kristiansand, Norway. doi: 10.1007/978-3-030-64823-7_34 Open DOISearch in Google Scholar

27. Savickis, J., Zemite, L., Zeltins, N., Bode, I., Jansons, L., Dzelzitis, E., & Ansone, A. (2020). The Biomethane Injection into the Natural Gas Networks: The EU’s Gas Synergy Path. Latvian Journal of Physics and Technical Sciences, 57 (4), 34–50. doi: 10.2478/lpts-2020-0020 Open DOISearch in Google Scholar

28. ADBA. (2021). Biomethane & Hydrogen. Two Green Gases, One Future. Biogas Insights 2. Available at https://www.greengastrading.co.uk/wp-content/uploads/2021/07/ADBA-Hydrogen-and-biomethane-Decarbonising-gas.pdf Search in Google Scholar

29. World Nuclear Association. (2020). Electricity Transmission Systems. Available at https://world-nuclear.org/information-library/current-and-future-generation/electricity-transmission-grids.aspx Search in Google Scholar

30. Bolobov, V.I., Latipov, I.U., Popov, G.G., Buslaev, G.V., & Martynenko, Y.V. (2021). Estimation of the Influence of Compressed Hydrogen on the Mechanical Properties of Pipeline Steels. Energies, 14.10.3390/en14196085 Search in Google Scholar

31. Mitsubishi Power. (n.d.). MHPS Successfully Tests Large-Scale High-Efficiency Gas Turbine Fuelled by 30 % Hydrogen Mix. Available at https://power.mhi.com/news/20180119.html Search in Google Scholar

32. EC. (2021). Hydrogen Valleys. Insights into the Emerging Hydrogen Economies around the World. doi: 10.2843/133091 Open DOISearch in Google Scholar

33. Air Products. (2012). Air Products’ U.S. Gulf Coast Hydrogen Network Enhanced Reliability from the World’s Largest Hydrogen Pipeline. Available at https://microsites.airproducts.com/h2-pipeline/pdf/air-products-us-gulf-coast-hydrogen-network-datasheet.pdf Search in Google Scholar

34. Re-Stream. (2021). Study on the Reuse of Oil and Gas Infrastructure for Hydrogen and CCS in Europe. Available at https://www.concawe.eu/wp-content/uploads/Re-stream-final-report_Oct2021.pdf Search in Google Scholar

35. UNECE. (2020). Report of the Group of Experts on Gas. Available at https://unece.org/sed/documents/2022/04/reports/report-group-experts-gas Search in Google Scholar

36. ENTSOG. (2021). ENTSOG Summary of Proposals for Addressing Hydrogen Regulation in the Revision of the 3rd Energy Gas Package. Available at https://www.entsog.eu/sites/default/files/2021-06/202106%20-%20Position%20-%20ENTSOG%20-%20Open%20PC%20Hydrogen%20Gas%20Market%20Decarbonisation%20Package.pdf Search in Google Scholar

37. Van Gend, C. (2021). Hydrogen Economy: Opportunities and Risks in the Energy Transition. Available at https://www.propertycasualty360.com/2021/05/12/hydrogen-economy-opportunities-and-risks-in-the-energy-transition/ Search in Google Scholar

38. HyDeploy. (n.d.). Hydrogen is Invisible and does not Smell. How will we Know if there is a Leak? Available at https://hydeploy.co.uk/faqs/hydrogen-invisible-not-smell-will-know-leak/ Search in Google Scholar

39. EDF. (2022). For Hydrogen to be a Climate Solution, Leaks must be Tackled. Available at https://www.edf.org/blog/2022/03/07/hydrogen-climate-solution-leaks-must-betackled Search in Google Scholar

40. Allianz. (2022). Fire, Natural Catastrophes and Faulty Workmanship Top Causes of Insurance Claims for Business: Allianz. Available at https://www.agcs.allianz.com/news-and-insights/news/claims-review-2022.html Search in Google Scholar

41. Sandeep Kumar, D., & Manish, V. (2019). Effect of Hydrogen in Advanced High Strength Steel Materials. International Journal of Hydrogen Energy, 44 (51). doi: 10.1016/j.ijhydene.2019.08.149 Open DOISearch in Google Scholar

42. EHB. (2022). European Hydrogen Backbone. European Hydrogen Infrastructure Vision Covering 28 Countries. Available at https://ehb.eu/files/downloads/ehb-report-220428-17h00-interactive-1.pdf Search in Google Scholar

43. ACER. (2021). Possible Regulation of Hydrogen Networks. Available at https://www.acer.europa.eu/en/Gas/Documents/ACER%20H2%20Paper_%20vFinal_clean.pdf Search in Google Scholar

44. EP. (2022). EU Directive on Gas and Hydrogen Networks. Available at https://www.europarl.europa.eu/RegData/etudes/BRIE/2022/729303/EPRS_BRI(2022)729303_EN.pdf Search in Google Scholar

45. Directive 2009/73/EC of the European Parliament and of the Council of 13 July 2009 concerning common rules for the internal market in natural gas and repealing Directive 2003/55/EC. Available at https://eur-lex.europa.eu/legal-content/EN/ALL/?uri=celex%3A32009L0073 Search in Google Scholar

46. EP. (2022). EU Directive on Gas and Hydrogen Networks. Available at https://www.europarl.europa.eu/thinktank/en/document/EPRS_BRI(2022)729303 Search in Google Scholar

47. Sandia National Laboratories. (2019). Hydrogen Quantitative Risk Assessment. Available at https://www.hydrogen.energy.gov/pdfs/review19/scs011_muna_2019_o.pdf Search in Google Scholar

48. ToolBox. (n.d.). Fuels—Higher and Lower Calorific Values. Available at https://www.engineeringtoolbox.com/fuels-higher-calorific-values-d_169.html Search in Google Scholar

49. Savickis, J., Zemite, L., Bode, I., & Jansons, L. (2020). Natural Gas Metering and its Accuracy in the Smart Gas Supply Systems. Latvian Journal of Physics and Technical Sciences, 57 (5). https://doi.org/10.2478/lpts-2020-0026 Search in Google Scholar

50. Le Duigou, A., Bader, A–G., Lanoix, J.–C., & Nadau, L. (2017). Relevance and Costs of Large-Scale Underground Hydrogen Storage in France. International Journal of Hydrogen Energy, 42 (36). https://doi.org/10.1016/j.ijhydene.2017.06.239. Search in Google Scholar

51. Storengy. (2021). Large Scale Hydrogen Storage – the Underground Perspective. Available at https://www.storengy.de/en/medias/news/large-scale-hydrogen-storage-underground-perspective Search in Google Scholar

52. Dopffel, N., Jansen, S., & Gerritse, J. (2021). Microbial Side Effects of Underground Hydrogen Storage – Knowledge Gaps, Risks and Opportunities for Successful Implementation. International Journal of Hydrogen Energy, 46 (12). https://doi.org/10.1016/j.ijhydene.2020.12.058. Search in Google Scholar

53. EIA. (2015). The Basics of Underground Natural Gas Storage. Available at https://www.eia.gov/naturalgas/storage/basics/ Search in Google Scholar

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