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Modification of the cascade methane liquefaction process to improve the efficiency of the system

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In recent years, the dynamic development of the LNG industry has been observed. This is largely due to the transition of many countries from coal-based energy to greener energy. Natural gas is regarded as an intermediate fuel. Natural gas can be transported by pipeline, but in many cases it is more economical to transport it in a liquefied form. The liquefaction process is very energy-consuming, which is why many researchers are focused on optimizing this process. This work is an attempt to optimize the operation of the basic cascade natural gas liquefaction system. The proposed modifications contribute to a significant reduction in the costs of the liquefaction process.
Rocznik
Tom
Strony
43--48
Opis fizyczny
Bibliogr. 17 poz., rys.
Twórcy
autor
  • Faculty of Power and Aeronautical Engineering, Warsaw University of Technology, Warsaw, Poland
  • Faculty of Power and Aeronautical Engineering, Warsaw University of Technology, Warsaw, Poland
Bibliografia
  • 1. Agarwal, R. et al. LNG Regasification Terminals: The Role of Geography and Meteorology on Technology Choices. Energies 10. ISSN: 1996-1073 (2017).
  • 2. Baryłka, A. The impact of fire on changing the strngth of the underground shelter structure. Rynek Energii 146, 71–75 (1 2020).
  • 3. Cardella, U., Decker, L., Sundberg, J. & Klein, H. Process optimization for large-scale hydrogen liquefaction. International Journal of Hydrogen Energy 42, 12339–12354. ISSN: 0360-3199 (2017).
  • 4. Chevron Oil Company, 2020 World LNG Report in. 27th World Gas Conference Edition (2020).
  • 5. Ding, H., Sun, H. & He, M. Optimisation of expansion liquefaction processes using mixed refrigerant N2–CH4. Applied Thermal Engineering 93, 1053–1060. ISSN: 1359-4311 (2016).
  • 6. Giametta, R. E. H. Integration of LNG Regasification and Air Separation Units (NTNU, 2017).
  • 7. Guide for building and classing offshore LNG terminals (American Bureau of Shipping ABS Plaza 16855 Northchase Drive Houston, TX 77060 USA, 2004).
  • 8. He, T., Karimi, I. A. & Ju, Y. Review on the design and optimization of natural gas liquefaction processes for onshore and offshore applications 89–114 (2018).
  • 9. Leffler, W. Natural Gas Liquids: a nontechnical guide ISBN: 9781593703240 (2014).
  • 10. Martin, P.-Y., Pigourier, J. & Boutelant, P. Liquefin: an innovative process to reduce lng costs in 22nd World Gas Conference (Tokyo, Japan, 2003).
  • 11. Mokarizadeh Haghighi Shirazi, M. & Mowla, D. Energy optimization for liquefaction process of natural gas in peak shaving plant. Energy 35, 2878–2885. ISSN: 0360-5442. https://www.sciencedirect.com/science/article/pii/S0360544210001374 (2010).
  • 12. Mokhatab, S., Mak, J., Valappil, J. & Wood, D. Handbook of Liquefied Natural Gas ISBN: 978-0-12-404585-9 (Elsevier Inc., 2014).
  • 13. Molenda, J. Gaz ziemny. Paliwo i surowiec (Wydawnictwa Naukowo Techniczne, 1996).
  • 14. Owczarek, M., Owczarek, S., Baryłka, A. & Grzebielec, A. Measurement Method of Thermal Diffusivity of the Building Wall for Summer and Winter Seasons in Poland. Energies 14. ISSN: 1996-1073 (2021).
  • 15. Quirijns, S. LNG Regasification Terminals, A literature study into the world of LNG. A technical feasibility study for constructing a sustainable LNG regasification terminal in Yuzhny, Ukraine (Delft University of Technology, 2015).
  • 16. Steuer, C. Outlook for Competitive LNG Supply ISBN: 978-1-78467-131-0 (Oxford Institute for Energy Studies, 2019).
  • 17. World Natural Gas Statistics - Worldometer https://www.worldometers.info/gas/ (2021).
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-56df03b7-b889-45aa-9d37-aef2aadea8f7
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