Fig. 1. Configuration of liquid air energy storage (LAES) system. [1]
Fig. 2. Experimental apparaus to measure the strain value of the volume expansion.
Fig. 3. CPA aqueous container.
Fig. 5. Temperature history of the CPA solutions.
Fig. 6. Strain of the glycerol aqueous solutions.
Fig. 7. Strain of the DMSO aqueous solutions.
Fig. 8. Stress of the glycerol aqueous solutions.
Fig 9. Stress of the DMSO aqueous solutions.
Fig. 10. Specific heat of the glycerol aqueous solutions.
Fig 11. Specific heat of the DMSO aqueous solutions.
Fig. 12. Specific heat comparison between Glycerol 40% w/w and DMSO 20% w/w.
Fig. 13. Specific heat of the glycerol 40% w/w solution, pure glycerol, and ice. [10, 11]
Fig. 14. Strain of the glycerol 40% w/w solution.
Fig. 4. CFLA-3-350-23 Strain gauge, Tokyo Sokki Kenkyujo Co., Ltd.
TABLE I SPECIFICATION OF EACH INSTRUMENT.
References
- Y. Ding, L. Tong, P. Zhang, Y. Li, J. Radcliffe and L. Wang, Liquid Air Energy Storage, 2016
- R. Morgan, S. Nelmes, E. Gibson and G. Brett, "Liquid air energy storage-analysis and first results from a pilot scale demonstration plant," Applied energy, vol. 137, pp. 845-853, 2015 https://doi.org/10.1016/j.apenergy.2014.07.109
- A. Sciacovelli, A. Vecchi and Y. Ding, "Liquid air energy storage (LAES) with packed bed cold thermal storage-From component to system level performance through dynamic modelling," Applied Energy, vol. 190, pp. 84-98, 2017 https://doi.org/10.1016/j.apenergy.2016.12.118
- J. Kim, Y. Noh and D. Chang, "Storage system for distributed-energy generation using liquid air combined with liquefied natural gas," Applied Energy, vol. 212, pp. 1417-1432, 2018 https://doi.org/10.1016/j.apenergy.2017.12.092
- W. P. Schmidt, K. S. Winegardner, M. Dennehy and H. Castle-Smith, "Safe design and operation of a cryogenic air separation unit," Process Safety Progress, vol. 20, pp. 269-279, 2001 https://doi.org/10.1002/prs.680200409
- J. A. Noel, S. Kahwaji, L. Desgrosseilliers, D. Groulx and M. A. White, Phase Change Materials, 2016
- W. C. Young and R. G. Budnyas, Roark's formulas for stress and strain, 2017
- W. Sperko, Reduction of Design Margin in the ASME Boiler and Pressure Vessel Code in the 1999 Addenda, 2011
- O. Andersson and G. P. Johari, "Thermal conductivity of Glycerol's liquid, glass, and crystal states, glass-liquid-glass transition, and crystallization at high pressures," The Journal of chemical physics, vol. 144, p. 064504, 2016 https://doi.org/10.1063/1.4941335
- R. J. Corruccini and J. J. Gniewek, "Specific heats and enthalpies of technical soilds at low temperatures," S. A Compilation from the Literature, National Bureau of Standards, Washington, DC, 1960
- G. Gibson and W. Giauque, "The third law of thermodynamics. Evidence from the specific heats of glycerol that the entropy of a glass exceeds that of a crystal at the absolute zero," Journal of the American Chemical Society, vol. 45, pp. 93-104, 1923 https://doi.org/10.1021/ja01654a014
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