Open Access Journal

ISSN : 2394-2320 (Online)

International Journal of Engineering Research in Computer Science and Engineering (IJERCSE)

Monthly Journal for Computer Science and Engineering

Open Access Journal

International Journal of Engineering Research in Computer Science and Engineering (IJERCSE)

Monthly Journal for Computer Science and Engineering

ISSN : 2394-2320 (Online)

Reference :

    1. G. Hansen, E. Næss, and K. Kristjansson, "Analysis of a vertical flat heat pipe using potassium working fluid and a wick of compressed nickel foam," Energies, vol. 9, no. 3, pp. 1–17, 2016.
    2. D. A. Odden, "Development of heat pipes with potassium as woking fluid : Performance limitations and test rig development," no. June 2012.
    3. J. H. Boo, S. M. Kim, and Y. H. Kang, "An Experimental Study on a Sodium Loop-type Heat Pipe for Thermal Transport from a High-temperature Solar Receiver," Energy Procedia, vol. 69, no. May 2015, pp. 608–617, 2015.
    4. S. W. Kang, H. M. Yeh, M. C. Tsai, and H. H. Wu, "Manufacture and test of a high-temperature heat pipe," J. Appl. Sci. Eng., vol. 22, no. 3, pp. 493–499, 2019.
    5. J. H. Rosenfeld, "An Overview of Long Duration Sodium Heat Pipe Tests," no. March 2004, pp. 140– 147, 2004
    6. U. Sharma, "A Study of High-Temperature Heat Pipes and the Impact of Magnetic Field on the Flow of Liquid Metal," p. 117, 2017.
    7. R. Materials, D. Hanna, R. Equipment, and H. Circuit, "Cesium Heatpipe Experiment," 1977.
    8. P. M. Dussinger and W. G. Anderson, "Design and Testing of Titanium / Cesium and Titanium / Potassium Heat Pipes," no. September 2015.
    9. S. Lips, V. Sartre, F. Lefevre, S. Khandekar, and J. Bonjour, "Overview of Heat Pipe Studies During the Period 2010-2015," Interfacial Phenom. Heat Transf., vol. 4, no. 1, pp. 33–53, 2016.
    10. R. Andrzejczyk, "Experimental investigation of the thermal performance of a wickless heat pipe operating with different fluids: Water, ethanol, and SES36. Analysis of influences of instability processes at working operation parameters," Energies, vol. 12, no. 1, 2019.
    11. Y. Fukuzawa and Y. Fujii-E, "Performance Characteristics of Potassium Heat Pipe Loaded with Argon," J. Nucl. Sci. Technol., vol. 15, no. 2, pp. 109– 119, 1978.
    12. M. Narcy, S. Lips, and V. Sartre, "Experimental investigation of a confined flat two-phase thermosyphon for electronics cooling," Exp. Therm. Fluid Sci., vol. 96, pp. 516–529, 2018.
    13. P. K. Jain, "Influence of Different Parameters on Heat Pipe Performance Sharmishtha Singh Hada under the guidance of Prof," J. Eng. Res. Appl. www.ijera.com, vol. 5, no. 10, pp. 93–98, 2015.
    14. M. A. Boda, T. B. Shaikh, and S. N. Sayyed, "Innovative Developments and Heat," vol. 3, no. 6, pp. 319–322, 2018.
    15. P. Z. Shi, K. M. Chua, S. C. K. Wong, and Y. M. Tan, "Design and performance optimization of miniature heat pipes in LTCC," J. Phys. Conf. Ser., vol. 34, no. 1, pp. 142–147, 2006.
    16. A. . Chaudhari, M. D. Borkar, A. Deshpande, M. V. Tendolkar, and V. K. Singh, "Effect of Wick Microstructures on Heat Pipe Performance A Review," SSRN Electron. J., pp. 1–8, 2018.
    17. J. V. Suresh, P. Bhramara, and S. S. Krishna, "Effect of Working Fluid on Thermal Performance of Closed Loop Pulsating Heat Pipe," Int. J. Eng. Adv. Technol., vol. 9, no. 2, pp. 953–956, 2019.
    18. C. E. Andraka, T. A. Moss, V. Baturkin, V. Zaripov, and O. Nishchyk, "High-performance felt-metal-wick heat pipe for solar receivers," AIP Conf. Proc., vol. 1734, 2016.
    19. J. Jose and R. Baby, "Recent advances in loop heat pipes: A review," IOP Conf. Ser. Mater. Sci. Eng., vol. 396, no. 1, 2018.

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