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Development and Study of Operating Characteristics of a Loop Heat Pipe with Increased Heat Transfer Distance

  • HEAT AND MASS TRANSFER, AND PROPERTIES OF WORKING FLUIDS AND MATERIALS
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Abstract

The task of energy-efficient heat supply and removal in thermal control, heating and cooling systems is very relevant for many branches of technology. The paper presents the results of the development and study of a 21 m long loop heat pipe (LHP) that is a passive heat-transfer device operating on a closed evaporation-condensation cycle and using capillary pressure to pump a working fluid. These devices can be used in systems where the heat source and the heat sink are removed from each other by a distance measured in meters and even tens of meters, without the use of additional energy sources. The device has a 24 mm diameter evaporator with a 188 mm long heating zone, a vapor line and a liquid line (external/internal diameters of 8/6 mm and 6/4 mm). A 310 mm long pipe-in-pipe heat exchanger equipped with a cooling jacket was used as a condenser. The tests were conducted with the LHP in a horizontal position. Heat was removed from the condenser by forced convection of a water-ethylene glycol mixture with temperatures of 20 and –20°C and a flow rate of 6 dm3/min. The heat load supplied to the evaporator from the electric heater increased from 200 to 1700 W in the first case and to 1300 W in the second. The vapor temperature at the outlet of the evaporator varied from 25 to 62°C and from 24 to 30°C, respectively. Its maximum temperature difference along the length of the vapor line did not exceed 4°C. Such devices can be used in energy-efficient systems for utilizing low-potential heat, heating or cooling remote objects, and for uniformly distributing heat over a large surface area of heat sinks.

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REFERENCES

  1. Yu. F. Maydanik, “Loop heat pipes,” Appl. Therm. Eng. 25, 635–657 (2005). https://doi.org/10.1016/j.applthermaleng.2004.07.010

    Article  Google Scholar 

  2. P. D. Dunn and D. A. Reay, Heat Pipes (Pergamon, Oxford, 1978; Energiya, Moscow, 1979).

  3. V. G. Pastukhov, Yu. F. Maidanik, and Yu. G. Fershtater, “Study of the performance characteristics of a long-length “antigravity” water heat pipe,” Izv. Akad. Nauk SSSR, Energ. Transp., No. 4, 142–146 (1987).

  4. Yu. F. Maydanik, M. A. Chernysheva, and V. G. Pastukhov, “Investigation of thermal characteristics of high-capacity loop heat pipes after a long-term storage,” Energy 74, 804–809 (2014). https://doi.org/10.1016/j.energy.2014.07.053

    Article  CAS  Google Scholar 

  5. K. Nakamura, K. Odagiri, and H. Nagano, “Study on a loop heat pipe for a long-distance heat transport under anti-gravity condition,” Appl. Therm. Eng. 107, 167–174 (2016). https://doi.org/10.1016/j.applthermaleng.2016.06.162

    Article  Google Scholar 

  6. M. Mitomi and H. Nagano, “Long-distance loop heat pipe for effective utilization of energy,” Int. J. Heat Mass Transfer 77, 777–784 (2014). https://doi.org/10.1016/j.ijheatmasstransfer.2014.06.001

    Article  Google Scholar 

  7. Y. F. Maydanik, Y. G. Fershtater, V. G. Pastukhov, S. V. Vershinin, and K. A. Goncharov, “Some results of loop heat pipe development, test and application in engineering,” in Proc. 5th Int. Heat Pipe Symp., Melbourne, Australia, Nov. 17–20, 1996 (Pergamon, Oxford, 1997), pp. 406–412.

  8. Y. Zhao, T. Yan, and J. Liang, “Experimental investigation on thermal characteristics of long distance loop heat pipes,” J. Therm. Sci. 31, 741–750 (2022). https://doi.org/10.1007/s11630-022-1439-6

    Article  ADS  Google Scholar 

  9. Yu. F. Maidanik and M. A. Chernysheva, “Warming device,” RF Patent No. 7182 U1, MPK-F24D, Byull. Izobret., No. 7 (1998).

  10. K. A. Goncharov, Yu. F. Maidanik, and V. V. Dvirnyi, “Solar heat supply system,” RF Patent No. 1776937, MPK-F24J, Byull. Izobret., No. 43 (1992).

  11. X. Zhao, Z. Wang, and Q. Tang, “Theoretical investigation of the performance of a novel loop heat pipe solar water heating system for use in Beijing, China,” App-l. Therm. Eng. 30, 2526–2536 (2010). https://doi.org/10.1016/j.applthermaleng.2010.07.002

    Article  CAS  Google Scholar 

  12. I. E. Idel’chik, Handbook of Hydraulic Resistance, Ed. by M. O. Shteinberg, 3rd ed. (Mashinostroenie, Moscow, 1992) [in Russian].

    Google Scholar 

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This work was supported by ongoing institutional funding. No additional grants to carry out or direct this particular research were obtained.

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Correspondence to Yu. F. Maydanik.

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Maydanik, Y.F., Pastukhov, V.G. & Chernysheva, M.A. Development and Study of Operating Characteristics of a Loop Heat Pipe with Increased Heat Transfer Distance. Therm. Eng. 71, 158–166 (2024). https://doi.org/10.1134/S004060152402006X

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  • DOI: https://doi.org/10.1134/S004060152402006X

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