Experimental Investigation on the Thermal Performances of a New Design of Pulsating Heat Pipe With Two Condensers

Author:

Nikolaenko Yu. E.1,Solomakha A. S.1,Melnyk R. S.1,Lipnitskyi L. V.1,Kravets V. Yu.1,Kozak D. V.1,Pekur D. V.2

Affiliation:

1. National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute” Institute of Atomic and Thermal Energy, , 37 Beresteiskyi Avenue, Kyiv 03056 , Ukraine

2. V. Lashkaryov Institute of Semiconductor Physics, National Academy of Sciences of Ukraine Department of Optoelectronics, , 41 prosp. Nauky, Kyiv 03680 , Ukraine

Abstract

Abstract In this paper, for the first time, a novel design of pulsating heat pipe (PHP) with one evaporator and two condensers located on both sides of the evaporator at an angle to the horizon was proposed, manufactured, and experimentally investigated for the purpose of use in cooling systems for electronic devices operating in a tilted position. The PHP body is made of a copper capillary tube with an inner diameter of 1.5 mm. The working fluid is methanol. The number of turns is 4. The heating zone dimensions are 60 mm × 36 mm, and the cooling zone dimensions are 200 mm × 35 mm. The РНР condensers were cooled by aluminum radiators blown by two fans with an air flowrate of 5.2 m3 h–1. The launch of the РНР began with a power of 30 W at all positive tilt angles and in a horizontal position. The dependences of the temperature in the heating and cooling zones and the PHP thermal resistance both on the power input (from 30 W to 200 W) and on the orientation in space (at tilt angles of 0 deg, 15 deg, 30 deg, 60 deg, 90 deg) were obtained. It is shown that when the evaporator is located below the condensers, the РНР works stably. Moreover, in the power range from 120 W to 200 W, the tilt angle practically does not affect the thermal resistance of the PHP. A comparison of the thermal resistance of the developed РНР with known РНРs filled with methanol showed the high efficiency of the developed РНР: at power input from 120 W to 200 W, the thermal resistance was from 0.2 °С W–1 to 0.18 °С W–1. The developed РНР design is promising for use in air cooling systems, for instance, of radar transmit/receive modules and high-power LED lighting systems.

Publisher

ASME International

Subject

Fluid Flow and Transfer Processes,General Engineering,Condensed Matter Physics,General Materials Science

Reference68 articles.

1. Gen-3 Thermal Management Technology: Role of Microchannels and Nanostructures in an Embedded Cooling Paradigm;Bar-Cohen;ASME J. Nanotechnol. Eng. Med.,2013

2. The Effect of Temperature on the Reliability of Electronic Components;Lakshminarayanan,2014

3. Flow and Heat Transfer Characteristics of Nanofluids in a Liquid-Cooled CPU Heat Radiator;Sun;Appl. Therm. Eng.,2017

4. Super Powerful LED Luminaires With a High Color Rendering Index for Lighting Systems With Combined Electric Power Supply;Pekur;Semicond. Phys. Quantum Electron. Optoelectron.,2022

5. Increasing Performance of Cooling Systems for Radar Transmit/Receive Modules;Nikolaenko,2022

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