4.6 Article

The effect of some metal oxide nanocomposites on the pulsating heat pipe performance

期刊

ENERGY REPORTS
卷 7, 期 -, 页码 8825-8833

出版社

ELSEVIER
DOI: 10.1016/j.egyr.2021.10.065

关键词

Metal oxide; Nanoparticle; Heat pipes; Thermal conductivity; Hybrid nanofluids

资金

  1. Research Council of the Iran University of Science and Tech-nology - Iran National Sci-ence Foundation (INSF) [99032872]

向作者/读者索取更多资源

This study investigated the impact of three different nanofluids on the performance of pulsating heat pipes, finding that the use of nanofluids can increase heat transfer efficiency and reduce thermal resistance. Among the nanofluids used, the nanocomposites with a concentration of 0.25 g/L showed the best performance.
Increasing the performance of heat exchangers is one of industry's most pressing challenges. Pulsating heat pipes (PHPs), as a novel technology with high-performance, are broadly used in solar distilled water and systems solar water heaters. In the present work, the impact of three nanofluids including zirconium dioxide (ZrO2), bismuth ferrite (BiFeO3)/ZrO2 (ZBF), and ZrO2/SiO2 composites under con- centrations of 0.25, 0.5, and 1.0 g/L was investigated on the PHPs performance. The thermal resistance of the base fluid and the produced nanofluids was compared under a constant filling ratio of 50% and different input powers to the evaporator. The obtained results revealed that the use of working fluid such as nanofluids increased the heat transfer of PHPs in comparison to the base fluid and reduced the thermal resistance. Among the nanofluids used, the concentration of 0.25 g/L of the prepared nanocomposites provided the best performance. The resistance of the PHPs at some fluxes was reduced by up to 40%. In general, from the point of view of materials engineering, the structure of compounds used in nanofluids should have low thermal resistance, high thermal conductivity, and low viscosity. From a chemical point of view, using metals and compounds with high thermal conductivity is essential due to significant electron exchange. (C) 2021 The Authors. Published by Elsevier Ltd.

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