4.5 Article

Numerical Investigations on Heat Transfer Characteristics of Single Particle and Hybrid Nanofluids in Uniformly Heated Tube

期刊

SYMMETRY-BASEL
卷 13, 期 5, 页码 -

出版社

MDPI
DOI: 10.3390/sym13050876

关键词

heat transfer characteristics; hybrid nanofluid; performance evaluation criteria; single particle nanofluid; uniformly heated tube

资金

  1. National Research Foundation of Korea (NRF) - Korea government (MSIT) [2020R1A2C1011555]
  2. National Research Foundation of Korea [2020R1A2C1011555] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

向作者/读者索取更多资源

The study evaluates the heat transfer characteristics of water, Al2O3, and Al2O3/Cu nanofluids, analyzing the effects of Reynolds number, volume fraction, and nanoparticle composition on heat transfer properties. Hybrid nanofluids show superior thermophysical properties compared to single particle nanofluids and water, with increasing heat transfer coefficient, Nusselt number, and pressure drop with higher Reynolds number and volume fraction. Overall, 2.0% Al2O3/Cu with equal composition of nanoparticles presented the best heat transfer characteristics among all fluids.
In the present study, the heat transfer characteristics, namely, heat transfer coefficient, Nusselt number, pressure drop, friction factor and performance evaluation criteria are evaluated for water, Al2O3 and Al2O3/Cu nanofluids. The effects of Reynolds number, volume fraction and composition of nanoparticles in hybrid nanofluid are analyzed for all heat transfer characteristics. The single particle and hybrid nanofluids are flowing through a plain straight tube which is symmetrically heated under uniform heat flux condition. The numerical model is validated for Nusselt number within 7.66% error and friction factor within 8.83% error with corresponding experimental results from the previous literature study. The thermophysical properties of hybrid nanofluid are superior to the single particle nanofluid and water. The heat transfer coefficient, Nusselt number and pressure drop show increasing trend with increase in the Reynolds number and volume fraction. The friction factor shows the parabolic trend, and the performance evaluation criteria shows small variations with change in Reynolds number. However, both friction factor and performance evaluation criteria have increased with increase in the volume fraction. The 2.0% Al2O3/Cu with equal composition of both nanoparticles (50/50%) have presented superior heat transfer characteristics among all working fluids. Further, the heat transfer characteristics of 2.0% Al2O3/Cu hybrid nanofluid are enhanced by changing the nanoparticle compositions. The performance evaluation criteria for 2.0% Al2O3, 2.0% Al2O3/Cu (50/50%), 2.0% Al2O3/Cu (75/25%) and 2.0% Al2O3/Cu (25/75%) are evaluated as 1.08, 1.11, 1.10 and 1.12, respectively.

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