Effect of contact resistance on thermo-hydraulic performance for finned tube heat exchanger

This study numerically investigates the impact of thermal contact resistance (TCR) at the fin-tube interface on the thermo-hydraulic performance (TPF) of finned-tube heat exchangers (FTHE). Simulations were performed using ANSYS Fluent software at Reynolds numbers of Re = 1000, 2000, 4000, and 8000. The effects of various thermal conductivity (k = 0.5 – 16.27 W/mK) and interface thicknesses (t = 0.1 – 0.8 mm) of thermal pastes (TP) used to reduce thermal contact resistance on the TPF, average Nusselt number, and flow characteristics were examined in detail. The results indicated that the thermal conductivity coefficient (k) of the TP plays a more dominant role in TPF and heat transfer compared to the TP thickness (t). The TPF showed a strong sensitivity to thermal conductivity up to k = 10 W/mK, after which the enhancement in thermo-hydraulic performance became marginal. Based on a comprehensive evaluation of the results, it was concluded that the interface contact resistance becomes negligible when a TP with a thermal conductivity above 10 W/mK is employed.

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Publication Details

Journal
International Journal of Energy Studies
Published
2026-09-29
DOI
https://doi.org/10.58559/ijes.1958733
Primary Topic
Heat Transfer and Optimization
Type
article
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article

Effect of contact resistance on thermo-hydraulic performance for finned tube heat exchanger

Muhammet Nasıf Kuru, Harun Yılmaz, Ahmet Ümit Tepe, Berna AKMEŞE
International Journal of Energy Studies
Heat Transfer and Optimization
article

Effect of contact resistance on thermo-hydraulic performance for finned tube heat exchanger

Muhammet Nasıf Kuru, Harun Yılmaz, Ahmet Ümit Tepe, Berna AKMEŞE
article en

Abstract

This study numerically investigates the impact of thermal contact resistance (TCR) at the fin-tube interface on the thermo-hydraulic performance (TPF) of finned-tube heat exchangers (FTHE). Simulations were performed using ANSYS Fluent software at Reynolds numbers of Re = 1000, 2000, 4000, and 8000. The effects of various thermal conductivity (k = 0.5 – 16.27 W/mK) and interface thicknesses (t = 0.1 – 0.8 mm) of thermal pastes (TP) used to reduce thermal contact resistance on the TPF, average Nusselt number, and flow characteristics were examined in detail. The results indicated that the thermal conductivity coefficient (k) of the TP plays a more dominant role in TPF and heat transfer compared to the TP thickness (t). The TPF showed a strong sensitivity to thermal conductivity up to k = 10 W/mK, after which the enhancement in thermo-hydraulic performance became marginal. Based on a comprehensive evaluation of the results, it was concluded that the interface contact resistance becomes negligible when a TP with a thermal conductivity above 10 W/mK is employed.

International Journal of Energy StudiesVol. 11(3)
Tarsus University (TR)
Clean water and sanitation
Openalex Percentile: Top 21%
Heat Transfer and Optimization
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