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Numerical modeling flow and heat transfer in dimpled cooling channels with secondary hemispherical protrusions

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  • Liu, Jian
  • Song, Yidan
  • Xie, Gongnan
  • Sunden, Bengt

Abstract

Flow characteristics and heat transfer performances of rectangular dimpled channels with secondary protrusions are numerically analyzed and compared in this research work. The special arrangement is a conventional dimpled cavity with a small-size secondary protrusion placed upstream of the dimple. The objective is to determine the most optimal configuration for augmenting heat transfer rates with minimized pressure drop penalties, and providing flow details of secondary protrusions with different arrangements or geometries. The main considered parameters are the height ratios and relative location of the secondary protrusions placed upstream of the dimple. All turbulent fluid flows and surface heat transfer results are obtained using computation fluid dynamics with a validated k–ε RNG (Re-Normalization Group) turbulence model in eight rectangular channels with different secondary protrusion arrangements. From this investigation, it is found that secondary protrusions cause downward flows and reduce the extent of the recirculating flows in the adjacent primary dimple and then greatly improve the averaged local heat transfer of the corresponding primary dimple surface. In addition, secondary protrusions can improve the reattachment and strengthen the shedded vortex structures from the dimple. The heat transfer is enhanced with increasing height of the secondary protrusions but the pressure drop is also increased significantly. The largest Nu/Nu0/(f/f0) factor is obtained by a depth ratio of 0.1 and the largest Nu/Nu0/(f/f0)1/3 factor is provided by a depth ratio of 0.2. The vortex structure formed downstream of the secondary protrusions remains to take effect and develop in the primary dimple if the secondary protrusions are located near the centerline area as in Case C1. The acting vortex structures can improve the spanwise flow and improve the turbulent mixing downstream of the dimple. With a secondary protrusion located away from the centerline, the heat transfer enhancement is weakened. The heat transfer augmentation and overall thermal performance advantages of a dimpled channel with secondary protrusions are evident compared with conventional dimpled channels.

Suggested Citation

  • Liu, Jian & Song, Yidan & Xie, Gongnan & Sunden, Bengt, 2015. "Numerical modeling flow and heat transfer in dimpled cooling channels with secondary hemispherical protrusions," Energy, Elsevier, vol. 79(C), pages 1-19.
  • Handle: RePEc:eee:energy:v:79:y:2015:i:c:p:1-19
    DOI: 10.1016/j.energy.2014.05.075
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    References listed on IDEAS

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    1. Kim, Hyun-Min & Moon, Mi-Ae & Kim, Kwang-Yong, 2011. "Multi-objective optimization of a cooling channel with staggered elliptic dimples," Energy, Elsevier, vol. 36(5), pages 3419-3428.
    2. Hwang, Sang Dong & Kwon, Hyun Goo & Cho, Hyung Hee, 2010. "Local heat transfer and thermal performance on periodically dimple-protrusion patterned walls for compact heat exchangers," Energy, Elsevier, vol. 35(12), pages 5357-5364.
    3. Saini, R.P. & Verma, Jitendra, 2008. "Heat transfer and friction factor correlations for a duct having dimple-shape artificial roughness for solar air heaters," Energy, Elsevier, vol. 33(8), pages 1277-1287.
    4. Yadav, Anil Singh & Bhagoria, J.L., 2013. "A CFD (computational fluid dynamics) based heat transfer and fluid flow analysis of a solar air heater provided with circular transverse wire rib roughness on the absorber plate," Energy, Elsevier, vol. 55(C), pages 1127-1142.
    5. Yang, Weihong & Blasiak, Wlodzimierz, 2005. "Numerical study of fuel temperature influence on single gas jet combustion in highly preheated and oxygen deficient air," Energy, Elsevier, vol. 30(2), pages 385-398.
    6. Yadav, Anil Singh & Bhagoria, J.L., 2013. "Heat transfer and fluid flow analysis of solar air heater: A review of CFD approach," Renewable and Sustainable Energy Reviews, Elsevier, vol. 23(C), pages 60-79.
    7. Ammar, M. & Chtourou, W. & Driss, Z. & Abid, M.S., 2011. "Numerical investigation of turbulent flow generated in baffled stirred vessels equipped with three different turbines in one and two-stage system," Energy, Elsevier, vol. 36(8), pages 5081-5093.
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    Cited by:

    1. Zhen Zhao & Liang Xu & Jianmin Gao & Lei Xi & Qicheng Ruan & Yunlong Li, 2022. "Multi-Objective Optimization of Parameters of Channels with Staggered Frustum of a Cone Based on Response Surface Methodology," Energies, MDPI, vol. 15(3), pages 1-19, February.
    2. Choi, Seok Min & Kwon, Hyun Goo & Bae, Hyung Mo & Moon, Hee Koo & Cho, Hyung Hee, 2023. "Effects of staggered dimple array under different flow conditions for enhancing cooling performance of solar systems," Applied Energy, Elsevier, vol. 342(C).
    3. Luo, Lei & Du, Wei & Wang, Songtao & Wang, Lei & Sundén, Bengt & Zhang, Xinhong, 2017. "Multi-objective optimization of a solar receiver considering both the dimple/protrusion depth and delta-winglet vortex generators," Energy, Elsevier, vol. 137(C), pages 1-19.
    4. Azadani, Leila N. & Gharouni, Nadiya, 2021. "Multi objective optimization of cylindrical shape roughness parameters in a solar air heater," Renewable Energy, Elsevier, vol. 179(C), pages 1156-1168.
    5. Şevik, Seyfi & Özdilli, Özgür & Abuşka, Mesut, 2022. "Experimental investigation of relative roughness height effect in solar air collector with convex dimples," Renewable Energy, Elsevier, vol. 194(C), pages 100-116.

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