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Application of an ecofriendly nanofluid containing graphene nanoplatelets inside a novel spiral liquid block for cooling of electronic processors

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  • Bahiraei, Mehdi
  • Mazaheri, Nima

Abstract

The present research is carried out to examine the efficiency of a novel spiral liquid block for the cooling of electronic processors. To enhance the cooling efficiency, a biologically produced nanofluid having graphene nanoplatelets is considered. The numerical analyses are performed at different concentrations ranging from 0 to 0.1% for different Reynolds numbers (Re) and pumping powers. Furthermore, the performance of the spiral liquid block is compared with serpentine and base-plate liquid blocks. In the case of the spiral liquid block made from nickel, the mean temperature of the CPU surface reduces around 7 K when the concentration increases from 0 to 0.1% at Re = 500. Moreover, the thermal resistance declines up to 11.7% with increasing the concentration by 0.1%. In the case of constant pumping power, the spiral liquid block demonstrates the best cooling efficiency compared to the other types. The maximum value of the Figure of Merit (FoM) for the spiral liquid block is 4 times greater than that for the serpentine liquid block. Indeed, the unique structure of the spiral liquid block allows superior heat transfer with moderate pumping power, and this liquid block is recommended from the energy efficiency viewpoint.

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  • Bahiraei, Mehdi & Mazaheri, Nima, 2021. "Application of an ecofriendly nanofluid containing graphene nanoplatelets inside a novel spiral liquid block for cooling of electronic processors," Energy, Elsevier, vol. 218(C).
  • Handle: RePEc:eee:energy:v:218:y:2021:i:c:s0360544220325020
    DOI: 10.1016/j.energy.2020.119395
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    1. Huaxu, Liang & Fuqiang, Wang & Dong, Zhang & Ziming, Cheng & Chuanxin, Zhang & Bo, Lin & Huijin, Xu, 2020. "Experimental investigation of cost-effective ZnO nanofluid based spectral splitting CPV/T system," Energy, Elsevier, vol. 194(C).
    2. Jiang, Yuguang & Xu, Yaxing & Zhang, Silong & Chetehouna, Khaled & Gascoin, Nicolas & Qin, Jiang & Bao, Wen, 2017. "Parametric study on the distribution of flow rate and heat sink utilization in cooling channels of advanced aero-engines," Energy, Elsevier, vol. 138(C), pages 1056-1068.
    3. Fornalik-Wajs, Elzbieta & Roszko, Aleksandra & Donizak, Janusz, 2020. "Nanofluid flow driven by thermal and magnetic forces – Experimental and numerical studies," Energy, Elsevier, vol. 201(C).
    4. Cao, Jiahao & Luo, Mingyun & Fang, Xiaoming & Ling, Ziye & Zhang, Zhengguo, 2020. "Liquid cooling with phase change materials for cylindrical Li-ion batteries: An experimental and numerical study," Energy, Elsevier, vol. 191(C).
    5. Loni, Reyhaneh & Asli-Ardeh, E. Askari & Ghobadian, B. & Kasaeian, A.B. & Bellos, Evangelos, 2018. "Energy and exergy investigation of alumina/oil and silica/oil nanofluids in hemispherical cavity receiver: Experimental Study," Energy, Elsevier, vol. 164(C), pages 275-287.
    6. Sajid, Muhammad Usman & Ali, Hafiz Muhammad, 2019. "Recent advances in application of nanofluids in heat transfer devices: A critical review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 103(C), pages 556-592.
    7. Liu, Huan-ling & Shi, Hang-bo & Shen, Han & Xie, Gongnan, 2019. "The performance management of a Li-ion battery by using tree-like mini-channel heat sinks: Experimental and numerical optimization," Energy, Elsevier, vol. 189(C).
    8. Kalbasi, Rasool & Afrand, Masoud & Alsarraf, Jalal & Tran, Minh-Duc, 2019. "Studies on optimum fins number in PCM-based heat sinks," Energy, Elsevier, vol. 171(C), pages 1088-1099.
    9. Sharafeldin, Mahmoud Ahmed & Gróf, Gyula & Mahian, Omid, 2017. "Experimental study on the performance of a flat-plate collector using WO3/Water nanofluids," Energy, Elsevier, vol. 141(C), pages 2436-2444.
    10. Wang, Yangjie & Li, Qiang & Xuan, Yimin, 2019. "Thermal and chemical reaction performance analyses of solar thermochemical volumetric receiver/reactor with nanofluid," Energy, Elsevier, vol. 189(C).
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    1. Mo, Songping & Ye, Jiarong & Jia, Lisi & Chen, Ying, 2022. "Properties and performance of hybrid suspensions of MPCM/nanoparticles for LED thermal management," Energy, Elsevier, vol. 239(PE).

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