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    Numerical investigation on hydrothermal characteristics of microchannel heat sinks with PCM inserts for effective thermal management applications

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    References (28)

    • 1.

      Thermohydraulic performance analysis of graded porous media microchannel with microencapsulated phase change material suspension

      H. Dai; W. Chen; X. Dong; Y. Liu; Q. Cheng. International Journal of Heat and Mass Transfer Vol. 176, (2021b): 121459-.
    • 2.

      Forced convection heat transfer of Nano-Encapsulated Phase Change Material (NEPCM) suspension in a mini-channel heatsink

      Ho, CJ; Liu, Yen-Chung; Ghalambaz, Mohammad; Yan, Wei-Mon.  International Journal of Heat and Mass Transfer; Oxford Vol. 155,  (Jul 2020): 1.
    • 3.

      Thermal analysis of battery cells placed in triangular enclosures filled with PCM in the presence of forced airflow in an air duct

      Milyani, Ahmad H; Attar, Eyad T; Abdulaal, Mohammed J; Ajour, Mohammed N; Abu-Hamdeh, Nidal H; et al.  JOURNAL OF BUILDING ENGINEERING Vol. 57,  (Oct 2022).
    • 4.

      Parametric study and optimization of microchannel heat sinks with various shapes

      Kose, Haluk Anil; Yildizeli, Alperen; Cadirci, Sertac.  Applied Thermal Engineering Vol. 211,  (2022): 118368.
    • 5.

      Embedded cooling method with configurability and replaceability for multi-chip electronic devices

      N. Zhang; B. Jiao; Y. Ye; Y. Kong; X. Du; R. Liu; B. Cong; L. Yu; S. Jia; K. Jia. Energy Conversion and Management Vol. 253, (2022).
    • 6.

      An experimental investigation on the heat transfer characteristics of minichannel thermosyphon with multiports for cooling the modern miniaturized electronic devices

      Manova, Stephen; Asirvatham, Lazarus Godson; Appadurai, Anitha Angeline; Ribatski, Gherhardt; Kumar, Pradeep; et al.  ENERGY CONVERSION AND MANAGEMENT Vol. 268,  (Sep 2022).
    • 7.

      Review of micro and mini channels, porous heat sinks with hydrophobic surfaces for single phase fluid flow [J]

      A Khan; F Hadi; N Akram. Journal of the Taiwan Institute of Chemical Engineers Vol. 132, (2022).
    • 8.

      Effect of PCM and porous media/nanofluid on the thermal efficiency of microchannel heat sinks

      Farahani, Somayeh Davoodabadi; Farahani, Amir Davoodabadi; Hajian, Ebrahim.  INTERNATIONAL COMMUNICATIONS IN HEAT AND MASS TRANSFER Vol. 127,  (Oct 2021).
    • 9.

      Hydrothermal and entropy generation specifications of a hybrid ferronanofluid in microchannel heat sink embedded in CPUs

      A. Shahsavar; M. Jafari; P. Talebizadehsardari; D. Toghraie. Chinese Journal of Chemical Engineering Vol. 32, (2021): 27-38.
    • 10.

      Effect of a micro heat sink geometric design on thermo-hydraulic performance: A review

      Alihosseini, Y. Applied Thermal Engineering Vol. 170, (2020): 114974.
    • 11.

      Thermal behavior of a PCM filled heat sink: the contrast between ambient heat convection and heat thermal storage

      M. Taghilou; E. Khavasi. Applied Thermal Engineering Vol. 174, (2020): 115273-.
    • 12.

      3D Transient heat transfer analysis and flow visualization study in diverging microchannel for instability mitigated two-phase flow: A numerical study

      Alugoju, U.K. International Journal of Heat and Mass Transfer Vol. 160, (2020): 120212.
    • 13.

      Design optimization of PCM-based finned heat sinks for mechatronic components: A numerical investigation and parametric study

      B. Debich. Journal of Energy Storage Vol. 32, (2020): 101960.
    • 14.

      Fluid and heat transfer characteristics of aqueous graphene nanoplatelet (GNP) nanofluid in a microchannel

      Sarafraz, M. M; Yang, B; Pourmehran, O; Arjomandi, M; Ghomashchi, R. International Communications in Heat and Mass Transfer Vol. 107, (2019): 24-33.  0735-1933.
    • 15.

      Geometry parameters optimization for a microchannel heat sink with secondary flow channel

      Shi, X. International Communications in Heat and Mass Transfer Vol. 104, (2019): 89-100.
    • 16.

      A numerical study of subcooled flow boiling in a manifold microchannel heat sink with varying inlet-to-outlet width ratio

      Luo, Yang; Li, Junye; Zhou, Kan; Zhang, Jingzhi; Li, Wei.  International Journal of Heat and Mass Transfer; Oxford Vol. 139,  (Aug 2019): 554.
    • 17.

      Numerical investigation of laminar convective heat transfer and pressure drop of water-based Al 2 O 3 nanofluids in a microchannel

      X. Shi; S. Li; Y. Wei; J. Gao. International Communications in Heat and Mass Transfer Vol. 90, (2018): 111-120.
    • 18.

      Copper foam/PCMs based heat sinks: an experimental study for electronic cooling systems

      Rehman, T. U; Ali, H. M; Saieed, A; Pao, W; Ali, M. International Journal of Heat and Mass Transfer Vol. 127, (2018): 381-393.  0017-9310.
    • 19.

      Heat transfer augmentation in a microchannel heat sink with sinusoidal cavities and rectangular ribs

      Ghani, I. A; Kamaruzaman, N; Che Sidik, N. A. International Journal of Heat and Mass Transfer Vol. 108, (2017): 1969-1981.  0017-9310.
    • 20.

      Simulation of melting process of a phase change material (PCM) using ANSYS (fluent)

      A. Yadav; S. Soni. International Research Journal of Engineering and Technology(2017).