scholarly journals Fluid Flow within Radial Micro Channel Heat Sink: A Review

Author(s):  
Naveen Bansal ◽  
Satbir S. Sehgal
Keyword(s):  
Micromachines ◽  
2020 ◽  
Vol 11 (2) ◽  
pp. 146
Author(s):  
Xiaogang Liu ◽  
Meng Zhang ◽  
Zhongyi Wang ◽  
Juhui Chen ◽  
Haiou Sun ◽  
...  

Micro-channel heat sink (MCHS) has been extensively used in various electronic cooling fields. Double-layered MCHS, or DL-MCHS, is regarded as one effective technique for high-heat-flux transfer and is expected to meet the ever-increasing heat load requirement of future electronic device generations. In order to improve the cooling capacity, two new types of the MCHS, with a double-layered matrix structure (DL-M) and double-layered interlinked matrix structure (DL-IM) are proposed and investigated numerically. The two designs are compared with the traditional double-layered rectangular structure (DL-R) and the double-layered triangular structure (DL-T). Different properties of the heat sink are investigated to assess the overall heat transfer performance, for which coolant flow and heat transfer are both evaluated. The numerical results reveal that the periodical slot subchannel in the matrix has a significant effect on fluid flow for heat transfer. In comparison to the DL-R and the DL-T, the DL-M and DL-IM realize a much lower pressure drop and temperature rise at the base surface and also have higher Nusselt number and secondary flow intensity, therefore, manifesting better overall thermal performance. In the DL-M and DL-IM, the coolant flows along the periodical subchannel in one layer and is redirected into the second layer with vortices being induced. The vortices promote the coolant mixing and enhance the mass and heat transfer. These geometric design strategies can provide references for wide heat sink applications.


Author(s):  
Sepideh Kavousi ◽  
Abbas Abbassi

In this paper, three-dimensional Al2O3-water nano fluid flow and heat transfer is optimized numerically. A numerical FORTRAN code based on the finite volume method and SIMPLER algorithm is developed to solve the governing equations. The code is carefully validated by comparing numerical predictions with experimental data. Aspect ratio, number of channels in the heat sink and solid fraction factor are considered as degrees of freedom. The goal is to find out the best possible number of channels in the system, and geometry of each channel that maximizes the global thermal conductance. The results show that the geometric parameters have a strong effect on the performance of micro channel heat sink. Comparison of the results of water and Al2O3-water nano fluid demonstrated that water showed a better thermal performance than nano fluid which indicates that neither Re nor pressure drop along the channel are good parameters to compare the thermal performance of nano fluid and water.


2021 ◽  
Author(s):  
M. P. Dhanishk ◽  
P. Selvakumar ◽  
V. Ashwin ◽  
P. N. ArunKumar

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