Please use this identifier to cite or link to this item: https://dspace.iiti.ac.in/handle/123456789/6949
Title: Thermal performance of heat sink using nano-enhanced phase change material (NePCM) for cooling of electronic components
Authors: Kumar, Anuj
Kothari, Rohit
Sahu, Santosh Kumar
Kundalwal, Shailesh
Keywords: Copper oxides;Fins (heat exchange);Heat flux;Heat storage;Microelectronics;Nanoparticles;Network components;Phase change materials;Storage (materials);Thermal conductivity;Cooling of electronics;Enhancement ratios;Nanoenhanced phase change material (NePCM);Nanoparticle concentrations;Passive cooling techniques;Rectangular plates;Thermal energy storage systems;Thermal Performance;Electronic cooling
Issue Date: 2021
Publisher: Elsevier Ltd
Citation: Kumar, A., Kothari, R., Sahu, S. K., & Kundalwal, S. I. (2021). Thermal performance of heat sink using nano-enhanced phase change material (NePCM) for cooling of electronic components. Microelectronics Reliability, 121 doi:10.1016/j.microrel.2021.114144
Abstract: Present experimental study reports the thermal performance of nano-enhanced phase change material (NePCM) based thermal energy storage system for cooling of electronic components. The NePCM based heat sink (HS) cooling is a passive cooling technique that can eliminate the fan-based conventional cooling technique. A plate heater was used to impersonate the heat generated by microelectronics. Here, copper oxide (CuO), paraffin wax, and aluminum are considered as nanoparticle, phase change material (PCM), and HS material, respectively. Different HS configurations such as HS with no fin (HSNF), HS with rectangular plate fins (HSRPF), HS with square pin fins (HSSPF), and HS with circular pin fins (HSCPF) are studied for a fixed volume fraction of fin material. The performance of various HS configurations are analyzed for different nanoparticle concentration (∅=0.5–3.0), and heat flux values (q′′=1.5–3.0 kW/m2). For ∅= 3.0, thermal conductivity and viscosity of NePCM are found to increase by 150% and 100%, respectively. The HSSPF involving PCM/NePCM exhibits better thermal performance compared to other HS configurations. The maximum reduction in temperature is found to be 13 °C and 15 °C for HSSPF involving PCM and NePCM (∅= 0.5), respectively. The highest enhancement ratio of 5.0 is obtained for HSSPF at q″= 2.0 kW/m2 for SPT of 65 °C. The addition of CuO nanoparticle beyond ∅=0.5 decreases the HS performance considerably. © 2021 Elsevier Ltd
URI: https://doi.org/10.1016/j.microrel.2021.114144
https://dspace.iiti.ac.in/handle/123456789/6949
ISSN: 0026-2714
Type of Material: Journal Article
Appears in Collections:Department of Mechanical Engineering

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