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Details

Autor(en) / Beteiligte
Titel
Parametric Study of Electronic Cooling by Means of a Combination of Crossflow and an Impinging Jet
Ist Teil von
  • IEEE access, 2022, Vol.10, p.103749-103764
Ort / Verlag
Piscataway: IEEE
Erscheinungsjahr
2022
Quelle
EZB Free E-Journals
Beschreibungen/Notizen
  • This paper reports a parametric study's experimental results based on the experiments' design. No works in the literature have investigated parametrically experimental effects on electronic component cooling by combining an impinging jet and a channel flow configuration on the cooling of electronic components. This study analyzed five parameters experimentally to enhance the cooling process using statistical techniques. Additionally, the optimal configuration determined for the conventional cooling method using only the channel flow was compared. Three parameters are associated with the geometric configuration (height of the electronic component <inline-formula> <tex-math notation="LaTeX">h/H = 1/6, 1/3 </tex-math></inline-formula>, 1/2, jet diameter <inline-formula> <tex-math notation="LaTeX">D/H = 0.3, 0.4 </tex-math></inline-formula>, 0.5 and jet-component eccentricity <inline-formula> <tex-math notation="LaTeX">S/H = 0, 1/8 </tex-math></inline-formula>, 1/4), and the other two are related to the fluid flow (the Reynolds number based on the channel height and mean velocity of the stream <inline-formula> <tex-math notation="LaTeX">Re_{H}= 3410 </tex-math></inline-formula>, 4205, 5000 and the ratio between the jet and the channel mean velocities <inline-formula> <tex-math notation="LaTeX">U_{j}/U_{m}= 2.5 </tex-math></inline-formula>, 3.75, 5). The results show that the main parameters are statistically significant relative to heat transfer, with <inline-formula> <tex-math notation="LaTeX">Re_{H} </tex-math></inline-formula>, <inline-formula> <tex-math notation="LaTeX">U_{j}/U_{m} </tex-math></inline-formula> and <inline-formula> <tex-math notation="LaTeX">h/H </tex-math></inline-formula> displaying the most significant amplitude of variation in response and increasing the Nusselt number by approximately 60%. The surface response models have shown a satisfactory fit with the experimental data, allowing, in a preliminary way, the minimum mechanical energy loss requirement to be identified to maximize up to 160% of the heat transfer. Specifically, the heat transfer enhancement is more significant for components of considerable height than other components. Heat transfer enhancement occurs at low mechanical energy loss when the velocity ratio decreases at the minimum channel Reynolds number at the maximum jet diameter and jet-component eccentricity.

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