Rarefaction and scale effects on heat transfer characteristics for enclosed rectangular cavities heated from below

Author:

Alkhalidi Ammar1,Kiwan Suhil2,Al-Kouz Wael3,Alshare Aiman4,Sari Ma’en4

Affiliation:

1. German Jordanian University, Energy Engineering Department, Amman, Jordan

2. Jordan University of Science and Technology, Mechanical Engineering Department, Irbid, Jordan

3. German Jordanian University, Mechatronics Engineering Department, Amman, Jordan

4. German Jordanian University, Mechanical and Maintenance Engineering Department, Amman, Jordan

Abstract

The fluid-flow and heat transfer in a buoyancy-driven microcavity heated from below are numerically investigated. In spite of the fact that microcavities are widely used in microelectro- mechanical systems, now a day, more interest in the evacuated cavity on Eqn. solar collectors are very common to reduce heat loss from the system. This paper provides a useful information for engineers to estimate heat transfer in low pressure cavities. The finite volume technique was used to solve the governing equations along with temperature jump and slip flow boundary conditions.The simulations are carried out for various cavity aspect ratios (H/L) and different Rayleigh number for both macroand micro-fluids. The effect of Knudsen number in the rarefied flow regime (microfluidic) has also been investigated. It is shown that for both cases the effect of aspect ratios on heat transfer becomes significant at high Rayleigh numbers and when the aspect ratio is below 5. It was also found that increasing Knudsen number reduces the heat transfer. The interaction between Nusselt, Rayleigh, Knudsen numbers, and the aspect ratio was investigated using the design of experiments, results show that no interaction between these parameters. To help engineers to estimate heat transfer in low pressure cavities, widely used in solar energy applications, a correlation for convection heat transfer coefficient is introduced.

Publisher

National Library of Serbia

Subject

Renewable Energy, Sustainability and the Environment

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4. A review of flow and heat transfer in cavities and their applications;The European Physical Journal Plus;2021-04

5. Numerical investigation of rarefied gaseous flows in an oblique wavy sided walls square cavity;International Communications in Heat and Mass Transfer;2020-07

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