Air-side performance of a micro-channel heat exchanger in wet surface conditions

Author:

Srisomba Raviwat1,Asirvatham Lazarus2,Mahian Omid1,Dalkılıç Ahmet3,Awad Mohamed4,Wongwises Somchai1

Affiliation:

1. King Mongkut’s University of Technology Thonburi, Faculty of Engineering, Department of Mechanical Engineering, Fluid Mechanics, Thermal Engineering and Multiphase Flow Research Lab. (FUTURE), Bangmod, Bangkok, Thailand

2. Karunya University, Department of Mechanical Engineering, Coimbatore, Tamil Nadu, India

3. Yildiz Technical University (YTU), Faculty of Mechanical Engineering, Department of Mechanical Engineering, Heat and Thermodynamics Division, Yildiz, Besiktas, Istanbul, Turkey

4. Mansoura University, Department of Mechanical Power Engineering, Mansoura, Egypt

Abstract

The effects of operating conditions on the air-side heat transfer, and pressure drop of a micro-channel heat exchanger under wet surface conditions were studied experimentally. The test section was an aluminum micro-channel heat exchanger, consisting of a multi-louvered fin and multi-port mini-channels. Experiments were conducted to study the effects of inlet relative humidity, air frontal velocity, air inlet temperature, and refrigerant temperature on air-side performance. The experimental data were analyzed using the mean enthalpy difference method. The test run was performed at relative air humidities ranging between 45% and 80%; air inlet temperature ranges of 27, 30, and 33?C; refrigerant-saturated temperatures ranging from 18 to 22?C; and Reynolds numbers between 128 and 166. The results show that the inlet relative humidity, air inlet temperature, and the refrigerant temperature had significant effects on heat transfer performance and air-side pressure drop. The heat transfer coefficient and pressure drop for the micro-channel heat exchanger under wet surface conditions are proposed in terms of the Colburn j factor and Fanning f factor.

Publisher

National Library of Serbia

Subject

Renewable Energy, Sustainability and the Environment

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