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Dryout analysis of overloaded microscale capillary-driven two-phase heat transfer devices
Affiliation:1. School of Engineering, Monash University, 47500 Bandar Sunway, Malaysia;2. Faculty of Engineering, University of Nottingham Malaysia Campus, Jalan Broga, 43500 Semenyih, Selangor, Malaysia;1. Department of Mechanical Engineering, KBU International College, 47800 Petaling Jaya, Selangor, Malaysia;2. Young Researchers and Elite Club, Mashhad Branch, Islamic Azad University, Mashhad, Iran;3. Department of Thermofluids, Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 UTM Skudai, Johor Bahru, Malaysia;4. DNV GL, Engineering Department, University of Nevada, Las Vegas, 89154, NV, USA;5. Department of Mechanical Engineering, University of Anbar, Ramadi 31001, Iraq;6. Department of Refrigeration and Air Conditioning Engineering, Technical College of Engineering, Duhok Polytechnic University (DPU), 61 Zakho Road- 1006 Mazi Qr, Duhok-Kurdistan Region- Iraq
Abstract:Dryout occurrence at high heat input is one of the detrimental factors that limit the thermal efficiency of a phase-change heat transfer device. In this work, we demonstrate that by employing visualization method, the dryout occurrence of an elongated liquid droplet in a transparent evacuated microscale two-phase flow device can be scrutinized. The circulation of liquid from the condenser to the evaporator is driven by the capillary action which is the primary limitation that governs the maximum heat transport capability of the device. When the evaporation rate exceeds the circulation rate of condensate, dryout will take place in the evaporator end. The propagation of dryout lengths can be accurately determined directly from visualization and a more accurate evaluation of the dryout length compared to the conventional method by measuring the axial temperatures has been developed. By quantifying the performance indicators of the cooling device over a wide range of operating conditions, including the underloaded and overloaded operations, the observation of dryout occurrence in this study correlates highly with the anticipated heat transfer characteristics of a phase-change heat transfer device. This study provides essential insights, particularly on the overloaded conditions, to the design of a microscale two-phase heat transfer device.
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