Comparative study of heat transfer enhancement on liquid-vapor separation plate condenser

Author:

Yao Yuan1234,Chen Ying1,Chen Jianyong1,Gong Yulie34

Affiliation:

1. School of Material and Energy, Guangdong University of Technology, Guangzhou510006, China

2. Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences, Guangzhou510640, China

3. Key Laboratory of Renewable Energy, Chinese Academy of Sciences, Guangzhou510640, China

4. Guangdong Provincial Key Laboratory of New and Renewable Energy Research and Development, Guangzhou510640, China

Abstract

AbstractBasic structures of liquid-vapor separation cooling plates (LSCPs) and a liquid-vapor separation plate condenser (LVSPC) are innovatively designed. Strengthening heat transfer principle of the LSCPs is demonstrated by theoretical analysis. The average condensation heat transfer coefficients (ACHTCs) of the LSCPs are calculated and compared with conventional cooling plate (CCP). Results show that for a laminar flow, the ACHTCs of 2-parts liquid-vapor separation cooling plate and 3-parts liquid-vapor separation cooling plate are respectively 19% and 32% higher than the ACHTCs of the CCP in the same conditions. The ACHTC ratio of N-parts liquid-vapor separation cooling plates (NLSCP) to CCP is $\sqrt[4]{N}$in the same conditions. For a turbulent flow, results show the smaller the height of condensation area, the greater the ACHTCs of cooling plate. In the LVSPC study, operation conditions include the refrigerant R134a mass flux ranging from 22 to 32 kg/(m2.s) and inlet vapor quality from 0.5 to 1 for the saturated temperature of 40C. Calculation results showed that the ACHTCs of the LVSPC are 6–24% higher than the ACHTCs of the given common plate condenser (CPC), and similar to the CPC, the ACHTCs of the LVSPC increases with the increase of mass flux and vapor quality.

Publisher

Walter de Gruyter GmbH

Subject

General Physics and Astronomy

Reference62 articles.

1. A New Model for Refrigeration Condensation Inside a Brazed Plate Heat Exchanger (BPHE). Proceedings of the 15th International Heat Transfer Conference;Kyoto Japan,2014

2. Numerical simulation of two phase flow in manifold with perforated plate;Journal of Thermal Science and Technology,2014

3. Performances of a split-type air conditioner employing a condenser with liquid-vapor separation baffles;Int J Refrig,2012

4. Heat transfer at film condensation of pure vapors on vertical surface and horizontal pipes [in Russion];Int. J. Thermal Energy,1957

5. Condensation of superheated vapour of R410A and R407C inside plate heat exchangers: experimental results and simulation procedure;Int J Refrig,2012

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