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Refrigerant performance evaluation including effects of transport properties and optimized heat exchangers
Affiliation:1. National Institute of Standards and Technology, Gaithersburg, MD 20899, USA;2. The Catholic University of America, Washington, DC 20064, USA;1. 4164 Glenn Martin Hall Bldg., Center for Environmental Energy Engineering, Department of Mechanical Engineering, University of Maryland, College Park, MD, 20742, United States;2. Air Solution R&D Laboratory, LG Electronics, Seoul, Republic of Korea;1. Department of Chemical Engineering, Indian Institute of Technology Madras, Chennai 600036, India;2. Department of Mechanical Engineering, Indian Institute of Technology Madras, Chennai 600036, India
Abstract:Preliminary refrigerant screenings typically rely on using cycle simulation models involving thermodynamic properties alone. This approach has two shortcomings. First, it neglects transport properties, whose influence on system performance is particularly strong through their impact on the performance of the heat exchangers. Second, the refrigerant temperatures in the evaporator and condenser are specified as input, while real-life equipment operates at imposed heat sink and heat source temperatures; the temperatures in the evaporator and condensers are established based on overall heat transfer resistances of these heat exchangers and the balance of the system.The paper discusses a simulation methodology and model that addresses the above shortcomings. This model simulates the thermodynamic cycle operating at specified heat sink and heat source temperature profiles, and includes the ability to account for the effects of thermophysical properties and refrigerant mass flux on refrigerant heat transfer and pressure drop in the air-to-refrigerant evaporator and condenser. Additionally, the model can optimize the refrigerant mass flux in the heat exchangers to maximize the coefficient of performance. The new model is validated with experimental data and its predictions are contrasted to those of a model based on thermodynamic properties alone.
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