Study on Heat Transfer and Pressure Drop Characteristics of Internal Heat Exchanger for $CO_2$ Heat Pump under Cooling Condition
Dae‐Hoon Kim, Sang Jae Lee, Junyoung Choi, Jae‐Heon Lee, Young-Chul Kwon
Abstract
Dae‐Hoon Kim, Sang Jae Lee, Junyoung Choi, Jae‐Heon Lee, Young-Chul Kwon
Abstract
In order to study the heat transfer and pressure drop of an internal heat exchanger for heat pump under cooling condition, the experiment and numerical analysis were performed. Four kinds of internal heat exchangers with a coaxial tube type and a micro-channel tube type were used. The experimental apparatus consisted of a test section, a power supply, a heater, a chiller, a mass flow meter, a pump and a measurement system. The section-by-section method and Hardy-Cross method were used for the numerical analysis. The effects of the internal heat exchanger refrigerant flow rate, the length of the internal heat exchanger, the operating condition of the gas-cooler, the evaporator and the type of the internal heat exchangers were investigated. With increasing of the flow rate, the heat transfer rate increased about 25%. The heat transfer rate of the micro-channel tube type was higher about 100% than that of the coaxial tube type. With increasing of the length of the internal heat exchanger, the heat transfer rate increased about . The pressure drop of the low-side tube was larger compared with that of the high-side tube.
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In order to study the heat transfer and pressure drop of an internal heat exchanger for heat pump under cooling condition, the experiment and numerical analysis were performed. Four kinds of internal heat exchangers with a coaxial tube type and a micro-channel tube type were used. The experimental apparatus consisted of a test section, a power supply, a heater, a chiller, a mass flow meter, a pump and a measurement system. The section-by-section method and Hardy-Cross method were used for the numerical analysis. The effects of the internal heat exchanger refrigerant flow rate, the length of the internal heat exchanger, the operating condition of the gas-cooler, the evaporator and the type of the internal heat exchangers were investigated. With increasing of the flow rate, the heat transfer rate increased about 25%. The heat transfer rate of the micro-channel tube type was higher about 100% than that of the coaxial tube type. With increasing of the length of the internal heat exchanger, the heat transfer rate increased about . The pressure drop of the low-side tube was larger compared with that of the high-side tube.
Key concepts: Plate heat exchanger, Plate fin heat exchanger, Micro heat exchanger, Heat transfer, Mechanics, Pressure drop, Materials science, Heat spreader