Please use this identifier to cite or link to this item: https://bura.brunel.ac.uk/handle/2438/33765
Title: Experimental and modelling investigation of thermohydraulic performance of CO₂ finned-tube condensers
Authors: Chai, Lei
Tassou, Savvas A
Keywords: thermohydraulic performance;CO₂ finned-tube condenser;experimental analysis;model development
Issue Date: 23-Jul-2026
Publisher: Elsevier
Citation: Chai, L. and Tassou, S.A. (2026) 'Experimental and modelling investigation of thermohydraulic performance of CO₂ finned-tube condensers', Applied Thermal Engineering, 303, 132522, pp. 1–14. doi: 10.1016/j.applthermaleng.2026.132522.
Abstract: Carbon dioxide is a promising refrigerant for refrigeration and heat pump applications because of its environmental sustainability. However, unlike supercritical gas coolers, the thermohydraulic behaviour of subcritical CO₂ finned-tube condensers remains inadequately investigated and understood because of complex condensation and two-phase flow phenomena. This study presents a combined experimental and numerical investigation of a CO₂ finned-tube condenser operating under subcritical conditions. Experiments were conducted using a dedicated CO₂ test facility equipped with a two-row finned-tube heat exchanger and comprehensive instrumentation for measuring refrigerant- and air-side operating parameters. A distributed segment-by-segment effectiveness–NTU model was developed and validated to predict local and overall thermohydraulic performance. The model captures the coupled heat transfer, phase-change, and pressure-drop processes occurring in both the superheated and two-phase regions of the condenser. Validation against 30 operating conditions demonstrated deviations within ±10% for heat transfer rate, ±15% for refrigerant-side pressure drop, and ±10% for air-side pressure drop. The effects of refrigerant mass flow rate, air velocity, and inlet air temperature on local and average heat transfer and pressure-drop characteristics were systematically examined. The results provide new insight into the evolution of condensation, vapour quality, and local heat transfer coefficients along the flow path, and offer a reliable tool for the design and optimisation of high-efficiency CO₂ refrigeration and heat pump systems.
Description: Data availability: Data will be made available on request. [Acknowledgement: All data used are in the paper but if any additional information is required it can be obtained by contacting the corresponding author.]
URI: https://bura.brunel.ac.uk/handle/2438/33765
DOI: https://doi.org/10.1016/j.applthermaleng.2026.132522
ISSN: 1359-4311
Appears in Collections:Department of Mechanical and Aerospace Engineering Research Papers

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