THERMAL SCIENCE

International Scientific Journal

EXPERIMENTAL STUDY ON THE THERMAL PERFORMANCE OF AN AIR CONDITIONING SYSTEM IN A PURE ELECTRIC VEHICLE

ABSTRACT
This paper studies the thermal performance of an air conditioning system in a pure electric vehicle. An experiment is designed to examine the main factors affecting the performance, and the experimental results show that a heat pump with a low pressure gas-mixing system can increase the heating capacity and decrease the discharge temperature.
KEYWORDS
PAPER SUBMITTED: 2020-02-01
PAPER REVISED: 1970-01-01
PAPER ACCEPTED: 2020-07-01
PUBLISHED ONLINE: 2021-03-27
DOI REFERENCE: https://doi.org/10.2298/TSCI200201093L
CITATION EXPORT: view in browser or download as text file
THERMAL SCIENCE YEAR 2021, VOLUME 25, ISSUE Issue 3, PAGES [2093 - 2099]
REFERENCES
  1. Deng, J., et al., Development of Electric Vehicles, Science and Technology Innovation Herald, 28 (2011), pp. 219-220
  2. Li, H. J., et al., Simulation Study on the Characteristics of Scroll Compressor with the Complement Gas of Low Pressure for Electric Vehicles Air Conditioning, Cryo & Supercond., 42 (2014), 7, pp. 60-63
  3. Sharafian, A., et al., Critical Analysis of Thermodynamic Cycle Modeling of Adsorption Cooling Systems for Light-Duty Vehicle Air Conditioning Applications, Renewable and Sustainable Energy Rev, 48 (2015), Aug., pp. 857-869
  4. Wasbari, F., et al., A Review of Compressed-Air Hybrid Technology in Vehicle System, Renewable and Sustainable Energy Rev, 67 (2017), Jan., pp. 935-953
  5. Antonijevic, D., et al., Heat Pump Supplemental Heating System for Motor Vehicles, Journal of Auto-mobile Engineering, 218 (2004), 10, pp. 1111-1115
  6. Yokoyama, A., et al., Thermal Management System for Electric Vehicles, SAE International Journal of Materials and Manufac, 4 (2011), June, pp. 1277-1285
  7. Steiner, A., et al., Parametric Analysis of the Defrosting Process of a Reversible Heat Pump System for Electric Vehicles, Applied Thermal Engineering, 61 (2013), 2, pp. 393-400
  8. Li, L., et al., Design and Experiment of a Heat Pump Air conditioning System for Electric Vehicles, Journal of Refrigeration, 34 (2013), 3, pp. 60-63
  9. Kowsky, C., et al., Unitary HPAC System, SAE International Journal of Passenger Cars-Mech, 5 (2012), 2, pp. 1016-1025
  10. Peng, Q. H., et al., Effects Analysis of Speeds on System Performance of Heat Hump Air Conditioning System for Electric Vehicle by Simulation, Machinery Design & Manufacture (2015), 3, pp. 35-38
  11. Yan, R. D., et al., Experimental Study on the Effect of Superheat on Performance of Automotive Air conditioning, Journal of Refrigeration, 35 (2014), 3, pp. 86-89
  12. Qi, Z. G., Advances on Air Conditioning and Heat Pump System in Electric Vehicles - A review, Renewable and Sustainable Energy Rev, 38 (2014), Oct., pp. 754-764
  13. Zhou, G., et al., Experimental Study on Combined Defrosting Performance of Heat Pump Air Conditioning System for Pure Electric Vehicle in Low Temperature, Applied Thermal Engineering, 116 (2017), Apr., pp. 677-684
  14. Li, H. J., et al., Influence of Fin Thickness on Heat Transfer and Flow Performance of a Parallel Flow Evaporator, Thermal Science, 23 (2019), 4, pp. 2413-2419
  15. Acar, B., Experimental Investigation on the Effect of Soil Type to the Ground Source Heat Pump's Performance and Energy Consumption, Thermal Science, 24 (2020), 2A, pp. 852-843
  16. Ozener, O., Ozkan, M., Assessment of Real Driving Emissions of a Bus Operating on a Dedicated Route, Thermal Science, 24 (2020), 1A, pp. 73-63
  17. Srinivasan, S., et al., Modelling and Analysis of Automatic Air Conditioning System Using Support Vector Machine, Thermal Science, 24 (2020), 1B, pp. 571-574

© 2024 Society of Thermal Engineers of Serbia. Published by the Vinča Institute of Nuclear Sciences, National Institute of the Republic of Serbia, Belgrade, Serbia. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International licence