REDUCING SOAK AIR TEMPERATURE INSIDE A CAR COMPARTMENT USING VENTILATION FANS

Authors

  • Haslinda Mohamed Kamar Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia.
  • Nazri Kamsah Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia.
  • Intan Sabariah Sabri Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia.
  • Md Nor Musa Faculty of Mechanical Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia.

DOI:

https://doi.org/10.11113/jt.v78.9597

Keywords:

Soak air temperature, car passenger compartment, CFD simulation, mechanical ventilation system

Abstract

This article presents an investigation on the effects of using ventilation fans on the air temperature inside a car passenger compartment when the car is parked under the sun. It was found from a measurement that the air temperature inside the passenger compartment could raise up to 48°C. Computational fluid dynamics method was used to develop model of the compartment and carry out flow simulations to predict the air temperature distribution at 1 pm for two conditions: without ventilation fans and with ventilation fans. The effects of fan location, number of fans used and fan airflow velocity were examined. Results of flow simulations show that a 17% temperature reduction was achieved when two ventilation fans with airflow velocity of 2.84 m/s were placed at the rear deck. When three fans were used, an additional 3.4% temperature reduction was attained. Placing two ventilation fans at the middle of the roof also reduced the air temperature by 17%. When four fans were used a further 4.8% temperature reduction was achieved. Increasing the airflow velocity at the four fans placed at the roof, from 2.84 m/s to 15.67 m/s, caused only a small reduction in the air temperature inside the passenger compartment

References

Levinson, R., Pan, H., Ban-Weiss, G., Rosado, P., Paolini, R. and Akbari, H. 2011. Potential Benefits of Solar Reflective Car Shells: Cooler Cabins, Fuel Savings and Emission Reductions. Applied Energy. 88(12): 4343-4357.

Johnson, V.H. 2002. Fuel Used for Vehicle Air-Conditioning: A State-by-State Thermal Comfort-Based Approach. Fuel. 1: 1957.

Kamar, H.M., Ahmad, R., Kamsah, N.B. and Mustafa, A.F.M. 2013. Artificial Neural Networks for Automotive Air-Conditioning Systems Performance Prediction. Applied Thermal Engineering 50(1): 63-70.

Rugh, J.P., Hendricks, T.J. and Koram, K. 2001. Effect of Solar Reflective Glazing on Ford Explorer Climate Control, Fuel Economy, and Emissions. In Proceedings of the International Body Engineering Conference. 2001, October

Farrington, R.B., Anderson, R., Blake, D.M., Burch, S.D., Cuddy, M.R., Keyser, M.A. and Rugh, J.P. 1999. Challenges and Potential Solutions for Reducing Climate Control Loads in Conventional and Hybrid Electric Vehicles. National Renewable Energy Laboratory, Golden, CO, USA retrieved April, 01, 2013, from: www.ott.doe.gov/coolcar/pubs.html.

Farrington, R.B., Brodt, D.L., Burch, S.D. and Keyser, M.A. 1998. Opportunities to Reduce Vehicle Climate Control Loads. In Proc. 15th Electric Vehicle Symp., Brussels. Sept. 1998.

Saidur, R., Masjuki, H.H. and Hasanuzzaman, M. 2009. Performance of an Improved Solar Car Ventilator. International Journal of Mechanical and Materials Engineering. 4(1): 24-34.

Bharathan, D., Chaney, L., Farrington, R. B., Lustbader, J., Keyser, M., and Rugh, J. 2007. An Overview of Vehicle Test and Analysis from NREL's A/C Fuel Use Reduction Research. In Vehicle Thermal Management Systems Conf & Exh. 2007 (VTMS-8).

Rugh, J., Chaney, L., Lustbader, J., Meyer, J., Rustagi, M., Olson, K. and Kogler, R. 2007. Reduction in Vehicle Temperatures and Fuel Use from Cabin Ventilation, Solar-Reflective Paint, and a New Solar-Reflective Glazing. SAE Technical Paper. 11194: 2007.

Huang, K.D., Tzeng, S.C., Ma, W.P. and Wu, M.F. 2005. Intelligent Solar-Powered Automobile-Ventilation System. Applied Energy. 80(2): 141-154.

Dadour, I.R., Almanjahie, I., Fowkes, N.D., Keady, G. and Vijayan, K. 2011. Temperature Variations in a Parked Vehicle. Forensic Science International. 207(1): 205-211.

Jasni, M.A. and Nasir, F.M. 2012. Experimental Comparison Study of the Passive Methods in Reducing Car Cabin Interior Temperature. In International Conference on Mechanical, Automobile and Robotics Engineering (ICMAR’2012). Penang, Malaysia: 229-233.

Ivanescu, M., Neacsu, C.A. and Tabacu, I. 2010. Studies of the Thermal Comfort of the Passenger Compartment Using Numerical Simulation. In 2010 International Congress Motor Vehicles and Motors, Kragujevac, October 7th-9th, 2010. MVM2010-026.

Neacsu, C., Ivanescu, M. and Tabacu, I. 2009. The Influence of the Glass Material on the Car Passenger’s Thermal Comfort retrieved April, 01, 2013, from: http://automotive.upit.ro/index_files/ 2009/2009_B_16_.pdf

Neacsu, C.A., Ivanescu, M. and Tabacu, I. 2009. The Influence of the Solar Radiation on The Interior Temperature of the Car. In 2009 European Social Fund (ESFA), Bucharest.

Zhang, H., Dai, L., Xu, G., Li, Y., Chen, W. and Tao, W.Q. 2009. Studies of Air-Flow and Temperature Fields Inside a Passenger Compartment for Improving Thermal Comfort and Saving Energy. Part I: Test/Numerical Model and Validation. Applied Thermal Engineering. 29(10): 2022-2027.

Sevilgen, G. and Kilic M. 2013. Investigation of Transient Cooling of an Automobile Cabin With a Virtual Manikin Under Solar Radiation. Thermal Science. 17(2): 397-406.

Aroussi, A., Hassan, A. and Morsi, Y. 2003. Numerical Simulation of the Airflow over and Heat Transfer Through a Vehicle Windshield Defrosting and Demisting System. Heat and Mass Transfer. 39(5-6): 401-405.

Zhang, D. and Weng, P. 2007. Numerical Simulation and Experiment Research of Air Organization in Air-Conditioned Passenger Car. In Building Simulation.

Kilic, M. and Sevilgen, G. 2009. Evaluation of Heat Transfer Characteristics in an Automobile Cabin with a Virtual Manikin During Heating Period. Numerical Heat Transfer Part A: Applications. 56 (6): 515-539.

Sevilgen, G. and Kiliç, M. 2010. Transient Numerical Analysis of Airflow and Heat Transfer in a Vehicle Cabin During Heating Period. International Journal of Vehicle Design. 52 (1-4): 144-159.

Fluent, I.N.C., 2006. FLUENT 6.3 user’s guide. Fluent Documentation

Downloads

Published

2016-08-16

Issue

Section

Science and Engineering

How to Cite

REDUCING SOAK AIR TEMPERATURE INSIDE A CAR COMPARTMENT USING VENTILATION FANS. (2016). Jurnal Teknologi, 78(8-4). https://doi.org/10.11113/jt.v78.9597