Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System

The automotive air-conditioning (AAC) system is the second largest consumer of energy after the power train in a typical passenger vehicle. An improvement on the performance of this system will save a significant amount of energy and significantly improve the vehicle performance. The study was divid...

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Main Author: Sukri, Mohamad Firdaus
Format: Thesis
Language:English
Published: 2017
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Online Access:http://eprints.utem.edu.my/id/eprint/19053/1/Simulation%20And%20Analysis%20Of%20A%20Direct%20Current%20Operated%20Automotive%20Air-Conditioning%20System.pdf
http://eprints.utem.edu.my/id/eprint/19053/
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spelling my.utem.eprints.190532021-01-05T16:29:39Z http://eprints.utem.edu.my/id/eprint/19053/ Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System Sukri, Mohamad Firdaus T Technology (General) TL Motor vehicles. Aeronautics. Astronautics The automotive air-conditioning (AAC) system is the second largest consumer of energy after the power train in a typical passenger vehicle. An improvement on the performance of this system will save a significant amount of energy and significantly improve the vehicle performance. The study was divided into two main sections, namely, experimental work and parametric simulation. The experimental work was conducted to obtain the off-road air-side evaporator heat transfer correlation and refrigerant-side correlations of compressor work, refrigerant mass flow rate, cooling capacity, and heat rejected from the condenser. The experimental rig comprised the original components from the AAC system of a medium-sized passenger car equipped with an appropriately sized electric compressor and electronic expansion valve. Cabin compartment thermal load, air-side evaporator-cabin compartment, and thermal and energy AAC system performance mathematical models had been developed based on models proposed by previous studies. Comparison exercises indicated that the simulation from the cabin compartment thermal load mathematical model and experimental results were within 5% error and were highly consistent with published results. Parametric simulation studies revealed that vehicle surface with darker color, an increment in the number of occupants, vehicle speed and fractional ventilation of air intake, and lower cabin temperature tend to increase the cooling load and require additional cooling capacity up to 144.16 W (5.01%). As a result, compressor work increased, up to 89.12 W (10.82%). Consequently, maximum reduction of COP up to 5.53% was recorded due to dominant increase in compressor work, as opposed to an increase in cooling capacity. In short, the proposed simulation model is able to help designers and/or engineers to understand the best type of vehicles and AAC operating system that can enhance the overall performance of the vehicle, particularly an electric vehicle, in the most efficient way. Consequently, it can reduce the effort, time, and cost to develop AAC systems and vehicles in the future. 2017 Thesis PeerReviewed text en http://eprints.utem.edu.my/id/eprint/19053/1/Simulation%20And%20Analysis%20Of%20A%20Direct%20Current%20Operated%20Automotive%20Air-Conditioning%20System.pdf Sukri, Mohamad Firdaus (2017) Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System. Doctoral thesis, Universiti Teknikal Malaysia Melaka. https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=102958
institution Universiti Teknikal Malaysia Melaka
building UTEM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknikal Malaysia Melaka
content_source UTEM Institutional Repository
url_provider http://eprints.utem.edu.my/
language English
topic T Technology (General)
TL Motor vehicles. Aeronautics. Astronautics
spellingShingle T Technology (General)
TL Motor vehicles. Aeronautics. Astronautics
Sukri, Mohamad Firdaus
Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System
description The automotive air-conditioning (AAC) system is the second largest consumer of energy after the power train in a typical passenger vehicle. An improvement on the performance of this system will save a significant amount of energy and significantly improve the vehicle performance. The study was divided into two main sections, namely, experimental work and parametric simulation. The experimental work was conducted to obtain the off-road air-side evaporator heat transfer correlation and refrigerant-side correlations of compressor work, refrigerant mass flow rate, cooling capacity, and heat rejected from the condenser. The experimental rig comprised the original components from the AAC system of a medium-sized passenger car equipped with an appropriately sized electric compressor and electronic expansion valve. Cabin compartment thermal load, air-side evaporator-cabin compartment, and thermal and energy AAC system performance mathematical models had been developed based on models proposed by previous studies. Comparison exercises indicated that the simulation from the cabin compartment thermal load mathematical model and experimental results were within 5% error and were highly consistent with published results. Parametric simulation studies revealed that vehicle surface with darker color, an increment in the number of occupants, vehicle speed and fractional ventilation of air intake, and lower cabin temperature tend to increase the cooling load and require additional cooling capacity up to 144.16 W (5.01%). As a result, compressor work increased, up to 89.12 W (10.82%). Consequently, maximum reduction of COP up to 5.53% was recorded due to dominant increase in compressor work, as opposed to an increase in cooling capacity. In short, the proposed simulation model is able to help designers and/or engineers to understand the best type of vehicles and AAC operating system that can enhance the overall performance of the vehicle, particularly an electric vehicle, in the most efficient way. Consequently, it can reduce the effort, time, and cost to develop AAC systems and vehicles in the future.
format Thesis
author Sukri, Mohamad Firdaus
author_facet Sukri, Mohamad Firdaus
author_sort Sukri, Mohamad Firdaus
title Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System
title_short Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System
title_full Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System
title_fullStr Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System
title_full_unstemmed Simulation And Analysis Of A Direct Current Operated Automotive Air-Conditioning System
title_sort simulation and analysis of a direct current operated automotive air-conditioning system
publishDate 2017
url http://eprints.utem.edu.my/id/eprint/19053/1/Simulation%20And%20Analysis%20Of%20A%20Direct%20Current%20Operated%20Automotive%20Air-Conditioning%20System.pdf
http://eprints.utem.edu.my/id/eprint/19053/
https://plh.utem.edu.my/cgi-bin/koha/opac-detail.pl?biblionumber=102958
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score 13.18916