DocumentCode :
744286
Title :
Optimization of an Automotive Radiator Fan Array Operation to Reduce Power Consumption
Author :
Wang, Tianwei Thomas ; Jagarwal, Amit ; Wagner, John R. ; Fadel, Georges
Author_Institution :
Mech. Eng. Dept., Clemson Univ., Clemson, SC, USA
Volume :
20
Issue :
5
fYear :
2015
Firstpage :
2359
Lastpage :
2369
Abstract :
The cooling system for internal combustion engines removes waste heat to ensure a normal in-cylinder combustion process. To accomplish this task, the thermostat valve, radiator, radiator fan(s), and water pump circulate cooling fluid through the engine block and reject heat to the local environment. Since the cooling system consumes a portion of the engine´s power, it is important that its operation uses minimal input energy. In this paper, a multiple radiator fan matrix was controlled to minimize energy usage for subsequent efficiency gains. A mathematical model for the radiator fan(s) and the forced convection heat transfer process was developed to establish a mixed integer nonlinear programming problem. An interior points approach was introduced to solve the minimization problem. A series of laboratory tests have been conducted with different fan and speed combinations, with the objective to cool a thermal-loaded engine. Both the mathematical approach and test results indicated similar control strategies. Based on the tests data and accompanying mathematical analysis, an optimization control strategy reduced the fan matrix power consumption by up to 67% for the specified thermal load. An improvement in cooling system performance can offer greater vehicle fuel economy to help meet legislated mobility standards.
Keywords :
angular velocity control; automotive components; cooling; fans; forced convection; fuel economy; integer programming; internal combustion engines; minimisation; nonlinear programming; optimal control; power consumption; pumps; temperature control; thermostats; valves; automotive radiator fan array operation optimization; cooling fluid circulation; cooling system performance; efficiency gain; energy usage minimization; engine block; engine power; fan matrix power consumption; fan speed optimization; forced convection heat transfer process; heat rejection; interior points approach; internal combustion engines; mathematical analysis; mathematical model; minimization problem; mixed integer nonlinear programming problem; mobility standards; multiple radiator fan matrix; normal in-cylinder combustion process; optimization control strategy; power consumption reduction; thermal-loaded engine; thermostat valve; vehicle fuel economy; waste heat removal; water pump; Coolants; Heat engines; Heating; Optimization; Random access memory; Automotive cooling; electro-mechanical actuators; experimental test; optimization; radiator fan control; thermal management;
fLanguage :
English
Journal_Title :
Mechatronics, IEEE/ASME Transactions on
Publisher :
ieee
ISSN :
1083-4435
Type :
jour
DOI :
10.1109/TMECH.2014.2377655
Filename :
6996032
Link To Document :
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