GB2453632A - Control of a Vehicle Cooling Fan - Google Patents

Control of a Vehicle Cooling Fan Download PDF

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Publication number
GB2453632A
GB2453632A GB0817438A GB0817438A GB2453632A GB 2453632 A GB2453632 A GB 2453632A GB 0817438 A GB0817438 A GB 0817438A GB 0817438 A GB0817438 A GB 0817438A GB 2453632 A GB2453632 A GB 2453632A
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United Kingdom
Prior art keywords
fan speed
vehicle
controller
signal
temperature
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Granted
Application number
GB0817438A
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GB0817438D0 (en
GB2453632B (en
Inventor
Deepa Ramaswamy
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Ford Global Technologies LLC
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Ford Global Technologies LLC
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Publication of GB2453632A publication Critical patent/GB2453632A/en
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Publication of GB2453632B publication Critical patent/GB2453632B/en
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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01PCOOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
    • F01P7/00Controlling of coolant flow
    • F01P7/02Controlling of coolant flow the coolant being cooling-air
    • F01P7/04Controlling of coolant flow the coolant being cooling-air by varying pump speed, e.g. by changing pump-drive gear ratio
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60KARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
    • B60K11/00Arrangement in connection with cooling of propulsion units
    • B60K11/06Arrangement in connection with cooling of propulsion units with air cooling
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60WCONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
    • B60W20/00Control systems specially adapted for hybrid vehicles
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01PCOOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
    • F01P7/00Controlling of coolant flow
    • F01P7/02Controlling of coolant flow the coolant being cooling-air
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05BCONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
    • G05B13/00Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion
    • G05B13/02Adaptive control systems, i.e. systems automatically adjusting themselves to have a performance which is optimum according to some preassigned criterion electric
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D13/00Control of linear speed; Control of angular speed; Control of acceleration or deceleration, e.g. of a prime mover
    • G05D13/02Details
    • GPHYSICS
    • G05CONTROLLING; REGULATING
    • G05DSYSTEMS FOR CONTROLLING OR REGULATING NON-ELECTRIC VARIABLES
    • G05D23/00Control of temperature
    • G05D23/19Control of temperature characterised by the use of electric means
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01PCOOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
    • F01P2025/00Measuring
    • F01P2025/08Temperature
    • F01P2025/40Oil temperature
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F01MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
    • F01PCOOLING OF MACHINES OR ENGINES IN GENERAL; COOLING OF INTERNAL-COMBUSTION ENGINES
    • F01P2025/00Measuring
    • F01P2025/08Temperature
    • F01P2025/46Engine parts temperature

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Automation & Control Theory (AREA)
  • Combustion & Propulsion (AREA)
  • Chemical & Material Sciences (AREA)
  • General Physics & Mathematics (AREA)
  • Physics & Mathematics (AREA)
  • General Engineering & Computer Science (AREA)
  • Transportation (AREA)
  • Software Systems (AREA)
  • Health & Medical Sciences (AREA)
  • Medical Informatics (AREA)
  • Evolutionary Computation (AREA)
  • Computer Vision & Pattern Recognition (AREA)
  • Artificial Intelligence (AREA)
  • Hybrid Electric Vehicles (AREA)

Abstract

A system and method for controlling the speed of a cooling fan in a vehicle such as a hybrid electric vehicle (HEV), the system comprises: a number of vehicle subsystems 107, 109, 111, 114, 115 and a vehicle controller 102. The vehicle subsystems are configured to generate a plurality of subsystem temperature signals that are indicative of a measured temperature for each vehicle subsystem; The vehicle controller is operable to generate a desired fan speed signal for each vehicle subsystem in response to each subsystem temperature signal and to compare each desired fan speed signal to each other to determine a maximum desired fan speed signal. The vehicle controller then controls a fan 160 such that the fan reaches a fan speed that is equal to or greater than the maximum desired fan speed signal. Preferably the subsystems may include a transmission unit, a generator, starter-generator, power electronic circuitry, a dc/dc converter and a motor.

Description

CONTROL OF A VEHICLE COOLING FAN
Field of the invention
The invention relates to cooling systems for use in a vehicle and in particular to the control of a cooling fan for a vehicle.
Background of the invention
In conventional vehicles, cooling fans are generally used to cool an engine. With Hybrid Electrical Vehicles (HEV) or fuel cell based vehicles, additional subsystems packaged in the engine compartment or elsewhere in the vehicle may benefit from being cooled to increase subsystem life span and to ensure optimal performance. Such subsystems may include various electrical based motors and power electronics associated with driving the motors.
Object of the invention It is an object of the invention to provide a system and method for controlling fan speed for a cooling fan to cool a number of subsystems in an HEV or fuel cell based vehicle.
Summary of the invention
According to a first aspect of the invention there is provided a system for controlling the speed of a cooling fan in a vehicle wherein the system comprises a plurality of vehicle subsystems configured to generate a plurality of subsystem temperature signals that are indicative of a measured temperature for each vehicle subsystem and a vehicle controller operable to generate a desired fan speed signal for each vehicle subsystem in response to each subsystem temperature signal and to compare each desired fan speed signal to each other to determine a maximum desired fan speed signal control the fan to reach a speed that is equal to or greater than the maximum desired fan speed signal.
The vehicle controller may be further operable to compare the maximum desired fan speed signal to a first predetermined fan speed and to set the fan speed to a high speed if the maximum desired fan speed signal is greater than or equal to the first predetermined fan speed.
The vehicle controller may be further operable to compare the maximum desired fan speed signal to a second predetermined fan speed and to set the fan speed to a low is speed if the maximum desired fan speed signal is less than the second predetermined fan speed.
The vehicle controller may be further operable to set the fan speed to a medium speed if the maximum desired fan speed signal is greater than the second predetermined fan speed and less than the first predetermined fan speed.
The vehicle subsystems may include an engine controller and an engine, the engine controller being adapted to measure temperature of the engine and generate an engine temperature signal and the vehicle controller may be operable to determine an engine fan speed signal in response to the engine temperature signal.
The vehicle subsystems may include a transmission controller and a transmission, the transmission controller being adapted to measure temperature of the transmission and generate a transmission temperature signal and the vehicle controller may be operable to determine a transmission fan speed signal in response to the transmission temperature signal.
The vehicle subsystems may include a generator controller and a starter-generator, the generator controller being adapted to measure temperature of the starter-generator and generate a starter-generator temperature signal and the vehicle controller may be operable to determine a generator fan speed signal in response to the starter-generator temperature signal.
The generator controller may comprise power electronic circuitry, the generator controller is adapted to measure a temperature of the power electronic circuitry and generate a power electronic circuit temperature signal and the vehicle controller may be operable to determine a power electronic fan speed signal in response to the power electronic circuit temperature signal.
The vehicle subsystems may include a DC/DC converter subsystem adapted to measure an internal operating temperature of a DC/DC converter and generate a converter temperature signal and the vehicle controller may be operable to determine a converter fan speed signal in response to the converter temperature signal.
The vehicle subsystems may include a motor controller and a motor, the motor controller being adapted to measure the temperature of the motor and generate a motor temperature signal and the vehicle controller may be operable to determine a motor fan speed signal in response to the motor temperature signal.
According to a second aspect of the invention there is provided a vehicle having a system for controlling the speed of a cooling fan constructed in accordance with said first aspect of the invention.
The vehicle may further comprise a cooling fan and a plurality of cooling loops, the vehicle subsystems may be positioned about the plurality of cooling loops and the vehicle controller may be operable to control the plurality of cooling loops to cool the vehicle subsystems in response to each subsystem temperature signal.
According to a third aspect of the invention there is provided a method for controlling fan speed for a cooling fan in a vehicle wherein the method comprises the steps of generating a plurality of subsystem temperature signals for a plurality of vehicle subsystems that are indicative of a measured temperature for each vehicle subsystem, generating a desired fan speed signal for each vehicle subsystem, comparing each desired fan speed signal to each other to determine a maximum desired fan speed signal and controlling the fan such that the fan reaches a fan speed that is equal to or greater than the maximum desired fan speed signal.
The method may further comprise comparing the maximum desired fan speed to a first predetermined fan speed and controlling the fan speed to a high speed in response to determining that the maximum desired fan speed is greater than the first predetermined fan speed.
The method may further comprise comparing the maximum desired fan speed to a second predetermined fan speed and controlling the fan speed to a low speed in response to determining that the maximum desired fan speed is less than the second predetermined fan speed.
The method may further comprise controlling the fan speed to a medium speed in response to the determining that the maximum desired fan speed is greater than the second predetermined fan speed and less than the first predetermined fan speed.
The vehicle subsystems may include an engine controller and an engine, the engine controller may be adapted to measure temperature of the engine and generate an engine temperature signal and the vehicle controller may be operable to determine an engine fan speed signal in response to the engine temperature signal.
The vehicle subsystems may include a transmission controller and a transmission, the transmission controller may be adapted to measure temperature of the transmission and generate a transmission temperature signal and the vehicle controller may be operable to determine a transmission fan speed signal in response to the transmission temperature signal.
The vehicle subsystems may include a generator controller, a starter-generator, a motor controller and a motor, the generator controller may be adapted to measure temperature of the starter-generator and generate a starter-generator temperature signal, the motor controller may be adapted to measure the temperature of the motor and generate a motor temperature signal and the vehicle controller may be operable to determine a generator fan speed signal in response to the starter-generator temperature signal and to determine a motor fan speed signal in response to the motor temperature signal.
The generator controller may comprise power electronic circuitry, the generator controller may be adapted to measure temperature of the power electronic circuitry and generate a power electronic circuit temperature signal and the vehicle controller may be configured to determine a power electronic fan speed signal in response to the power electronic circuit temperature signal.
The vehicle subsystems may include a DC/DC converter subsystem adapted to measure an internal operating temperature of a DC/DC converter and generate a converter temperature signal and the vehicle controller may be operable to determine a converter fan speed signal in response to the converter temperature signal.
Brief description of the drawings
The invention will now be described further, by way of example, with reference to the accompanying drawings, in which Fig.l illustrates a vehicle having a system in accordance with one embodiment of the present invention; Fig.2 illustrates in a block diagram form various controllers in the system providing desired fan speed requests; and Fig.3 is a flow diagram of a method for controlling fan speed based on desired fan speed requests.
Detailed description of the preferred embodiment(s) Figure 1 shows a vehicle 100 and more particularly a Hybrid Electric Vehicles (REV). The vehicle 100 has a vehicle system controller (VSC) 102, a vehicle control system (or control system) 104 and a cooling system 106.
The vehicle control system 104 is adapted to provide a plurality of temperature signals to the VSC 102 and the VSC 102 is configured to control the cooling system 106 to cool the control system 104 in response to the temperature signals. It will be appreciated that the VSC 102 may be implemented as a stand-alone controller or may be integrated into one or more controllers in the control system 104.
The control system 104 generally comprises a number of subsystems. Such subsystems include an engine subsystem 107, a transmission subsystem 109, a starter-generator subsystem 111, a Dc/Dc converter subsystem 114 and a motor subsystem 115.
The engine subsystem 107 comprises an engine 108 and an engine controller 116. The engine 108 is generally referred to as a power generating device that may be used to power the vehicle by consuming fuel. The engine 108, for example, may be any internal combustion engine using a hydrocarbon based fuel, including but not limited to gasoline, diesel, hydrogen, methanol, natural gas, ethanol or other gas or liquid fueled internal combustion engine. Alternatively, the power generating device can be a fuel cell engine, such as a hydrogen-powered fuel cell engine. The engine controller 116 is adapted to control the operation of the engine 108.
A multiplexed data bus 118 is coupled to the VSC 102 and the engine controller 116 to facilitate data communication therebetween. In one example, the multiplexed data bus 118 may be implemented as a part of a high speed controller area network (CAN) . In another example, the multiplexed data bus 118 may be implemented as a part of a local interconnect network (LIN). The particular type of multiplexed bus used in the system 100 may be one of various types to meet the desired criteria of a particular implementation.
The transmission subsystem 109 comprises a transmission and a transmission controller 120. The transmission controller 120 controls the operation of the transmission 110. The transmission controller 120 may transmit/receive data signals to/from the VSC 102 over the multiplexed data bus 118.
The starter-generator subsystem ill comprises a starter-generator 112 and a generator controller 122. The starter-generator 112 is coupled to the generator controller 122. The starter-generator 112 is adapted to start the engine 108. The generator controller 122 includes power electronic circuitry (not shown) and is adapted to control the operation of the starter-generator 112. The power electronic circuitry delivers power for driving the starter-generator 112. Such circuitry generally produces a large amount of heat while operating.
The starter-generator 112 may be implemented as a crank integrated starter-generator or as a belt-driven integrated starter-generator. The vehicle 100 employs an engine stop-start function whereby the engine 108 is turned off via the starter-generator 112 in response to a command issued by the vSC 102. An example of where this may occur is when a determination is made by the motor controller 135 that the vehicle has come to a complete stop (e.g., vehicle comes to a halt in traffic) . Under the control of the engine controller 116, the engine 108 is quickly started when it is necessary for the vehicle to move (e.g., vehicle coming out of halt in traffic). The generator controller 122 is adapted to transmit/receive data signal to/from the VSC 102 over the multiplexed data bus 118. The generator controller 122 may transmit data related to operating characteristics of the power circuitry and the starter-generator 112 over the multiplexed data bus 118 to the VSC 102.
The starter-generator 112 may be placed in series with the engine 108 and the transmission 110 and generate energy (electrical current) when the engine 108 is rotating. The generator controller 122 may provide high voltage over a high voltage bus 123. A battery 125 is coupled to the motor controller 135 via the high voltage bus 123. The battery stores electrical current delivered from the Dc/Dc converter subsystem 114 and the motor controller 135. The Dc/Dc converter subsystem 114 is configured to step down high-voltage delivered over the high-voltage bus to produce low voltage. The Dc/DC converter subsystem 114 provides the low voltage over a low voltage bus (not shown). The low voltage may be used by the engine controller 116, the transmission controller 120 and accessory devices (not shown) in the vehicle for power. Various examples of accessories that use low voltage to operate may include and are not limited to motor electronics coolant pump(s), engine cooling fan(s), battery cooling fan(s), brake vacuum pump, heated seats, heated mirrors and heated window defrost. The DC/DC converter subsystem 114 is also adapted to transmit/receive data signals to/from the VSC 102 over the multiplexed data bus 118.
The engine 108 is generally placed in series with the transmission 110. A front torque output shaft 124 is coupled to the transmission 110. The transmission 110 is adapted to rotate the front axle mechanism 126 when the engine 108 is running. A front differential and axle assembly 126 is coupled to the front torque output shaft 124 and rotates wheels 128 at the front of the vehicle.
The motor subsystem 115 comprises a motor 130 and a motor controller 135. The motor 130 is coupled to the motor controller 135. The motor controller 135 controls the operation of the motor 130. The motor controller 135 may transmit/receive data signals to/from the VSC 102 over the multiplexed data bus 118.
The vehicle 100 further comprises a rear differential and axle assembly 132 couples via a rear torque output shaft 134 to the electric motor 130. The axle assembly 132 drives rear wheels 136 in response to the motor 130 rotating the rear torque output shaft 134. The electric motor 130 may be coupled to the front torque output shaft 124 and/or the rear torque output shaft 134 depending upon the driveline configuration of the vehicle 100.
-10 -In general, the engine 108, the transmission 110, the starter-generator 112, the Dc/DC converter 114, the generator controller 122 (e.g., power electronic circuitry) and the motor 130 may generate a significant amount of heat while operating. In some cases, it may be necessary to cool the subsystems to allow for optimal operation.
A cooling system 106 comprises a first radiator 150, a first coolant loop 152 and a first pump 162. The first radiator 150 provides coolant through the first coolant loop 152. The pump 162 may be activated in response to control signals generated by the VSC 102 to move coolant through the first coolant loop 152. The pump 162 pumps coolant through the first coolant loop 152 to the engine 108 and the transmission 110 in the event the VSC 102 determines that the temperature is hotter than acceptable. The first coolant loop 152 may be configured to present coolant to any number of subsystems in the vehicle and is not intended to be limited to providing coolant to only those subsystems mentioned.
The cooling system 106 further comprises a second radiator 154, a second coolant loop 156 and a second pump 164. The second radiator 154 provides coolant through the second coolant loop 156. The pump 164 is activated in response to control signal by the VSC 102 to move coolant through the second coolant loop 156. The second pump 164 pumps coolant to the DC/DC converter 114, the motor 130, the motor controller 135, the starter-generator 112 and the generator controller 122 in the event the VSC 102 determines that the temperature is hotter than acceptable. The second coolant loop 156 may be configured to present coolant to any number of subsystems in the vehicle and is not intended to be limited to providing coolant to only those subsystems mentioned.
-11 -The cooling system 106 includes a cooling fan 160. The cooling fan 160 is in this case controlled by the VSC 102.
The VSC 102 controls various speeds of the cooling fan 160 in response to the temperature signals generated from the control system 104. The control system 104 may generate temperature signals as multiplexed data messages that correspond to temperature characteristics for a particular subsystem in the control system 104. For example, the Dc/DC converter 114, the engine controller 116, the transmission controller 120, the generator controller 122 and the motor controller 135 may each provide the temperature signal for a subsystem. The subsystems 107, 109, ill, 114, 115 and 122 may each be configured to provide the temperature signal based on actual measured temperatures of the particular component within the subsystem or a measured temperature of coolant within the first and second coolant loops 152 and 156, for a particular subsystem.
The VSC 102 may adjust the speed of the fan 160 and set the fan 160 to a maximum speed based on the temperature signals received by the subsystems 107, 109, 111, 114, 115 and 122. The VSC 102 may also activate the pumps 162, 164 to pump coolant through the first and second coolant loops 152, 156 based on the temperature signal received by the subsystems 107, 109, 111, 114, 115 and 122.
The VSC 102 may deactivate the pumps 162, 164 once the VSC 102 determines that the temperature signal from a particular subsystem that has the hottest temperature measurement is within an acceptable temperature range.
The VSC 102 may not need to rely on comparing measured temperatures to thresholds or values in order to activate the pumps 162, 164 and to set the appropriate speed for the fan 160.
-12 -The VSC 102 may control the speed of the fan 160 to cool the engine 108, the transmission 110, the starter-generator 112, the DC/DC converter 114, the generator controller 122 and the motor controller 135. If multiple cooling fans are used, then the VSC 102 may independently control a particular fan speed for a particular fan based on the particular temperature signal for a particular subsystem in the control system 104.
Fig.2 illustrates a block diagram 200 of the various subsystems in the vehicle 100 providing desired fan speed requests.
In block 202, the engine controller 116 generates an engine temperature signal that corresponds to a temperature of the engine 108. The engine controller 116 transmits the engine temperature signal to the VSC 102. In one example, the engine controller 116 may be adapted to determine the measured temperature of the engine 108 by measuring the temperature of coolant in the first coolant loop 152. In another example, a plurality of temperature sensors (not shown) may be positioned proximate to or within the engine 108 to provide the temperature of the engine 108 to the engine controller 116. The VSC 102 determines a desired fan speed based on the engine temperature signal. The VSC 102 generates an engine fan speed signal that is based on the desired fan speed.
In block 204, the generator controller 122 generates a generator temperature signal that corresponds to a temperature of the starter-generator 112. The generator controller 122 transmits the generator temperature signal to the VSC 102. In one example, a plurality of temperature sensors (not shown) may be positioned proximate to or within the starter-generator 112 and measure the temperature of the starter-generator 112. The temperature sensors transmit the measured temperature to the generator controller 122. The -13 -generator controller 122 generates the starter-generator temperature signal in response to signals from the temperature sensors. The VSC 102 determines a desired fan speed based on the starter-generator temperature signal.
The VSC 102 generates a starter-generator fan speed signal based on the desired fan speed. While Figures 1-2 illustrate a single starter-generator 112, additional starter-generators may be used. The starter-generator controller 122 may be adapted to generate any number of starter-generator temperature signals that correspond to a multiple number of starter-generators.
In block 206, the generator controller 122 generates a power electronic circuit temperature signal that corresponds to a temperature of the power electronic circuitry used to drive the starter-generator 112. The generator controller 122 transmits the power electronics circuit temperature signal to the VSC 102. In one example, the generator controller 122 may be adapted to determine the measured temperature of the power circuitry by measuring the temperature of the coolant in the second coolant loop 156.
In another example, a plurality of temperature sensors (not shown) may be positioned within the generator controller 122 to provide the temperature of the power circuitry to the generator controller 122. The VSC 102 determines a desired fan speed based on the power electronics temperature signal.
The VSC 102 generates a power electronics circuit fan speed signal based on the desired fan speed.
In block 208, the DC/DC converter 114 generates a converter temperature signal that corresponds to a temperature of the DC/DC converter 114. The DC/DC converter 114 transmits the converter temperature signal to the VSC 102. In one example, the DC/DC converter 114 may be adapted to determine the operating temperature by measuring the temperature of the coolant in the second coolant loop 156.
In another example, a plurality of temperature sensors (not -14 -shown) may be positioned proximate to or within the DC/DC converter 114 to measure the temperature. The VSC 102 determines a desired fan speed based on the converter temperature signal. The VSC 102 generates a converter fan speed signal based on the desired fan speed.
In block 210, the transmission controller 120 generates a transmission temperature signal that corresponds to a temperature of the transmission 110. The transmission controller 120 transmits the transmission temperature signal to the VSC 102. In one example, the transmission controller is adapted to determine the measured temperature of the transmission 110 by measuring the temperature of coolant in the first coolant ioop 152. In another example, a plurality of temperature sensors (not shown) may provide the temperature of the transmission 110 to the transmission controller 120. The VSC 102 determines a desired fan speed based on the transmission temperature signal. The VSC 102 generates a transmission fan speed signal based on the desired fan speed.
Finally, in block 211, the motor controller 135 generates a motor temperature signal that corresponds to a temperature of the motor 130. The motor controller 135 transmits the motor temperature signal to the VSC 102. In one example, the motor controller 135 is adapted to determine the measured temperature of the motor 130 by measuring the temperature in the second cooling loop 156.
In another example, a plurality of temperature sensors (not shown) may provide the temperature of the motor 130 to the motor controller 135. The VSC 102 determines a desired fan speed based on the motor temperature signal. The VSC 102 generates a motor fan speed signal based on the desired speed.
Then, in block 212, the VSC 102 determines the maximum fan speed from out of the engine cooling signal, the -15 -starter-generator cooling signal, the power electronic circuit cooling signal, the converter cooling signal, the transmission fan speed signal and the motor cooling signal.
In block 214, the VSC 102 is further adapted to adjust the fan speed based on the maximum desired fan speed and to operate the cooling fan 160 at high, medium or low speeds.
Fig.3 shows a flow chart 300 illustrating a method or strategy for controlling the speed of the cooling fan 160 based on the subsystem fan speed signals.
In step 302, the VSC 102 compares the subsystem fan speed signals against each other (e.g., the engine fan speed signal, the generator fan speed signal, the power electronic fan speed signal, the converter fan speed signal, the transmission fan speed signal and the motor fan speed signal) to determine the maximum desired fan speed.
In step 304, the VSC 102 determines whether the maximum desired fan speed is above a first predetermined fan speed and, if the maximum desired fan speed is above the first predetermined fan speed, then the method 300 moves to step 306.
In step 306, the VSC 102 controls the cooling fan 160 to operate at a high speed.
Whereas, if the maximum desired fan speed is less than the first predetermined fan speed at step 304, the method 300 moves to step 308.
In step 308, the VSC 102 determines whether the maximum desired fan speed is less than a second predetermined fan speed and, if the maximum desired fan speed is below the second predetermined fan speed, the method 300 moves to step 310.
-16 -In step 310, the VSC 102 controls the cooling fan 160 to operate at a low speed.
Whereas, if at step 308 the maximum desired fan speed is greater than the second predetermined fan speed, the method 300 moves to step 312.
In step 312, the VSC 102 controls the cooling fan 160 to operate at a medium speed.
Therefore in summary, a system and method are disclosed for cooling a control system in a vehicle. The system may comprise vehicle subsystems and a vehicle controller and the vehicle subsystems may be configured to generate a plurality of subsystem temperature signals that are indicative of a measured temperature for each vehicle subsystem. The vehicle controller is operable to generate a desired fan speed signal for each vehicle subsystem in response to each subsystem temperature signal and to compare each desired fan speed signal to each other to determine a maximum desired fan speed signal. The vehicle controller then controls the fan such that the fan reaches a speed that is equal to or greater than the maximum desired fan speed signal.

Claims (24)

-17 - CLAIMS
1. A system for controlling the speed of a cooling fan in a vehicle wherein the system comprises a plurality of vehicle subsystems configured to generate a plurality of subsystem temperature signals that are indicative of a measured temperature for each vehicle subsystem and a vehicle controller operable to generate a desired fan speed signal for each vehicle subsystem in response to each subsystem temperature signal and to compare each desired fan speed signal to each other to determine a maximum desired fan speed signal control the fan to reach a speed that is equal to or greater than the maximum desired fan speed signal.
2. A system as claimed in claim 1 wherein the vehicle controller is further operable to compare the maximum desired fan speed signal to a first predetermined fan speed and to set the fan speed to a high speed if the maximum desired fan speed signal is greater than or equal to the first predetermined fan speed.
3. A system as claimed in claim 2 wherein the vehicle controller is further operable to compare the maximum desired fan speed signal to a second predetermined fan speed and to set the fan speed to a low speed if the maximum desired fan speed signal is less than the second predetermined fan speed.
4. A system as claimed in claim 3 wherein the vehicle controller is further operable to set the fan speed to a medium speed if the maximum desired fan speed signal is greater than the second predetermined fan speed and less than the first predetermined fan speed.
5. A system as claimed in any of claims 1 to 4 wherein the vehicle subsystems include an engine controller -18 -and an engine, the engine controller being adapted to measure temperature of the engine and generate an engine temperature signal and the vehicle controller is operable to determine an engine fan speed signal in response to the engine temperature signal.
6. A system as claimed in any of claims 1 to 5 wherein the vehicle subsystems include a transmission controller and a transmission, the transmission controller being adapted to measure temperature of the transmission and generate a transmission temperature signal and the vehicle controller is operable to determine a transmission fan speed signal in response to the transmission temperature signal.
7. A system as claimed in any of claims 1 to 6 wherein the vehicle subsystems include a generator controller and a starter-generator, the generator controller being adapted to measure temperature of the starter-generator and generate a starter-generator temperature signal and the vehicle controller is operable to determine a generator fan speed signal in response to the starter-generator temperature signal.
8. A system as claimed in claim 7 wherein the generator controller comprises power electronic circuitry, the generator controller is adapted to measure a temperature of the power electronic circuitry and generate a power electronic circuit temperature signal and the vehicle controller is operable to determine a power electronic fan speed signal in response to the power electronic circuit temperature signal.
9. A system as claimed in any of claims 1 to 8 wherein the vehicle subsystems include a DC/DC converter subsystem adapted to measure an internal operating temperature of a DC/DC converter and generate a converter temperature signal and the vehicle controller is operable to - 19 -determine a converter fan speed signal in response to the converter temperature signal.
10. A system as claimed in any of claims 1 to 9 wherein the vehicle subsystems includes a motor controller and a motor, the motor controller being adapted to measure the temperature of the motor and generate a motor temperature signal and the vehicle controller is operable to determine a motor fan speed signal in response to the motor temperature signal.
11. A vehicle having a system for controlling the speed of a cooling fan as claimed in any of claims 1 to 10.
12. A vehicle as claimed in claim 11 wherein the vehicle further comprises a cooling fan and a plurality of cooling loops, the vehicle subsystems are positioned about the plurality of cooling loops and the vehicle controller is operable to control the plurality of cooling loops to cool the vehicle subsystems in response to each subsystem temperature signal.
13. A method for controlling fan speed for a cooling fan in a vehicle wherein the method comprises the steps of generating a plurality of subsystem temperature signals for a plurality of vehicle subsystems that are indicative of a measured temperature for each vehicle subsystem, generating a desired fan speed signal for each vehicle subsystem, comparing each desired fan speed signal to each other to determine a maximum desired fan speed signal and controlling the fan such that the fan reaches a fan speed that is equal to or greater than the maximum desired fan speed signal.
14. A method as claimed in claim 13 wherein the method further comprises comparing the maximum desired fan speed to a first predetermined fan speed and controlling the fan speed to a high speed in response to determining that the -20 -maximum desired fan speed is greater than the first predetermined fan speed.
15. A method as claimed in claim 14 wherein the method further comprises comparing the maximum desired fan speed to a second predetermined fan speed and controlling the fan speed to a low speed in response to determining that the maximum desired fan speed is less than the second predetermined fan speed.
16. A method as claimed in claim 15 wherein the method further comprises controlling the fan speed to a medium speed in response to the determining that the maximum desired fan speed is greater than the second predetermined fan speed and less than the first predetermined fan speed.
17. A method as claimed in any of claims 13 to 16 wherein the vehicle subsystems include an engine controller and an engine, the engine controller being adapted to measure temperature of the engine and generate an engine temperature signal and the vehicle controller is operable to determine an engine fan speed signal in response to the engine temperature signal.
18. A method as claimed in any of claims 13 to 17 wherein the vehicle subsystems include a transmission controller and a transmission, the transmission controller being adapted to measure temperature of the transmission and generate a transmission temperature signal and the vehicle controller is operable to determine a transmission fan speed signal in response to the transmission temperature signal.
19. A method as claimed in any of claims 13 to 18 wherein the vehicle subsystems include a generator controller, a starter-generator, a motor controller and a motor, the generator controller is adapted to measure temperature of the starter-generator and generate a starter- -21 -generator temperature signal, the motor controller is adapted to measure the temperature of the motor and generate a motor temperature signal and the vehicle controller is operable to determine a generator fan speed signal in response to the starter-generator temperature signal and to determine a motor fan speed signal in response to the motor temperature signal.
20. A method as claimed in claim 19 wherein the io generator controller comprises power electronic circuitry, the generator controller is adapted to measure temperature of the power electronic circuitry and generate a power electronic circuit temperature signal and the vehicle controller is configured to determine a power electronic fan speed signal in response to the power electronic circuit temperature signal.
21. A method as claimed in any of claims 13 to 20 wherein the vehicle subsystems include a DC/DC converter subsystem adapted to measure an internal operating temperature of a DC/DC converter and generate a converter temperature signal and the vehicle controller is operable to determine a converter fan speed signal in response to the converter temperature signal.
22. A system for controlling the speed of a cooling fan in a vehicle substantially as described herein with reference to the accompanying drawing.
23. A vehicle substantially as described herein with reference to the accompanying drawing.
24. A method for controlling fan speed substantially as described herein with reference to the accompanying drawing.
GB0817438.5A 2007-10-12 2008-09-24 Control of a vehicle cooling fan Expired - Fee Related GB2453632B (en)

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Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2402182A1 (en) * 2010-07-02 2012-01-04 Flextronics International Kft. System for operating an direct-current motor application for a vehicle
NL2007704C2 (en) * 2011-11-02 2013-05-07 Daf Trucks Nv METHOD AND COOLING DEVICE FOR CONTROLLING A LIQUID PUMP OF AN ENGINE.
RU2492335C2 (en) * 2011-12-23 2013-09-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Московский государственный университет путей сообщения" (МГУПС (МИИТ)) Automatic combined microprocessor temperature controller of thermal machine with mechanical drive of fan
RU2645519C1 (en) * 2016-11-08 2018-02-21 Андрей Сергеевич Космодамианский Automatic microprocessor system to control vehicle power plant temperature
CN112389158A (en) * 2020-11-30 2021-02-23 东风华神汽车有限公司 Method and system for controlling commercial vehicle fan

Families Citing this family (17)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7793746B2 (en) * 2007-03-09 2010-09-14 Gm Global Technology Operations, Inc. Noise-comfort function for cooling systems with proportional variable speed fans
US8136618B2 (en) * 2009-01-21 2012-03-20 The Raymond Corporation Cyclonic motor cooling for material handling vehicles
US8677948B2 (en) * 2009-10-05 2014-03-25 Cummins Power Generation Ip, Inc. Variable speed high efficiency cooling system
US8104435B2 (en) * 2010-04-23 2012-01-31 Ford Global Technologies, Llc Cooling fan control
CN102862473B (en) * 2011-07-06 2015-11-25 上海汽车集团股份有限公司 A kind of axial fan method for controlling number of revolution and motor vehicle driven by mixed power
CN103982289B (en) * 2013-02-07 2017-07-21 上海汽车集团股份有限公司 The fan rotational frequency control method and system of automobile cooling system
CN104808714A (en) * 2014-01-28 2015-07-29 上海汽车集团股份有限公司 Automobile generator cooling circulatory system and system and method for estimating temperature of stator of automobile generator
US9638090B2 (en) * 2014-11-17 2017-05-02 Hyundai Motor Company Apparatus and method for improving efficiency of alternator for vehicle
CN105599592B (en) * 2016-01-28 2019-01-29 苏州汇川技术有限公司 Electric vehicle motor controller cooling control system and method
US10197149B2 (en) * 2016-03-23 2019-02-05 Kawasaki Jukogyo Kabushiki Kaisha V-belt type continuously variable transmission
CN106274889B (en) * 2016-08-08 2018-08-17 曹燕凌 A kind of hybrid electric vehicle cooling system control method
CN106274513B (en) * 2016-08-31 2018-11-27 北京新能源汽车股份有限公司 A kind of heat control method and system of stroke-increasing electric automobile
CN108068610B (en) * 2016-11-15 2021-07-13 大陆投资(中国)有限公司 Control device and method for electric vehicle cooling system
KR20180068187A (en) 2016-12-13 2018-06-21 현대자동차주식회사 Appratus and method for cooling mhsg of mild hybrid electric vehicle
CN109339931B (en) * 2018-06-26 2020-02-07 石家庄铁道大学 Hybrid vehicle cooling system and hybrid vehicle
CN111376710B (en) * 2018-12-28 2021-11-26 长城汽车股份有限公司 Vehicle heat dissipation control method and system
CN113161587B (en) * 2021-04-28 2022-12-13 绍兴学森能源科技有限公司 Self-breathing fuel cell temperature control method based on multiple internal models

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5531190A (en) * 1994-12-09 1996-07-02 Sauer Inc. Electrohydraulic fan control
US6330873B1 (en) * 1993-08-27 2001-12-18 Detroit Diesel Corporation Method for engine control
GB2370107A (en) * 2000-11-02 2002-06-19 Ford Motor Co A method and system for cooling a hybrid electric vehicle.
US20040069546A1 (en) * 2002-10-15 2004-04-15 Zheng Lou Hybrid electrical vehicle powertrain thermal control
GB2419690A (en) * 2004-10-30 2006-05-03 Ford Global Tech Llc A control system for an engine cooling fan with a fluid coupling

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5752011A (en) * 1994-06-20 1998-05-12 Thomas; C. Douglas Method and system for controlling a processor's clock frequency in accordance with the processor's temperature
KR0121950B1 (en) * 1995-08-11 1997-11-13 김광호 Cooling fan control system of a car
US20020163198A1 (en) * 2001-05-03 2002-11-07 Gee Thomas Scott Fail-safe engine cooling control algorithm for hybrid electric vehicle
US6664751B1 (en) * 2002-06-17 2003-12-16 Ford Motor Company Method and arrangement for a controlling strategy for electronic components in a hybrid electric vehicle
JP2005299407A (en) * 2004-04-07 2005-10-27 Toyota Motor Corp Cooling system, method for controlling the same, and automobile
US7708056B2 (en) * 2006-03-30 2010-05-04 Inventec Corporation Fan controlling system and method

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6330873B1 (en) * 1993-08-27 2001-12-18 Detroit Diesel Corporation Method for engine control
US5531190A (en) * 1994-12-09 1996-07-02 Sauer Inc. Electrohydraulic fan control
GB2370107A (en) * 2000-11-02 2002-06-19 Ford Motor Co A method and system for cooling a hybrid electric vehicle.
US20040069546A1 (en) * 2002-10-15 2004-04-15 Zheng Lou Hybrid electrical vehicle powertrain thermal control
GB2419690A (en) * 2004-10-30 2006-05-03 Ford Global Tech Llc A control system for an engine cooling fan with a fluid coupling

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2402182A1 (en) * 2010-07-02 2012-01-04 Flextronics International Kft. System for operating an direct-current motor application for a vehicle
NL2007704C2 (en) * 2011-11-02 2013-05-07 Daf Trucks Nv METHOD AND COOLING DEVICE FOR CONTROLLING A LIQUID PUMP OF AN ENGINE.
RU2492335C2 (en) * 2011-12-23 2013-09-10 Федеральное государственное бюджетное образовательное учреждение высшего профессионального образования "Московский государственный университет путей сообщения" (МГУПС (МИИТ)) Automatic combined microprocessor temperature controller of thermal machine with mechanical drive of fan
RU2645519C1 (en) * 2016-11-08 2018-02-21 Андрей Сергеевич Космодамианский Automatic microprocessor system to control vehicle power plant temperature
CN112389158A (en) * 2020-11-30 2021-02-23 东风华神汽车有限公司 Method and system for controlling commercial vehicle fan

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