Method and system for calibrating a tire pressure sensing system for an automotive vehicle

Information

  • Patent Grant
  • 6745624
  • Patent Number
    6,745,624
  • Date Filed
    Tuesday, February 5, 2002
    23 years ago
  • Date Issued
    Tuesday, June 8, 2004
    20 years ago
Abstract
A system (10) and method is provided for calibrating a tire pressure monitoring system using an EM transmitter (14). The present invention includes a first pressure sensor coupled to a wheel of an automotive vehicle (12). The EM pressure transmitter (14) is coupled to the pressure sensor (32). The transmitter (14) has a serial number associated therewith. An EM calibration device has a transmitting range. The EM transmitter device has an actuator. When the actuator is activated, a calibration signal (34) is transmitted within the transmitting range. The calibration signal causes the EM pressure transmitter (32) to transmit a serial number. A controller (16) is EM coupled to the pressure transmitter. The controller (16) receives the serial number and associates the serial number with a tire location of the vehicle.
Description




BACKGROUND OF THE INVENTION




The present invention relates generally to a system for monitoring tire pressures in an automotive vehicle, and more particularly, to a calibration method and system for calibrating the tire pressure system upon assembly and upon the maintenance of the tires.




Various types of pressure sensing systems for monitoring the pressure within the tires of an automotive vehicle have been proposed. Such systems generate a pressure signal using an electromagnetic (EM) signal which is transmitted to a receiver. The pressure signal corresponds to the pressure within the tire. When the tire pressure drops below a predetermined pressure, an indicator is used to signal the vehicle operator of the low pressure.




Various tire manufacturers have suggested various locations for the pressure sensors. Known systems include coupling a pressure sensor to the valve stem of the tire. Other known systems and proposed systems locate the pressure sensors in various locations within the tire wall or tread. Tires are mounted to wheels that are commonly made from steel or aluminum.




During assembly and during routine maintenance such as tire rotation or tire replacement, the tire pressure system must be calibrated. Calibration involves associating the various tire positions with the pressure transmitters that are located on the tires. One proposed method for calibrating a system uses a magnet device to initiate the calibration. Such a device is described in PCT Publication WO 94/20317. In this system, an internal display panel with locations corresponding to the tire location is activated. When the tire locations are illuminated on the display, the vehicle operator or service technician places the magnet near the indicated tire. The transducer then sends a code corresponding thereto to the central controller. When the indicator indicates another tire location, the magnet must be brought near each tire location until each of the tire locations have a tire registered thereto. One problem with this device is that a separate component such as a magnet must be provided to the vehicle operator that is used only in the calibration process. One problem associated with a separate magnet device is that such a device is subject to loss. Thus, the tire pressure sensing system would be rendered inoperable.




Another drawback with such a system is that because many wheels are made from steel and steel is a magnetic material, the various proposed tire pressure sensing systems may not operate properly because the steel wheels may shield the magnetic energy therefrom. Therefore, the system may also be rendered inoperable because the pressure transmitter will not be activated by the magnet.




It would therefore be desirable to provide a tire pressure calibration system that overcomes the drawbacks mentioned above.




SUMMARY OF INVENTION




The present invention provides a system and method for calibrating a tire pressure monitoring system using an EM transmitter. The present invention includes a first pressure sensor coupled to a wheel of an automotive vehicle. An EM pressure transmitter is coupled to the pressure sensor. The transmitter has a serial number associated therewith. An EM calibration device has a transmitting range. The EM transmitting device has an actuator. When said actuator is activated, a calibration signal is transmitted within the transmitting range. The calibration signal causes the EM pressure transmitter to transmit a serial number. A controller is EM coupled to the pressure transmitter. The controller receives the serial number and associates the serial number with a tire location of the vehicle.




In a further aspect of the invention, a method for calibrating a tire pressure system comprises: generating an EM calibration signal from a transmitter;transmitting calibration information from a tire pressure sensor in response to said EM calibration signal; and receiving said calibration information in a controller.




One advantage of the invention is that the calibration device is preferably incorporated into a remote keyless entry device such as those that are commonly used in automotive vehicles. These devices typically transmit EM signals and therefore can be modified to transmit an additional EM signal to provide the activation signal to the pressure transmitters. This eliminates the problem in the prior art with the expense of a separate calibration tool along with the drawbacks of loss or theft of a separate evaluation tool. That is, because keyless entry devices are coupled to the key chain, they are not subject to easy loss.




Other advantages and features of the present invention will become apparent when viewed in light of the detailed description of the preferred embodiment when taken in conjunction with the attached drawings and appended claims.











BRIEF DESCRIPTION OF DRAWINGS





FIG. 1

is a high level diagrammatic view of a pressure monitoring system according to the present invention.





FIG. 2

is a block diagrammatic view of a pressure monitoring system according to the present invention.





FIG. 2A

is a block diagrammatic view of a pressure transmitter according to the present invention.





FIG. 3

is a diagrammatic view of a digital word from a pressure transmitter.





FIG. 4

is a flow chart illustrating a preferred embodiment of operation of the pressure calibration system according to the present invention.











DETAILED DESCRIPTION




In the following figures, the same reference numerals will be used to illustrate the same components. The present invention is illustrated using a preferred arrangement in a preferred order for calibrating the system. Those skilled in the art will recognize that the various orders and components set forth herein could be changed without varying from the scope of the invention.




Referring now to

FIG. 1

, a pressure monitoring system


10


is illustrated relative to an automotive vehicle


12


. Pressure monitoring system


10


has a transmitter


14


that is EM coupled to a controller


16


. Transmitter


14


is a calibration device used in the calibration of the pressure sensors.




Transmitter


14


is preferably a hand-held transmitter such as those commonly used in keyless entry systems. Preferably, transmitter


14


incorporates the functions commonly used in keyless entry systems as well as the calibration of the pressure monitoring system according to the present invention. For example, transmitter


14


may have an unlock button


18


A, a lock button


18


B, a panic button


18


C, a trunk open button


18


D, and a calibrate tire button


18


E. Buttons


18


A-


18


D are actuators that are commonly found on keyless entry systems of Ford Motor Company vehicles. Each button sends an unique EM signal through transmitter


20


that generates an EM signal through antenna


22


. The EM signals are received by an antenna


24


which is coupled to controller


16


. Automotive vehicle


12


has a lock


26


which is controlled by unlock button


18


A and lock button


18


B. A trunk latch


28


is controlled by trunk latch button


18


D. Panic button


18


C controls the operation of a horn


30


within the vehicle.




Calibrate tire button


18


E also generates an EM calibration signal


34


that is directed to a tire pressure sensor


32


located in each of the tires


36


of automotive vehicle


12


. Of course, other types of actuators may be used including levers, subminiature buttons, and recessed buttons. Also, the same function could be accomplished by actuating two existing buttons simultaneously to trigger the emission of the calibration signal. The EM signal generated by transmitter


20


during actuation of buttons


18


A-


18


D has a range which is preferably around 50 feet. In contrast to that, calibrate tire sensor


18


E preferably has a limited range so that only one tire pressure sensor


32


answers in response to tire calibration signal


34


.




Preferably, transmitter device


14


has a battery


38


therein. Battery


38


preferably powers the device and transmitter


20


. Battery


38


preferably provides a long life for uninterrupted operation of transmitter device


14


.




Referring now to

FIGS. 2 and 2A

, a more detailed block diagrammatic view of pressure monitoring system


10


is illustrated. The present invention may be used in an automobile type of automotive vehicle


12


. The automotive vehicle


12


is illustrated with four tires


36


A,


36


B,


36


C, and


36


D. A pressure sensor transmitter


32


A,


32


B,


32


C, and


32


D are associated with a respective tire. As illustrated, tire


36


A is associated with the left front position of the automotive vehicle, tire


36


B is associated with the right front tire position, tire


36


C is positioned in the right rear tire position, and tire


36


D is positioned in the left rear tire position. The present invention also applies to other types of automotive vehicles having various numbers of wheels and tires. For example, in some pickup trucks, four rear tires may be present. In other types of cargo trucks, eighteen tires or more may be used. Other types of automotive vehicles having pneumatic wheels may also benefit by the present invention. Of course, the range of the transmitter


14


may need to be adjusted to avoid EM interference with unintended pressure sensors. Another example of an automotive vehicle is an airplane.




As mentioned above, transmitter device


14


preferably generates calibration signal


34


having a predetermined range D. The predetermined range is preferably short relative to the distance between the tire positions. For example, the range of calibration signal


34


may be less than three feet and preferably less than two feet. At maximum, the range of EM calibration signal


34


is less than half the distance between the shortest distance between the tire positions. That is, the distances between tire


36


A and


36


B, or


36


D and


36


C, or


36


C and


36


D, or


36


D and


36


A. In response to the actuation of calibration sensor button


18


E shown in

FIG. 1

, tire pressure sensor transmitter


32


A generates a calibration information signal


40


A through antenna


33


A to antenna


24


which is coupled to a receiver


42


. Receiver


42


is coupled to controller


16


which receives the calibration information. The calibration information is stored in a memory


44


that is also coupled to controller


16


. An indicator


46


is also coupled to controller


16


. Indicator


46


may include an indicator light


48


which generates a visual signal or an audible device


50


such as a speaker or buzzer that generates an audible signal. Indicator


46


may provide some indication as to the operability of the system such as confirming receipt of a calibration information signal


40


or other command or controls as will be further described below. Indicator


46


and memory


44


may also be a part of the tire pressure monitoring system which is used to indicate the presence of a low tire pressure in one of the tires.




As is best shown in

FIG. 2A

, a typical tire pressure sensor transmitter


32


A having respective antenna


33


A is illustrated. Tire pressure sensor transmitter


32


A has a pressure sensor


52


coupled to a transmitter/receiver


54


. Other sensing devices such as temperature sensors may also be included as well as other data that may contain information about the tire and wheel construction. This may also be referred to as a transceiver. Transmitter/receiver


54


is also coupled to a serial number memory


56


and the antenna


33


A. A battery, which is preferably a long life battery, is coupled to serial number memory


56


, pressure sensor


52


, and transmitter/receiver


54


to power the tire pressure sensor transmitter


32


A. Transmitter/receiver


54


transmits the serial number located within serial number memory


56


through antenna


22


to controller


16


through receiver


42


. The receiver portion of transmitter/receiver


54


recognizes the calibration signal


34


from transmitter


22


. In response thereto the calibration information signal


40


is generated.




Referring now to

FIG. 3

, the calibration information signal


40


is illustrated. The calibration information signal may include information such as serial number


60


of the particular tire pressure sensor transmitter


32


. Also, any other data associated with the calibration information may also be provided in data portion


62


immediately following the serial number


60


. This information is preferably provided as a digital word. However, an analog signal may also be used.




Referring now to

FIGS. 2 and 4

, a method for calibrating the pressure monitoring system includes the step of initiating a calibration routine in step


70


. The calibration routine may be initiated by a button


64


coupled to controller


16


. Thus, upon the rotation of the tires or assembly of the vehicle, the initiation process may be initiated. Instead of providing a discrete button


64


, various combinations of existing buttons may be employed in the vehicle to initiate the calibration process. Also, it is envisioned that by bringing the transmitter


14


close to a predetermined location within the vehicle, controller


16


may be set to the calibration routine. The calibration routine after initiation in step


70


, the EM transmitter device


14


is activated in step


72


by depressing calibrate tire sensor button


18


E near tire pressure sensor transmitter


32


A. That is, calibrate tire sensor button


18


E is activated so that tire pressure sensor


32


is within the range D of antenna


22


. In step


74


, the calibration information signal


40


is received by controller


16


through receiver


42


. The location of the transmitter


32


A is stored along with the serial number or other information from calibration information signal


40


into memory


44


. Steps


72


and


74


are performed for the left front tire first then the right front tire, right rear tire and left rear tire are performed sequentially. To simplify the operation of the calibration system, a predetermined starting location such as the left front tire is used. The operator may be notified of this through the owner's manual or through an indicator. Also during this process, indicators may be used to signal the operator to move to the next tire or flash or provide an audio signal to confirm the successful receipt of the calibration information signal


40


. The respective calibration signals may be performed in any order but are separated temporally.




In step


76


, the right front transmitter is queried. That is, the transmitter device


14


is brought in close proximity to the tire pressure sensor


32


B. The calibration signal or pertinent information therein is stored in memory associated with the right front tire position in step


78


.




The transmitter device


14


is then moved within the range of the right rear tire pressure transmitter


32


C. In step


80


, the transmitter device


14


is activated. The calibration information signal


40


C is thus received at the controller


16


and stored in the associated memory


44


for the right rear tire position.




The transmitter device


14


is then placed within the range of left rear tire pressure sensor transmitter


32


D. The transmitter device is actuated by the calibrate tire button


18


E wherein a signal is generated therefrom. In step


86


, the calibration information signal


86


is transmitted to the controller where it is stored in memory for the left rear tire location. After the calibration process is complete, the pressure monitoring process


88


is initiated. This process monitors the tire pressures by receiving tire pressure data and the serial number of each of the tire pressures at predetermined times. The controller knows the location of each serial number as determined in the calibration process so that upon the detection of a low tire pressure, the vehicle operator may be warned.




It should be noted that more than four vehicle tires may be included in the process. For example, a spare tire may also be programmed in a similar manner. Likewise, various light duty and tractor trailers may also utilize the present invention. Tractor trailers may have up to eighteen or more wheels that can be calibrated in a similar manner.




While particular embodiments of the invention have been shown and described, numerous variations and alternate embodiments will occur to those skilled in the art. Accordingly, it is intended that the invention be limited only in terms of the appended claims.



Claims
  • 1. A pressure monitoring system for a tire of an automotive vehicle comprising:a first pressure sensor coupled to said wheel; an EM pressure transmitter coupled to said pressure sensor, said transmitter having calibration information associated therewith; an EM calibration device having a transmitting range, said EM calibration device having an actuator therein, said actuator when actuated generating an EM calibration signal within said transmitting range; wherein said calibration signal causing said EM pressure transmitter to EM transmit said calibration information, a controller EM coupled to said pressure transmitter, said controller receiving said calibration information and associating said calibration information with a tire location relative to said vehicle.
  • 2. A system as recited in claim 1 wherein said transmitting range is less than three feet.
  • 3. A system as recited in claim 1 wherein said EM calibration device is hand-held.
  • 4. A system as recited in claim 1 wherein said EM calibration device is incorporated into a remote keyless entry device.
  • 5. A system as recited in claim 1 further comprising a receiver coupled to said controller for receiving said calibration signal.
  • 6. A system as recited in claim 1 further comprising a memory, said controller storing said calibration information in said memory.
  • 7. A system as recited in claim 1 further comprising an EM pressure receiver for receiving said calibration signal.
US Referenced Citations (57)
Number Name Date Kind
1948427 Moecker Feb 1934 A
2274557 Morgan et al. Feb 1942 A
2578358 Jellison Dec 1951 A
2589623 Merritt et al. Mar 1952 A
3911855 Haven Oct 1975 A
3965847 Deming Jun 1976 A
3974477 Hester Aug 1976 A
4051803 Arnone Oct 1977 A
4316176 Gee et al. Feb 1982 A
4376931 Komatu et al. Mar 1983 A
4494106 Smith et al. Jan 1985 A
4510484 Snyder Apr 1985 A
4574267 Jones Mar 1986 A
4742476 Schwartz et al. May 1988 A
5061917 Higgs et al. Oct 1991 A
5109213 Williams Apr 1992 A
5463374 Mendez et al. Oct 1995 A
5517853 Chamussy May 1996 A
5583482 Chamussy et al. Dec 1996 A
5600301 Robinson, III Feb 1997 A
5612671 Mendez et al. Mar 1997 A
5656993 Coulthard Aug 1997 A
5661651 Geschke et al. Aug 1997 A
5717376 Wilson Feb 1998 A
5721528 Boesch et al. Feb 1998 A
5741966 Handfield et al. Apr 1998 A
5801306 Chamussy et al. Sep 1998 A
5838229 Robinson, III Nov 1998 A
5853020 Widner Dec 1998 A
5913240 Drähne et al. Jun 1999 A
5926087 Busch et al. Jul 1999 A
5939977 Monson Aug 1999 A
5963128 McClelland Oct 1999 A
5965808 Normann et al. Oct 1999 A
5969239 Tromeur et al. Oct 1999 A
5999091 Wortham Dec 1999 A
6034597 Normann et al. Mar 2000 A
6043738 Stewart et al. Mar 2000 A
6046672 Pearman Apr 2000 A
6078252 Kulczycki et al. Jun 2000 A
6111520 Allen et al. Aug 2000 A
6161071 Shuman et al. Dec 2000 A
6199575 Widner Mar 2001 B1
6204758 Wacker et al. Mar 2001 B1
6225895 Bigelow, Jr. May 2001 B1
6232875 DeZorzi May 2001 B1
6246317 Pickornik et al. Jun 2001 B1
6259361 Robillard et al. Jul 2001 B1
6271748 Derbyshire et al. Aug 2001 B1
6275231 Obradovich Aug 2001 B1
6278379 Allen et al. Aug 2001 B1
6292096 Munch et al. Sep 2001 B1
6293147 Parker et al. Sep 2001 B1
6327570 Stevens Dec 2001 B1
6339736 Moskowitz et al. Jan 2002 B1
20010008083 Brown Jul 2001 A1
20020008718 Obradovich Jan 2002 A1