A vehicle seat belt tension prediction restraint actuator control system and method comprises an accelerometer having an output that generates a signal responsive to vertical acceleration of the vehicle, a seat weight force responsive sensor having an output that generates a signal responsive to the force exerted by a mass resting on the seat, and a processor means operatively coupled to the accelerometer and the force responsive sensor for calculating seat belt tension controlling the actuation of a restraint actuator responsive thereto. The processor is provided with a plurality of inputs operatively coupled to the accelerometer output and seat weight sensor output. Suitable programming is provided to instruct In one embodiment, the processor to calculates the average mass resting on the vehicle seat and predictthe s a force that should be exerted on the seat for corresponding to a measured level of vertical acceleration assuming zero belt tension. The processor then compares the controls the actuation of the restraint actuator responsive to a comparison of an actual force measured by the seat weight force responsive sensor with the predicted force to determine seat belt tension thereby obviating the necessity of complex hardware in physical contact with the seat belt system . In another embodiment, the processor controls the actuation of the restraint actuator responsive to a ratio of a measure of seat weight divided by a measure of vertical acceleration and by the average mass.

Patent
   RE40096
Priority
May 12 1997
Filed
Dec 19 2002
Issued
Feb 26 2008
Expiry
May 11 2018
Assg.orig
Entity
Large
2
39
EXPIRED
0. 22. A method of controlling the actuation of an air bag in a vehicle, comprising:
a. measuring a vertical acceleration of the vehicle proximate to a location of a seat, wherein said seat is associated with the air bag;
b. measuring a weight upon said seat of the vehicle; and
c. controlling the actuation of the air bag responsive to said operations of measuring said vertical acceleration and measuring said weight.
0. 17. A system for controlling the actuation of an air bag in a vehicle, comprising:
a. an accelerometer operatively coupled to the vehicle, wherein said accelerometer generates a first signal responsive to a vertical acceleration of the vehicle proximate to a seat thereof, wherein said seat is associated with the air bag;
b. a seat weight sensor, wherein said seat weight sensor generates a second signal responsive to a weight on said seat; and
c. a processor operatively coupled to said accelerometer and to said seat weight sensor, wherein said processor is adapted to generate a third signal for controlling the actuation of the air bag, and said third signal is responsive to both said first signal and said second signal.
0. 12. A system for measuring seat belt tension in a vehicle having an airbag control system and a seat, comprising:
a. an accelerometer rigidly secured to said vehicle in proximity to the seat thereof, said accelerometer having an output signal responsive to the vertical acceleration of said vehicle;
b. a seat weight sensor having an output signal responsive to the force exerted by a mass on said seat; and
c. a processor having first and second inputs, the first input being operatively coupled to the output signal of said accelerometer and the second input being operatively coupled to the output signal of said seat weight sensor, wherein said processor calculates tension in said seat belt responsive to said output signal of said accelerometer and responsive to said output signal of said seat weight sensor.
1. A system for measuring seat belt tension in a vehicle having an airbag control system and a seat, comprising:
a.) a. an accelerometer rigidly secured to said vehicle in proximity to the seat thereof, said accelerometer having an output signal responsive to the vertical acceleration of said vehicle;
b.) b. a seat weight sensor having an output signal responsive to the force exerted by a mass on said seat; and
c.) c. a computer processor having first and second inputs, the first input being operatively coupled to the output signal of said accelerometer and the second input being operatively coupled to the output signal of said seat weight sensor, wherein said processor calculates tension in said seat belt by comparing the output signal of said seat weight sensor at discrete time intervals with predicted fluctuations in the force exerted on the seat caused by vertical acceleration acting upon the mass, assuming no seatbelt tension.
10. A method for predicting seatbelt tension in a vehicle having a seat, an accelerometer rigidly secured to said vehicle in proximity to the seat, said accelerometer having an output signal responsive to a vertical acceleration of said vehicle, a seat weight sensor having an output signal responsive to a force exerted by a mass on the seat, and a processor having a first input operatively coupled to the output signal of said accelerometer and a second input operatively coupled to the output signal of said weight sensor comprising:
a.) a. measuring the force duct to vertical acceleration exerted on the seat at discrete time intervals;
b.) b. calculating an average mass on the seat;
c.) c. calculating at discrete time intervals a predicted force acting on the seat due to vertical acceleration, assuming the tension in said seat belt is zero; and
d.) d. calculating at discrete time intervals a difference between the measured force exerted on the seat and the predicted force whereby the difference is indicative of seats belt tension.
9. A method for predicting seatbelt tension in a vehicle having a seat, an accelerometer rigidly secured to said vehicle in proximity to the seat, said accelerometer having an output signal responsive to a vertical acceleration of said vehicle, a seat weight sensor having an output signal responsive to a force exerted by a mass acting on the seat, and a processor having a first input operatively coupled to the output signal of said accelerometer and a second input operatively coupled to the output signal of said weight sensor comprising:
a.) a. measuring an actual variation in force due to vertical acceleration exerted on the seat over a predetermined time period;
b.) b. calculating an average mass on the seat;
c.) c. calculating a predicted variation in force due to vertical acceleration exerted on the seat by multiplying the average mass on the seat by the variation in vertical acceleration over a predetermined time period; and
d.) d. dividing the actual variation in force by the predicted variation in force whereby a quotient represents normalized seatbelt tension.
11. A method for predicting seatbelt tension in a vehicle having a seat, an accelerometer rigidly secured to said vehicle in proximity to the seat, said accelerometer having an output signal responsive to a vertical acceleration of said vehicle, a seat weight sensor having an output signal responsive to a force exerted by a mass on the seat, and a processor having a first input operatively coupled to the output signal of said accelerometer and a second input operatively coupled to the output signal of said weight sensor comprising:
a.) a. measuring the force due to vertical acceleration exerted on the seat at discrete time intervals;
b.) b. calculating an average mass on the seat;
c.) c. measuring the vertical acceleration acting on said vehicle at discrete time intervals;
d.) d. calculating at discrete time intervals a predicted force exerted on the seat by multiplying the vertical acceleration at each time interval by the average mass, assuming the tension in said seat belt is zero; and
e.) e. calculating at discrete time intervals a ratio between the measured force exerted on the seat and the predicted force exerted on the seat whereby the ratio is indicative of seat belt tension.
2. The system of claim 1 wherein said seat weight sensor comprises a hydrostatic seat weight sensor disposed within the seat.
3. The system of claim 1 wherein said seat weight sensor comprises a plurality of load cells adapted to be responsive to the force exerted on the seat by said seat belt.
4. The system of claim 1 wherein said seat weight senor comprises a plurality of force sensitive resistive elements disposed within the seat.
5. The system of claim 1 wherein said computer processor further comprises an output operatively coupled to said air bag control system for inhibiting said control system upon the calculation of high seat belt tension.
6. The system of claim 2 wherein said computer processor further comprises an output operatively coupled to said air bag control system for inhibiting an operation thereof upon the calculation of high seat belt tension.
7. The system of claim 3 wherein said computer processor further comprises an output operatively coupled to said air bag control system for inhibiting an operation thereof upon the calculation of high seat belt tension.
8. The system of claim 4 wherein said computer processor further comprises an output operatively coupled to said air bag control system for inhibiting an operation thereof upon the calculation of high seat belt tension.
0. 13. A system for measuring seat belt tension in a vehicle having an airbag control system and a seat as recited in claim 12, wherein said seat weight sensor comprises a hydrostatic seat weight sensor disposed within the seat.
0. 14. A system for measuring seat belt tension in a vehicle having an airbag control system and a seat as recited in claim 12, wherein said seat weight sensor comprises a plurality of load cells adapted to be responsive to the force exerted on the seat by said seat bell.
0. 15. A system for measuring seat belt tension in a vehicle having an airbag control system and a seat as recited in claim 12, wherein said seat weight sensor comprises a plurality of force sensitive resistive elements disposed within the seat.
0. 16. A system for measuring seat belt tension in a vehicle having an airbag control system and a seat as recited in claim 12, wherein said processor further comprises an output operatively coupled to said air bag control system for inhibiting the operation thereof upon the calculation of high seat belt tension.
0. 18. A system for controlling the actuation of an air bag in a vehicle as recited in claim 17, wherein said accelerometer is rigidly secured to the vehicle in proximity to said seat.
0. 19. A system for controlling the actuation of an air bag in a vehicle as recited in claim 17, wherein said seat weight sensor comprises a hydrostatic seat weight sensor disposed within said seat.
0. 20. A system for controlling the actuation of an air bag in a vehicle as recited in claim 17, wherein said seat weight sensor comprises a plurality of load cells adapted to be responsive to the force exerted on said seat by a seat belt associated therewith.
0. 21. A system for controlling the actuation of an air bag in a vehicle as recited in claim 17, wherein said seat weight sensor comprises a plurality of force sensitive resistive elements disposed within said seat.
0. 23. A method of controlling the actuation of an air bag in a vehicle as recited in claim 22, wherein the operation of controlling the actuation of the air bag responsive to said operations of measuring said vertical acceleration and measuring said weight comprises:
a. determining an average mass on said seat from at least one weight measure, wherein said at least one weight measure is generated by the operation of measuring said weight upon said seat;
b. determining a first variation of a plurality of said weight measures within a time period;
c. determining a second variation of a plurality of vertical acceleration measures within said time period, wherein said plurality of vertical acceleration measures are generated by the operation of measuring said vertical acceleration of the vehicle proximate to a location of said seat; and
d. determining a quotient responsive to a division of said first variation by said second variation and by said average mass, wherein the operation of controlling the actuation of the air bag is responsive to said quotient.
0. 24. A method of controlling the actuation of an air bag in a vehicle as recited in claim 23, wherein the actuation of the air bag is inhibited if said quotient is less than a threshold.
0. 25. A method of controlling the actuation of an air bag in a vehicle as recited in claim 22, wherein the operation of controlling the actuation of the air bag responsive to said operations of measuring said vertical acceleration and measuring said weight comprises:
a. determining an average mass on said seat from at least one weight measure, wherein said at least one weight measure is generated by the operation of measuring said weight upon said seat;
b. determining said weight measure at discrete time intervals,
c. determining a vertical acceleration measure at said discrete time intervals, wherein said vertical acceleration measure is generated by the operation of measuring said vertical acceleration of the vehicle proximate to a location of said seat; and
d. determining a difference between said weight measure and a product of said average mass and said vertical acceleration measure, wherein the operation of controlling the actuation of the air bag is responsive to said difference.
0. 26. A method of controlling the actuation of an air bag in a vehicle as recited in claim 25, wherein the actuation of the air bag is inhibited if the magnitude of said difference is greater than a threshold.
0. 27. A method of controlling the actuation of an air bag in a vehicle as recited in claim 22, wherein the operation of controlling the actuation of the air bag responsive to said operations of measuring said vertical acceleration and measuring said weight comprises:
a. determining an average mass on said seat from at least one weight measure, wherein said at least one weight measure is generated by the operation of measuring said weight upon said seat;
b. determining said weight measure at discrete time intervals;
c. determining a vertical acceleration measure at said discrete time intervals, wherein said vertical acceleration measure is generated by the operation of measuring said vertical acceleration of the vehicle proximate to a location of said seat; and
d. determining a quotient responsive to a division of said weight measure by said vertical acceleration measure and by said average mass, wherein the operation of controlling the actuation of the air bag is responsive to said quotient.
0. 28. A method of controlling the actuation of an air bag in the vehicle as recited in claim 27, wherein the actuation of the air bag is inhibited if said quotient is less than a threshold.

greater
where

The vertical acceleration A of the vehicle 12 fluctuates around zero g and thus causes variations in the force F acting on the seat 14. The belt tension BT approximates a constant value that is near zero for most occupant seating situations except for the presence of tightly belted child seats. The belt tension BT is generally a small value because belt tension greater than a few pounds of force has been found to be uncomfortable for most vehicle occupant thereby making it unlikely that an occupant is present when there is significant tension in the seat belt 34.

As previously disclosed, the output signal 32 of the weight sensor 30 is divided by the earth's gravitational constant g by processor 50 to calculate the average mass M present in the vehicle seat 14. The processor 50 then calculates a predicted force acting downwardly on the seat 14 at discrete time intervals using the aforementioned average mass, with the assumption that the belt tension BT is zero. Still assuming zero belt tension BT, the processor 50 then compares the actual value of the force F as measured at each discrete point in time by the weight sensor 30 with the calculated or predicted force. The difference between the predicted and actual values of force F provides an indication of the tension BT present in the seat belt BT 34.

In an alternative method for predicting belt tension BT, the processor 50 monitors the weight sensor output signal 32 at discrete time intervals and measures the amplitude of the oscillations of the output signal 32 at each discrete point in time. The processor 50 further monitors the accelerometer output signal 22 at the corresponding discrete time intervals and calculates the amplitudes of the oscillations of the accelerometer output signal 22. The resultant accelerometer amplitude measurements are then sequentially multiplied by the average mass M present in the vehicle seat 14 to calculate the predicted force acting on the seat 14 at each discrete point in time. The ratio of the actual force acting on the seat 14 to the calculated force at each time interval thereby provides a measure of seat belt tension.

A tightly belted mass present in the vehicle seat 14 will produce a reduced ratio of actual force to predicted force as compared to the ratio calculated when a “free” mass is positioned in the vehicle seat 14. Therefore, the smaller the ratio between actual force as indicated by the weight sensor 30 to predicted force as calculated using the average mass M and the accelerometer output signal 22, the greater the belt tension BT, and the higher the probability that an infant seat is tightly belted down onto the vehicle seat 14. The processor 50 may be provided with a look-up table whereby seat belt 34 tension may be determined given a specific calculated tension ratio.

Accordingly, and as shown in FIG. 1, where the processor 50 calculates a level of tension in the seat belt 34 in excess of a predetermined maximum, the processor 50 will generate an output signal 56 operatively coupled to an air bag control system 60 to inhibit deployment of the air bag. Alternatively, where the processor 50 calculates a level of tension in the seat belt 34 below the predetermined maximum and the seat weight sensor 30 indicates that the occupant's weight is below a predetermined maximum, the processor 50 will provide an output signal 56 to the air bag control system 60 to reduce the inflation profile thereof according to the measured weight of the occupant.

While specific embodiments of the instant invention have been described in detail, those with ordinary skill in the art will appreciate that various modifications and alternatives to those details could be developed in light of the overall teachings of the disclosure. Accordingly, the particular arrangements disclosed are meant to be illustrative only and not limiting as to the scope of the invention, which is to be given the full breadth of the appended claims and any and all equivalents thereof.

Stanley, James Gregory

Patent Priority Assignee Title
8041483, Apr 21 2005 Automotive Technologies International, Inc Exterior airbag deployment techniques
8328276, Aug 24 2009 Aisin Seiki Kabushiki Kaisha Apparatus and method for determining impact on vehicle and apparatus for warning impact on vehicle
Patent Priority Assignee Title
3889529,
3992946, Dec 11 1975 The A. H. Emery Company Hydraulic weighing apparatus
4056156, Aug 12 1976 Weighing device
4219090, Apr 13 1979 Weighing device
4360071, Feb 15 1980 INTERNATIONAL ROAD DYNAMICS INC Sealed load cell construction
4383584, Mar 07 1980 INTERNATIONAL ROAD DYNAMICS INC Sealed load cell construction
4827091, Sep 23 1988 Automotive Systems Laboratory, Inc. Magnetically-damped, testable accelerometer
4914263, Sep 23 1988 Automotive Systems Laboratory, Inc. Magnetically-damped, testable accelerometer
4922065, Mar 09 1989 AUTOMOTIVE SYSTEMS LABORATORY, INC , A MI CORP Temperature-compensating accelerometer
4933515, Mar 09 1989 Automotive Systems Laboratory, Inc Accelerometer with dual-magnet sensing mass
4957286, Oct 14 1988 The Faulhaber Co. Seat with weight measuring capabilities
4987898, Jan 17 1989 Noninvasive Medical Incorporated Method and device for the non-invasive measurement of pressure
5117373, May 18 1990 LOAD CELL SYSTEMS, INC Low profile weight measuring system for containers
5149925, Sep 05 1990 AUTOMOTIVE SYSTEMS LABORATORY, INC , A CORP OF MICHIGAN Quick-response accelerometer
5161820, May 23 1990 Audi AG Inflatable air bag safety device for motor vehicles
5163325, Sep 23 1988 Automotive Systems Laboratory, Inc. Self-compensating accelerometer
5232243, Apr 09 1991 TRW Vehicle Safety Systems Inc. Occupant sensing apparatus
5369231, Sep 05 1990 Automotive Systems Laboratory, Inc Quick-response accelerometer with increased contact dwell time
5454591, Mar 11 1993 TRW Vehicle Safety Systems Inc. Method and apparatus for sensing a rearward facing child restraining seat
5474327, Jan 10 1995 Delphi Technologies Inc Vehicle occupant restraint with seat pressure sensor
5484166, Jul 22 1994 TRW Vehicle Safety Systems Inc Method and apparatus for providing a deployment signal for a vehicle occupant restraint device during a side impact crash
5496979, Mar 11 1994 Automotive Systems Laboratory, Inc. Accelerometer with optical switch
5553924, Nov 15 1994 PENN STATE RESEARCH FOUNDATION, THE Vehicle safety seat system
5573269, Dec 02 1993 TRW Vehicle Safety Systems Inc. Apparatus and method for sensing and restraining an occupant of a vehicle seat
5606516, Aug 07 1995 Fairbanks Scales Inc. Digitally compensated hydraulic scale system
5614700, Oct 11 1994 Automotive Systems Laboratory, Inc. Integrating accelerometer capable of sensing off-axis inputs
5615917, Nov 28 1994 TRW Vehicle Safety Systems Inc. Apparatus for use in a vehicle occupant restraint system
5900677, Feb 21 1997 Key Safety Systems, Inc Sensing logic system and method for adaptive control of vehicle restraint devices
5984349, Dec 19 1996 Automotive Systems Laboratory, Inc Low profile hydraulic seat weight sensor
6056079, Jan 08 1997 Automotive Systems Laboratory, Inc Automotive seat weight sensing system
6084314, Aug 11 1998 TRW Inc. Integrated occupant protection system
6151540, May 11 1999 Aptiv Technologies Limited Dynamic occupant position detection system and method for a motor vehicle
6246936, Oct 05 1999 Aptiv Technologies Limited Vehicle occupant characterization method based on sensed occupant weight
6259167, Jul 09 1998 Seat occupant weight sensing system
6364352, Jul 09 1997 Seat occupant weight sensing system
6438476, Feb 27 2002 Aptiv Technologies Limited Vehicle seat occupant characterization method including ultralight child seat detection
6438477, Feb 27 2002 Aptiv Technologies Limited Vehicle seat occupant characterization method including empty seat detection
6542802, Jul 02 2001 Aptiv Technologies Limited Vehicle occupant characterization method with rough road compensation
20030067149,
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