Nova Patents
EP4046833A1

Vehicle and bump sensor

Abstract

A vehicle (50) comprising an orientationally flexible bump sensor (35f, 35r), which orientationally flexible bump sensor comprises: at least one bump sensor mounted to said vehicle, said at least one bump sensor comprising at least two axes of measurement; and a computer processor configured to: evaluate said at least two axes of measurement to determine which axis of said at least two axes of measurement has a highest magnitude vector; determine a gain value to cause said highest magnitude vector to be approximately lg; and assign said gain value to said axis with said highest magnitude vector, such that said gain value is applied to each measurement generated by said axis with said highest magnitude vector.

EP4046833A1, drawing sheet 1
Sheet 1 of 8

Term

15.4 yearsto projected expiry

Projected expiry 23 February 2042, counted from filing; an application has no term until it is granted.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

15 claims: 6 independent, 9 dependent

  1. 1
    A vehicle comprising an orientationally flexible bump sensor, which orientationally flexible bump sensor comprises:at least one bump sensor mounted to said vehicle, said at least one bump sensor comprising at least two axes of measurement;and a computer processor configured to: evaluate said at least two axes of measurement to determine which axis of said at least two axes of measurement has a highest magnitude vector;determine a gain value to cause said highest magnitude vector to be approximately 1g;and assign said gain value to said axis with said highest magnitude vector, such that said gain value is applied to each measurement generated by said axis with said highest magnitude vector.
  2. 2
    The vehicle of Claim 1, wherein said at least one bump sensor is mounted to said vehicle at an orientation such that neither of said at least two axes of measurement are perpendicular to a ground plane;and/or wherein said at least one bump sensor is mounted to a swingarm of said vehicle.
  3. 3
    The vehicle of Claim 1 or 2, wherein said at least one bump sensor is adapted to be placed in a calibration state prior to said evaluation of said at least two axes of measurement by said computer processor.
  4. 4
    The vehicle of Claim 1, 2 or 3, wherein said computer processor is a microprocessor of said at least one bump sensor or a microprocessor of a suspension controller.
  5. 5
    The vehicle of any preceding Claim, wherein said at least one bump sensor has a wireless communication capability;and/or wherein said at least one bump sensor has a wired communication capability.
  6. 6
    The vehicle of any preceding Claim, wherein said at least one bump sensor comprises three axes of measurement.
  7. 7
    The vehicle of Claim 6, wherein said at least one bump sensor is mounted to said vehicle at an orientation such that none of said three axes of measurement are perpendicular to a ground plane.
  8. 8
    A method for calibrating an orientationally flexible bump sensor, said method comprising:generating at least two axes of measurement from a bump sensor mounted to a vehicle;evaluating said at least two axes of measurement to determine which axis of said at least two axes of measurement has a highest magnitude vector;determining a gain value to cause said highest magnitude vector to be approximately 1g;and assigning said gain value to said axis with said highest magnitude vector, such that said gain value is applied to every measurement generated by said axis with said highest magnitude vector.
  9. 9
    The method of Claim 8, further comprising:mounting said bump sensor to said vehicle at an orientation such that neither of said at least two axes of measurement are perpendicular to a ground plane;and/or mounting said bump sensor to a swingarm of said vehicle.
  10. 10
    The method of Claim 8 or 9, further comprising:placing said bump sensor into a calibration state prior to said evaluating of said at least two axes of measurement.
  11. 11
    The method of Claim 8, 9 or 10, further comprising:evaluating said at least two axes of measurement and determining said gain value with a microprocessor of said bump sensor or with a microprocessor of a suspension controller.
  12. 12
    The method of any of Claims 8 to 11, further comprising:providing a wireless communication capability for said bump sensor;and/or providing a wired communication capability for said bump sensor.
  13. 13
    The method of any of Claims 8 to 12, wherein:said generating comprises generating three axes of measurement from said bump sensor;and said evaluating comprises evaluating said three axes of measurement to determine which axis of said three axes of measurement has a highest magnitude vector;and optionally further comprising the step of: mounting said bump sensor to said vehicle at an orientation such that none of said three axes of measurement is perpendicular to a ground plane
  14. 14
    For use in a vehicle as claimed in any of Claims 1 to 7, an orientationally flexible bump sensor comprising:at least one bump sensor mountable to said vehicle, said at least one bump sensor comprising at least two axes of measurement;and a computer processor configured to: evaluate said at least two axes of measurement to determine which axis of said at least two axes of measurement has a highest magnitude vector;determine a gain value to cause said highest magnitude vector to be approximately 1g;and assign said gain value to said axis with said highest magnitude vector, such that said gain value is applied to each measurement generated by said axis with said highest magnitude vector.
  15. 15
    For use in a vehicle as claimed in any of Claims 1 to 7, the vehicle comprising a bump sensor for outputting measurements along at least two axes of measurement, a suspension controller comprising:a computer processor and a memory storing a set of computer-executable instructions that, when executed by the computer processor, cause the suspension controller to: evaluate said measurements along said at least two axes of measurement to determine which axis of said at least two axes of measurement has a highest magnitude vector;determine a gain value to cause said highest magnitude vector to be approximately 1g;assign said gain value to said axis with said highest magnitude vector, such that said gain value is applied to each measurement generated by said axis with said highest magnitude vector.