EP2425261B1

A laser diode based multiple-beam laser spot imaging system for characterization of vehicle dynamics

Abstract

This record has no abstract on file.

EP2425261B1, drawing sheet 1
Sheet 1 of 16

Term

3.6 yearsleft in the term

Expires 19 April 2030.

  1. Priority
  2. Filed
  3. Granted
  4. Today
  5. Expires

14 claims: 6 independent, 8 dependent

  1. 1
    An optical vehicle laser sensor system for detection of vehicle dynamics parameters, comprising - a laser device (3) which generates at least three spatially separated laser beams (30, 31, 32), so that the three laser beams (30, 31, 32) generate three laser spots (10, 11, 12) on a reference surface (2) placed opposite to the laser device (3), wherein two pairs of the spots (10,11, 12) are separated along two different lateral directions along the reference surface (2), - an imaging device (4) comprising at least one matrix sensor with a lens for imaging said laser spots (10,11, 12) on said reference surface (2), said imaging device (4) being arranged so that said laser spots (10,11,12) on said reference surface (2) are visible within a field of view (40) of said imaging device (4), whereby the optical axis (41) of said imaging device (4) and the direction of at least one of said laser beams (30, 31, 32) are non-coincident, - a detector for detecting a velocity of said optical vehicle laser sensor system relatively to said reference surface (2) from the signal of said laser beams (30, 31, 32) reflected or scattered back from said reference surface (2), - a data processing device for detecting the laser spot location within the image data retrieved from said imaging device (4), and for calculating the orientation of said optical vehicle laser sensor system from the spot locations.
  2. 2
    The optical vehicle laser sensor system according to the preceding claim, wherein said data processing device determines lateral distances between the laser spots (10, 11, 12), and determines the orientation of said optical vehicle laser sensor system with respect to said reference surface (2) based on said lateral distances.
  3. 3
    The optical vehicle laser sensor system according to the preceding claim, wherein the data processing device calculates the distance of the laser device (3) to the reference surface from the location of a laser spot or the mutual distance of the laser spots (10, 11, 12).
  4. 9
    The optical vehicle laser sensor system according to the preceding claim, wherein said data processing device determines the distance of the laser device (3) and the further laser device (5) to said reference surface (2) and calculates a roll angle and a pitch angle from said distances.
  5. 11
    The optical vehicle laser sensor system according to the preceding claim, wherein said velocity is corrected by said data processing device by calculating V 0 =M R -1 V, wherein V 0 = (V x0 , V y0 , V z0 ) denotes the corrected velocity vector and V=(V x , V y , V z ) denotes the measured velocity vector, and wherein MR -1 is the inverse of matrix:M R = cos θ cos φ sin ψ sin θ cos φ + cos ψ sin φ - cos ψ sin θ cos φ + sin ψ sin φ - cos θ sin φ - sin ψ sin θ sin φ + cos ψ cos φ cos ψ sin θ sin φ + sin ψ cos φ sin θ - cos θ sin ψ cos θ cos ψ wherein θ denotes the roll angle, Ψ the pitch angle and φ the angle between the forward direction of said laser device and the vehicle's forward direction.
  6. 12
    The optical vehicle laser sensor system according to the preceding claim, wherein said data processing device corrects the value of a measured body slip angle β according to equation β = cos θ β 0 + sin θ sin ψ - cos ψ sin θ V z ⁢ 0 V y ⁢ 0 cos ψ , wherein β 0 denotes the corrected body slip angle.