IP Library Patent Application 18370135
Patent Application
App. No. 18/370,135

SENSOR WITH CURVED REFLECTOR

Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US None
App. No.
18/370,135
Abstract

A sensor device comprising a retro-reflecting element having a front boundary surface configured for entry of measuring light into the retro-reflecting element and a back boundary surface configured for reflecting a first part of the measuring light as reflected measuring light and configured for transmitting a second part of the measuring light as transmitted measuring light, wherein the front boundary surface and the back boundary surface are arranged on opposite sides of the retro-reflecting element, and a sensor unit configured and arranged so that the transmitted measuring light is detectable by the sensor unit. The front boundary surface and the back boundary surface are of curved shape.

Claims (58)

1 . A sensor device comprising a

a retro-reflecting element having a front boundary surface configured for entry of measuring light into the retro-reflecting element and a back boundary surface configured for reflecting a first part of the measuring light as reflected measuring light and configured for transmitting a second part of the measuring light as transmitted measuring light, wherein the front boundary surface and the back boundary surface are arranged on opposite sides of the retro-reflecting element, and

a sensor unit configured and arranged so that the transmitted measuring light is detectable by the sensor unit,

wherein the front boundary surface and the back boundary surface are of curved shape,

the retro-reflecting element is configured so that the measuring light entering into the retro-reflecting element at the front boundary surface is focused at the back boundary surface, and

an incidence angle of the measuring light relative to the sensor device is equal to an exit angle of the reflected measuring light relative to the sensor device.

2 . The sensor device according to claim 1 , wherein the front boundary surface and the back boundary surface are of spherical shape.

3 . The sensor device according to claim 1 , wherein the retro-reflecting element comprises a sphere with a refraction index n of 1.9<n<2.1, in particular wherein n=2.

4 . The sensor device according to claim 1 , wherein the retro-reflecting element is made of glass, and/or

the retro-reflecting element comprises a coating which provides separation of the measuring light into the reflected measuring light and the transmitted measuring light, in particular a partially reflective coating.

5 . The sensor device according to claim 1 , wherein the retro-reflecting element comprises at least two optical elements, wherein the front boundary surface is provided by a first of the at least two optical elements and the back boundary surface is provided by a second of the at least two optical elements, in particular wherein each of the at least two optical elements has a refractive index n of n<2.1.

6 . The sensor device according to claim 5 , wherein each of the at least two optical elements has a centre point and the at least two optical elements are arranged so that the centre points of the at least two optical elements coincide.

7 . The sensor device according to claim 1 , wherein the sensor unit comprises a curved detecting element, in particular wherein the curved detecting element is mounted onto the back boundary surface.

8 . The sensor device according to claim 1 , wherein the sensor device comprises an imaging element, the imaging element is arranged between the retro-reflecting element and the sensor unit and provides directing of the transmitted measuring light towards the sensor unit.

9 . The sensor device according to claim 1 , wherein the sensor unit comprises a plurality of sensor elements, wherein each sensor element comprises a detecting element and an imaging optic assigned to the detecting element, wherein

the sensor elements are arranged relative to the back boundary surface so that a respective sensor element is assigned to a respective region of the back boundary surface, and

a respective sensor element provides imaging of measuring light transmitted at its assigned region of the back boundary surface onto its detecting element,

wherein at least one of the imaging optics comprises an imaging fibre optic taper and the assigned detecting element is directly mounted onto the imaging fibre optic taper.

10 . The sensor device according to claim 1 , wherein the sensor device comprises at least one referencing assembly with a marker and an illumination unit, wherein the marker is fixedly connected to the retro-reflecting element, in particular directly mounted onto the retro-reflecting element, and the illumination unit comprises a light source and is configured for illuminating the marker.

11 . The sensor device according to claim 10 , wherein the marker is arranged at the back boundary surface.

12 . The sensor device according to claim 10 , wherein

the illumination unit comprises an optical element which is assigned to the light source and the illumination unit is arranged at the front boundary surface for illumination of the marker by illumination of the marker through the retro-reflecting element, and/or

the illumination unit comprises a coupling optics, wherein the coupling optics is connected to the retro-reflecting element and provides coupling of illumination light into the retro-reflecting element, in particular wherein the coupling optics is embodied as a waveguide and provides coupling of the illumination light by the principle of whispering gallery coupling.

13 . The sensor device according to claim 10 , wherein the at least one referencing assembly is arranged and configured so that the marker is imagable onto the sensor unit by means of the illumination of the marker and an image of the marker is detectable by the sensor unit.

14 . A sensor calibration system comprising:

a sensor device according to claim 10 and

a controlling and processing unit,

wherein the controlling and processing unit comprises a calibrating functionality which is configured for

illuminating the marker by means of the illumination unit,

capturing an image of the marker by means of the sensor unit,

deriving an image position of the marker imaged onto the sensor unit,

comparing the image position with a reference image position for the marker and determine a deviation between the image position of the marker and the reference image position, and

based on the determined deviation, deriving calibration data for the sensor device, the calibration data provides information about a state of the retro-reflecting element.

15 . A sensor calibration system comprising:

a sensor device according to claim 13 and

a controlling and processing unit,

wherein the controlling and processing unit comprises a calibrating functionality which is configured for

illuminating the marker by means of the illumination unit,

capturing an image of the marker by means of the sensor unit,

deriving an image position of the marker imaged onto the sensor unit,

comparing the image position with a reference image position for the marker and determine a deviation between the image position of the marker and the reference image position, and

based on the determined deviation, deriving calibration data for the sensor device, the calibration data provides information about a state of the retro-reflecting element.

16 . A measuring device comprising

a sensor device according to claim 1 and

a controlling and processing unit,

wherein the controlling and processing unit comprises an orientation measuring functionality which is configured for:

capturing an image by means of the sensor unit,

processing the image,

deriving an image position of the transmitted measuring light imaged onto the sensor unit,

based on the derived image position, computing the incidence angle of the measuring light at the front boundary surface, the incidence angle depends on an orientation of the measuring device relative to a propagation direction of the measuring light.

17 . A measuring device comprising

a sensor device according to claim 13 and

a controlling and processing unit,

wherein the controlling and processing unit comprises an orientation measuring functionality which is configured for:

capturing an image by means of the sensor unit,

processing the image,

deriving an image position of the transmitted measuring light imaged onto the sensor unit,

based on the derived image position, computing the incidence angle of the measuring light at the front boundary surface, the incidence angle depends on an orientation of the measuring device relative to a propagation direction of the measuring light.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 4, 2025
From: HEXAGON TECHNOLOGY CENTER GMBH
To: HEXAGON INNOVATION HUB GMBH
Reel/Frame 073833/0471 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 21, 2023
From: JENSEN, THOMAS; YANG, ZHENG; STIGWALL, JOHAN
To: HEXAGON TECHNOLOGY CENTER GMBH
Reel/Frame 064987/0479 →