DEVICE FOR PROCESSING A SURFACE

20180164213 · 2018-06-14

Assignee

Inventors

Cpc classification

International classification

Abstract

The invention relates to a device (1), in particular to a cleaning robot, for processing a surface (2), wherein the device (1) has an optical measuring device (3) for determining the type of surface (2). In order to create a surface processing device with an optical measuring device for determining the type of surface that makes it possible to reliably determine the type of surface with little technical outlay, it is proposed that the optical measuring device (3) has a light source (4) and at least two light sensors (5, 6), wherein the light source (4) and a first light sensor (5) are arranged in such a way that light emitted by the light source (4) hits a reflection point (7) of the surface (2) at an angle of incidence (), and then is reflected to the first light sensor (5) at a corresponding angle of reflection (), wherein the light source (4), the reflection point (7) and the first light sensor (5) span a plane of incidence (8), and wherein a secondary plane (9) that intersects the reflection point (7) and has a second light sensor (6) spans perpendicular to the surface (2), and exhibits an angle () of between 80 and 100 relative to the plane of incidence (8), wherein a straight line running through the reflection point (7) and the second light sensor (6) has an angle () relative to the surface (2) that is essentially as large as the angle of incidence () or angle of reflection ().

Claims

1. A device (1), in particular a cleaning robot, for processing a surface (2), wherein the device (1) has an optical measuring device (3) for determining the type of surface (2), wherein the optical measuring device (3) has a light source (4) and at least two light sensors (5, 6), wherein the light source (4) and a first light sensor (5) are arranged in such a way that light emitted by the light source (4) hits a reflection point (7) of the surface (2) at an angle of incidence (), and then is reflected to the first light sensor (5) at a corresponding angle of reflection (), wherein the light source (4), the reflection point (7) and the first light sensor (5) span a plane of incidence (8), and wherein a secondary plane (9) that intersects the reflection point (7) and has a second light sensor (6) spans perpendicular to the surface (2), and exhibits an angle () of between 80 and 100 relative to the plane of incidence (8), wherein a straight line running through the reflection point (7) and the second light sensor (6) has an angle () relative to the surface (2) that is essentially as large as the angle of incidence () or angle of reflection ().

2. The device (1) according to claim 1, wherein the angle of incidence (), the angle of reflection (), and the angle () each measure between 30 and 45.

3. The device (1) according to claim 1, wherein the angle () measures 90.

4. The device (1) according to claim 1, wherein the light source (4) is a polychromatic light source, in particular a white light source.

5. The device (1) according to claim 1, wherein the light sensors (5, 6) are wavelength selective in design, in particular RGB sensors.

6. A method for processing, in particular cleaning, a surface (2) by means of a device (1), in particular by means of a device (1) according to claim 1, wherein the device (1) determines the type of surface (2) with an optical measuring device and adjusts the type of processing as a function thereof, wherein light inside of a plane of incidence (8) is radiated at an angle of incidence () from a light source (4) onto a reflection point (7) of the surface (2), and from there reflected with a corresponding angle of reflection () to a first light sensor (5), wherein a second light sensor (6) is arranged in a secondary plane (9) that stands perpendicular to the surface (2), intersects the reflection point (7), and has an angle () of between 80 and 100 to the plane of incidence (8) in such a way that a straight line running through the reflection point (7) and the second light sensor (6) has an angle () to the surface (2) that is essentially as large as the angle of incidence () or the angle of reflection ().

7. The method according to claim 6, wherein the following measuring steps are implemented to determine the type of surface (2): Measuring the light intensity with the first light sensor (5) and the second light sensor (6) with the light source (4) turned off, Measuring the light intensity with the first light sensor (5) with the light source (4) turned on, Measuring the light intensity with the second light sensor (6) with the light source (4) turned on.

8. The method according to claim 6, wherein the light intensities measured by the light sensors (5, 6) are compared with corresponding reference intensities for known surfaces (2).

9. The method according to claim 6, wherein the light source (4) emits polychromatic light.

10. The method according to claim 6, wherein light getting from the surface (2) to the light sensors (5, 6) is spectrally filtered.

Description

[0030] The invention will be described in greater detail below based on an exemplary embodiment. Shown on:

[0031] FIG. 1: is a vacuuming robot on a surface of a first kind,

[0032] FIG. 2: is the vacuuming robot on a surface of a second kind,

[0033] FIG. 3: is a schematic side view of an optical measuring device (schematic sketch),

[0034] FIG. 4: is a three-dimensional view of the optical measuring device.

[0035] FIG. 1 shows a device 1 according to the invention, which is here designed as a wiping robot. The device 1 is positioned on a schematically denoted surface 2, which is here a carpet. In order to detect the type of surface 2, the device 1 has an optical measuring device 3, which comprises a light source 4, a first light sensor 5 as well as a second light sensor 6. The aforementioned components of the optical measuring device 3 are arranged relative to each other in such a way that light emitted by the light source 4 is reflected on a reflection point 7 of the surface 2 and then hits the first light sensor 5. The second light sensor 6 is not arranged in the plane of incidence 8 spanned by the first light sensor 5, the light source 4 and the reflection point 7, but rather in a secondary plane 9 arranged perpendicular thereto and to the surface 2.

[0036] The device 1 also has an evaluator and controller 10, which controls the functions of the light source 4 and light sensors 5, 6 on the one hand, and accesses a memory having reference intensities for known surfaces on the other. As schematically depicted, the memory contains the reference intensities for carpets, wood floors, tiling and the like. Based on the light intensities measured with the light sensors 5, 6, the controller and evaluator 10 detects that the surface 2 is a carpet.

[0037] FIG. 2 shows the device 1 on another surface 2, specifically a tile floor here. As explained above, the controller and evaluator 10 controls the optical measuring device 3 in such a way that the first light sensor 5 and the second light sensor 6 measure light intensities, which can then be compared with reference intensities. After the comparison, the controller and evaluator 10 here arrives at the conclusion that the surface 2 is a tile floor.

[0038] The schematic side view on FIG. 3 shows the optical measuring device 3, which has the first light sensor 5, the second light sensor 6 as well as the light source 4. The light source 4 along with the first light sensor 5 are arranged according to the principle


Angle of incidence =Angle of reflection

in such a way that light emitted by the light source 4 is reflected on the reflection point 7 of the surface 2 and directly hits the first light sensor 5. Corresponding openings 11 for the light to pass through are formed in the housing of the device 1, the underside of which is shown here. Apart from the reflected light component, there further exists a diffusely scattered light component, the intensity of which depends on the composition of the surface 2. For example, if a rough, non-reflective surface 2 is involved, the scattered light component is higher than in the case of a smooth, reflective surface 2. The second light sensor 6 for measuring this scattered light component is not arranged in the plane of incidence 8, but rather in a secondary plane 9 that stands perpendicular to the plane of incidence 8 as well as perpendicular to the surface 2. If necessary, the second light sensor 6 also measures a component of an ambient light, for example which stems from ceiling lights in the room. As shown, the first light sensor 5 and the second light sensor 6 are advantageously arranged in a shared plane, which is aligned parallel to the surface 2.

[0039] FIG. 4 shows a three-dimensional view of the optical measuring device 3. Depicted is the plane of incidence 8 in which the light source 4, the reflection point 7 as well as the first light sensor 5 are arranged. Standing perpendicular thereto is the secondary plane 9, which intersects the second light sensor 6 along with the reflection point 7. In addition, the light source 4, the first light sensor 5 as well as the second light sensor 6 are arranged in a shared plane, which is aligned parallel to the surface 2. The angle of incidence of the light emitted by the light source onto the surface 2, the angle of reflection along with the angle between the surface 2 and a straight line running through the reflection point 7 and the second sensor 6 are even. As evident, the plane of incidence 8 and the secondary plane 9 are arranged at an angle of 90 degrees to each other.

[0040] In order to determine the type of surface 2, the optical measuring device 3 is operated in a measuring cycle that consists of three different measuring steps. In a first measuring step, the light source 4 is turned off, so that the first light sensor 5 and the second light sensor 6 exclusively detect any ambient light. In a second measuring step, the light source 4 is turned on, and the light intensity is exclusively measured with the first light sensor 5. In a third measuring step, the light source 4 is also turned on. However, the light intensity is now only measured with the second light sensor. Even though the measuring steps are here marked 1, 2 and 3, this does not connote a specific sequence.

[0041] Rather, it is irrelevant which of the three measuring steps is performed first, as long as the indicated conditions relating to the activity of the light source 4 or light sensors 5, 6 are satisfied.

[0042] In the first measuring step explained above, the first light sensor 5 and the second light sensor 6 are used to measure the light intensity of any ambient lighting:


I.sub.ambient=I.sub.1=I.sub.2.

[0043] In the discussed second measuring step, the ambient light intensity along with the diffuse scatter and the radiation reflected by the reflection point 7 are measured:


I.sub.3=I.sub.total=I.sub.ambient+I.sub.diffuse+I.sub.reflected.

[0044] Finally, in the third measuring step, the intensity of the ambient light as well as the intensity of the diffuse scatter are measured:


I.sub.4=I.sub.ambient+I.sub.diffuse.

[0045] The light intensity of the diffuse scatter is derived as the solution to the equation system:


I.sub.diffuse=I.sub.4I.sub.1.

[0046] As well as the light intensity of the reflected radiation:


I.sub.reflected=I.sub.3I.sub.4.

[0047] These intensities can be compared with reference intensities for known surfaces 2.

[0048] For example, the reference intensities stored in a memory of the device 1 are light intensities that were measured during a corresponding measurement on carpet, parquet, laminate, tiles, etc. The evaluator and controller 10 of the device 1 compares these reference intensities with the intensities currently measured by the light sensors 5, 6, and given a correlation between the intensity values, can infer the type of surface 2 currently under the device 1. For example, the device 1 here arrives at the conclusion that the surface 2 to be determined is a tile floor.

[0049] In addition to the statements made above, let it be noted that the so-called reflection point 7 in practice does not involve a singular point, but rather a finitely expanded surface. This stems solely from the fact that the light emitted by the light source 4 is a light beam, which has a finite cross section and potentially even expands in the propagation direction. Beyond that, let it be mentioned that the Phong illumination model used for determining the type of surface 2 does not involve exact intensity calculations, but rather an empirically derived model that does not correctly reflect the physical circumstances inside of the optical measuring device 3. However, it has been demonstrated that determining the type of surface 2 according to this model leads to a reliable result.

REFERENCE LIST

[0050] 1 Device [0051] 2 Surface [0052] 3 Measuring device [0053] 4 Light source [0054] 5 First light sensor [0055] 6 Second light sensor [0056] 7 Reflection point [0057] 8 Plane of incidence [0058] 9 Secondary plane [0059] 10 Controller and evaluator [0060] 11 Openings [0061] Angle of incidence [0062] Angle of reflection [0063] Angle [0064] Angle