LIGHT BARRIER SYSTEM, COMPRISING AT LEAST TWO REFLECTION LIGHT BARRIER DEVICES
20230081936 · 2023-03-16
Inventors
Cpc classification
B65G69/20
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The invention relates to a light barrier system, comprising at least two reflection light barrier devices, each of which is configured to emit a light beam and to detect a reflected light beam, wherein the light barrier system comprises a reflection body, which is configured to reflect back light beams emitted from at least two different directions in parallel, which are spaced apart at an angle of at least 20°, wherein the at least two reflective light barrier devices are arranged in such a way that they emit light beams from different directions onto the same reflection body in order to monitor at least two spatially different areas. In a further aspect, the invention relates to the use of a reflection body.
Claims
1.-16. (canceled)
17. A light barrier system comprising at least two reflection light barrier devices, which each configured to emit a light beam and to detect a reflected light beam, characterized in that the light barrier system comprises a reflection body, which is configured to reflect back in parallel light beams emitted from at least two different directions, which are spaced apart at an angle of at least 20°, wherein the at least two reflection light barrier devices are arranged in such a way that they emit light beams from different directions onto the same reflection body in order to monitor at least two spatially different areas.
18. A light barrier system according to claim 17, wherein the reflection body is configured to reflect back in parallel all emitted light beams, which have been emitted within a predetermined angular range (α) about an axis (A), wherein the angular range (α) is preferably at least 180°, particularly preferably substantially 360°.
19. A light barrier system according to claim 17, wherein the reflection body (6) has a substantially spherical basic shape and is preferably formed as a pentagonal-dodecahedron.
20. A light barrier system according to claim 17, wherein the reflection body has a substantially cylindrical basic shape with a preferably circular base.
21. A light barrier system according to claim 17, wherein at least a part of the surface of the reflection body has incorporated triple prisms.
22. A light barrier system according to claim 17, wherein at least a part of the surface of the reflection body is covered by a reflector foil.
23. A conveyor system comprising a conveyor section having at least two areas and a light barrier system according to claim 17, wherein the reflection light barrier devices and the reflection body are arranged with respect to the conveyor section in such a way that two different areas of the conveyor section are being monitored.
24. A conveyor system according to claim 23, wherein the conveyor section comprises two conveyor paths running in parallel to one another and wherein the reflection body is arranged between the conveyor paths and the reflection light barrier devices, which are respectively arranged on a side of the conveyor paths facing away from the reflection body.
25. Use of a reflection body in a light barrier system, wherein the reflection body is configured to reflect back light beams emitted from two different directions in parallel, which are spaced apart at an angle of at least 20°, wherein the light barrier system comprises at least two reflection light barrier devices, which are each configured to emit a light beam and to detect a reflected light beam, wherein the at least two reflection light barrier devices of the light barrier system emit light beams from different directions onto the same reflection body in order to monitor at least two spatially different areas.
26. Use according to claim 25, wherein the reflection body is designed to reflect back in parallel all emitted light beam, which have been emitted within a predetermined angular range about an axis (A), wherein the angular range is preferably at least 180°, particularly preferably substantially 360°.
27. Use according to claim 25, wherein the reflection body has a substantially spherical basic shape and is preferably formed as a pentagonal-dodecahedron.
28. Use according to claim 25, wherein the reflection body has a substantially cylindrical basic shape with a preferably circular base.
29. Use according to claim 25, wherein at least a part of the surface of the reflection body has incorporated triple prisms.
30. Use according to claim 25, wherein at least a part of the surface of the reflection body is covered by a reflective foil.
31. Use according to claim 25, wherein the light barrier system is used in combination with a conveyor section of a conveyor system having at least two areas, wherein the reflection light barrier devices and the reflection body are arranged with respect to the conveyor section in such a way that two different areas of the conveyor section are being monitored.
32. Use according to claim 31, wherein the conveyor section comprises two conveyor paths running in parallel to each other, and wherein the reflection body is arranged between the conveyor paths and the reflection light barrier devices respectively on a side of the conveyor paths facing away from the reflection body.
Description
[0023] Advantageous and non-restrictive embodiments of the invention are explained in greater detail below with reference to the drawings.
[0024]
[0025]
[0026] The
[0027]
[0028] The light barrier system 4 may generally comprise at least two or at least three reflection light barrier devices 5 instead of the seven reflection light barrier devices 5 shown. Each of the reflective light barrier devices 5 comprises a light beam source for emitting a light beam 8 and a sensor for detecting the light beam 8 reflected by the reflection body 6. The sensor may then indicate or output, respectively, the detection of the reflected light beam 8 either when the reflected light beam 8 is registered or when an absence of the reflected light beam 8 is registered.
[0029] In combination, the emitted light beam 8 and the reflected light beam 8 form a light barrier. The light beam 8 or the light barrier, respectively, may have a wavelength that is in the visible wavelength range or in the non-visible wavelength range. In particular, the light beam 8 may also be a laser beam. In order to generate the light beam 8, the light beam source may comprise, for example, a light emitting diode that generates the light beam with a wavelength of, for example, 660 nm (visible red light) or 880 to 940 nm (non-visible infrared light).
[0030] Usually, in a state-of-the-art light barrier system, a separate reflector is provided for each reflection light barrier device 5, for example a reflective pane. For a state-of-the-art light barrier system having, for example, seven reflection light barrier devices 5, there would then be used seven reflectors. The light barrier system 4 according to the invention, however, has a common reflection body 6 for the at least two reflection light barrier devices 5. For this purpose, the reflection light barrier devices 5 are arranged in such a way that they emit light beams 8 from different directions R1 . . . R7, generally Ri, onto the same reflection body 6 in order to monitor the at least two spatially different areas 7. At least two of the reflection light barrier devices 5 may be arranged in such a way that they emit light beams 8 onto the reflection body 6, which are spaced apart at an angle of at least 20°, at least 45°, at least 90° or at least 180°.
[0031] In the example shown in
[0032] The reflection body 6 is configured in such a way that it can reflect back light beam 8 emitted from at least two different directions Ri in parallel. For this purpose, the reflection body 6 may have a corresponding basic shape and/or a corresponding surface structure. For example, the directions Ri are spaced apart at an angle of at least 20°, at least 45°, at least 90° or at least 180°.
[0033] The reflection body 6 may also be configured to reflect back in parallel all emitted light beams 8 that were emitted in a predetermined angular range a about the common axis A. The angular range a is preferably at least 180° or at least 270°, particularly preferably substantially 360°. This may be achieved, for example, by a cylindrical or spherical basic shape of the reflection body 6. If the angular range a is smaller than 360°, a segment of a cylindrical or spherical shape may also be used for this purpose. The reflection body 6 could also be configured to reflect back light rays 8 back from essentially all directions Ri, which may be achieved, for example, by a spherical basic shape of the reflection body 6.
[0034]
[0035] Reflection bodies 6 having an essentially cylindrical basic shape may, for example, have a circular base. Alternatively, the base could be oval or otherwise shaped. The base also need not be continuous, but may rather also be shaped by straight lines (buckles) placed end to end. The angle between the straight lines is, for example, smaller than a reflection angle of a reflector foil or a reflector surface as described below. The cylindrical basic body may also be formed, for example, by flat hexagons arranged next to one another.
[0036]
[0037] In addition, it is shown in
[0038]
[0039]
[0040] It is understood that the reflection body 6 may also have a basic shape formed by a segment of a cylindrical basic shape (cylinder segment) or by a segment of a spherical basic shape (sphere segment). The reflection body 6 could also have a basic shape, which is formed by a hemisphere placed on a cylinder. Also, the reflection body 6 could have a cuboidal or cube-shaped basic shape.
[0041] In order to further improve the characteristic of reflecting back light rays emitted from two different directions in parallel, there may be made provision to equip the surface of the reflection body 6 with a reflector surface or a reflector foil.
[0042] The reflector surface is usually incorporated directly into the surface of the reflection body, for example in the form of triple prisms. A reflector foil, on the other hand, may be applied to the surface of the reflection body 6, e.g. bonded thereon. It has been known from prior art, for example, to apply glass spheres having a diameter of 50 μm to a reflective foil in order to form the reflector foil. The triple prisms of the reflector surface or the glass spheres of the reflector surface, respectively, enable all incident light rays to be reflected back in parallel, which are incident at a predetermined angle of reflection to an orthogonal direction of the surface. As this angle of reflection is usually much smaller than 90°, the reflector surfaces or the reflector foils are used in combination with a cylindrical or spherical basic shape of the reflector body in order to obtain angles of reflection of at least 180° up to 360° within a plane or in order to be able to reflect light rays back in parallel from all spatial directions at all.
[0043] In
[0044] As shown in
[0045] In the embodiment example with two conveyor paths 3 extending in parallel to each other, the reflection body 6 is preferably arranged in-between the conveyor paths 3. The reflection light barrier devices 5 are each arranged on a side of the conveyor paths 3 facing away from the reflection body 6. The reflection light barrier devices 5 may thus advantageously share a common reflection body 6 in order to simultaneously monitor several spatial areas 7 of the conveyor section 2. If there is given a picking station 10 extending substantially orthogonally to the conveyor paths 3, the reflection body 6 may be arranged between the two conveyor paths 3 and the picking station 10. In this case, the reflection light barrier devices 5 are situated on a side of the conveyor paths 3 or the picking station 10, respectively, facing away from the reflection body 6.