POSITION SENSOR FOR ESCALATORS AND MOVING WALKWAYS
20250250144 ยท 2025-08-07
Inventors
Cpc classification
International classification
Abstract
The disclosure relates to a position switch biasing device for a position switch having a button element that is displaceable in a first direction. The position switch biasing device comprises a fastening element for fastening to the position switch and comprises a biasing element. The biasing element is connected to the fastening element so as to be linearly displaceable and is adapted to the position switch in such a way that, when a position switch biasing device is mounted on the position switch, the biasing element of the biasing device is movable telescopically in the first direction of the button element. The biasing element holds the button element of the position switch in a partially indented, biased state without the application of external force.
Claims
1-15. (canceled)
16. A position switch biasing device comprising: a fastening element for fastening the position switch biasing device to a position switch, wherein the position switch comprises a button element which is configured to be displaceable in a first direction and is held in an OFF switch position by a spring element acting against the first direction; and a biasing element, wherein the biasing element is coupled to the fastening element so as to be linearly displaceable and arranged with the position switch such that, when the position switch biasing device is mounted on the position switch, the biasing element is movable telescopically in the first direction of the button element and the biasing element holds the button element of the position switch in a partially indented, biased state without the application of external force, wherein the position switch biasing device is configured to couple to a position switch to create a position sensor, wherein the position sensor is configured to monitor a gap between a base plate and a conveyor belt of an escalator or a moving walkway.
17. The position switch biasing device of claim 16, wherein the biasing element comprises at least one guide lug, wherein the at least one guide lug is connected to the fastening element so as to be linearly displaceable and wherein the guide lug comprises a guide lug projection configured to interact with a stop surface of the fastening element to predetermine a maximum distance of the biasing element from the fastening element.
18. The position switch biasing device of claim 16, wherein the biasing element comprises a frustoconical top surface and a frustoconical lateral surface adjoining the frustoconical top surface, wherein the frustoconical top surface and the frustoconical lateral surface are arranged on a side of the biasing element facing away from the fastening element.
19. The position switch biasing device of claim 17, wherein the biasing element comprises a frustoconical top surface and a frustoconical lateral surface adjoining the frustoconical top surface, wherein the frustoconical top surface and the frustoconical lateral surface are arranged on a side of the biasing element facing away from the fastening element.
20. The position switch biasing device of claim 16, wherein the biasing element comprises a pre-pressing projection arranged on a side of the biasing element facing the fastening element and is configured to be in direct contact with the button element when the position switch biasing device is mounted on the position switch.
21. The position switch biasing device of claim 17, wherein the biasing element comprises a pre-pressing projection arranged on a side of the biasing element facing the fastening element and is configured to be in direct contact with the button element when the position switch biasing device is mounted on the position switch.
22. The position switch biasing device of claim 16, wherein the biasing element comprises at least one limiting projection which is directed against the fastening element and is configured to interact with the fastening element to limit a depression depth of the biasing element relative to the fastening element.
23. The position switch biasing device of claim 17, wherein the biasing element comprises at least one limiting projection which is directed against the fastening element and is configured to interact with the fastening element to limit a depression depth of the biasing element relative to the fastening element.
24. The position switch biasing device of claim 16, wherein the fastening element comprises a telescopic sleeve and a fastening base and wherein an inner diameter of the telescopic sleeve is larger than an outer diameter of the button element of the position switch of the position switch biasing device.
25. The position switch biasing device of claim 17, wherein the fastening element comprises a telescopic sleeve and a fastening base and wherein an inner diameter of the telescopic sleeve is larger than an outer diameter of the button element of the position switch of the position switch biasing device.
26. The position switch biasing device of claim 24, wherein the telescopic sleeve comprises a guide groove configured to interact with the guide lug projection, wherein, when the position switch biasing device is mounted, the guide lug of the biasing element protrudes into the interior space delimited by the inner diameter of the telescopic sleeve and the guide lug projection engages in the guide groove.
27. The position switch biasing device of claim 24, wherein the telescopic sleeve comprises a guide groove configured to interact with the guide lug projection, wherein, when the position switch biasing device is mounted, the guide lug of the biasing element is arranged outside the telescopic sleeve and the guide lug projection engages in the guide groove.
28. The position switch biasing device of claim 24, wherein a circumferential fastening projection is arranged on the telescopic sleeve and the circumferential fastening projection is configured to interact with the guide lug projection of the biasing element to limit the displacement path of the biasing element counter to the first direction.
29. The position switch biasing device of claim 28, wherein the fastening projection projects in a second direction and the guide lug projection projects in a direction counter to the second direction, the second direction being orthogonal to the first direction.
30. The position switch biasing device of claim 29, wherein the orthographic projection of the fastening projection onto an imaginary plane and the orthographic projection of the guide lug projection onto the same imaginary plane overlap each other by at least 80%, the imaginary plane being arranged orthogonal to the first direction.
31. The position switch biasing device of claim 16, wherein the biasing element comprises a threaded insert in which an adjusting screw for adjusting the biased state is arranged as a pre-pressing projection.
32. The position switch biasing device of claim 17, wherein the biasing element comprises a threaded insert in which an adjusting screw for adjusting the biased state is arranged as a pre-pressing projection.
33. A position sensor comprising the position switch and the position switch biasing device of claim 16, wherein the fastening element is connected to a switch housing of the position switch and the pre-pressing projection of the biasing element connected to the fastening element so as to be linearly displaceable is in contact with the button element of the position switch wherein the biasing element holds the button element of the position switch in a partially indented, biased state without the application of external force.
34. An escalator or moving walkway with a conveyor belt and a base plate arranged laterally relative to the conveyor belt, wherein the escalator or the moving walkway comprises at least one position sensor of claim 33 for monitoring a gap between the base plate and the conveyor belt and which position sensor is arranged on a side surface of the base plate facing away from the conveyor belt, wherein the first direction of the position switch of the position sensor is arranged orthogonal to this side surface and the biasing element is directed against this side surface.
35. The escalator or moving walkway of claim 34, wherein the biasing element rests with its frustoconical top surface against the side surface of the base plate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Embodiments of the disclosure will be described below with reference to the accompanying drawings. Identical or equivalent features have the same reference signs.
[0022] In the drawings:
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032] The terminology used is for the purpose of describing particular embodiments only and is not intended to be limiting of the present disclosure. As used herein, the terms comprising and the like indicate the presence of specified features, steps, operations, and/or components, but do not preclude the presence or addition of one or more other features, steps, operations, or components.
[0033] The terms length, width, top, bottom, front, back, left, right, vertical, horizontal, upper, lower, inner, outer, etc. indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings and are used only for the purpose of describing the present disclosure and mainly to simplify the description. A device or an element must have a particular orientation, be constructed and operate in a particular orientation, and therefore this information should not be construed as a limitation of the disclosure.
[0034]
[0035] In order to detect deformed layers 21 of the base plate 9, position sensors 40 can be arranged behind the base plate 9 at predetermined intervals along a direction of movement R (not vertical, but actually oblique to the plane of the drawing) of the conveyor belt 5. These position sensors 40 each can comprise a position switch biasing device 60 and a position switch 50, the button element 51 of which can be directed against the base plate 9. In other words, the position sensors 40 can be arranged next to a side surface 13 of the base plate 9 facing away from the conveyor belt 5.
[0036] If the button element 51 of the position switch 50 is actuated or engaged to a certain degree due to a deformed position 21 of the base plate 9, an electrical contact 55 in the position switch 50 can close (see
[0037] If during this process the traveled path of the button element 51 is very small and does not close the electrical contact 55, the position switch 50 may also not transmit a signal current S. This means that if the degree of deformation of the base plate 9 is very small and therefore safe, the position switch 50 may not be triggered.
[0038] The most important components of the position switch 50 are shown schematically in
[0039] It can also be seen from
[0040]
[0041] The biasing element 80 and the fastening element 70 can be connected to one another so as to be linearly displaceable. In other words, a biasing element 80 arranged on the position switch 50 can be moved telescopically within a predetermined displacement path in the first direction L and in the direction counter thereto. The biasing element 80 can be in contact with the button element 51 of the position switch 50 such that the button element 51 is in a biased state. As soon as a base plate 9 to be monitored is deformed and exerts a force F in the first direction L against the biasing element 80, the button element 51 can be engaged in the direction of the ON position K when the spring force F.sub.F of the spring element 52 is overcome.
[0042] The fastening element 70 shown in
[0043] The biasing element 80 of the position switch biasing device 60 can comprise two parallel projecting guide lugs 81, each with a guide lug projection 82, wherein the two guide lugs 81 can also extend in the first direction L. Each of the guide lug projections 82 can extend in a second direction Q that is orthogonal to the first direction L. The guide lugs 81 can be adapted to the guide grooves 73 in such a way that their guide lug projections 82 can engage in the guide grooves 73 when the position switch biasing device 60 is fully assembled. The guide lug projections 82, in interaction with the stop surface 75 of the respective guide groove 73, can predetermine a maximum distance M (see
[0044] Furthermore, the biasing element 80 can comprise two parallel projecting limiting projections 83, wherein the two limiting projections 83 can also extend in the first direction L. The limiting projections 83, in interaction with the fastening base 71 on which they rest after covering a depression depth E, can predetermine a minimum distance of the biasing element 80 from the fastening element 70 and thus can limit its displacement path in the first direction L. The depression depth E may be greater than the actual switch travel Y (see
[0045] The biasing element 80 additionally can comprise a pre-pressing projection 86. Its projection surface 87 can be arranged at a distance H from the guide lug projections 82. The projection surface 87 can be provided to abut against the button element 51 when the position switch biasing device is mounted on a position switch 50. As can easily be seen, the biasing distance V (see
[0046] In the present embodiment, the biasing element 80 can be cylindrical. In addition, the biasing element 80 can be designed as a single part with its guide lugs 81, its limiting projections 83 and the pre-pressing projection 86. The side of the biasing element 80 facing away from the guide lugs 81, the limiting projections 83 and the pre-pressing projection 86 can be frustoconical in shape and thus can comprise a frustoconical top surface 84 and a frustoconical lateral surface 85. The use of the frustoconical top surface 84 with a smaller area for contacting the item under test or the base plate 9 can lead to a more precise monitoring of the local region, because the influence of the flatness of the base plate 9 may be reduced. The smaller the frustoconical top surface 84, the more direct the transfer of a deflection of the base plate 9 to the biasing element 80 may be.
[0047] As
[0048]
[0049]
[0050] As can be clearly seen from
[0051] In order for the guide lug projection 82 to meet the stop surface 75, the fastening projection 74 can protrude in a second direction Q and the guide lug projection 82 can protrude in a direction counter to the second direction Q. The second direction Q can be arranged orthogonal to the first direction L.
[0052] For all the variants of the position switch biasing device 60 mentioned herein, the orthographic projection of the fastening projection 74 or the stop surface 75 onto an imaginary plane (not shown) and the orthographic projection of the guide lug projection 82 onto the imaginary plane can overlap one another, wherein the imaginary plane can be arranged orthogonal to the first direction L.
[0053]
[0054] Although four variants of the position switch biasing device 60 are shown in