FERRIS WHEEL INSTALLATION COMPRISING A GUIDE STRUCTURE FOR GONDOLAS HAVING SLIDING BALL JOINTS
20230001312 · 2023-01-05
Assignee
Inventors
Cpc classification
A63G27/00
HUMAN NECESSITIES
F16C2316/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A gondola of a Ferris wheel installation is connected to a wheel rim structure of the Ferris wheel by means of a guide structure comprising at least one bearing that is connected to the wheel rim structure by two sliding ball joints which have slide axes that are parallel to one another and spaced apart from one another.
Claims
1. Ferris wheel installation comprising: a wheel rim structure which is rotatable about a horizontal axis of revolution, and at least one gondola which is connected to the wheel rim structure by a guide structure comprising at least one bearing which defines an axis of rotation, the bearing comprising at least two opposing raceways which are guided, relative to one another, so as to rotate about the axis of rotation of the bearing, a first of the two raceways being rigidly connected to the gondola, and a second of the two raceways being rigidly connected to a support, characterized in that the support is connected to the wheel rim structure by two sliding ball joints having slide axes which are parallel to one another and remote from one another.
2. Ferris wheel installation according to claim 1, wherein in a median reference position, the axis of rotation of the bearing is parallel to the slide axes of the sliding ball joints.
3. Ferris wheel installation according to claim 2, wherein in the median reference position, the axis of rotation of the bearing is equidistant from the slide axes.
4. Ferris wheel installation according to claim 1, wherein the guide structure comprises a stop device which comprises at least one first stop which is rigidly connected to the wheel rim structure opposite a first counter-stop which is rigidly connected to the bearing, the first stop and the first counter-stop being, in a first contact position, in contact according to a first contact zone so as to limit a translational movement of the bearing with respect to the wheel rim structure, parallel to the slide axes, in a first direction of translation.
5. Ferris wheel installation according to claim 4, wherein the first contact zone has a center that is located at less than 10 cm from a plane containing the slide axes, or at less than 10 cm from a median plane between the two slide axes.
6. Ferris wheel installation according to claim 4, wherein the stop device comprises at least one second stop which is rigidly connected to the wheel rim structure opposite a second counter-stop which is rigidly connected to the bearing, the second stop and the second counter-stop being, in a second contact position, in contact so as to limit a translational movement of the bearing with respect to the wheel rim structure, parallel to the slide axes, in a second direction of translation opposite the first direction of translation.
7. Ferris wheel installation according to claim 6, wherein the stop device allows for axial translation of the bearing, with respect to the wheel rim structure, parallel to the axis of rotation of the bearing, having an axial clearance between the first contact position and the second contact position.
8. Ferris wheel installation according to claim 6, wherein the first contact position is coincident with the second contact position, the stop device prohibiting any axial translation of the bearing, with respect to the wheel rim structure, parallel to the axis of rotation of the bearing.
9. Ferris wheel installation according to claim 1, characterized in that the guide structure comprises at least one additional bearing which defines an axis of rotation, the additional bearing being at a distance from the bearing, measured parallel to the axis of rotation of the bearing, of more than 1 meter, the additional bearing comprising at least two additional opposing raceways which are guided, relative to one another, so as to rotate about the axis of rotation of the additional bearing, a first of the two additional raceways being rigidly connected to the gondola, and a second of the two additional raceways being rigidly connected to a support which is connected to the wheel rim structure by the additional sliding ball joints.
10. Ferris wheel installation according to claim 9, wherein the additional bearing is connected to the wheel rim structure by two additional sliding ball joints which have slide axes that are parallel to one another and spaced apart from one another.
11. Ferris wheel installation according to claim 10, wherein the slide axes of the two additional sliding ball joints are parallel to the axis of rotation of the additional bearing.
12. Ferris wheel installation according to claim 10, wherein the guide structure comprises an additional stop device which comprises at least one first additional stop which is rigidly connected to the wheel rim structure opposite a first additional counter-stop which is rigidly connected to the additional bearing the first additional stop and the first additional counter-stop being, in a first contact position, in contact so as to limit a translational movement of the additional bearing with respect to the wheel rim structure, parallel to the slide axes, in a first direction of translation.
13. Ferris wheel installation according to claim 12, wherein the additional stop device allows for axial translation, parallel to the axis of rotation of the additional bearing, of the additional bearing with respect to the wheel rim structure.
14. Ferris wheel installation according to claim 12, wherein the additional stop device prohibits any axial translation, parallel to the axis of rotation of the additional bearing, of the additional bearing with respect to the wheel rim structure.
15. Ferris wheel installation according to claim 1, characterized in that the bearing has a pitch diameter of greater than 1.5 meters, preferably greater than 2 meters.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0032] Other features and advantages of the invention will become clear from the following description, given with reference to the accompanying drawings and explained below.
[0033]
[0034]
[0035]
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[0037]
[0038]
[0039] For reasons of improved clarity, identical or similar elements are indicated by identical reference signs in the text and in the drawings. The embodiment of the invention, shown in the accompanying drawings and described below, is given merely by way of non-limiting example.
DETAILED DESCRIPTION
[0040]
[0041] By way of example, the gondola 14 may have an oblong structure, formed for example of a central part 14.1 forming a cylinder, surrounded by two end parts 14.2 in the shape of a nose cone. The gondola 14 shown is of large dimensions and makes it possible to receive a significant number of passengers, a dozen or more, seated or standing.
[0042] The guide structure 16 of the gondola 14 comprises at least one bearing 20, and preferably two bearings 20, which are located in planes remote from one another, ideally in parallel, such that the axes of rotation 100 of the bearings are ideally coincident, and together define the axis of rotation of the gondola. In the embodiment, each of the bearings 20 is located in the joint plane between the central cylindrical part 14.1 and one of the nose cone-shaped end parts 14.2 of the structure of the gondola 14, and has a diameter of more than 1.5 meters, and preferably more than 2 meters.
[0043] Each bearing 20 comprises two bearing rings 22, 24 which form opposing raceways 26, 28 on which rolling elements 30 roll so as to guide a relative rotational movement between the two raceways 26, 28 about the axis of rotation 100 of the bearing 20. More specifically, a first ring 22 forming a first raceway 26 is rigidly connected to the gondola 10, while the second ring 24 forming the second raceway 28 is rigidly connected to a support 32 connected to a plate 34 that is rigidly connected to the wheel rim structure 12. In a variant, the support 32 and the ring 24 may form just one single piece.
[0044] The plate 34 is preferably formed in one piece, so as to have perfectly controlled dimensions, and comprises for example two parallel shields 36 which define therebetween a spacer recess 38 in which a portion of the support 32 is received. The plate 34 comprises an interface 40 for fixing to the body of the wheel rim structure 12.
[0045] The kinematic connection between the plate 34 and the support 32 is achieved by two sliding ball joints 42 having slide axes 200 which are parallel to one another and remote from one another. In the context of the invention, a sliding ball joint is a mechanical connection which ensures three degrees of rotational freedom about a center of rotation, as well as one degree of translational freedom from the center of rotation along a slide axis. For some applications, the movements according to the degrees of rotational freedom may, if applicable, be of a very small amplitude, for example less than 5°. The degree of translational freedom may in turn be of the order of 20 mm. However, these values are given by way of example, since they may vary considerably according to the geometrical defects observed for the structure of the capsule, or the dimensions of the capsule and of the bearings. Larger clearances are not excluded. The slide axes 200 of the two sliding ball joints 42 are preferably parallel to the axis of rotation 100 of the bearing 20 which they support, at least in a median reference position of the guide structure 16. Said sliding ball joints 42 are received between the two parallel shields 36 of the plate 34.
[0046] Each sliding ball joint 42 comprises, for example, a ring 44 which is received in a clevis 46 which is fixed to the support 32 and is intended to receive a plain bearing 48 which is at least partially spherical and slides on a shaft formed for example by a pin 50 that is rigidly connected to the two parallel shields 36, for example by two flanges 52. The ring 36, rigidly connected to the clevis 46, comprises a concave slide track having a spherical casing and a profile that is complementary to the outer profile of the plain bearing 48, so as to be able to rotate about the center of the bearing 48, which can itself move along the axis 200 of the pin 50.
[0047] The slide axes 200 defined by the pins 40 are parallel. Each sliding ball joint 42 provides the connection between the support 32 and the plate 34 with three degrees of rotational freedom and one degree of translational freedom parallel to the axis 200 of the pin 50, which makes it possible to correct the possible offsets between the supports 32 or between the axes of rotation 100 of the two bearings 20.
[0048] The guide structure 16 comprises, for at least one of the supports 32, and in this case for the two supports 32, a stop device 54 which is preferably received between the two shields 36 of the plate 34. Each stop device 54 (one of which is illustrated in
[0049] In each of the contact positions, the contact zone Z (indicated in
[0050] In this embodiment where each support 32 is associated with a stop device 54, it is possible to provide for at least one of the two supports 32, the stops 56, and counter-stops 58 to be arranged such that the first contact position is not coincident with the second contact position, as shown in
[0051] For the other support 32, the first contact position and the second contact position are preferably coincident, as shown in
[0052] The sliding ball joints 42 make it possible to correct the alignment errors, in particular between the two bearings 20, in order to reduce the redundancy of the installation and to minimize the mechanical stresses. The stop devices 54, in turn, make it possible to limit the axial clearances of the gondola 14 to that which is required for compensating the alignment errors, and to absorb the axial stresses, for example due to the wind.
[0053] Each stop device 54 can be adjusted as needed, by increasing or reducing, or indeed eliminating, the corresponding axial clearance.
[0054] According to a variant that is not shown, just one of the two supports 32 is connected to the wheel rim structure by sliding ball joints 42, the other support 32 having no degree of freedom.
[0055] According to another variant, the guide structure 16 is equipped with a single plate for ensuring the connection of the two supports 32 to the wheel rim structure 12.