This application claims priority to German patent application no. 10 2021 206 284.9 filed on Jun. 18, 2021, the contents of which are fully incorporated herein by reference.
The present invention relates to a cage segment for a rolling-element bearing cage that is formed from a semi-finished profile.
Rolling elements in rolling-element bearings can be guided and retained, for example, by rolling-element bearing cages. This can be of use not only in the operation of the rolling-element bearing, but also during the assembly of the rolling-element bearing. It is known that rolling-element bearing cages can be manufactured on the one hand from metal by various manufacturing methods, and on the other hand from a plastic, for example, by an injection-molding method. Due to the temperature behavior and strength required of the material, it can be necessary to use in particular a fiberglass-reinforced plastic, such as, for example, fiberglass-reinforced polyether ether ketone (PEEK). However, especially in large bearings, these rolling-element bearing cages can already be very expensive due to the material quantities required, in particular with plastics having a high price per kilogram. Larger metal cages are usually manufactured by bulk material first being rolled and then further processed by machining. “Known methods” here are understood to mean that they require on the one hand a high material usage, and on the other hand a combination of several, sometimes complex, manufacturing methods using different machine tools with the result that the manufacturing can be complex and/or cost-intensive.
It is therefore an aspect of the present disclosure to provide a cage segment for a rolling-element bearing cage, which cage segment can be manufactured in a simple and cost-effective manner.
In the following a cage segment is provided for a rolling-element bearing cage, in particular for large rolling-element bearings. The cage segment can in particular be a cage segment for a roller bearing, i.e., a rolling-element bearing including roller-shaped rolling elements, such as, for example, tapered rollers, cylindrical rollers, barrels, needles, and the like. Furthermore, the cage segment comprises a receptacle or pocket for receiving a rolling element, which receptacle is delimited on at least one side by a semi-finished profile. The semi-finished profile preferably includes at least one longitudinally extending opening. In addition, the semi-finished profile can be manufactured from metal, in particular from light metal, preferably from aluminum. Especially when made of metal, the semi-finished profile may be referred to as “bar stock.” The use of a light metal has the advantage that the cage segment is lighter. A large rolling-element bearing can in particular be a rolling-element bearing having a diameter of more than one meter.
The cage segment can be a single segment or a multiple segment. A rolling element can respectively be received in a single segment. A “multiple segment” is understood to mean a cage segment that can receive a plurality of rolling elements. For this purpose a plurality of pockets can be formed in the cage segment, wherein at least one rolling element can be received in one pocket.
Semi-finished profiles can be easily and cost-effectively acquired by the meter and cut to the desired dimension. A complex machine processing, such as, for example cutting and bending, and in particular a machining process method, can thereby be omitted. The cage segment can thereby be obtained with a low material use and/or a high degree of material utilization, and thus cost-effectively, in particular even with small quantities.
According to one preferred embodiment, the semi-finished profile includes at least one first side element and one second side element and a connecting element that is configured to connect the first side element and the second side element to each other. The connecting element not only makes it possible to manufacture individual sides of the cage segment from semi-finished profiles, but also to connect a plurality of elements made of semi-finished profiles.
The receptacle is preferably formed completely from a semi-finished profile. In particular, the various semi-finished profiles that are required in order to form the receptacle can be connected using connecting elements. The cage segment itself can also be formed completely from semi-finished profiles. The use of semi-finished profiles also has the advantage that the individual side elements from which the cage element is assembled are standardizable. This also makes it possible to provide a modular principle for cage segments from which each cage segment can be individually assembled. This is advantageous in particular when manufacturing small quantities. In addition, due to the use of a modular principle for cage segments, a time that is required up to the market readiness of a cage segment, of a rolling-element bearing cage, and/or of a rolling-element bearing can be reduced.
According to a further preferred embodiment, at least one element is provided that is configured to interact with the rolling element and/or a flange of the rolling-element bearing cage and/or a raceway of the rolling-element bearing cage, and/or with a coupling means, wherein the element is further configured to be releasably attachable to the semi-finished profile. For example, the element can be attachable to the semi-finished profile using the at least one longitudinally extending opening of the semi-finished profile. Furthermore, the at least one element can be manufactured from the same material as the semi-finished profile, or manufactured from a different material, such as, for example, plastic. In particular, the material used for the element can thereby be adapted to the intended function of the element. Furthermore, the at least one element can be provided with a patterning and/or texturing, depending on its intended use. Furthermore, due to the releasable attaching of the element it can be made possible that the element can be maintained. For example, in case of wear the element can be easily exchanged during a maintenance of the rolling-element bearing.
The element is preferably provided on a side facing and/or facing away from the receptacle, and/or on a side facing and/or facing away from the axis of rotation of the rolling-element bearing. In particular, the position at which the at least one element is disposed can be chosen in a manner dependent on its intended function.
According to a further embodiment, the at least one element is attachable to the semi-finished profile using at least one attachment means. The attachment means is preferably a spacer that is insertable into the at least one longitudinally extending opening of the semi-finished profile and/or a screw. For example, the at least one element can be disposed between at least two spacers in the at least one longitudinally extending opening such that the element can be held in position. Furthermore, various spacers can be provided that differ from one another in their length. The positioning of the element against the cage segment can thereby be adapted in a simple manner by a spacer having a different length being used.
The element is preferably a retaining element for a rolling element, which retaining element is configured to hold the rolling element, and/or at least one guide element that is configured to guide the cage segment against a rolling-element raceway and/or against a flange and/or against a rolling element, and/or is at least one coupling element that is configured to interact with a coupling means in order to connect the cage segment to at least one further cage segment. By changing the position of the retaining element on the cage segment, for example, with a cage segment for a tapered roller bearing, an end clearance in the bearing, which can arise, for example, due to a tolerance addition, can be compensated for by the retaining element being displaced in the axial direction. This can be achieved, for example, as mentioned above, by spacers having different lengths. In other words, in particular in a tapered roller bearing, the end clearance in the bearing, which advantageously falls in a prescribed region, but is not the same in all bearings due to the addition of the manufacturing tolerances, can be correspondingly adjusted. In particular, due to the displacement of the retaining element, the spacing or the clearance with respect to the individual tapered roller can be changed by the changing of the abutment point due to the conical shape.
The cage segments can be additionally held together by the coupling means, whereby the cage assembly gains stability and/or an installation of the cage can be simplified. The cage segments can be guided by the coupling means, which can be, for example, a cable, wire, or a ring and has a defined preload.
The coupling element can preferably be configured as an eyelet through which the coupling means is threadable. In a design of the coupling element as eyelets, the coupling means can be guided through these eyelets in a simple manner and removed again if required. Here the coupling means is not fixed to the eyelets, but rather can move in the eyelets. A clearance between the cage segments, and thus the rolling elements, and a movement of the cage segments with respect to one another is thereby not restricted. Alternatively, the eyelets can also be configured as open hooks or loops into which the coupling means is mountable or clippable or snappable.
According to a further aspect, a rolling-element bearing cage is disclosed, in particular for large rolling-element bearings, including a plurality of cage segments as described above. Here a plurality of cage segments can be connectable at least temporarily via a coupling element. Here, for example, every second rolling element can be guided in a cage segment. Alternatively a cage segment can also be provided for each rolling element. For example, the outer diameter of the rolling-element bearing cage can be more than 1200 mm.
According to a still further aspect, a rolling-element bearing, in particular a roller bearing, including at least one inner ring and at least one outer ring, wherein rolling elements are disposed between the inner ring and the outer ring, wherein the rolling elements are held by an above-described rolling-element bearing cage.
Further advantages and advantageous embodiments are specified in the description, the drawings, and the claims. Here in particular the combinations of features specified in the description and in the drawings are purely exemplary, so that the features can also be present individually or combined in other ways.
In the following the invention is described in more detail using the exemplary embodiments depicted in the drawings. Here the exemplary embodiments and the combinations shown in the exemplary embodiments are purely exemplary and are not intended to define the scope of the invention. This scope is defined solely by the pending claims.
In the following, identical or functionally equivalent elements are designated by the same reference numbers.
With respect to
The cage segment 1 comprises four side elements 4-1, 4-2, 4-3, 4-4 that together form a pocket-shaped receptacle 2 that is configured to receive at least one rolling element. Here the side elements 4-1, 4-2, 4-3, 4-4 are manufactured from a semi-finished profile, which is preferably manufactured from metal, in particular from light metal, for example, aluminum, and which may comprise bar stock.
In the embodiment shown in
Furthermore, at least one surface of the side element 4 is provided with at least one longitudinally extending opening 10, wherein the opening is configured as a channel so that an element is insertable into the opening. Furthermore, the opening is narrowed toward the surface and is wider toward the base of the opening. In particular, two longitudinally extending openings 10-1, 10-2 are provided on a surface of a respective side element 4-1, 4-2, 4-3, 4-4. Alternatively, however, side elements 4-1, 4-2, 4-3, 4-4 made of a semi-finished profile can also be used that have more or fewer longitudinally extending openings 10.
The respective side elements 4-1, 4-2, 4-3, 4-4 are connected via corresponding connecting elements 12 (
Furthermore, two retaining elements 14 for rolling elements are provided on the side elements 4-1 and 4-3 on the side facing into the receptacle 2, and two retaining elements 14 are provided on the side facing away from the receptacle 2. The retaining elements 14 are configured to hold a rolling element in the receptacle. Here the retaining elements 14 are manufactured from the same material as the side elements 4-1 to 4-4. Alternatively, however, the retaining elements 14 can also be manufactured from another material, such as, for example, plastic. In addition, the retaining elements 14 can be provided with a surface pattern or texture in order to better retain lubricant, for example, so that lubrication of the rolling elements can be improved.
In
The use of semi-finished profiles or bar stock for manufacturing the cage segment 1 makes possible the rapid and cost-effective provision of a rolling-element bearing cage since semi-finished profiles can be easily and cost-effectively acquired by the meter, and can be cut to a desired dimension. A complex machine processing, such as, for example cutting and bending, and in particular a machining process method, can thereby be avoided. The cage segment 1 can thereby be manufactured with a small material use and/or a high degree of material utilization, and thus cost-effectively, in particular even in small quantities.
The use of semi-finished profiles also has the advantage that the individual elements 4, 14 from which the cage element 1 is assembled are standardizable, in particular in the manner in which they are connectable to one another, so that the cage segment is easily adaptable for various applications. This also makes it possible to provide a modular principle for cage segments 1, from which each cage segment 1 can be individually assembled. This is advantageous in particular with small quantities. In addition, due to the use of a modular principle for cage segments 1, a time that is required up to market readiness of a cage segment 1 of a rolling-element bearing cage 20 and/or of a rolling-element bearing can be reduced.
Representative, non-limiting examples of the present invention were described above in detail with reference to the attached drawings. This detailed description is merely intended to teach a person of skill in the art further details for practicing preferred aspects of the present teachings and is not intended to limit the scope of the invention. Furthermore, each of the additional features and teachings disclosed above may be utilized separately or in conjunction with other features and teachings to provide improved bearing cage segments.
Moreover, combinations of features and steps disclosed in the above detailed description may not be necessary to practice the invention in the broadest sense, and are instead taught merely to particularly describe representative examples of the invention. Furthermore, various features of the above-described representative examples, as well as the various independent and dependent claims below, may be combined in ways that are not specifically and explicitly enumerated in order to provide additional useful embodiments of the present teachings.
All features disclosed in the description and/or the claims are intended to be disclosed separately and independently from each other for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter, independent of the compositions of the features in the embodiments and/or the claims. In addition, all value ranges or indications of groups of entities are intended to disclose every possible intermediate value or intermediate entity for the purpose of original written disclosure, as well as for the purpose of restricting the claimed subject matter.
Number | Date | Country | Kind |
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102021206284.9 | Jun 2021 | DE | national |