Spherical roller bearings with radially offset cage webs

The spherical roller bearing design with an offset cage web and roller-guided configuration increases dynamic load capacity and reduces costs by optimizing cage design and materials, addressing the need for enhanced performance in wind turbine applications.

DE102024207172B3Active Publication Date: 2025-10-23AB SKF SKF PATENT DEPARTMENT
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Patent Information

Application Number
DE102024207172
Authority / Receiving Office
DE · DE
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-07-30
Publication Date
2025-10-23
Estimated Expiration
2044-07-30

AI Technical Summary

Technical Problem

Existing spherical roller bearings face challenges in increasing dynamic bearing capacity without significantly increasing costs, particularly in applications like wind turbines, where adapting bearing rings is expensive.

Method used

A spherical roller bearing design with a cage system that includes offset cage webs and a predominantly roller-guided configuration, allowing for increased roller density and load-bearing capacity without altering the bearing rings, and optionally using sheet metal or cast materials for the cage.

Benefits of technology

Enhances dynamic load-bearing capacity and extends the life of the bearing while reducing manufacturing costs and material requirements, and potentially lowering CO2 emissions.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed is a spherical roller bearing (1), in particular for supporting a wind turbine main shaft, comprising: at least one outer ring (4) and one inner ring (6), wherein the inner ring (6) has a bore with a diameter of at least 499 mm, two sets of spherical rollers (8) rolling on raceways (9, 11) formed on the outer and inner rings (4, 6), and at least one cage (2, 2-1, 2-2) configured to retain the rollers (8), wherein the at least one cage (2, 2-1, 2-2) comprises: at least one axial inner cage ring (10) extending in a circumferential direction of the spherical roller bearing (1), a first axial outer cage ring (12-1) spaced from the at least one axial inner cage ring (10) on a first axial side and connected to it by a plurality of cage webs (14), thereby forming closed pockets (16), wherein each pocket (16) is adapted toto receive a single spherical roller (8) of the first set of rollers, and a second axial outer cage ring (12-2) spaced from the at least one axial inner cage ring (10) on a second axial side opposite the first axial side and connected to it by a plurality of cage webs (14), thereby forming closed pockets (16), each pocket (16) being adapted to receive a single spherical roller (8) of the second set of rollers, the cage webs (14) being at least partially arranged at a position in a radial direction that is offset by a pitch diameter (P).
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Description

Technical field of the invention

[0001] The present invention relates to a spherical roller bearing. Furthermore, the present invention relates to a bearing arrangement comprising a spherical roller bearing. Background of the invention

[0002] Rolling bearings are common mechanical components used in many different applications. There are various types of rolling bearings designed to meet different requirements. Depending on the conditions of the specific application, such as the degree of load, rotational speed, temperature, etc., different types of rolling bearings are suitable. A common bearing type is a spherical roller bearing, as used, for example, in the

[0003] The bearing is described in DE 10 2015 225 678 A1 or DE 694 02 507 T2. It is designed to withstand large radial and axial loads and is also designed to accommodate the deflection of a shaft supported by the bearing, meaning that the bearing rings can be relatively misaligned. Therefore, such bearings are particularly suitable for demanding industrial applications such as machinery in wind turbines and the like.

[0004] To support heavier loads, it is necessary to increase the dynamic load rating (also known as C) of the bearing. Generally, the dynamic load rating of the bearing can be influenced by a variety of parameters, such as the material of the bearings and / or rolling elements, the number of rows of rolling elements, the contact angle, the diameter of the rolling elements, the effective length of the rolling elements, etc. However, most of these parameters cannot be adjusted without modifying the bearing rings. Modifying the bearing rings in terms of material, geometry, and / or dimensions can be expensive.

[0005] It is therefore an object of the present invention to increase the dynamic load rating of a spherical roller bearing without significantly increasing the cost of the bearing. Brief description of the invention

[0006] This task is accomplished by a spherical roller bearing according to claim 1.

[0007] The following is a spherical roller bearing. The spherical roller bearing can be used to support a wind turbine main shaft.

[0008] The spherical roller bearing comprises at least one outer ring, one inner ring, and two sets of barrel rollers that roll on raceways formed in the outer and inner rings, and at least one cage designed to retain the rollers. The inner ring has a bore with a diameter of at least 499 mm, preferably at least 699 mm, and particularly preferably at least 899 mm. The bore may be designed to accommodate a component of another machine, for example, a shaft of a wind turbine.

[0009] The inner ring can be flanged or flangeless on an axial inner and / or outer surface. If the inner ring is flanged, the flanges can serve as guide flanges for the rolling elements. They can also act as retaining flanges to prevent the rollers from falling out of the bearing.

[0010] The at least one cage comprises at least one axial inner cage ring extending in a circumferential direction of the bearing, a first axial outer cage ring spaced apart from the at least one axial inner cage ring on a first axial side and connected to it by several cage webs, thereby forming closed pockets, each pocket being configured to receive a single barrel roller of the first set of rollers, and a second axial outer cage ring spaced apart from the at least one axial inner cage ring on a second axial side opposite the first axial side and connected to it by several cage webs, thereby forming closed pockets, each pocket being configured to receive a single barrel roller of the second set of rollers.

[0011] To increase the load-bearing capacity and force absorption capacity of the spherical roller bearing, the cage webs are at least partially arranged in a position in a radial direction that is at least partially offset to a pitch circle diameter, and the cage is predominantly roller-guided.

[0012] The term "predominantly roller-guided" refers to a case where the cage is normally roller-guided, but in cases where the cage deforms, for example, due to high forces acting on it, the deformation can be limited by the cage bore. This can limit extreme loads on the cage. This guidance principle can also be described as "mixed guidance." Alternatively, at least one cage can be exclusively roller-guided. In other words, even if the cage deforms, it is designed so that no contact occurs between the cage rings and the inner or outer ring. Roller-guided and / or predominantly roller-guided cages can have the advantage of being subject to less wear compared to shoulder-guided cages. This can mean fewer particles in the bearing, which can lead to an extended service life.

[0013] The term "pitch circle diameter" can describe the diameter along which the centers of the barrel rollers move during operation.

[0014] The barrel rollers may include raceways designed to roll on the tracks formed on the inner ring and the outer ring.

[0015] For example, the cage webs can be arranged at least partially at a distance from the raceway of the inner or outer ring in the radial direction that corresponds to 10 to 40% of the diameter of a barrel roller or 60 to 90% of the diameter of the barrel roller.

[0016] In particular, the cage webs can be arranged at least partially on a radially inner side of the pitch circle diameter.

[0017] Furthermore, the at least one cage web can be arranged such that more than half of its length, or even its entire length, is offset from the pitch circle diameter in the axial direction. For example, the at least one cage web can be arranged such that more than half of its axial length, or even its entire axial length, lies on a radially inner or outer side of the pitch circle diameter. Additionally, several or even all of the cage webs can be arranged such that more than half of their axial length, or even their entire axial length, lies on a radially inner or outer side of the pitch circle diameter.

[0018] Arranging the cage webs, at least partially, in a position offset from the pitch circle diameter in a radial direction can reduce the distance between two adjacent rollers, thus allowing for an increase in the number of rollers in a set. Furthermore, this arrangement also allows for an increase in the cage web width, even with very small roller spacing. In particular, increasing the number of rollers in the set offers the advantage of increasing the dynamic load rating of the spherical roller bearing without requiring modifications to the outer and / or inner rings.

[0019] According to another embodiment, at least one cage can be made of sheet metal.

[0020] Using sheet metal as the base material for at least one cage can have the advantage of reducing the cost of the cage.

[0021] Alternatively, the cage can also be made of a cast material or machined from a solid piece of material.

[0022] According to another embodiment, the pockets can be formed by pressing and embossing and / or milling.

[0023] According to another embodiment, the inner ring is not provided with a flange designed to retain and / or guide the barrel rollers.

[0024] Equipping at least one cage with closed pockets for the rollers offers the advantage of preventing axial movement of the roller. This eliminates the need for any guide and / or retaining flanges on the inner ring. Furthermore, manufacturing time can be reduced, as no machining of the flanges is required. Additionally, stresses in the inner ring can be reduced because no undercut needs to be created to form the retaining flange. This can reduce costs and / or the amount of raw material required for the inner ring.

[0025] According to another embodiment, the spherical roller bearing is not equipped with a guide ring.

[0026] A guide ring or center rib flange is typically used to limit roller misalignment in an unloaded zone of the spherical roller bearing, ensuring that the barrel rollers enter the loaded zone with limited misalignment. This is particularly important in high-speed applications. However, wind turbine main shaft applications are typically low-speed, operating at 15 rpm or less. This often eliminates the need for a guide ring.

[0027] According to a further embodiment, the at least one cage can be free of any means for retaining at least one barrel roll in the at least one cage and / or in a pocket of the at least one cage.

[0028] In particular, the at least one cage and / or parts of the cage, such as the axial inner cage ring, the axial outer cage ring, the cage webs, or the like, can be free of any means for holding or retaining the barrel rollers, so that they cannot be lost. In other words, the at least one cage requires neither means for snapping the barrel rollers into the at least one cage nor recesses formed on the axial end faces of the pockets to engage with recesses formed on the end faces of the barrel rollers. Due to the absence of retaining means, the manufacturing costs for the at least one cage can be reduced. Since the at least one cage can be free of any means for retaining at least one barrel roller within the cage, it may also be possible to replace individual barrel rollers, for example, during maintenance work.

[0029] According to a further embodiment, the at least one cage and / or the barrel rollers can be mounted in the spherical roller bearing without elastic and / or plastic deformation of the at least one cage and / or without disassembling the at least one cage. In particular, the phrase "deformation of the at least one cage and / or disassembly of the at least one cage" can refer to a method for bending, twisting, warping, cutting, or otherwise disassembling the at least one cage in order to mount the at least one cage and / or one of the barrel rollers in the spherical roller bearing.

[0030] According to a further embodiment, the ratio Dm / Dw of a minimum distance Dm in the circumferential direction between the raceways of two adjacent barrel rollers of at least one set of barrel rollers to a maximum roller diameter Dw is equal to or less than 0.11, preferably 0.09 and particularly preferably 0.075, if the barrel rollers of the at least one set of barrel rollers are uniformly spaced in the circumferential direction.

[0031] Reducing the distance between two rollers in the circumferential direction allows for an increase in the number of rollers in the set. For example, it may be possible to increase the number of rollers in the set by at least one. This can increase the dynamic load rating of the spherical roller bearing. Furthermore, increasing the number of rollers in the set by at least one can significantly extend the service life of the spherical roller bearing.Furthermore, the ratio Dm / Dw of the minimum circumferential distance Dm between the raceways of two adjacent barrel rollers of the first set of rollers to the maximum roller diameter Dw, if the barrel rollers of the first set of rollers are uniformly spaced in the circumferential direction, can be the same as, or different from, the ratio Dm / Dw of the minimum circumferential distance Dm between the raceways of two adjacent barrel rollers of the second set of rollers to the maximum roller diameter Dw, if the barrel rollers of the second set of rollers are uniformly spaced in the circumferential direction.

[0032] If the barrel rollers of at least one set of barrel rollers are uniformly spaced in the circumferential direction, then a minimum distance Dm in the circumferential direction between the raceways of two adjacent barrel rollers of the at least one set of barrel rollers can be equal to or less than a value obtained by the following equation: Dm≤0.0064mm⋅(ln(P⋅Dw+Dw))3 where P is the pitch circle diameter and Dw is the maximum roller diameter, with the millimeter values ​​of P and Dw being used as dimensionless variables. Furthermore, the minimum circumferential distance Dm between the raceways of two adjacent barrel rollers of the first set of rollers, if the barrel rollers of the first set of rollers are uniformly spaced circumferentially, can be the same as, or different from, the minimum circumferential distance Dm between the raceways of two adjacent barrel rollers of the second set of rollers, if the barrel rollers of the second set of rollers are uniformly spaced circumferentially.

[0033] According to another embodiment, each set of barrel rollers can comprise the same number of barrel rollers. Preferably, each set of barrel rollers can comprise the maximum number of barrel rollers.

[0034] Equipping the spherical roller bearing with the maximum number of tonneau rollers can allow the dynamic load rating of the spherical roller bearing to be increased.

[0035] According to another embodiment, the axial inner cage ring and / or at least one of the axial outer cage rings can have a flange element that extends radially inwards or radially outwards.

[0036] The presence of a flange element extending radially inwards or radially outwards can allow cage deformations to be limited if strong forces act on the at least one cage, causing deformation of the cage.

[0037] According to a further embodiment, the axial inner cage ring and at least one of the axial outer cage rings can have a radially extending flange element, with both flange elements extending radially inwards or radially outwards.

[0038] Equipping both cage rings with a radially extending flange element can lead to a further increase in cage stiffness. The benefits are reduced cage deformation and improved cage performance.

[0039] According to a further embodiment, the axial inner cage ring and at least one of the axial outer cage rings can have a radially extending flange element, wherein one flange element extends radially inwards and the other flange element extends radially outwards.

[0040] If one flange element extends radially inwards and the other flange element extends radially outwards, this can lead to a significant increase in stiffness. This allows for a further reduction in cage deformation and can result in improved cage performance.

[0041] According to another embodiment, shoulder play is greater than radial cage play.

[0042] In particular, the shoulder clearance can be defined as the difference between the bore diameter of the cage ring and the diameter of the inner ring at a specific position on the cage ring. Among other things, by designing the cage in such a way that the shoulder clearance is greater than the radial cage clearance, it is possible to make the cage roller-guided.

[0043] For example, the shoulder clearance can be designed to be between 1 and 15 mm larger than the radial cage clearance if the cage bore diameter is up to 1200 mm. If the cage bore diameter is larger than 1200 mm, the shoulder clearance can be designed to be between 1 and 20 mm larger than the radial cage clearance.

[0044] Furthermore, the radial cage clearance can be in the range of 0.2 to 5 mm, preferably between 0.5 and 3 mm. The radial cage clearance can be measured based on the maximum radial movement of the at least one cage inside the bearing.

[0045] According to another embodiment, each pocket of the at least one cage is designed to limit any skew of the barrel roller held in the pocket.

[0046] Limiting the skew of the roller within the pocket can reduce the contact force generated by the roller's contact with the cage. This can further lead to less wear on at least one cage.

[0047] For example, the roller's skew in the pocket can be limited by radial cage clearance. Additionally or alternatively, the roller skew can be limited by axial cage pocket clearance. In particular, the axial cage pocket clearance can be between 0.2 and 2.5 mm, preferably between 0.5 and 2 mm, or most preferably between 0.7 and 1.5 mm.

[0048] According to a further embodiment, each cage web can be provided with a contact surface designed to contact the barrel roller, the contact surface being positioned on a circumferential side surface of each cage web.

[0049] Furthermore, the contact surface can be provided with a radius. This allows the contact between the roller and the contact surface to still occur tangentially with reduced contact loads in the event of misalignment and / or axial movement of the roller. This can lead to a reduced risk of wear.

[0050] According to another embodiment, a circumferential side surface of each cage web can be provided with a single contact area in the axial direction.

[0051] For example, the circumferential side face of each cage web can be provided with an osculation between the cage web and the roller. The osculation, which is the radius of the cage web divided by the crown radius of the roller, can be between 100% and 104%. This can lead to a reduction in contact stresses compared to a straight cage web.

[0052] According to another embodiment, a circumferential side surface of each cage web can be provided in the axial direction with at least two contact areas designed to contact the roller.

[0053] Preferably, the contact areas can be located next to the side faces of the roller. The presence of at least two contact areas can reduce roller misalignment. Furthermore, at least two contact areas can have the advantage of reducing stress on the at least one cage. In particular, if a contact point between the roller and the cage web is located as close as possible to the cage rings, the bending moment of the cage web can be reduced, resulting in lower stress within the at least one cage.

[0054] According to a further embodiment, the axially inner cage ring can comprise a first ring element and a second ring element that are attached to one another. This can have the advantage that the at least one cage can be formed by two identical cages attached to one another. This can allow for a simpler manufacturing process for the at least one cage.

[0055] According to another aspect, a bearing arrangement is provided for a wind turbine main shaft, wherein the bearing arrangement includes at least one spherical roller bearing as described above.

[0056] All the characteristics described above in relation to the spherical roller bearing apply - separately or in combination - to the spherical roller bearing used in the bearing arrangement.

[0057] Further preferred embodiments are defined in the dependent claims, the description, and the figures. Elements described or shown in combination with other elements may be present alone or in combination with other elements without exceeding the scope of protection. Brief description of the drawings

[0058] Preferred embodiments of the invention are described below with reference to the drawings, which are merely exemplary and are not intended to limit the scope of protection. The scope of protection is defined exclusively by the accompanying claims.

[0059] The figures show: Fig. Figure 1 shows a schematic cross-section of a spherical roller bearing according to a first embodiment, Fig. 2: shows a schematic cross-section of a barrel roller at a maximum diameter of the barrel roller in a cage of the spherical roller bearing according to the first embodiment, Fig. Figure 3 shows a schematic perspective view of part of a cage of the spherical roller bearing according to the first embodiment. Fig. 4: shows a section of a side view of the spherical roller bearing according to the first embodiment and Fig. Figure 5 shows a schematic cross-section of a cage of a spherical roller bearing according to a second embodiment. Detailed description of the invention

[0060] In the following, identical or similar functional elements will be designated with the same reference symbols.

[0061] Fig. Figures 1 to 4 show a spherical roller bearing 1 for supporting a wind turbine main shaft and part of a cage 2 of the spherical roller bearing 1.

[0062] The spherical roller bearing 1 comprises an outer ring 4 and an inner ring 6, and two sets of barrel rollers 8 that roll on raceways 9 formed on the outer ring 4 and on raceways 11 formed on the inner ring 6. The outer ring 4 includes an opening 5 through which lubricant can be supplied to the spherical roller bearing 1. In particular, the outer ring can be stationary, while the inner ring can rotate about an axis of rotation A. Furthermore, the inner ring 6 can be configured to be mounted on a main shaft of a wind turbine.

[0063] The inner ring 6 can be designed with or without flanges on an axial inner and / or an axial outer surface. The in Fig. The spherical roller bearing shown is designed without flanges on both the axial inside and the axial outside of the inner ring 6 for guiding and / or retaining the barrel rollers 8.

[0064] Furthermore, the spherical roller bearing includes a cage 2 designed to retain both sets of barrel rollers 8. The cage of the in Fig. The spherical roller bearing shown in Figure 1 comprises a first cage element 2-1, which is configured to retain the first set of barrel rollers 8, and a second cage element 2-2, which have an identical shape and are joined together to form the cage 2. Fig. Figure 2 shows the first cage element 2-1 in detail.

[0065] Furthermore, both the first cage element 2-1 and the second cage element 2-2 are free of any means for retaining at least one barrel roller 8 in either the first cage element 2-1 or the second cage element 2-2 or in a pocket 16 of the at least one cage 2. In other words, the first cage element 2-1 and the second cage element 2-2 do not include means for snapping the barrel rollers 8 into the at least one cage 2, nor recesses formed on the axial end faces of the pockets to engage with recesses formed on the end faces of the barrel rollers 8.

[0066] Furthermore, the cage 2 can be mounted or installed in the spherical roller bearing 1 without elastically and / or plastically deforming the cage elements 2-1, 2-2 and / or without disassembling or cutting the cage elements 2-1, 2-2.

[0067] Each cage element 2-1, 2-2 comprises an axial inner cage ring 10 extending in a circumferential direction of the bearing, an axial outer cage ring 12 spaced axially from the axial inner cage ring 10 and connected to it by several cage webs 14, thereby forming closed pockets 16. Each pocket 16 is configured to receive a single barrel roller 8. In particular, each cage element 2-1, 2-2 can be integrally formed.

[0068] Alternatively, the cage 2 can be formed in one piece, so that the cage 2 comprises only a single axial inner cage ring 10 instead of two axial inner cage rings 10 that are attached to each other.

[0069] The axial inner cage ring 10 has a flange element 18 extending radially outwards, and the axial outer cage ring 12 has a flange element 20 extending radially inwards.

[0070] Furthermore, the cage webs 14 are at least partially arranged in a position offset from the radial inner side of a pitch circle diameter P of the spherical roller bearing 1. In the illustrated embodiment, the cage web 14 is arranged such that contact between the barrel roller 8 and the cage web 14 occurs at a position that corresponds to approximately 30% of a maximum diameter Dw (as indicated by the dashed line 17) of the barrel roller 8. The maximum diameter Dw of the barrel roller 8 is given in Fig. 4 indicated.

[0071] Arranging the cage bars 14 in an offset to the pitch circle diameter P can allow a minimum distance Dm ( Fig. 4) to reduce the distance between the raceways of two adjacent rollers 8 so that it is possible to increase the number of rollers used in a set of rollers 8. The minimum distance Dm is determined in a state where the barrel rollers 8 are uniformly spaced in the circumferential direction.

[0072] In particular, the ratio Dm / Dw of the minimum distance in the circumferential direction between the raceways of two adjacent barrel rollers 8 of the first and / or the second set of barrel rollers to the maximum roller diameter Dw is equal to or less than 0.11, preferably 0.09 and particularly preferably 0.075, if the barrel rollers 8 of the respective set of rollers 8 are uniformly spaced in the circumferential direction.

[0073] Alternatively or additionally, the minimum distance Dm in the circumferential direction between the raceways of two adjacent barrel rollers of the first and / or the second set of barrel rollers can be equal to or less than a value obtained by the following equation: Dm≤0.0064mm⋅(ln(P⋅Dw+Dw))3 when the barrel rollers 8 of the respective set of rollers 8 are uniformly spaced in the circumferential direction, where P is the pitch circle diameter and Dw is the maximum roller diameter, where the millimeter values ​​of P and Dw are to be used as dimensionless variables.

[0074] The spherical roller bearing 1 is designed such that the shoulder clearance is greater than the radial cage clearance. For example, the shoulder clearance can be between 1 and 15 mm greater than the radial cage clearance if the cage bore diameter is up to 1200 mm. If the cage bore diameter is greater than 1200 mm, the shoulder clearance can be between 1 and 20 mm greater than the radial cage clearance. This allows, among other things, the cage 2 to be designed with predominantly roller guidance.

[0075] Furthermore, each cage web 14 of the cage of the spherical roller bearing 1 according to the first embodiment is provided with a contact surface 24 which is configured to contact the barrel roller 8, wherein the contact surface 24 is positioned on a circumferential side surface of each cage web 14.

[0076] The contact surface 24 is provided with a radius such that an osculation is formed between the cage web 14 and the roller 8 along the roller axis. The osculation, which is the radius of the cage web 14 divided by the crown radius of the roller, can be between 100% and 104%. Furthermore, each cage web 14 has a single contact area 24 in the axial direction.

[0077] Fig. Figure 5 shows a cross-section of a cage 2 for a spherical roller bearing 1 according to a second embodiment. The cage 2 of the second embodiment differs from the cage 2 of the first embodiment in that a circumferential side surface 22 of each cage web 14 is provided in the axial direction with two contact areas 24-1, 24-2 which are configured to contact the roller.

[0078] Although Fig.Figure 5 shows an embodiment which has two contact areas 24-1, 24-2, it may also be possible to provide more than two contact areas.

[0079] In summary, the dynamic load rating of the spherical roller bearing 1 can be increased without requiring modifications to the bearing rings. Furthermore, a flange on either the inner or outer axial surface can be omitted. This reduces the amount of raw material required for manufacturing the inner ring 6. Additionally, the reduced material and machining effort required for producing the inner ring 6 result in lower CO2 emissions during the production of the spherical roller bearing. Reference symbol list 1 spherical roller bearing 2 cages 2-1, 2-2 cage element 4 outer ring 5 Opening 6 inner ring 8-ton roller 9 outer lane 10 axial inner cage ring 11 inner career 12-1, 12-2 axial outer cage ring 14 Cage bridge 16 bags Line 17 18 Flange element 20 Flange element 22 Perimeter side area 24 contact area A axis of rotation P Pitch circle diameter Dw maximum roller diameter Minimum distance between two rollers (dm)

Claims

[1] Spherical roller bearings (1), in particular for supporting a wind turbine main shaft, comprising: at least one outer ring (4) and one inner ring (6), wherein the inner ring (6) has a bore with a diameter of at least 499 mm, two sets of barrel rollers (8) which roll on raceways (9, 11) formed on the outer and inner rings (4, 6), and at least one cage (2, 2-1, 2-2) configured to retain the rollers (8), wherein the at least one cage (2, 2-1, 2-2) comprises: at least one axial inner cage ring (10) extending in a circumferential direction of the spherical roller bearing (1), a first axial outer cage ring (12-1) spaced apart from the at least one axial inner cage ring (10) on a first axial side and connected to it by several cage webs (14), thereby forming closed pockets (16), each pocket (16) being configured to to accommodate a barrel roller (8) of the first set of rollers, and a second axial outer cage ring (12-2) which is spaced apart from the at least one axial inner cage ring (10) on a second axial side opposite the first axial side and is connected to it by several cage webs (14) thereby forming closed pockets (16), each pocket (16) being configured to to take up a barrel roll (8) of the second set of rolls, characterized by , that the cage webs (14) are at least partially arranged in a position in a radial direction which is offset to a pitch circle diameter (P), and that at least one cage (2) is predominantly roller-guided. [2] Spherical roller bearing (1) according to claim 1, wherein the inner ring (6) is not provided with a flange designed to retain and / or guide the barrel rollers. [3] Spherical roller bearing (1) according to claim 1 or 2, wherein the spherical roller bearing (1) is not equipped with a guide ring. [4] Spherical roller bearing (1) according to one of the preceding claims, wherein a ratio Dm / Dw of a minimum distance Dm in the circumferential direction between the raceways of two adjacent barrel rollers (8) of at least one set of barrel rollers (8) to a maximum roller diameter (Dw) is equal to or less than 0.11, preferably 0.09 and particularly preferably 0.075, when the barrel rollers (8) of the at least one set of rollers (8) are spaced uniformly apart in the circumferential direction. [5] Spherical roller bearing (1) according to one of the preceding claims, wherein a minimum distance Dm in the circumferential direction between the raceways of two adjacent barrel rollers (8) of at least one set of barrel rollers (8) is equal to or less than a value obtained by the following equation: Dm≤0.0064mm⋅(ln(P⋅Dw+Dw))3 when the barrel rollers (8) of the at least one set of barrel rollers (8) are uniformly spaced in the circumferential direction, where P is the pitch circle diameter and Dw is the maximum roller diameter, where the millimeter values ​​of P and Dw are to be used as dimensionless variables. [6] Spherical roller bearing (1) according to one of the preceding claims, wherein the axial inner cage ring (10) and / or at least one of the axial outer cage rings (12-1, 12-2) has a flange element (18, 20) extending radially inwards or radially outwards, or the axial inner cage ring (10) and at least one of the axial outer cage rings (12-1, 12-2) have a radially extending flange element (18, 20), wherein both flange elements (18, 20) extend radially inwards or radially outwards, or the axial inner cage ring (10) and at least one of the axial outer cage rings (12-1, 12-2) have a radially extending flange element (18, 20), wherein one flange element (18, 20) extends radially inwards and the other flange element (18, 20) extends radially outwards. [7] Spherical roller bearing (1) according to one of the preceding claims, wherein a shoulder clearance is greater than a radial cage clearance. [8] Spherical roller bearing (1) according to one of the preceding claims, wherein a circumferential side surface (22) of each cage web (14) is provided in the axial direction with a single contact area (24) or at least two contact areas (24-1, 24-2) which are configured to contact the barrel roller (8). [9] Spherical roller bearing (1) according to one of the preceding claims, wherein each cage web (14) is arranged at least partially at a distance from the raceway (9, 11) of the inner or outer ring (4, 6) in a radial direction which corresponds to 10 to 40% of a diameter (19) of the barrel roller (8) or 60 to 90% of the diameter (19) of the barrel roller (8). [10] Spherical roller bearing (1) according to one of the preceding claims, wherein the cage webs (14) are arranged on a radially inner side of the pitch circle diameter (15). [11] Spherical roller bearing (1) according to one of the preceding claims, wherein the axial inner cage ring (10) comprises a first ring element (2-1) and a second ring element (2-2) which are attached to each other. [12] Spherical roller bearing (1) according to one of the preceding claims, wherein the at least one cage (2) is free of any means for retaining at least one barrel roller (8) in the at least one cage (2) and / or in a pocket (16) of the at least one cage (2). [13] Spherical roller bearing (1) according to one of the preceding claims, wherein the at least one cage (2) and / or the barrel rollers (8) can be mounted into the spherical roller bearing (1) without elastic and / or plastic deformation of the at least one cage (2) and / or without disassembling the at least one cage (2). [14] Bearing arrangement for a wind turbine main shaft, wherein the bearing arrangement comprises at least one spherical roller bearing (1) according to one of the preceding claims.

Citation Information

Patent Citations

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