Pedestal bearing and manufacturing plant equipped with pedestal bearing

The pedestal bearing design with integrated cooling ducts and coolant circulation addresses overheating issues in production plants, ensuring reliable operation and extended lifespan of rolling bearings by effectively cooling the lubricants.

JP7741311B2Active Publication Date: 2025-09-17PRIMETALS TECH AUSTRIA GMBH
View PDF 9 Cites 0 Cited by

Patent Information

Application Number
JP2024519410
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-09-29
Filing Date
2022-09-14
Publication Date
2025-09-17
Estimated Expiration
2042-09-14

AI Technical Summary

Technical Problem

Existing pedestal bearings for supporting slow-running bodies in production plants, particularly in continuous casting and combined casting-rolling plants, face issues with overheating of lubricants due to high thermal loads, leading to potential thermal decomposition and reduced performance.

Method used

A pedestal bearing design featuring a pedestal bearing housing with integrated cooling ducts and a rolling bearing outer ring that guides coolant circulation to cool the lubricant, ensuring effective heat dissipation and preventing overheating, with a simple design that allows for easy assembly and reliable support of rollers.

Benefits of technology

The solution effectively prevents overheating of lubricants, maintaining the performance and longevity of the rolling bearings by ensuring efficient cooling, even under high thermal loads, thus supporting the continuous operation of production plants.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007741311000001
    Figure 0007741311000001
  • Figure 0007741311000002
    Figure 0007741311000002
  • Figure 0007741311000003
    Figure 0007741311000003
Patent Text Reader

Abstract

The present invention relates to a pedestal bearing (125) for supporting a slow-moving body in a plant for producing hot-rolled material (15), and a production plant (10) with the bearing (125), the bearing (125) having a housing (145) with a receiving part (175), a cooling duct system (261) with a cooling duct (325), and a bearing (230) with an outer ring (280) arranged in the receiving part (175), the receiving part (175) having a first inner circumferential surface (170) surrounding a shaft (130). the housing (145) has a first contact surface (146), the housing (145) transmits a support force (F) from the outer ring (280) to the surface (146), the duct (325) extends around the shaft (130) and guides a coolant (410) which can be supplied to the duct (325) for cooling the bearing (230) and / or the housing (145), the surface (170) of the receiving portion (175) bounding the duct (325) radially outward and the outer ring (280) bounding the duct (325) radially inward.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The invention relates to a pedestal bearing for supporting a slow-running body, in particular a roller, in a production plant for producing strands according to claim 1, in particular a continuous casting plant, and to a production plant according to claim 15. [Background technology]

[0002] Patent Document 1 discloses a one-piece pedestal bearing having an undivided pedestal bearing housing. The pedestal bearing housing has a bearing receptacle and a cooling duct system for a coolant. The pedestal bearing has a rolling bearing arranged in the pedestal bearing housing. The rolling bearing has a rolling bearing outer ring, which is an integral component of the pedestal bearing housing. The cooling duct system has cooling ducts that are guided to the outside of the pedestal bearing housing and are covered with a cover toward the outside.

[0003] A guide roller device is known from Patent Document 2. The guide roller device has a plurality of pedestal bearings arranged spaced apart from one another.

[0004] From US Pat. No. 5,629,299, US Pat. No. 5,629,299 and US Pat. No. 5,629,299, various continuous casting roller sets are known. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] Austrian Patent Application Publication No. 521218 [Patent Document 2] Korean Patent Publication No. 20140022171 [Patent Document 3] Chinese Patent Application Publication No. 107511466 [Patent Document 4] Chinese Patent Application Publication No. 110000354 [Patent Document 5] International Publication No. 2011 / 117383 Summary of the Invention [Problem to be solved by the invention]

[0006] SUMMARY OF THE INVENTION It is an object of the present invention to provide an improved pedestal bearing, in particular an improved cooled pedestal bearing, and an improved production plant equipped with such a pedestal bearing. [Means for solving the problem]

[0007] This problem is solved by a pedestal bearing according to claim 1 and a production plant according to claim 15. Advantageous embodiments are described in the dependent claims.

[0008] It has been recognized that an improved pedestal bearing for supporting a slow-running body in a production plant for producing strand or hot-rolled material, particularly a continuous casting plant or a combined casting-rolling plant, can be obtained by the pedestal bearing comprising a pedestal bearing housing with a bearing receptacle, a cooling duct system with at least one cooling duct, and a rolling bearing with a rolling bearing outer ring disposed in the bearing receptacle. The bearing receptacle has a first inner circumferential surface surrounding a rotating shaft, and the pedestal bearing housing has a first contact surface, and the pedestal bearing housing is configured to transmit a supporting force from the rolling bearing outer ring to the first contact surface. The first inner circumferential surface of the bearing receptacle of the pedestal bearing housing radially outwardly bounds the cooling duct. Furthermore, the rolling bearing outer ring radially inwardly defines a cooling duct, which extends circumferentially around the rotation axis and is configured to guide a coolant that can be supplied to the cooling duct to cool the rolling bearing and / or pedestal bearing housing.

[0009] This embodiment has the advantage that the pedestal bearing has a particularly simple design. Furthermore, the cooling ducts are arranged particularly close to the outer ring of the rolling bearing, which results in particularly good cooling of the lubricant of the rolling bearing. This makes it possible to avoid overheating of the lubricant of the rolling bearing when using pedestal bearings in production plants for producing hot-rolled material, in particular slab strand. In particular, overheating of the lubricant above a critical temperature and thus thermal decomposition of the lubricant are avoided.

[0010] The rolling bearing outer ring may be non-rotatably connected to the pedestal bearing housing. It is also possible for the rolling bearing outer ring to be rotatable relative to the pedestal bearing housing within a small angular range, for example up to 30°. In particular, the connection between the rolling bearing outer ring and the pedestal bearing may be selected so that the rolling bearing outer ring can move together over the operating time of the pedestal bearing.

[0011] In a further embodiment, the rolling bearing outer ring has, on its second outer peripheral surface, at least partly grooved and circumferentially extending groove ducts that are configured to open radially outward and delimit the cooling ducts radially inward. This embodiment has the advantage that the groove ducts can be introduced into the rolling bearing outer ring particularly easily using a milling process.

[0012] In a further embodiment, the pedestal bearing housing has a circumferentially extending groove duct at least partially formed in a groove shape in the first inner peripheral surface. The groove duct is configured to open radially inward and separates the cooling duct radially outward. This embodiment has the advantage that the groove duct can be formed, for example, during casting of the pedestal bearing housing. Alternatively, the groove duct can be cost-effectively introduced into the first inner peripheral surface using a milling process.

[0013] It is particularly advantageous if the grooved duct is configured at least partially in a serpentine or annular shape between a first end face of the rolling bearing outer ring and a second end face of the rolling bearing outer ring arranged axially opposite, which ensures particularly good cooling of the rolling bearing, since particularly good heat absorption from the rolling bearing outer ring can take place via the coolant.

[0014] In a further embodiment, the channel duct has a first channel duct section and a second channel duct section fluidly connected to the first channel duct section. The first channel duct section extends circumferentially around the rotation axis. The second channel duct section extends circumferentially around the rotation axis, offset in the axial direction from the first channel duct section. The rolling bearing outer ring has a web in the axial direction between the first channel duct section and the second channel duct section. The web abuts against the first inner peripheral surface of the bearing receptacle. This embodiment has the advantage that the rolling bearing outer ring is particularly well supported in the bearing receptacle.

[0015] In a further embodiment, the channel duct has a third channel duct section, the first channel duct section extending circumferentially parallel to the second channel duct section, the third channel duct section connecting the circumferential end of the first channel duct section with the second channel duct section. This embodiment has the advantage that the outer ring of the rolling bearing is particularly well cooled over a large axial width by the coolant guided into the two channel duct sections.

[0016] In a further embodiment, the cooling duct extends over a first predetermined angular segment around the rotation axis. A support region adjoins the cooling duct in the circumferential direction. The support region extends over a second predetermined angular segment, which is smaller than the first angular segment. The support region is configured to support a support force from a rolling bearing on the pedestal bearing housing. Preferably, the first inner circumferential surface and the second outer circumferential surface abut over substantially the entire surface in the support region. This ensures low surface pressure even in the case of high support forces in the support region, thereby reliably avoiding undesirable deformations, such as (local) material flow of the rolling bearing outer ring or the pedestal bearing housing. Advantageously, the support force can be transmitted to the pedestal bearing housing primarily via the support region, and the support force is directed from the rotation axis to the support region during the majority of the operating time (more than 90% of the operating time). This embodiment has the advantage that the support forces are mainly carried via the support area and not via the remaining area through which the cooling ducts pass, thereby avoiding, for example, damage to the web.

[0017] In a further embodiment, the first angular segment comprises an angle of at least 140° to 330° around the axis of rotation, in particular an angle of at least 180° to 300°, thereby ensuring reliable cooling of the rolling bearing.

[0018] It is particularly advantageous if the rolling bearing outer ring is made in one piece from a homogeneous material, as this allows the rolling bearing to be manufactured particularly cost-effectively and the number of assembly steps for assembling the pedestal bearing is particularly low.

[0019] In a further embodiment, the rolling bearing outer ring comprises an intermediate ring and a bearing ring, the intermediate ring being hollow cylindrically shaped around the rotation axis and having a fifth inner circumferential surface on the radially inner side and a second outer circumferential surface on the radially outer side. The bearing ring is arranged radially inner relative to the intermediate ring and abuts on the radially outer side with its fifth inner circumferential surface. Constructing the rolling bearing outer ring from two parts has the advantage that the intermediate ring can be manufactured particularly easily and cost-effectively, for example from forged steel within a turning process, and complex surface processing, in particular surface hardening on the intermediate ring, is not necessary.

[0020] In a further embodiment, the intermediate ring has a grooved duct extending radially from the second outer circumferential surface towards the fifth inner circumferential surface, which has the advantage that it is not necessary to introduce a grooved duct into, for example, a hardened bearing ring.

[0021] In a further embodiment, the pedestal bearing includes a fifth seal element and a first seal groove disposed in the second outer peripheral surface, the first seal groove extending around the rotation axis and formed in the second outer peripheral surface. The fifth seal element is disposed at least partially within the first seal groove. The fifth seal element abuts the first inner peripheral surface and the first seal groove, providing a fluid-tight seal for the cooling duct. This prevents, for example, an oil-based or grease-based lubricant from mixing with, for example, a water-based coolant. This ensures reliable lubrication and prevents corrosion of the rolling bearing.

[0022] In a further embodiment, the first seal groove and the groove duct are formed on the first inner peripheral surface or the second outer peripheral surface, which allows the first seal groove and the groove duct to be manufactured in succession or simultaneously on a single machine in a short time, thereby reducing the processing burden.

[0023] In a further embodiment, the cooling duct system includes a supply duct disposed within the pedestal bearing housing and a return duct disposed within the pedestal bearing housing, the supply duct and the return duct each opening into the cooling duct offset from one another, and coolant can be supplied into the cooling duct using the supply duct and can be discharged from the cooling duct using the return duct, thereby allowing for easy connection to a coolant circuit.

[0024] The production plant, in particular a combined casting-rolling plant, is configured to produce and / or transport hot-rolled material, in particular hot-cast slab strands. The production plant comprises a pedestal bearing and rollers with rolling surfaces arranged on their peripheries for guiding, supporting and / or shaping the hot-rolled material. The rolling bearings support the rollers rotatably about their axes of rotation. This embodiment has the advantage that cooling in the vicinity of the rolling bearings prevents the rolling bearings from overheating, and in particular allows the rollers to transport the hot-rolled material at low speeds.

[0025] The present invention will be described in more detail below with reference to the accompanying drawings. [Brief explanation of the drawings]

[0026] [Figure 1] 1 is a schematic diagram of a manufacturing plant for producing hot rolled material. [Figure 2] 2 is a schematic diagram of section A of the manufacturing plant shown in FIG. 1. [Figure 3] 3 is a schematic perspective view of a section of a strand guide of the production plant shown in FIG. 2. FIG. [Figure 4] 4 is a side view of the pedestal bearing of the manufacturing plant taken along line of sight B shown in FIG. 3. [Figure 5] 5 is a cross-sectional view of the pedestal bearing of the manufacturing plant shown in FIG. 4 taken along section C-D shown in FIG. 4. [Figure 6] FIG. 5 is a perspective view of an intermediate ring of the pedestal bearing shown in FIGS. 3 and 4. [Figure 7]FIG. 7 is a side view of the intermediate ring shown in FIG. 6. [Figure 8] FIG. 8 is a development view of the intermediate ring shown in FIGS. 6 and 7. [Figure 9] 8 is a cross-sectional view of the intermediate ring shown in FIG. 7 along section E-F shown in FIG. 7. [Figure 10] FIG. 2 is a perspective view of a pedestal bearing housing of the pedestal bearing. [Figure 11] 11 is a cross-sectional view of the pedestal bearing housing shown in FIG. 10 taken along section G-G shown in FIG. 10. [Figure 12a] 11 is a cross-sectional view of the partially assembled pedestal bearing taken along section G-G shown in FIG. 10. [Figure 12b] FIG. 12b is a perspective view of the pedestal bearing shown in FIG. 12a. [Figure 13a] FIG. 10 is a perspective view of a rolling bearing of a pedestal bearing according to a second embodiment. [Figure 13b] 13b is a side view of the rolling bearing shown in FIG. 13a from a different direction. [Figure 13c] 13b is a side view of the rolling bearing shown in FIG. 13a from a different direction. [Figure 14] FIG. 14 is a vertical cross-sectional view of the rolling bearing shown in FIG. [Figure 15] FIG. 5 is a cross-sectional view of a pedestal bearing according to a third embodiment taken along the cross section CD shown in FIG. 4. DETAILED DESCRIPTION OF THE INVENTION

[0027] FIG. 1 shows diagrammatically a manufacturing plant 10 for producing hot rolled material 15 .

[0028] The production plant 10 is configured as, for example, a combined casting-rolling plant and includes, for example, a continuous casting machine 20, a preliminary rolling train 25, first to third separating devices 30, 35, and 40, an intermediate heater 45, preferably a descaling machine 50, a finishing rolling train 55, a cooling section 60, a winding machine 65, and a strand guide 90.

[0029] The continuous casting machine 20 is configured, for example, as an arc continuous casting machine. The continuous casting machine 20 includes a ladle 70, a distributor 71, and a mold 75. During operation of the production plant 10, the distributor 71 is filled with a metal melt 80 using the ladle 70. The metal melt 80 can be produced, for example, using a converter in the Linz-Donawitz process. The metal melt 80 can include, for example, steel. In the continuous casting machine 20, the metal melt 80 is cast to form a partially solidified slab strand 85, in particular a thin slab strand. The partially solidified slab strand 85 is drawn from the mold 75 and guided and supported by strand guides 90 in an arc shape onto a horizontal surface, where it solidifies. The slab strand 85 is transported away from the mold 75 in a conveying direction.

[0030] In this case, it is particularly advantageous if the continuous casting machine 20 casts the slab strand 85 as an endless strand. A preliminary rolling train 25 is arranged downstream of the continuous casting machine 20 in the conveying direction of the slab strand 85. In this embodiment, the preliminary rolling train 25 directly follows the continuous casting machine 20. The preliminary rolling train 25 can roll the slab strand 85 into a preliminary rolled strip 95 using one or more preliminary rolling stands.

[0031] The first and second separating devices 30, 35 are arranged downstream of the pre-rolling train 25 in the conveying direction of the pre-rolled strip 95. To convey the pre-rolled strip 95 between the descaling machine 50 and the pre-rolling train 25, for example, a roller table 100 of the strand guide 90 may be arranged between the pre-rolling train 25 and the descaling machine 50. The pre-rolled strip 95 is guided to the descaling machine 50 through the first and second separating devices 30, 35 by means of the roller table 100. In the intermediate heater 45, the pre-rolled strip 95 is heated to a temperature of, for example, between 850°C and 1050°C before being guided through the descaling machine 50. In the descaling machine 50, the pre-rolled strip 95 is descaled and then fed to the finishing rolling train 55. In the finishing rolling train 55, the pre-rolled strip 95 is finish-rolled to a finished rolled strip 105 having a thickness of, for example, 25 mm to 65 mm. The finished rolled strip 105 may have a material thickness of 0.8 mm to 20 mm. The finished rolled strip 105 is sent from the finishing rolling train 55 to the cooling train 60, where it is cooled to a temperature of 450°C or less through a strand guide 90. After passing through the third separating device 40, the finished rolled strip 105 is wound into a coil 110 using a winder 65. When the coil 110 is fully wound, the third separating device 40 separates the finished rolled strip 105.

[0032] The production plant 10 may be reduced to a continuous casting plant, which uses a continuous caster to produce slab strands as hot rolled material 15 from a liquid metal melt 80 .

[0033] FIG. 2 is a schematic diagram of section A of the manufacturing plant 10 shown in FIG.

[0034] The strand guide 90 has one or more drive stands 115 arranged side by side and offset from one another in the conveying direction of the slab strand 85. Each drive stand 115 has at least one roller 120 and a pedestal bearing 125, and the pedestal bearing 125 rotatably supports the roller 120 arranged thereon around a rotation axis 130. Preferably, the drive stand 115 has a pair of rollers, each consisting of two rollers 120 arranged opposite each other, and each roller is rotatably supported around the rotation axis 130 by the pedestal bearing 125 arranged thereon, in particular by an arrangement of multiple pedestal bearings 125 arranged axially offset from one another along the rotation axis 130.

[0035] Both the roller 120 and the pedestal bearing 125 are subjected to a high thermal load within the strand guide 90 of the slab strand 85, and the slab strand 85 is only partially solidified within the strand guide 90. The slab strand 85 has a temperature of approximately 900°C to approximately 1200°C within the strand guide 90, which heats up the roller 120 and the pedestal bearing 125. Furthermore, because the rotational speed of the roller 120 is low, the roller 120 is subjected to a high thermal load due to contact. At this time, the rotational speed of the roller 120 is 0.2 to 5 revolutions per minute.

[0036] FIG. 3 is a schematic perspective view showing a section of a strand guide 90.

[0037] In this embodiment, the rollers 120 are arranged on a plurality of pedestal bearings 125 that are offset from one another in the axial direction with respect to the rotation axis 130. The rollers 120 have rolling surfaces 121 on their circumferential surfaces. Each of the pedestal bearings 125 supports, via the rolling surfaces 121, at least one support force F resulting from guiding, changing the direction, and / or reducing the cross section of the slab strand 85, which is penetrated by the rollers 120, via the pedestal bearing 125 on a segment frame 135 of the drive stand 115. The segment frame 135 is arranged, for example, so that the support force F is approximately perpendicular to a fixed surface 140 of the pedestal bearing 125. In this case, the fixed surface 140 is arranged on the surface of the pedestal bearing 125 facing away from the slab strand 85.

[0038] FIG. 4 is a side view of the pedestal bearing 125 taken along the line of sight B shown in FIG.

[0039] The pedestal bearing 125 includes, for example, a pedestal bearing housing 145 and a first housing cover 150. The pedestal bearing housing 145 has a first contact surface 146 that forms the fixing surface 140. The pedestal bearing housing 145 can abut against a second contact surface 147 of the segment frame 135 on the first contact surface 146 and may be fixed, for example, by a screw connection. The first contact surface 146 and / or the second contact surface 147 may be flat and extend parallel to the rotation axis 130.

[0040] At its end, the first housing cover 150 is preferably reversibly and removably secured to the pedestal bearing housing 145. The pedestal bearing housing 145 may be manufactured, for example, by casting or gas cutting from a steel block. In particular, the pedestal bearing housing 145 may be formed integrally from a uniform material.

[0041] FIG. 5 is a cross-sectional view of the pedestal bearing 125 of the manufacturing plant 10 shown in FIG. 4 taken along section CD shown in FIG.

[0042] The pedestal bearing housing 145 has a bearing portion 160 and a cover portion 165, and the cover portion 165 is adjacent to the bearing portion 160 in the first axial direction A1 with respect to the rotation axis 130. In this case, the cover portion 165 is arranged on the side of the bearing portion 160 facing away from the first housing cover 150 in the axial direction.

[0043] The bearing portion 160 has a bearing receiving portion 175. The bearing receiving portion 175 has a first inner peripheral surface 170 that divides the bearing receiving portion 175 radially outward. The first inner peripheral surface 170 is formed to surround the rotation axis 130. The bearing receiving portion 175 is formed, for example, cylindrically around the rotation axis 130 in the radial direction. In this embodiment, the first inner peripheral surface 170 is formed so that approximately 80%, preferably at least 80%, of the total area of ​​the first inner peripheral surface 170 is continuous in the circumferential direction. The bearing receiving portion 175 can be formed in the pedestal bearing housing 145 using, for example, turning or milling.

[0044] The cover portion 165 extends axially away from the bearing portion 160. Furthermore, the cover portion 165 is inclined radially inward. The cover portion 165 is preferably formed to have a step, and in the first axial direction A1, the cover portion 165 separates the bearing receiving portion 175 with a first shoulder surface 180 of the shoulder portion 185. The first shoulder surface 180 preferably extends in a plane of rotation perpendicular to the rotation axis 130.

[0045] Within the cover portion 165, the second inner peripheral surface 190 is provided with a first seal receiving portion 195 and a second seal receiving portion 200 that is axially offset relative to the first seal receiving portion 195 in the first axial direction A1. The first seal receiving portion 195 is axially disposed between the bearing receiving portion 175 and the second seal receiving portion 200.

[0046] The first housing cover 150 is formed to be approximately mirror-symmetrical to the cover portion 165 with respect to a plane of symmetry 205, which is oriented perpendicular to the rotation axis 130 and is formed at approximately the center of the maximum extension portion of the bearing receiving portion 175. The cover portion 165 has a third seal receiving portion 210 and a fourth seal receiving portion 215 provided on a third inner circumferential surface 216. The fourth seal receiving portion 215 is arranged axially on the side away from the bearing receiving portion 175 with respect to the third seal receiving portion 210 in a second axial direction A2 that extends in the opposite direction to the first axial direction A1.

[0047] The first housing cover 150 is reversibly and removably fixed to the pedestal bearing housing 145 so as to axially oppose the cover portion 165 on the bearing portion 160 and protrudes radially inward beyond the first inner peripheral surface 170 of the bearing receptacle 175. The first housing cover 150 is formed to have a step on its axial end surface facing the bearing portion 160, and has a second shoulder surface 220 and preferably a third shoulder surface 225. The second shoulder surface 220 is adjacent to a first outer peripheral surface 229 of the first housing cover 150 in the radial direction. The second shoulder surface 220 and the third shoulder surface 225 are located on the end surface of the first housing cover 150 facing the bearing receptacle 175. The second shoulder surface 220 is recessed from the third shoulder surface 225 such that the axial distance between the first shoulder surface 180 and the second shoulder surface 220 is greater than the axial distance between the first shoulder surface 180 and the third shoulder surface 225. The third shoulder surface 225 is adjacent to the second shoulder surface 220 radially inward. The second shoulder surface 220 and the third shoulder surface 225 define the bearing receiving portion 175 in the axial direction A2.

[0048] The pedestal bearing 125 further includes a rolling bearing 230, preferably first to sixth sealing elements 235, 240, 245, 250, 255, and 260, and a cooling duct system 261. The pedestal bearing may further include a fastening means 265 and / or a lubrication duct system 266. The first and third sealing elements 235 and 245 are configured, for example, as shaft sealing rings. The second, fourth, fourth, and sixth sealing elements 240, 250, 255, and 260 are configured, for example, as sealing rings with a circular or rectangular cross section. The first sealing element 235 is arranged, for example, in the first seal receptacle 195, and the second sealing element 240 is arranged in the second seal receptacle 200 of the cover part 165. This provides a multiplicity of sealing seals in the first axial direction A1 and protects the bearing receptacle 175 from the intrusion of corrosive media, particularly cooling water for cooling the slab strands 85.

[0049] Since the third seal element 245 is arranged in the third seal receptacle 210 and the fourth seal element 250 is arranged in the fourth seal receptacle 215, the bearing receptacle 175 is protected from the ingress of corrosive media, such as cooling water for cooling the slab strand 85, also in the second axial direction A2.

[0050] The rolling bearing 230 has a rolling bearing inner ring 270, a rolling element assembly 275 with at least one rolling element 290, and a rolling bearing outer ring 280. The rolling bearing inner ring 270 abuts on a bearing portion 286 of the roller 120 at a fourth inner circumferential surface 285. A supporting force F is transmitted from the bearing portion 286 of the roller 120 to the rolling bearing inner ring 270 via the fourth inner circumferential surface 285.

[0051] The rolling bearing inner ring 270 is disposed radially inward relative to the rolling element assembly 275. The rolling element assembly 275 may have a plurality of rolling elements 290 formed, for example, in a barrel, cone, or spherical shape. The rolling bearing outer ring 280 is disposed radially outward relative to the rolling element assembly 275. The rolling bearing outer ring 280 has a first raceway surface 295 on its radially inner side. The rolling bearing inner ring 270 has a second raceway surface 300 on its radially outer side, and the rolling element assembly 275 is disposed between the first raceway surface 295 and the second raceway surface 300. The rolling elements 290 roll on the first and second raceway surfaces 295, 300. A supporting force F is transmitted from the rolling bearing inner ring 270 to the rolling bearing outer ring 280 via the rolling element assembly 275.

[0052] In this embodiment, the rolling bearing outer ring 280 is composed of, for example, two parts. In this case, the rolling bearing outer ring 280 has an intermediate ring 305 and a bearing ring 310. The bearing ring 310 has a first raceway surface 295 and is arranged radially inward relative to the intermediate ring 305. The intermediate ring 305 surrounds the bearing ring 310 and abuts against the bearing ring 310 radially outward. In particular, the intermediate ring 305 can be shrunk onto the bearing ring 310. The intermediate ring 305 can be made of, for example, forged steel.

[0053] The rolling bearing 230 has a first end face 415 and a second end face 420 arranged axially opposite the first end face 415. The first end face 415 abuts against the first shoulder surface 180. The second end face 420 is formed, for example, to have a step above the intermediate ring 305 and the bearing ring 310. In this case, the second end face 420 of the intermediate ring 305 abuts against the second shoulder surface 220, and the second end face 420 of the bearing ring 310 abuts against the third shoulder surface 225. As a result, the rolling bearing outer ring 280 is axially fixed in both the axial directions A1 and A2.

[0054] In the axial direction, the bearing ring 310 is shorter than, for example, the intermediate ring 305, so that, as shown in FIG. 5, for example, the intermediate ring 305 protrudes beyond the bearing ring 310 on the side of its second end face 420 facing the first housing cover 150, whereas the intermediate ring 305 and the bearing ring 310 are arranged in the same plane on the first end face 415 facing the cover part 165.

[0055] The lubrication duct system 266 may have at least one lubricant supply duct 425 for supplying lubricant. The lubricant supply duct 425 may be formed as a groove extending at least partially in the circumferential direction on the radial outer side of the bearing ring 310. Radially outward, the lubricant supply duct 425 is closed by the intermediate ring 305. Furthermore, the lubricant duct system 266 may have at least one, preferably multiple, lubricant passage ducts 430 extending radially and arranged offset from one another in the circumferential direction. The lubricant passage ducts 430 open radially inward into the radial gap between the first raceway surface 295 and the second raceway surface 300, on which the rolling element assembly 275 is arranged. The lubricant duct system 266 is fluidly connected to a lubricant supply device (not shown). A lubrication duct system 266 is used to supply a lubricant, for example an oil-based or grease-based lubricant, from the outside to the rolling element assembly 275 for lubrication of the rolling element assembly 275 .

[0056] It is particularly advantageous if the fastening means 265 is, for example, tubular in shape and encloses inside a lubricant supply duct 445. The lubricant supply duct 445 opens into the inside of the lubricant duct system 266, in particular into the lubricant supply duct 425. Lubricant can be easily supplied from the outside through the lubricant supply duct 445. Furthermore, the sealing means 406 prevents the coolant from mixing with the lubricant and vice versa.

[0057] FIG. 6 is a perspective view of the intermediate ring 305.

[0058] The fifth inner circumferential surface 315 of the intermediate ring 305 is formed substantially uninterrupted and extends cylindrically around the rotation axis 130. The second outer circumferential surface 320 of the rolling bearing outer ring 280 (illustrated as the intermediate ring 305 in FIG. 6 ) is divided into a cooling region 335 and a support region 330. The support force F is transmitted to the first inner circumferential surface 170 of the bearing receiving portion 175 via the second outer circumferential surface 320.

[0059] The cooling duct system 261 has cooling ducts 325 arranged in the cooling region 335. In the cooling region 335, groove ducts 350 for forming the cooling ducts 325 of the cooling duct system 261 are arranged on the second outer peripheral surface 320. The groove ducts 350 are arranged axially between the first seal groove 340 and the second seal groove 345 and spaced apart from each other. The first seal groove 340 and the second seal groove 345 are formed on the second outer peripheral surface 320 so as to extend around the rotation axis 130. For example, the first seal groove 340 is formed to open toward the first end face 415 of the intermediate ring 305, while the second seal groove 345 is arranged spaced apart from the second end face 420, which is arranged on the opposite side of the first end face 415 of the intermediate ring 305.

[0060] FIG. 7 is a side view of the intermediate ring 305 shown in FIG.

[0061] The channel 350 opens radially outward. The intermediate ring 305 is preferably configured so that the channel 350 does not protrude as far as the fifth inner peripheral surface 315, but rather the material of the intermediate ring 305 closes the channel 350 radially inward towards the axis of rotation 130.

[0062] The channel duct 350 has at least one first channel duct section 355, a second channel duct section 360, and at least one third channel duct section 365. Additionally, the channel duct 350 may have a fourth channel duct section 366, which is not visible in FIG. 7 . The first channel duct section 355 and the second channel duct section 360 are spaced apart from each other in the axial direction, and a web 370 extends radially outward between the first channel duct section 355 and the second channel duct section 360. The web 370 has, for example, approximately the same axial width as the first channel duct section 355 and / or the second channel duct section 360.

[0063] FIG. 8 shows a partial development of the intermediate ring 305 shown in FIGS.

[0064] The first grooved duct section 355 and the second grooved duct section 360 are connected to each other in a first end region via a third grooved duct section 365. In this case, the third grooved duct section 365 is formed in the shape of a circular arc and delimits a web 370 in the circumferential direction.

[0065] The first groove duct portion 355 and the second groove duct portion 360 are connected to each other via a fourth groove duct portion 366 in a second end region circumferentially opposite the first end region. The fourth groove duct portion 366 is preferably formed in an arc shape and circumferentially separates the web 370 on the opposite side from the third groove duct portion 365. This gives the groove duct 350 the shape of a flat ring in a developed view. Alternatively, for example, the groove duct 350 may be guided in a serpentine manner between the first sealing groove 340 and the second sealing groove 345.

[0066] FIG. 9 is a cross-sectional view of the intermediate ring 305 shown in FIG. 7 along section EF shown in FIG.

[0067] The grooved duct 350, and thus the cooling zone 335, extends over a first angular segment α relative to the rotational axis 130. The support zone 330 extends over a second angular segment β relative to the rotational axis 130 and is configured to extend in a semi-cylindrical manner around the rotational axis 130. Preferably, the support zone 330 of the second outer peripheral surface 320 does not need to be interrupted by notches or grooves. The first angular segment α includes an angle of at least 180°, preferably between 230° and 300°. The second angular segment β complements the first angular segment α to 360° and is adjacent to each circumferential end of the cooling zone 335.

[0068] FIG. 10 is a perspective view of the pedestal bearing housing 145.

[0069] On the side of the bearing receiving portion 175 facing the fixed surface 140, the pedestal bearing housing 145 has a first through-opening 375 extending radially toward the rotation axis 130, and the first through-opening 375 opens into the first inner circumferential surface 170 of the bearing receiving portion 175. The first through-opening 375 may be disposed, for example, at a position approximately in the axial center of the maximum axial extension of the bearing receiving portion 175.

[0070] 11 is a cross-sectional view of the pedestal bearing housing 145 shown in FIG. 10 taken along section G-G shown in FIG.

[0071] In the pedestal bearing housing 145, a supply duct 380 and a return duct 385 of the cooling duct system 261 are arranged on the side facing the fixed surface 140, and the supply duct 380 and the return duct 385 are arranged spaced apart from each other in the circumferential direction. In the circumferential direction, the first through opening 375 may be arranged between the supply duct 380 and the return duct 385. The supply duct 380 may be fluidly connected to a coolant supply path of a cooling system of the manufacturing plant 10, and the return duct 385 may be fluidly connected to a coolant return path.

[0072] The supply duct 380 extends radially outward. The supply duct 380 and the return duct 385 are, for example, arranged at an angle within the pedestal bearing housing 145, and the supply duct 380 and the return duct 385 extend axially away from each other, for example, in different axial directions A1 and A2. Thus, the supply duct 380 extends in a second axial direction A2 toward the first housing cover 150, and the return duct 385 extends in a first axial direction, for example, toward the cover portion 165.

[0073] In the first inner circumferential surface 170, the supply duct 380 opens, for example, into a first opening region 390, and the return duct 385 opens into a second opening region 395. The first and second opening regions 390, 395 are formed to be wider in the axial and radial directions than the supply duct 380 or the return duct 385 that open into the opening regions 390, 395, respectively.

[0074] Figure 12a is a cross-sectional view of the partially assembled pedestal bearing 125 taken along section G-G shown in Figure 10. Figure 12b is a perspective view of the pedestal bearing 125 shown in Figure 12a.

[0075] 12a and 12b, the intermediate ring 305 is inserted into the pedestal bearing housing 145. The intermediate ring 305 has a predetermined alignment with respect to the pedestal bearing housing 145. For example, the support area 330 is positioned on the side facing the fixed surface 140 in the circumferential direction. It is particularly advantageous for the support area 330 to extend substantially completely in the circumferential direction between the first opening area 390 and the second opening area 395. Depending on the load applied to the intermediate ring 305 by the support force F, other predetermined alignments of the intermediate ring 305 with respect to the pedestal bearing housing 145 are also possible. Preferably, the support area 330 is circumferentially arranged so that a straight line 386, which coincides with the direction of the support force F and intersects with the rotation axis 130, passes through the support area 330. Preferably, the support area 330 is arranged on both sides of the straight line 386, preferably in the center. The straight line 386 may be positioned perpendicular to the fixing region 140 or inclined thereto, preferably at an angle of 80° to 110°. In this case, it is basically advantageous if the support force F is transmitted to the first inner circumferential surface 170 of the bearing receiving part 175 via the support region 330.

[0076] For example, the second through-opening 400 may be arranged in the intermediate ring 305, for example in the support area 330 or in the web 370, and extend completely through the intermediate ring 305, with the first through-opening 375 and the second through-opening 400 being aligned with each other. In Figure 12a, for example, the second through-opening 400 is arranged in the center of the maximum extension of the support area 330 in the circumferential direction, and therefore between the ends of the channel duct 350.

[0077] By aligning the first and second through openings 375, 400, the first opening area 390 is positioned to overlap radially outward with the third grooved duct portion 365, and the second opening area 395 is positioned to overlap radially with the fourth grooved duct portion 366 on the opposite circumferential side.

[0078] The fastening means 265 is elongated and, for example, cylindrical. When the pedestal bearing housing 145 is in an assembled state (see FIG. 5 ), the fastening means 265 is arranged between the first and second through-openings 375, 400. On the one hand, the fastening means 265 determines a predetermined alignment of the intermediate ring 305 relative to the pedestal bearing housing 145, and on the other hand, the fastening means 265 connects the intermediate ring 305 to the pedestal bearing housing 145 in a non-rotatable manner. The fastening means 265 may be fixed, for example, in the first and second through-openings 400, 405 in a material-tight and / or form-tight and / or force-tight manner. For example, an adhesive layer 406 may be provided surrounding the fastening means 265 in the circumferential direction. In this case, the adhesive layer 406 also forms a sealing means 407. The adhesive layer 406 has the advantage that it ensures a tight seal of the fastening means 265 with the cooling duct system 261 thereon.

[0079] With the intermediate ring 305 installed, the cooling duct 325 is bounded radially outward by the first inner circumferential surface 170 of the bearing receiving portion 175. The cooling duct 325 is sealed by a fifth seal element 255 arranged in the first seal groove 340 and a sixth seal element 260 arranged in the second seal groove 345 axially opposite the fifth seal element 255 (see FIG. 5). The fifth seal element 340 and the sixth seal element 345 abut against the intermediate ring 305 and the inner circumferential surface 170, respectively, to provide a seal.

[0080] To ensure good rolling of the rolling elements 290 on the raceways 295, 300 and low wear of the rolling element assembly 275, an oil-based or grease-based lubricant may be disposed in the area of ​​at least two of the raceways 295, 300. Sealing on both sides with the first to fourth sealing elements 235, 240, 245, 250 prevents the lubricant from mixing with the cooling water used to cool the slab strands 85.

[0081] To cool the rolling bearing 230, a coolant 410, for example, cooling water, is supplied through the supply duct 380. The coolant 410 is supplied by a cooling system. The coolant 410 flows into the supply duct 380 and through the supply duct 380 to the first opening area 390. The coolant 410 flows from the first opening area 390 into the third grooved duct portion 365. At this time, the third grooved duct portion 365 functions as a distributor, distributing the supplied coolant 410 to the first grooved duct portion 360 and the second grooved duct portion 365. The coolant 410 flows circumferentially along the first and second grooved duct portions 355, 360 until it reaches the other circumferential end of the first and second grooved duct portions 355, 360. The fourth grooved duct section 366 functions, for example, as a confluence point, and joins two flows of coolant 410. The coolant 410 flows from the fourth grooved duct section 366 into the second opening region 395, from which the coolant 410 is discharged through the return duct 385 from the pedestal bearing 125 to the return flow of the cooling system. The coolant 410 absorbs heat from the pedestal bearing 125 and cools it. In particular, the rolling bearing 230 is sufficiently cooled by the cooling duct 325 located radially inward and is protected from overheating.

[0082] Sealing of the cooling duct 325 by the fifth and sixth seal elements 255, 260 in the first and second seal grooves 340, 345 prevents the coolant 410 from flowing out of the bearing receptacle 175 toward the rolling element assembly 275 and prevents the coolant 410 from mixing with the lubricant. This ensures reliable cooling of the rolling bearing 230 on the one hand and prevents corrosion or loss of lubrication of the rolling bearing 230, particularly the rolling element assembly 275, on the other hand. This ensures a long service life of the rolling bearing 230, even at high ambient temperatures where the pedestal bearing 125 is used to support the roller 120. In particular, good cooling with the additional coolant 410 prevents lubricant degradation. In this way, support of the bearing force F is guaranteed even when the ambient temperature of the pedestal bearing 125 is between 5°C and 600°C and the roller 120 is rotated at a low speed of 0.5 to 10 revolutions per minute.

[0083] The predetermined alignment of the support area 330 with respect to the support force F ensures reliable support of the support force F from the rollers 120 via the rolling bearings 230, particularly via the intermediate ring 305, to the first inner peripheral side surface 170 of the pedestal bearing housing 145. The elimination of the need for cooling ducts 325 in the support area 330 allows the surface pressure on the second outer peripheral surface 320 of the support area 330 and the first inner peripheral surface 170 adjacent to the support area 330 to be kept low. This prevents mechanical overloading of the web 370 by the support force F. The support force F is transmitted directly from the pedestal bearing housing 145, bypassing the first housing cover 150, to the first contact surface 146, where it is supported by the second contact surface 147 on the segment frame 135.

[0084] Furthermore, the intermediate ring 305 can be manufactured particularly easily and cost-effectively, since it can be manufactured, for example, as a turned part and the grooved ducts 350 can be milled into the second outer peripheral surface 320. The intermediate ring 305 can easily be combined with the bearing ring 310 to form the rolling bearing outer ring 280. This makes it possible to avoid complex machining of the bearing ring 310, which is hardened at least on the first raceway surface 295.

[0085] Furthermore, assembly of the rolling bearing 230 and the predetermined alignment of the rolling bearing 230 with respect to the pedestal bearing housing 145 is particularly easy.

[0086] Fig. 13a is a perspective view of a rolling bearing 230 of a pedestal bearing 125 according to the second embodiment. Fig. 13b and Fig. 13c are side views of the rolling bearing 230 shown in Fig. 13a, seen from different directions.

[0087] For clarity, the pedestal bearing housing 145 is not shown in Figures 13a-13c.

[0088] The pedestal bearing 125 is basically the same as the pedestal bearing 125 according to the first embodiment shown in FIGS. 1 to 12. The following mainly focuses on the differences between the pedestal bearing 125 according to the second embodiment shown in FIGS. 13a to 13c and the pedestal bearing 125 according to the first embodiment shown in FIGS. 1 to 12. The rolling bearing 230 shown in FIGS. 13a to 13c has a rolling bearing outer ring 280 integrally formed from a uniform material. In this case, the bearing ring 310 and the intermediate ring 305 are formed as a combined unit.

[0089] FIG. 14 shows a vertical cross section of the rolling bearing 230 shown in FIGS. 13a to 13c.

[0090] By forming the bearing ring 310 and the intermediate ring 305 integrally from a uniform material, the rolling bearing outer ring 280 is formed particularly thin in the radial direction, and therefore the pedestal bearing 125 can be formed particularly compact in the radial direction. Furthermore, by forming it thin, the cooling ducts 325 are guided particularly close to the rolling element assemblies 275, and therefore close to the lubricant. This allows both the lubricant and the rolling element assemblies 275 to be particularly well cooled by the coolant 410.

[0091] FIG. 15 is a cross-sectional view of a pedestal bearing 125 according to a third embodiment taken along section CD shown in FIG.

[0092] The pedestal bearing 125 has basically the same configuration as the pedestal bearing 125 according to the first embodiment shown in Figures 1 to 12. The following mainly describes the differences between the pedestal bearing 125 according to the third embodiment shown in Figure 15 and the pedestal bearing 125 according to the first embodiment shown in Figures 1 to 12. For ease of viewing, the roller 120 and the first housing cover 150 are not shown in Figure 15.

[0093] Unlike the first embodiment shown in Figures 1 to 12, the second end face 420 is formed to be generally flat rather than having a stepped configuration as shown in Figures 1 to 12, so that the bearing ring 310 and the intermediate ring 305 are flush with the second end face 420.

[0094] 15, the intermediate ring 305 is formed in an annular shape, and the second outer peripheral surface 320 is formed substantially continuously. In the embodiment shown in Fig. 15, the groove duct 350 is arranged on the first inner peripheral surface 170 of the pedestal bearing housing 145 in the bearing portion 160. In contrast, the groove duct 350 opens radially inward of the pedestal bearing housing 145. In this case, the cooling duct 325 is bounded radially inward by the second outer peripheral surface 320 of the rolling bearing outer ring 280, which in this embodiment is formed substantially cylindrical.

[0095] The grooved duct 350 can be formed, for example, by milling into the pedestal bearing housing 145. The arrangement of the grooved duct 350 has the advantage that the rolling bearing 230 can be mounted in any direction in the circumferential direction when mounted in the bearing receptacle 175. This makes it easier to assemble the pedestal bearing 125.

[0096] In the embodiment of Figure 15, the rolling bearing outer ring 280 is made up of two parts, as shown in Figure 5, by the intermediate ring 305 and the bearing ring 310. Obviously, the rolling bearing outer ring 280 can also be made in one piece from a uniform material.

[0097] 1 to 12, the first seal groove 340 and the second seal groove 345 are arranged in the bearing part 160. The seal grooves 340, 345 open radially inward toward the rolling bearing 230. As a result, the fifth and sixth seal elements 255, 260 abut against the respective seal grooves 340, 345 on the one hand, and also abut against the second outer peripheral surface 320 of the intermediate ring 305.

[0098] 15, the channel duct 350 is guided mainly on the side facing away from the fixed surface 140 of the bearing receptacle 175, and the intermediate ring 305 abuts over substantially the entire surface in the support region 330 against the second outer peripheral surface 320 and the first inner peripheral surface 170 of the bearing receptacle 175, thereby providing particularly good support for the support force F, which is transmitted from the rolling bearing 230 via the pedestal bearing housing 145 to the fixed surface 140. At the fixed surface 140, the support force F is supported by the segment frame 135.

[0099] It is noted that the pedestal bearing housing 145 having the grooved duct 350 shown in Figure 15 can be combined with the rolling bearing 230 shown in Figures 6 to 14. In this case, the alignment and configuration of the grooved ducts 350 arranged on both the second outer peripheral surface 230 of the rolling bearing 230 and the first inner peripheral surface 170 of the bearing receiving portion 175 are complementary, so that the two grooved ducts 350 form the cooling duct 325. In this embodiment, to seal the cooling duct 325, it is possible to arrange the seal grooves 340, 345 in the rolling bearing 230 as shown in Figures 6 to 14, or to arrange the seal grooves 340, 345 in the pedestal bearing housing 145 as shown in Figure 15.

[0100] If the channel ducts 350 are arranged both in the rolling bearing 230 and in the pedestal bearing housing 145, the cooling ducts 325 have a particularly large cross-sectional area, which ensures particularly good cooling of the rolling bearing 230, and in particular of the lubricant of the rolling bearing 230. Furthermore, the radial structure is particularly slender and compact.

[0101] 3 to 12, for example, the fixing means 265 is screwed into the pedestal bearing housing 145. For example, the sealing means 407 may be constituted by an assembly of sealing rings surrounding the fixing means 265. The sealing rings may be constituted by, for example, O-rings. In this case, the sealing rings are disposed in third and fourth sealing grooves 435, 440 in the through openings 375, 400 in the pedestal bearing housing 145 and the rolling bearing outer ring 280, respectively.

[0102] Furthermore, instead of the embodiment shown in Figures 5 to 15, the cover part 165 may be formed as a separate second housing cover, which, like the first housing cover 150, is axially opposite to the first housing cover 150 and is reversibly and removably fixed to the pedestal bearing housing 145, in particular the bearing part 160, for example by a threaded connection.

[0103] The embodiment of the pedestal bearing 125 shown in Figures 1 to 15 is particularly easy to manufacture with only a few manufacturing steps and provides high operational stability even under high thermal loads, especially in the continuous caster 20 and / or the pre-rolling train 25 and / or the intermediate heater 45 and / or the descaling machine 50 and / or the finishing rolling train 55 and / or the roller table 100. [Explanation of symbols]

[0104] 10 Manufacturing Plant 15 Hot-rolled materials 20 Continuous casting machine 25 Preliminary Rolling Train 30 First Separation Device 35 Second Separator 40 Third Separation Device 45 Intermediate heater 50 Descaling Machine 55 Finishing Rolling Train 60 Cooling Section 65 Winder 70 ladle 71 Distributor 75 Mold 80 Metal Melt 85 Slab Strand 90 Strand Guide 95 Pre-rolled strip 100 Roller Table 105 Finish Rolled Strip 110 coil 115 Drive stand 120 Laura 121 rolling surface 125 Pedestal bearing 130 Rotational Axis 135 segment frame 140 Fixed surface 145 Pedestal bearing housing 146 First Contact Surface 147 Second Contact Surface 150 First housing cover 160 Bearing part 165 Cover part 170 first inner peripheral surface 175 bearing receiving part 180 First Shoulder 185 Shoulder 190 second inner surface 195 first seal receiving portion 200 Second seal receiving portion 205 Symmetry Plane 210 third seal receiving portion 215 Fourth seal receiving portion 216 Third inner surface 220 Second Shoulder 225 Third Shoulder 229 First outer surface 230 Rolling bearings 235 first sealing element 240 Second sealing element 245 Third sealing element 250 Fourth sealing element 255 Fifth Seal Element 260 Sixth sealing element 261 Cooling duct system 265 Fixing means 266 Lubrication Duct System 270 Rolling bearing inner ring 275 Rolling Element Assembly 280 Rolling bearing outer ring 285 Fourth inner surface 286 Bearing part 290 rolling elements 295 First Orbital Plane 300 Second orbital plane 305 Intermediate ring 310 Bearing ring 315 5th inner surface 320 second outer peripheral surface 325 Cooling Duct 330 Support area 335 Cooling area 340 First seal groove 345 Second seal groove 350 Channel Duct 355 First groove duct section 360 Second groove duct section 365 Third groove duct section 366 Fourth groove duct section 370 Web 375 First Passage Opening 380 Supply Duct 385 Return Duct 390 First Opening Area 395 Second Opening Area 400 Second Pass-Through Opening 405 Screw 406 Adhesive layer 407 Sealing means 410 Coolant 415 First end face 420 Second end face 425 Lubricant supply duct 430 Lubricant passage duct 435 Third seal groove 440 4th seal groove α First angle segment β Second angle segment A1 First axis direction A2 Second axial direction F Supporting capacity

Claims

1. In a manufacturing plant (10) for producing hot rolled material (15), a support for a slow-moving body is provided. - a pedestal bearing housing (145) with a bearing receptacle (175); a cooling duct system (261) with at least one cooling duct (325), a rolling bearing (230) arranged in said bearing receptacle (175) and provided with a rolling bearing outer ring (280), - said bearing receiving portion (175) has a first inner peripheral surface (170) surrounding the rotation axis (130); - said pedestal bearing housing (145) has a first contact surface (146); - said pedestal bearing housing (145) is configured to transfer a support force (F) from said rolling bearing outer ring (280) to said first contact surface (146); a pedestal bearing (125) in which the cooling duct (325) extends circumferentially around the rotation axis (130) and is configured to guide a coolant (410) that can be supplied to the cooling duct (325) to cool the rolling bearing (230) and / or the pedestal bearing housing (145), - a first inner peripheral surface (170) of the bearing receiving portion (175) of the pedestal bearing housing (145) radially outwardly bounds the cooling duct (325), and the rolling bearing outer ring (280) radially inwardly bounds the cooling duct (325); - said rolling bearing outer ring (280) has, on its second outer peripheral surface (320), at least partially extending grooved ducts (350) formed in the circumferential direction in the shape of grooves; - said channel ducts (350) are configured to open radially outwards and delimit said cooling ducts (325) radially inwards; a pedestal bearing (125) characterized in that said channel duct (350) has the shape of a flat pressed ring in the developed view;

2. A pedestal bearing (125) according to claim 1, wherein said manufacturing plant (10) is a continuous casting plant.

3. the pedestal bearing housing (145) has a grooved duct (350) at least partially formed in the first inner peripheral surface (170) and extending in the circumferential direction, A pedestal bearing (125) according to claim 1 or 2, wherein said grooved duct (350) is configured to open radially inwards and delimits said cooling duct (325) radially outwards.

4. - A pedestal bearing (125) according to claim 1, wherein the grooved duct (350) is formed at least partially in a serpentine or annular shape between a first end face (415) of the rolling bearing outer ring (280) and a second end face (420) of the rolling bearing outer ring (280) arranged on the opposite side in the axial direction.

5. said channel duct (350) having a first channel duct portion (355) and a second channel duct portion (360) fluidly connected to said first channel duct portion (355); - said first grooved duct portion (355) extends circumferentially around the axis of rotation (130); - said second grooved duct portion (360) extends circumferentially around said axis of rotation (130) and is axially offset relative to said first grooved duct portion (355); - the rolling bearing outer ring (280) has a web (370) in the axial direction between said first grooved duct portion (355) and said second grooved duct portion (360); A pedestal bearing (125) according to claim 1, wherein said web (370) abuts against a first inner peripheral surface (170) of a bearing receptacle (175).

6. - said channel duct (350) has a third channel duct portion (365); the first grooved duct portion (355) extends parallel to the second grooved duct portion (360) in the circumferential direction; A pedestal bearing (125) according to claim 5, wherein said third channel duct portion (365) connects the circumferential end of said first channel duct portion (355) with said second channel duct portion (360).

7. - the second outer peripheral surface (320) of the rolling bearing outer ring (280) is divided into a cooling area (335) and a support area (330); - cooling ducts (325) are arranged in said cooling zone (335); - said cooling ducts (325) extend on said second outer peripheral surface (320) over a first predetermined angular segment (α) around the axis of rotation (130); - in the circumferential direction, said cooling ducts (325) are adjacent to said support areas (330), said support area (330) extends over a predetermined second angular segment (β); - said second outer peripheral surface (320) is formed in a substantially part-cylindrical shape in said support area (330); - the support force (F) can be transmitted to the pedestal bearing housing (145) exclusively through said support area (330); The pedestal bearing (125) of claim 1, wherein said support force (F) is directed from the axis of rotation (130) to said support area (330).

8. A pedestal bearing (125) according to claim 7, wherein said first inner peripheral surface (170) and said second outer peripheral surface (320) abut against each other over the entire surface in said support region (330).

9. A pedestal bearing (125) according to claim 7, wherein the first angular segment (α) comprises an angle of at least 140° to 330° around the axis of rotation (130).

10. A pedestal bearing (125) according to claim 9, wherein said first angular segment (α) comprises an angle of at least 180° to 300°.

11. A pedestal bearing (125) according to claim 1, wherein the rolling bearing outer ring (280) and / or the pedestal bearing housing (145) are made of a single, homogeneous material.

12. - the outer ring of the rolling bearing (280) comprises an intermediate ring (305) and a bearing ring (310), the intermediate ring (305) is formed in the shape of a hollow cylinder around the axis of rotation (130), has a fifth inner peripheral surface (315) on the radially inner side and a second outer peripheral surface (320) on the radially outer side; - A pedestal bearing (125) as described in claim 1, wherein the bearing ring (310) is arranged radially inward relative to the intermediate ring (305) and abuts radially outward with the fifth inner peripheral surface (315) of the bearing ring (310).

13. A pedestal bearing (125) according to claim 12, wherein the intermediate ring (305) has grooved ducts (350) extending radially from the second outer peripheral surface (320) towards the fifth inner peripheral surface (315).

14. - at least one fifth sealing element (255) and a first sealing groove (340) arranged on the second outer circumferential surface (320) or on the first inner circumferential surface (170); - said first sealing groove (340) is formed so as to extend around the axis of rotation (130); - said fifth sealing element (255) is at least partially located in said first sealing groove (340); The pedestal bearing (125) of claim 1, wherein said fifth sealing element (255) seals the cooling duct (325) fluid-tightly.

15. A pedestal bearing (125) according to claim 14, wherein the first sealing groove (340) and the grooved duct (350) are formed in the first inner peripheral surface (170) or the second outer peripheral surface (320).

16. the cooling duct system (261) comprises a supply duct (380) arranged in the pedestal bearing housing (145) and a return duct (385) arranged in said pedestal bearing housing (145); - said supply duct (380) and said return duct (385) open into the cooling duct (325) offset from one another; - a coolant (410) can be fed into said cooling duct (325) by means of said feed duct (380); The pedestal bearing (125) of claim 1, wherein said coolant (410) can be discharged from said cooling duct (325) by means of said return duct (385).

17. A manufacturing plant (10) for the production and / or transport of hot rolled material (15), comprising: - a pedestal bearing (125) according to claim 1 and a roller (120) with a rolling surface (121) arranged on its periphery for guiding, supporting and / or shaping the hot-rolled material (15), - a rolling bearing (230) supporting said roller (120) rotatably about the axis of rotation (130) of the manufacturing plant (10).

18. - A manufacturing plant (10) according to claim 17, wherein said manufacturing plant (10) is a continuous casting plant.

19. A manufacturing plant (10) according to claim 17, wherein said hot rolled material (15) is a hot cast slab strand (85).

Citation Information

Patent Citations

  • AT521218

  • Cooling water circulating device for continuous casting roller set

    CN107511466A

  • Novel slab continuous casting roller bearing seat

    CN110000354A

  • JP1981124323U

  • Rolling bearing device

    JP2010261584A