Rotary system with axial gas bearing
11428264 · 2022-08-30
Assignee
Inventors
Cpc classification
F16C32/0692
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/1005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/23
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C32/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotation system (10) is disclosed having at least one axial gas bearing, containing: a housing (11), a shaft (12) that can be rotated relative to the housing (11), at least one bearing plate (13) attached to the shaft (12), and at least one bearing assembly (14) which supports the bearing plate (13) relative to the housing (11), via an axial gas bearing. The bearing assembly (14) has, from inside to outside, a radially inner region (15) supporting the bearing plate (13), a radially central region (16) and a radially outer region (17) held by the housing (11). The radially inner region (15) contains at least one axial bearing element (19) and at least one retention element (20). The bearing plate (13) is supported by the axial bearing element (19), and the retention element (20) holds the axial bearing element (19) in the axial direction.
Claims
1. A rotary system with at least one axial gas bearing containing: a housing, a shaft rotatable relative to the housing, at least one bearing washer fastened to the shaft, and at least one bearing assembly which supports the bearing washer relative to the housing by an axial gas bearing, wherein the bearing assembly has, from inside to outside, a radially inner region supporting the bearing washer, a radially central region and a radially outer region held by the housing, the radially inner region contains at least one axial bearing element and at least one holding element, and the bearing washer is supported by the axial bearing element and the holding element holds the axial bearing element in the axial direction.
2. The rotary system according to claim 1, wherein the radially central region is more elastic than the radially inner region.
3. The rotary system according to claim 2, wherein the radially central region is more elastic than the radially inner region due to at least one material weakening of the radially central region.
4. The rotary system according to claim 1, wherein the radially central region is more elastic than the radially outer region.
5. The rotary system according to claim 4, wherein the radially central region is more elastic than the radially outer region due to at least one material weakening of the radially central region.
6. The rotary system according to claim 2, wherein the at least one material weakening is formed by a recess formed in the axial direction or by an opening penetrating the bearing assembly.
7. The rotary system according to claim 4, wherein the at least one material weakening is formed by a recess formed in the axial direction or by an opening penetrating the bearing assembly.
8. The rotary system according to claim 1, wherein the holding element holds the axial bearing element by a holding mechanism selected from the group consisting of clamping, screwing, soldering, welding, shrinking, pressing, gluing, crystallization connection, press connection, plastic casting and laser sintering.
9. The rotary system according to claim 8, wherein the at least one axial hearing element contains, or is formed by, two axial bearing washers and the at least one holding element contains, or is formed by, two clamping rings, and the bearing washer is mounted between the axial bearing washers and the clamping rings clamp the axial bearing washers in the axial direction.
10. The rotary system according to claim 1, wherein the radially central region of the bearing assembly is formed by an inner section of a spacer disc to which the radially inner region of the bearing assembly is fastened.
11. The rotary system according to claim 10, wherein the radially outer region of the bearing assembly is formed by an outer section of the spacer disc held on the housing.
12. The rotary system according to claim 10, wherein the inner section of the spacer disc extends between two axial bearing washers of the radially inner region of the bearing assembly between which the bearing washer is supported.
13. The rotary system according to claim 1, wherein the radially central region has a modulus of elasticity in the range from 1,000 MPa to 700000 MPa.
14. The rotary system according to claim 1, wherein the radially inner region has a modulus of elasticity in the range from 1,000 MPa to 700,000 MPa.
15. The rotary system according to claim 1, wherein the radially inner region has a modulus of elasticity in the range from 10,000 MPa to 900,000 MPa.
16. The rotary system according to claim 1, wherein the bearing assembly has at least one cooling channel which extends in the circumferential direction.
17. The rotary system according to claim 1, wherein a circumferentially extending cooling channel is connected to a radial cooling channel in the bearing assembly.
18. The rotary system according to claim 17, wherein the radial cooling channel in the bearing assembly is connected to an axial cooling channel in the housing.
19. The rotary system according to claim 1, wherein the rotary system is selected from the group consisting of turbomachines, engines generators, turbines, coupling systems and flywheels.
Description
(1) In the following, the invention is explained in more detail using an exemplary embodiment. In lateral sectional views, the drawings show:
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(15) The rotary system 10 shown in
(16) Bearing assembly 14 has, from the inside to the outside, a radially inner region 15 supporting the bearing washer 13, a radially central region 16 and a radially outer region 17 held by the housing 11. More precisely, it contains a spacer disc 21 with an inner section 22 and an outer section 23. The outer section 23 of the spacer disc 21 forms the radially outer region 17 of the bearing assembly 14 which is held on the housing 11. The inner section 22 of spacer 21 forms a radially central region 16 of bearing assembly 14.
(17) The inner section 22 of distance washer 21 extends between two axial bearing washers 19, which form axial bearing elements 19. The bearing washer 13 is mounted between the axial bearing washers 19 and the bearing washer 13, whereby air gaps formed between the axial bearing washers 19 and the bearing washer 13, which are not visible here, provide an axial gas bearing. Two clamping blocks 26 are attached to the inner section 22 of spacer 21 by means of clamping screws 27, wherein the clamping blocks 26 extend in opposite axial directions away from the inner section 22 of spacer 21; only one of them can be seen here. The clamping screws 27 each penetrate both terminal blocks 26 and the spacer disc 21, and their screw heads are accommodated in blind holes of the terminal block 26 shown on the right. The clamping blocks 26 each have a holding element in the radially inner region, which is designed as a clamping ring 20. Using the clamping screws 27, the clamping rings 20 clamp the axial bearing washers 19 in the axial direction against the inner section 22 of the spacer disc 21, so that each of the two axial bearing washers 19 is clamped in the axial direction between the inner section 22 of the spacer disc 21 and one of the two clamping rings 20. Clamping block 26 and axial bearing washers 19 together form a radially inner region 15 of the bearing assembly 14.
(18) In the example shown here, the inner section 22 of spacer disk 21 (i.e. the radially central region 16 of bearing assembly 14) contains several openings 18 penetrating it in the axial direction. In this way, the openings 18 form material weakenings which ensure that the radially central region 16 of bearing assembly 14 is more elastic than the radially inner region 15 (i.e. as the clamping blocks 26 and the axial bearing disks 19). As a result, the part of bearing assembly 14 that supports the bearing washer 13 has a rather rigid design overall, so that the axial bearing washers 19 remain comparatively parallel to each other even if the housing 11 is distorted. Due to its relatively more elastic design, the radially central region 16 allows a certain elasticity of the radially inner region 15 compared to the distorting housing 11. Alternatively or in addition to the openings 18, recesses can also be provided, which can also form material weakenings with the above-mentioned effects. Due to the openings 18 mentioned, the radially central region 16 is also more elastic than the radially outer region 17.
(19) The spacer disk 21 has a modulus of elasticity of preferably 60,000 MPa to 220,000 MPa. The axial bearing washers 19 preferably have a modulus of elasticity of 200,000 MPa to 650,000 MPa. The clamping rings 20 have a preferred modulus of elasticity from 60′000 MPa to 220′000 MPa.
(20) This rotary system 10 according to the invention ensures a high degree of parallelism between the bearing washer 13 and the axial bearing washers 19 even at high rotational speeds and temperatures. The comparatively rigid radially inner region 15, formed by the clamping blocks 26 and the axial bearing washers 19, determines the parallelism. In addition, the openings 18 mechanically decouple the axial bearing washers 19 from the housing 11. Furthermore, the temperature distribution can be specifically influenced with the aid of the cooling channels 24. In the embodiment described here, the terminal blocks 26 are structurally separated from the spacer disc 21, so that the components can each be simpler in shape and production is therefore more economical overall.
(21) In the rotary system 10 as shown in
(22) In contrast to
(23) The rotary system 10 shown in
(24) In the rotary system 10 shown in
(25) In the example shown in
(26) In
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(29) In
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(31) The embodiment shown in
(32) Circumferential cooling fins 32 are formed on the radial outside of the terminal blocks 26, which extend into the cooling channels 24. The cooling fins 32 increase the surface area in the cooling channels 24 and thus contribute to better heat transfer and better cooling of the axial bearing.