COMPRESSOR WHEEL
20230193921 · 2023-06-22
Inventors
Cpc classification
F01D5/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D17/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2250/193
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04D29/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2220/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2230/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04D29/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A compressor wheel for a compressor of a turbocharger has a hub and a multiplicity of blades on the hub. In intermediate spaces of the multiplicity of blades, a channel is in each case formed between a suction side and a pressure side. The channel guides fluid that flows in axially in relation to a rotation axis radially or radially-axially outward. The hub in relation to the rotation axis is contoured such that the hub has a rotationally symmetrical portion and a non-rotationally symmetrical portion. On the non-rotationally symmetrical portion, a transition between the hub and each of the blades is embodied with a radiused connection and facing the suction side has a region of modified thickness. A region formed by control rays is generated in at least one channel between the suction side and the pressure side on the hub. A method produces the compressor wheel.
Claims
1. A compressor wheel for a compressor of a turbocharger, the compressor wheel comprising a hub and a multiplicity of blades on the hub, wherein in intermediate spaces of the multiplicity of blades a channel is in each case formed between a suction side and a pressure side, the channel guiding fluid that flows in axially in relation to a rotation axis radially or radially-axially outward, wherein the hub in relation to the rotation axis is contoured such that the hub has a rotationally symmetrical portion and a non-rotationally symmetrical portion, wherein on the non-rotationally symmetrical portion a transition between the hub and each of the blades is embodied with a radiused connection and facing the suction side has a region of modified thickness, wherein in at least one channel between the suction side and the pressure side on the hub there is configured a region formed by control rays.
2. The compressor wheel as claimed in claim 1, wherein the region formed by control rays on the hub at least partially covers the non-rotationally symmetrical portion.
3. The compressor wheel as claimed in claim 1, wherein the region formed by control rays on the hub reduces milling peaks of machining by milling that are present as elevations.
4. The compressor wheel as claimed in claim 1, wherein the region formed by control rays on the hub has a radial length which is between 5% and 70% of the length of the blade.
5. The compressor wheel as claimed in claim 1, wherein the region formed by control rays on the hub spans the channel between adjacent blades from 40% of the passage width of the channel up to 100% of the passage width of the channel.
6. The compressor wheel as claimed in claim 1, wherein the region formed by control rays on the hub has a radius in the transition to the rotationally symmetrical portion.
7. A charging device in a vehicle comprising a compressor having a compressor wheel as claimed in claim 1.
8. A method for producing a compressor wheel for a compressor of a turbocharger, which comprises a hub and a multiplicity of blades on the hub, wherein in intermediate spaces of the multiplicity of blades a channel is in each case formed between a suction side and a pressure side, the channel guiding fluid that flows in axially in relation to a rotation axis radially or radially-axially outward, wherein the hub in relation to the rotation axis is contoured such that the hub has a rotationally symmetrical portion and a non-rotationally symmetrical portion, wherein on the non-rotationally symmetrical portion a transition between the hub and each of the blades is embodied with a radiused connection and facing the suction side has a region of modified thickness, wherein generated in at least one channel between the suction side and the pressure side on the hub is a region formed by control rays.
9. The method as claimed in claim 8, wherein one or a plurality of further intermediate spaces of the multiplicity of blades are subsequently machined to achieve one or a plurality of further regions formed by control rays.
10. The method as claimed in claim 8, wherein elevations of machining by milling previously created are reduced or completely removed.
11. The method as claimed in claim 9, wherein elevations of machining by milling previously created are reduced or completely removed.
12. The compressor wheel as claimed in claim 2, wherein the region formed by control rays on the hub reduces milling peaks of machining by milling that are present as elevations.
13. The compressor wheel as claimed in claim 2, wherein the region formed by control rays on the hub has a radial length which is between 5% and 70% of the length of the blade.
14. The compressor wheel as claimed in claim 2, wherein the region formed by control rays on the hub spans the channel between adjacent blades from 40% of the passage width of the channel up to 100% of the passage width of the channel.
15. The compressor wheel as claimed in claim 4, wherein the region formed by control rays on the hub spans the channel between adjacent blades from 40% of the passage width of the channel up to 100% of the passage width of the channel.
16. The compressor wheel as claimed in claim 2, wherein the region formed by control rays on the hub has a radius in the transition to the rotationally symmetrical portion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0027] A number of exemplary embodiments will be explained in more detail hereunder by means of the drawing, in which:
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038] In the figures, identical or functionally equivalent components are provided with the same reference signs.
DETAILED DESCRIPTION
[0039] Firstly, a charging device 1 in which a design embodiment of a compressor wheel according to the invention can preferably be used will be schematically described hereunder by means of
[0040]
[0041] It goes without saying that a charging device 1, as is schematically illustrated in
[0042] The compressor wheel 6 is illustrated in a perspective lateral view in
[0043] The hub 16 has a rotationally symmetrical portion and a non-rotationally symmetrical portion. The non-rotationally symmetrical portion in
[0044] The rotationally symmetrical portion 18′ and the non-rotationally symmetrical portion 18 of the hub 16 are formed in milling processes. The rotationally symmetrical portion 18′ will typically be milled by punctiform contact, and the non-rotationally symmetrical portion 18 will typically be flank-milled. The thickening about the non-rotationally symmetrical portion 18 in the compressor wheel 6 according to the invention is aligned on the suction side of the blade 12.
[0045] The side which is visible, or lies on the top, when viewed from the inflow direction of the compressor wheel is referred to as the suction side of the blade 12, while the opposite side is referred to as the pressure side of the blade 12. The suction side is provided with the reference sign 24 in
[0046] As is shown in
[0047] As has already been mentioned, the region 30 formed by control rays can be formed by milling using a flank of the tool. However, in terms of production technology, it is also possible for the region 30 formed by control rays to be generated in another way, for example by a grinding disk.
[0048] By virtue of the quasi-orthogonal surface, the region 30 formed by control rays can be flank-milled, for example. Potential stress in the material of the compressor wheel 6 in the region of greater or modified thickness is reduced by means of raising close to the suction side 24. The milling steps carried out in the production of the compressor wheel 6 generate corresponding milling lines having elevations and depressions which are reduced or completely removed in the region 30 formed by control rays.
[0049] It is not necessary for the region 30 formed by control rays to be configured completely between the suction side 24 and the pressure side 26 on the hub 16. It has been demonstrated to suffice that at least the region of greater thickness that forms the non-rotationally symmetrical portion 18 is flank-milled.
[0050] It is shown with reference to
[0051] It is shown with reference to
[0052] It is shown with reference to
[0053] As has already been mentioned, the elevations as remnants of point milling can be removed, this being yet again explained in more detail with reference to
[0054] A further compressor wheel 6 according to the invention is shown in
[0055] A further compressor wheel 6 according to the invention is shown in
[0056] In
[0057] The features specified above and in the claims and shown in the figures can be advantageously implemented both individually and in various combinations. The invention is not restricted to the exemplary embodiments described, but may be modified in various ways within the scope of the abilities of a person skilled in the art.
LIST OF REFERENCE SIGNS
[0058] 1 Charging device
[0059] 2 Turbine housing
[0060] 3 Compressor housing
[0061] 4 Bearing housing
[0062] 5 Shaft
[0063] 6 Compressor wheel
[0064] 7 Blade bearing ring
[0065] 8 Adjustable blades
[0066] 9 Adjusting ring
[0067] 10 Turbine wheel
[0068] 11 Supply duct
[0069] 12 Blade
[0070] 14 Bore
[0071] 16 Hub
[0072] 18 Non-rotationally symmetrical portion
[0073] 18′ Rotationally symmetrical portion
[0074] 20 Rear side
[0075] 22 Rotation axis
[0076] 24 Suction side
[0077] 26 Pressure side
[0078] 30 Region formed by control jets
[0079] 32 Transition
[0080] 34 Length
[0081] 36, 36′ Passage width
[0082] 38 Elevations
[0083] 40 Depressions
[0084] 42 Milling cutter
[0085] 44 Control rays