QUENCHING A WHEEL COMPRISING A HUB
20250206063 ยท 2025-06-26
Inventors
Cpc classification
C22F1/002
CHEMISTRY; METALLURGY
B60B21/023
PERFORMING OPERATIONS; TRANSPORTING
C21D9/0062
CHEMISTRY; METALLURGY
B60B3/02
PERFORMING OPERATIONS; TRANSPORTING
B60B3/10
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60B21/02
PERFORMING OPERATIONS; TRANSPORTING
C22F1/00
CHEMISTRY; METALLURGY
B60B3/02
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for quenching a wheel includes at least one hub outer cooling unit for quenching the outer side of a hub portion of the wheel; at least one hub inner cooling unit for quenching the inner side of the hub portion; at least one spoke outer cooling unit for quenching outer sides of the spokes, and at least one rim cooling unit for quenching the rim portion. The cooling units are each configured to spray a cooling medium onto the wheel and are independently controllable by a control unit.
Claims
1. A device for quenching a component in the form of a wheel having a hub portion, a rim portion, and a plurality of circumferentially distributed spokes extending between the hub portion and the rim portion, the device comprising: at least one hub outer cooling unit for quenching an outer side of the hub portion; at least one hub inner cooling unit for quenching an inner side of the hub portion; at least one spoke outer cooling unit for quenching an outer sides of the spokes; at least one rim outer cooling unit for quenching the rim portion; wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim outer cooling unit are each configured to spray a cooling medium onto the wheel; and a control unit configured to control the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim outer cooling unit independently of one another.
2. The device according to claim 1 further comprising at least one rim inner cooling unit for quenching an inner rim flange of the rim portion, wherein the at least one rim inner cooling unit is individually controllable by the control unit.
3. The device according to claim 1, wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim outer cooling unit each include a nozzle configured to spray the cooling medium onto the wheel, wherein the nozzles are designed to spray the cooling medium with pressures of at least 30 bar onto the wheel.
4. The device according to claim 1, wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim outer cooling unit are designed to spray the cooling medium with pressures of at least 80 bar onto the wheel.
5. The device according to claim 1, wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim outer cooling unit are configured to spray the cooling medium onto the wheel to achieve wheel cooling rates of at least 75 Kelvin per second.
6. The device according to claim 1, wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and at least one the rim outer cooling unit are configured to spray the cooling medium in the form of water or a water-air mixture onto the wheel.
7. The device according to claim 1 further comprising: a first device part on which a first subset of the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim cooling unit is arranged; and a second device part movable relative to the first device part, wherein a second subset of the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke outer cooling unit, and the at least one rim cooling unit is arranged on the second device part.
8. The device according to claim 7, wherein the first device part and the second device part are configured in a housing-like manner so that a cavity is formed when the first device part and the second device part are in a closed state, in which cavity the wheel can be accommodated.
9. The device according to claim 8, wherein the first device part includes a support element for holding the wheel, and the second device part is configured to be axially movable relative to the first device part.
10. The device according to claim 8, wherein the first device part includes a rotating unit for rotating the wheel.
11. The device according to claim 8, wherein the first device part forms a lower first housing part, and the second device part forms an upper second housing part, wherein, in a closed state, the upper second housing part axially overlaps the lower first housing part.
12. The device according to claim 11, wherein the lower first housing part is configured to hold the wheel such that the outer side of the wheel points upwards and the inner side of the wheel points downwards, wherein the upper second housing part includes an upper wall portion, at which the at least one hub outer cooling unit, and the at least one spoke outer cooling unit are arranged, and a side wall portion at which the at least one rim outer cooling unit is arranged.
13. A device for quenching a wheel having a hub portion, a rim portion, and spokes comprising: a housing defining a cavity configured to receive the wheel; at least one hub outer cooling unit arranged within the cavity and configured to spray a cooling medium on an outer side of the hub portion; at least one hub inner cooling unit arranged within the cavity and configured to spray the cooling medium on an inner side of the hub portion; at least one spoke cooling unit arranged within the cavity and configured to spray the cooling medium on the spokes; and at least one rim cooling unit arranged within the cavity and configured to spray the cooling medium on the rim portion, wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke cooling unit, and the at least one rim cooling unit are configured to spray the cooling medium independently of each other.
14. The device according to claim 13 further comprising a control unit configured to control the hub outer cooling unit, the hub inner cooling unit, the spoke cooling unit, and the rim cooling unit independently of one another in terms of time.
15. The device according to claim 13, wherein the at least one rim cooling unit is configured to spray the cooling medium on an inner flange of the rim portion.
16. The device according to claim 13, wherein the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke cooling unit, and the at least one rim cooling unit each include a nozzle configured to spray the cooling medium onto the wheel.
17. The device of claim 16, the nozzles are designed to spray the cooling medium with pressures of at least 30 bar onto the wheel.
18. The device of to claim 16, wherein the nozzles are configured to spray the cooling medium onto the wheel to achieve wheel cooling rates of at least 75 Kelvin per second.
19. The device of claim 13, wherein the cooling medium includes water.
20. The device of claim 13, wherein the housing includes a first device part and a second device part that cooperate to define the cavity, wherein a first subset of the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke cooling unit, and the at least one rim cooling unit is arranged on the first device part, and wherein a second subset of the at least one hub outer cooling unit, the at least one hub inner cooling unit, the at least one spoke cooling unit, and the at least one rim cooling unit is arranged on the second device part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Exemplary embodiments are explained below with reference to the figures of the drawings. Herein:
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
DETAILED DESCRIPTION
[0043]
[0044] The wheel 2 has a hub portion 3, circumferentially distributed spokes 4 connecting thereto and a rim portion 5. The hub portion 3 serves for centering and fastening the wheel 2 to a vehicle wheel hub. For this purpose, the hub portion 3 has a central centering hole 6 and a plurality of circumferentially distributed through holes 7, which jointly are also referred to as a hole circle and through which respective fasteners can be inserted. According to an alternative embodiment, instead of a hole circle, the hub may also be configured with only one central hole for centering and simultaneous fastening. The rim portion 4, also referred to as the rim for short, is configured to receive a tire. The rim 4 comprises an outer rim flange 8, a rim bed 9 and an inner rim flange 10. The wheel 2 has an axis A about which it can rotate in a mounted condition.
[0045] In particular, it can be seen in
[0046]
[0047] As can be seen in particular from
[0048] It can further be seen in
[0049] In the present embodiment, not only sections of the spokes 4 are subjected to compressive residual stresses, but the entire spokes as such are each subjected to compressive stresses. In other words, according to a theoretical model, the spokes are clamped between the hub portion 3 and the rim ring 5, that is, forces directed radially outwardly from the hub portion 2 act on the inner ends of the spokes 4, while forces directed radially inwardly from the rim ring 5 act on the outer ends of the spokes 4. This applies at least to an edge layer of the outer side 12. In an edge layer of the inner side 13, lower compressive residual stresses are present than in the edge layer of the outer side 12, wherein tensile residual stresses may also be present here. Overall, the spokes 4 are thus under radial compressive load, at least in the region of the outer side 12, whereas the rim 5 is under tensile load in the circumferential direction. These load conditions are shown in
[0050] Such a load condition can be determined, for example, by means of the free-cutting method. In this case, the rim bed 9 is axially cut open between two spokes 4 adjacent in the circumferential direction. When the rim portion 5 is under tensile load in the circumferential direction, and/or the spokes 4 are under compressive load, the cut-open ends of the rim portion 5 spring open.
[0051]
[0052] In common with the above embodiment, the wheel 2 shown in
[0053] In this embodiment with the residual stresses mentioned, the result of cutting free the rim bed 5 in the circumferential region between two spokes 4 is that the cut-free ends 17, 18 of the rim bed spring open in the axial region of the outer rim flange 8, while they approach each other in the axial region of the inner rim flange 10. Overall, this embodiment results in a gap 16 tapering from the outer rim flange 8 towards the inner rim flange 10, as shown in
[0054] For both embodiments described above, the material used for the wheel may be, for example, a light metal such as aluminum or an aluminum alloy or magnesium or a magnesium alloy, without being limited thereto. For example, a cast aluminum alloy may comprise at least 93.0 weight percent aluminum, 3.5 to 5.0 weight percent silicon, 0.2 to 0.7 weight percent magnesium, and optionally other alloying elements of up to 1.5 weight percent.
[0055] After the blank has been produced, for example by casting, forging or milling, it is heat treated, in particular subjected to a solution annealing. After the heat treatment, the component is quenched, wherein the component 2 can be precooled after the solution annealing and before the quenching. The quenching is carried out in particular such that the desired residual stress distribution is produced in the component.
[0056]
[0057] The cooling units 21, 22, 23, 24, 25 are configured to respectively spray a cooling medium onto the wheel. They are separately controllable by a control unit (not shown) with respect to the start and duration of the cooling and, optionally, at least one further parameter influencing the quenching effect, such as temperature or pressure of the cooling medium. The cooling medium used is, for example, steam or a liquid-gas mixture, in particular water or a water-air mixture. The cooling units 21, 22, 23, 24, 25 comprise corresponding nozzles through which the spray mist is sprayed onto the component 2 at high pressures. In this respect, the quenching can be carried out with high nozzle pressures of at least 30 bar, in particular at least 80 bar. High cooling rates of at least 75 Kelvin per second (K/s), in particular with at least 90 K/s or even more than 100 K/s can be achieved with the device 20.
[0058] It can be seen that the quenching device 20 comprises a first device part 31 on which the cooling units 24, 25 are arranged that act on the inner side 13 of the wheel 2, and a second device part 32 on which the cooling units 21, 22, 23 are arranged that act in a cooling manner on the outer side 12 of the wheel 2. In the present embodiment, the second device part 32, which may also be referred to as the upper part, is configured to be axially movable relative to the first device part 31, which may also be referred to as the lower part, as indicated by the arrow P on the right-hand side. The two device parts 31, 32 are configured in a housing-like manner. The wheel 2 is placed on a support element 33 of the first device part 31, then the upper device part 32 is lowered towards the wheel 2 until the desired distance is reached. Finally, the quenching process begins. The lower device part 31 may comprise a rotating unit for rotationally driving the wheel 2 during quenching.
[0059] The cooling units for quenching the wheel 2 may, for example, be actuated in the following order: the cooling units 22 for cooling the outer side 12 of the spokes 4 before the cooling units 21 of the hub portion 3, then the cooling units 22 for cooling the inner side 13 of the hub portion 2, then the cooling units 25 for cooling the inner side 13 of the rim bed 9 and/or of the hub portion 3, and then the cooling units 23 for cooling the outer side 12 of the rim bed 9. The cooling units 24 for cooling the inner rim flange 10 can be activated in time with the cooling of the outer side 12 of the spokes 4, timely before the cooling units 21, 25 of the hub portion 2 and/or before the cooling units 23 of the rim bed.
[0060] The cooling respectively quenching with the individual cooling units starts in the above-mentioned sequence, but can then continue at least partially with time overlap of the individual cooling units, namely respectively until the desired target temperature is reached in the wheel region to be cooled. Quenching may be carried out for example until the ageing out temperature is reached. After ageing, the wheel can be cooled to room temperature, in particular by means of water.
[0061]
[0062] Compared with this,
LIST OF REFERENCE SIGNS
[0063] 2 wheel [0064] 3 hub portion [0065] 4 spokes [0066] rim portion [0067] 6 center hole [0068] 7 through holes [0069] 8 outer rim flange [0070] 9 rim bed [0071] inner rim flange [0072] 12 outer side [0073] 13 inner side [0074] 14 edge layer [0075] edge layer [0076] 16 slit [0077] 17 cut-free end [0078] 18 cut-free end [0079] 20 device [0080] 21-25 cooling units [0081] 31 device part [0082] 32 device part [0083] 33 support element [0084] L extension [0085] p arrow [0086] s residual stress [0087] T temperature [0088] t time