WHEEL UNIT OF A VEHICLE AND A VALVE ASSEMBLY FOR A WHEEL UNIT

20230026449 · 2023-01-26

Assignee

Inventors

Cpc classification

International classification

Abstract

A wheel unit of a vehicle having a rim on which a tire is mounted, and having a hub which can rotate about an axis of rotation (T), wherein the hub includes a hub body in which a control element that is mounted such that it is displaceable relative to the hub body in the direction of the axis of rotation (T) between a first position and a second position is accommodated. A fluid channel which fluidically connects the tire to a first space formed between the control element and the hub body is configured in the rim. In the first position of the control element, a fluidic connection between the first space and a second space formed between the control element and the rim is interrupted, whereas, in the second position of the control element, a fluidic connection between the first space and the second space is established.

Claims

1. A wheel unit (1) of a vehicle having a rim (2) on which a tire that is or can be inflated with a fluid, in particular air, is or can be mounted, and having a hub which can rotate about an axis of rotation (T) and to which the rim (2) is or can be connected, wherein the hub comprises: a hub body (3) in which a control element (4) that is mounted such that it is displaceable relative to the hub body (3) in the direction of the axis of rotation (T) between a first position and a second position is at least regionally accommodated, wherein at least one fluid channel (5) which fluidically connects the tire to a first space (6), in particular an annular space, formed between the control element (4) and the hub body (3) is configured in or on the rim (2), wherein, in the first position of the control element (4), a fluidic connection between the first space (6) and a second space (7) formed between the control element (4) and the rim (2), a wheel flange of the rim (2), is interrupted, and wherein, in the second position of the control element (4), a fluidic connection between the first space (6) and the second space (7) is established.

2. The wheel unit (1) according to claim 1, wherein at least one fluid channel (8) is configured in the hub body (3) in order to create a fluidic connection between the first space (6) and the second space (7) when the control element (4) is in its second position, wherein sealing means (9) are preferably provided for sealing the first space (6) from the outside atmosphere when the control element (4) is in its first position, wherein the sealing means (9) are preferably embodied as O-rings arranged between the hub body (3) and the rim (2).

3. The wheel unit (1) according to claim 1, wherein the hub body (3) comprises a sealing seat (10) against which, in the first position of the control element (4), a closure part (11) of the control element (4) is pressed, wherein, in the second position of the control element (4), a fluidic connection between the first space (6) and the second space (7) via an intermediate space of the sealing seat (10) and the closure part (11) is established.

4. The wheel unit (1) according to claim 1, wherein the control element (4) is associated with sealing means (12) which are configured in order to seal the second space (7) from the outside atmosphere in the second position of the control element (4).

5. The wheel unit (1) according to claim 1, wherein the control element (4) is associated with a biasing element (13), in the form of a spring element, for biasing the control element (4) in its first position.

6. The wheel unit (1) according to claim 1, wherein the control element (4) is configured to be transferred from the first position to the second position with a control pressure acting on the control element (4) or with the aid of an actuator, in particular an electric or electromagnetic actuator.

7. The wheel unit (1) according to claim 1, wherein the hub body (3) is at least partially or regionally bowl- or cup-shaped, and wherein the control element (4) is at least regionally accommodated inside the bowl or cup-shaped region such that it is displaceable relative to the hub body (3) between the first and the second position.

8. The wheel unit (1) according to claim 1, wherein the control element (4) is at least partially or regionally sleeve-shaped and is configured to at least partially or regionally accommodate a valve assembly (20), in particular a bidirectionally operating valve assembly (20), for the tire.

9. A valve assembly (20) for inflating or at least partially deflating a tire of a wheel unit (1) of a vehicle according to claim 1, selectively or as needed, wherein the valve assembly (20) comprises a canister- or cartridge-shaped valve body (21) having a first port (22) for control and/or working pressure, which is configured on a first end region of the valve body, an outlet (24) separate from the first port (22) for releasing air selectively or as needed when at least partially deflating the tire, and a second port (23) which is configured on a second end region of the valve body (21) opposite to the first end region, via which working pressure can be supplied to the tire selectively or as needed, and air from the tire can be supplied to the outlet (24).

10. The valve assembly (20) according to claim 9, wherein the valve assembly (20) comprises a first control element (25), in the form of a control piston, which is mounted in the valve body (21) such that it is displaceable relative to the valve body (21) between a first position and a second position, wherein, in the first position of the first control element (25), a fluidic connection between the outlet (24) and the second port (23) of the valve assembly (20) is interrupted, and wherein, in the second position of the first control element (25), a fluidic connection between the outlet (24) and the second port (23) of the valve assembly (20) is established; and/or wherein the valve assembly (20) comprises a second control element (26) which is mounted in the valve body (21) such that it is displaceable relative to the valve body (21) between a first position and a second position, wherein, in the first position of the second control element (26), a fluidic connection between the first port (22) and the second port (23) of the valve assembly (20) is interrupted, and wherein, in the second position of the second control element (26), a fluidic connection between the first port (22) and the second port (23) of the valve assembly (20) is established.

11. The valve assembly (20) according to claim 10, wherein the first control element (25) comprises a chamber (27) which is or can be fluidically connected to the first port (22) of the valve assembly (20) via a first fluid channel (28) and to the second port (23) of the valve assembly via a second fluid channel (29), wherein the second control element (26) is accommodated in said chamber (27) and is displaceable relative to the first control element (4) between its first position and its second position, wherein, in the first position of the second control element (26), a fluidic connection between the chamber (27) and the first fluid channel (28) is interrupted, and wherein, in the second position of the second control element (26), a fluidic connection between the first port (22) and the second port (23) of the valve assembly (20) via the first fluid channel (28), the chamber (27) and the second fluid channel (29) is established.

12. The valve assembly (20) according to claim 10, wherein the first control element (25) is associated with a biasing element (30), in particular in the form of a spring element, for biasing the first control element (25) in its first position; and/or wherein the second control element (26) is associated with a biasing element (31), in particular in the form of a spring element, for biasing the second control element (26) in its first position.

13. The valve assembly (20) according to claim 10, wherein a first, annular fluid space (33) is configured between the first control element (25) and the valve body (21), which is fluidically connected to the second port (23), and which is fluidically connected to the outlet (24) of the valve assembly (20) when the first control element (25) is in its second position; and/or wherein the valve body (21) comprises a sealing seat (34) against which, in the first position of the first control element (25), a closure part (35) of the first control element (25) is pressed, wherein, in the second position of the first control element (25), a fluidic connection between the second port (23) and the outlet (24) of the valve assembly (20) via an intermediate space of the sealing seat (34) and the closure part (35) is established.

14. The valve assembly (20) according to claim 10, wherein the first control element (25) comprises a control surface which is configured to transfer the first control element (25) from its first position to its second position upon application of a biasing force of a biasing element (30) associated with the first control element (4).

15. A system comprising a wheel unit (1) according to claim 1 and a valve assembly (20) according to claim 9, wherein the valve assembly (20) is accommodated at least partially or regionally in the control element (4) of the hub body (3) of the wheel unit (1).

Description

BRIEF DESCRIPTION OF SEVERAL VIEWS OF THE DRAWINGS

[0046] Exemplary embodiments of the present invention are described in further detail below with reference to the accompanying drawings.

[0047] FIG. 1 schematically shows a partially cut view of an exemplary embodiment of the wheel unit according to the invention in the decoupled state;

[0048] FIG. 2 schematically shows a top plan view of the exemplary embodiment of the wheel unit according to the invention according to FIG. 1;

[0049] FIG. 3 schematically shows a detail view of the exemplary embodiment of the wheel unit according to FIG. 1, taken along the line A-A in FIG. 2.

[0050] FIG. 4 schematically shows a partially cut isometric view of parts of the wheel unit according to FIG. 1;

[0051] FIG. 5 schematically, and in a partially cut view, shows the exemplary embodiment of the wheel unit according to the invention in a coupled state;

[0052] FIG. 6 schematically shows a top plan view of the wheel unit according to FIG. 5.

[0053] FIG. 7 schematically shows a detail view of the exemplary embodiment of the wheel unit according to FIG. 5, taken along the line A-A in FIG. 4.

[0054] FIG. 8 schematically shows a partially cut isometric view of parts of the wheel unit according to FIG. 5.

[0055] FIG. 9 schematically, and in an isometric view, shows an exemplary embodiment of the valve assembly according to the invention;

[0056] FIG. 10 schematically, and in a further isometric view, shows the exemplary embodiment of the valve assembly according to the invention according to FIG. 9.

[0057] FIG. 11 schematically, and in a sectional view, shows the exemplary embodiment of the valve assembly according to the invention in a closed state;

[0058] FIG. 12 schematically, and in a sectional view, shows the exemplary embodiment of the valve assembly according to the invention while inflating a tire (not shown); and

[0059] FIG. 13 schematically, and in a sectional view, shows the exemplary embodiment of the valve assembly according to the invention while deflating a tire (not shown).

DESCRIPTION OF PREFERRED EMBODIMENTS

[0060] A first exemplary embodiment of the wheel unit 1 according to the invention is first described in further detail in the following with reference to the illustrations in FIG. 1 to FIG. 8. Specifically, two different states of the wheel unit 1 are shown, namely the so-called decoupled state (cf. FIG. 1 to FIG. 4) as well as the so-called coupled state (cf. FIG. 5 to FIG. 8).

[0061] In the decoupled state, there is no fluidic connection between the vehicle hub and the vehicle rim 2. By contrast, in the coupled state of the wheel unit 1, a fluidic connection between the vehicle hub and the rim 2 is realized, such that a pressure regulation of a tire (not shown in the drawings) can be carried out via this fluidic connection to a valve assembly 20 accommodated in the hub.

[0062] Specifically, the exemplary embodiment of the wheel unit 1 according to the invention shown in the drawings is a wheel unit 1 of a vehicle having a rim 2 and a hub that is rotatable about an axis of rotation T. A tire that can be inflated with compressed air (not shown) is or can be mounted on the rim 2.

[0063] The rim 2 is in particular releasably connectable in the hub, which can be rotated about an axis of rotation T.

[0064] The hub comprises a hub body 3, which, in the illustrated embodiment, is formed at least partially or regionally in a bowl or cup shape. A control element 4 is accommodated in the bowl- or cup-shaped hub body 3. The control element 4 is at least partially or regionally sleeve-shaped and is configured in order to at least partially or regionally accommodate a valve assembly 20, in particular a bidirectionally operating valve assembly 20, for the tire mounted on the rim 2.

[0065] An embodiment of a suitable valve assembly 20 is shown in FIG. 9 through FIG. 13 and will be described in further detail below.

[0066] The sleeve-shaped control element 4 accommodated inside the bowl- or cup-shaped hub body 3 is displaceable relative to the hub body 3 in the direction of the axis of rotation T of the hub between a first position (which corresponds to the decoupled position according to FIG. 1 to FIG. 4) and a second position (which corresponds to the coupled position according to FIG. 5 to FIG. 8).

[0067] From the detail views in FIG. 3 and FIG. 7, it can be seen that at least one fluid channel 5 is formed in or on the rim 2, which fluidically connects the tires of the wheel unit 1 (not shown in the drawings) to a first space 6 (annular space) formed between the control element 4 and the hub body 3.

[0068] In the first position of the control element 4, which represents the decoupled state of the wheel unit 1, a fluidic connection between the first space 6 (annular space) and a second space 7 formed between the control element 4 and the rim 2 is interrupted, as can be seen in particular from the detail view according to FIG. 3.

[0069] By contrast, in the second position of the control element 4, which corresponds to the coupled state of the wheel unit 1, a fluidic connection is established between the first space 6 (annular space) and the second space 7 between the control element 4 and the rim 2, as can be seen from the detail view according to FIG. 7.

[0070] It can further be seen from the detail views according to FIG. 3 and FIG. 7 that at least one fluid channel 8 is formed in the hub body 3, which channel serves to form a fluidic connection between the first space 6 (annular space) and the second space 7 when the control element 4 is in its second position, corresponding to the coupled state of the wheel unit 1. In this context, reference is made in particular to the detail view in FIG. 7.

[0071] Further, it can be seen in the drawings that in the exemplary embodiment of the wheel unit 1 according to the invention, sealing means 9 are provided for sealing the first space 6 from the outside atmosphere when the control element 4 is in its first position (cf. in particular FIG. 3). The sealing means 9 are in particular embodied as O-rings arranged between the hub body 3 and the rim 2.

[0072] Specifically, in the exemplary embodiment of the wheel unit 1 according to the invention shown in the drawings, the hub body 3 comprises a sealing seat 10 against which a closure part 11 of the control element 4 is pressed in the first position of the control element 4. By contrast, in the second position of the control element 4, a fluidic connection between the first space 6 and the second space 7 is formed via an intermediate space between the sealing seat 10 and the closure part 11.

[0073] The control element 4 is further associated with sealing means 12 which are configured in order to seal the second space 7 from the outside atmosphere in the second position of the control element 4.

[0074] In particular, the illustrations in FIG. 3, FIG. 4, FIG. 7, and FIG. 8 show that a biasing element 13 in the form of a spring element is associated with the control element 4 in order to bias the control element 4 in its first position.

[0075] Here, it is provided that the control element 4 is configured in order to be transferred from the first position to the second position with the aid of a control pressure acting on the control element 4 or with the aid of an actuator, in particular an electric or electromagnetic actuator, while overcoming the biasing force of the biasing element 13.

[0076] Referring to the illustrations in FIG. 9 to FIG. 13, an embodiment of the valve assembly 20 according to the invention is described in further detail below.

[0077] The valve assembly 20 is embodied as a bi-directionally operating valve assembly and serves to inflate or at least partially deflate a tire of a wheel unit 1 of a vehicle, in particular a wheel unit 1 as described previously with reference to the illustrations in FIG. 1 to FIG. 8, selectively or as needed.

[0078] As can be seen in particular from the isometric views according to FIG. 9 and FIG. 10, the exemplary embodiment of the valve assembly 20 according to the invention comprises an in particular canister- or cartridge-shaped valve body 21. The valve assembly 20 is suitable, at least partially or regionally, to be accommodated in the sleeve-like control element 4 of the wheel unit 1.

[0079] In particular, the canister- or cartridge-shaped valve body 21 comprises a first port 22 configured at a first end region of the valve body 21 for control and/or working pressure, as well as a second port 23 configured at a second end region of the valve body 21 opposite the first end region.

[0080] Furthermore, outlets 24 are formed in the valve body 21 in order to release air when at least partially deflating the tire, selectively or as needed. By way of the second port 23, working pressure can be supplied to the tire (not shown in the drawings) as needed, or air can be supplied to the outlet 24 of the valve assembly 20 when deflating the tire.

[0081] From the sectional views in FIG. 11 to FIG. 13, it can be seen that the valve assembly 20 comprises a first control element 25 in the form of a control piston, which is displaceably mounted in the valve body 21 relative to the valve body 21 between a first position (cf. FIG. 11 and FIG. 13) and a second position (cf. FIG. 12). In the first position of the first control element 25 (cf. FIG. 11 and FIG. 13), a fluidic connection between the outlet 24 and the second port 23 is interrupted. By contrast, in the second position of the first control element 25 (cf. FIG. 12), a fluidic connection is established between the outlet 24 and the second port 23.

[0082] From the sectional views according to FIG. 11 to FIG. 13, it can be seen that the valve assembly 20 further comprises a second control element 26. Here, the first and second control elements 25, 26 are arranged axially relative to the valve body 21.

[0083] The second control element 26 is displaceably mounted in the valve body 21 relative to the valve body 21 (and relative to the first control element 25) between a first position and a second position.

[0084] In the first position of the second control element 26 (cf. FIG. 11 and FIG. 13), a fluidic connection between the first port 22 and the second port 23 of the valve assembly 20 is interrupted. By contrast, in the second position of the second control element 26 (cf. FIG. 12), a fluidic connection is established between the first port 22 and the second port 23. Thus, in the second position of the second control element 26, the tire can be inflated.

[0085] The first and second control elements 25, 26 are each associated with a biasing element 30, 31 in the form of a spring element in order to bias the respective control elements 25, 26 to their first position.

[0086] The first control element 4 has a fluid chamber 27 inside of it, which is fluidically connected or connectable to the first port 22 via a first fluid channel 28 and to the second port 23 via a second fluid channel 29. The second control element 26 is accommodated in the fluid chamber 27 and is displaceable relative to the first control element 25 between its first position and its second position.

[0087] In the first position of the second control element 26 (cf. FIG. 11 or FIG. 13), a fluidic connection between the fluid chamber 27 and the first fluid channel 28 is interrupted. By contrast, in the second position of the second control element 26 (cf. FIG. 12), a fluidic connection is established between the first port 22 and the second port 23 of the valve assembly 20 via the first fluid channel 28 of the fluid chamber 27 and the second fluid channel 29.

[0088] A first, in particular annular fluid space 33 is configured between the first control element 4 and the valve body 21, which is fluidically connected to the second port 23, and which is fluidically connected to the outlet 24 of the valve assembly 20 when the first control element 25 is in its second position.

[0089] Specifically, in the exemplary embodiment of the valve assembly 20 according to the invention, it is provided that the valve body 21 has a sealing seat 34 against which a closure part 35 of the first control element 25 is pressed in the first position of the first control element 25. By contrast, in the second position of the first control element 25, a fluidic connection is established via an intermediate space between the sealing seat 34 and the closure part 35, which connects the fluid space 33 to the outlet 24 of the valve assembly 20.

[0090] As indicated in FIG. 13, the first control element 25 comprises a control surface which is configured in order to transfer the first control element 25 from its first position to its second position upon application of a biasing force of the biasing element 30 associated with the first control element 25.

[0091] The invention is not limited to the embodiments shown in the drawings, but rather results when all of the features disclosed herein are considered together.