HUB LOCK NUT ASSEMBLY
20220203762 · 2022-06-30
Inventors
- Ramachandran SANDRASEKARAN (Bangalore, Karnataka, IN)
- Kent AUGUSTSSON (Bollebygd, SE)
- Tobias Andersson (Torslanda, SE)
Cpc classification
F16B39/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B27/065
PERFORMING OPERATIONS; TRANSPORTING
B60B35/02
PERFORMING OPERATIONS; TRANSPORTING
B60Y2200/14
PERFORMING OPERATIONS; TRANSPORTING
F16B39/284
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60B27/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A hub lock nut assembly for retaining a vehicle wheel hub in position. The hub lock nut assembly comprising a hub lock nut and a mating component with which the hub lock nut is arranged to be mated in a mated position. The hub lock nut comprises a circumferential inner wall defining a central hole, the inner wall having a threaded portion. One of the hub lock nut or the mating component comprises at least one resilient portion adapted to be movable in a radial direction outwardly of the central hole when subjected to an external force provided by the other of the mating component or the hub lock nut. The at least one resilient portion having an engagement area for receiving said external force, wherein the engagement area is located radially outwardly of the threaded portion.
Claims
1. A hub lock assembly for retaining a vehicle wheel hub in position, the hub lock assembly comprising: a hub lock nut comprising a circumferential inner wall defining a central hole, the inner wall having a threaded portion, at least one resilient portion, a mating component with which the hub lock nut is arranged to be mated in a mated position; wherein the at least one resilient portion is adapted to be movable in a radial direction outwardly from the central hole when subjected to an external force provided by the mating component, the at least one resilient portion arranged to provide prevailing torque to the hub lock nut when subjected to the external force, the at least one resilient portion having an engagement area for receiving the external force, wherein the engagement area is located radially outwardly of the threaded portion in the mated position, wherein the mating component comprises a protrusion extending radially outwards from the mating component and configured to subject the resilient portion to the external force in the mated position.
2. (canceled)
3. The hub lock assembly of claim 1, wherein the at least one resilient portion is in the form of a snap collar portion located radially of the threaded portion and projecting axially away from the threaded portion, the at least one resilient portion being adapted to flex in the radial direction outwardly from the central hole when subjected to the force.
4. (canceled)
5. The hub lock assembly of claim 1, wherein the central hole is further defined by a circumferential non-threaded portion, wherein a ledge extends radially outwardly from the threaded portion to the non-threaded portion, wherein the resilient portion is connected to the ledge and projects axially away from the ledge.
6. The hub lock assembly of claim 1, wherein a spindle, a knuckle, or a wheel axle portion comprises the mating component.
7. The hub lock assembly of claim 1, wherein the hub lock nut comprises a flat annular end surface facing in the axial direction, wherein the resilient portion is located at the radial outer periphery of the annular end surface and wherein the resilient portion projects in the axial direction away from the annular end surface.
8. The hub lock assembly of claim 1, wherein a safety washer constitutes the mating component.
9. The hub lock assembly of claim 8, wherein the safety washer comprises an annular protrusion extending radially outwards from the safety washer, wherein the protrusion is configured to subject the resilient portion of the hub lock nut to the external force when in the mated position.
10. (canceled)
11. The hub lock assembly of claim 1, wherein at least a portion of the hub lock nut and/or the safety washer is integrally formed by hot-formed steel.
12. The hub lock assembly of claim 1, wherein the external force is configured to provide a prevailing torque of the hub lock assembly in dependence of the hub lock nut dimension, wherein the prevailing torque varies between 50 Nm and 230 Nm.
13. The hub lock assembly of claim 1, wherein the resilient portion comprises a distal protrusion extending radially inwards towards the center of the central hole and configured to releasably hold the mating component when in the mated position.
14. A vehicle comprising a hub lock assembly comprising: a hub lock nut comprising a circumferential inner wall defining a central hole, the inner wall having a threaded portion at least one resilient portion, a mating component with which the hub lock nut is arranged to be mated in a mated position; wherein the at least one resilient portion is adapted to be movable in a radial direction outwardly from the central hole when subjected to an external force provided by the mating component, the at least one resilient portion arranged to provide prevailing torque to the hub lock nut when subjected to the external force, the at least one resilient portion having an engagement area for receiving the external force, wherein the engagement area is located radially outwardly of the threaded portion in the mated position, wherein the mating component comprises a protrusion extending radially outwards from the mating component and configured to subject the resilient portion to the external force in the mated position.
15-21. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] With reference to the appended drawings, below follows a more detailed description of embodiments of the invention cited as examples. In the drawings:
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION OF EXAMPLE EMBODIMENTS OF THE INVENTION
[0034] The invention will now be described more fully hereinafter with reference to the accompanying drawings, in which certain aspects of the invention are shown. This invention may, however, be embodied in many different forms and should not be construed as limited to the embodiments and aspects set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the invention to those skilled in the art. Like numbers refer to like elements throughout the description.
[0035] It is to be understood that the present invention is not limited to the embodiments described herein and illustrated in the drawings; rather, the skilled person will recognize that many changes and modifications may be made within the scope of the appended claims.
[0036]
[0037] A hub lock nut 120 is used to secure the vehicle wheel hub 110 to the spindle 140. Often, a safety washer 130 is arranged between the hub lock nut 120 and the wheel hub 110. It is desired to lock the wheel hub in position by using a hub lock nut assembly configured to provide a prevailing torque according to some given specification. Wheel hubs such as the wheel hub 110 schematically illustrated in
[0038]
[0039] The present disclosure relates to a hub lock assembly adapted to provide a required prevailing torque. Prevailing torque differentiates a locknut from a free spinning nut based on a value of how much torque is required during installation before clamp loading. For example, on a nylon-insert nut, it is the torque needed to overcome the resistance of the nylon dragging across the mating thread. This torque value is usually not very high relative to final installation torque. Tolerance ranges for torque are specified in some standards such as ISO, DIN, IFI, ASME, SAE, AN-, MS-, NAS- NASM-.
[0040] Instead of using the thread on the hub lock nut 120 to provide prevailing torque, the present technique comprises using a hub lock nut with inbuilt resilient portions, such as one or more elastic collars or snap lock portions, which at an angle are arranged to climb against a bump feature on a mating component such as a safety washer or spindle, so the resilient portion can deflect/snap in & create prevailing torque.
[0041]
[0042]
[0043] The resilient portions may be arranged either on the hub lock nut 120 or on the mating component 130, 140. For example, a safety washer may be adapted for mating with a hub lock nut 120 in a mated position to retain a vehicle wheel hub 110 in position This safety washer may comprise at least one resilient portion adapted to be movable when subjected to an external force F provided by a hub lock nut 120 with which the safety washer is arranged to be mated in a mated position. The at least one resilient portion has an engagement area 210, 310 for receiving said external force F, wherein the engagement area 210, 310 is located radially outwardly R of the safety washer. However, it is preferred to arrange the resilient portions on the hub lock nut 120.
[0044]
[0045]
[0046] Generally, there are disclosed herein hub lock nut assemblies 400, 500, 600, 700, 800, 900 for retaining a vehicle wheel hub 110 in position. The hub lock nut assemblies comprise a hub lock nut 120, 120′, 120″ and a mating component 130, 130′, 140, 140′ with which the hub lock nut is arranged to be mated in a mated position. The hub lock nut 120, 120′, 120″ comprises a circumferential inner wall 121 defining a central hole 124. The inner wall 121 has a threaded portion 123. The threaded portion matches a threaded portion on the spindle 140, such that the hub lock nut may hold the wheel hub 110 in position, as illustrated in
[0047] At least one of the hub lock nut or the mating component comprises at least one resilient portion 122, 122′, 122″ adapted to be movable in a radial direction R outwardly from the central hole 124 when subjected to an external force F provided by the other of the mating component or the hub lock nut. This external force F was exemplified and discussed in connection to
[0048] The at least one resilient portion 122, 122′, 122″ has an engagement area 210, 310 for receiving said external force F. The engagement area 210, 310 is located radially outwardly of the threaded portion 123 in the mated position.
[0049] The at least one resilient portion 122, 122′, 122″ in both the first and the second example are in the form of a snap collar portion located radially of the threaded portion 123 and projecting axially A away from the threaded portion 123. The at least one resilient portion 122, 122′, 122″ is thus adapted to flex in the radial direction R outwardly from the central hole 124 when subjected to the force F. It is, however, appreciated that other types of resilient portions may be used in the same manner, i.e., the resilient portion need not necessarily be formed as a snap collar portion.
[0050] An example where the safety washer or the spindle instead comprises the resilient portions and where the hub lock nut comprises, e.g., a protrusion to engage the resilient portions is not shown in the drawings. However, this ‘reverse’ configuration follows from the provided examples in a straightforward manner.
[0051]
[0052] This particular example shows eight resilient portions 122′ arranged evenly around the ledge 420. It is preferred to use an even distribution of resilient portions, i.e., evenly distributed around the ledge 420. However, any number of resilient portions are possible.
[0053] It may be advantageous to use resilient portions 122′ having a height smaller than the height of the circumferential non-threaded portion 410. This way the resilient portions are somewhat protected by the circumferential non-threaded portion 410 from impact during, e.g., storage.
[0054]
[0055] It is noted that the protrusion 220′ extends around the whole perimeter of the spindle 510; small gaps could potentially be formed in the protrusion 220′, but then the resilient portions 122′ could snag onto the protrusion during assembly, which would be a drawback.
[0056]
[0057]
[0058]
[0059]
[0060]
[0061]
[0062] According to aspects, with reference to
[0063] According to aspects, any of the hub lock nut 120, 120′, 120″ and the safety washer 810 is integrally formed by hot-formed steel.
[0064] According to aspects, the external force F is configured to provide a prevailing torque of the hub lock nut assembly in dependence of the hub lock nut dimension, wherein the prevailing torque varies between 50 Nm and 230 Nm.
[0065] Some example hub lock nut dimensions comprise M42 sized nuts up to M74 sized nuts.
[0066] It is appreciated that the different parts of the hub lock nut assemblies are also disclosed herein separately. Thus, there are disclosed herein;
[0067] A hub lock nut 120, 120′, 120″ for retaining a vehicle wheel hub 110 in position;
[0068] the hub lock nut comprising a circumferential inner wall 121 defining a central hole 124, the inner wall 121 having a threaded portion 123,
[0069] the hub lock nut comprises at least one resilient portion 122, 122′, 122″ adapted to be movable when subjected to an external force F provided by a mating component with which the hub lock nut is arranged to be mated in a mated position,
[0070] the at least one resilient portion has an engagement area 210, 310 for receiving said external force F, wherein the engagement area 210, 310 is located radially outwardly R of the threaded portion when the hub lock nut and the mating component is in the mated position.
[0071] According to aspects, the at least one resilient portion is in the form of a snap collar portion located radially R of the threaded portion 123 and projecting axially A away from the threaded portion 123, the resilient portion being adapted to flex in the radial direction R when subjected to the force F.
[0072] According to aspects, the central hole 124 is further defined by a circumferential non-threaded portion 410, wherein a ledge 420 extends radially outwardly from the threaded portion 123 to the non-threaded portion 410, wherein the resilient portion 122, 122′, 122″ is connected to said ledge 420 and projects from the ledge axially A.
[0073] According to aspects, the hub lock nut comprises a flat annular end surface 710 facing in the axial direction A, wherein the resilient portion 122″ is located at the radial outer periphery of the annular end surface 710 and wherein the resilient portion 122″ projects in the axial direction A from the annular end surface 710.
[0074] This hub lock nut was exemplified and discussed above in connection to
[0075] A spindle 510 for mating with a hub lock nut 120′ in a mated position to retain a vehicle wheel hub 110 in position was discussed above in connection to
[0076] A safety washer 810 for mating with a hub lock nut 120″ in a mated position to retain a vehicle wheel hub 110 in position was discussed above in connection to
[0077] There was also disclosed herein a safety washer for mating with a hub lock nut 120 in a mated position to retain a vehicle wheel hub 110 in position. The safety washer comprises at least one resilient portion adapted to be movable when subjected to an external force F provided by a hub lock nut 120 with which the safety washer is arranged to be mated in a mated position, the at least one resilient portion having an engagement area 210, 310 for receiving said external force F, wherein the engagement area 210, 310 is located radially outwardly R of the safety washer. This particular embodiment of a safety washer was not shown in the drawings but can be realized in a straightforward manner based on the teachings herein.