Brake Disc Mounting Arrangement
20200025267 ยท 2020-01-23
Inventors
Cpc classification
F16D2065/1384
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2065/788
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2065/1392
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2065/1328
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An arrangement and method for mounting a brake disc to an axle hub of a vehicle is provided. The arrangement includes wedge-shaped holes at an radially inner region of the brake disc, corresponding wedge-shaped key inserts, a retaining device such as a retaining ring, and mounting devices such as bolts or studs and nuts that pass through the retaining ring and keys to bias the keys against the axle hub. The circumferential sides of the wedge shapes are aligned with radial lines extending from the rotation axis of the axle hub. This arrangement and method provides a simple, robust and easily installed brake disc mounting that minimizes heat transfer between the brake disc and the axle hub and accommodates thermal expansion of the brake disc and the axle hub to minimize thermal expansion-induced stresses to the brake disc.
Claims
1. A brake disc mounting arrangement, comprising: an axle hub having a rotation axis and at least one of hub-mounted fasteners and fastener-receiving apertures; a brake disc mounting adapter configured to cooperate with the at least one of hub-mounted fasteners and fastener-receiving apertures to locate the brake disc mounting adapter on the axle hub, the brake disc mounting adapter including a plurality of wedge-shaped brake disc mounting keys; a brake disc having a plurality of wedge-shaped slots circumferentially around a radially inner region of the brake disc, the wedge-shaped slots being configured to be received on corresponding ones of the brake disc mounting adapter keys when the brake disc is in an installed position on the axle hub; a brake disc retainer; and retaining fasteners configured to cooperate with the brake disc retainer and at least one of the brake disc mounting adapter and the at least one of hub-mounted fasteners and fastener-receiving apertures to axially retain the brake disc on the brake disc mounting adapter.
2. The brake disc mounting arrangement of claim 1, wherein the brake disc mounting adapter is a key ring with the plurality of wedge-shaped brake disc mounting keys connected by inter-key webs between adjacent ones of the plurality of keys.
3. The brake disc mounting arrangement of claim 2, wherein the at least one of hub-mounted fasteners and fastener-receiving apertures are studs, and each of the plurality of keys includes an aperture configured to receive one of the studs when the key ring is in an installed position on the axle hub.
4. The brake disc mounting arrangement of claim 3, wherein the retaining fasteners are nuts configured to thread onto the studs, and when in an installed position on the studs, the nuts bias the brake disc mounting adapter against at least one brake disc mounting surface of the hub.
5. The brake disc mounting arrangement of claim 1, wherein the retaining fasteners are nuts with flanged sections configured to thread onto the studs, and when in an installed position on the studs, the nuts bias the brake disc mounting adapter against at least one brake disc mounting surface of the hub.
6. The brake disc mounting arrangement of claim 2, wherein the retaining fasteners are bolts configured to thread into apertures in the brake disc mounting adapter keys, the brake disc mounting adapter inner-key webs include apertures configured to receive the at least one of hub-mounted fasteners and fasteners configured to be received in the fastener-receiving apertures of the axle hub, and when in an installed position inter-key webs are biased against at least one brake disc mounting surface of the hub.
7. The brake disc mourning arrangement of claim 4, wherein an axial thickness of the plurality of keys is greater than an axial thickness of the brake disc between the plurality of slots, and the brake disc is axially displaceable between the brake disc retainer and the key ring inter-key webs.
8. The brake disc mounting arrangement of claim 6, wherein an axial thickness of the plurality of keys is greater than an axial thickness of the brake disc teeth, and the brake disc is axially displaceable between the brake disc retainer and the key ring inter-key webs.
9. The brake disc mounting arrangement of claim 7, wherein the plurality of keys and the plurality of wedge-shaped slots are configured to expand and contract in response to temperature changes in a manner such that the plurality of keys do not bind the brake disc against radial expansion and contraction.
10. The brake disc mounting arrangement of claim 9, wherein opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots are aligned substantially parallel to radii extending outward from a rotation axis of the brake disc.
11. The brake disc mounting arrangement of claim 8, wherein the opposing circumferentially lateral faces are arranged at an angle relative to the radii of 12 to 20.
12. The brake disc mourning arrangement of claim 11, wherein the angle is 16 to 18.
13. The brake disc mounting arrangement of claim 9, wherein opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots are aligned relative to radii extending outward from a rotation axis of the brake disc such that a ratio of a loading on one of the plurality of keys having a highest loading during a braking event compared to a loading on another one of the plurality of keys having a lowest loading during a braking event is less than 2:1.
14. The brake disc mounting arrangement of claim 1, wherein a ratio of a loading on one of the plurality of keys having a highest loading during a braking event compared to a loading on another one of the plurality of keys having a lowest loading during a braking event is less than 2:1.
15. The brake disc mounting arrangement of claim 1, wherein no shim or spring hardware is present between opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots.
16. The brake disc mounting arrangement of claim 8, wherein opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots are aligned relative to radii extending outward from a rotation axis of the brake disc such that a loading on each of the plurality of keys during a braking event is between 4% and 17% of the total load on all of the keys.
17. The brake disc mounting arrangement of claim 1, wherein a loading on each of the plurality of keys during a braking event is between 4% and 17% of the total load on all of the keys.
18. A brake disc mounting arrangement, comprising: a brake disc mounting adapter configured to be located on an axle hub and to cooperate with at least one of hub-mounted fasteners and fastener-receiving apertures to locate the brake disc mounting adapter on the axle hub, the brake disc mounting adapter including a plurality of wedge-shaped brake disc mounting keys; a brake disc having a plurality of wedge-shaped slots circumferentially around a radially inner region of the brake disc, the wedge-shaped slots being configured to be received on corresponding ones of the brake disc mounting adapter keys when the brake disc is in an installed position on the axle hub; a brake disc retainer; and retaining fasteners configured to cooperate with the brake disc retainer and at least one of the brake disc mounting adapter and the at least one of hub-mounted fasteners and fastener-receiving apertures to axially retain the brake disc on the brake disc mounting adapter.
19. The brake disc mounting arrangement of claim 18, wherein the brake disc mounting adapter is a key ring with the plurality of wedge-shaped brake disc mounting keys connected by inter-key webs between adjacent ones of the plurality of keys.
20. The brake disc mounting arrangement of claim 19, wherein the at least one of hub-mounted fasteners and fastener-receiving apertures are studs, and each of the plurality of keys includes an aperture configured to receive one of the studs when the key ring is in an installed position on the axle hub.
21. The brake disc mounting arrangement of claim 20, wherein the retaining fasteners are nuts configured to thread onto the studs, and when in an installed position on the studs, the nuts bias the brake disc mounting adapter against at least one brake disc mounting surface of the hub.
22. The brake disc mounting arrangement of claim 19, wherein the retaining fasteners are bolts configured to thread into apertures in the brake disc mounting adapter keys, the brake disc mounting adapter inter-key webs include apertures configured to receive the at least one of hub-mounted fasteners and fasteners configured to be received in the fastener-receiving apertures of the axle hub, and when in an installed position inter-key webs are biased against at least one brake disc mounting surface of the hub.
23. The brake disc mounting arrangement of claim 21, wherein an axial thickness of the plurality of keys is greater than an axial thickness of the brake disc between the plurality of slots, and the brake disc is axially displaceable between the brake disc retainer and the key ring inter-key webs.
24. The brake disc mounting arrangement of claim 22, wherein an axial thickness of the plurality of keys is greater than an axial thickness of the brake disc teeth, and the brake disc is axially displaceable between the brake disc retainer and the key ring inter-key webs.
25. The brake disc mounting arrangement of claim 23, wherein the plurality of keys and the plurality of wedge-shaped slots are configured to expand and contract in response to temperature changes in a manner such that the plurality of keys does not bind the brake disc against radial expansion and contraction.
26. The brake disc mounting arrangement of claim 25, wherein opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots are aligned substantially parallel to radii extending outward from a rotation axis of the brake disc.
27. The brake disc mounting arrangement of claim 24, wherein the opposing circumferentially lateral faces are arranged at an angle relative to the radii of 12 to 20.
28. The brake disc mounting arrangement of claim 27, wherein the angle is 16 to 18.
29. The brake disc mounting arrangement of claim 18, wherein a ratio of a loading on one of the plurality of keys having a highest loading during a braking event compared to a loading on another one of the plurality of keys having a lowest loading during a braking event is less than 2:1.
30. The brake disc mounting arrangement of claim 18, wherein no shim or spring hardware is present between opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots.
31. The brake disc mounting arrangement of claim 25, wherein opposing circumferentially lateral faces of the plurality of keys and the plurality of wedge-shaped slots are aligned relative to radii extending outward from a rotation axis of the brake disc such that a loading on each of the plurality of keys during a braking event is between 4% and 17% of the total load on all of the keys.
32. The brake disc mounting arrangement of claim 18, wherein a loading on each of the plurality of keys during a braking event is between 4% and 17% of the total load on all of the keys.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0060] Common reference label numbers are used with common features in the figures.
DETAILED DESCRIPTION OF THE DRAWINGS
[0061]
[0062] The brake disc 3 at its radially inner circumference has a circumferential array of wedge-shaped slots 3A spaced and shaped to cooperate with corresponding ones of the keys 4A to fix the brake disc 3 relative to the keys 4A in the circumferential direction. The keys 4A in
[0063] In one example of a commercial vehicle wheel end arrangement, 10 studs 6A may be arranged circumferentially about a circle with a radius of 99.82 mm, with the key ring 4's through-holes 4C being laid out on a corresponding radius. The keys 4A may have a width in the circumferential direction of approximately 28 mm and a radial height of approximately 18 mm. In
[0064]
[0065] The geometry of an individual key and wedge-shaped slot pair is shown in greater detail in
[0066] Analysis of computer models of example embodiments over a range of temperature and stress loadings expected during operation of commercial vehicle disc brakes has shown that the lateral side clearance may be reduced to 0.15 mm without encountering a temperature and stress loading that results in the brake disc slots being bound up on the keys. Computer modelling has also confirmed the surprising result that there is a narrow range of key and slot side angles, relative to radial lines from the rotation axis, which provide significantly more even distributions of stresses around the circumference of the brake disk during a braking event than shallower or steeper angles. These improved stress distributions were noted in the range of 12-20, and more preferably in the range of 16-18. This feature of the present invention is discussed further in the context of
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[0068] The geometry of the corner radii and the width of the gaps are arranged such that, across the range of thermal and stress loads expected to be encountered during the service life of the brake, the key's radially outer surface 4F does not contact the slot's radially inner surface 3C, or only lightly comes into contact with the surface in a manner that does not apply significant loads to the inner surface 3C.
[0069] One of the features of the present invention is the design of the contact surfaces between the keys and the wedge-shaped slots to avoid both stress concentration regions and surface contact stresses high enough to deform the surfaces. Thus, the contact surfaces (whether planar or curved) are designed to provide sufficient contact surface area to maintain local stress levels below at least the plastic deformation range during the life of the brake disc and the keys. Further, the use of relatively broad-radius corner curves substantially reduces stress concentration in both the keys' radially outer comers 4F and the brake disc slots' corners 3D. In the example commercial vehicle wheel end arrangement, the keys' corners 4F may have a radius of 6.5 mm, and the slots' corners may have a radius of 8 mm.
[0070] The geometry of the inter-key webs 4B may also be optimized for a given application. For example, where the inter-key webs 4B do not need to be full width in the radial direction in order to withstand the anticipated stresses, portions of the webs may be omitted, such as scalloped regions 4H, to both minimize weight and minimize ring-to-hub contact surface area and thereby decrease conductive heat transfer through the inter-key webs to the hub. This arrangement may also reduce press requirements for manufacturing.
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[0072] Preferably, the keys 4A have an axial height that results in an outer end 4G of the keys protruding slightly beyond the face of the brake disc adjacent to the slots 3A. The protruding ends 4G are designed to receive the retaining ring 5 in a manner that axially captures the brake disc 3 between the inter-key webs 4B and the retaining ring 5 in a manner that leaves the brake disc free to move axially over small distances to accommodate axial forces during brake operation (for example, to be able to move to center itself between opposing brake pads without inducing bending stresses in the brake disc that would otherwise be present if the brake disc was immovably mounted), as well as to allow for axial expansion of the brake disc without the disc becoming fixed to the hub. In the example commercial vehicle wheel end arrangement, the axial thickness of the brake disc 3 in the regions adjacent to the slots 3A may be 17.5 mm, with the keys 4A having an axial thickness of 18 mm, thereby providing a 0.5 mm range of axial motion for the floating brake disc. In this example, the overall axial height of the key ring 4 is approximately 29 mm, with the inter-key webs 4B being approximately 11 mm thick. This inter-key web thickness provides enough material to give sufficient key ring stiffness and resistance to deformation when the retaining members 6B are torqued down, while avoiding excess thickness that unnecessarily increases the axial height of the vehicle wheel end.
[0073] The present invention is not limited to an arrangement in which the retaining fasteners cooperate with the axle hub (via the hub-mounted studs of apertures in the hub) to capture the retaining ring and the mounting adapter. For example, the retaining fasteners may be bolts that thread into the holes in the mounting adapter keys, while the mounting adapter is separately retained on the axle hub via apertures in the inter-key webs through which pass the hub-mounted studs or fasteners that engage the hub apertures.
[0074] Because the greatest physical and thermal stresses may be expected at the keys (which must transfer braking forces from the brake disc to the hub via the retaining studs, and are the primary conductive heat transfer conduits between the brake disc and the hub), the material of the key ring 4 is preferably a high strength, high temperature tolerance material. More preferably, the material of the keys has a thermal expansion coefficient similar to that of the brake disc material to minimize relative movement between the keys and the brake disc slots during braking events.
[0075] Preferably the keys are formed from a powdered metal material, especially preferably a powdered metal alloy having a composition of FLC-4805-100HT per MPIF Standard 35 (0.5-0.7% C, 1.2-1.6% Ni, 1.1-1.4% Mo, 0.7-1.4% Cu, 0.3-0.5% Mn, balance Fe). The keys may be formed by compression in a high pressure press in the conventional manner. For the brake discs of a typical commercial vehicle, a 750 Ton press has proven sufficient to produce key rings with the desired targeted material densities in the vicinity of 7 grams/cm.sup.3 in the preferred powdered metal alloy materials. As well known in the art, the operating parameters of the press and sintering operations will vary greatly depending on the specific size, shape and desired material properties of the sintered powdered metal component (e.g., the targeted material densities of a specific component). The key ring in the
[0076] The key ring 4 is not limited to being a one-piece, integrally-formed component. Alternatively, the key ring may be formed with inter-key webs 4B or a complete base ring to which individual keys 4A are fixed. This latter arrangement permits targeted optimization of material costs and strength, such as the potential use of keys 4A formed from a high-strength material while the remaining portions of the ring are formed from lower-strength, lower-cost material.
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[0080] In a further embodiment, the brake disc 3 and key ring 4 may be designed as parts of a generic brake disc system in which a single brake disc, or one of only a few such brake discs, having the present invention's gap-driven key mounting arrangement is configured to cooperate with a suitable key ring adapter to replace application-specific brake discs.
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[0082] Important dimensions in any combination of these wheel end components include: the torque plate offset distance 17, i.e., the distance by which the torque plate 15 holding the brake carrier is axially offset from the axle's brake flange 16; the flange offset distance 18, i.e., the distance the axle's hub-locating surface (here, the axle bearing seat for the inner one of the hub bearings 12) to the axle's brake flange 16; the hub offset 19, i.e., the distance from the hub's axial locating surface (here, the opposite side of the inner hub bearing 12) to the face of the hub flange that receives a wheel; and the brake disc offset 20, i.e., the distance between the hub's wheel flange and the friction surface of the brake disc rotor portion 14A. Regardless of the manufacturer(s) of these components, and specific combinations of components dictate where the brake disc 14 is located axially along the axle.
[0083] The wheel end arrangement shown in
[0084] In the
[0085] The universality of the present invention's approach may be further extended, and the number of brake disc and key ring parts needed to be maintained in inventory may be further reduced, by using brake discs with multiple key-to-brake disc contact surface heights, as shown in
[0086] While in the industry there are numerous possible combinations of wheel end components, as a practical matter the constraints on the available space for mounting components at a wheel end (e.g., limited space inside a wheel rim envelope, limitations from nearby adjacent components such as knuckles and steering components) results in the range of brake disc axial locations being relatively limited, on the order of millimeters. In such applications, the present invention can provide a flexible brake disc mounting solution that can accommodate several wheel end component combinations with only minimal number of universal brake discs and key ring adapters.
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[0088] Similarly, a universal brake disc may be provided with slot shelves all having the same thickness, to be used with one of a plurality of key rings having different key heights, as shown in
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[0090] An example of the extent of improvement in the brake disc stress levels possible in the mounting arrangements of the present invention in provided with the assistance of
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[0092] The
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[0094] Additional embodiments of a universal brake disc mounting arrangement in accordance with the present invention are shown in
[0095] The first of the additional embodiments is shown in
[0096] A cross-section-view of the
[0097] Another embodiment of the present invention is illustrated in
[0098] A cross-section-view of the
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[0101] In the
[0102] The intermediate ring in this embodiment is guided in the circumferential direction by pins 58 installed on the adapter base 56 in
[0103] Following the tightening of the jam nuts 106B, the brake rotor 3, such as the envisioned universal or common brake rotor shown in
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[0105] A method of assembly of the brake disc arrangement of
[0106] The foregoing embodiment of the present invention is not limited to arrangements in which the brake disc mounting adapter is retained on the threaded collars separate from the retention of the retaining ring on the brake disc mounting adapter. For example, the retaining fasteners may be configured to both retain the retaining ring and serve the function of the jam nuts to axially fix the position of the threaded collars on the leadscrews.
[0107] The foregoing disclosure has been set forth merely to illustrate the invention and is not intended to be limiting. For example, an axle hub may be provided with key ring adapter-receiving surfaces that are axially inboard of the outboard-most face of the hub (i.e., some portion of the hub may protrude through the center of the key ring), as long as the key ring and brake disc are mountable on the hub. Since modifications of the disclosed embodiments incorporating the spirit and substance of the invention may occur to persons skilled in the art, the invention should be construed to include everything within the scope of the appended claims and equivalents thereof.
LISTING OF REFERENCE LABELS
[0108] 1 brake disc mounting arrangement [0109] 2 axle hub [0110] 3 brake disc [0111] 3A wedge-shaped slot [0112] 3B lateral side [0113] 3C radially inner surface [0114] 3D radiused region [0115] 3E brake disc teeth [0116] 4 key ring [0117] 4A key [0118] 4B inter-key web [0119] 4C hole [0120] 4D lateral side [0121] 4E radially outer surface [0122] 4F radiused region [0123] 4G protruding end [0124] 4H scalloped region [0125] 5 retaining ring [0126] 6A retaining stud [0127] 6B retaining member [0128] 7A spring element [0129] 7B fastener [0130] 8 brake disc [0131] 10 wheel end arrangement [0132] 11 axle [0133] 12 bearing [0134] 13 wheel mounting stud [0135] 14 brake disc [0136] 14A rotor portion [0137] 14B rotor hat [0138] 15 torque plate [0139] 16 brake flange [0140] 17 torque plate offset [0141] 18 flange offset [0142] 19 hub offset [0143] 20 brake disc offset [0144] 21 hub drum-shaped portion [0145] 33 brake disc [0146] 33A,33B,33C wedge-shaped slot [0147] 33D,33E,33F shell [0148] 34 key ring [0149] 34A key [0150] 34C hole [0151] 35 fastener [0152] 43 brake disc [0153] 43A wedge-shaped slot [0154] 44 key ring [0155] 44A key [0156] 44B alignment rib [0157] 45 hub adapter [0158] 45A end face [0159] 45B alignment slot [0160] 46 brake pad [0161] 52 external threads [0162] 53 internal threads [0163] 54 locknut [0164] 55 collar [0165] 56 adapter base [0166] 58 pin [0167] 104 adjustable intermediate ring [0168] 106A leadscrew [0169] 106B jam nut [0170] 106C threaded collar