DOUBLE CARDAN ANGLES CONTROLLED BY MOUNTING FRAME
20200256397 ยท 2020-08-13
Inventors
Cpc classification
F16D3/845
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2003/22326
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10S464/905
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16D3/841
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/223
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
In one embodiment, a drive axle, comprising: a first axle frame comprising a first pair of gears at opposing sides of one end of the first axle frame, each of the gears comprising a hole; a second axle frame comprising a second pair of gears at opposing sides of one end of the second axle frame adjacent the one end of the first axle frame, each of the gears comprising a hole, the first pair of gears intermeshing with the second pair of gears throughout an articulation range; a center frame disposed between the first and second axle frames, the first and second axle frames coupled to the center frame by plural pins disposed in the holes of the first and second pairs of gears; a driving shaft surrounded at least in part by the first axle frame and comprising a first yoke; a driven shaft surrounded at least in part by the second axle frame and comprising a second yoke; and a double cardan joint, the double cardan joint coupled to the first and second yokes, wherein the center frame surrounds at least a portion of the double cardan joint.
Claims
1. A drive axle, comprising: a first axle frame comprising a first pair of gears at opposing sides of one end of the first axle frame, each of the gears comprising a hole; a second axle frame comprising a second pair of gears at opposing sides of one end of the second axle frame adjacent the one end of the first axle frame, each of the gears comprising a hole, the first pair of gears intermeshing with the second pair of gears throughout an articulation range; a center frame disposed between the first and second axle frames, the first and second axle frames coupled to the center frame by plural pins disposed in the holes of the first and second pairs of gears; a driving shaft surrounded at least in part by the first axle frame and comprising a first yoke; a driven shaft surrounded at least in part by the second axle frame and comprising a second yoke; and a double cardan joint, the double cardan joint coupled to the first and second yokes, wherein the center frame surrounds at least a portion of the double cardan joint.
2. The drive axle of claim 1, wherein plural pins comprises four pins.
3. The drive axle of claim 1, wherein the double cardan joint comprises a center yoke comprising back-to-back yokes, the back-to-back yokes comprising a third yoke and a fourth yoke.
4. The drive axle of claim 3, wherein the double cardan joint comprises first and second universal joints, wherein the third yoke is coupled to the first yoke via the first universal joint, wherein the fourth yoke is coupled to the second yoke via the second universal joint.
5. The drive axle of claim 4, wherein a distance between the holes of the first pair of gears and the holes of the second pair of gears is the same as a distance between the first and second universal joints.
6. The drive axle of claim 1, wherein the driving shaft and driven shaft are rotatable within the first and second axle frames, respectively.
7. The drive axle of claim 6, wherein a rotational speed of the driven shaft equals a rotational speed of the driving shaft throughout the articulation range.
8. The drive axle of claim 1, wherein throughout the articulation range, an outer angle between the first and second axle frames changes at twice a rate as an angle of the center frame changes.
9. The drive axle of claim 1, wherein the center frame comprises a ring-like structure having a pair of holes on opposing ends of the ring-like structure with each hole of the pair on each side of the ring-like structure, the holes for receiving the plural pins.
10. A method, comprising: rotating a driving shaft coupled to a driven shaft by a double cardan joint, the double cardan joint surrounded at least in part by a center frame; and changing an outer frame angle between axle frames that surround at least in part the driving and driven shafts at twice a rate as an angle of the center frame changes, the center frame disposed between the axle frames, the center frame coupling ends of the axle frames using plural pins.
11. The method of claim 10, wherein the axle frames comprise a first axle frame and a second axle frame, the first axle frame comprising a first pair of gears at opposing sides of one end of the first axle frame, each of the gears comprising a hole, the second axle frame comprising a second pair of gears at opposing sides of one end of the second axle frame adjacent the one end of the first axle frame, each of the gears of the second pair comprising a hole, wherein changing the outer frame angle comprises the intermeshing the first pair of gears with the second pair of gears throughout an articulation range.
12. The method of claim 10, wherein a rotational speed of the driven shaft equals a rotational speed of the driving shaft throughout an articulation range.
13. The method of claim 10, wherein the center frame comprises a ring-like structure having a pair of holes on opposing ends of the ring-like structure with each hole of the pair on each side of the ring-like structure, the holes for receiving the plural pins.
14. A system, comprising: a first axle frame comprising a first pair of gears at opposing sides of one end of the first axle frame, each of the gears comprising a hole; a second axle frame comprising a second pair of gears at opposing sides of one end of the second axle frame adjacent the one end of the first axle frame, each of the gears comprising a hole, the first pair of gears intermeshing with the second pair of gears throughout an articulation range; a center frame disposed between the first and second axle frames, the first and second axle frames coupled to the center frame by plural pins disposed in the holes of the first and second pairs of gears; a driving shaft surrounded at least in part by the first axle frame and comprising a first yoke; a driven shaft surrounded at least in part by the second axle frame and comprising a second yoke; a center yoke comprising back-to-back yokes, the back-to-back yokes comprising a third yoke and a fourth yoke; and first and second universal joints, wherein the third yoke is coupled to the first yoke via the first universal joint, wherein the fourth yoke is coupled to the second yoke via the second universal joint.
15. The system of claim 14, wherein plural pins comprises four pins.
16. The system of claim 14, wherein a distance between the holes of the first pair of gears and the holes of the second pair of gears is the same as a distance between the first and second universal joints.
17. The system of claim 14, wherein the driving shaft and driven shaft are rotatable within the first and second axle frames, respectively.
18. The system of claim 17, wherein a rotational speed of the driven shaft equals a rotational speed of the driving shaft throughout the articulation range.
19. The system of claim 14, wherein throughout the articulation range, an outer angle between the first and second axle frames changes at twice a rate as an angle of the center frame changes.
20. The system of claim 14, wherein the center frame comprises a ring-like structure having a pair of holes on opposing ends of the ring-like structure with each hole of the pair on each side of the ring-like structure, the holes for receiving the plural pins.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005] Many aspects of certain embodiments of the disclosure can be better understood with reference to the following drawings. The components in the drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the present disclosed double cardan joint assembly and method. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
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DESCRIPTION OF EXAMPLE EMBODIMENTS
Overview
[0022] In one embodiment, a drive axle, comprising: a first axle frame comprising a first pair of gears at opposing sides of one end of the first axle frame, each of the gears comprising a hole; a second axle frame comprising a second pair of gears at opposing sides of one end of the second axle frame adjacent the one end of the first axle frame, each of the gears comprising a hole, the first pair of gears intermeshing with the second pair of gears throughout an articulation range; a center frame disposed between the first and second axle frames, the first and second axle frames coupled to the center frame by plural pins disposed in the holes of the first and second pairs of gears; a driving shaft surrounded at least in part by the first axle frame and comprising a first yoke; a driven shaft surrounded at least in part by the second axle frame and comprising a second yoke; a double cardan joint, the double cardan joint coupled to the first and second yokes, wherein the center frame surrounds at least a portion of the double cardan joint.
DETAILED DESCRIPTION
[0023] Certain embodiments of a double cardan joint assembly are disclosed that use axle frames to control universal joint angles of the assembly. In one embodiment, the double cardan joint assembly comprises two sets of vertical pins (e.g., four pins total) that are arranged the same distance apart as the universal joints (also, referred to as crosses) in the final assembly. The pins are located on the same vertical plane as the universal joints. The end mounting frames are connected by a center frame, wherein each of the end mounting frames comprises a pair of gears (respective gear sets) that control a relationship between each other and the center frame. In one embodiment, the outer frame angle changes at twice the rate as the center frame angle through a range of articulation angles. One benefit of certain embodiments of a double cardan joint assembly is the ability to maintain equal velocities between the driving and driven shaft, which in turn, reduces the vibration and/or hopping effects experienced with single king pin type joint assemblies, such as for various turning radiuses.
[0024] Digressing briefly, conventional double cardan joints comprise a single set of king pins that are disposed between respective end frame holes that overlap, with back-to-back yokes of the double cardan joint disposed between coupled axle frames joined at a single hinge location made possible by the single set of king pins. However, one shortcoming to this arrangement is the inequality of the U-joint angles that couple the back-to-back yokes with yokes of the driving and driven shafts encased by the respective axle frames, which leads to large, sinusoidal speed changes at the driven side (e.g., speeds of the driving and driven side are unequal except at zero degrees). In certain embodiments of a double cardan joint assembly, the control of the outer frame angle relative to the center frame angle enables, for instance, a powered wheel steering system that can mechanically bend at twice the allowable bend of a conventional universal joint. One benefit to certain embodiments of a double cardan joint assembly is in the automobile industry, where all four wheels of a 4-wheel drive vehicle may be turned 90 degrees (or more) to enable the vehicle to park directly from the side of the parking space.
[0025] Having summarized certain features of a double cardan joint assembly of the present disclosure, reference will now be made in detail to the description of a double cardan joint assembly as illustrated in the drawings. While an example double cardan joint assembly will be described in connection with these drawings, there is no intent to limit it to the embodiment or embodiments disclosed herein. For instance, though emphasis is placed on drive axles (front or rear drive axles), certain embodiments of a double cardan joint assembly may be beneficially deployed in other applications that transfer rotational speed of a driving shaft to a driven shaft, such as drivelines or other drive shafts. Further, many applications from a wide range of industries are contemplated to benefit from, and be within the scope of, certain embodiments of a double cardan joint assembly, including from the consumer automobile industry to the work vehicle industry. For instance, an embodiment of a double cardan joint assembly may be used on a wheel tractor with a loader to steer within its footprint much like a skid steer with a load on the loader without skidding anything. One of the rear wheels may actually turn backwards if the steering system exceeded 90 degrees. Further, although the description identifies or describes specifics of one or more embodiments, such specifics are not necessarily part of every embodiment, nor are all of any various stated advantages necessarily associated with a single embodiment. On the contrary, the intent is to cover all alternatives, modifications and equivalents included within the spirit and scope of the disclosure as defined by the appended claims. Further, it should be appreciated in the context of the present disclosure that the claims are not necessarily limited to the particular embodiments set out in the description.
[0026] Referring now to
[0027] At the first end of the driving shaft 46 is a yoke 50. The yoke 50 may be cast or welded to the driving shaft 46. At the first end of the driven shaft 48 is a yoke 52, which likewise may be a cast or welded component. The opposite end of respective shafts 46, 48 may likewise comprise respective yokes in some embodiments. The yokes 50, 52 are coupled to a center yoke 54 (best seen fully in
[0028] Surrounding all, or in part, the center yoke 54 is a center frame 64 (omitted in
[0029] Referring now to
[0030] Attention is now directed to
[0031] In view of the above description, it should be appreciated that one embodiment of double cardan joint method, depicted in
[0032] Any process descriptions or blocks in flow diagrams should be understood as representing steps in the process, and alternate implementations are included within the scope of the embodiments in which functions may be executed out of order from that shown or discussed, including substantially concurrently or in reverse order, depending on the functionality involved, as would be understood by those reasonably skilled in the art of the present disclosure.
[0033] In this description, references to one embodiment, an embodiment, or embodiments mean that the feature or features being referred to are included in at least one embodiment of the technology. Separate references to one embodiment, an embodiment, or embodiments in this description do not necessarily refer to the same embodiment and are also not mutually exclusive unless so stated and/or except as will be readily apparent to those skilled in the art from the description. For example, a feature, structure, act, etc. described in one embodiment may also be included in other embodiments, but is not necessarily included. Thus, the present technology can include a variety of combinations and/or integrations of the embodiments described herein. Although an embodiment of a double cardan joint assembly and method have been described with reference to the example embodiments illustrated in the attached drawing figures, it is noted that equivalents may be employed and substitutions made herein without departing from the scope of the disclosure as protected by the following claims.