Centering mechanism for double cardan joints
09759265 · 2017-09-12
Assignee
Inventors
Cpc classification
F16D47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/43
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
F16D3/207
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2250/0084
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/2057
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/33
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/205
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D47/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/43
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A joint assembly includes a first shaft having an end, a second shaft having an end, a first inner ring coupled to the first shaft, and a second inner ring coupled to the second shaft. The assembly further includes a sleeve coupled to the first and second inner rings, the first and second inner rings disposed within the sleeve, and a centering device engaging the ends of the first and second shaft. The centering device is configured to maintain the angular positions of the first and second shafts relative to one another, and the centering device is substantially fixed from rotation during rotation of the first and second shafts.
Claims
1. A joint assembly comprising: a first shaft having an end that includes a ball stud; a second shaft having an end that defines a bore; a first inner ring coupled to the first shaft; a second inner ring coupled to the second shaft; a sleeve coupled to the first and second inner rings, the first and second inner rings disposed within the sleeve; a centering device engaging the ends of the first and the second shaft, a portion of the centering device being rotatably received within the bore, the centering device comprising: a socket portion having an outer wall defining a socket that receives the ball stud and the outer wall includes a slot formed therein to provide clearance for a neck of the first shaft end, and a biasing mechanism disposed within the socket portion between the ball stud and an inside of the socket portion to axially bias the centering device into the second shaft; and a bushing device disposed in the bore to facilitate rotation of the second shaft about the centering device.
2. The joint assembly of claim 1, wherein the centering device further comprises a shaft portion that extends into the bore of the second shaft.
3. A double cardan joint comprising: a first shaft having an end that includes a ball stud; a second shaft having an end, the first shaft and the second shaft being oriented at an angle relative to one another, the angle being between approximately 43° and approximately 83′; a first inner ring coupled to the first shaft; a second inner ring coupled to the second shaft; a first universal joint coupled to the first shaft; a second universal joint coupled to the second shaft; a sleeve coupled to the first and second universal joints, the first and second universal joints disposed within the sleeve; and a centering device engaging the end of the first shaft and the end of the second shaft, the centering device comprising a socket portion having an outer wall defining a receiving socket that receives the ball stud and a biasing mechanism disposed within the receiving socket that axially biases the centering device into the second shaft.
4. The double cardan joint of claim 3, further comprising: a first set of bearing pins projecting from the first universal joint into the sleeve; and a second set of bearing pins projecting from the second universal joint into the sleeve, the first and second set of bearings pins establishing a jointed connection between the first and second universal joints and the sleeve for rotation of the sleeve in response to rotation of the first and second universal joints about their respective axes.
5. The double cardan joint of claim 3, wherein the second shaft end comprises a bore to rotatably receive a portion of the centering device.
6. A double cardan joint comprising: a driven shaft having an end that includes a ball stud; a driving shaft having an end; a first universal joint coupled to the driven shaft; a second universal joint coupled to the driving shaft; a sleeve coupled to the first and second universal joints, the first and second universal joints disposed within the sleeve; a centering device engaging the end of the driven shaft and the end of the driving shaft, the centering device comprising a socket portion having an outer wall defining a receiving socket that receives the ball stud and a biasing mechanism disposed within the receiving socket that axially biases the centering device into the driving shaft; a first set of bearing pins projecting from the first universal joint into the sleeve; and a second set of bearing pins projecting from the second universal joint into the sleeve, the first and second set of bearings pins establishing a jointed connection between the first and second universal joints and the sleeve for rotation of the sleeve in response to rotation of the first and second universal joints about their respective axes, the driven shaft end comprises a bore to rotatably receive a portion of the centering device, and the outer wall includes a slot formed therein to provide clearance for a neck of the driven shaft end.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The subject matter which is regarded as the invention is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The foregoing and other features, and advantages of the invention are apparent from the following detailed description taken in conjunction with the accompanying drawings in which:
(2)
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DETAILED DESCRIPTION
(9) Referring now to the Figures, where the invention will be described with reference to specific embodiments, without limiting same,
(10) In the exemplary embodiment, constant velocity joint assembly 10 maintains constant velocity at a large joint angle, for example 43° to 83°, while reducing or eliminating any wobbling or lash between the components of joint assembly 10 that are subjected to torque and bending loads in operation. These considerations are achieved in a joint having a small package size.
(11) As illustrated in
(12) Shaft 18 terminates at its axially inner end in a stud ball or end 24, and shaft 20 terminates at is axially inner end in an end 26. Inners ends 24, 26 are received within sleeve 16 through opposite open ends 28 and 30. In the exemplary embodiment, sleeve 16 includes a generally cylindrical, open-ended housing having two sets of axially aligned pin holes or openings 32 and 34 (see
(13) As illustrated in
(14) Bearings pins 54 are received within bearings 56 disposed in pin holes 32, 34 to enable inner rings 44, 46 to pivot relative to sleeve 16 about the axes ‘Y’ of bearing pins 54. In this manner, shafts 18, 20 are free to pivot in all directions relative to sleeve 16 and constrained only by contact of shafts 18, 20 with the side walls of rings 44, 46 while being fixed against rotation relative to sleeve 16. In this way, joint assembly 20 is able to transmit torque between shaft assemblies 12, 14 and sleeve 16 through an angle between axes ‘A’, ‘B’ of shafts 18, 20.
(15) Referring to
(16) In the exemplary embodiment, centering device 60 generally includes a socket portion 62 and a shaft portion 64. Socket portion 62 includes an outer wall 66 defining a receiving socket 68, and a slot 70 formed in outer wall 66. Receiving socket 68 is configured to receive stud ball 24, and slot 70 is configured to allow a neck 72 of shaft 18 to translate therein, which enables angular adjustment between first shaft 18 and second shaft 20. Centering device shaft portion 64 extends into a bore 74 formed in second shaft 20, which may include a bushing 76, a rolling element bearing (not shown), or the like. As such, centering device 60 is rotatable about axis ‘B’ within bore 74 and bushing 76. A biasing mechanism 78 such as a spring may be optionally disposed within receiving socket 68 between stud ball 24 and the inside of receiving socket 68 to axially bias centering device 60 into shaft 20.
(17) Centering device 60 is rotatable with respect to second shaft 20. As such, as the joint rotates at a given joint angle, centering device 60 stays fixed or substantially fixed in place while stud ball 24 spins inside socket portion 62 in concert with first shaft 18.
(18)
(19) Centering device 160 generally includes a clevis portion 162 and a shaft portion 164. Clevis portion 162 includes an access slot 166, trunnion apertures 168, and a trunnion 170 having a cross aperture 172. Trunnion 170 is disposed within trunnion apertures 168 and pin 124 is inserted into cross aperture 172. As such, access slot 166 enables pin 124 and trunnion 170 to rotate within clevis portion 162, which enables angular adjustment between first shaft 18 and second shaft 20. Centering device shaft portion 164 extends into bore 74 formed in second shaft 20, which may include bushing 76. As such, centering device 160 is rotatable about axis ‘B’ within bore 74 and bushing 76. A retainer 174 may be optionally disposed within bore 74 and coupled to shaft portion 164 to axially fix centering device 160 to shaft 20, but allow centering device 160 to rotate freely about spin axis ‘B’ of shaft 20.
(20) Centering device 160 is rotatable with respect to second shaft 20. As such, as the joint rotates at a given joint angle, centering device 160 stays fixed or substantially fixed in place while pin 124 spins inside trunnion 170 in concert with first shaft 18.
(21)
(22) In the exemplary embodiment, centering device 260 generally includes a socket portion 262 and a shaft portion 264. Socket portion 262 includes a plate 266 and a ball stud 268 extending therefrom, which is rotatable within socket 226. Centering device shaft portion 264 extends into bore 74, which may include bushing 76. As such, centering device 260 is rotatable about axis ‘B’ within bore 74 and bushing 76. In this way, as the joint rotates at a given joint angle, centering device 260 stays fixed or substantially fixed in place while socket 226 rotates within centering device 260 about ball 228 along axis ‘A’ of first shaft 18.
(23) A method of assembling joint assembly 10 includes providing shafts 18, 20, providing universal joints 40, 42, providing sleeve 16, and providing centering device 60. Universal joints 40, 42 are rotatably coupled to the sleeve 16 and to respective shafts 18, 20 such that universal joints 40, 42 are disposed at least partially within sleeve 16. Centering device 60 is positioned to engage shaft ends 24, 26 to maintain the angular positions of shafts 18, 20 relative to one another. During rotation of shafts 18, 20, centering device 60 is fixed or substantially fixed from rotation relative to shafts 18, 20, and therefore must be free to allow shaft 20 to rotate with respect to centering device 60.
(24) Described herein are systems and method for a double joint assembly. In one embodiment, the double joint assembly may be a double cardan joint or universal joint. The joint assembly includes a centering device that couples first and second rotating shafts and maintains the relative angular positions therebetween. The centering device is disposed within the second shaft, which rotates relative thereto, and the first shaft is rotatable within the centering device. The centering device remains fixed in space while rotary motion is transferred from one shaft to the other. As such, the joint assembly retains the simplicity of lower angle joints while operating at constant velocity at higher angle joints without requiring more space.
(25) While the invention has been described in detail in connection with only a limited number of embodiments, it should be readily understood that the invention is not limited to such disclosed embodiments. Rather, the invention can be modified to incorporate any number of variations, alterations, substitutions or equivalent arrangements not heretofore described, but which are commensurate with the spirit and scope of the invention. Additionally, while various embodiments of the invention have been described, it is to be understood that aspects of the invention may include only some of the described embodiments. Accordingly, the invention is not to be seen as limited by the foregoing description.