Self-aligning driveshaft coupler
10480587 ยท 2019-11-19
Assignee
Inventors
Cpc classification
F16D3/387
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D23/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2023/123
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
F16D11/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01B71/063
HUMAN NECESSITIES
F16D3/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
A01B71/06
HUMAN NECESSITIES
F16D2011/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D43/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10S464/901
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
F16D1/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D3/38
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D1/108
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D3/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K17/28
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A self-aligning driveshaft coupler includes a receiving clutch mounted to a driveshaft and a locking clutch assembly mounted to an implement. The locking clutch assembly includes a collar and a yoke that rotate together, and a spring between the collar and the yoke. A locking pin may be pivotably attached to the yoke to move a projection on the locking pin in and out of the retaining groove. A plurality of drive pins extend axially from the collar. The spring biases the drive pins into engagement with the receiving clutch when the locking pin projection is in the retaining groove and the output shaft and receiving clutch are rotated less than 180 degrees.
Claims
1. A self-aligning driveshaft coupler, comprising: an internally splined receiving clutch mounted on an externally splined tractor PTO output shaft and having a neck with a retaining groove, and a base with a plurality of holes; a locking clutch assembly mounted to an implement and engaging the receiving clutch without contacting the external splines of the tractor PTO output shaft; a locking pin attached to the locking clutch assembly and removably engaging the retaining groove; a collar attached to the locking clutch assembly and slideable axially with respect to the locking clutch assembly while the locking pin is engaged; and a plurality of drive pins extending axially from the collar, a plurality of springs biasing the drive pins into the holes in the receiving clutch base once the locking pin is in the retaining groove and the tractor PTO output shaft and receiving clutch are rotated together less than one revolution before rotating the locking clutch assembly.
2. The self-aligning driveshaft coupler of claim 1 further comprising a C-shaped grip mounted around the outer surface of the collar; the collar being slideable axially with respect to the grip.
3. The self-aligning driveshaft coupler of claim 1 wherein the receiving clutch has a plurality of recesses with each recess extending partially around an outer edge of the base, and a hole at an end of each recess for engaging one of the drive pins.
4. The self-aligning driveshaft coupler of claim 1 further comprising a spring urging the locking pin into the retaining groove.
5. The self-aligning driveshaft coupler of claim 1 further comprising a release button on the locking pin to pivot the locking pin and move the projection out of the retaining groove.
6. A self-aligning driveshaft coupler, comprising: a receiving clutch mounted over an externally splined tractor PTO output shaft having a neck with an outer surface, a retaining groove around the outer surface, and a base with a plurality of receiving holes; and a locking clutch assembly on an implement yoke having a pivotable locking pin with a projection that enters the retaining groove when the locking clutch assembly slides onto the receiving clutch, a collar that is slideable relative to the locking clutch assembly with a plurality of drive pins that are spring biased to move axially into the receiving holes after the pivotable locking pin is in the retaining groove by rotating the receiving clutch less than one revolution before the locking clutch assembly rotates.
7. The self-aligning driveshaft coupler of claim 6 further comprising a plurality of recesses around the edge of the base for each of the receiving holes.
8. The self-aligning driveshaft coupler of claim 6 further comprising at least one retaining pin extending through a slot in the collar and providing a pivot axis for the pivotable locking pin, and sliding of the collar.
9. The self-aligning driveshaft coupler of claim 6 further comprising a C-shaped grip pivotably mounted around the collar.
10. A self-aligning driveshaft coupler, comprising: a locking clutch assembly on an implement yoke and a receiving clutch on an externally splined PTO output shaft; a plurality of drive pins extending axially from a collar that is slideably mounted to the locking clutch assembly; a locking pin pivotably mounted on the locking clutch assembly; a retaining groove on the receiving clutch that the pivotable locking pin enters when the receiving clutch slides onto the locking clutch assembly and rotating the receiving clutch less than one revolution before rotating the locking clutch assembly, and a plurality of springs urging the plurality of axially extending drive pins to enter a plurality of receiving holes in the receiving clutch, whereby the locking clutch assembly is rotatably engaged to the receiving clutch without engaging the external splines on the PTO output shaft.
11. The self-aligning driveshaft coupler of claim 10 wherein the pivotable locking pin is spring biased into the retaining groove.
12. The self-aligning driveshaft coupler of claim 10 further comprising a release button or lever to move the pivotable locking pin out of the retaining groove.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DESCRIPTION OF THE PREFERRED EMBODIMENT
(8) As shown in
(9) In one embodiment, the self-aligning driveshaft coupler may include a spiral channel 120 extending up to or about 360 degrees around the outer circumferential surface of neck 106. The spiral channel may have a wide first end 122 near the outer end 114 of the neck, and may spiral around the neck's outer circumference toward base or flange 112. The spiral channel may taper down to a narrower second end 124, and may terminate between the outer end 114 and base or flange 112. At or near the second end of the spiral channel, a radial slot 126 may be dimensioned to receive locking pin 128.
(10) In one embodiment, the self-aligning driveshaft coupler may include locking clutch assembly 130 on an implement, including a first ring shaped member 132 and a second ring shaped member 134. The first and second ring shaped members may be slidably engaged together with internal splines or teeth 136 and external splines or teeth 138 for rotation together, and also may be retained axially together by retainer ring 158. The second ring shaped member may be secured to the implement driveline, shown here as welded together or cast to form an integral part along with universal joint 140.
(11) In one embodiment, the self-aligning driveshaft coupler may include locking pin 128 slidably mounted in radial hole 142 in the second ring shaped member 134. The operator may start connecting the self-aligning driveshaft coupler by picking up the locking clutch assembly 130 and sliding it axially onto receiving clutch 102. The operator may move the locking clutch assembly far enough to slide locking pin 128 over the sloped lip at the outer end 114 of neck 106 and into the first wide end 122 of spiral channel 120, as shown in
(12) In one embodiment, the self-aligning driveshaft coupler may include a plurality of drive pins 146 that project axially from first ring shaped member 132 toward receiving clutch 102. For example, the first ring shaped member may have five drive pins. As shown in
(13) In one embodiment, the self-aligning driveshaft coupler may include a plurality of ramps 150 with a receiving hole 152 at the bottom end of each ramp. As the tractor PTO output shaft continues rotating the first ring shaped member again advances axially so that all of the drive pins 146 may contact the base or flange 112 adjacent the start of each ramp 150. Each ramp may be less than about 60 degrees around the base or flange. Springs 154 may be positioned between the first ring shaped member and the second ring shaped member. As shown in
(14) In one embodiment, the self-aligning driveshaft coupler may include locking pin 128 that may enter radial slot 126 at or nearly the same time as drive pins 146 enter receiving holes 152. Spring 144 may urge the locking pin into radial slot 126. To disconnect the self-aligning driveshaft coupler, the operator may use driveshaft release button 156, or a release lever, to pull the locking pin out from the radial slot. Once the locking pin is released, the locking clutch assembly may slide axially off the receiving clutch.
(15) In a second embodiment shown in
(16) In a second embodiment, the self-aligning driveshaft coupler may include locking clutch assembly 230 on an implement. The locking clutch assembly may include collar 232 with protective sleeve 233 and drive pins 256, and grip 234 that an operator may hold to position locking clutch assembly 230 onto receiving clutch 202. The collar may have internal splines 236 on its internal circumferential surface that slidably engage external splines 238 on yoke 240 for rotation together. The yoke may be attached to the implement using a cross bearing or CV joint.
(17) In a second embodiment, the self-aligning driveshaft coupler may include locking pin 248 pivotably mounted to yoke 240. The operator may connect the self-aligning driveshaft coupler by sliding locking clutch assembly 230 onto receiving clutch 202. Locking pin 248 pivots when it reaches the sloped lip at the outer end 214 of neck 206, and locking projection 252 moves into retaining groove 228. Retaining groove 228 may extend around the outer circumferential surface of neck 106 adjacent outer end 214. Spring 254 may be mounted between locking pin 248 and cap 255 on yoke 240. Spring 254 may urge locking pin 248 to pivot so locking pin projection 252 enters and remains in retaining groove 228. Alternatively, the reaction force of the locking pin 248 may retain the locking clutch assembly 230 onto receiving clutch 202. The locking pin also may include driveshaft release button or lever 250 that an operator may press to pivot the locking pin sufficiently to compress spring 254 and move locking pin projection 252 out from retaining groove 228.
(18) In a second embodiment, the self-aligning driveshaft coupler may include a plurality of drive pins 256 that project axially from collar 232 toward receiving clutch 202. For example, the collar may have four drive pins. The base or flange of the receiving clutch may include a plurality of recesses 258 with a receiving hole 260 at one end of recess. When the locking pin is in the retaining groove, the operator may rotate the PTO output shaft and locking clutch assembly, so that each drive pin 256 slides around and extends into one of the recesses due to spring 242. If the collar has four drive pins, the PTO output shaft and locking clutch assembly may be rotated less than 90 degrees, because each recess is 90 degrees around the base or flange. Similarly, three drive pins would require rotating the PTO output shaft and locking clutch assembly less than 120 degrees, or two drive pins would require rotating it 180 degrees. Stop 261 at an end of each recess 258 may stop the relative motion of the receiver 202 and locking clutch assembly 230. Spring 242, positioned between collar 232 and step 244 on yoke 240, may be compressed until the locking pin projection is in the retaining groove. Spring 242 then may extend to urge drive pins 256 against the recesses 258 and engage receiving holes 260 at the ends of the recesses. Spring 242 may include one or more springs, or may be a single spherical wave spring as shown in
(19) In a second embodiment, the locking clutch assembly of the self-aligning driveshaft coupler may include grip 234. Grip 234 may be a generally C-shaped member that extends at least partially around the protective sleeve 233 on the outer surface of collar 232. Retaining pins 262 may attach grip 234 and collar 232 to yoke 240, and enable the collar to slide axially as drive pins 256 enter and engage receiving holes 260. Retaining pins 262 also may pivotably mount locking pin 248 to the yoke. For example, each retaining pin 262 may have a head 268 and a first portion 270 inserted through hole 264 in grip 234, through slot 266 in collar 232, and into threaded hole 274 in yoke 240. Additionally, each retaining pin 262 may have a second portion 272 with a smaller diameter that may be inserted into hole 276 in the side of locking pin 248.
(20) Having described a preferred embodiment, it will become apparent that various modifications can be made without departing from the scope of the invention as defined in the accompanying claims. For example, the self-aligning driveshaft coupler may be used on mid-mount or front-mount PTOs or other agricultural equipment.