Coupler assembly for releasably coupling a work machine to work tool and method thereof
09896817 ยท 2018-02-20
Assignee
Inventors
- Daniel M. Sulzer (Dubuque, IA, US)
- Arun Narayanan (Pune, IN)
- Gregory A. Kittle (Rockford, IL, US)
- Cory A. Ott (Eden Prairie, MN, US)
Cpc classification
E02F3/3622
FIXED CONSTRUCTIONS
E02F3/3645
FIXED CONSTRUCTIONS
E02F3/365
FIXED CONSTRUCTIONS
International classification
Abstract
A coupler assembly for coupling a work tool to a work machine. The assembly includes a body, a first locking mechanism, and a second locking mechanism. The first locking mechanism is pivotable about a pivot from a first position to a second position and is configured to be coupled to the work tool in the first position and decoupled in the second position. The second locking mechanism includes a pin having a first end and a second end, a tab coupled to the pin proximate the second end, and a spring disposed between the first end and the second end. The second locking mechanism is axially and pivotably movable about an axis such that the second locking mechanism includes a locked position and an unlocked position. As the first locking mechanism moves from the second position to the first position, the second locking mechanism automatically moves to the locked position.
Claims
1. A coupler assembly for coupling a work tool to a work machine, comprising: a body having a front end and a rear end; a first locking mechanism pivotable about a pivot from a first position to a second position, the first locking mechanism configured to be coupled to the work tool in the first position and decoupled in the second position; and a second locking mechanism including a pin having a first end and a second end, a tab coupled to the pin proximate the second end, and a spring disposed between the first end and the second end, where the second locking mechanism is axially and pivotably movable about an axis; wherein, the second locking mechanism is movable between a locked position and an unlocked position; further wherein, as the first locking mechanism moves from the second position to the first position, the second locking mechanism automatically moves to the locked position.
2. The coupler assembly of claim 1, wherein in the locked position, the first locking mechanism is maintained in the first position.
3. The coupler assembly of claim 1, wherein as the second locking mechanism is moved from the locked position to the unlocked position, the pin is axially moved to an outward position from its locked position and the tab is rotated to a position whereby at least one of the second end and the tab is in contact with the first locked mechanism to maintain the pin in the outward position.
4. The coupler assembly of claim 1, wherein in the unlocked position, the first locking mechanism is movable between the first and second positions.
5. The coupler assembly of claim 1, further comprising a second spring coupled to the first locking mechanism.
6. The coupler assembly of claim 5, further comprising: a spring support pivotably coupled to the first locking mechanism; and a retainer fixedly coupled to the body; wherein, the second spring is disposed between the spring support and retainer.
7. The coupler assembly of claim 5, wherein the body defines longitudinal axis that passes through the pivot; further wherein, the second spring is disposed below the axis in the first position and above the axis in the second position.
8. The coupler assembly of claim 7, wherein the first locking mechanism remains in the second position when the second spring is disposed above the axis.
9. The coupler assembly of claim 1, wherein the second locking mechanism automatically moves to its locked position once a trailing edge of the first locking mechanism moves past the pin and the pin is releasably disengaged from contacting the first locking mechanism.
10. The coupler assembly of claim 9, wherein the spring biases the pin from its outward position to an inward position once the pin is no longer in contact with the first locking mechanism.
11. The coupler assembly of claim 1, further comprising a hook portion defined at the front end of the body, the hook portion configured to be releasably coupled to the work tool.
12. The coupler assembly of claim 11, wherein in the second position, the hook portion is coupled to the work tool until the body is rotated to a position that releases the work tool from the hook portion.
13. A work machine, comprising: a frame supported by at least one ground-engaging mechanism; a cab mounted to the frame, the cab including at least one control element for controlling a function of the machine; a work tool controllable for performing a work function; a coupler assembly for coupling the work tool to the work machine, the coupler assembly comprising: a body having a front end and a rear end; a first locking mechanism pivotable about a pivot from a first position to a second position, the first locking mechanism configured to be coupled to the work tool in the first position and decoupled in the second position; and a second locking mechanism including a pin having a first end and a second end, a tab coupled to the pin proximate the second end, and a spring disposed between the first end and the second end, where the second locking mechanism is axially and pivotably movable about an axis; wherein, the second locking mechanism is movable between a locked position and an unlocked position; further wherein, as the first locking mechanism moves from the second position to the first position, the second locking mechanism automatically moves to the locked position.
14. The work machine of claim 13, wherein as the second locking mechanism is moved from the locked position to the unlocked position, the pin is axially moved to an outward position from its locked position and the tab is rotated to a position whereby at least one of the second end and the tab is in contact with the first locked mechanism to maintain the pin in the outward position.
15. The work machine of claim 13, wherein: the body defines a longitudinal axis that passes through the pivot and the second spring is disposed below the axis in the first position and above the axis in the second position; and the first locking mechanism remains in the second position when the second spring is disposed above the axis.
16. The work machine of claim 13, wherein the second locking mechanism automatically moves to its locked position once a trailing edge of the first locking mechanism moves past the pin and the pin and tab are releasably disengaged from contacting the first locking mechanism.
17. A coupler assembly for coupling a work tool to a work machine, comprising: a pair of longitudinal bodies having a front end and a rear end; a plate coupled between the pair of bodies at the rear end thereof, wherein the plate includes a slot defined therein; a hook portion formed at the front end of the pair of bodies, the hook portion defining a first cavity adapted to receive to a first pin of the work tool; a first locking mechanism defining a plurality of openings and including a finger portion, the finger portion partially defining a second cavity adapted to receive a second pin of the work tool; a pivot pin disposable in one of the plurality of openings of the first locking mechanism, the pivot pin pivotably coupling the first locking mechanism to the pair of bodies to enable the first locking mechanism to pivot about a first pivot axis; a first spring having a first end and a second end, the first end being pivotably coupled to the first locking mechanism about a second pivot axis; and a second locking mechanism including a pin having a first end and a second end, a tab coupled to the pin proximate the second end, and a second spring disposed between the first and the second ends, where the second locking mechanism is axially and pivotably movable about an axis; wherein, the first locking mechanism is pivotable about the first pivot axis between a first position and a second position, and the second locking mechanism is movable between a locked position and an unlocked position; further wherein: in the first position, the first locking mechanism is configured to be coupled to the second pin of the work tool and the tab is disposed to the rear of the first locking mechanism to block the first locking mechanism from pivoting from its first position and the second locking mechanism is disposed in its locked position; in the second position, the first locking mechanism is pivotably displaced from the first position such that the finger portion is configured to be at least partially disposed between the pair of bodies and the second pin, and the second locking mechanism is disposed axially outward in its unlocked position and in contact with the first locking mechanism.
18. The coupler assembly of claim 17, further comprising: a spring support pivotably coupled to the first locking mechanism; and a retainer fixedly coupled to the pair of bodies; wherein, the first spring is disposed between the spring support and retainer.
19. The coupler assembly of claim 18, wherein one of the pair of bodies defines a longitudinal axis that passes through the first pivot axis; further wherein, the first spring is disposed below the longitudinal axis in the first position and above the longitudinal axis in the second position.
20. The coupler assembly of claim 17, wherein the second locking mechanism automatically moves to its locked position from its unlocked position once a trailing edge of the first locking mechanism moves past the pin, the pin is releasably disengaged from contacting the first locking mechanism, and the second spring biases the second locking mechanism inwardly such that the tab is disposed rearward of the first locking mechanism.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The above-mentioned aspects of the present disclosure and the manner of obtaining them will become more apparent and the disclosure itself will be better understood by reference to the following description of the embodiments of the disclosure, taken in conjunction with the accompanying drawings, wherein:
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(17) Corresponding reference numerals are used to indicate corresponding parts throughout the several views.
DETAILED DESCRIPTION
(18) The embodiments of the present disclosure described below are not intended to be exhaustive or to limit the disclosure to the precise forms disclosed in the following detailed description. Rather, the embodiments are chosen and described so that others skilled in the art may appreciate and understand the principles and practices of the present disclosure.
(19) An example embodiment of a work machine is shown in
(20) Referring to
(21) The machine 100 of
(22) The machine 100 may include a loader assembly 116 disposed at a front end and a backhoe assembly 118 at a rear end thereof. The machine 100 may further include at least one work tool, illustratively a first work tool 120 (i.e., a loader bucket) coupled to the loader assembly 116 and a second work tool 138 (i.e., a backhoe bucket) coupled to the backhoe assembly 118. Other suitable work tools may be used such as, for example, blades, forks, tillers, and mowers. Work tools 120 and 138 are moveably coupled to chassis 102 for scooping, carrying, and dumping dirt and other materials.
(23) As shown in
(24) The second work tool 138 is moveably coupled to the rear end of chassis 102 via a second boom assembly 128, which includes a dipper arm 140, a boom arm 142, a linkage assembly 144, and a plurality of hydraulic actuators for moving the second work tool 138 relative to chassis 102. The illustrative second boom assembly 128 may include a plurality of hydraulic swing cylinders 130 for swinging the second boom assembly 128 side to side, a hydraulic lift cylinder 132 for raising and lowering the second boom assembly 128, a hydraulic crowd cylinder 134 for bending the second boom assembly 128, and a hydraulic tilt cylinder 136 for tilting (e.g. digging and dumping) the second work tool 138. The operator may control movement of the first and second work tools using controls 114 located within operator cab 110.
(25) Referring to
(26) In one example, a work tool 202 such as a bucket may be removably coupled to the coupler assembly 210. The work tool 202 may include a first pin 212 and a second pin 214. The first pin 212 may be disposed towards a front end of the work tool 202, whereas the second pin 214 may be disposed towards a rear end thereof. In any event, an operator may operate the controls 114 in order to couple the coupler assembly 210 to the work tool 202. This will be further described in this disclosure.
(27) In conventional work machines such as a backhoe, there may be two mechanisms for locking or coupling a work tool to the machine. The machine can be controlled to couple one mechanism to the work tool, but the second mechanism usually requires the operator to exit the machine and manually manipulate the second mechanism for coupling to the work tool. Government safety regulations may require both mechanisms to be coupled to the work tool before the machine is operated. However, there is often no means to prevent the machine from being operated without both mechanism disposed in their respective locked conditions. In other words, if an operator does not want to exit the machine after locking the first mechanism to the work tool, there is nothing in place to prevent the machine from being operated.
(28) Given that it is inefficient and unproductive to require the operator to exit the machine each time a new work tool is coupled thereto, a need exists to be able to automatically actuate the second mechanism to couple or lock the machine to the work tool. As will be described herein, the coupler assembly 210 is a spring-based assembly that provides an automatic locking mechanism for securing the work tool to the machine without requiring a machine operator to exit the machine and manually couple or lock the machine to the tool. In addition, the coupler assembly 210 further provides visual confirmation to the operator that the coupler assembly is disposed in either its unlocked or locked configuration.
(29) Referring to
(30) The coupler assembly 210 includes a front end defined by a pair of hook arms 344. The hooks arms 344 form a cavity 342 for receiving the second pin 214 of the work tool 202. The assembly 210 may include a rear end that includes a first locking mechanism 308 and a second locking mechanism 310. The first locking mechanism 308 is pivotably coupled to the bodies 302 via a pivot pin 322. The pivot pin 322 may be an elongated pin that is positioned within an opening formed in each body 302, and the first locking mechanism 308 may pivot about a first pivot axis 328. The pivot pin 322 may include an enlarged head at one end and a retaining ring 1318 may be used to fasten the pin 322 at an opposite end thereof. Between the enlarged head and retaining ring, a pair of washers 1312, a pair of bearings 1314, and a spacer bearing 1316 may be disposed between the first locking mechanism 308 and pivot pin 322.
(31) The second locking mechanism 310 may be formed by an elongate pin 312 that passes through an opening formed in one of the bodies 302. The opening for the pin 312 of the second locking mechanism 310 may be spaced from the opening for the pivot pin 322, but the location of each is generally towards the rear of the coupler assembly 210. The second locking mechanism 310 may further include a tab 314 that is coupled thereto. For instance, the tab 314 may be welded to the pin 312. The tab 314 may extend at a direction that is at least partially perpendicular to a longitudinal axis defined by the pin 312. The tab 314 may be coupled at one end of the pin 312, whereas a handle is coupled at the opposite end thereof. The pin 312 therefore is pivotably and axially movable relative to the pair of bodies 302.
(32) In addition, the second locking mechanism 310 may include a spring 1302 that biases the pin 312 towards a position defined inwardly of the bodies 302. This will be described in greater detail below. The spring 1302 is disposed between a first ring 1304 and a first retaining ring 1310 at one end and a second ring 1306 and a second retaining ring 1308 at an opposite end thereof. For example, the first ring 1304 and first retaining ring 1310 may be disposed nearest the handle, whereas the second ring 1306 and second retaining ring 1308 may be disposed nearest the tab 314. As previously described, the spring 1302 is disposed between the rings and retaining rings and is compressed when the pin 1312 is moved axially outward and away from the coupler assembly 210. In some aspects, the spring 1302 may constantly be compressed when assembled with the pin 312, and when the pin 312 is pulled outwardly it further compresses the spring 1302.
(33) The first locking mechanism 308 may be formed by a pair of bodies as shown in
(34) A plug 326 formed by an elongate pin may also be coupled to an opening defined in one of the bodies of the first locking mechanism 308. When assembled, a portion of the plug 326 may extend out of the opening. This will be further described below.
(35) The coupler assembly 210 may be referred to as a spring-type coupler assembly. As shown in
(36) The spring 330 includes a first end and a second end. The first end may be coupled to a spring support 332 and the second end may be coupled to a retainer 334. The spring support 332 forms a body that may include an extended portion 1330 that fits within the spring 330. The body of the spring support 332 may further define an opening 1328 for receiving a pin 336. The pin 336 defines a second pivot axis 338 and is further received in openings formed in the first locking mechanism 308. The pin 336 may be secured or coupled to the first locking mechanism 308 via a retaining ring 1320. Thus, the spring support 332 and first end of the spring 330 is pivotably coupled to the first locking mechanism 308 about the second pivot axis 338. As such, pivotal movement of the spring 300 and spring support 332 can enable a proper alignment of the spring 330.
(37) The retainer 334, or spring retainer, may be coupled to the side plate 1300 of
(38) As shown best in
(39) Referring to
(40) Also in the coupled position 300 of
(41) In the coupled position 300 of
(42) In order to release the work tool 202 from the coupler assembly 210, one example of a method 1400 for doing so is shown in
(43) In block 1402, the handle on the second locking mechanism 310 may be pulled axially outward so that the pin 312 and tab 314 are no longer positioned directly behind or to the rear of the first locking mechanism 308. For instance, in
(44) In block 1402, the pin 312 and tab 314 of the second locking mechanism 310 are pulled axially outward in a direction indicated by arrow 1104 in
(45) In this embodiment, however, the spring 1302 of the second locking mechanism 308 biases the pin 312 to return to its position of
(46) In its unlocked position of
(47) Once the second locking mechanism 310 is moved to its unlocked position, the method 1400 may advance to block 1408 where the first locking mechanism 308 may be unlocked. To do so, a rod or other tool 402 may be inserted through the slot 306 in the first side plate 304 to engage the first locking mechanism 308. Once engaged, block 1410 may be executed such that the rod or tool 402 may be pivoted in a clockwise direction as indicated by arrow 502 in
(48) In the unlocked position 500 of
(49) In addition, in block 1412 the position of the spring 330 changes from the coupled or locked position of
(50) Although not shown in detail, the pin 312 of the second locking mechanism 310 may include a chamfer at its end. In addition, the first locking mechanism 308 may include a chamfer or ramp formed therein to facilitate a smooth movement of the pin 312 and first locking mechanism 308 during pivotal movement of the first locking mechanism 308. The chamfer and ramp may not be included in other embodiments. Moreover, this pivotal movement may induce movement in the second locking mechanism 310, and in particular, the pin 312. The pin 312, for example, may be further pushed outwardly as the plug 326 moves. In some instances, this repositions the second locking mechanism 310 in an intermediate position or ready to lock position. Thus, as will be described, the second locking mechanism 310 is moved to a position to be triggered or released to its locked position.
(51) As illustrated in
(52) To decouple the first pin 212 from the coupler assembly 210, the method 1400 can advance to block 1416 whereby the entire coupler assembly 210 is rotated in a counterclockwise direction indicated by arrow 700 in
(53) Referring now to
(54) As the coupler assembly 210 is rotated in the clockwise direction 802, block 1506 may be executed whereby an inner cavity surface 320 of the first locking mechanism 308 comes into contact with the second pin 214. Once the first locking mechanism 308 contacts the second pin 214, further movement of the second pin 214 into the cavity 318 urges the first locking mechanism 308 to pivot about the first pivot axis 328 in a counterclockwise direction indicated by arrow 900 of
(55) The coupling method 1500 may advance to block 1510 where the first locking mechanism 308 continues to pivot about the first pivot axis 328 until a trailing edge 902 thereof passes by the second locking mechanism 310. As it passes the second locking mechanism, the pin 312 or tab 314 release from contact with the first locking mechanism 308 in block 1512 to thereby trigger the second locking mechanism 310 to automatically move from its unlocked position to its locked position of
(56) In
(57) The aforementioned methods are intended only to be examples for coupling and decoupling the coupler assembly 210 to a work tool. The work tool 202 is shown and described as being a bucket, but it may be a blade or any other form of work tool. Moreover, the coupler assembly 210 may be coupled to any type of work machine. While a backhoe loader is shown and described herein, this is only intended to be one example of a work machine that incorporates the structure and function of the coupler assembly 210.
(58) While embodiments incorporating the principles of the present disclosure have been disclosed hereinabove, the present disclosure is not limited to the disclosed embodiments. Instead, this application is intended to cover any variations, uses, or adaptations of the disclosure using its general principles. Further, this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this disclosure pertains and which fall within the limits of the appended claims.