Coupler device
10066359 ยท 2018-09-04
Assignee
Inventors
Cpc classification
E02F3/3622
FIXED CONSTRUCTIONS
E02F3/365
FIXED CONSTRUCTIONS
E02F3/32
FIXED CONSTRUCTIONS
E02F9/2271
FIXED CONSTRUCTIONS
International classification
Abstract
A coupler device for coupling an attachment to a mechanical arm of a machine or vehicle, comprising a main hitch body (2), an actuator (3) mounted to the main hitch body (2) and moveable relative to the main hitch body (2) and a front locking mechanism. The front locking mechanism comprises a first locking member (4) adapted to be pivoted by operation of the actuator (3) from an open position to a closed position to engage with a first pin or other means of an attachment to secure the attachment to the mechanical arm and a second locking member (6) provided on the main hitch body which is adapted to mount the actuator to the main hitch body when the first locking member is in its closed position such that the main hitch body prevents the first locking member (4) from pivoting into its open position.
Claims
1. A coupler device for coupling an attachment to a mechanical arm of a machine or vehicle, said coupler device comprising: a main hitch body; an actuator mounted to the main hitch body and moveable relative to the main hitch body, wherein the actuator is provided with a mounting member to mount the actuator to the main hitch body; and a front locking mechanism comprising a first locking member adapted to be pivoted by operation of the actuator from an open position to a closed position to engage with a first pin of an attachment to secure the attachment to the mechanical arm; the front locking mechanism further comprising a second locking member comprising a slot comprising an open end and a closed end provided on the main hitch body to accommodate the mounting member, wherein the slot comprises an outer section distal to its open end, an inner section distal to its closed end, and a gradient section connecting the outer section to the inner section; such that as the actuator pivots the first locking member from the open position to the closed position, linear motion of the actuator slides the mounting member from the outer section of the slot to the gradient section of the slot, and pivotal motion of the actuator slides the mounting member from the gradient section of the slot to the inner section of the slot so that the first locking member is locked in the closed position.
2. The coupler device of claim 1, wherein the mounting member is adapted to slide from the closed end of the slot along the length of the slot and out from the open end of the slot as the actuator pivots the first locking member from the closed position to the open position so as to release the front locking mechanism.
3. The coupler device of claim 1, wherein the outer section of the slot comprises a first depth and the inner section of the slot comprises a second depth, and wherein the motion of the actuator is forced to change between linear motion and pivotal motion as the mounting member slides between the outer section and the gradient section.
4. The coupler device of claim 1 wherein the actuator is controlled by a hydraulic force or a mechanical actuation force.
5. The coupler device of claim 4 wherein the actuator comprises a hydraulic ram.
6. The coupler device of claim 1 further comprising a third locking member adapted to slide back and forth within the main hitch body and controlled by the actuator, wherein the third locking member is adapted to slide from an open position to a closed position to engage with a second pin of the attachment to secure the attachment to the mechanical arm.
7. The coupler device of claim 6 further comprising a spring element positioned to maintain the first and the third locking members in place during use and in the event the hydraulic force fails.
8. The coupler device of claim 7 wherein the spring surrounds the actuator and the spring is encased with a cylindrical casing.
9. The coupler device of claim 6 wherein the third locking member comprises a hook.
10. The coupler device of claim 9 wherein the hook comprises an anti-slip mechanism such that the hook is dimensioned to allow the second pin to rest against the base of the hook in a seated position.
11. The coupler device of claim 9 further comprising at least one stopper adapted to inhibit movement of the hook and allow the first locking member to be pivoted by the actuator from the closed position into the open position.
12. The coupler device of claim 1 wherein the attachment is a bucket and the vehicle is an excavator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The invention will be more clearly understood from the following description of an embodiment thereof, given by way of example only, with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
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(15) In one embodiment the first locking member comprises a front hook 4, and the ram 3 is mounted to the main hitch body 2 by means of a ball and socket locking mechanism based on a ram mounting member 5 provided on the ram 3. The second locking member comprises a slot 6 to accommodate the ram mounting member 5.
(16) In operation, the front locking mechanism is designed in a way that the main body 2 of the hitch 1 restricts the movement of the front hook 4 when the hitch 1 is in operation. As the front hook 4 pivots from the open position into the front locking or closed position by operation of the ram 3, the mounting member 5 slides back into the second locking member provided by the slot 6 in the main hitch body 2, which in turn allows the body 2 of the hitch to lock the front hook 4 into place in the closed position. This design is known as a sliding latch. The pivoting of the front hook 4 is controlled in this embodiment by a hydraulic force, for example by the ram 3 being hydraulically or pneumatically controlled and encased by a cylinder.
(17) Thus, it will be appreciated that the hydraulic pressure within the cylinder forces the ram mounting member 5 into the slot 6 when the front hook 4 is being pivoted by the ram 3 into its closed position until such time the operator of the machine (not shown) wants to disengage the attachment. This is shown in
(18) When the front locking mechanism is to be released by an operator (not shown), the ram 3 is energised in order to pivot the first locking member in the form of the front hook 4 from the closed position to the open position. The energising of the ram 3 causes the ram mounting member 5 to slide free from the slot 6 in the main body 2 of the hitch, and thus releases the front locking mechanism. As the ram 3 continues to energise and comes to a close it will pull the ram mounting member 5 clear of the slot 6 and begin to pivot the front hook 4 up into the main body 2 of the hitch. The attachment pin can then be released from the body of the hitch and the machine boom can move away, as shown in
(19) As can be seen from
(20) In one embodiment of the invention, the slot 6 is configured to force the motion of the ram 3 to change between linear motion and pivotal motion as the mounting member slides between the open end and the closed end. This slot configuration is shown in
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(22) The rear hook has a unique anti-slip design which is another safety feature that this hitch brings to the market. The anti-slip design allows the back pin to rest against the base of the hook in a seated position. This prevents the pin centre from slipping away from the hook when the coupler is in operation.
(23) An added feature of the coupler device is two or more stoppers 14, two of which are found at the front of the rear hook, which are adapted to prevent the hook from over exerting, as shown in
(24) Another aspect to the front and rear hooks is that a marking or etching can be made where the hook engages at least one pin. Over time through use the marking can wear away. This thus provides a visual indicator to a user that the hooks need to be replaced.
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(27) The unique design of the cylinder allows the hydraulic oil to be passed from one end of the ram to the other by a cylindrical extrusion which has been bored through the outer wall of the cylinder. This process allows movement within the ram. The hydraulic cylinder has a check valve 16 added. This is a safety feature that allows oil flow in one direction only, as shown in
(28) In the specification the terms comprise, comprises, comprised and comprising or any variation thereof and the terms include, includes, included and including or any variation thereof are considered to be totally interchangeable and they should all be afforded the widest possible interpretation and vice versa.
(29) The invention is not limited to the embodiments hereinbefore described but may be varied in both construction and detail. For example, it should be appreciated that while in the described embodiment the actuator takes the form of a hydraulic ram, the actuator could equally well be provided by any suitable activation means, such as by a mechanical means.