QUICK COUPLER WITH FRONT PIN SAFETY LOCK SYSTEM
20230193582 · 2023-06-22
Inventors
Cpc classification
E02F3/3622
FIXED CONSTRUCTIONS
E02F3/365
FIXED CONSTRUCTIONS
E02F3/3627
FIXED CONSTRUCTIONS
International classification
Abstract
Quick coupler with front pin safety lock system including body, front pin lock configured to rotate pivotally to lock in a pin, slide ratchet configured to move forward-backward to force the front pin lock to rotate, actuator including a cylinder and a piston rod which moves in the cylinder, rear lock connected to the piston rod, links configured to connect the rear lock and the slide ratchet and casing configured to house a part of the links and a part of the slide ratchet, is provided. It can work even when power is cut off and emergency front pin release can be performed.
Claims
1. A quick coupler apparatus comprising, a body; a front pin lock configured to rotate pivotally to lock in a pin; a slide ratchet configured to move forward-backward to force the front pin lock to rotate; an actuator comprising a cylinder and a piston rod which moves in the cylinder; a rear lock connected to the piston rod; a plurality of links configured to connect the rear lock and the slide ratchet; and a casing configured to house a part of the links and a part of the slide ratchet.
2. The quick coupler apparatus of claim 1, further comprising, a pivotal rod protruded from the casing.
3. The quick coupler apparatus of claim 2, wherein the links comprising a first link, a second link and a third link and the first link and the second link are movably joined by first link joint, and the second link and the third link are movably joined by second link joint.
4. The quick coupler apparatus of claim 3, further comprising, a protruded pin configured on the surface of the rear lock; and a rear lock stroke hole configured within the first link.
5. The quick coupler apparatus of claim 3, wherein the second link is connected with the pivotal rod by a rod pin.
6. The quick coupler apparatus of claim 3, wherein length ratio from the first link joint to pivotal rod and from the pivotal rod to the second link joint is 1:n, wherein, n>0 and wherein n is real number.
7. The quick coupler apparatus of claim 1, further comprising, a first spring configured to connect the front pin lock and the body; a second spring placed inside of the casing.
8. The quick coupler apparatus of claim 1 any one of the claims above, further comprising, an emergency release handler for releasing a front pin quickly.
9. A quick coupler apparatus comprising, a body; a pivot pin attached to the body; a locking arm pivotally attached to the pivot rod; an actuator comprising a cylinder and a piston rod which moves in the cylinder; a rear wedge attached to the piston rod; and a locking guide attached to the rear wedge.
10. The quick coupler apparatus of claim 9, the locking guide further comprising, a release wedge for moving the locking arm into a released status when inserted underneath the locking arm, and a locking stopper for maintaining the locking arm to a locked status when positioned above the locking arm.
11. The quick coupler apparatus of claim 10, wherein the locking guide is U-shaped.
12. The quick coupler apparatus of claim 9, the quick coupler further comprising, a release wedge is configured to be connected to the locking guide.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0019] The present invention together with the above-mentioned and other objects and advantages may best be understood from the following detailed description of the embodiments, but not restricted to the embodiments, wherein is shown:
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
MODE FOR THE INVENTION
[0029] The detailed structure and working mechanics for this invention will be explained with figures.
[0030] Throughout this specification, a ‘locked status’ is a status when a bucket or any attachment attached to the arm of a certain construction equipment (i.e. an excavator) is locked to the arm so that it does not fall from the arm when the arm is raised from the ground and a ‘released status’ is a status when a bucket or any attachment attached to the arm of a certain construction equipment (i.e. an excavator) can be removed from the arm or freely fall from the arm when the arm is raised from the ground.
[0031]
[0032] In
[0033] The actuator (120) is placed in the center of the locking guide and it exerts the power to lock or release the invention's lock system. The actuator comprises cylinder (121) and the piston rod (122) to actuate the movement. By the piston rod's backward movement (backward is a direction from the front pin area (191) from the rear pin area (190)), the rear wedge (130) is moving backward along with the piston rod and the locking guide attached to the rear wedge also moves backwards and this leads to a locked status of the lock system.
[0034]
[0035] The shape of the locking arm is such that when it is in locked status, the pin of a bucket or other attachment is prevented from sliding out by its protruding tip (100′, in dotted circle).
[0036] In
[0037] In
[0038] In
[0039] In
[0040] This way, the apparatus is exercising the pin locking and releasing mechanism.
[0041]
[0042]
[0043] In this second embodiment, the body (30) of this apparatus comprises an actuator (320), rear wedge (330), the locking guide (310) and the locking arm (300). The actuator may comprise a cylinder (321) and a piston rod (322). The piston rod (322) may be connected to rear wedge (330) and each of the locking guide (310) is connected to the rear wedge. Release wedge (311) is connected to the locking guide (310) by link joint (312). The locking arm (300) is attached pivotally movable to the body with a pivot pin (301). The release wedge (311) is shaped in a way that the thickness is thin toward the rear wedge but it gradually increases toward the locking arm (300).
[0044] The locking arm (300) equipped with a spring (301′) at the pivot pin (301) so that the contact tip (300′) is always pushed downward by the spring (301′)'s elasticity.
[0045]
[0046] In
[0047] Also, the locking guide (310), connected to the rear wedge, moves along with it in forward direction and the release wedge (311) does too. By the shape of the release wedge and the spring (301′)'s elasticity, the locking arm's contact tip moves down following the surface of the release wedge. At the same time, the opposite tip moves up, rendering the locking arm in a released status.
[0048]
[0049]
[0050] Forward direction means a direction from the rear pin area (290) to the front pin area (291) and backward direction means a direction from the front pin area (291) to the rear pin area (290).
[0051] In this embodiment, the apparatus comprises a body (20), an actuator (220) comprising cylinder (221) and piston rod (222), rear lock (230) connected to the piston rod (222), slide ratchet (200) configured to move front pin lock (201) that is configured to lock the front pin in the front pin area (291), links (211, 212, 213) that connect the rear lock (230) and the slide ratchet (200).
[0052] The slide ratchet (200) is shaped so that it may push the front pin lock (201) in forward direction when the actuator is activated and the piston rod is pushed in backward direction. In this case the front pin lock is positioned to a released status. (because the front pin lock is open to the forward direction) A spring (250) may be installed at the front pin lock (201) so that when no outer force is engaged, the front pin lock (201) is in locked status (i.e. the front pin lock is closed). A front pivot pin (202) is installed so that the front pin lock (201) is rotationally configured in the body (200).
[0053] The links (211, 212, 213) are joined by link joints (215, 216) respectively. At the slide ratchet (200)'s rear pin area (290) direction end, the link (213) is connected to the link (212) with the link joint (216). A casing (240) covers part of the link (213) and the slide ratchet (200) with a hold which lets the link (213) move forward and backward directions. A pivotal rod (241) is configured at the end the casing (240) and rod pin (242) is connecting the link (212) and the pivotal rod (241).
[0054] A spring (251) may be installed in the casing so that it touches the casing's backward direction wall and the slide ratchet. This spring (251) may exert elastic force to keep the slide ratchet's position in place. Another spring (250) may connect between the front pin lock (201) and an appropriate place in the body (20). The spring (250) may place the front pin lock (201) in place, i. e. keep the front pin lock (201) closed for locked status.
[0055]
[0056] As the piston rod (222) moves to the backward direction, the first link (211) connected to the piston rod (222) also moves to the backward direction. The second link (212), rotatably fixed by the rod pin (242), rotates in counter-clockwise direction. The second link joint (216) moves in forward direction along with the third link (213).
[0057] The slide ratchet (200) moves forward direction along with the third link so that the front pin lock (201) opens to be in released status. The spring (250) may keep the front pin lock (201) in contact with the slide ratchet (200).
[0058]
[0059] As the piston rod (222) moves to the backward direction, the first link (211) connected to the piston rod (222) also moves to the backward direction. The second link (212), rotatably fixed by the rod pin (242), rotates in clockwise direction. The second link joint (216) moves in backward direction along with the third link (213).
[0060] The slide ratchet (200) moves backward direction along with the third link (213) so that the front pin lock (201) closes to be in locked status. The spring (250) may keep the front pin lock (201) in contact with the slide ratchet (200).
[0061] The rear lock stroke hole (214) can be configured in the first link (211). When this stroke hole is in the first link, the first link is connected to the rear lock (230) with protruded pin(s) (243).
[0062] The protruded pin (243) is on the surface of the rear lock (230) and it is positioned inside the stroke hole (214) and when the rear lock moves the protruded pin also moves with the rear lock.
[0063] This stroke hole (214) and the protruded pin (243) can provide a slack in the movement of the front pin lock (201).
[0064] When the piston rod (222) moves forward or backward, the rear lock (230) moves at the same time. However, the links (e.g. the first link (211)) do not move until the protruded pin (243) meets the end of the hole. Until the encounter, the links do not move.
[0065] This slight ‘lack of movement’ gives some stroke slack to this apparatus because if all the components in this apparatus move with the piston rod immediately, there can be some shortcomings due to the extra-sensitivity from it.
[0066] The second link (212) has a fixed rotation center in the middle (rod pin, 242). The rod pin divides the second link in a certain way. For maximum efficiency and prolonging parts life, the length ration can be varied.
[0067] The length ratio from the first link joint (215) to the pin rod (242) to from the pin rod (242) to the second link joint (216) is 1:n, wherein n is a positive real number.
[0068] However, if the ratio is too big (for example, n is smaller than 1) the first link (211) should move long enough to get the slide ratchet (200) move enough so that the front pin lock (201) can open (i.e. released status). This long movement sometimes can lead into malfunction.
[0069] On the contrary, if the ratio is too small (for example, n is much bigger than 1) the first link (211) may move just a little to get the slide ratchet move for released status. But, it would require so much force to move the slide ratchet when front pin is attached so the links, especially the second link and then the first link are under too heavy pressure every time they move. This can lead into snapping and dangerous.
[0070] So, good length ratio for maximizing the efficiency and prolonging part life is important.
[0071] For better changing the ratio for supporting each work's characteristics, the second link (212) has multiple puncture holes in it.
[0072] This embodiment's front lock mechanism is mechanical not electrical or electronic, so the front lock system works when even power cut off (i.e., no hydraulic power).
[0073] For emergency, the emergency release handler (280) may be manipulated so that the second link joint (216) ejects from its position. In this case, the spring (251) exerts its force to the slide ratchet (200) to release the front pin in spite of the spring (250).
Explanation of Reference Numbers
[0074] 10, 20, 30: Body [0075] 100, 300: Locking arm [0076] 100′: Protruding tip [0077] 100″: End tip [0078] 101, 301: Pivot pin [0079] 101′, 301′: Spring [0080] 110, 310: Locking guide [0081] 111,311: Release wedge [0082] 112: Locking stopper [0083] 120, 220,320: Actuator [0084] 121, 221, 321: Cylinder [0085] 122,222, 322: Piston rod [0086] 130, 330: Rear wedge [0087] 190, 290, 390: Rear pin area [0088] 191, 291, 391: Front pin area [0089] 200: Slide ratchet [0090] 201: Front pin lock [0091] 202: Front pivot pin [0092] 250, 251: Spring [0093] 211, 212, 213: Link [0094] 214: Rear lock stroke hole [0095] 215, 216, 312: Link joint [0096] 230: Rear lock [0097] 240: Casing [0098] 241: Pivotal rod [0099] 242: Rod pin [0100] 280: Emergency release handle [0101] 300′: Contact tip [0102] 300″: Opposite tip