Gravity-actuated latch mechanism
11149467 ยท 2021-10-19
Assignee
Inventors
Cpc classification
E05B65/5292
FIXED CONSTRUCTIONS
B65F1/1615
PERFORMING OPERATIONS; TRANSPORTING
International classification
E05B15/00
FIXED CONSTRUCTIONS
E05B65/52
FIXED CONSTRUCTIONS
Abstract
A gravity-actuated latch mechanism is provided. The gravity-actuated latch mechanism may include a strike attached to a lid of a container and a latch body attached to a wall of the container. The latch body includes a housing and a catch accessible from outside of the housing, wherein the catch engages and disengages with the strike. The latch body includes a lever having a lever arm moveable between an engaged and disengaged position. The engaged position is engaged with the catch and the disengaged position is disengaged with the catch. The latch body also includes a latch actuation member such as a ball housed in an elongated passage within the housing. The lever arm of the lever extends into the elongate passage, allowing the latch actuation member to apply force to the lever arm to move the lever from the engaged to the disengaged position in response to tipping the container for dumping.
Claims
1. A gravity-actuated latch mechanism comprising: a strike configured to attach to a lid of a container; and a latch body configured to attach to a wall of the container, wherein the latch body comprises: a housing; a catch accessible by the strike from outside of the housing through an opening in the housing, wherein the catch engages with the strike to secure the strike to the catch and disengages with the strike to release the strike from the catch; a lever having a lever arm moveable between an engaged position and a disengaged position, wherein the lever arm is engaged with the catch while in the engaged position and the lever arm is disengaged with the catch while in the disengaged position; a latch actuation spherical member housed in an elongated passage within the housing, wherein the lever arm of the lever extends into the elongated passage, and wherein the latch actuation spherical member applies force to the lever arm to move the lever from the engaged position to the disengaged position in response to the latch actuation spherical member rolling along the elongated passage during tipping of the container for dumping content within the container and engaging and applying force to the lever arm caused by gravity acting on the latch actuation spherical member; and a secondary lock mechanism for maintaining the catch secured to the strike by preventing the latch actuation member from engaging the lever arm during accidental tipping of the container.
2. The mechanism of claim 1, wherein the secondary lock mechanism comprises: a secondary lock actuation member housed in a secondary lock elongated passage within the housing; a secondary lock lever arm having a first end and a second end, the first end extending into the secondary lock elongate passage; and a pivot axis located at the second end of the secondary lock lever arm, wherein the secondary lock actuation member engages the first end of the secondary lever arm when the container is in an upright position and disengages the first end of the secondary lever arm when the container is tipped over.
3. The mechanism of claim 2, wherein the secondary lock mechanism further comprises a plunger that travels through a plunger elongate passage, wherein the plunger comprises a first end and a second end, and a protrusion located at second end.
4. The mechanism of claim 3, wherein the protrusion engages an aperture of secondary lock lever arm to operatively coupled the plunger to secondary lock lever arm.
5. The mechanism of claim 4, wherein the aperture of the secondary lock lever arm has an elongate shape to translate rotational movement of secondary lock lever arm about pivot axis to a linear movement of the plunger through the plunger elongate passage.
6. The mechanism of claim 5, wherein the plunger elongate passage extends into the elongate passage of the housing.
7. The mechanism of claim 6, wherein the plunger extends into the elongate passage of the housing in response to the secondary lock actuation member disengaging the secondary lock lever arm.
8. The mechanism of claim 7, wherein the secondary lock mechanism further comprises a dampening device operatively coupled to secondary lock lever arm.
9. The mechanism of claim 8, wherein the dampening device controls a length of time needed for the secondary lock lever arm to rotate.
10. The mechanism of claim 9, wherein the dampening device controls a length of time needed for the plunger to extend the protrusion into the elongate passage of the housing by controlling the length of time needed for the secondary lock lever arm to rotate.
11. The mechanism of claim 8, wherein the dampening device controls a length of time needed for the secondary lock lever arm to rotate, thereby controlling a length of time needed for the plunger to extend the protrusion into the elongate passage of the housing.
12. A gravity-actuated latch mechanism comprising: a strike configured to attach to a lid of a container; and a latch body configured to attach to a wall of the container, wherein the latch body comprises: a housing; a catch accessible by the strike from outside of the housing through an opening in the housing, wherein the catch engages with the strike to secure the strike to the catch and disengages with the strike to release the strike from the catch; a lever having a lever arm moveable between an engaged position and a disengaged position, wherein the lever arm is engaged with the catch while in the engaged position and the lever arm is disengaged with the catch while in the disengaged position; a latch actuation member housed in an elongated passage within the housing, the elongated passage comprising a pocket formed on an end of the elongated passage, wherein the lever arm of the lever extends into the elongated passage, and wherein the latch actuation member is moved out of the pocket and travels along the elongated passage and applies force caused by gravity to the lever arm to move the lever from the engaged position to the disengaged position during tipping of the container for dumping content within the container; and a secondary lock mechanism comprising a plunger that travels through a plunger elongate passage, wherein the plunger comprises a first end and a second end, and a protrusion located at second end, the secondary lock mechanism maintaining the catch secured to the strike by preventing the latch actuation member from engaging the lever arm during accidental tipping of the container, and wherein the pocket of the elongated passage maintains the latch actuation member within the pocket during accidental tipping to allow the secondary lock mechanism to automatically operate.
13. The mechanism of claim 12, wherein the protrusion engages an aperture of secondary lock lever arm to operatively coupled the plunger to secondary lock lever arm.
14. The mechanism of claim 13, wherein the aperture of the secondary lock lever arm has an elongate shape to translate rotational movement of secondary lock lever arm about pivot axis to a linear movement of the plunger through the plunger elongate passage.
15. The mechanism of claim 14, wherein the plunger extends into the elongate passage of the housing in response to the secondary lock actuation member disengaging the secondary lock lever arm.
16. A gravity-actuated latch mechanism comprising: a strike configured to attach to a lid of a container; and a latch body configured to attach to a wall of the container, wherein the latch body comprises: a housing; a catch accessible by the strike from outside of the housing through an opening in the housing, wherein the catch engages with the strike to secure the strike to the catch and disengages with the strike to release the strike from the catch; a lever having a lever arm moveable between an engaged position and a disengaged position, wherein the lever arm is engaged with the catch while in the engaged position and the lever arm is disengaged with the catch while in the disengaged position; a latch actuation member housed in a linear elongated passage within the housing, the linear elongated passage comprising a pocket formed on an end of the elongated passage, wherein the lever arm of the lever extends into the linear elongated passage, and wherein the latch actuation member is moved out of the pocket and travels linearly along the linear elongated passage and applies force caused by gravity to the lever arm to move the lever from the engaged position to the disengaged position during tipping of the container for dumping content within the container; and a secondary lock mechanism for maintaining the catch secured to the strike by preventing the latch actuation member from engaging the lever arm during accidental tipping of the container, and wherein the pocket of the linear elongated passage maintains the latch actuation member within the pocket during accidental tipping to allow the secondary lock mechanism to automatically operate to prevent the latch actuation member from applying force to the lever arm.
17. The mechanism of claim 16, wherein the secondary lock mechanism further comprises a secondary lock lever arm and a plunger that travels through a plunger elongate passage, wherein the plunger comprises a first end and a second end, and a protrusion located at second end.
18. The mechanism of claim 17, wherein the protrusion engages an aperture of secondary lock lever arm to operatively couple the plunger to the secondary lock lever arm, and the aperture of the secondary lock lever arm has an elongate shape to translate rotational movement of the secondary lock lever arm about pivot axis to a linear movement of the plunger through the plunger elongate passage.
19. The mechanism of claim 17, wherein the plunger extends into the elongate passage of the housing in response to the secondary lock actuation member disengaging the secondary lock lever arm.
20. The mechanism of claim 17, wherein the secondary lock mechanism further comprises a dampening device operatively coupled to secondary lock lever arm.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A more complete understanding of the present invention may be derived by referring to the detailed description and claims when considered in connection with the Figures, wherein like reference numbers refer to similar items throughout the Figures, the Figures are not necessarily drawn to scale, and:
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DETAILED DESCRIPTION
(26) Embodiments of the invention entail a gravity-actuated latch mechanism that may be utilized in conjunction with an enclosure, such as a container with a lid. The latch mechanism may be implemented with a refuse container, lock box, or any other container that may receive and hold items such as food, garbage, trash, recyclable items, and so forth. More particularly, the latch mechanism is configured to inhibit smaller animals such as raccoons, squirrels, dogs, and the like, from accessing the contents of the container. Furthermore, the latch mechanism is configured to resist unlatching in the instance that the container is tipped over by, for example, the wind or an animal. The latch mechanism automatically engages so that a user need not deliberately re-engage the latch after placing refuse in the container. Furthermore, the latch mechanism can be unlatched by an automated, mechanical arm of a refuse truck so that the contents of the container can be emptied during automated collection. Although the gravity-actuated latch mechanism is directed towards inhibiting access of animals to a refuse container used for automated collection, embodiments of the invention may be applied to inhibiting access of animals in general to containers. Additionally, the latch mechanism may be implemented to allow controlled access to a multitude of container designs, cupboards, gates, and the like.
(27) Referring to
(28) In an embodiment, latch mechanism 20 includes a latch body 22 and a strike 24. In general, latch body 22 is adapted to be secured to an inside front wall 28 of a container 26 with a top edge of latch body being mounted flush with the top edge of front wall 28. Strike 24 is adapted to be fastened to a lid 30 that closes, or covers, an opening into container 26. For purposes of illustration, a portion of container 26 with lid 30 is shown in
(29) In an embodiment, an alignment post 34 extending outwardly from latch body 22 is directed through an opening 36 extending through front wall 28. Another fastener (not shown) may extend through another opening (not shown) in front wall 28 and secure to, for example, a threaded opening (not shown) in latch body 22. Those skilled in the art will recognize that a variety of fasteners and fastening techniques may be implemented to secure latch body 22 to front wall 28 of container 26. Similarly, strike 24 may be fastened to lid 30 utilizing a variety of fasteners and fastening techniques known to those skilled in the art.
(30) Latch body 22 functions cooperatively with strike 24 so that lid 30 is secured to front wall 28 of container 26 to inhibit intrusion into container 26, as will be discussed in greater detail below. In addition, latch mechanism 20 can be readily actuated by a gravity effect when the gripping arm of an automated collection refuse pickup vehicle picks up and tilts container 26 to disengage strike 24 from latch body 22, as will also be discussed in greater detail below.
(31) Referring more particularly to
(32) Catch 40 includes a first end 52 and a second end 54. A hook 56 is located at first end 52 of catch 40 and is adapted to engage with strike 24. A mating surface 58 is located at second end 54 of catch 40 and is adapted to at least partially engage with lever 42 (discussed below). When actuated, catch 40 is adapted to selectively pivot, or rotate, about a pivot axis 60 to release hook 56 from engagement with strike 24. Lever 42 includes a pivot body 64 and a lever arm 66 extending from pivot body 64. Lever 42 is adapted to selectively pivot, or rotate, about another pivot axis 68. Lever arm 66 extends through a slot 70 in a wall 72 enclosing elongated passage 50 so that a distal end 74 of lever arm 66 resides in elongated passage 50.
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(34) Disc member 44 is implemented as an adjunct to the engagement capability between latching surface 80 of lever 42 and mating surface 58 of catch 40. In particular, when latch mechanism 20 is in latched configuration 76, disc member 44 within cavity 45 is located within a notch 82 (visible in
(35) The combined locking mechanisms of latching surface 80 of lever 42 with mating surface 58 of catch 40, and the further inclusion of disc member 44 engaged with pivot body of lever 42 via notch 82 enables the locked retention of lid 30 to container 26. Furthermore, should container 26 be knocked over by wind or by an animal, or should container 26 be subjected to vibratory stimulus, the combined locking mechanisms are largely capable of retaining lid 30 locked to container 26.
(36)
(37) With continued reference to
(38) Cavity 45 includes a cavity region 90 displaced forward from lever 42, i.e., displaced toward front wall 28 of container 26. Disengaged position 88 of disc member 44 occurs when disc member 44 rolls into cavity region 90. Cavity 45 may be slot shaped having a width that is only slightly wider than disc member 44 so that disc member 44 is largely prevented from tipping or tilting within cavity region 90. Accordingly, in order to unlock latch mechanism 20, disc member 44 must first roll out of notch 82.
(39) Now referring to
(40) With continued reference to
(41) It should be observed that a lower inner wall 94 of elongated passage 50 is approximately flat, i.e., without curves, depressions, or pockets. The approximately flat shape of lower inner wall 94 enables latch actuation ball 48 to easily roll in passage 50 when container 26 with latch mechanism 20 is tilted by the refuse truck. Additionally, an upper inner wall 96 includes a shoulder section 98 that forms a pocket 100 within elongated passage 50. Pocket 100 faces the back and sides (see also
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(43) In unlock position 92, disc member 44 has rolled within cavity 50 out of engagement with notch 82 of pivot body 64 of lever 42. More particularly, disc member 44 has rolled toward the front of container 26 to clear notch 82 in pivot body 64. Lever 42 is now free to pivot about its pivot axis 68 because of the weight of latch actuation ball 48 against that portion of lever arm 66 residing in elongated passage 50.
(44) Referring now to
(45) With particular reference to the enlarged partial view shown in
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(47) A spring element 106 of manual open actuator 46 has a spring end 108 in communication with disc member 44. When the knob of manual open actuator 46 is pulled outwardly, disc member 44 moves forward and out of engagement with notch 82 in pivot body 64 so that lever 42 can be rotated. Rotating manual open actuator 46 in a clockwise direction causes a wing feature 110 of actuator 46 to push upwardly on lever arm 66 causing lever 42 to pivot so that distal end 74 of lever arm 66 moves upwardly in elongated passage 50 to its stop position. With lever 42 moved to its stop position, catch 40 is now free to rotate so that hook 56 releases from strike 24, as discussed above. Accordingly, lid 30 (
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(49) However, when such a ledge is not present, a housing 114 of latch mechanism 112 may be suitably shaped to have a shed 116, or sloped region, as part of housing 114 that serves to deflect waste smoothly as container 26 (
(50) Referring to
(51) In an embodiment, latch mechanism 20 includes a latch body 22 and a strike 24. In general, latch body 22 is adapted to be secured to an inside front wall 28 of a container 26 with a top edge of latch body being mounted flush with the top edge of front wall 28. Strike 24 is adapted to be fastened to a lid 30 that closes, or covers, an opening into container 26. For purposes of illustration, a portion of container 26 with lid 30 is shown in
(52) In an embodiment, a fastener (not shown) may extend through another opening (not shown) in front wall 28 and secure to, for example, a threaded opening (not shown) in latch body 22. Those skilled in the art will recognize that a variety of fasteners and fastening techniques may be implemented to secure latch body 22 to front wall 28 of container 26. Similarly, strike 24 may be fastened to lid 30 utilizing a variety of fasteners and fastening techniques known to those skilled in the art. Additionally, the latch mechanism 20 is drip proof.
(53) Latch body 22 functions cooperatively with strike 24 so that lid 30 is secured to front wall 28 of container 26 to inhibit intrusion into container 26, as will be discussed in greater detail below. In addition, latch mechanism 20 can be readily actuated by a gravity effect when the gripping arm of an automated collection refuse pickup vehicle picks up and tilts container 26 to disengage strike 24 from latch body 22, as will also be discussed in greater detail below.
(54) Referring more particularly to
(55) Catch 40 includes a first end 52 and a second end 54. A hook 56 is rotatably coupled to first end 52 of catch 40 and is adapted to engage with strike 24. A mating surface 58 is located at second end 54 of catch 40 and is adapted to at least partially engage with lever 42 (discussed below). When actuated, catch 40 is adapted to selectively pivot, or rotate, about a pivot axis 60 to release hook 56 from engagement with strike 24. Lever 42 includes a pivot body 64 and a lever arm 66 extending from pivot body 64. Lever 42 is adapted to selectively pivot, or rotate, about another pivot axis 68. Lever arm 66 extends through a slot 70 in a wall 72 enclosing elongated passage 50 so that a distal end 74 of lever arm 66 resides in elongated passage 50.
(56) Pivot body 64 includes a counterweight 65. Counterweight 65 balances the weight of lever arm 66, wherein the weight of counterweight 65 may be slightly less than, equal to, or slightly greater than the weight of lever arm 66 and still keep latch mechanism 20 from opening with a knock over of refuse container 26. It is understood that a return spring may compensate for minor imbalances in lever arm 64 with counterweight 65. Because of counterweight 65, when refuse container 26 is knocked over, the resulting force towards the top of refuse container 26 does not cause the lever arm 66 to move towards the top of latch body 22, which would open it. The center of gravity of lever 42 is approximately at the center of rotation of pivot axis 68. Counterweight 65 also very slightly impedes the opening of latch mechanism 20 during a dump cycle but the weight of latch actuation ball 48 makes the amount of resistance from counterweight 65 irrelevant.
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(58) Secondary lock actuation member 44 is implemented as part of a secondary lock mechanism 120. Secondary lock mechanism 120 includes a secondary lock lever arm 121 having a first end 122 and a second end 123. A pivot axis 124 is located at second end 123 of secondary lock lever arm 121. Secondary lock mechanism 120 further includes a dampening device 130 operatively coupled to secondary lock lever arm 121 at connection 128. Secondary lock mechanism 120 also includes a plunger 132 that travels through an elongate passage 136. Plunger 132 includes a first end 131 and a second end 133. Plunger 132 also includes a protrusion 134 located at second end 133. Protrusion 134 engages an aperture 126 of secondary lock lever arm 121 to operatively coupled plunger 132 to secondary lock lever arm 121. The elongate aperture 126 may have an elongate shape in order to translate rotational movement of secondary lock lever arm 121 about pivot axis 124 to a linear movement of plunger 132 through an elongate passage 136. Elongate passage 136 extends into elongate passage 50.
(59) In the upright position as shown in
(60) The combined locking mechanisms of latching surface 80 of lever 42 with mating surface 58 of catch 40, and the further inclusion of secondary lock mechanism 120 enables the locked retention of lid 30 to container 26. Furthermore, should container 26 be knocked over by wind or by an animal, or should container 26 be subjected to vibratory stimulus, the combined locking mechanisms are largely capable of retaining lid 30 locked to container 26.
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(62) With continued reference to
(63) With continued reference to
(64) When refuse can 26 (not shown) is returned to upright position, secondary lock actuation ball 44 moves along elongate passage 45 and engages first end 122 of secondary lock lever arm 121 and rotates secondary lock lever arm 121 as gravity acts on secondary lock actuation ball 44. The rotation of secondary lock lever arm 121 into a position shown in
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(66) With continued reference to
(67) As refuse can 26 tilts from a refuse truck, latch mechanism 20 begins to tilt. At a tilt of, for example, approximately fifteen degrees beyond, or below, horizontal, latch actuation ball 48 begins to roll within elongated passage 50 due to the effect of gravity and contacts distal end 74 of lever arm 66 residing in passage 50. That is, the refuse truck continues to move container 26 through a dump cycle creating a steeper angle so that latch actuation ball 48 is able to apply more weight to distal end 74 of lever arm 66 to positively move lever arm 66 to its stop.
(68) It should be observed that a lower inner wall (not shown) of elongated passage 50 is approximately flat, i.e., without curves, depressions, or pockets. The approximately flat shape of lower inner wall enables latch actuation ball 48 to easily roll in passage 50 when container 26 with latch mechanism 20 is tilted by the refuse truck. Because of the timing of a normal dump cycle and the shape of lower inner wall, latch actuation ball 48 rolls in elongate passage past the location of where elongate passage 136 engages elongate passage 50. This is accomplished because dampening device 130 controls the time for secondary lock mechanism 120 to operate to extend plunger 132 into elongate passage 50. It will be understood that dampening device 130 can ensure that rotation of secondary lock lever arm 121 takes any predetermined amount of time. In some embodiments, the time is four seconds. In other embodiments, it is more or less than four seconds. Additionally, an upper inner wall includes a shoulder section located on a portion of the housing not shown that forms a pocket 100 within elongated passage 50. Pocket 100 faces the back and sides of container 26 when container 26 is in an upright position. Accordingly, if container 26 falls backward and/or on one of its sides, ball 48 is more likely to roll into and reside in pocket 100 instead of rolling in passage 50 to strike distal end 74 of lever arm 66. Thus, lid 30 (
(69) Referring further to
(70) For example, and with reference to
(71) It is typically necessary for a user to have the ability to unlock latch mechanism 20 in order to place refuse into container 26 (
(72)
(73) However, when such a ledge is not present, a housing 114 of latch mechanism 112 may be suitably shaped to have a shed 116, or sloped region, as part of housing 114 that serves to deflect waste smoothly as container 26 (
(74) Embodiments described herein entail a gravity-actuated latch mechanism that may be utilized in conjunction with an enclosure, such as a container with a lid. The latch mechanism may be implemented with a refuse container, lock box, or any other container that may receive and hold items such as food, garbage, trash, recyclable items, and so forth. More particularly, the latch mechanism is configured to inhibit smaller animals such as raccoons, squirrels, dogs, and the like, from accessing the contents of the container. Furthermore, the latch mechanism includes a gravity-actuated lever and catch structural configuration that is resists unlatching in the instance that the container is tipped over by, for example, the wind or an animal. The latch mechanism automatically engages so that a user need not deliberately re-engage the latch after placing refuse in the container. Furthermore, the latch mechanism can be unlatched by an automated, mechanical arm of a refuse truck so that the contents of the container can be emptied during automated collection.
(75) Although the preferred embodiments of the invention have been illustrated and described in detail, it will be readily apparent to those skilled in the art that various modifications may be made therein without departing from the spirit of the invention or from the scope of the appended claims.