HINGES FOR A SWIVELING REMOVABLE LID

20220282540 · 2022-09-08

    Inventors

    Cpc classification

    International classification

    Abstract

    The present invention is a novel hinge design that allows unique operation of the lid for a container, box, storage chest, ice chest or similar item. In addition to the lid being able to flip up on two hinges as is traditional, the present invention allows the lid to swivel to one side or the other, while remaining in the horizontal plane. This is accomplished, in the exemplary embodiment, by means of two inventive ball-and-socket hinges each of which can have its ball disengaged from its socket. If one ball-and-socket hinge is thus disengaged, the lid is then free to rotate horizontally around the other ball-and-socket hinge, thereby swiveling the lid to one side and effectively opening the box or container. The lid, when opened in this fashion, is amply supported by the end of the box over which it sits, and can act as a table or flat surface for organizing items as they are transferred to or from the box or container. The horizontal lid can swivel in either direction, providing broad access to either end of the container. If broader access is desired, the lid can also be completely removed by simultaneously disengaging both hinges.

    Claims

    1. A hinge assembly for each of a pair of hinges connecting a lid to a container wherein the lid, when closed, is oriented approximately in a horizontal plane, and wherein both hinges are positioned such that they have a common horizontal axis allowing them to rotate in unison in a first direction around said common axis allowing the lid to swing up in an arc to provide access to the container, and wherein each hinge, singly or jointly, can be disconnected, and wherein either hinge, when the lid is in its closed position and the other hinge is disconnected, can rotate in a second direction around a vertical axis perpendicular to said common horizontal axis, thereby allowing the lid to swivel sideways in a horizontal plane to provide access to the container, and wherein both hinges can be disconnected, allowing the lid to be completely removed from the container.

    2. The hinge assembly of claim 1 wherein the container is oriented such that the lid, when closed, is orientated in any plane other than the horizontal plane and said vertical axis is an axis perpendicular to that plane.

    3. The hinge assembly of claim 1 wherein the lid is a door, and the common axis is a vertical axis and the second axis is a non-vertical axis.

    4. The hinge assembly of claim 1 wherein the lid and container are any two articles to be connected by hinges, and the common axis is in any direction, and the second axis is in any other direction that is approximately perpendicular to the common axis.

    5. The hinge assembly of claim 1 wherein each hinge utilizes a ball-and-socket joint to provide the ability to rotate the lid in each of the first and second directions.

    6. The hinge assembly of claim 5 wherein the ball can be removed from the socket to provide the disconnection.

    7. The hinge assembly of claim 5 wherein, without disconnecting the ball from the socket, the entire ball-and-socket hinge can be disconnected from either the lid or the container to provide the required disconnection.

    8. The hinge assembly of claim 1 wherein only one hinge can be disconnected, allowing only the second hinge to swivel in said second direction.

    9. The hinge assembly of claim 1 wherein only one hinge can be disconnected, thereby eliminating the condition that the lid can be completely removed.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0017] FIG. 1 shows a box with a lid and two hinges.

    [0018] FIG. 2 shows a box with its lid flipped up in the usual fashion of hinged lids.

    [0019] FIG. 3 shows a box with its lid slightly swiveled to the side.

    [0020] FIG. 4 shows a box with its lid swiveled 90 degrees to the side.

    [0021] FIG. 5 shows a box with its lid completely removed.

    [0022] FIG. 6 shows the components of an exemplary ball-and-socket hinge for the present invention.

    [0023] FIG. 7 shows some of the possible motions of the exemplary ball-and-socket hinge of the present invention.

    [0024] FIG. 8 shows a second example style of ball-and-socket hinge for the present invention.

    [0025] FIG. 9 shows a third example style of ball-and-socket hinge for the present invention.

    DETAILED DESCRIPTION

    [0026] For most common ice chests, the hinges are either a metallic barrel hinge, or an inexpensive plastic hinge which simply relies on the flexibility of a folding plastic crease to provide the hinge action. In either scenario, the hinges typically allow approximately 100° to 120° of angular movement in a single angular plane such that the lid can be lifted up and pushed back past the vertical to rest in a slightly leaned-back position.

    [0027] In one exemplary embodiment of the present invention, rather than barrel hinges or folding plastic hinges, a pair of novel ball-and-socket hinges is employed. FIG. 1 shows a simple implementation wherein a box 101 (here shown from behind) has a lid 102 attached by two ball-and-socket hinges 103, 104 on the back side of the box.

    [0028] These ball-and-socket hinges are designed to allow the lid to lift in the traditional manner, as shown in FIG. 2 (here shown from the front). The two ball-and-socket hinges 201, 202 allow the lid 203 to lift up through hinge action to the vertical position (or slightly beyond) thereby allowing open access to the box 204. In that sense, the hinges of the present invention provide all of the utility of traditional barrel or folding hinges.

    [0029] Unlike traditional hinges, however, this invention provides two new and unique modes of operation for the lid. In the first unique mode, shown in FIG. 3, the box 301 (once again shown from behind) has been partially opened by swiveling the lid 302 to one side. This relies on one ball-and-socket hinge 303 remaining in its usual engaged state with its ball component fixed inside its socket component, while the second hinge has been separated such that its ball component 304 is disengaged from its socket component 305. It is an essential part of this invention that at least one and preferably both ball-and-socket hinges can be separated in this way without the use of tools, and by the application of only a small to moderate amount of force, as might be exerted by hand by a typical child or adult.

    [0030] With the second ball-and-socket hinge 304, 305 disengaged, the first ball-and-socket hinge 303 can keep the lid 302 firmly anchored to the box 301 while allowing it to swivel easily and freely in the horizontal plane.

    [0031] FIG. 4 shows the same unique operation of the box 401 (now viewed from the front again) where the lid 402 has been swiveled through approximately 90° 403 around one hinge 404, which remains in its engaged state. The second hinge remains in its disengaged state (as was shown in FIG. 3), with its ball component 405 and socket component 406 now far apart. In this state, the lid 402 only covers a small portion of the opening of the box 401, allowing a high degree of access to the contents of the box. The engaged hinge 404 keeps the lid 402 firmly anchored to the box 401 such that the lid 402 becomes a stable horizontal surface, which provides a makeshift table or flat surface as might be used, for example, for food or beverage preparation or for temporarily stowing a large bag of ice.

    [0032] Optional tabs or pegs protruding down from the lid (for example, on the underside of the point identified as 402) could be employed to hinder the lid from being swiveled too far, such that it overhangs the box to such an extent that it is no longer a stable surface. In a similar fashion, if the ball component of each ball-and-socket hinge protrudes down from the lid rather than up from the box, then it can act to prevent the lid from being swiveled too far. In practice, the lid should not be swiveled more than about 100° to 135° depending on the geometry of the lid and placement of the hinges.

    [0033] The lid can be closed again by swiveling in the opposite direction and reengaging the ball-and-socket hinge components 405, 406 via a small to moderate application of force. With both hinges now engaged, the lid could then, if desired, be swiveled in the opposite direction by disengaging the other hinge 404, thereby giving full access to the opposite end of the box.

    [0034] In this fashion, the present invention addresses the need to have additional flat surface available for food and beverage preparation, or for temporary stowage of bags of ice. In essence, the flat lid of the cooer can be used as a preparation surface even when the cooler is open. It also addresses the problem where a cooler lid can inadvertently fall and close when in use, as the swiveled lid is in a stable position and cannot fall.

    [0035] The second unique mode of lid operation of the present invention is shown in FIG. 5. Here, the lid 501 is removed completely from the box 502 by disengaging both ball components 503, 504 from their respective socket components 505, 506. This can be accomplished, for example, using either of the following options:

    [0036] 1. While the lid is in its horizontal position (as was shown in FIG. 1) each hinge can be disengaged horizontally—simultaneously or in turn—thereby removing the lid whilst keeping it in the horizontal plane.

    [0037] 2. While the lid is in its flipped-up position (as was shown in FIG. 2) each hinge can be disengaged—simultaneously or in turn—by either lifting the lid with sufficient force, or by pushing it back past its “fully open” upright position, thereby using leverage to disengage the hinges.

    [0038] Removability of the lid is a strongly preferred (but not required) design feature of the present invention, and while either mode of lid removal just described could provide the desired functionality, the availability of both options gives the most utility. Option 1 becomes particularly useful when, say, food and beverages have been prepared on the swiveled-open lid, and the second hinge is then disengaged in order for the lid to be completely removed so it can become a tray for serving said food and beverages. Option 2 becomes particularly useful either when the lid is already in its flipped-up position and full removal is an afterthought, or when it is desirable to take advantage of the leverage afforded by pushing it back past its “fully open” position.

    [0039] With the lid off, easy access to the box can be granted from all sides without hinderance from a raised lid. This could prove useful, for example, for a large gathering of children all seeking access to a cool beverage from all sides of an ice chest. Also, with the lid removed, an ice chest can be more-easily handled for cleaning and drying, correcting one of the deficiencies of current cooler lid designs.

    [0040] The lid can be reattached by simply laying it flat on the box with the hinge components lined up, and pushing each hinge back together.

    [0041] The key to the present invention is hinge design. As discussed, the hinges should satisfy three basic requirements or functions.

    [0042] 1. When both hinges are in their engaged state, they should allow the lid to flip up to an upright (or slightly-beyond-upright) position and remain there held securely in place.

    [0043] 2. When a first hinge has had its ball and socket components disengaged, the second hinge should allow the lid to swivel in the horizontal plane around that second hinge, at least until the box is open enough for practical utility. Movement in planes other than the horizontal may also be achievable, but are not necessary.

    [0044] 3. At least one hinge (but most preferably both) should be able to have its ball and socket disengaged by the modest application of force, thereby temporarily breaking the hinge apart. Correspondingly, the hinge should also be able to be reengaged by the modest application of force, and stay engaged until the disengagement force is once again applied. If both hinges can be disengaged in this way, the lid can be swiveled in either direction, and the lid can also be completely removed.

    [0045] An example ball-and-socket hinge design that meets these three functional requirements is shown in FIG. 6. In this example, the ball component 601 (here shown truncated slightly at the bottom) is designed to protrude down from the lid, and the socket component 602 is designed to be embedded in the wall of the box at a height appropriate to receive the ball 601 when the lid lies flat on top of the box. One skilled in the art could flip these orientations so that the ball sticks up from the box and the socket is embedded in the lid, as was shown in FIGS. 1 through 5.

    [0046] The ball component in FIG. 6 has a connector plate 603 to attach it to the lid. A short cylindrical connector rod 604 connects the ball 601 to that plate 603.

    [0047] The socket 602, in this design, has two flexing sides 605 that can flex apart to allow the ball to be disengaged from or reengaged into the socket. While engaged, these flexing sides wrap around the ball past its vertical equator, thereby holding the ball securely within the socket. The geometry and amount of flexure of these sides 605 largely controls the force required to disengage or reengage the ball-and socket hinge components.

    [0048] As shown in FIG. 6, there is a wide slot 606 cut into the back of the socket 602 which is wide enough to accommodate the connector rod 604, thereby allowing the ball 601 to rotate backwards whilst inside the socket.

    [0049] The flexing sides 605 shown in FIG. 6 are separated from the rest of the socket 602 by means of narrow slots 608, facilitating their flexure to either side. Such slots may be problematic in that water or insects may utilize them to gain access to the internal spaces of the box or lid where the sockets are mounted. An alternative design concept molds the entire socket into the box or lid utilizing a flexible, elastic polymer that provide sufficient flexure without the need for such slots.

    [0050] In a second view in FIG. 6, the ball 609 is shown fully engaged in the socket, with the flexing sides 610, 611 securely holding it in place.

    [0051] FIG. 7 shows the hinge design of FIG. 6 performing its three required functions. Initially, when the lid of the box is closed, both hinges would have their ball component 701 engaged within their socket component 702. The ball component 701 could be mounted to the underside of the lid protruding downwards, while the socket component 702 could be embedded in the top of the back wall of the box. Alternately, that arrangement could be flipped vertically.

    [0052] With both hinges engaged, they can both allow their ball component to rotate backwards 703 (utilizing the slot 606 in the back of the socket), thereby flipping the lid up and open, satisfying function 1.

    [0053] With one such hinge disengaged, the remaining engaged hinge could allow the ball component 704 to rotate in a horizontal plane 705, thereby satisfying function 2.

    [0054] The application of pressure in an outward direction 706 could allow the two sides 707 of either socket component to flex outwards, thereby allowing the disengagement (and later reengagement) of the ball and socket, satisfying function 3.

    [0055] FIG. 8 shows another concept in hinge design for the present invention. Here, the ball component 801 is attached to a connecting rod 802 as before. The socket component is composed of two concave pressure plates 803, 804 (shown here in cross-section) pressed against the ball 801 be means of, for example, springs 805, 806. This allows each ball-and-socket hinge to spin and rotate in a wide range of planes and angles. It also allows the ball to be disengaged from the socket by the application of force in a wide range of directions, provided the direction of the force is more-or-less at a normal angle to the pressure plates 803, 804.

    [0056] FIG. 9 shows yet another concept in hinge design. Here, the ball 901 is attached to a rod 902 as before (here shown in an orthographic projection plan view with the rod 902 pointing up). The socket is comprised of a hemispherical concave receptacle 903 (shown here in cross-section). The ball is kept firmly in place within the socket by two spring-loaded cylindrical rollers 904, 905. While engaged in this fashion, all of the required ranges of motion of the ball-and-socket joint are available. If the ball is moved with modest force in an inward or outward direction 906, the rollers are forced back against their springs to allow engagement or disengagement of the two hinge components.

    [0057] The three hinge design concepts of FIGS. 6, 7, 8 and 9 have been successfully demonstrated, and many similar designs are foreseen. Hinge designs may also be developed that are not of ball-and-socket design, but that still offer the same or similar functionalities satisfying the three basic requirements of this invention. For example, barrel hinges with two sets of barrels mounted perpendicularly may be effective.

    [0058] Still further designs may employ a ball-and-socket for the required ranges of motion and rotation, but may keep the ball-and-socket fully engaged at all times, and unplug the hinge by a secondary means in order to satisfy the engagement/disengagement function.

    [0059] The figures and descriptions here have focused on the present invention being used to attach a lid to a box, for example, for the lid on a food-and-beverage ice chest or cooler. The same hinge designs can be used for any two articles that might be hinged together, and which might be arranged in any orientation. Other examples include hinged doors, hatch covers, gates, shutters, foldable furniture components, and so on.

    [0060] In another foreseen application, a plurality of matching balls and sockets might allow a first hinged article to be attached to a second article at multiple locations, with swing and swivel arcs in multiple planes.