Portable beverage container with self opening hinged lid
09896246 ยท 2018-02-20
Assignee
Inventors
- David K. Mackenzie (Cincinnati, OH, US)
- Thomas Remm (Milford, OH, US)
- Bryan Keller (Springboro, OH, US)
Cpc classification
B65D43/0212
PERFORMING OPERATIONS; TRANSPORTING
B65D51/00
PERFORMING OPERATIONS; TRANSPORTING
B65D43/167
PERFORMING OPERATIONS; TRANSPORTING
F16F1/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F1/373
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B65D2251/105
PERFORMING OPERATIONS; TRANSPORTING
B65D43/16
PERFORMING OPERATIONS; TRANSPORTING
B65D43/165
PERFORMING OPERATIONS; TRANSPORTING
B65D43/22
PERFORMING OPERATIONS; TRANSPORTING
B65D51/18
PERFORMING OPERATIONS; TRANSPORTING
B65D47/0871
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D43/16
PERFORMING OPERATIONS; TRANSPORTING
F16F1/373
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A portable beverage container (e.g., an insulated, double-walled bottle) is disclosed. The container includes a lid pivotably connected to it by a hinge. The lid is arranged to be automatically pivoted open by the spring assembly when a catch on the lid is released so that the lid opens in a controlled, non-jarring manner. The spring assembly comprises an elastomeric member and a contact surface (e.g., a recess in a cap of the bottle). The elastomeric member is arranged to cooperate with the contact surface whereupon the elastomeric member operates bi-modally to effect the automatic opening of the lid.
Claims
1. A portable container for holding a liquid therein, said container comprising: a hollow vessel including an interior compartment for retaining the liquid; a cap removably coupled to the hollow vessel, said cap comprising a catch and a passageway, said passageway being configured for communicating with said interior compartment; a hinge; a lid pivotally connected to said cap by said hinge, said lid being movable between a fully closed state and an opened state, and vice versa, to selectively close off or open said passage in cap; a spring assembly configured to automatically cause said lid to be pivoted from a fully closed state to an opened state upon the release of said catch, said spring assembly comprising an elongate elastomeric member and an containment area recess having a contact surface, said contact surface being planar and defined by a single plane, said contact surface comprising a bottom contact surface of said containment area recess and wherein said containment area recess additionally comprises a front contact surface extending generally normal to said bottom contact surface at a forward end of said bottom contact surface, said containment area recess being open and unobstructed at a rear end of said bottom contact surface, said elongate elastomeric member having an initial shape including a distal free end terminating in a distal surface, said distal surface of said elongate elastomeric member engaging said planar contact surface when said lid is in the fully closed state and being configured to operate as a reed and compression spring when said lid is in the fully closed state and operate as a reed spring after said lid has begun opening to carry said lid to its opened state, said distal surface of said elongate elastomeric member being slidable along said planar contact surface when said lid is moved from said opened state to said fully closed state.
2. The portable container of claim 1, wherein said distal surface of said elongate elastomeric member engages said bottom contact surface when said lid is in the fully closed state and is spaced from said bottom contact surface when said lid is in said opened state.
3. The portable container of claim 1, wherein said distal surface of said free end of said elongate elastomeric member pushes against said bottom contact surface and another surface of said elongate elastomeric member adjacent said distal surface pushes against said front contact surface to cause said elongate elastomeric member to bend slightly and be in compression to store energy therein when said lid is in the fully closed state and operates as a reed spring with said elongate elastomeric member reassuming its initial shape after said lid has begun opening to carry said lid to the opened state.
4. The portable container of claim 3, wherein when contact is made by said distal surface with said bottom contact surface as said lid is being moved into a closed position said distal surface slides along said bottom contact surface until said front contact surface is contacted by and pushes against the another surface of said elongate elastomeric member as said lid is moved into its fully closed state.
5. The portable container of claim 1, wherein said elongate elastomeric member is integrally formed as part of said lid.
6. The portable container of claim 1, wherein said initial shape of said elongated elastomeric member is linear.
7. The portable container of claim 5, wherein said initial shape of said elongated elastomeric member is linear.
8. The portable container of claim 1, whereupon when said lid is in the fully closed state said elastomeric member is in compression to store energy therein.
9. The portable container of claim 1, wherein said spring assembly is configured when said catch is released to enable the energy stored in said elongate elastomeric member to be released, whereupon said elongate elastomeric member pushes off of said contact surface to automatically cause said lid to pivot from its fully closed state toward its opened state, whereupon said elongate elastomeric member transitions from said flexed and compressed state to an unflexed state when said lid is in said opened state.
10. The portable container of claim 1, wherein said containment area recess is located in said cap.
11. The portable container of claim 10, wherein said containment area recess is located adjacent said hinge.
12. A spring assembly for use in a product having a hollow body and a lid pivotably connected to the body by a hinge to selectively close off or expose the interior of the body, said spring assembly being configured to automatically cause the lid to be pivoted from a fully closed state to an opened state upon the release of a catch, said spring assembly comprising: an elongate elastomeric member having an initial shape including a distal free end terminating in a distal surface; a containment area recess having a contact surface, said contact surface being planar and defined by a single plane, said contact surface comprising a bottom contact surface of said containment area recess and wherein said containment area recess additionally comprises a front contact surface extending generally normal to said bottom contact surface at a forward end of said bottom contact surface, said containment area recess being open and unobstructed at a rear end of said bottom contact surface, said distal surface of said elongate elastomeric member engaging said contact surface when said lid is in the fully closed state and being configured to operate as a reed and compression spring when said lid is in the fully closed state and operate as a reed spring after said lid has begun opening to carry said lid to its opened state, said distal surface of said elongate elastomeric member being slidable along said planar contact surface when said lid is moved from said opened state to said fully closed state.
13. The spring assembly of claim 12, whereupon when the lid is in the fully closed state said elastomeric member is in compression to store energy therein.
14. The spring assembly of claim 12, wherein said spring assembly is configured when said catch is released to enable the energy stored in said elongate elastomeric member to be released, whereupon said elongate elastomeric member pushes off of said contact surface to automatically cause the lid to pivot from its fully closed state toward its opened state, whereupon said elongate elastomeric member transitions from said flexed and compressed state to an unflexed state when the lid is in the opened state.
15. The spring assembly of claim 12, wherein said distal surface of said elongate elastomeric member engages said bottom contact surface when said lid is in the fully closed state and is spaced from said bottom contact surface when said lid is in said opened state.
16. The spring assembly of claim 12, wherein said distal surface of said free end of said elongate elastomeric member pushes against said bottom contact surface and another surface of said elongate elastomeric member adjacent said distal surface pushes against said front contact surface to cause said elongate elastomeric member to bend slightly and be in compression to store energy therein when said lid is in the fully closed state and operates as a reed spring with said elongate elastomeric member reassuming its initial shape after said lid has begun opening to carry said lid to the opened state.
17. The spring assembly of claim 12, wherein said elongate elastomeric member is integrally formed as part of said lid.
18. The spring assembly of claim 12, wherein said initial shape of said elongated elastomeric member is linear.
Description
DESCRIPTION OF THE DRAWING
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
(14) Referring now to the various figures of the drawing wherein like reference characters refer to like parts, there is shown at 20 in
(15) The bottle is best seen in
(16) As best seen in
(17) As best seen in
(18) As best seen in
(19) Turning now to
(20) The hinge 30 is best seen in
(21) Turning now to
(22) The spring member 32 projects downward from the undersurface of the lid adjacent the location of the hinge 30 and is arranged to cooperate with the geometry of the containment area recess 64 to produce a variable spring rate. This action is achieved by the fact that the spring member operates bi-modally. For example, the sequence of
(23) During opening of the lid, the spring element 32 operates in a reverse manner, i.e., it acts as a compression and reed spring during the initial phase of the opening of the lid and then transitions into solely a reed spring during a later phase of its operation to thereby bring the lid to its open position without any abrupt or jarring action. In particular, as seen in
(24) As will be appreciated from the foregoing the spring of this invention provides variable rate action that exhibits a high force at maximum compression, but one that drops with displacement, thereby providing the proper force to complete the opening motion of the lid with good and non-abrupt tactile feel. By so doing the spring assembly of this invention overcomes many of the problems of prior art springs. For example, the use of a constant rate spring to pivotably open a lid requires overcoming two inherent problems, namely, too low a spring rate will not store enough energy to open the lid, and too high a spring rate will abruptly snap the lid open. Moreover, if the constant spring rate is high enough to assure opening, the momentum of the lid when it reaches its end stop will likely result in a jarring action. Thus, with constant rate springs one has to balance the force produced so that it is not too high or too low. This results in an extremely narrow range in a constant rate spring. If the product incorporating the self-opening, spring-biased lid is a low cost one, such as a drinking bottle, manufacturing tolerances make it extremely difficult (if not impossible) to maintain a balance in that range. While there are conventional variable rate springs that could be used in lieu of the subject invention to exhibit a high force at maximum compression, but with the force dropping with the lid's displacement to thereby provide the proper force to complete the opening motion (as does the spring assembly of this invention), such conventional variable rate springs require complex geometry that is expensive to make and to accurately control.
(25) In contradistinction, the spring assembly of this invention, like conventional variable rate springs, produces a variable spring rate, but unlike such prior art devices, does so with a simple construction. In particular, it makes use of an elastomeric spring element that in cooperation with a containment area operates bi-modally, i.e., as a compression spring and as a reed spring. It should be pointed out at this juncture that the use of the term reed spring is not meant to be limiting. Thus, it encompasses springs which are referred to as leaf springs, whether single or multiple leaf/leaves, or beam springs. The spring assembly of this invention compensates for manufacturing tolerances, produces high energy storage in a short distance, makes use of a reed that is curved slightly to follow the lid's shape and allows it to be wider to increase its spring rate, is integral with the upper surface to retain the spring in position and eliminates assembly.
(26) Without further elaboration the foregoing will so fully illustrate our invention that others may, by applying current or future knowledge, adopt the same for use under various conditions of service.