SPORTS BOTTLE CAP
20200002064 ยท 2020-01-02
Assignee
Inventors
Cpc classification
B65D47/243
PERFORMING OPERATIONS; TRANSPORTING
B65D47/247
PERFORMING OPERATIONS; TRANSPORTING
B65D47/2031
PERFORMING OPERATIONS; TRANSPORTING
B65D41/023
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D47/20
PERFORMING OPERATIONS; TRANSPORTING
B05B11/04
PERFORMING OPERATIONS; TRANSPORTING
B65D47/24
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A fluid container is disclosed with a cap body made of rigid or semi rigid material and a valve body disposed within the cap body and movable between and open and closed position. The valve body is made of a semi flexible semi rigid material that has a coefficient of thermal linear expansion that is smaller than that of the cap body. The cap body and nozzle valve are configured with three different hermetic seals to counteract the effects of exposure to heat and cold over time and thereby extend the useful life of the cap and valve.
Claims
1. A closure for a container that is adapted to hold a fluid for dispensing, comprising: (a) A container having an opening; (b) a cap member mountable to the container and enclosing the opening, the cap member having a cylindrically walled sleeve forming an outer opening in the cap member at the proximal end of the sleeve, a radially outwardly extending lip formed at the distal end of the sleeve, and a channel formed in the lip, the channel defining an inner surface and an outer surface, and at least one orifice formed in the sleeve between said outer opening and the lip; (c) a movable nozzle valve having a generally cylindrical hollow body disposed for longitudinal movement within the cylindrically walled sleeve between an open position to permit flow of a fluid through said hollow body from the container and a closed position to prevent flow of a fluid through the hollow body, the valve body having at least one seal member projecting radially outwardly from an exterior surface and engaging the cylindrically walled sleeve, the valve body having an ear projecting radially outwardly and received in the at least one orifice to define a stop member for limiting movement of the valve body within the sleeve between the open and closed positions, the valve body having a distal end with an inner and outer surface, wherein the distal end of the valve body nests within the channel when the valve is in a closed position, and the inner surface of the distal end of the valve body engages said inner surface of the channel and the outer surface of the distal end of the valve body engages the outer surface of the channel to form a seal between said distal end of the valve body and the channel.
2. The closure according to claim 1, further comprising an anti-spill member positioned in the hollow body of the valve.
3. The closure according to claim 1, wherein the cylindrically walled sleeve is made from polyethylene and the nozzle valve is made from at least one of urethane, silicone, natural rubber, synthetic rubber and polyimide.
4. The closure according to claim 1, wherein the coefficient of thermal linear expansion of the cylindrically walled sleeve is greater than the coefficient of thermal linear expansion of the nozzle valve.
5. The closure according to claim 4, wherein the difference in the coefficient of thermal linear expansion for the cylindrically walled sleeve and the nozzle valve is approximately 0.002 inches at one-hundred-fifty degrees Fahrenheit.
6. The closure according to claim 1, wherein the body of the nozzle valve has a thickness, and the thickness of the body is greater proximate the at least one seal member than at the distal end of the valve.
7. The closure according to claim 1, wherein the outer surface of the channel is configured to force the outer surface of the distal end of the valve body radially inwardly when the outer surface of the channel engages the outer surface of the distal end of the valve body.
8. The closure according to claim 1, wherein the inner surface of the channel is substantially cylindrically shaped and the inner surface of the distal end of the valve is substantially cylindrically shaped, and the diameter of the inner surface of the channel is approximately 0.010 inches larger than the diameter of the inner surface of the distal end of the valve.
9. The closure according to claim 8, where the diameter of the inner surface of the channel is 0.750 inches.
10. A cap body for closing a fluid container, comprising: a. an exterior and an interior, and an aperture extending through the cap body; b. a cylindrical sleeve extending from the aperture on the interior of the cap body and defining a longitudinal axis, the sleeve comprising: i. a proximal end proximate the aperture; ii. a closed distal end having a first cylindrical surface with a first diameter, and a second surface positioned radially outwardly from the first surface; iii. at least one orifice extending through the sleeve and disposed between the proximal and distal ends; c. a movable nozzle valve comprising: i. a hollow body disposed within the sleeve and movable within the sleeve between an open position, wherein fluid may pass through at least one orifice in the sleeve, the hollow body and out the aperture, and a closed position, wherein fluid may not flow through at least one orifice in the sleeve; ii. at least one first sealing member disposed around the exterior of the hollow body, projecting radially outwardly, and in contact with the interior surface of the sleeve to form a fluid seal between the first sealing member and the interior surface of the sleeve; iii. at least one ear projecting radially outwardly and received in the at least one orifice to define a stop member for limiting movement of the valve body within the sleeve between the open and closed positions; and iv. a distal end having an inner surface and an outer surface; wherein, when the nozzle valve is in the closed position, the distal end of the nozzle valve is disposed between the first cylindrical surface and the second surface, the inner surface of the distal end of the valve body forms a fluid seal with the first surface, the outer surface of the distal end of the valve body forms a fluid seal with the second surface, and the outer surface and the second surface are configured to impose a radially inward force on the distal end of the nozzle valve to cause the inner surface of the distal end of the nozzle valve to engage the first cylindrical surface of the distal end of the sleeve.
11. The cap body according to claim 10, wherein the second surface of the distal end of the sleeve is angled relative to the longitudinal axis of the sleeve.
12. The cap body according to claim 11, wherein the outer surface of the distal end of the nozzle valve is angled relative to the longitudinal axis of the sleeve.
13. The cap body according to claim 10, further comprising an anti-spill member positioned in the hollow body of the valve.
14. The cap body according to claim 10, wherein the cylindrical sleeve is made from polyethylene and the nozzle valve is made from at least one of urethane, silicone, natural rubber, synthetic rubber and polyimide.
15. The cap body according to claim 10, wherein the coefficient of thermal linear expansion of the cylindrical sleeve is greater than the coefficient of thermal linear expansion of the nozzle valve.
16. The cap body according to claim 15, wherein the difference in the coefficient of thermal linear expansion for the cylindrical sleeve and the nozzle valve is approximately 0.002 inches at one-hundred-fifty degrees Fahrenheit.
17. The cap body according to claim 10, wherein the body of the nozzle valve has a thickness, and the thickness of the body is greater proximate the at least one seal member than at the distal end of the valve body.
18. The cap body according to claim 10, further comprising a radially outwardly extending lip positioned at the distal end of the sleeve, the lip comprising the first and second surfaces of the distal end of the sleeve and forming a channel, and wherein the distal end of the valve body nest in the channel in the closed position.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate embodiments of the invention and together with the general description of the invention given above and the detailed description of the drawings given below, explain the principles of these inventions.
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[0023] It should be understood that the drawings are not necessarily to scale. In certain instances, details that are not necessary for an understanding of the invention or that render other details difficult to perceive may have been omitted. It should be understood, of course, that the invention is not necessarily limited to the particular embodiments illustrated herein.
DETAILED DESCRIPTION
[0024]
[0025] With reference to
[0026] According to aspects of the present disclosure, the cap body 6 is rigid or semi rigid in nature and can be made from any number of rigid or semi rigid materials, for example, impact resistant thermoplastic or impact resistant polyethylene such as high-density polyethylene (HDPE) and low-density polyethylene (LDPE). In contrast, the cylindrical nozzle valve 8 is made from a semi flexible semi rigid material, for example, thermoplastic elastomers (TPE) such as urethane, silicone, natural rubber, synthetic rubber or polyimide, because the soft properties of these materials are good for accommodating surface imperfections and a press fit required in forming effective hermetic or hydraulic seals. Due to the material from which it is made, the cap body 6 has a coefficient of thermal linear expansion that is larger than the coefficient of thermal linear expansion of the nozzle valve 8. Conversely, due to the material from which it is made, the nozzle valve 8 has a coefficient of thermal linear expansion that is less than the coefficient of thermal expansion of the cap body 6. In addition, the semi flexible semi rigid materials of the valve body 8 accommodate a user that might tug on the nozzle valve 8 with his teeth to pull it upward into the open mode while taking a drink.
[0027] According to aspects of the present disclosure, the nozzle valve 8 may be configured with one or more sealing members 26 formed around the exterior surface, for example, in an O-ring geometry (
[0028] According to aspects of the present disclosure, the diameter of surface 42 is sized larger than the diameter of surface 34 (
[0029] The material creep of the semi flexible nozzle valve 8 is exaggerated by the fact that the mating parts, the nozzle valve 8 and the sleeve 30, have two different coefficients of thermal linear expansion. In a preferred method of construction, the cap body 6 is made from a polyethylene resin with a coefficient of linear thermal expansion of 120 micro inch/inch Fahrenheit and the nozzle valve 8 is made from a thermoplastic urethane with a coefficient of linear thermal expansion of 85 micro inch/inch Fahrenheit. This difference can result in a relative difference in linear expansion of 0.002 inches across the geometry of features 34 and 42 assuming a dishwasher temperature of 150 F and a diameter of 0.750 inches, which is a preferred structure of surface 42. In other words, surface 42 which stretches surface 34 when the nozzle valve 8 is in the closed position, expands 0.002 inches more than the semi flexible semi rigid nozzle valve 8 would grow when subjected to the same elevated temperature of 150 F. In addition, at the elevated temperatures discussed, the nozzle valves 8 have a greater tendency to lose their elastic memory and thereby dimensionally creep to a larger or expanded shape or diameter. When the bottle cap 2 cools down to room temperature from the elevated temperatures of the dishwasher, the mating parts will not be sized the same as before the extreme temperature event. The mating surface 34 and 42 will either be sized identically to one another such there is no longer a pressing between them or there will be a gap between the sealing surfaces 34 and 42 depending on the number of dishwashing cycles and the age of the parts. Furthermore, as these same parts are subjected to freezing temperatures, surface 42 with the larger coefficient of linear thermal expansion will shrink more than the nozzle valve sealing surface 34 which will create a gap between sealing surfaces 34 and 42. The net result is that the interface at surfaces 34 and 42 will leak absent the presence and influence of sealing surfaces 36 and 44.
[0030] To assist in addressing the foregoing issue, in a preferred embodiment, sealing surface 44 (
[0031] When analyzing creep and size variations of the sealing members 26 of the nozzle valve 8, previous discussions do not apply. In this case, the geometry of the body of the nozzle valve was selected to keep part stresses below the level required for plastic deformation of the semi rigid semi flexible nozzle valve 8. The wall thickness of the nozzle valve between the geometry of the sealing member 26 and surface 46 of
[0032] Furthermore, when the first sealing features 26 are subjected to the elevated temperatures of a dishwasher, the cap body surface 28 will expand to a larger diameter than the nozzle valve 8 due to the larger coefficient of linear thermal expansion of the cap body material. More specifically, the diameter of surface 28, which preferably is 0.950 inches, will be 0.0025 inches larger than the O-ring geometry of the first sealing features 26 at the elevated temperatures of a dishwasher. The net effect is that the sealing features 26 will be less likely to be affected by creep because there is less compression of the sealing surfaces 26 of the nozzle valve against the surface 28 of the cap body at the elevated temperatures that are likely to cause creep.
[0033] According to aspects of the present disclosure, the valve 8 may optionally include a self-sealing valve 10 as shown in
[0034] This self-sealing valve 10 is housed within the nozzle valve 8 and requires a different method of forming a hermetic seal between the nozzle valve 8 and cap body 6 that is generally understood in the market place for plastic caps that do not incorporate a self-sealing valve 10.
[0035] According to aspects of the present disclosure, an alternative embodiment of the valve body 8 is illustrated in
[0036] While various embodiments of the present invention have been described in detail, it is apparent that modifications and alterations of those embodiments will occur to those skilled in the art. However, it is to be expressly understood that such modifications and alterations are within the scope and spirit of the present invention, as set forth in the following claims. Other modifications or uses for the present invention will also occur to those of skill in the art after reading the present disclosure. Such modifications or uses are deemed to be within the scope of the present invention.