Vacuum container with protective features

Information

  • Patent Grant
  • 8141741
  • Patent Number
    8,141,741
  • Date Filed
    Friday, April 4, 2008
    16 years ago
  • Date Issued
    Tuesday, March 27, 2012
    12 years ago
Abstract
A container including a metal sidewall is provided. The metal sidewall includes a first end; a second end; a center portion having a principal width; a first feature positioned between the center portion and the first end, the first feature extending from the sidewall such that the maximum width of the sidewall at the first feature is greater than the principal width; and a second feature positioned between the center portion and the second end, the second feature extending from the sidewall such that the maximum width of the sidewall at the second feature is greater than the principal width. The container further includes a first bead located in the center portion of the sidewall; and a second bead located in the center portion of the sidewall.
Description
BACKGROUND

The application generally relates to containers capable of maintaining a vacuum within the container after the container is sealed. The application relates more specifically to food containers capable of maintaining a vacuum with features to protect the integrity of the sealed container and/or to provide improved container structure.


Containers are used to store a variety of materials and objects. Some types of containers are used to store perishable material such as organic material, solid food, food having a liquid component, and liquids. These containers must often meet a variety of requirements depending on their intended use. For example, some containers must be able to withstand acidity of certain levels such that the container's intended contents do not compromise the container. Other containers must be able to successfully store liquid such that manipulation of the container during shipping and typical use do not cause the container to deform, break an airtight seal, and/or leak the container's contents. Yet other containers must be able to withstand food cooking processes involving the container. Some containers must meet all of the aforementioned requirements.


One type of food and beverage container is provided with a closure that is affixed to the container primarily by the pressure differential between external atmospheric pressure and a lower internal pressure. Other types of closures (e.g., twist on/off closures, snap on/twist off closures, etc.) are affixed to the container mechanically. Another type of food and beverage container is provided with a can end affixed to the container by folding or crimping the material of the can end to the container body. Containers that maintain a vacuum after the container is sealed are vulnerable to impacts during processing, labeling, and transport. Such impacts may break the hermetic vacuum seal of the container which may cause leakage and may expose contents of the container to spoilage.


In addition, food and beverage storage containers are subjected to a variety of forces during manufacture, filling and processing, sales, and transport. Containers must be strong enough to resist these forces without deformation. Further, containers with an internal vacuum must be strong enough to resist compressive deformation by the external atmospheric pressure. One solution is to make the container material thicker. However, this approach increases the container weight and the cost of raw materials.


Some containers are filled with hot, pre-cooked food then sealed for later consumption, commonly referred to as a “hot fill process.” As the contents of the container cool, a vacuum develops inside the container. The resulting vacuum may partially or completely secure the closure to the body of the container. Foods packed with a hot fill process often have certain advantages. For example, end-users often appreciate pre-cooked food contents as preparation times are often shorter and more convenient.


Other containers are filled with uncooked food, the container is sealed, and the food is cooked to the point of being commercially sterilized or “shelf stable” while sealed within the container. This process is commonly called a thermal process. Also commonly, the required heat for the process is delivered by a pressurized device, or retort. Thermal processes also have certain advantages. First, the resulting shelf-stable package offers long-term storage of food in a hermetically sealed container. Second, cooking the food inside the container commercially sterilizes the food and the container at the same time.


Containers used with thermal processes often use can ends that require the use of a tool to open. For example, some containers suitable for use with thermal processes are metal cans having an end designed for use with a can-opener. Other containers suitable for use with thermal retort processes are containers having “pop-tops”, “pull tops”, convenience ends, or convenience lids having a tab or ring that aids in removal of the can end. Thermal retort processes present challenges to the design and manufacture of vacuum containing containers. For example, the pressure and temperature rigors of the thermal retort process may compromise the seal. In addition, differences in internal container pressure and external pressure during the thermal retort process may cause an unsecured vacuum sealable lid to separate from the container body.


Therefore, it would be desirable to provide a container capable of maintaining a vacuum having one or more protective features. Further, it would be desirable to provide a vacuumized container with protective features that is suitable for use with hot fill and/or thermal processes.


SUMMARY

One embodiment relates to a food or drink can including a metal sidewall. The metal sidewall includes a first end; a second end; and a center portion having a principal width. The metal sidewall further includes a first feature positioned between the center portion and the first end. The first feature extends from the sidewall such that the maximum width of the sidewall at the first feature is greater than the principal width. The metal sidewall further includes a second feature positioned between the center portion and the second end. The second feature extends from the sidewall such that the maximum width of the sidewall at the second feature is greater than the principal width. The food or drink can further includes a first bead located in the center portion of the sidewall and a second bead located in the center portion of the sidewall.


Another embodiment relates to a food or drink storage container including a metal body. The metal body includes a center portion having a principal width, a first end, a second end, and a midpoint. The metal body further includes a first feature that extends beyond the principal width, a second feature that extends beyond the principal width, a first body segment between the center portion and the first feature, and a second body segment between the center portion and the second feature. The metal body further includes a first bead positioned in the center portion of the body. The first bead is positioned between the midpoint and the first end of the center portion such that the distance from the midpoint to the first bead is greater than the distance from the first end to the first bead. The metal body includes a second bead positioned in the center portion of the body. The second bead is positioned between the midpoint and the second end of the center portion such that the distance from the midpoint to the second bead is greater than the distance from the second end to the second bead. The food or drink container further includes a container end coupled to the metal body. The center portion is located between the first feature and the second feature, and the first body segment and the second body segment are inwardly curved portions.


Alternative exemplary embodiments relate to other features and combinations of features as may be generally recited in the claims.





BRIEF DESCRIPTION OF THE FIGURES

The application will become more fully understood from the following detailed description, taken in conjunction with the accompanying figures, wherein like reference numerals refer to like elements, in which:



FIG. 1 shows a perspective view of a container having protective features according to an exemplary embodiment.



FIG. 2 shows a side view of a container having protective features according to an exemplary embodiment, and a cross-sectional view of a container closure proximal to the container.



FIG. 3 shows a cross-sectional view of a portion of the container of FIG. 2 taken along line 3-3.



FIG. 4 shows a detail cross-sectional view of a portion of the container closure of FIG. 2.



FIG. 5 shows a prospective view of a container having protective features and a sanitary end according to an exemplary embodiment.



FIG. 6 shows a prospective view of a container having protective features and a pull-top end according to an exemplary embodiment.





DETAILED DESCRIPTION

Before turning to the figures which illustrate the exemplary embodiments in detail, it should be understood that the application is not limited to the details or methodology set forth in the following description or illustrated in the figures. It should also be understood that the terminology employed herein is for the purpose of description only and should not be regarded as limiting.


Referring generally to the figures, a container is shown having protective features integrally formed from the material of the container body. The container is provided with a container end (e.g., a closure, lid, cap, cover, top, end, can end, sanitary end, “pop-top”, “pull top”, convenience end, convenience lid, pull-off end, easy open end, “EZO” end, etc.). The container end may be any element that allows the container to be sealed such that the container is capable of maintaining a vacuum. The container end may be made of metals, such as steel or aluminum, metal foil, plastics, composites, or combinations of these materials. The container is typically a food container suitable for use with a thermal process. It should be understood that the phrase “food” used to describe various embodiments of this disclosure may refer to dry food, moist food, powder, liquid, or any other drinkable or edible material, regardless of nutritional value. It should be further understood that the container may be formed from any material, including metals, various plastics, and glass.


Referring to FIG. 1, a perspective view of a container 1 is shown, according to an exemplary embodiment. Container 1 includes a body 10 having a sidewall 20 and a bottom end wall 32. Body 10 is shown as generally cylindrical (i.e., the container walls or piece forming sidewall 20 are curvilinear). Body 10 is generally a cylinder having a circular cross section. More specifically, body 10 is generally a right cylinder wherein vertical axis 13 forms a right angle with bottom end wall 32. According to various other embodiments, body 10 may take any number of other container shapes as may be desirable for different applications or aesthetic qualities. For example, body 10 may be formed as a prism having one or more angles that create a horizontal polygonal cross section such as a rectangular cross section. In another embodiment, container 1 may be formed with an elliptical horizontal cross section. Container 1 may be sized to store about twenty-six ounces of liquid contents or combination of liquid and solid contents, or may be sized differently (e.g., less than twenty-six ounces, more than twenty-six ounces, twelve ounces, sixteen ounces, thirty two ounces, etc.).


Referring to FIG. 2, a side view of container 1 is shown, including body 10 having a vertical axis 13 and a center portion 21. Container 1 has a principal width, shown as principal diameter 12 in the cylindrical embodiment of FIG. 2. In an exemplary twenty-six ounce embodiment, principal diameter 12 is about 3.01 inches, and the height of body 10 is about 6.08 inches. In other embodiments, both the principal diameter and body height may be greater or lesser, and may vary according to the volumetric size of the container.


Body 10 is shown having a neck 40 integrally formed from the material of sidewall 20. Neck 40 may extend upward from a tapered transition 22 along the vertical axis of container body 10. The cross-sectional shape of neck 40 may substantially match the cross-sectional shape of the container end to be coupled to neck 40. In addition, the width, shape, and height of neck 40 may be sized to match the width, shape, and depth of a container end with which neck 40 will be used. Referring to FIG. 2, a container end, shown as closure 60, has a maximum container end width, shown as maximum closure diameter 65.


A rim or lip, shown as neck edge 42, may be curled or rounded to provide a suitable sealing surface (e.g., uniform and having some substantial diameter relative to the gauge of the container walls). Neck edge 42 may also be curled or rounded to provide a suitable surface for mouth contact or drinking. Neck edge 42 may curl to the inside or outside of neck 40. The exterior width of the neck and structures of the neck may be appropriately sized to allow a closure to function properly. Neck 40 and neck edge 42 define a neck opening 48 having a maximum opening width. In an exemplary twenty-six ounce embodiment, neck opening 48 is a circular opening having a maximum opening width or diameter of about 2.89 inches. In other embodiments, the diameter of neck opening 48 may be about 83 percent of first protective feature diameter 14. In alternative embodiments, neck opening 48 may have a diameter that is more than 83 percent of first protective feature diameter 14 (i.e., 90 percent, 95 percent, 99 percent), or less than 83 percent of first protective feature diameter 14 (i.e., 80 percent, 75 percent, 70 percent, or less).


Referring further to FIG. 2, the top of body 10 and sidewall 20 angle inward to create a tapered transition 22. In a typical embodiment, tapered transition 22 is a frusto-conical shoulder area. According to other various exemplary embodiments, where body 10 is provided with a polygonal cross section, tapered transition 22 may include a transition from the polygonal cross section of body 10 to a circular neck edge 42 and neck opening 48. In alternative embodiments where body 10 is provided with a polygonal cross section, tapered transition 22 need not include a transition from the polygonal cross section of body 10 to a circular neck edge 42, and neck edge 42 may thereby define a similarly polygonal neck opening 48.


According to an exemplary embodiment, tapered transition 22 is angled around thirty degrees from the vertical axis 13 of body 10. According to various other embodiments, tapered transition 22 is angled more or less than thirty degrees from vertical. According to an exemplary embodiment, tapered transition 22 is angled so that the diameter of neck opening 48 is about 83 percent of principal diameter 12 of body 10. Tapered transition 22 may also be provided with additional curvature to improve the visual aesthetics and/or structural stability of container 1. The curvature may create an aesthetically pleasing container top, provide a user with increased leverage for opening the top, and/or prevent the container top and closure from experiencing some amount of the unavoidable contact that containers typically have with adjacent containers or other structures during manufacture, shipping, and/or use.


Referring still further to FIG. 2, body 10 is further provided with a center portion 21. In an exemplary embodiment, center portion 21 is a cylindrical portion having a diameter equal to principal diameter 12 having vertical sidewalls. In this embodiment, the center portion has a substantially circular horizontal cross section. In an exemplary twenty-six ounce embodiment, center portion 21 has a height of about 1.25 inches. In an alternative embodiment, center portion 21 is smoothly concave such that the diameter at the midpoint of center portion 21 is a minimum diameter, and the container body diameter increases in the direction of first and second protective features 24 and 26.


Center portion 21 may optionally be provided with one or more beads 70, shown as beads 70a and 70b. In an exemplary embodiment, center portion 21 is provided with two beads 70a and 70b, wherein bead 70a is positioned near the top of cylindrical center portion 21, and bead 70b is positioned near the bottom of cylindrical center portion 21. However, one or more beads 70 may be placed at other locations on center portion 21, or within the curved portions of sidewall 20 comprising the protective features described in greater detail below. For example, in the embodiments shown in FIG. 5 and FIG. 6, a third bead 70c is located in center portion 21. Beads 70 provide a contour that strengthens center portion 21, thereby increasing resistance to deformation of center portion 21 caused by the pressure differential between the internal vacuum and the external atmospheric pressure. Beads 70 may further be configured to provide a contour to facilitate the grasping of container 1 by a user.


As shown best in FIG. 3 according to one exemplary embodiment, beads 70 are provided with a smoothly curved cross sectional profile concaving radially inward. In other embodiments, beads 70 may have other cross sectional profiles, such as a sinusoidal profile, a triangular profile, or a sawtooth profile. In an exemplary embodiment, beads 70 have a depth of about 0.03 inches, a radius of approximately 0.075 inches, and form a fillet with sidewall 20 with a radius of approximately 0.065 in. In alternate embodiments, beads 70 may have a depth of about 0.02 inches or less, or about 0.04 inches or more. In still another embodiment, beads 70 may extend radially outward from cylindrical center portion 21.


According to one exemplary embodiment, as shown in FIGS. 1-3, body 10 includes two beads 70. Beads 70 are generally located symmetrically along the length of center portion 21. In an exemplary twenty-six ounce embodiment, beads 70 may be spaced about 1.02 inches apart. Applicants have found that this embodiment sufficiently strengthens center portion 21 to resist deformation caused by the pressure differential between the internal vacuum and the external atmospheric pressure. Applicants have found that this embodiment resists deformation when subjected to a vacuum of at least 22 inHg. However, beads 70 may be provided at the transitions from center portion 21 to the first and second protective features, or beads 70 may be located on the protective features. As shown in the exemplary embodiments of FIGS. 5 and 6, a third bead 70c may be provided equidistant between beads 70a and 70b. In still other exemplary embodiments, more or fewer beads may be provided and may be otherwise spaced.


Referring yet further to FIG. 2, body 10 is provided with a first feature, shown as first protective feature 24. First protective feature 24 may be any structure extending from container 1 such that the maximum width of sidewall 20 at first protective feature 24, shown as a first diameter 14, is greater than principal diameter 12. In the exemplary embodiment of FIG. 2, first protective feature 24 smoothly extends sidewall 20 radially outward relative to center portion 21 such that sidewall 20 at first protective feature 24 has a substantially circular horizontal cross section. In an exemplary embodiment, first protective feature 24 reaches a local maximum diameter at a first contact point 25. Contact between container 1 and one or more adjacent containers, shown as container 1A, is thereby limited to contact point 25. In an alternative embodiment, first protective feature 24 may include a substantially vertical portion having a constant first diameter 14 that is greater than principal diameter 12, defining a first vertical contact surface. In an exemplary embodiment, first diameter 14 is about 15 percent greater than principal diameter 12 at first contact point 25. In an exemplary twenty-six ounce embodiment, first diameter 14 is about 3.46 inches. In other embodiments, first diameter 14 may be greater than principal diameter 12 by less than 15 percent (e.g., 2 percent, 5 percent, 10 percent, 12 percent), or by more than 15 percent greater than principal diameter 12 (e.g., 18 percent, 20 percent, 25 percent, or more).


Body 10 may also be provided with at least a second feature, shown as second protective feature 26. Second protective feature 26 may be any structure extending from container 1 such that the maximum width of sidewall 20 at second protective feature 26, shown as second diameter 16, is greater than principal diameter 12. In the exemplary embodiment of FIG. 2, second protective feature 26 smoothly extends sidewall 20 radially outward relative to center portion 21 such that sidewall 20 at second protective feature 26 has a substantially circular horizontal cross section. In an exemplary embodiment, second protective feature 26 reaches a local maximum diameter at a second contact point 27. In an exemplary embodiment, second diameter 16 is equal to first diameter 14. Contact between container 1 and one or more adjacent containers 1A is thereby limited to contact points 25 and 27. In an alternative embodiment, second protective feature 26 may include a substantially vertical portion having a constant second diameter 16 that is greater than principal diameter 12, defining a second vertical contact surface.


As shown in FIG. 2, the portion of container body 10 between the maximum diameter of first protective feature 24 and the maximum diameter of second protective feature 26 is vertically symmetrical, wherein the plane of symmetry is located at the midpoint of center portion 21 and perpendicular to vertical axis 13. In addition, the portions of sidewall 20 between center portion 21 and first protective feature 24 and second protective feature 26 are shown as continuous, inwardly curved portions having a width that tapers to join center portion 21. As shown in FIG. 2, the portions of sidewall 20 between center portion 21 and first protective feature 24 and second protective feature 26 curve in toward center axis 13 such that the sidewall 20 has a concave profile.


In an exemplary embodiment, second diameter 16 is about 15 percent greater than principal diameter 12. In an exemplary twenty-six ounce embodiment, second diameter 16 is about 3.46 inches. In other embodiments, second diameter 16 may be greater than principal diameter 12 by less than 15 percent (e.g., 2 percent, 5 percent, 10 percent, 12 percent), or by more than 15 percent greater than principal diameter 12 (e.g., 18 percent, 20 percent, 25 percent, or more). In an alternative embodiment, second diameter 16 is greater than principal diameter 12 and also different than first diameter 14.


First and second protective features 24 and 26 provide limited contact surfaces between two or more adjacent containers at first contact point 25 and second contact point 27. The protective features strengthen the sidewalls of the container against side impacts, thereby improving panel resistance to denting or other compressive deformation. Any type of label or design (not shown) may be disposed on central portion 21 of sidewall 20. A label or design disposed on center portion 21 is thereby protected from abrasive contact with adjacent containers 1A during manufacturing, processing, shipping, and/or display. In an exemplary embodiment, the container may be provided with a plastic shrink sleeve. A plastic shrink sleeve may optionally extend to partially cover closure 60 and incorporate tamper evident features. In yet another embodiment, the material of container body 10 may further be painted, coated, or provided with a decorative finish.


Referring still further to FIG. 2, body 10 is provided with a second tapered transition 34 connecting second protective feature 26 to bottom seal structure 30. In an exemplary embodiment, bottom seal structure 30 has a diameter of about 3.31 inches. In a typical embodiment, second tapered transition 34 is angled from the vertical axis at an angle of about 12 degrees. However, second tapered transition 34 may be provided angles greater or lesser than 12 degrees. In an alternative embodiment, second tapered transition 34 may be approximately vertical. If second tapered transition 34 is approximately vertical, the diameter of bottom seal structure 30 is approximately equal to second diameter 16.


According to an exemplary embodiment, container 1 is formed of metal about 0.0095 inches thick and is primarily made of tin-plated steel. According to various other exemplary embodiments, container 1 is formed from steel having a working gauge range from about 0.006 inches thick to about 0.012 inches thick, or other available working ranges. According to various other alternative embodiments, container 1 may be formed of aluminum, tin free steel, and/or another material that may be used to form food or beverage containers. The material of container 1 may also be more or less thick along certain structures or locations of sidewall 20. For example, the material of sidewall 20 may be thicker at first protective feature 24 and second protective feature 26 than the remaining portions of sidewall 20, thereby strengthening container 1 at points of contact 25 and 27 with adjacent containers. In another example, in center portion 21, the material may be more thin than material closer to the top end or bottom end.


Referring yet still further to FIG. 2, container 1 is shown having a bottom seal structure 30 at the lower end of container body 10. Bottom seal structure may couple and seal a bottom end wall 32 to container body 10. According to an exemplary embodiment, bottom seal structure 30 is a double seam including folds of metal joining a bottom lip or flange of sidewall 20 and bottom end wall 32 so that a hermetic seal is created. In an alternative embodiment, sidewalls 20 and bottom end wall 32 are contiguously formed or molded from a single piece of material. According to an exemplary embodiment, bottom end wall 32 is provided with a concave recession adapted to releasably receive a closure 60. Nesting of closure 60 into bottom end wall 32 thereby facilitates the orderly vertical stacking of several containers.


According to the exemplary embodiment of FIG. 2, a container end, shown as closure 60, has a maximum container end width, shown as maximum closure diameter 65. Closure 60 is shown proximate to neck 40 in FIG. 2 in a cross sectional view to reveal several internal features, according to an exemplary embodiment. Closure 60 is shown having a closure underside or interior surface 61. Sealing material, shown as closure gasket 62, may be disposed on closure underside 61 to contact and seal against neck edge 42. According to an exemplary embodiment, closure 60 has a vacuum safety button that requires a 5 inch Hg vacuum to verify the seal is intact. According to various other exemplary embodiments, the closure may include other tamper evidencing features or no tamper evidencing features.


Closure 60 is adapted to cover and seal neck opening 48. Neck opening 48 is sized such that the maximum diameter 65 of closure 60 is less than first protective feature diameter 14, thereby protecting closure 60 from impact with adjacent containers 1A. According to an exemplary twenty-six ounce embodiment, closure 60 may have a maximum diameter of 78 millimeters. According to one alternative embodiment, closure 60 is a 67 mm diameter closure. However, closure 60 may be any size appropriate to fit differently sized neck openings, as required by variations in the neck opening and/or volumetric size of the container. In alternative embodiments, closure maximum diameter 65 is 88 percent of first protective feature diameter 14. However, closure maximum diameter 65 may be greater than 88 percent of first protective feature diameter 14 (i.e., 90 percent, 95 percent, 98 percent) or lesser than 88 percent of first protective feature diameter 14 (i.e., 85 percent, 80 percent, 70 percent), provided that external closure diameter 65 is less than first protective feature diameter 14.


According to an exemplary embodiment, closure 60 is a press-on, vacuum seal closure (e.g., a Dot Top closure). A press-on, vacuum seal closure refers to a closure that is initially coupled to a body by a press-on (i.e., placed on) movement, and is substantially retained on the body by the pressure differential between the exterior and interior of the container. A vacuum seal closure is later removed by breaking the vacuum seal formed during the filling and closing process.


Referring to FIG. 4, closure 60 may be provided with a closure skirt 67 and a closure bottom rim 64. Closure skirt 67 is a substantially vertical wall portion extending below the circumference of closure 60. The lower edge of skirt 67 terminates in a closure bottom rim 64, which may be a rolled edge, a rounded edge, or a bead of a similar or different material than skirt 67. Closure skirt 67 may be further provided with one or more lugs 63. Lugs 63 are indentations or dimples in the circumference of skirt 67 that releasably engage the outer diameter of neck edge 42, thereby mechanically coupling closure 60 to neck edge 42. After the initial vacuum seal is broken by a user, lugs 63 permit the user to reattach closure 60 by popping closure 60 over neck edge 42. A single lug 63 may extend partially or entirely around the circumference of skirt 67, or two or more discreet lugs 63 may be disposed about the circumference of skirt 67. According to an exemplary embodiment, closure skirt 67 is provided with three lugs 63, each lug having a circumferential length of about 0.3 to 0.5 inches.


According to other embodiments, closure skirt 67 and bottom rim 64 are smooth such that bottom rim portion does not have any lugs, threads, or other structures to mechanically couple closure 60 onto neck 40 and/or neck edge 42. According to various alternative embodiments, closure 60 may be a plastic closure or another closure other than metal. According to other alternative embodiments, closure 60 may be a press-on, twist-off type metal closure (i.e., push-on/twist-off cap, etc.). A press-on, twist-off closure refers to a closure that is initially coupled to a body by a press-on (i.e., push-on) movement, but then is later removed or reattached to threads configured on neck 40 by a twisting motion.


Referring again to FIG. 2, according to an exemplary embodiment, the metal of closure 60 is between about 0.006 inches and about 0.012 inches thick. Closure underside 61 may be coated with a gasket or gasket material 62. According to an exemplary embodiment, gasket 62 is a plastisol material or compound applied to closure underside 61. Materials other than plastisol may serve as the gasket. Plastisol may provide sufficient resistance to acids of food products that may come into contact with the plastisol, may permit hot-fill processes to produce a vacuum, and may withstand a heat-based commercial sterilization or cooking process. A sufficient amount of the gasket material coats closure underside 61. The plastisol compound need not contain preformed indents or receiving structures. Rather, steam or another application of heat is used to soften the plastisol material prior to pressing closure 60 onto neck 40 and neck edge 42 of the container. The difference between the diameter of the gasket material and the structure of neck edge 42 cause the softened gasket 62 to move and flow around neck edge 42 so that the interface between neck edge 42 and closure underside 61 forms a hermetic seal. Following cooling of the plastisol, the plastisol stiffens or hardens to create a resilient foam that maintains the hermetic seal without any additional mechanical restraint.


According to an exemplary embodiment, gasket 62 specifically comprises a plastisol compound that may be characterized as a “508 compound” or similar material. Gasket 62 may be a liquid applied gasket or any other suitable gasket material. Material comprising gasket 62 may alternatively or additionally be applied to neck edge 42 prior to coupling with closure 60.


The user of various exemplary embodiments of a container described throughout this application may open the container by applying a lifting force to a point on the circumference of closure bottom rim 64. Closure 60 will thereby be directed upward relative to body 10, breaking the vacuum seal and releasing closure 60 from body 10. In an alternative embodiments, a pressure release hole 66 and plug 68 (e.g., a Dot Top) may optionally be incorporated into closure 60 to provide an alternate method of breaking the vacuum seal and releasing closure 60 from body 10.


As shown in the exemplary embodiments of FIGS. 2, 5 and 6, container 1 may be sealed with a wide variety of container ends. Referring to FIG. 5, a container end, shown as a sanitary can end 80, is coupled to neck 40. Sanitary can end 80 is coupled to neck 40 by folding together material from the edge of sanitary can end 80 with material from neck 40 and then crimping or pressing the folded material to form a seam (e.g., a double seam). Sanitary can end 80 may be coupled to neck 40 in any other way that hermetically seals container 1. Sanitary can end 80 may be removed using a tool such as a can-opener to access the contents of container 1.


Referring to FIG. 6, a container end, shown as pull off end 90, is coupled to neck 40. Pull off end 90 includes a tab or ring 92 that allows pull off end 90 to be removed without a tool such as a can-opener. Pull off end 90 may be coupled to neck 40 by the formation of a seam (e.g. a double seam) or any other way that hermetically seals container 1. Pull off end 90 may also include structures (e.g., a score, thin connecting metal, etc.) to aid in the removal of pull off end 90. In another exemplary embodiment, pull off end 90 may be an “EZO” convenience end, sold under the trademark “Quick Top” by Silgan Containers Corp.


In an alternative exemplary embodiment, pull off end 90 may include a thin sheet or membrane attached to a flange extending from the inner surface of container 10. The flange may be perpendicular to the inner surface of container 10. In other exemplary embodiments, the flange may extend from the inner surface of container 10 such that the flange forms an angle greater than or less than 90 degrees with the inner surface of container 10. According to this embodiment, the pull off end 90 may be attached to the lip or flange with an adhesive or other suitable material such that pull off end 90 seals container 10. The pull off end 90 may be made of metal foil, plastic, or other suitable material.


Container 1 may be formed by stretching, rolling, welding, molding, or any other forming process. During the manufacturing process, the container may also be washed and coated as required for workability, cleanliness of the container, and longevity of the container surfaces when subjected to container contents, liquids, and/or air.


According to an exemplary embodiment, the container may be a three-piece can wherein a flat blank or sheet of material is shaped or bent until a first side and a second side of the shaped sheet may be welded together. According to an exemplary embodiment, container 10 may be formed using a “Stretch Machine 2” made by Indústria de Máquinas Moreno Ltda. According to various alternative embodiments, although the container includes a closure at the top end, and a bottom end part at the bottom end, the container embodies a 2-piece can in that one continuous blank of material forms the container body, neck, and protective features and a vertical seam or weld line does not run down the side wall of the container.


According to an exemplary embodiment, the container may include a liner (e.g., an insert, coating, lining, etc.) positioned within the interior chamber of the container. The liner may protect the material of the container from degradation that may be caused by the contents of the container. In an exemplary embodiment, the liner may be a coating that may be applied via spraying or any other suitable method. According to an exemplary embodiment, the interior surface container material is pre-coated before the forming process. According to various other exemplary embodiments, the interior and/or exterior of the container are coated with a preservative organic coating after the container is formed or substantially formed. Different coatings may be provided for different food applications. For example, the liner or coating may be selected to protect the material of the container from acidic contents, such as carbonated beverages, tomatoes, tomato pastes/sauces, etc. The coating material may be a vinyl, polyester, epoxy, and/or other suitable preservative spray. The coating, for example, may be a spray epoxy such as PPG Z12215L, sold by PPG Industries, Inc. According to other embodiments, the coating may be a coating such as sold by Valspar Coatings (e.g., coating number 6256-069, etc.).


According to various other embodiments, a container kit may be provided utilizing various containers and closures described herein. A container kit may comprise a container body, blanks used to form a container body, a closure, and/or gasket material.


Processing may include steps of controllably ramping up temperature, cooking, and then controllably bringing temperature down or dropping temperature. As the container and the food inside the container are heated, the food is commercially sterilized (made shelf-stable) so that the food does not bacteriologically spoil.


According to an exemplary embodiment, a container as described herein may be used with a hot fill process. In a hot fill process, hot food is added to a container and a closure 60 is coupled to body 10 at neck edge 42. Gasket 62 may be pre-warmed to soften the gasket material, or it may be warmed by contact with a hot container. When closure 60 is coupled to body 10, a seal is formed by the gasket material deforming and flowing around neck edge 42. As the gasket cools, it hardens and forms around neck edge 42 and resembles a resilient foam. As the container begins cooling, a negative pressure relationship or a vacuum develops on the container interior. A strong vacuum (e.g., 19 inHg to 22 inHg) is thereby formed between closure 60 and container body 10 that holds the closure onto the body and maintains the hermetic seal. According to various other exemplary embodiments, a weaker or stronger vacuum sufficient to maintain lid to container integrity may be created and maintained. Control of product characteristics (e.g. air content, temperature), closure conditions, overall container temperature, container headspace, steam supplementation, and thermal process conditions may be used to yield a weaker or stronger vacuum.


The container disclosed herein may be further subjected to a thermal process. A thermal process may generally be characterized as a process of subjecting the filled and closed container to a cooking or sterilization process within a closed or open vessel containing a heating medium having different heat, time, and pressure variables sufficient to substantially sterilize the interior and contents of the food container. In an exemplary embodiment, the thermal processes is an overpressure thermal retort process, where pressure outside the container is substantially matched or slightly exceeded relative to the pressure that builds on the inside of the container due to heating a sealed container. Overpressure thermal retort processes may generally include inserting a filled and closed container (or group of containers) into a retort vessel that heats the container via steam, water, steam/air, or a combination of steam and water or steam and air and provides external overpressure to prevent container deformation, breakage, or separation of closure 60 from body 10 due to pressure build-up inside the container.


During a thermal retort process, the container and the food inside the container will be brought to a temperature of about at least 200 degrees Fahrenheit. According to various exemplary embodiments, a thermal retort process may include bringing the container to a temperature of between 220 degrees Fahrenheit and 275 degrees Fahrenheit. According to yet other embodiments, a thermal retort process includes bringing the container to a temperature of at least 240 degrees Fahrenheit. According to an exemplary embodiment, the container and closure should be able to withstand a thermal retort process of about 250 degrees Fahrenheit with about 32 pounds per square inch of total pressure (15 psi process pressure plus 17 psi overriding pressure) for a period of about 45 minutes and a 3 pounds per square inch differential between overriding pressure and internal pressure.


The specifications of the thermal retort process will vary depending on the food being cooked, heating medium, the machinery (e.g., retort vessel) being used, the amount of agitation used with the heat, and any number of other variables. It may be desirable to cook different types of food to certain different minimum temperatures for certain different minimum amounts of time to ensure commercial sterilization or “shelf stability”. A container and closure of the present application should be able to withstand a variety of typical temperature, time, and pressure levels such that the container may be considered suitable for use with a thermal retort process for a wide variety of foodstuffs, including, for example, adult nutritional drinks, to those skilled in the art of food sterilization using a retort process.


In another embodiment, a container as described herein may be used with a non-thermal process. In a non-thermal process, food is added to a container at an ambient temperature, such as 65 degrees Fahrenheit. The container and contents are subjected to a strong vacuum (e.g., 19 inHg to 22 inHg), and a closure is attached to the container. Gasket 62 may be pre-warmed to soften the gasket material. When closure 60 is coupled to body 10, a seal is formed by the gasket material deforming and flowing around neck edge 42. As the gasket cools, it hardens and forms around neck edge 42 and resembles a resilient foam. After the seal is formed, the pressure outside the container may be returned to a standard atmospheric pressure. The closure and seal preserve the vacuum inside the container, thereby retaining the closure against the body until the vacuum seal is broken.


While the exemplary embodiments illustrated in the figures and described herein are presently preferred, it should be understood that these embodiments are offered by way of example only. Accordingly, the present application is not limited to a particular embodiment, but extends to various modifications that nevertheless fall within the scope of the appended claims. The order or sequence of any processes or method steps may be varied or re-sequenced according to alternative embodiments.


It is important to note that the construction and arrangement of the container as shown in the various exemplary embodiments is illustrative only. Although only a few embodiments have been described in detail in this disclosure, those skilled in the art who review this disclosure will readily appreciate that many modifications are possible (e.g., variations in sizes, dimensions, structures, shapes and proportions of the various elements, values of parameters, mounting arrangements, use of materials, colors, orientations, etc.) without materially departing from the novel teachings and advantages of the subject matter recited in the claims. For example, elements shown as integrally formed may be constructed of multiple parts or elements, the position of elements may be reversed or otherwise varied, and the nature or number of discrete elements or positions may be altered or varied. Accordingly, all such modifications are intended to be included within the scope of the present application. Other substitutions, modifications, changes and omissions may be made in the design, operating conditions and arrangement of the exemplary embodiments without departing from the scope of the present application.

Claims
  • 1. A container comprising: a metal body, the metal body comprising: a center portion having a principal width, an upper end, a lower end, and a midpoint, wherein the center portion includes a vertical sidewall portion;a first feature that extends beyond the principal width;a second feature that extends beyond the principal width;a first body segment between the upper end of the center portion and the first feature;a second body segment between the lower end of the center portion and the second feature;a first circumferential bead positioned entirely within the vertical sidewall portion of the center portion, wherein the first bead is positioned between the midpoint and the upper end of the center portion such that the distance from the midpoint to the first bead is greater than the distance from the upper end to the first bead; anda second circumferential bead positioned entirely within the vertical sidewall portion of the center portion, wherein the second bead is positioned between the midpoint and the lower end of the center portion such that the distance from the midpoint to the second bead is greater than the distance from the lower end to the second bead; anda container end coupled to the metal body;wherein the center portion is located between the first feature and the second feature, and further wherein the first body segment and the second body segment are inwardly curved portions.
  • 2. The container of claim 1, wherein the first body segment and the second body segment are continuous, inwardly curved portions.
  • 3. The container of claim 1, wherein the distance between the first bead and the midpoint of the center portion is equal to the distance between the second bead and the midpoint of the center portion.
  • 4. The container of claim 1, wherein the center portion is a cylindrical center portion, and further wherein the first bead and the second bead are radially inwardly extending beads that extend continuously around the entire circumference of the center portion.
  • 5. The container of claim 1, wherein the container end is a closure.
  • 6. The container of claim 5, wherein the closure is coupled to the metal body by atmospheric pressure.
  • 7. The container of claim 5, the closure having an inner surface and an outer surface, wherein the closure further comprises a sealing material located on an inner surface of the closure, the sealing material forming a seal with a neck of the metal body when the closure is coupled to the metal body.
  • 8. The container of claim 1, wherein the container end is a sanitary end.
  • 9. The container of claim 1, further comprising a tab coupled to the container end.
  • 10. The container of claim 1, wherein the container end is a pull off end.
  • 11. The container of claim 1, wherein the container end is made of metal.
  • 12. A metal food can having an internal vacuum such that there is a pressure differential between the interior of the container and atmospheric pressure after filling and sealing, the metal food can comprising: a metal body comprising: a body upper end;a body lower end, the body lower end opposing the body upper end;a center portion having a principal width, an upper end, a lower end, a midpoint, and a vertical sidewall;a first feature that extends beyond the principal width;a second feature that extends beyond the principal width;a first body segment extending from the upper end of the center portion to the first feature, wherein the first body segment is an inwardly curved segment, wherein the width of the first body segment increases as the distance from the upper end of the center portion increases;a second body segment extending from the lower end of the center portion to the second feature, wherein the second body segment is an inwardly curved segment, wherein the width of the second body segment increases as the distance from the lower end of the center portion increases;a first bead positioned in the central portion of the body, wherein the first bead is positioned above the midpoint of the center portion and below the beginning of the first body segment and located entirely within the vertical sidewall of the center portion,wherein the first bead is a radially inwardly extending bead that extends continuously around the entire center portion; anda second bead positioned in the center portion of the body, wherein the second bead is positioned below the midpoint of the center portion and above the beginning of the second body segment and located entirely within the vertical sidewall of center portion,wherein the second bead is a radially inwardly extending bead that extends continuously around the center portion; andwherein the body upper end is configured to be coupled to an upper can end and the body lower end is configured to be coupled to a lower can end;wherein the body upper end has a first diameter and the body lower end has a second diameter;wherein the first feature and the second feature extend beyond the diameters of the body upper end and the body lower end;wherein the first bead and the second bead strengthen the center portion against the internal vacuum.
  • 13. The metal food can of claim 12, comprising: a first transition section extending radially inward from the first feature to the body upper end; anda second transition section extending radially inward from the second feature to the body lower end.
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS

This application is a continuation-in-part of the prior application Ser. No. 12/040,609, filed Feb. 29, 2008, which is incorporated herein by reference in its entirety. This application is also a continuation-in-part of prior design Application No. 29/304,271 filed Feb. 27, 2008.

US Referenced Citations (276)
Number Name Date Kind
D2820 Barry Nov 1867 S
D22751 Lanning Aug 1893 S
D24991 Estes Dec 1895 S
D25941 Lindgren Aug 1896 S
566067 Duck Aug 1896 A
D28732 Cook May 1898 S
D28842 Griffith Jun 1898 S
D38167 Wintermann Aug 1906 S
829477 Kruse Aug 1906 A
1013775 Hoffman Jan 1912 A
D56181 Lewis Aug 1920 S
D67869 Boswell Jul 1925 S
D73511 Schrader Sep 1927 S
1706638 Thomas Mar 1929 A
1773278 Reid Aug 1930 A
1832806 Dawson Nov 1931 A
D98420 Deskey Feb 1936 S
D101728 Bennett Oct 1936 S
2063013 Cooper Dec 1936 A
2142743 Calleson et al. Jan 1939 A
D120226 Lundy Apr 1940 S
D120587 Hinkins May 1940 S
D124645 Palmer Jan 1941 S
D124880 Teunisz Jan 1941 S
2252915 Conill Aug 1941 A
D129604 Forgue Sep 1941 S
2868410 Henchert Jan 1959 A
D185649 Schlumbohm Jul 1959 S
3170590 Ullman et al. Feb 1965 A
D201400 Elgin Jun 1965 S
3297194 Schaper et al. Jan 1967 A
D207133 Stenger Mar 1967 S
3317110 Palmer May 1967 A
3349987 Weitzner Oct 1967 A
D212525 Kneapler Oct 1968 S
3448891 Czarnecki Jun 1969 A
3648884 Mansolino Mar 1972 A
D224516 Amberg Aug 1972 S
D224642 Mascia et al. Aug 1972 S
D226175 Bystedt et al. Jan 1973 S
D226176 Bystedt et al. Jan 1973 S
D227863 Mascia Jul 1973 S
D227868 Stanley et al. Jul 1973 S
D228229 Mascia Aug 1973 S
D231087 Edwards Apr 1974 S
D231773 Mascia Jun 1974 S
D234251 Edwards Feb 1975 S
D235184 Achenbach May 1975 S
D237853 Katz Dec 1975 S
3949877 Santoni Apr 1976 A
4010860 Garber Mar 1977 A
D249111 Geyer Aug 1978 S
D252798 Vosti et al. Sep 1979 S
4512490 Frei et al. Apr 1985 A
D288527 Maguire Mar 1987 S
D299426 Andersson et al. Jan 1989 S
4804105 Zysset et al. Feb 1989 A
4846366 Satz Jul 1989 A
4880131 Gallagher et al. Nov 1989 A
D307238 May Apr 1990 S
4936482 Gallagher et al. Jun 1990 A
4938051 Duffy et al. Jul 1990 A
D317405 Yasika Jun 1991 S
5040698 Ramsey et al. Aug 1991 A
D319580 Cassai et al. Sep 1991 S
D320153 Cassai et al. Sep 1991 S
5052573 Zysset Oct 1991 A
5065888 Gallagher Nov 1991 A
D323290 Keedy, Jr. Jan 1992 S
5103995 Gallagher Apr 1992 A
D329597 Gallagher et al. Sep 1992 S
5152417 Gallagher Oct 1992 A
5240138 Gallagher Aug 1993 A
D345105 Ramsey Mar 1994 S
5316169 Gallagher May 1994 A
D352898 Vacher Nov 1994 S
D355129 Gruodis Feb 1995 S
D355368 Gruodis Feb 1995 S
D357413 Kornick et al. Apr 1995 S
D357414 Kornick et al. Apr 1995 S
D365021 Park Dec 1995 S
D367426 Ruff Feb 1996 S
D373084 Choi Aug 1996 S
D378572 Culverwell et al. Mar 1997 S
D379589 Rhodes et al. Jun 1997 S
D381259 Hayes Jul 1997 S
D383037 Asberg Sep 1997 S
5711448 Clarke, III Jan 1998 A
5720412 Ficken Feb 1998 A
D392566 Vahjen et al. Mar 1998 S
5722561 Biondich et al. Mar 1998 A
5749488 Bagwell et al. May 1998 A
D398531 De Vries Sep 1998 S
D399129 Ramsey Oct 1998 S
D399425 Ramsey Oct 1998 S
D399428 Ramsey Oct 1998 S
D399429 Ramsey Oct 1998 S
D399430 Ramsey Oct 1998 S
D399753 Ramsey Oct 1998 S
D401152 DeVore et al. Nov 1998 S
D403962 Ramsey Jan 1999 S
D403963 Ramsey Jan 1999 S
D404254 Asberg Jan 1999 S
D404970 Asberg Feb 1999 S
D406065 Cheng Feb 1999 S
D406236 Brifcani et al. Mar 1999 S
D408221 Asberg Apr 1999 S
D409496 Ramsey May 1999 S
D411106 Conrad Jun 1999 S
D412118 Rodea Jul 1999 S
D412441 Cheng et al. Aug 1999 S
D413519 Eberle et al. Sep 1999 S
5957647 Hinton Sep 1999 A
D414693 Cheng et al. Oct 1999 S
D416200 Pavely et al. Nov 1999 S
5988416 Cheng et al. Nov 1999 A
5988417 Cheng et al. Nov 1999 A
D417392 Zhang Dec 1999 S
D419058 Roth et al. Jan 2000 S
D419444 Zhang Jan 2000 S
6012601 Van Dam Jan 2000 A
D419886 Gans Feb 2000 S
D420587 Cheng et al. Feb 2000 S
D421393 Pavely et al. Mar 2000 S
D421720 Eberle et al. Mar 2000 S
D421907 Benge et al. Mar 2000 S
D423336 Gray Apr 2000 S
D423365 Eberle et al. Apr 2000 S
D425424 Cheng et al. May 2000 S
6062409 Eberle May 2000 A
D426164 Gans et al. Jun 2000 S
D427057 Roth et al. Jun 2000 S
D427514 Roth et al. Jul 2000 S
D427515 Roth et al. Jul 2000 S
D427905 Eberle Jul 2000 S
6092688 Eberle et al. Jul 2000 A
D429151 Cheng et al. Aug 2000 S
D429164 Peek et al. Aug 2000 S
6095360 Shmagin et al. Aug 2000 A
6123211 Rashid et al. Sep 2000 A
D431465 Cheng et al. Oct 2000 S
D431470 Henderson Oct 2000 S
D432423 Rashid Oct 2000 S
D432424 Andrew Oct 2000 S
6131761 Cheng et al. Oct 2000 A
D435455 Gans Dec 2000 S
6161713 Krich Dec 2000 A
6164474 Cheng et al. Dec 2000 A
6164480 Heinicke et al. Dec 2000 A
D437229 Andrew Feb 2001 S
D437230 Andrew Feb 2001 S
6206222 Cudzik Mar 2001 B1
D440498 Buxton et al. Apr 2001 S
6213325 Cheng et al. Apr 2001 B1
6220475 Nayar et al. Apr 2001 B1
D441295 Krich May 2001 S
6230912 Rashid May 2001 B1
D445339 Bazlur Jul 2001 S
D445693 Rashid Jul 2001 S
D445694 Gans Jul 2001 S
D446455 McGowan Aug 2001 S
D446458 Gans Aug 2001 S
D447061 Peek Aug 2001 S
6280679 Rashid et al. Aug 2001 B1
D447422 Peek Sep 2001 S
D447693 Warner et al. Sep 2001 S
D448302 Cheng et al. Sep 2001 S
D448303 Cheng et al. Sep 2001 S
D448304 Cheng et al. Sep 2001 S
6294131 Jaffrey Sep 2001 B1
D448666 Fields Oct 2001 S
D448671 Gans et al. Oct 2001 S
D448672 Cheng et al. Oct 2001 S
D448675 Thierjung Oct 2001 S
D448677 Krich Oct 2001 S
D449539 Lakatosh et al. Oct 2001 S
D449993 Schumann Nov 2001 S
D450244 Rashid Nov 2001 S
6321927 Cavella Nov 2001 B2
D453003 Rashid Jan 2002 S
6341709 Wilson Jan 2002 B1
6347717 Eberle Feb 2002 B1
D454073 Crawford Mar 2002 S
6354458 Policappelli Mar 2002 B1
D455656 Gans et al. Apr 2002 S
6374657 Kirk et al. Apr 2002 B1
D456712 Krich May 2002 S
D457435 Rashid May 2002 S
6398052 Cheng et al. Jun 2002 B1
6419874 Rashid et al. Jul 2002 B2
D464569 Moore et al. Oct 2002 S
D465158 Peek et al. Nov 2002 S
D465418 Thierjung Nov 2002 S
D466019 Thierjung et al. Nov 2002 S
D466021 Thierjung et al. Nov 2002 S
D466024 Thierjung et al. Nov 2002 S
D466813 Thierjung et al. Dec 2002 S
D466817 Thierjung et al. Dec 2002 S
D469360 Moore et al. Jan 2003 S
6575684 Heinicke et al. Jun 2003 B2
D476889 Fields Jul 2003 S
D476896 Cheng et al. Jul 2003 S
6585125 Peek Jul 2003 B1
D478286 Futral et al. Aug 2003 S
D478287 Corker et al. Aug 2003 S
D479999 Moore Sep 2003 S
D480650 Moore et al. Oct 2003 S
D480956 Mooney et al. Oct 2003 S
D480957 Mooney et al. Oct 2003 S
D481317 Corker et al. Oct 2003 S
D484808 Thierjung et al. Jan 2004 S
D485182 Gaydon Jan 2004 S
6685417 Heinicke et al. Feb 2004 B2
D489983 Futral et al. May 2004 S
D489984 Futral et al. May 2004 S
D491288 Young Jun 2004 S
D493370 Kamineni et al. Jul 2004 S
D494475 Thierjung et al. Aug 2004 S
6769561 Futral et al. Aug 2004 B2
D498143 Rashid Nov 2004 S
6877607 Jenkins Apr 2005 B2
6889862 Vaughan May 2005 B2
D507485 Fields Jul 2005 S
D510024 Jacober et al. Sep 2005 S
D511458 Dunwoody et al. Nov 2005 S
D512917 Frisch et al. Dec 2005 S
D517417 Livingston et al. Mar 2006 S
D522371 Livingston Jun 2006 S
D523341 Livingston et al. Jun 2006 S
D523347 Livingston Jun 2006 S
D525129 Hutter et al. Jul 2006 S
D525139 Livingston et al. Jul 2006 S
D525530 Livingston et al. Jul 2006 S
7108469 Jenkins Sep 2006 B2
7112771 Richardson et al. Sep 2006 B2
D530614 Gatewood Oct 2006 S
D532306 MacLeod et al. Nov 2006 S
7134565 Wan et al. Nov 2006 B1
D533783 Klinger et al. Dec 2006 S
D534079 Livingston Dec 2006 S
D534428 Reed et al. Jan 2007 S
D536262 Ioannides et al. Feb 2007 S
D536263 Ioannides et al. Feb 2007 S
D536264 Ioannides et al. Feb 2007 S
D538645 McDowell et al. Mar 2007 S
D538646 McDowell et al. Mar 2007 S
D538660 Gatewood Mar 2007 S
7198168 Mizuma Apr 2007 B2
D542130 McDowell et al. May 2007 S
D542650 McDowell et al. May 2007 S
D543845 Ioannides et al. Jun 2007 S
D546183 Clutter Jul 2007 S
7243808 Livingston et al. Jul 2007 B2
D548111 Ioannides et al. Aug 2007 S
D549596 Ioannides et al. Aug 2007 S
D559120 Farrow et al. Jan 2008 S
D559121 Farrow et al. Jan 2008 S
D562685 Millspaw et al. Feb 2008 S
D588019 Diss Mar 2009 S
D588936 Ioannides et al. Mar 2009 S
20010002671 Heinicke et al. Jun 2001 A1
20010009107 Cheng et al. Jul 2001 A1
20010009244 Cheng et al. Jul 2001 A1
20020172578 Heinicke et al. Nov 2002 A1
20050082299 Jenkins Apr 2005 A1
20060131257 Gatewood et al. Jun 2006 A1
20060186082 Gatewood et al. Aug 2006 A1
20070012648 Gatewood Jan 2007 A1
20070045218 Afandyan Mar 2007 A1
20070068943 Ramsey et al. Mar 2007 A1
20070090120 Bezek Apr 2007 A1
20070102425 Richardson et al. May 2007 A1
20070108196 Richardson et al. May 2007 A1
20070108197 Richardson et al. May 2007 A1
20070108198 Richardson et al. May 2007 A1
20070138181 Heinicke et al. Jun 2007 A1
Foreign Referenced Citations (3)
Number Date Country
DM046294 Oct 1998 BE
2584680 Jan 1987 FR
DM051799 Mar 2000 FR
Related Publications (1)
Number Date Country
20090212004 A1 Aug 2009 US
Continuation in Parts (2)
Number Date Country
Parent 12040609 Feb 2008 US
Child 12098300 US
Parent 29304271 Feb 2008 US
Child 12040609 US