Insulating cup wrapper and insulated container formed with wrapper

Information

  • Patent Grant
  • 8960528
  • Patent Number
    8,960,528
  • Date Filed
    Thursday, July 14, 2005
    19 years ago
  • Date Issued
    Tuesday, February 24, 2015
    9 years ago
Abstract
A thermally insulated cup is formed from a single-walled paper or plastic inner cup and an insulating outer wrapper. The insulating outer wrapper comprises a paper base sheet or outer sidewall blank, optionally printed on one side, and a corrugated paper or foamed plastic insulating insert. The insulating insert is similar in shape to the outer sidewall blank but smaller in size. The insert is glued in a centered position to the non-printed side of the sidewall blank to form a two-layered insulating wrapper. Less than 20% of the area of the insert is glued to the base sheet. Specifically, no glue is applied to the area adjacent to the cut side edges of the insert, and as such these edges are not attached to the base sheet. The wrapper is then wrapped around the single walled inner cup. The side edges of the base sheet of the wrapper overlap and are sealed directly together to form a side seam. The side seam is itself adhesively secured to the side wall of the inner cup. The side edges of the insert do not come between the seal between the side seam of the base sheet and the inner cup. The wrapper can also be adhered to the inner cup by one or more beads of cold glue (paste adhesive) or a thin layer of polyethylene (or similar heat sealing material) can be pre-applied to the inside cut edges of the base sheet. This is then heat-activated immediately prior to wrapping the wrapper around the inner cup, and pressing the overlapping side seam to the sidewall of the inner cup to simultaneously glue the side seam together, and to glue the insulating wrapper to the side wall of the cup.
Description
BACKGROUND

1. Field of Invention


This invention relates generally to insulating disposable cups and containers, specifically to insulating wrappers, methods for producing insulating wrappers, and methods for making insulated containers with insulating wrappers.


2. Prior Art


Many types of cups and containers are available, each with a specific set of characteristics relating to print quality, rigidity, insulation, biodegradability, recyclability, clarity, permeability, microwavability, and shelf life, among other characteristics. Many types of cups have desirable features and benefits in one or more areas, but undesirable features in other areas.


E.g., cups made from expanded polystyrene (EPS), well known in the art, are excellent thermal insulators and maintain the temperature of a drink, whether hot or cold, for a long period of time. They also provide a barrier between the hot or cold temperature of the product and the user's hand. However EPS cups are generally considered environmentally unfriendly because they are not biodegradable. As a result, their use has been banned in some municipalities. Also, in order to print EPS cups a slow and costly off-line printing process must be used because the cups must be printed after they have been formed, and their relatively rough surface does not permit high-resolution printing.


Standard single-wall paper containers, also well known in the art, are generally considered to be more environmentally friendly than EPS cups, but they have poor insulating qualities. As such, many coffee shops resort to double cupping, which is the practice of serving a hot beverage in two stacked single-wall paper cups in order to provide some level of insulation. This is a very expensive and wasteful. Alternatively, designers have provided a number of cup sleeves which are wrapped around a single wall paper cup to provide insulation to keep drinks hot and hands comfortable; see, e.g., U.S. Pat. No. 5,205,473 to Coffin (1993), U.S. Pat. No. 5,794,843 to Sanchez (1998), and U.S. Pat. No. 6,277,454 to Neale et al (2001). One of the shortcomings of cup sleeves is that they must be assembled and/or placed onto the cup when the beverage is served. This requires extra labor and slows the speed of service. Also the need for cups and sleeves require additional and simultaneous purchasing, additional storage space, and additional inventory management. Cup sleeves also have a tendency to fall off of the cups, do not conveniently fit in all vehicle cup holders, and cover the graphics printed on the cup.


Single-wall plastic cups made from materials such as polyethylene terephthalate (PET), polystyrene (sometimes called PETE), (PS), polypropylene (PP), and high density polyethylene (HDPE) are well known in the art, and are formed through either thermoforming or injection molding processes. Plastic cups are aesthetically pleasing and can be made with high barrier properties to offer longer shelf life to the products that they contain. A barrier material called EVOH (Ethylene Vinyl Alcohol Polymer) can also be added to provide a better oxygen barrier. A cup made from a thick layer of HDPE will provide a significant moisture barrier. Plastic cups made with both HDPE and EVOH are resistant to both moisture and oxygen to provide extended shelf life to the products they contain. Some types of plastic cups, such as those made from polypropylene, are resistant to high levels of heat and as such are microwavable. Also, plastic cups do not have a seam area, which makes them relatively leak proof. However plastic cups must be printed off-line after the cup is formed, which is an expensive process and limits the graphic capabilities. Another problem is that these cups are poor thermal insulators. They will loose their heat or cool very quickly, and are uncomfortable to carry when holding hot or cold contents. Another deficiency is that their sidewall rigidity strength is poor.


Multi-layered paper cups have been designed to provide thermal insulation and increased strength. U.S. Pat. No. 3,908,523 to Shikaya (1975), U.S. Pat. No. 5,205,473 to Coffin (1993), U.S. Pat. No. 5,547,124 to Mueller (1996), U.S. Pat. No. 5,685,480 Choi (1997), U.S. Pat. No. 5,769,311 Morita et al. (1998), U.S. Pat. No. 5,775,577 Titus (1998), U.S. Pat. No. 6,039,682 Dees et al. (2000) and U.S. Pat. No. 6,253,995 Blok et al. (2001) all show multilayered cups with at least three layers, which include some form of an inner cup made from paper and an outer cover or wrapper to provide insulation. The wrapper comprises a multi-ply sheet consisting of at least one base sheet, and at least one corrugated or embossed sheet adhered to the base sheet. Although thermally insulated and strong, these cups are expensive to manufacture because the corrugated or embossed sheet must be adhered to cover the entire surface of the base sheet through a lamination process. This is a process whereby adhesive, such as hot melt or heated polyethylene, or a paste adhesive such as a starch based cold glue, is applied either to the surface of the embossed sheet and/or the base sheet and the two sheets are pressed together forming a multi-ply insulating sheet. The wrapper is then cut out (a process called blanking) of this multi-ply sheet and wrapped around and adhered to an inner cup. The process of laminating the sheets together is expensive and wasteful. There is a significant amount of value-added multi-ply sheet trim scrap which is wasted when blanking the wrapper. There is also a significant amount of adhesive used to secure the embossed sheet across the entire surface of the base sheet, which is typically done along all of the tips of the corrugations or embossments. The printing process is expensive because either the base sheet must be printed prior to laminating, which causes significant registration and distortion issues after the sheets are laminated together, or the multi-ply sheet is printed after the sheets are laminated, which is difficult because of the thickness and stiffness of the multiply sheet and the excess compressibility of the sheet. In any event, it is very difficult to offer high quality printing at a cost effective price on these types of insulated cups. Finally it is difficult to wrap or bend the multi-ply laminated wrapper around an inner cup because of the limited flexibility of thick laminated paperboard.


The insulated cups of U.S. Pat. No. 5,660,326 to Varano and Sadlier (the present inventor) (1997), and U.S. Pat. No. 6,085,970 to Sadlier (2000) have overcome these deficiencies. These cups have gained widespread acceptance in the market and many millions have been sold throughout the world. Although the cups of these two patents are major improvements, I have discovered that both the cups and their manufacturing processes can be improved even further. Since the inner cup and the outer layer are made from a continuous blank, these two parts are made from the same material. This is disadvantageous since the inner layer must be made from expensive polyethylene coated board for waterproofing and thus the outer layer must also be made from this same expensive material. Also, since the inner and outer layers are made from the same blank, the entire blank, rather than just the outer portion of the blank, must be passed through a printing press, which is a relatively expensive processing operation. The sidewall blank must also be folded in order to form the inner and outer layers of the cup from the same elongated blank. The process of folding the blank is an expensive additional step which requires precise registration.


OBJECTS AND ADVANTAGES

Accordingly, several objects and advantages of the invention are to provide an improved cup that has (a) improved thermal insulating properties and rigidity. Also it can (b) be made of less costly materials, (c) be made more leak resistant, (d) extend the shelf life of the drink it contains, (e) be microwaved, (f) be made with recycled materials, (g) be made from the most economical materials for each part to save costs, (h) be printed more economically, (i) be made without folding, and (j) be assembled at very rapid speed with high-speed fabrication machinery. Further objects and advantages will be apparent from a consideration of the ensuing description and accompanying drawings.


SUMMARY

In accordance with one embodiment of the invention, a thermally insulated container is formed from a single-walled paper or plastic inner cup and an insulating outer wrapper. The insulating outer wrapper comprises a paper base sheet or outer sidewall blank, optionally printed on one side, and a corrugated paper insert. The insert is similar in shape to the outer sidewall blank but its size is smaller than that of the sidewall blank. The insert is glued in a centered position of the non-printed side of the sidewall blank to form a two-layered insulating wrapper. The two-layered wrapper is then wrapped around a single walled inner cup, which is positioned on a forming mandrel for support, with the insert to the inside and the printed side of the blank to the outside. The side edges of the wrapper overlap and are sealed together to form a side seam. The insert or the side seam is itself adhesively secured to the inner cup. The manufacturer can use other methods to adhere the inner cup to the wrapper. E.g., they can use one or more beads of cold glue (paste adhesive). Also they can pre-apply a thin layer of polyethylene (or similar heat sealing material) to the inside cut edges of the sidewall blank. This is then heat-activated-immediately prior to wrapping the wrapper around the inner cup, and pressing the overlapping side seam to the sidewall of the inner cup to glue it in place.





DRAWINGS
Figures


FIG. 1 is a perspective view of a prior-art plain single-walled paper or plastic cup.



FIG. 2 is a plan view of a flat paper base sheet used in an outer wrapper according to the invention.



FIG. 3A is a plan view of a corrugated paper insert which is attached to the base sheet.



FIG. 3B is an edge view of the corrugated paper insert of FIG. 3A.



FIG. 4A is a view of an outer wrapper consisting of an assembly of the base sheet and corrugated insert.



FIG. 4B is an edge view of the outer wrapper.



FIG. 5 is a perspective view of the outer wrapper being wrapped around a cup.



FIG. 6A is an elevational view of the wrapped cup and FIG. 6B is a sectional view taken as indicated by lines 6B-6B in FIG. 6A.



FIG. 7 is a perspective view of the outer wrapper being wrapped around a cup with a foamed plastic insert.



FIG. 8A is a view of an outer wrapper consisting of an assembly of the base sheet and corrugated insert, with glue spots applied to the insert for attaching the wrapper to the cup.



FIG. 8B is a cross-sectional view from above of the seam area of a cup showing part of the wrapper of FIG. 8A attached to the cup.





DRAWINGS
Reference Numerals

















10 side wall
10R upper rim



10B bottom
12 base sheet



12G glue spot
12SG seam glue



14 corrugated insert
14F foamed plastic insert










DETAILED DESCRIPTION
FIG. 1—Prior-Art Cup


FIG. 1 shows a view from below of a prior-art paper or plastic cup. The cup comprises a sidewall 10 an upper rim 10R, and a bottom 10B, and is made of a single wall of plastic or plastic-coated paper. As a result it has poor insulating qualities. Thus if it contains a hot beverage (not shown) the heat will pass through the cup and heat or burn the fingers of anyone who holds it. The cup could be made of an insulating material, such expanded polystyrene (EPS), a foamlike thick material, but EPS cups are generally considered environmentally deleterious because they are not biodegradable and thus their use has been banned in some areas. Also manufacturers find it difficult to print trademarks and other messages on them. The cup can be doubled, but this is an expensive and wasteful practice. A cup sleeve can be slid over the cup, but this requires additional labor, time, storage, and inventory management, and sleeves have a tendency to fall off, do not conveniently fit in all cup holders, and cover any graphics printed on the cup. Multi-layered cups have been provided, but these have numerous disadvantages, as noted above.


If made from paper, the cup is preferably made from solid bleach sulfite (SBS) paperboard which is coated on at least one side with polyethylene or any other suitable water proof material. The process of making such a single-walled paper cup is well-known in the art. It has a vertical side seam (not shown) that runs from the bottom to the top of the cup. Different material combinations and thicknesses can be used to achieve certain properties. For example, if an insulated cup with a long shelf life is required, the paper cup can be coated with a layer of foil on the inside. Foil provides a great moisture and oxygen barrier to preserve the contents of the liquid within. Alternatively, different thermoplastic barrier materials can be coated onto the paper. E.g., HDPE and EVOH provide moisture and oxygen barriers, respectively. If more sidewall strength is required, the paper can be made thicker. If the insulated cup is to be microwaved a waterproof material with a high melting point, such as medium to high density polyethylene, can be used.


If made from plastic, the cup may not have a side seam, and can be formed from any of a number of materials, or combination of materials, such as PET, PP, PS, and/or HDPE. The process of making single-wall plastic cups from a thermoforming or injection molding process is well known. Different material combinations and thicknesses can be used to achieve certain properties. For example, if an insulated cup with a long shelf life is required, the plastic cup can be made from a combination of HDPE and EVOH. The HDPE provides a moisture barrier which increases with the thickness of the material, and the EVOH provides an oxygen barrier. If a microwavable container is required, HDPE or PP can be used, both of which are resistant to high levels of heat.


Insulating Outer Wrapper
FIGS. 2 to 4

In accordance with the invention, I provide an insulating outer wrapper for use with the cup of FIG. 1. The wrapper comprises a base sheet or layer 12 (FIG. 2) and an insert, sheet, or layer 14 (FIGS. 3A and 3B) which is attached to the base sheet. Both sheets have the same shape, which is generally rectangular with four bounding edges. Two of the edges are opposite side edges that are oriented at an acute angle to each other, while the other two of the edges are opposite top and bottom edges that are curved and are oriented concentrically to each other. Layer 14 has corrugations or other multiple distortions so as to cause it to be thicker than the basic thickness of its material, thereby significantly increasing its insulating properties and creating an insulating layer.


Presently for base sheet 12 I prefer to use Solid Bleach Sulfite (SBS) paper, 0.20 mm to 0.50 mm thick. The base sheet is cut or blanked from a larger starting sheet or roll (not shown) and has a cut edge along the top and bottom arcs, and along each side. If the finished cup is to bear a trademark and/or other printing, base sheet 12 should be printed prior to being blanked from the larger starting sheet or roll. The base sheet can be clay-coated in well-known fashion on the print side to improve the smoothness and brightness of the printing surface.


Corrugated insert 14 is formed by passing a flat sheet of paper (preferably plate stock paperboard, cup stock, Kraft paper, or linerboard which is 0.12 mm to 0.50 mm thick, and optionally coated with a layer of reflective material such as metallized film or foil as indicated) through an embossing or corrugating die (not shown), and then cut to size in well-known fashion. Similar to the base sheet, the corrugated insert has a cut edge along the top and bottom arcs, and along each side. I prefer to form the corrugations with a pitch (spacing between tops of adjacent ribs) of between 2.5 mm to 7.6 mm. The depths of the corrugations are 0.5 mm inch to 1.27 mm. Insert 14 is about 30% smaller in area than that of base sheet 12. Due to the smaller size of the insert, if it is not precisely centered on the base sheet as often happens with high-speed assembling machinery, the insulating outer wrapper will still be useable since the base sheet will still extend beyond the edges of the insert.


Base sheet 12 and corrugated insert 14 are adhered together (FIGS. 4A and 4B) to form an insulating outer wrapper or assembly by placing a small amount of glue 12G in a central area of, and centered on, the base sheet, and attaching the insert. If the insert material has a reflective coating on one side, the reflective side would be positioned to face away from the base sheet. Preferably less than 20% of the area of the insert is adhesively attached to the base sheet. Note that since the insert sheet is smaller than the base sheet, edge portions of the base sheet extend beyond the edges of the insert. I presently prefer to use hot melt adhesive because of its fast set time. Alternatively the adhesive can be placed on the corrugated insert. As a further alternative, several glue spots can be used in a central area of the base sheet to provide more stability to the insert as it is attached with high speed machinery. Unlike the prior art corrugated cups, it is not necessary to use a large volume of glue to adhere each of the tips of the corrugations to the base sheet as mentioned above I prefer to glue less than 20% of the area of the corrugated insert to the base sheet. In particular, no glue is applied to the area adjacent to the cut side edges of the insert so that these edges are free. The overall thickness of the finished insulating outer wrapper, indicated in FIG. 4B, is between 1 mm to 2 mm thick.


Container with Insulating Outer Wrapper
FIGS. 5 and 6

As shown in FIG. 5, the insulating outer wrapper or assembly of base sheet 12 and corrugated insert 14 is assembled to the outside of cup 10 of FIG. 1 by placing the cup on a mandrel (not shown) and wrapping the insulating outer wrapper around the cup. This can be done by well-known automated machinery. When the outer wrapper is wrapped or curled in the manner shown in FIG. 5, the right and left cut side ends of the inner or upper layer (insert 14) will tend to migrate outwardly on the outer or lower layer (base sheet 12). If the two layers were glued together over their entire areas, curling or wrapping the assembly would tend to kink the insert, tear the base layer, or pull the glued joint apart. Since insert 14 is not attached to base sheet 12 along the side edges, the edges of the insert can migrate freely and such undesirable results will not occur.


When the insulating outer wrapper is fully wrapped around the cup as shown in FIGS. 6A and 6B, the free cut edges of base layer 12 overlap and are glued together. This is done in any of a number of ways. Preferably one or more beads of paste adhesive or hot melt adhesive are applied to the overlapping edges of the base sheet and then pressed together. Alternatively a layer of heat-activated adhesive, such as polyethylene, can be pre-applied to the area adjacent the cut edges of the base sheet and then heat activated to seal the edges when they are overlapped and pressed together. The insulating outer wrapper is itself adhered to the cup side wall along the wrapper's vertical side seam area. This is done by applying paste adhesive, hot melt adhesive, or a pre-applied heat-activated polyethylene layer to the inside surface of the side seam, which is then attached directly to the cup, or to a vertical strip on the outside of the cup, to which the side seam is then attached. The adhesive that attaches the side edges of the base sheet together, and the adhesive that attaches the side edges of the base sheet to the cup, are not shown in FIG. 6B.


In lieu of a thin layer of adhesive, a foaming adhesive can be used to attach the overlapping edge areas of the base sheet to the cup. One suitable foaming adhesive is sold under the trademark Airsperse adhesive by H. B. Fuller Co., of St. Paul, Minn.; this glue contains micro cells of air to provide a micro cell insulating compound (not shown) that would space the overlapping side edges of the base sheet from the cup and provide insulating properties.


The resultant insulated container of FIGS. 6A and 6B can contain a hot beverage, yet can be held with one's bare hands. Very little glue is needed since only a vertical strip of the wrapper (along the side seam) and the cup are glued. Note that the overlapping edges of base layer 12 are in contact with each other and with cup 10. The cut edges of corrugated insert 14 do not come between the overlapping side seam of base sheet 12 and cup 10 since the corrugated insert is shorter than base sheet 12. Thus it does not interfere with the gluing of base sheet 12 to cup 10. Another advantage of this is that it reduces the overall thickness of the sidewall of finished insulated container. If standard corrugated board were wrapped around a cup, there would be a double thickness of the corrugated board at the overlapping side seam. This extra thickness at the side seam would prevent the cups from nesting one into one another. But by only having the base sheet overlap at the side seam the overall thickness of the finished cup is not increased. Additionally the manufacturer can glue the corrugated insert, and thus the insulated wrapper, to cup 10 at one or more circumferential locations around the cup for added stiffness and strength.


I presently prefer to attach the insulating outer wrapper to cup 10 about 2.0 mm down from rim 10R so as to leave a an exposed area at the top of the cup directly under the rim, but the wrapper can be attached directly under the rim, or spaced farther down. I have designed the dimensions of the insulated wrapper such that it does not cover the entire vertical length of the cup. It is spaced up from the bottom of the cup by approximately 1.6 cm to leave that area of the cup's base exposed. Alternatively it can be sized to cover the entire outside of cup 10, except for rim 10R. The wrapper can also be sized to mimic the look of a cup sleeve wrapped around a cup, whereby the cup side wall would be exposed above and below the wrapper. The wrapper should just be large enough to cover and thus insulate any area which will be held by the user.


The outside of the container can be printed more easily since only base layer 12 need be passed though the printer. While cup 10 should be made of waterproof material (plastic or plastic-coated paper), the outer insulating wrapper need not be made of this expensive material since it does not contact the liquid and is not part of cup 10.


Container with Foamed Plastic Insert
FIG. 7

In lieu of a corrugated paper insert 14 (FIGS. 3A to 5 and 6B), the insert can be made of a layer of foamed plastic 14F, as shown in FIG. 7. Layer 14F preferably is made of foamed PS, but also can be made of foamed polyethylene, foamed PET, or any other closed or open cell foamed plastic. A closed cell foam structure provides better insulation than an open cell structure. Therefore I presently prefer to use a closed cell foam material such as extruded foam polystyrene. The blowing agent (gas) in the foam (such as CO2 or butane) can also be varied to effect the insulation. I prefer to use a blowing agent that provides superior insulation. Layer 14F preferably is 0.5 mm to 1.5 mm thick. The insulating qualities of layer 14F are comparable and even better in some cases to those of corrugated layer 14, yet it can be adhered to outer layer 12 and curled in the same manner as layer 14.


Gluing of Insert to Cup
FIGS. 8A and 8B

In lieu of gluing the edge area of the base sheet to the cup (FIGS. 6A and 6B), the insert sheet (corrugated or foam) can be glued to the cup by applying several areas of glue 14G (FIG. 8A) to the insert sheet or to the outside of the cup and then attaching the wrapper (adhered insert and base sheet) to the cup. FIG. 8B shows an enlarged sectional view from above of the seam area of cup 10 and the adjacent part of the wrapper. Specifically FIG. 8B shows one spot of glue 14G attaching insert sheet 14 to cup 10 and seam glue 12SG attaching the side edges of base sheet 12 together. Note that the attached overlapping edge areas of the base sheet are attached together, but are separated from the cup by air space, which is insulating. In lieu of such air space, the foaming Airsperse adhesive, supra, can be used to attach the overlapping edge areas of the base sheet to the cup, in addition to attaching the insert to the cup. Such adhesive (not shown) would fill the gap between the overlapping side edges of the base sheet and the cup.


CONCLUSION, RAMIFICATIONS, AND SCOPE

Accordingly the reader will see that, according to the invention, I have provided a container with improved thermal insulating properties and rigidity, and that also uses less costly materials, is cheaper to make, is more leak resistant, extends the shelf life of the liquid it holds, is microwavable, can be made from a higher content of recycled content, can be made from the most economical materials for each part to save costs, does not require folding, and can be printed more economically. Wrapping the insulated wrapper around a single wall plastic cup will provide an insulated cup that, depending upon the plastic material of the inner cup, can be leak proof, have extended shelf life, be microwavable, provide rigidity to the plastic cup, provide better graphics to the plastic cup, and will be potentially be less expensive than wrapping it around a single wall paper cup (depending upon the type of plastic material and thickness used). Due to the overlap of the base layer, the insulating layer does not interfere with the gluing of the base layer to itself or to the cup.


While the above description contains many specificities, these should not be construed as limitations on the scope of the invention, but as exemplifications of the presently preferred embodiments thereof. Many other ramifications and variations are possible within the teachings of the invention. For example, although not necessary, the insulating insert, and thus the insulated wrapper, can also be adhesively attached to the sidewall of the inner cup in one or more locations, as this will provide more rigidity to the finished cup. The insulating outer wrapper can be wrapped into a cylinder and glued in this configuration, whereafter the cup is then inserted into the wrapper. In lieu of corrugations, the insert can be embossed with dimples, horizontal corrugations, cruciform embosses, etc. As mentioned, the insert sheet can be optionally coated with a reflective material, such as foil or metallized film, which would be positioned to reflect radiant heat back toward the inner cup. Also base sheet 12 (as well as or in lieu of insert 14) can be embossed, corrugated, or made from foamed plastic in order to provide the outside of the cup wrapper with a textured look and feel and additional insulation properties. The wrapper can also be adhered to the inner cup by one or more beads of cold glue (paste adhesive) or a thin layer of polyethylene (or similar heat sealing material) can be pre-applied to the cut side edges of the base sheet. This is then heat-activated immediately prior to wrapping the wrapper around the inner cup, and pressing the overlapping side seam to the sidewall of the inner cup to glue it in place. Since the inner cup and the insulated wrapper can be made from different material, the base sheet and/or corrugated insert can be made from recycled paper, including clay-coated recycled paper for an improved printing surface. The cup can be used to contain hot or cold solids as well as liquids. The base sheet and the insulating insert can have different shapes. E.g., if the cup is not tapered, the opposite edges of the sheet and insert can be parallel.


Thus the scope of the invention should be determined by the appended claims and their legal equivalents, and not by the examples given.

Claims
  • 1. A thermally insulated cup wrapper, comprising: an outer base sheet having a plurality of boundary edges and a corresponding plurality of edge portions adjacent said boundary edges, respectively;an insert sheet having a plurality of edges;at least one of said outer base sheet and said insert sheet being made of insulating material to provide an insulating layer;said insert sheet being adhered to one side of said outer base sheet to form a thermally insulated cup wrapper;said insert sheet being smaller in size than said outer base sheet and being positioned on said outer base sheet so that said plurality of edge portions of said outer base sheet extend beyond said edges of said insert sheet wherein said insert sheet is not attached to said outer base sheet along the plurality of edges and said edges can migrate freely;whereby said thermally insulated cup wrapper can be wrapped around and adhered to a single wall cup to form a thermally insulated cup.
  • 2. The thermally insulated cup wrapper of claim 1 wherein said insert sheet is made of insulating material.
  • 3. The thermally insulated cup wrapper of claim 2 wherein said insert sheet is made of a material selected from the class consisting of corrugated material and foamed plastic.
  • 4. The thermally insulated cup wrapper of claim 1 wherein said base sheet and said insert sheet each have a generally rectangular shape with four bounding cut edges, two of said edges being opposite side edges that are oriented at an acute angle to each other, the other two of said edges being opposite top and bottom edges that are curved and are oriented concentrically to each other.
  • 5. The thermally insulated cup wrapper of claim 1 wherein said base sheet and said insert sheet are made of paper.
  • 6. The thermally insulated cup wrapper of claim 1 wherein said insert sheet is coated with reflective material on at least one side of thereof.
  • 7. The thermally insulated cup wrapper of claim 1 wherein said insert sheet is made of insulating material selected from the class consisting of corrugated material and foamed plastic, said base sheet and said insert sheet each have four bounding cut edges, two of said edges being opposite side edges that are oriented at an acute angle to each other, the other two of said edges being opposite top and bottom edges that are curved and are oriented concentrically to each other and said base sheet and said insert sheet are made of paper.
  • 8. The thermally insulated cup wrapper of claim 1 wherein less than 20% of said insert sheet is adhered to said base sheet.
  • 9. A thermally insulated container, comprising: a cup having a side wall, said side wall having an inside and an outside surface;a thermally insulated cup wrapper being wrapped around and adhered to said outside surface of said side wall of said cup;said cup wrapper comprising a plurality of layers comprising an outer base sheet and an insert sheet;said outer base sheet having a plurality of boundary edges and a corresponding plurality of edge portions adjacent said boundary edges, respectively;said insert sheet having a plurality of edges;at least one of said base sheet and said insert sheet being an insulating layer;said insert sheet being adhered to one side of said outer base sheet;said insert sheet being smaller in size than said outer base sheet and being positioned on said outer base sheet so that said plurality of edge portions of said outer base sheet extend beyond said edges of said insert sheetwherein said insert sheet is not attached to said outer base sheet along the plurality of edges.
  • 10. The thermally insulated container of claim 9 wherein said insert sheet is made of said insulating material.
  • 11. The thermally insulated container of claim 10 wherein said insulating material is selected from the class consisting of corrugated material and foamed plastic.
  • 12. The thermally insulated container of claim 9 wherein said base sheet and said insert sheet are made of paper.
  • 13. The thermally insulated container of claim 12, further including a coating of reflective material on at least one side of said insert sheet.
  • 14. The thermally insulated container of claim 9 wherein said base sheet and said insert sheet each have four bounding cut edges, two of said edges being opposite side edges that are oriented at an acute angle to each other, the other two of said edges being opposite top and bottom edges that are curved and arc oriented concentrically to each other.
  • 15. The thermally insulated container of claim 9 wherein said insert sheet is made of insulating material selected from the class consisting of corrugated material and foamed plastic, said base sheet and said insert sheet each having four bounding cut edges, two of said edges being opposite side edges that are oriented at an acute angle to each other, the other two of said edges being opposite top and bottom edges that are curved and are oriented concentrically to each other and said base sheet and said insert sheet are made of paper.
  • 16. The thermally insulated container of claim 9 wherein said outer base sheet has a plurality of side edges that overlap and are adhered together to form an overlapping edge area, said overlapping edge area being adhered to said cup.
  • 17. The thermally insulated container of claim 9 wherein said outer base sheet has a plurality of side edges that overlap and are adhered together to form an overlapping edge area, said insert sheet being adhered to said cup.
  • 18. The thermally insulated container of claim 14 wherein said cup is made substantially from plastic material.
  • 19. A container, comprising: a cup having a side wall and a bottom; andan insulating wrapper wrapped around and adhesively attached to the side wall of the cup, the insulating wrapper comprising: a base sheet having a top edge, a bottom edge, and side edges; andan insert sheet having a top edge, a bottom edge, and side edges located between the cup and the base sheet such that the top edge and bottom edge of the base sheet extend beyond the top edge and bottom edge of the insert sheet wherein said insert sheet is not attached to said base sheet along the top edge, the bottom edge and the side edges of the insert sheet.
  • 20. The container of claim 19, further comprising a generally vertical strip of adhesive applied between the cup and the base sheet for adhesively attaching the insulating wrapper to the cup.
  • 21. The container of claim 19, wherein the insert sheet is made of a different material than either the base sheet or the cup.
  • 22. The container of claim 19 wherein less than 20% of the area of the insert sheet is adhesively attached to the base sheet.
  • 23. The container of claim 19 wherein the side edges of the base sheet are adhered to the cup such that the side edges are adjacent to each other.
  • 24. The container of claim 19 wherein the side edges of the base sheet define a seam.
  • 25. The container of claim 19 wherein the insert sheet is formed from a foamed plastic.
CROSS-REFERENCE TO RELATED APPLICATIONS

This patent issued from an application that is a continuation-in-part (CIP) of my application Ser. No. 11/098,853, filed 4 Apr. 2005, now abandoned, which is in turn a CIP of my application Ser. No. 10/831,411, filed 22 Apr. 2004, now abandoned.

US Referenced Citations (375)
Number Name Date Kind
139688 Norton Jun 1873 A
154498 Long Aug 1874 A
411096 Eaton et al. Sep 1889 A
472463 Mark Apr 1892 A
495422 Meech Apr 1893 A
502951 Clark Aug 1893 A
536545 Schmidt May 1895 A
546179 McEwan Sep 1895 A
563962 Hinde Jul 1896 A
858385 Haefely Jul 1907 A
901334 Flipse Oct 1908 A
950785 Pene Mar 1910 A
1025659 Vargyas et al. May 1912 A
1032557 Luellen Jul 1912 A
1032789 Swift, Jr. Jul 1912 A
1039723 Gage Oct 1912 A
1067237 Brandt Jul 1913 A
1091526 Moore Mar 1914 A
1098178 Semple May 1914 A
1100809 Wilson Jun 1914 A
1106005 Shevlin Aug 1914 A
1158581 Swift, Jr. Nov 1915 A
1167861 Vincent Jan 1916 A
1189140 Lane Jun 1916 A
1208483 Chesbrough Dec 1916 A
1216617 Shevlin Feb 1917 A
1229751 House Jun 1917 A
1243658 Ford Oct 1917 A
1284728 Luellen Nov 1918 A
1294210 Wallertz Feb 1919 A
1295418 Bohlman Feb 1919 A
1297152 Hackney Mar 1919 A
1308793 Luellen Jul 1919 A
1334302 Hicks Mar 1920 A
1444397 Seigle Feb 1923 A
1588123 Maston Jun 1926 A
1692951 Pickney Jul 1926 A
1615254 Barker Jan 1927 A
1654982 Luellen Jan 1928 A
1665033 Jensen Apr 1928 A
1732322 Wilson et al. Oct 1929 A
1771765 Benson Jul 1930 A
1845891 Schroeder Feb 1932 A
1850013 Hinkley Mar 1932 A
1940406 Ericson Jun 1932 A
1919569 Oliver Jul 1933 A
1924873 Moone Aug 1933 A
1955745 Hurley Apr 1934 A
1962199 Koch et al. Jun 1934 A
2017810 Bodar et al. Oct 1935 A
2037675 Boothby et al. Apr 1936 A
RE20034 Ives Jul 1936 E
2051076 Deakin Aug 1936 A
2055877 Palmer Sep 1936 A
2075465 Powell Mar 1937 A
2084922 Sidebotham Jun 1937 A
2103831 Sidon Dec 1937 A
2155487 Hatch Apr 1939 A
2237809 Bronson Apr 1941 A
2246426 Wickstrom Jun 1941 A
2253718 McKeage Aug 1941 A
2266828 Sykes Dec 1941 A
2354098 Bamber Jul 1942 A
2300473 Van Winkle Nov 1942 A
2336158 Bell Dec 1943 A
2347236 Barbieri Apr 1944 A
2349730 Horning May 1944 A
2389547 Ringler Nov 1945 A
2416813 Barbieri Mar 1947 A
2437114 Moore Mar 1948 A
2444861 Symmes Jul 1948 A
2453159 Richter Nov 1948 A
2457198 Bell Dec 1948 A
2501815 Hamm Mar 1950 A
2503874 Ives Apr 1950 A
2512602 Bell Jun 1950 A
2563352 Morse Aug 1951 A
2589645 Tiegel Mar 1952 A
2591578 McNealy et al. Apr 1952 A
2617549 Egger Nov 1952 A
2623680 Wilcox Dec 1952 A
2623681 Wilcox Dec 1952 A
2641402 Brunn Jun 1953 A
2642372 Chittick Jun 1953 A
2841402 Bruun Jun 1953 A
2653887 Slayter Sep 1953 A
2661889 Phinney Dec 1953 A
2686555 Howard Aug 1954 A
2695744 Gattuso Nov 1954 A
2719662 Minteer et al. Oct 1955 A
2727674 Rous Dec 1955 A
2755983 Ringler Jul 1956 A
2758047 Dowd Aug 1956 A
2775384 Bergstrom Dec 1956 A
2805808 Brewer Sep 1957 A
2828903 Adkins Apr 1958 A
2830005 Jackson Apr 1958 A
2842301 Albert Jul 1958 A
2853222 Gallagher Sep 1958 A
2917215 Psaty et al. Dec 1959 A
2954913 Rossman Oct 1960 A
2969901 Behrens Jan 1961 A
2989218 Bergstrom Jun 1961 A
3001683 Goodwin Sep 1961 A
3049277 Shappell Aug 1962 A
3079027 Edwards Feb 1963 A
3082900 Goodman Mar 1963 A
3083891 Forrer Apr 1963 A
3089630 Garvin May 1963 A
3106237 Karl Oct 1963 A
3106327 Karl Oct 1963 A
3123273 Miller Mar 1964 A
3126139 Schechter Mar 1964 A
3141913 Edwards Jul 1964 A
3145131 Finke Aug 1964 A
3156401 Krause Nov 1964 A
3157336 Elam Nov 1964 A
3157337 Elam Nov 1964 A
3162347 Taylor Dec 1964 A
3178088 Herr Apr 1965 A
3182794 Moore May 1965 A
3194468 Baron Jul 1965 A
3203611 Anderson et al. Aug 1965 A
3237834 Davis et al. Mar 1966 A
3242829 White Mar 1966 A
3254827 Chapman Jun 1966 A
3279675 Elam et al. Oct 1966 A
3317110 Palmer May 1967 A
3372830 Edwards Mar 1968 A
3383025 Ferrey et al. May 1968 A
3385502 Pilger May 1968 A
3394800 Brackett et al. Jul 1968 A
3400029 Mesrobian et al. Sep 1968 A
3410473 Petrie Nov 1968 A
3414184 Loheed Dec 1968 A
3428239 Wannamaker et al. Feb 1969 A
3443681 Wysocki May 1969 A
3443714 Edwards May 1969 A
3443715 Edwards May 1969 A
3456860 Janninck Jul 1969 A
3456863 Mollison et al. Jul 1969 A
3503310 Goetz Mar 1970 A
3520463 Ahlemeyer Jul 1970 A
3580468 McDevitt May 1971 A
3581972 Buchner et al. Jun 1971 A
3670946 Croley Jun 1972 A
3712530 Croley Jan 1973 A
3779157 Ross et al. Dec 1973 A
3785254 Mann Jan 1974 A
3816206 Coster Jun 1974 A
3819085 Rohowetz Jun 1974 A
3836063 Sutch Sep 1974 A
3846220 Buchner Nov 1974 A
3861530 Calvert Jan 1975 A
3868043 Freemayer Feb 1975 A
3890762 Ernst et al. Jun 1975 A
3908523 Shikaya Sep 1975 A
3927766 Day Dec 1975 A
3988521 Fumel et al. Oct 1976 A
4040537 Edwards Aug 1977 A
4080880 Shikaya Mar 1978 A
RE29898 Wheeler Feb 1979 E
4146660 Hallet et al. Mar 1979 A
4150186 Kazama Apr 1979 A
4150747 Gordon Apr 1979 A
4163508 Mannor Aug 1979 A
4170172 Wommelsdorf Oct 1979 A
4170674 Matsuki Oct 1979 A
4171085 Doty Oct 1979 A
4176054 Kelley Nov 1979 A
4187137 Beauchamp Feb 1980 A
4187954 Striggow Feb 1980 A
4200219 Ramich Apr 1980 A
4228918 Kellogg Oct 1980 A
4239125 Pawlowski Dec 1980 A
4243156 Lobbestael Jan 1981 A
4254173 Peer, Jr. Mar 1981 A
4261501 Watkins Apr 1981 A
D259231 Kozlow May 1981 S
4270443 McSwiney et al. Jun 1981 A
4300963 Berg Nov 1981 A
4311746 Chavannes Jan 1982 A
4319680 Hiemstra Mar 1982 A
4328891 Elward May 1982 A
4343259 McConnel Aug 1982 A
4347934 Goodman Sep 1982 A
4379014 Rausing et al. Apr 1983 A
4385997 Stradal May 1983 A
4398650 Holmes et al. Aug 1983 A
4398904 Faberberg Aug 1983 A
4412629 Dart et al. Nov 1983 A
4429825 Kipp Feb 1984 A
4432488 Dutcher Feb 1984 A
4452596 Clauss et al. Jun 1984 A
4456649 Clarke Jun 1984 A
D275636 Picozza Sep 1984 S
4495011 Scharfemberg et al. Jan 1985 A
4505769 Auckenthaler Mar 1985 A
4511078 Rausér et al. Apr 1985 A
D279850 Brooker et al. Jul 1985 S
4526316 Sutherland Jul 1985 A
4526566 Briand Jul 1985 A
4531996 Sukenik Jul 1985 A
4535919 Jameson Aug 1985 A
4541526 Berg et al. Sep 1985 A
D281758 Trombly Dec 1985 S
4556166 Penttilä Dec 1985 A
4558813 Richards Dec 1985 A
4558815 Wischusen, III Dec 1985 A
4574997 Ikeda Mar 1986 A
4578329 Holsappel Mar 1986 A
4589569 Clements May 1986 A
4617211 Fries, Jr. Oct 1986 A
4623072 Lorenz Nov 1986 A
D287919 Clements Jan 1987 S
4667844 Clauss May 1987 A
4700862 Carter et al. Oct 1987 A
4702496 Hume, III Oct 1987 A
4714164 Bachner Dec 1987 A
4715527 Tsuzuki et al. Dec 1987 A
4756440 Gartner Jul 1988 A
4778696 King Oct 1988 A
4782975 Coy Nov 1988 A
4792086 Chen Dec 1988 A
4836400 Chaffey et al. Jun 1989 A
4842906 Ekdahl et al. Jun 1989 A
4858782 Yasymuro et al. Aug 1989 A
4868057 Himes Sep 1989 A
4875585 Kadleck et al. Oct 1989 A
4925440 Müller May 1990 A
4932531 Bakx Jun 1990 A
4934591 Bantleen Jun 1990 A
4955531 Graboyes Sep 1990 A
4961510 Dvoracek Oct 1990 A
4993580 Smith Feb 1991 A
4997125 Glerum Mar 1991 A
4998666 Ewan Mar 1991 A
5000788 Stotler Mar 1991 A
5001179 Kauffman et al. Mar 1991 A
5029749 Aloisi Jul 1991 A
5067887 Speer et al. Nov 1991 A
5078313 Matheson Jan 1992 A
5092485 Lee Mar 1992 A
5098962 Bozich Mar 1992 A
5102036 Orr et al. Apr 1992 A
5111957 Hollander et al. May 1992 A
5145107 Silver et al. Sep 1992 A
5203492 Schellenberg Apr 1993 A
5205473 Coffin Apr 1993 A
5209367 Van Musscher et al. May 1993 A
5222656 Carlson Jun 1993 A
5226585 Varano Jul 1993 A
5229182 Eisman et al. Jul 1993 A
D339027 Mack et al. Sep 1993 S
5244093 Carmichael et al. Sep 1993 A
5253781 Van Melle et al. Oct 1993 A
5256131 Owens et al. Oct 1993 A
5259529 Coale Nov 1993 A
5326019 Wolff Jul 1994 A
5363982 Sadlier Nov 1994 A
5385260 Gatcomb Jan 1995 A
5398842 Sokolski et al. Mar 1995 A
5398843 Warden et al. Mar 1995 A
5415339 Howard May 1995 A
5425497 Sorensen Jun 1995 A
5429239 Baxter Jul 1995 A
D363641 Goto et al. Oct 1995 S
5454484 Chelossi Oct 1995 A
5458723 Watkins et al. Oct 1995 A
5460323 Titus Oct 1995 A
5460324 Vinther Oct 1995 A
D363852 Young Nov 1995 S
D364071 Lynd Nov 1995 S
5469983 Yawata Nov 1995 A
5484059 Sutherland Jan 1996 A
5487506 Drummond et al. Jan 1996 A
5490631 Iioka et al. Feb 1996 A
D368624 Forrer Apr 1996 S
5509568 Warden et al. Apr 1996 A
5524817 Meier et al. Jun 1996 A
5542599 Sobol Aug 1996 A
5547124 Mueller Aug 1996 A
5620135 Stahlecker et al. Apr 1997 A
5628453 MacLaughlin May 1997 A
D379928 Freek et al. Jun 1997 S
5660326 Varano et al. Aug 1997 A
5685480 Choi Nov 1997 A
5697550 Varano et al. Dec 1997 A
5697750 Varano et al. Dec 1997 A
5713512 Barrett Feb 1998 A
5725916 Ishii et al. Mar 1998 A
5746372 Spence May 1998 A
5750235 Yoshimasa May 1998 A
5752653 Razzaghi May 1998 A
RE35830 Sadlier Jun 1998 E
5759624 Neale et al. Jun 1998 A
5765716 Cai et al. Jun 1998 A
5766709 Geddes et al. Jun 1998 A
5769311 Morita et al. Jun 1998 A
5775577 Titus Jul 1998 A
5794842 Hallam Aug 1998 A
5794843 Sanchez Aug 1998 A
5810243 DiPinto et al. Sep 1998 A
5839653 Zadravetz Nov 1998 A
5857615 Rose Jan 1999 A
5865480 Bain, Jr. et al. Feb 1999 A
5927502 Hunter Jul 1999 A
5928764 Costi Jul 1999 A
5950917 Smith Sep 1999 A
5952068 Neale et al. Sep 1999 A
5964400 Varano et al. Oct 1999 A
6039682 Dees et al. Mar 2000 A
6068182 Tokunaga May 2000 A
6085970 Sadlier Jul 2000 A
6109518 Mueller et al. Aug 2000 A
6116503 Varano Sep 2000 A
6126584 Zadravetz Oct 2000 A
6139665 Schmelzer et al. Oct 2000 A
6142331 Breining et al. Nov 2000 A
6179203 Toussant et al. Jan 2001 B1
6186394 Dees et al. Feb 2001 B1
6193098 Mochizuki et al. Feb 2001 B1
6196454 Sadlier Mar 2001 B1
6213293 Marco Apr 2001 B1
6224954 Mitchell et al. May 2001 B1
6250005 Richards Jun 2001 B1
6250545 Mazzarolo et al. Jun 2001 B1
6253995 Blok et al. Jul 2001 B1
6257485 Sadlier et al. Jul 2001 B1
6260756 Mochizuki et al. Jul 2001 B1
6265040 Neale et al. Jul 2001 B1
6267837 Mitchell et al. Jul 2001 B1
6277454 Neale et al. Aug 2001 B1
6287247 Dees et al. Sep 2001 B1
6290091 Bell Sep 2001 B1
6308883 Schmelzer et al. Oct 2001 B1
6343735 Cai Feb 2002 B1
6378766 Sadlier Apr 2002 B2
6416829 Breining et al. Jul 2002 B2
6419105 Bruce et al. Jul 2002 B1
6422456 Sadlier Jul 2002 B1
6450398 Muise et al. Sep 2002 B1
6565934 Fredricks et al. May 2003 B1
6568585 Marie May 2003 B2
6586075 Mitchell et al. Jul 2003 B1
6595409 Hashimoto et al. Jul 2003 B2
6598786 Guo Jul 2003 B1
6620281 Sommers Sep 2003 B1
6663926 Okushita et al. Dec 2003 B1
6663927 Breining et al. Dec 2003 B2
6703090 Breining et al. Mar 2004 B2
6729534 Van Handel May 2004 B2
6749913 Watanabe et al. Jun 2004 B2
6811843 DeBraal et al. Nov 2004 B2
6852381 Debraal et al. Feb 2005 B2
6926197 Hed et al. Aug 2005 B2
7045196 Hill May 2006 B1
7281650 Milan Oct 2007 B1
7536767 Hollis et al. May 2009 B2
7549273 Dart et al. Jun 2009 B2
7699216 Smith et al. Apr 2010 B2
D621659 Liu Aug 2010 S
7856793 Dart et al. Dec 2010 B2
20010048022 Zoeckler Dec 2001 A1
20030071045 Taylor Apr 2003 A1
20040140047 Sato et al. Jul 2004 A1
20050227029 Dart et al. Oct 2005 A1
20050236468 Sadlier Oct 2005 A1
20060118608 Stahlecker Jun 2006 A1
20060131316 Bresler Jun 2006 A1
20060144915 Sadlier Jul 2006 A1
20060289610 Kling Dec 2006 A1
20080087716 Sadlier Apr 2008 A1
20080098698 Dart et al. May 2008 A1
20090229221 Dart et al. Sep 2009 A1
Foreign Referenced Citations (42)
Number Date Country
667719 Jan 1964 CA
0568053 Oct 1975 CH
1912705 Oct 1969 DE
1786171 Feb 1972 DE
2330767 Jan 1975 DE
2331005 Jan 1975 DE
2418141 Oct 1975 DE
0371918 Jun 1990 EP
993163 Oct 1951 FR
1373348 Oct 1963 FR
2206240 Jun 1974 FR
2397987 Feb 1979 FR
2481229 Oct 1980 FR
2 733 209 Oct 1996 FR
604794 Jul 1948 GB
649299 Jan 1951 GB
958388 May 1964 GB
1167861 Oct 1969 GB
1366310 Sep 1974 GB
2016640 Sep 1979 GB
2294021 Aug 1998 GB
334302 Jan 1936 IT
52076765 Jun 1977 JP
52-14830 Dec 1977 JP
52-148380 Dec 1977 JP
57-6333 Feb 1982 JP
61-142419 Jun 1986 JP
4-5036 Jan 1992 JP
4-6036 Jan 1992 JP
4-41815 Apr 1992 JP
4-97018 Sep 1992 JP
5-4670 Jan 1993 JP
6-22212 Mar 1994 JP
6-39717 May 1994 JP
6-61773 Aug 1994 JP
6-78215 Nov 1994 JP
7-189138 Jul 1995 JP
20000025740 Jan 2000 JP
2003276738 Oct 2003 JP
291640 Jul 1965 NL
2142878 Dec 1999 RU
2010109000 Sep 2010 WO
Non-Patent Literature Citations (3)
Entry
Walter Soroka, Fundamentals of Packaging, 1995, pp. 296-301: Publisher: Richard Warrington, USA.
Marilyn Bakker, The Wiley Encyclopedia of Packaging Technology, 1986, 66-69; USA.
Office Action for U.S. Appl. No. 12/829,587 mailed Mar. 30, 2011.
Related Publications (1)
Number Date Country
20060144915 A1 Jul 2006 US
Continuation in Parts (2)
Number Date Country
Parent 11098853 Apr 2005 US
Child 11182330 US
Parent 10831411 Apr 2004 US
Child 11098853 US