Blank for container

Information

  • Patent Grant
  • 9150344
  • Patent Number
    9,150,344
  • Date Filed
    Friday, December 13, 2013
    10 years ago
  • Date Issued
    Tuesday, October 6, 2015
    8 years ago
Abstract
A blank made of a polymeric material is provided and used to form the body of a drink cup or other container. A floor can be coupled to the body to define an interior region of the cup.
Description
BACKGROUND

The present disclosure relates to vessels, and in particular to blanks for containers. More particularly, the present disclosure relates to a blank for an insulated container formed from polymeric materials.


SUMMARY

A vessel in accordance with the present disclosure is configured to hold a product in an interior region formed in the vessel. In illustrative embodiments, the vessel is an insulated container such as a drink cup, a food-storage cup, or a dessert cup.


In illustrative embodiments, an insulative cup includes a body having a sleeve-shaped side wall and a floor coupled to the body to cooperate with the side wall to form an interior region for storing food, liquid, or any suitable product. The body also includes a rolled brim coupled to an upper end of the side wall and a floor mount interconnecting a lower end of the side wall and the floor.


The insulative cellular non-aromatic polymeric material included in the body is configured in accordance with the present disclosure to provide means for enabling localized plastic deformation in at least one selected region of the body (e.g., the floor mount and a floor-retaining flange included in the floor mount) to provide (1) a plastically deformed first material segment having a first density in a first portion of the selected region of the body and (2) a second material segment having a relatively lower second density in an adjacent second portion of the selected region of the body. In illustrative embodiments, the more dense first material segment is thinner than the second material segment.


A blank of polymeric material in accordance with the present disclosure is used to form a body of a cup. In illustrative embodiments, the blank includes an upper band formed to include a curved top edge and a lower band formed to include a left-end edge, a right-end edge, and a curved bottom edge arranged to extend between the left-end and right-end edges. The lower band is appended to the upper band along a curved fold line to locate the curved fold line between the curved top and bottom edges. The upper band has a relatively long curved top edge and can be formed in a blank conversion process to provide a cup body having a rolled brim and a sleeve-shape side wall extending downwardly from the rolled brim. The lower band has a relatively short curved bottom edge and can be folded about the curved fold line during the blank conversion process to form a portion of a floor mount that is configured to mate with a cup floor to provide a cup.


In illustrative embodiments, the lower band is formed to include a series of high-density staves of a first density and low-density staves of a relatively lower second density. Each stave is arranged to extend from the curved bottom edge of the lower band toward the curved fold line. The high-density and low-density staves are arranged to lie in an alternating sequence extending from the let-end edge of the lower band to the right-end edge of the lower band to cause density to alternate from stave to stave along a length of the lower band.


In illustrative embodiments, each low-density stave in the lower band is relatively thick and wide. Each high-density stave in the lower band is relatively thin and narrow. In other illustrative embodiments, diamond density patterns, diagonal density patterns, and other density patterns are used instead of the high-density and low-density staves.


In illustrative embodiments, a connecting web is defined in the blank by polymeric material extending along and on either side of the curved fold line. After the blank conversion process is completed, the cup body will include a floor mount comprising an annular web-support ring defined by a bottom strip of the upper band, an annular floor-retaining flange surrounded by the annular web-support ring, and an annular connecting web extending along the curved fold line and joining together lower portions of the floor-retaining flange and the surrounding web-support ring to define an upwardly floor-receiving pocket. The connecting web is formed to have a high density that is about the same as the density of one of the high-density staves.


Additional features of the present disclosure will become apparent to those skilled in the art upon consideration of illustrative embodiments exemplifying the best mode of carrying out the disclosure as presently perceived.





BRIEF DESCRIPTIONS OF THE DRAWINGS

The detailed description particularly refers to the accompanying figures in which:



FIG. 1A is a plan view of a blank of polymeric material that is formed in accordance with the present disclosure to as suggested in FIG. 1B to produce a body of a cup shown in FIG. 1C that can be mated with a floor to form a cup as shown, for example, in FIGS. 2A and 2B and showing that the body blank includes a side wall and a floor mount coupled to a lower portion of the side wall and also showing that the blank includes a curved lower band along the bottom of the blank and a fan-shaped upper band appended to the curved lower band along a web including a curved fold line;



FIG. 1B is an end elevation view of the body blank of FIG. 1A suggesting that a floor-retaining flange can be folded inwardly and upwardly about a fold line associated with a web-support ring included in the floor mount to form an upwardly opening floor-receiving pocket;



FIG. 1C is a reduced-size view of a body formed in a blank conversion process using the body blank of FIGS. 1A and 1B before a floor is coupled to the body as suggested in FIGS. 2A and 2B to form a cup having an interior region bounded by the body and the floor;



FIG. 2A is a perspective view of an insulative cup made using the polymeric blank shown in FIG. 1A in accordance with the present disclosure showing that the insulative cup includes a body and a floor and showing that a floor region of the body includes a localized area of plastic deformation that provides for increased density in that localized area while maintaining a predetermined insulative characteristic in the body;



FIG. 2B is an exploded assembly view of the insulative cup of FIG. 2A showing that the insulative cup includes, from bottom to top, the floor and the body including a rolled brim, a side wall, and a floor mount configured to mate with the floor as shown in FIG. 2A and showing that the floor mount includes a floor-retaining flange having a series of vertically extending wide (low-density) and narrow (high-density) staves arranged to lie in an alternating sequence in side-by-side relation to one another and shown in an opening formed in the side wall;



FIG. 3 is a partial section view taken along line 3-3 of FIG. 2B showing that the floor region including the localized area of plastic deformation lies in the floor-retaining flange included in the floor mount of the body and showing a first series of spaced-apart depressions formed in an outer surface of the floor-retaining flange and aligned with the narrow and thin (high-density) staves;



FIG. 4 is a partial section view taken along line 4-4 of FIG. 3 showing the first series of spaced-apart depressions formed in the radially inwardly facing outer surface of the floor-retaining flange and arranged to lie in circumferentially spaced-apart relation to one another;



FIG. 5 is a plan view of a body blank shown in FIG. 1 and used to make the body of FIG. 2B with portions broken away to reveal that the body blank is formed from a strip of insulative cellular non-aromatic polymeric material and a skin laminated to the strip of insulative cellular non-aromatic polymeric material and showing that during a blank forming process a web former compresses a portion of the body blank along a curved fold line to form the connecting web and a stave former compresses another portion of the body blank between the curved fold line and a curved bottom edge to form a series of (1) wide and thick (low-density) staves and (2) narrow and thin (high-density) staves that lie between the curved fold line and the curved bottom edge and extending in an alternating sequence from a left-end edge of the blank to a right-end edge of the blank;



FIG. 6 is an enlarged partial plan view of the body blank of FIG. 5 showing the curved fold line and the alternating sequence of wide low-density staves and narrow high-density staves formed in the floor-retaining flange;



FIG. 7 is a partial section view similar to FIG. 3 showing a second embodiment of a variable density pattern formed in the outer surface of the floor-retaining flange included in a floor mount of a cup body;



FIG. 8 is a view similar to FIG. 4 showing the second series of spaced-apart depressions formed in the radially inwardly facing outer surface of the floor-retaining flange;



FIG. 9 is a plan view of a body blank similar to FIG. 5 showing that the knurling former compresses the body blank between a curved fold line and a curved bottom edge to form a set of diamond-shaped portions that extend between the curved fold line and the curved bottom edge, each one of the diamond-shaped portions corresponding to one of the plurality of diamond-shaped ribs;



FIG. 10 is an enlarged partial plan view of the body blank of FIG. 9 showing the curved fold line and the set of diamond-shaped portions formed in the floor-retaining flange;



FIG. 11 is a partial section view similar to FIGS. 3 and 7 showing a third embodiment of a variable density pattern formed in the outer surface of the floor-retaining flange;



FIG. 12 is a view similar to FIGS. 4 and 8 showing the third series of spaced-apart depressions formed in the radially inwardly facing outer surface of the floor-retaining flange;



FIG. 13 is a plan view of a body blank similar to FIGS. 5 and 9 showing that the stave former compresses the body blank between a curved fold line and a curved bottom edge to form a series of thick and thin slanted portions that extend between the curved fold line and the curved bottom edge;



FIG. 14 is an enlarged partial plan view of the body blank of FIG. 13 showing the curved fold line and the series of thick and thin slanted portions formed in the floor-retaining flange and extending diagonally in an alternating sequence;



FIG. 15 is an enlarged partial elevation view of another embodiment of an insulative cup in accordance with the present disclosure showing a region of localized plastic deformation in which a plurality of vertical staves are formed in an inner periphery of the floor-retaining flange so that the vertical staves are hidden when the insulative cup is assembled;



FIG. 16 is an enlarged partial elevation view of another embodiment of an insulative cup in accordance with the present disclosure similar to FIG. 15 and showing a region of localized plastic deformation in which a plurality of diamond-shaped ribs are formed in an inner periphery of the floor-retaining flange so that the diamond-shaped ribs are hidden when the insulative cup is assembled;



FIG. 17 is an enlarged partial elevation view of another embodiment of an insulative cup in accordance with the present disclosure similar to FIGS. 15 and 16 showing a region of localized plastic deformation in which a plurality of vertically-slanting ribs are formed in an inner periphery of the floor-retaining flange so that the vertically-slanting ribs are hidden when the insulative cup is assembled;



FIG. 18 is a partial elevation view of a portion of the floor-retaining flange included in the insulative cup of FIG. 1 showing a plurality of measurement points for determining the dimensional consistency of the plurality of vertical staves formed in the floor-retaining flange; and



FIG. 19 is a partial elevation view of the portion of the floor-retaining flange shown in FIG. 18 showing the locations at which height, thickness, width, and depth measurements are taken to determine the dimensional consistency of the plurality of vertical ribs formed in the floor-retaining flange.





DETAILED DESCRIPTION

An illustrative body blank 500 shown in FIG. 1A is made of a polymeric material and is folded as suggested in FIG. 1B and wrapped around a central vertical axis (CA) to form a body 11 of a cup as shown, for example, in FIG. 1C. Once folded, a body blank 500 includes a sleeve-shaped side wall 18 and floor mount 17 coupled to a lower portion of the sleeve-shaped side wall 18 and configured to mate with a floor 20 as suggested in FIGS. 2A, 2B, and 3 to form a cup 10. Floor mount 17 is formed in accordance with the present disclosure to have neighboring high-density polymeric portions and relatively low-density polymeric portions cooperate to permit controlled gathering of portions of floor mount 17 as body blank 500 is wrapped around the vertical central axis (CA) during a blank conversion process to form a cup body 11. Floor mount 17 is formed to include an alternating sequence of low-density and high-density vertical staves 180, 182 as shown in the embodiment of FIGS. 1-6, while alternative floor mounts embodiments are shown in FIGS. 7-10 (diamond density pattern), FIGS. 11-14 (diagonal density pattern), and FIGS. 18-19 (other density pattern)


Body blank 500 includes a curved top edge 506 and a curved bottom edge 508 and each edge has the same center of curvature as suggested in FIGS. 1 A and 5 to cause a uniform distance to separate curved top and bottom edges 506, 508 along their length. Body blank 500 also includes a straight right edge 512 interconnecting right ends of top and bottom edges 506, 508 and a straight left edge 514 interconnecting left ends of top and bottom edges 506, 508.


A curved floor-position locator reference line 521 is marked (in phantom) on body blank 500 in FIGS. 1A and 5 to show the relative position of a horizontal platform 21 included in floor 20 (see FIG. 2B) when floor 20 is mated to the body 11 formed using body blank 500 as suggested in FIGS. 2A and 3. Curved floor-position locator reference line 521 has the same center of curvature as curved top and bottom edges 506, 508 as suggested in FIGS. 1A and 5.


Body blank 500 includes a floor mount 17 bounded by curved floor-position locator reference line 521, curved bottom edge 508, and lower portions of straight right and left edges 512, 514 as suggested in FIG. 1A. Body blank 500 also includes a sleeve-shaped side wall 18 provided above floor mount 17 and bounded by curved top edge 506, curved floor-position locator reference line 521, and upper portions of straight right and left edges 512, 514 as suggested in FIG. 1A.


Floor mount 17 of body blank 500 is formed to include a curved fold line 516 located between curved floor-position locator reference line 521 and curved bottom edge 508 as suggested in FIG. 1A. Curved fold line 516 has the same center of curvature as curved floor-position locator reference line 521 and curved bottom edge 508 as suggested in FIGS. 1A and 5.


Floor mount 17 includes a web-support ring 126 coupled to a lower portion of sleeve-shaped side wall 18 at the curved floor-position locator reference line 521 as suggested in FIGS. 1A and 1B. Floor mount 17 also includes a floor-retaining flange 26 provided along curved bottom edge 508 of body blank 500 and a connecting web 25 arranged to extend along curved fold line 516 from left edge 514 to right edge 512 and to interconnect web-support ring 126 and floor-retaining flange 26.


As suggested in FIG. 1B, floor-retaining flange 26 will be folded inwardly and upwardly about curved fold line 516 while body blank 500 is being wrapped around a central vertical axis (CA) during a blank conversion process. This process produces a cup body 11 having an upwardly opening ring-shaped floor-receiving pocket 20P as suggested in FIGS. 1B, 3, and 4. An illustrative floor 20 shown, for example, in FIG. 2B includes a ring-shaped platform-support member 23 that is appended to a perimeter portion of a round horizontal platform 21. Ring-shaped platform-support member 23 is extended downwardly into the companion ring-shaped floor-receiving pocket 20P formed in floor mount 17 to position horizontal platform 21 along the curved floor-position locator reference line 521 so that a cup 10 comprising a body 11 and a floor 20 is formed as shown in FIGS. 1C, 2A, 2B, and 3.


In illustrative embodiments, the arc-shaped floor-retaining flange 26 of floor mount 17 is formed to include along its length an alternating sequence of low-density and high-density staves 180, 182 arranged to lie in side-by-side relation and extend in directions from curved bottom edge 500 toward curved fold line 516 as shown, for example, in FIGS. 1A and 5. As suggested in FIGS. 3 and 4 (and evident in the other drawings), an alternating sequence of relatively narrow, thin, high-density staves 182 and relatively wide, thick, low-density staves 180 is provided in floor-retaining flange 26. Floor-retaining flange 26 is made of a polymeric material that is able to undergo localized plastic deformation in accordance with the present disclosure during the manufacture of body blank 500 to produce such an alternating sequence of high-density and low-density areas. In an illustrative embodiment, floor-retaining flange 26 of body blank 500 is made of an insulative cellular non-aromatic polymeric material.


In illustrative embodiments, the arc-shaped connecting web 25 of floor mount 17 that extends along curved fold line 516 is formed to have a higher density than neighboring portions of the web-support ring 126 and floor-retaining flange 26. Connecting web 25 of floor mount 17 is made of a polymeric material that is able to undergo localized plastic deformation in accordance with the present disclosure during manufacture of body blank 500. In an illustrative embodiment, connecting web 25 of body blank is made of an insulative cellular non-aromatic polymeric material.


Localized plastic deformation is provided in accordance with the present disclosure in, for example, a floor region 104 of a body 11 of an insulative cup 10 comprising an insulative cellular non-aromatic polymeric material as suggested in FIGS. 2A-5. A material has been plastically deformed, for example, when it has changed shape to take on a permanent set in response to exposure to an external compression load and remains in that new shape after the load has been removed. Insulative cup 10 disclosed herein is not a paper cup but rather a cup made of an insulative cellular non-aromatic polymeric material with insulative qualities suitable for holding hot and cold contents.


A blank 500 of polymeric material in accordance with the present disclosure is used to form a cup body 11 as suggested in FIGS. 1A-1C. Then a floor 20 is mated to a floor mount 17 included in the cup body 11 to form a cup 10 as suggested in FIGS. 2A and 2B. The polymeric material is an insulative cellular non-aromatic polymeric material in an illustrative embodiment.


The blank 500 includes an upper band 500U and a lower band 500L as suggested in FIG. 1A. Upper band 500U is formed to include a curved top edge 506. Lower band 500L is formed to include a left-end edge 514, a right-end edge 512, and a curved bottom edge 508 arranged to extend between the left-end and right-end edges 514, 512. Lower band 500L is appended to upper band 500U along a curved fold line 516 to locate the curved fold line 516 between the curved top and bottom edges 506, 508.


The lower band 500L is formed to include a series of high-density staves 182 of a first density and low-density staves 180 of a relatively lower second density as suggested in FIGS. 1A and 6. Each stave is arranged to extend from the curved bottom edge 508 of lower band 500L toward the curved fold line 516. The high-density and low-density staves 182, 180 are arranged to lie in an alternating sequence extending from about the left-end edge of lower band 500L to about the right-end edge of lower band 500L to cause density to alternate from stave to stave along a length of the lower band 500L.


Lower band 500L has a first side 502 and an opposite second side 504 as suggested in FIG. 1B. Each low-density stave 180 has a first face on first side 502 of lower band 500L, a second face on the opposite second side 504 of lower band 500L, and a first thickness defined by a distance between the first and second faces of the low-density stave 180. Each high-density stave 182 has a first face on the first side 502 of lower band 500L, a second face on second side 504 of lower band 500L, and a second thickness defined by a distance between the first and second faces of the high-density stave 182. The second thickness is less than the first thickness. In an illustrative embodiment, the second thickness is about half of the first thickness.


Each high-density stave 182 has a narrow width and each low-density stave 180 has a relatively wider wide width as shown, for example, in FIGS. 2B and 6. The narrow width is about 0.028 inch (0.711 mm) and the relatively wider wide width is about 0.067 inch (1.702 mm). Lower band 500L includes a border section 500B extending from the left-end edge to the right-end edge and lying between the curved fold line 516 and an upper end of each of the high-density and low-density staves 182, 180 as suggested in FIG. 6. Border section 500B has a height of about 0.035 inch (0.889 mm).


A connecting web 25 included in the blank 500 is defined by polymeric material extending along and on either side of the curved fold line 516 as suggested in FIGS. 1A, 3, 5, and 6. The connecting web 25 has a third density that is lower than the first density in an illustrative embodiment. The third density of the connecting web 25 is about equal to the second density of the low-density staves 180.


Each low-density stave 180 has a first thickness. Each high-density stave 182 has a relatively thinner second thickness as suggested in FIG. 4. The connecting web 25 has a third thickness that is about equal to the relatively thinner second thickness.


Upper band 500U includes a left-end edge 514 arranged to extend from the curved fold line 516 to a first end of the curved top edge 506 and a right-end edge 512 arranged to extend from the curved fold line 516 to an opposite second end of the curved top edge 506. Upper band 500U includes a top strip 500U1 arranged to extend along the curved top edge 506 from the left-end edge 514 of upper band 500U to the right-end edge 512 of upper band 500U, a bottom strip 500U3 arranged to extend along curved fold line 516 from the left-end edge 514 of upper band 500U to the right-end edge 512 of upper band 500U, and a middle strip 500U2 arranged to lie between and interconnect the top and bottom strips and extend from the left-end edge 514 of upper band 500U to the right-end edge 512 of upper band 500U.


Top strip 500U1 of upper band 500U is configured to be moved relative to the middle strip 500U2 of upper band 500U during a blank conversion process to form a circular rolled brim 16. Middle strip 500U2 of upper band 500U is configured to be wrapped about a central vertical axis (CA) during the blank conversion process to provide a sleeve-shaped side wall 18 coupled to circular rolled brim 16.


Bottom strip 500U3 of upper band 500U and lower band 500L cooperate to form a floor mount 17 as suggested in FIGS. 1A, 1B, and 3. Floor mount 17 is configured to provide means for receiving a portion 23 of a floor 20 during a cup formation process to cause floor 20 and sleeve-shaped side wall 18 to cooperate to form an interior region 14 in response to folding movement of lower band 500L along the curved fold line 516 while wrapping upper band 500U around a vertical central axis (CA) to establish an annular shape of lower band 500L to provide a ring-shaped floor-retaining flange 26 and to establish an annular shape of the bottom strip 500U3 of upper band 500U to provide a ring-shaped web-support ring 126 surrounding the ring-shaped floor-retaining flange 26 to provide an annular floor-receiving pocket 20P therebetween.


In a first embodiment shown in FIGS. 1A-4, first face 502 of lower band 500L is formed to include a depression along the length of a high-density stave 182 and between opposing edges of neighboring low-density staves 180. The depression is arranged to open in a direction away from the ring-shaped web-support ring 126 defined by the bottom strip 500U3 of upper band 500U and arranged to surround high-density and low-density staves 182, 180 included in the floor-retaining flange 26 defined by lower band 500L.


In another embodiment shown in FIG. 15, first face of lower band 500L is formed to include a depression along the length of a high-density stave 182 and between opposing edges of neighboring low-density staves 180. The depression is arranged to open in a direction toward the ring-shaped web support ring 126 defined by the bottom strip of upper band 500U and arranged to surround high-density and low-density staves 182, 180 included in the floor-retaining flange 26 defined by lower band 500L.


A first embodiment of insulative cup 10 having region 104 where localized plastic deformation provides segments of insulative cup 10 that exhibit higher material density than neighboring segments of insulative cup 10 in accordance with the present disclosure is shown in FIGS. 2A-5. Insulative cup 10 is similar to the insulative cup 10 disclosed in U.S. patent application Ser. No. 13/491,007 and is incorporated by reference in its entirety herein. In the present application, the fourth region 104 of insulative cup 10 of U.S. patent application Ser. No. 13/491,007 is replaced with other floor region embodiments as disclosed herein. As an example, insulative cup 10 is made using an illustrative body blank 500 shown in FIGS. 1A and 5. A suitable cup-manufacturing process that makes body blank 500 and insulative cup 10 is disclosed in U.S. patent application Ser. No. 13/526,444 and is incorporated by reference in its entirety herein.


An insulative cup 10 comprises a body 11 including a sleeve-shaped side wall 18 and a floor 20 coupled to body 11 to define an interior region 14 bound by sleeve-shaped side wall 18 and floor 20 as shown, for example, in FIG. 2A. Body 11 further includes a rolled brim 16 coupled to an upper end of side wall 18 and a floor mount 17 coupled to a lower end of side wall 18 as suggested in FIGS. 2A, 2B, and 3. Floor mount 17 includes a web-support ring 126, a floor-retaining flange 26, and a connecting web 25 as shown, for example, in FIGS. 1A, 1B, and 3.


Body 11 is formed from a strip of insulative cellular non-aromatic polymeric material as disclosed herein. In accordance with the present disclosure, a strip of insulative cellular non-aromatic polymeric material is configured (by application of pressure-with or without application of heat) to provide means for enabling localized plastic deformation in at least one selected region (for example, region 104) of body 11 to provide a plastically deformed first material segment having a first density located in a first portion of the selected region of body 11 and a second material segment having a second density lower than the first density located in an adjacent second portion of the selected region of body 11 without fracturing the insulative cellular non-aromatic polymeric material so that a predetermined insulative characteristic is maintained in body 11.


According to the present disclosure, body 11 includes localized plastic deformation that is enabled by the insulative cellular non-aromatic polymeric material in a floor-retaining flange 26 of a floor mount 17. Floor-retaining flange 26 includes an alternating sequence of upright thick relatively low-density staves 180 and thin relatively high-density staves 182 arranged in side-to-side relation to extend upwardly from a connecting web 25 of floor mount 17 toward interior region 14 bounded by sleeve-shaped side wall 18. This alternating sequence of thick low-density staves 180 and thin high-density staves 182 is preformed in a body blank 500 made of a deformable polymeric material in an illustrative embodiment before body blank 500 is formed to define insulative cup 10 as suggested in FIGS. 2A-5.


Referring now to FIG. 5, body blank 500 is formed to include connecting web 25 of floor mount 17 which is a relatively high-density area of localized plastic deformation that interconnects a relatively low density web-support ring 126 of floor mount 17 to a relatively low density floor-retaining flange 26 of floor mount 12. Referring to FIG. 3, floor mount 17 is configured to include a ring-shaped floor-receiving pocket 20P sized to receive a platform-support member 23 of floor 20 (as also suggested in FIG. 1B) such that floor 20 is supported by the floor mount 17 to cause a horizontal platform 21 of floor 20 to be supported at circular floor-position locator reference line 521 to form a boundary of the interior region 14 of insulative cup 10. Insulative cup 10 forms a vessel having a mouth 32 opening into an interior region 14 that is bounded by sleeve-shaped side wall 18 and horizontal platform 21 of floor 20.


Sleeve-shaped side wall 18 includes an upright inner strip 514, an upright outer strip 512, and an upright funnel-shaped web 513 extending between inner and outer strips 514, 512 as suggested in FIG. 3. Upright inner strip 514 is arranged to extend upwardly from floor 20 and upright outer strip 512 is arranged to extend upwardly from floor 20 to mate with upright inner strip 514 along an interface 184 therebetween to form a seam of sleeve-shaped side wall 18 as suggested in FIGS. 3 and 4. Upright funnel-shaped web 513 is arranged to interconnect upright inner and outer strip 514, 512 and surround interior region 14. Upright funnel-shaped web 513 is configured to cooperate with upright inner and outer strips 514, 512 to form sleeve-shaped side wall 18 as suggested in FIGS. 2 and 3.


Rolled brim 16 is coupled to an upper end of sleeve-shaped side wall 18 to lie in spaced-apart relation to floor 20 and to frame an opening into interior region 14. Rolled brim 16 includes an inner rolled tab 161 (shown in phantom), an outer rolled tab 162, and a C-shaped brim lip 163 as suggested in FIGS. 1 and 2. The inner rolled tab 161 is coupled to an upper end of upright outer strip 512 included in sleeve-shaped side wall 18. Outer rolled tab 162 is coupled to an upper end of upright inner strip 514 included in sleeve-shaped side wall 18 and to an outwardly facing exterior surface of inner rolled tab 161. Brim lip 163 is arranged to interconnect oppositely facing side edges of each of inner and outer rolled tabs 161, 162. Brim lip 163 is configured to cooperate with inner and outer rolled tabs 161, 162 to form rolled brim 16 as suggested in FIGS. 2A and 2B.


Floor mount 17 of body 11 is coupled to a lower end of sleeve-shaped side wall 18 and to floor 20 to support floor 20 in a stationary position relative to sleeve-shaped side wall 18 to form interior region 14 as suggested in FIGS. 2A. 2B and 3. Floor mount 17 includes a floor-retaining flange 26 coupled to floor 20, a web-support ring 126 coupled to the lower end of sleeve-shaped side wall 18 and arranged to surround floor-retaining flange 26, and a connecting web 25 arranged to interconnect floor-retaining flange 26 and web-support ring 126 as suggested in FIG. IB and 3. Connecting web 25 is configured to provide a material segment having, higher first density. Web-support ring 126 is configured to provide a second material segment having lower second density. Each of connecting web 25 and web-support ring 126 has an annular shape. Floor-retaining flange 26 has an annular shape. Each of floor-retaining flange 26, connecting web 25, and web-support ring, 126 includes an inner layer having an interior surface mating with floor 20 and an overlapping outer layer matingg, with an exterior surface of inner layer as suggested in FIGS. 2B and 3.


Floor 20 of insulative cup 10 includes a horizontal platform 21 bounding a portion of interior region 14 and a platform-support member 23 coupled to horizontal platform 21 as shown, for example, in FIGS. 2 and 3. Platform-support member 23 is ring-shaped and arranged to extend downwardly away from horizontal platform 21 and interior region 14 into a floor-receiving pocket 20P provided between floor-retaining flange 26 and the web-support ring 126 surrounding floor-retaining flange 26 to mate with each of floor-retaining flange 26 and web-support ring 126 as suggested in FIGS. 1B, 3, and 7.


Platform-support member 23 of floor 20 has an annular shape and is arranged to surround floor-retaining flange 26 and lie in an annular space provided between horizontal platform 21 and connecting web 25 as suggested in FIG. 3. Each of floor-retaining flange 26, connecting web 25, and web-support ring 126 includes an inner layer having an interior surface mating with floor 20 and an overlapping outer layer mating with an exterior surface of inner layer as suggested in FIG. 3 Inner layer of each of floor-retaining flange 26, web 25, and web-support ring 126 is arranged to mate with platform-support member 23 as suggested in FIG. 3.


Floor-retaining flange 26 of floor mount 17 is arranged to lie in a stationary position relative to sleeve-shaped side wall 18 and coupled to floor 20 to retain floor 20 in a stationary position relative to sleeve-shaped side wall 18 as suggested in FIGS. 2B and 3. Horizontal platform 21 of floor 20 has a perimeter edge mating with the circular floor-position locator reference line 521 provided on an inner surface of sleeve-shaped side wall 18 and an upwardly facing top side bounding a portion of interior region 14 as suggested in FIG. 3.


Floor-retaining flange 26 of floor mount 17 is ring-shaped and includes an alternating sequence of upright thick low-density staves 180 and thin high-density staves 182 arranged to lie in side-to-side relation to one another to extend upwardly toward a downwardly facing underside of horizontal platform 21. A first of the upright thick low-density staves 180 is configured to include a right side edge extending upwardly toward the underside of horizontal platform 21. A second of the upright thick staves 180 is configured to include a left side edge arranged to extend upwardly toward underside of horizontal platform 21 and lie in spaced-apart confronting relation to right side edge of the first of the upright thick staves 180. A first of the upright thin high-density staves 182 is arranged to interconnect left and right side edges and cooperate with left and right side edges to define therebetween a vertical channel opening inwardly into a lower interior region bounded by horizontal platform 21 and floor-retaining flange 26 as suggested in FIGS. 3 and 4. The first of the thin high-density staves 182 is configured to provide the first material segment having the higher first density. The first of the thick low-density staves 180 is configured to provide the second material segment having the lower second density.


Floor-retaining flange 26 of floor mount 17 has an annular shape and is arranged to surround a vertically extending central axis (CA) intercepting a center point of horizontal platform 21 as suggested in FIGS. 3 and 4. The first of the thin high-density staves 182 has an inner wall facing toward a portion of the vertically extending central axis CA passing through the lower interior region. Platform-support member 23 is arranged to surround floor-retaining flange 26 and cooperate with horizontal platform 21 to form a downwardly opening floor chamber 20C containing the alternating series of upright thick low-density staves 180 and thin high-density staves 182 therein.


Each first material segment (e.g. stave 182) in the insulative cellular non-aromatic polymeric material has a relatively thin first thickness. Each companion second material segment (e.g. stave 180) in the insulative cellular non-aromatic polymeric material has a relatively thicker second thickness.


Body 11 is formed from a sheet of insulative cellular non-aromatic polymeric material that includes, for example, a strip of insulative cellular non-aromatic polymeric material and a skin coupled to one side of the strip of insulative cellular non-aromatic polymeric material. In one embodiment of the present disclosure, text and artwork or both can be printed on a film included in the skin. The skin may further comprise an ink layer applied to the film to locate the ink layer between the film and the strip of insulative cellular non-aromatic polymeric material. In another example, the skin and the ink layer are laminated to the strip of insulative cellular non-aromatic polymeric material by an adhesive layer arranged to lie between the ink layer and the insulative cellular non-aromatic polymer material. As an example, the skin may be biaxially oriented polypropylene.


Insulative cellular non-aromatic polymeric material comprises, for example, a polypropylene base resin having a high melt strength, one or both of a polypropylene copolymer and homopolymer resin, and one or more cell-forming agents. As an example, cell- forming agents may include a primary nucleation agent, a secondary nucleation agent, and a blowing agent defined by gas means for expanding the resins and to reduce density. in one example, the gas means comprises carbon dioxide. in another example, the base resin comprises broadly distributed molecular weight polypropylene characterized by a distribution that is unimodal and not bimodal. Further details of a suitable material for use as insulative cellular non-aromatic polymeric material is disclosed, in U.S. patent application Ser. No. 13/491,327, previously incorporated herein by reference.


Insulative cup 10 is an assembly comprising the body blank 500 and the floor 20. As an example, floor 20 is mated with bottom portion 24 during cup-manufacturing process 40 to form a primary seal therebetween. A secondary seal may also be established between support structure 19 and floor 20. An insulative container may be formed with only the primary seal, only the secondary seal, or both the primary and secondary seals.


Referring again to FIG. 2A, a top portion of side wall 18 is arranged to extend in a downward direction 28 toward floor 20 and is coupled to bottom portion 24. Bottom portion 24 is arranged to extend in an opposite upward direction 30 toward rolled brim 16. Top strip 500U1 of upper band 500U is curled during cup-manufacturing process 40 to form rolled brim 16. Rolled brim 16 forms a mouth 32 that is arranged to open into interior region 14 of cup 10.


Side wall 18 is formed using a body blank 500 as suggested in FIGS. 5 and 6. Body blank 500 may be produced from a strip of insulative cellular non-aromatic polymeric material, a laminated sheet, or a strip of insulative cellular non-aromatic polymeric material that has been printed on. Referring now to FIGS. 5 and 6, body blank 500 is generally planar with a first side 502 and a second side 504. Body blank 500 is embodied as a circular ring sector with an outer arc length S1 that defines a first edge 506 and an inner arc length S2 that defines a second edge 508. The arc length S1 is defined by a subtended angle Θ in radians times the radius R1 from an axis 510 to the edge 506. Similarly, inner arc length S2 has a length defined as subtended angle Θ in radians times the radius R2. The difference of R1-R2 is a length h which is the length of two linear edges 512 and 514. Changes in R1, R2 and Θ will result in changes in the size of insulative cup 10. First linear edge 512 and second linear edge 514 each lie on a respective ray emanating from center 510. Thus, body blank 500 has two planar sides, 502 and 504, as well as four edges 506, 508, 512, and 514 which define the boundaries of body blank 500.


Fold line 516 has a radius R3 measured between center 510 and a fold line 516 and fold line 516 has a length S3. As shown in FIG. 5, R1 is relatively greater than R3. R3 is relatively greater than R2. The differences between R1, R2, and R3 may vary depending on the application.


Fold line 516 shown in FIG. 5 is a selected region of a strip of insulative cellular non-aromatic polymeric material that has been plastically deformed in accordance with the present disclosure (by application of pressure—with or without application of heat) to induce a permanent set resulting in a localized area of increased density and reduced thickness. The thickness of the insulative cellular non-aromatic polymeric material at fold line 516 is reduced by about 50%. In addition, the blank 500 is formed to include a number of depressions 518 or ribs 518 positioned between the curved bottom edge 508 and curved fold line 516 with the depressions 518 creating a discontinuity in a surface 531. Each depression 518 is linear having a longitudinal axis that overlies a ray emanating from center 510. As discussed above, depressions 518 promote orderly forming of floor-retaining flange 26. The insulative cellular non-aromatic polymer material of reduced thickness at fold line 516 ultimately serves as connecting web 25 in the illustrative insulative cup 10. As noted above, connecting web 25 promotes folding of floor-retaining flange 26 inwardly toward interior region 14. Due to the nature of the insulative cellular non-aromatic polymeric material used to produce illustrative body blank 500, the reduction of thickness in the material at curved fold line 516 and depressions 518 owing to the application of pressure—with or without application of heat—increases the density of the insulative cellular non-aromatic polymeric material at the localized reduction in thickness.


As shown in FIG. 6, each depression 518 formed in floor-retaining flange 26 is spaced apart from each neighboring depression 518 by a first distance 551. In an illustrative example, first distance 551 is about 0.067 inches (1.7018 mm). Each depression 518 is also configured to have a first width 552. In an illustrative example, first width 552 is about 0.028 inches (0.7112 mm). Each depression 518 is also spaced apart from curved fold line 516 by a second distance 553. In an illustrative example, second distance 553 is about 0.035 inches (0.889 mm).


Depressions 518 and curved fold line 516 are formed by a die that cuts body blank 500 from a strip of insulative cellular non-aromatic polymeric material, laminated sheet, or a strip of printed-insulative cellular non-aromatic polymeric material and is formed to include punches or protrusions that reduce the thickness of the body blank 500 in particular locations during the cutting process. The cutting and reduction steps could be performed separately, performed simultaneously, or that multiple steps may be used to form the material. For example, in a progressive process, a first punch or protrusion could be used to reduce the thickness a first amount by applying a first pressure load. A second punch or protrusion could then be applied with a second pressure load greater than the first. In the alternative, the first punch or protrusion could be applied at the second pressure load. Any number of punches or protrusions may be applied at varying pressure loads, depending on the application.


As shown in FIGS. 1A-4, depressions 518 formed in floor-retaining flange 26 permit controlled gathering of the floor-retaining flange 26 that supports a platform-support member 23 and horizontal platform 21. Floor-retaining flange 26 bends about curved fold line 516 to form floor-receiving pocket 20P with curved fold line 516 being configured to form connecting web 25. The absence of material in depressions 518 provides relief for the insulative cellular non-aromatic polymeric material as it is formed into floor-retaining flange 26. This controlled gathering can be contrasted to the bunching of material that occurs when materials that have no relief are formed into a structure having a narrower dimension. For example, in traditional paper cups, a retaining flange type will have a discontinuous surface due to uncontrolled gathering. Such a surface is usually worked in a secondary operation to provide an acceptable visual surface, or the uncontrolled gathering is left without further processing, with an inferior appearance. The approach of forming the depressions 518 in accordance with the present disclosure is an advantage of the insulative cellular non-aromatic polymeric material of the present disclosure in that the insulative cellular non-aromatic polymeric material is susceptible to plastic deformation in localized zones in response to application of pressure (with or without application of heat) to achieve a superior visual appearance.


In another embodiment shown in FIGS. 7-10, an insulative cup 310 is similar to insulative cup 10; however, the floor-retaining flange 26 of floor mount-17 of insulative cup 10 is omitted and replaced with a floor-retaining flange 326 of floor mount 317 that includes a pattern of areas of thicker and thinner areas that form a crossing pattern as suggested in FIGS. 7, 9, and 10. Elements of insulative cup 310 that are similar to insulative cup 10 have like reference designators and the elements that are structurally different are given a new reference designator.


Insulative cup 310 is formed from a body blank 600 shown in FIGS. 9 and 10. Body blank 600 is similar to body blank 500, with the principal difference being that the staves 180 and 182 are replaced with knurling 360. The geometry of body blank 600 will not be discussed in detail here, except where the structure of body blank 600 differs from body blank 500. For example, floor-retaining flange 326 includes first high-density areas of reduced thickness 382 which are positioned at an angle 386 of about 45 degrees as compared to second edge 508 as suggested in FIGS. 7 and 10. Second high-density areas of reduced thickness 383 formed in floor-retaining flange 326 are oriented perpendicular to the first high-density areas of reduced thickness 382 and intersect the high-density first areas of reduced thickness 382 at intersections 384. The reduced high-density areas of thickness 382 and 383 are interposed between unreduced low-density areas 380 which may include areas bounded by reduced areas of thickness 382 and 383 and/or a fold line 516 formed in a blank 600.


Knurling 360 which is a result of the formation of reduced areas of thickness 382 and 383 also permits controlled gathering of floor-retaining flange 326 similar to the staves 180 and 182 of insulative cup 10. For example, reduced areas of thickness 382 and 383 provide relief when the blank 600 is wrapped about the central axis CA so that the surface of floor-retaining flange 326 appears neat and regular when insulative cup 310 is formed.


Angle 386 may be varied from zero to ninety degrees depending on various factors. Likewise, the second areas of reduced thickness 383 may intersect the first areas of reduced thickness 383 at any of a number of angles when the knurling 360 is formed. Furthermore, the distance between adjacent areas of reduced thickness 382 may be greater than or less than the distance between adjacent areas of reduced thickness 383 such that the pattern may be varied.


In yet another embodiment shown in FIGS. 11-14, an insulative cup 410 is similar to insulative cup 10; however, the floor-retaining flange 26 of floor mount-17 of insulative cup 10 is omitted and replaced with a floor-retaining flange 426 of floor mount 417 that includes a diagonal pattern formed at an angle as suggested in FIGS. 11, 13, and 14. Elements of insulative cup 410 that are similar to insulative cup 10 have like reference designators and the elements that are structurally different are given a new reference designator.


Insulative cup 410 is formed from a body blank 700 as shown in FIGS. 13 and 14. Body blank 600 is similar to body blank 500, with the principal difference being that the staves 180 and 182 are replaced with staves 480 and 482. The geometry of body blank 700 will not be discussed in detail here, except where the structure of body blank 700 differs from body blank 500. For example, floor-retaining flange 426 includes high-density first staves of reduced thickness 482 which are positioned at an angle 486 of about 45 degrees as compared to second edge 508 as suggested in FIGS. 11 and 14. Second low-density staves 482 are interposed between first high-density staves 480.


Staves 480 and 482 facilitate orderly gathering of floor-retaining flange 426 similar to the staves 180 and 182 of insulative cup 10. For example, high-density staves 480 have reduced areas of thickness that provide relief when body blank 700 is wrapped about the central axis CA so that the surface of floor-retaining flange 426 appears neat and regular when insulative cup 410 is formed. Angle 486 may be varied degrees depending on various factors. Furthermore, the distance between adjacent staves 382 may be varied.


The foregoing discloses various patterns that may be formed in the floor region 104 of the insulative cups 10, 310, and 410 with the patterns oriented toward the floor chamber 20C of insulative cups 10, 310, and 410. As suggested in FIGS. 15-17, the patterns formed in floor-retaining flanges 26, 326, and 426 may be formed on the opposite side of the respective body blanks 500, 600, and 700 so that the patterns are juxtaposed against platform-support member 13 of floor 20.


For example, insulative cup 10′ comprises a floor-retaining flange 26′ includes staves 180′ and 182′ which are not visible from the inner floor chamber 20C as suggested in FIG. 15. Staves 180′ and 182′ still permit controlled gathering of the floor-retaining flange 26′ when it is wrapped about the platform-support member 23 and the insulative cup 10′ is formed, but the expanded material is hidden from view and an inner surface of floor-retaining flange 26′ visible from the inner floor chamber 20C is relatively smooth because of the relief provided by the staves 180′ and 182′.


Similarly, an insulative cup 310′ is formed such that knurling 360′ is in contact with the platform-support member 23 and not visible from the inner floor chamber 20C as suggested in FIG. 16. A floor-retaining flange 326′ includes first areas of reduced thickness 382′ and second areas of reduced thickness 383′ that intersect at intersections 384′ leaving areas 380′ of normal thickness. Knurling 360′ still permits controlled gathering of the floor-retaining flange 326′ when it is wrapped about the platform-support member 23 and the insulative cup 310′ is formed, but the expanded material is hidden from view and an inner surface of floor-retaining flange 326′ visible from the inner floor chamber 20C is relatively smooth because of the relief provided by the first areas of reduced thickness 382′ and second areas of reduced thickness 383′.


Still another insulative cup 410′ is formed such that a floor-retaining flange 426′ includes first staves 480′ and second staves 482′ in contact with the platform-support member 13 and not visible from the inner floor chamber 20C as suggested in FIG. 17. The second staves 482′ are areas of reduced thickness and the first staves 480′ have a larger thickness than the second staves 482′. The staves 480′ and 482′ are formed at an angle relative to the lower edge of insulative cup 410′. The relief provided by second staves 482′ permits controlled gathering of the floor-retaining flange 426′ when it is wrapped about the platform-support member 23 and the insulative cup 410′ is formed, but the expanded material is hidden from view and an inner surface of floor-retaining flange 426′ visible from the inner floor chamber 20C is relatively smooth.


The deformation achieved in the blanks is dependent on several factors. As illustrated in FIGS. 18 and 19, the deformation of the insulative cellular non-aromatic polymeric material may result in some irregularity of the material in cross-section. For example, FIG. 18 is a partial elevation view of a portion of the floor-retaining flange included in the insulative cup of FIG. 2A showing a plurality of measurement points for determining the dimensional consistency of the plurality of vertical ribs formed in the floor-retaining flange. In general, the dimensional consistency is maintained at each measurement point. However, as shown in FIG. 19, there may be some variation of the thickness in some embodiments.


The partial elevation view of the portion of the floor-retaining flange shown in FIG. 19 shows the locations at which height 186, thickness 188, width 190, and depth 192 measurements are taken to determine the dimensional consistency of the plurality of staves 180 and 182 formed in the floor-retaining flange. In the illustrative embodiment of FIG. 19, stave 180 has a height 186 that is approximately equal to the thickness of a sheet used to form the body blank 500. Depth 192 of stave 180 is maximized in a central location and is gradually reduced to stave 182 which has a thickness 188. The width of each combination of staves 180 and 182 is maintained consistently at 190. Thus, while the stave 180 has some lateral variation in depth, the thickness 188 and height 186 are maintained along the length of each stave 180.

Claims
  • 1. A blank of polymeric material used to form a body of a cup, the blank comprising an upper band formed to include a curved top edge anda lower band formed to include a left-end edge, a right-end edge, and a curved bottom edge arranged to extend between the left-end and right-end edges, wherein the lower band is appended to the upper band along a curved fold line to locate the curved fold line between the curved top and bottom edges, the lower band is formed to include a series of high-density staves of a first density and low-density staves of a relatively lower second density, each stave is arranged to extend from the curved bottom edge of the lower band toward the curved fold line, and the high-density and low-density staves are arranged to lie in an alternating sequence extending from about the left-end edge of the lower band to the right-end edge of the lower band to cause density to alternate from stave to stave along a length of the lower band,wherein the lower band has a first side and an opposite second side, each low-density stave has a first face on the first side of the lower band, a second face on the opposite second side of the lower band, and a first thickness defined by a distance between the first and second faces of the low-density stave, and each high-density stave has a first face on the first side of the lower band, a second face on the second side of the lower band, and a second thickness defined by a distance between the first and second faces of the high-density stave, and the second thickness is less than the first thickness,wherein the second thickness is about half of the first thickness.
  • 2. The blank of claim 1, wherein the polymeric material is an insulative cellular non-aromatic polymeric material.
  • 3. The blank of claim 1, wherein a connecting web is defined by polymeric material extending along and on either side of the curved fold line and the connecting web has a third density that is lower than the first density.
  • 4. The blank of claim 3, wherein the third density of the connecting web is about equal to the second density of the low-density staves.
  • 5. The blank of claim 4, wherein each low-density stave has a first thickness, each high-density stave has a relatively thinner second thickness, and the connecting web has a third thickness that is about equal to the relatively thinner second thickness.
  • 6. The blank of claim 3, wherein the polymeric material is an insulative cellular non-aromatic polymeric material.
  • 7. The blank of claim 1, wherein the upper band includes a left-end edge arranged to extend from the curved fold line to a first end of the curved top edge and a right-end edge arranged to extend from the curved fold line to an opposite second end of the curved top edge, the upper band includes a top strip arranged to extend along the curved top edge from the left-end edge of the upper band to the right-end edge of the upper band, a bottom strip arranged to extend along the curved fold line from the left-end edge of the upper band to the right-end edge of the upper band, and a middle strip arranged to lie between and interconnect the top and bottom strips and extend from the left-end edge of the upper band to the right-end edge of the upper band, the top strip is configured to be moved relative to the middle strip during a blank conversion process to form a circular rolled brim, the middle strip is configured to be wrapped about a central vertical axis during the blank conversion process to provide a sleeve-shaped side wall coupled to the circular rolled brim, and the bottom strip of the upper band and the lower band cooperate to form a floor mount configured to provide means for receiving a portion of a floor during a cup formation process to cause the floor and the sleeve-shaped side wall to cooperate to form an interior region in response to folding movement of the lower band along the curved fold line while wrapping the upper band around a vertical central axis to establish an annular shape of the lower band to provide a ring-shaped floor-retaining flange and to establish an annular shape of the bottom strip of the upper band to provide a ring-shaped web-support ring surrounding the ring-shaped floor-retaining flange to provide an annular floor-receiving pocket therebetween.
  • 8. The blank of claim 7, wherein a connecting web is defined by polymeric material extending along and on either side of the curved fold line and the connecting web has a third density that is lower than the first density and wherein the connecting web is appended to the web-support ring and to the floor-retaining flange.
  • 9. The blank of claim 8, wherein the polymeric material is an insulative cellular non-aromatic polymeric material.
  • 10. A blank of polymeric material used to form a body of a cup, the blank comprising an upper band formed to include a curved top edge anda lower band formed to include a left-end edge, a right-end edge, and a curved bottom edge arranged to extend between the left-end and right-end edges, wherein the lower band is appended to the upper band along a curved fold line to locate the curved fold line between the curved top and bottom edges, the lower band is formed to include a series of high-density staves of a first density and low-density staves of a relatively lower second density, each stave is arranged to extend from the curved bottom edge of the lower band toward the curved fold line, and the high-density and low-density staves are arranged to lie in an alternating sequence extending from about the left-end edge of the lower band to the right-end edge of the lower band to cause density to alternate from stave to stave along a length of the lower band, wherein each high-density stave has a narrow width and each low-density stave has a relatively wider wide width,wherein the narrow width is about 0.028 inch (0.711 mm) and the relatively wider wide width is about 0.067 inch (1.702 mm).
  • 11. The blank of claim 10, wherein the polymeric material is an insulative cellular non-aromatic polymeric material.
  • 12. A blank of polymeric material used to form a body of a cup, the blank comprising an upper band formed to include a curved top edge anda lower band formed to include a left-end edge, a right-end edge, and a curved bottom edge arranged to extend between the left-end and right-end edges, wherein the lower band is appended to the upper band along a curved fold line to locate the curved fold line between the curved top and bottom edges, the lower band is formed to include a series of high-density staves of a first density and low-density staves of a relatively lower second density, each stave is arranged to extend from the curved bottom edge of the lower band toward the curved fold line, and the high-density and low-density staves are arranged to lie in an alternating sequence extending from about the left-end edge of the lower band to the right-end edge of the lower band to cause density to alternate from stave to stave along a length of the lower band,wherein the lower band includes a border section extending from the left-end edge to the right-end edge and lying between the curved fold line and an upper end of each of the high-density and low-density staves and the border section has a height of about 0.035 inch (0.889 mm).
  • 13. A blank of polymeric material used to form a body of a cup, the blank comprising an upper band formed to include a curved top edge anda lower band formed to include a left-end edge, a right-end edge, and a curved bottom edge arranged to extend between the left-end and right-end edges, wherein the lower band is appended to the upper band along a curved fold line to locate the curved fold line between the curved top and bottom edges, the lower band is formed to include a series of high-density staves of a first density and low-density staves of a relatively lower second density, each stave is arranged to extend from the curved bottom edge of the lower band toward the curved fold line, and the high-density and low-density staves are arranged to lie in an alternating sequence extending from about the left-end edge of the lower band to the right-end edge of the lower band to cause density to alternate from stave to stave along a length of the lower band, wherein the lower band has a first side and an opposite second side, each low-density stave has a first face on the first side of the lower band, a second face on the opposite second side of the lower band, and a first thickness defined by a distance between the first and second faces of the low-density stave, and each high-density stave has a first face on the first side of the lower band, a second face on the second side of the lower band, and a second thickness defined by a distance between the first and second faces of the high-density stave,wherein the first face is formed to include a depression along the length of a high-density stave and between opposing edges of neighboring low-density staves and the depression is arranged to open in a direction away from the ring-shaped web support ring defined by the bottom strip of the upper band and arranged to surround high-density and low-density staves included in the floor-retaining flange defined by the lower band.
  • 14. The blank of claim 13, wherein the polymeric material is an insulative cellular non-aromatic polymeric material.
  • 15. A blank of polymeric material used to form a body of a cup, the blank comprising an upper band formed to include a curved top edge anda lower band formed to include a left-end edge, a right-end edge, and a curved bottom edge arranged to extend between the left-end and right-end edges, wherein the lower band is appended to the upper band along a curved fold line to locate the curved fold line between the curved top and bottom edges, the lower band is formed to include a series of high-density staves of a first density and low-density staves of a relatively lower second density, each stave is arranged to extend from the curved bottom edge of the lower band toward the curved fold line, and the high-density and low-density staves are arranged to lie in an alternating sequence extending from about the left-end edge of the lower band to the right-end edge of the lower band to cause density to alternate from stave to stave along a length of the lower band, wherein the lower band has a first side and an opposite second side, each low-density stave has a first face on the first side of the lower band, a second face on the opposite second side of the lower band, and a first thickness defined by a distance between the first and second faces of the low-density stave, and each high-density stave has a first face on the first side of the lower band, a second face on the second side of the lower band, and a second thickness defined by a distance between the first and second faces of the high-density stave,wherein the first face is formed to include a depression along the length of a high-density stave and between opposing edges of neighboring low-density staves and the depression is arranged to open in a direction toward the ring-shaped web support ring defined by the bottom strip of the upper band and arranged to surround high-density and low-density staves included in the floor-retaining flange defined by the lower band.
  • 16. The blank of claim 15, wherein the polymeric material is an insulative cellular non-aromatic polymeric material.
PRIORITY CLAIM

This application claims priority under 35 U.S.C. §119(e) to U.S. Provisional Application Ser. No. 61/737,406, filed Dec. 14, 2012, which is expressly incorporated by reference herein.

US Referenced Citations (368)
Number Name Date Kind
1396282 Penn Nov 1921 A
1435120 Holman Nov 1922 A
1920529 Sidebotham Aug 1933 A
1969030 Page Aug 1934 A
2097899 Smith Nov 1937 A
2809776 Barrington Oct 1957 A
3312383 Shapiro Apr 1967 A
3327038 Fox Jun 1967 A
3344222 Shapiro Sep 1967 A
3468467 Amberg Sep 1969 A
3547012 Amberg Dec 1970 A
3583624 Peacock Jun 1971 A
3733381 Willette May 1973 A
3793283 Frailey Feb 1974 A
3846349 Harada Nov 1974 A
3967991 Shimano Jul 1976 A
3971696 Manfredi Jul 1976 A
4049122 Maxwell Sep 1977 A
4070513 Rhoads Jan 1978 A
4106397 Amberg Aug 1978 A
4171085 Doty Oct 1979 A
4197948 Amberg Apr 1980 A
4240568 Pool Dec 1980 A
4284226 Herbst Aug 1981 A
4298331 Mueller Nov 1981 A
4299349 Gilden Nov 1981 A
4300891 Bemiss Nov 1981 A
4349400 Gilden Sep 1982 A
4365460 Cress Dec 1982 A
4409045 Busse Oct 1983 A
4550046 Miller Oct 1985 A
4621763 Brauner Nov 1986 A
4706873 Schulz Nov 1987 A
4720023 Jeff Jan 1988 A
4878970 Schubert Nov 1989 A
4918112 Roox Apr 1990 A
4940736 Alteepping Jul 1990 A
5078817 Takagaki Jan 1992 A
5158986 Cha Oct 1992 A
5160674 Colton Nov 1992 A
5180751 Park Jan 1993 A
5286428 Hayashi Feb 1994 A
5308568 Lipp May 1994 A
5348795 Park Sep 1994 A
5366791 Carr Nov 1994 A
5385260 Gatcomb Jan 1995 A
5443769 Karabedian Aug 1995 A
5445315 Shelby Aug 1995 A
5490631 Iioka Feb 1996 A
5547124 Mueller Aug 1996 A
5605936 DeNicola, Jr. Feb 1997 A
5622308 Ito Apr 1997 A
5628453 MacLaughlin May 1997 A
5629076 Fukasawa May 1997 A
5759624 Neale Jun 1998 A
5765710 Bergerioux Jun 1998 A
5766709 Geddes Jun 1998 A
5769311 Morita Jun 1998 A
5819507 Kaneko Oct 1998 A
5840139 Geddes Nov 1998 A
5866053 Park Feb 1999 A
5868309 Sandstrom Feb 1999 A
5944225 Kawolics Aug 1999 A
5948839 Chatterjee Sep 1999 A
6007437 Schickert Dec 1999 A
6030476 Geddes Feb 2000 A
6034144 Shioya Mar 2000 A
6051174 Park Apr 2000 A
6071580 Bland Jun 2000 A
6103153 Park Aug 2000 A
6129653 Fredricks Oct 2000 A
6136396 Gilmer Oct 2000 A
6139665 Schmelzer Oct 2000 A
6142331 Breining Nov 2000 A
6169122 Blizard Jan 2001 B1
6231942 Blizard May 2001 B1
6235380 Tupil May 2001 B1
6267837 Mitchell Jul 2001 B1
6284810 Burnham Sep 2001 B1
6294115 Blizard Sep 2001 B1
6306973 Takaoka Oct 2001 B1
6308883 Schmelzer Oct 2001 B1
6319590 Geddes Nov 2001 B1
6328916 Nishikawa Dec 2001 B1
6376059 Anderson Apr 2002 B1
6379802 Ito Apr 2002 B2
6420024 Perez Jul 2002 B1
6444073 Reeves Sep 2002 B1
6468451 Perez Oct 2002 B1
6472473 Ansems Oct 2002 B1
RE37932 Baldwin Dec 2002 E
6512019 Agarwal Jan 2003 B1
6521675 Wu Feb 2003 B1
6541105 Park Apr 2003 B1
6562447 Wu May 2003 B2
6565934 Fredricks May 2003 B1
6586532 Gauthy Jul 2003 B1
6593005 Tau Jul 2003 B2
6593384 Anderson Jul 2003 B2
6613811 Pallaver Sep 2003 B1
6616434 Burnham Sep 2003 B1
6646019 Perez Nov 2003 B2
6649666 Read Nov 2003 B1
6713139 Usui Mar 2004 B2
6720362 Park Apr 2004 B1
6749913 Watanabe Jun 2004 B2
6779662 Dorsey Aug 2004 B2
6811843 DeBraal Nov 2004 B2
6814253 Wong Nov 2004 B2
6883677 Goeking Apr 2005 B2
6884377 Burnham Apr 2005 B1
6884851 Gauthy Apr 2005 B2
6908651 Watanabe Jun 2005 B2
6926507 Cardona Aug 2005 B2
6926512 Wu Aug 2005 B2
7070852 Reiners Jul 2006 B1
7074466 DeBraal Jul 2006 B2
7094463 Haas Aug 2006 B2
7121991 Mannlein et al. Oct 2006 B2
7144532 Kim Dec 2006 B2
7173069 Swennen Feb 2007 B2
7234629 Ho Jun 2007 B2
7281650 Milan Oct 2007 B1
7355089 Chang Apr 2008 B2
7361720 Pierini Apr 2008 B2
7365136 Huovinen Apr 2008 B2
7423071 Mogami Sep 2008 B2
7458504 Robertson Dec 2008 B2
7504347 Poon Mar 2009 B2
7510098 Hartjes Mar 2009 B2
7513386 Hartjes Apr 2009 B2
7514517 Hoenig Apr 2009 B2
7524911 Karjala Apr 2009 B2
7557147 Martinez Jul 2009 B2
7579408 Walton Aug 2009 B2
7582716 Liang Sep 2009 B2
7585557 Aylward Sep 2009 B2
7592397 Markovich Sep 2009 B2
7608668 Shan Oct 2009 B2
7622179 Patel Nov 2009 B2
7622529 Walton Nov 2009 B2
7629416 Li Dec 2009 B2
7655296 Haas Feb 2010 B2
7662881 Walton Feb 2010 B2
7666918 Prieto Feb 2010 B2
7671106 Markovich Mar 2010 B2
7671131 Hughes Mar 2010 B2
7673564 Wolf Mar 2010 B2
7687442 Walton Mar 2010 B2
7695812 Peng Apr 2010 B2
7714071 Hoenig May 2010 B2
7732052 Chang Jun 2010 B2
7737061 Chang Jun 2010 B2
7737215 Chang Jun 2010 B2
7741397 Liang Jun 2010 B2
7754814 Barcus Jul 2010 B2
7759404 Burgun Jul 2010 B2
7786216 Soediono Aug 2010 B2
7795321 Cheung Sep 2010 B2
7803728 Poon Sep 2010 B2
7811644 DeBraal Oct 2010 B2
7818866 Hollis Oct 2010 B2
7820282 Haas Oct 2010 B2
7841974 Hartjes Nov 2010 B2
7842770 Liang Nov 2010 B2
7858706 Arriola Dec 2010 B2
7863379 Kapur Jan 2011 B2
7883769 Seth Feb 2011 B2
7893166 Shan Feb 2011 B2
7897689 Harris Mar 2011 B2
7906587 Poon Mar 2011 B2
7910658 Chang Mar 2011 B2
7915192 Arriola Mar 2011 B2
7918005 Hollis Apr 2011 B2
7918016 Hollis Apr 2011 B2
7922071 Robertson Apr 2011 B2
7928162 Kiss Apr 2011 B2
7935740 Dang May 2011 B2
7947367 Poon May 2011 B2
7951882 Arriola May 2011 B2
7977397 Cheung Jul 2011 B2
7989543 Karjala Aug 2011 B2
7993254 Robertson Aug 2011 B2
7998579 Lin Aug 2011 B2
7998728 Rhoads Aug 2011 B2
8003176 Ylitalo Aug 2011 B2
8003744 Okamoto Aug 2011 B2
8012550 Ylitalo Sep 2011 B2
8026291 Handa Sep 2011 B2
8043695 Ballard Oct 2011 B2
8067319 Poon Nov 2011 B2
8076381 Miyagawa Dec 2011 B2
8076416 Ellul Dec 2011 B2
8084537 Walton Dec 2011 B2
8087147 Hollis Jan 2012 B2
8105459 Alvarez Jan 2012 B2
8119237 Peng Feb 2012 B2
8124234 Weaver Feb 2012 B2
8173233 Rogers May 2012 B2
8198374 Arriola Jun 2012 B2
8211982 Harris Jul 2012 B2
8227075 Matsushita Jul 2012 B2
8273068 Chang Sep 2012 B2
8273826 Walton Sep 2012 B2
8273838 Shan Sep 2012 B2
8288470 Ansems Oct 2012 B2
8304496 Weaver Nov 2012 B2
8404780 Weaver Mar 2013 B2
8435615 Tsuchida May 2013 B2
8679620 Matsushita Mar 2014 B2
8883280 Leser Nov 2014 B2
20010010849 Blizard Aug 2001 A1
20020030296 Geddes Mar 2002 A1
20020058126 Kannankeril May 2002 A1
20020137851 Kim Sep 2002 A1
20020144769 Debraal Oct 2002 A1
20020172818 DeBraal Nov 2002 A1
20030003251 DeBraal Jan 2003 A1
20030017284 Watanabe Jan 2003 A1
20030029876 Giraud Feb 2003 A1
20030108695 Freek Jun 2003 A1
20030138515 Harfmann Jul 2003 A1
20030211310 Haas Nov 2003 A1
20030228336 Gervasio Dec 2003 A1
20030232210 Haas Dec 2003 A1
20040031714 Hanson Feb 2004 A1
20040038018 Anderson Feb 2004 A1
20040115418 Anderson Jun 2004 A1
20040170814 VanHandel Sep 2004 A1
20050003122 Debraal Jan 2005 A1
20050006449 DAmato Jan 2005 A1
20050101926 Ausen May 2005 A1
20050104365 Haas May 2005 A1
20050121457 Wilson Jun 2005 A1
20050147807 Haas Jul 2005 A1
20050159496 Bambara Jul 2005 A1
20050184136 Baynum, III Aug 2005 A1
20050236294 Herbert Oct 2005 A1
20050256215 Burnham Nov 2005 A1
20050272858 Pierini Dec 2005 A1
20050288383 Haas Dec 2005 A1
20060000882 Darzinskas Jan 2006 A1
20060095151 Mannlein May 2006 A1
20060135699 Li Jun 2006 A1
20060148920 Musgrave Jul 2006 A1
20060178478 Ellul Aug 2006 A1
20060198983 Patel Sep 2006 A1
20060199006 Poon Sep 2006 A1
20060199030 Liang Sep 2006 A1
20060199744 Walton Sep 2006 A1
20060199872 Prieto Sep 2006 A1
20060199884 Hoenig Sep 2006 A1
20060199887 Liang Sep 2006 A1
20060199896 Walton Sep 2006 A1
20060199897 Karjala Sep 2006 A1
20060199905 Hughes Sep 2006 A1
20060199906 Walton Sep 2006 A1
20060199907 Chang Sep 2006 A1
20060199908 Cheung Sep 2006 A1
20060199910 Walton Sep 2006 A1
20060199911 Markovich Sep 2006 A1
20060199912 Fuchs Sep 2006 A1
20060199914 Harris Sep 2006 A1
20060199930 Shan Sep 2006 A1
20060199931 Poon Sep 2006 A1
20060199933 Okamoto Sep 2006 A1
20060205833 Martinez Sep 2006 A1
20060211819 Hoenig Sep 2006 A1
20060234033 Nishikawa Oct 2006 A1
20060289609 Fritz Dec 2006 A1
20060289610 Kling Dec 2006 A1
20070010616 Kapur Jan 2007 A1
20070032600 Mogami Feb 2007 A1
20070056964 Holcomb Mar 2007 A1
20070065615 Odle Mar 2007 A1
20070066756 Poon Mar 2007 A1
20070078222 Chang Apr 2007 A1
20070095837 Meier May 2007 A1
20070112127 Soediono May 2007 A1
20070141188 Kim Jun 2007 A1
20070155900 Chang Jul 2007 A1
20070167315 Arriola Jul 2007 A1
20070167575 Weaver Jul 2007 A1
20070167578 Arriola Jul 2007 A1
20070202330 Peng Aug 2007 A1
20070219334 Shan Sep 2007 A1
20080118738 Boyer May 2008 A1
20080121681 Wiedmeyer May 2008 A1
20080156857 Johnston Jul 2008 A1
20080177242 Chang Jul 2008 A1
20080227877 Stadlbauer Sep 2008 A1
20080234435 Chang Sep 2008 A1
20080260996 Heilman Oct 2008 A1
20080269388 Markovich Oct 2008 A1
20080280517 Chang Nov 2008 A1
20080281037 Karjala Nov 2008 A1
20080311812 Arriola Dec 2008 A1
20090042472 Poon Feb 2009 A1
20090068402 Yoshida Mar 2009 A1
20090069523 Itakura Mar 2009 A1
20090076216 Kiss Mar 2009 A1
20090105417 Walton Apr 2009 A1
20090110944 Aguirre Apr 2009 A1
20090170679 Hartjes Jul 2009 A1
20090220711 Chang Sep 2009 A1
20090247033 Peng Oct 2009 A1
20090263645 Barger Oct 2009 A1
20090275690 Weaver et al. Nov 2009 A1
20090324914 Lieng Dec 2009 A1
20100025073 Fagrell Feb 2010 A1
20100028568 Weaver Feb 2010 A1
20100029827 Ansems Feb 2010 A1
20100040818 Farha Feb 2010 A1
20100055358 Weaver Mar 2010 A1
20100069574 Shan Mar 2010 A1
20100093942 Silvis Apr 2010 A1
20100137118 Chang Jun 2010 A1
20100168267 Dang Jul 2010 A1
20100181328 Cook Jul 2010 A1
20100181370 Berbert Jul 2010 A1
20100196610 Chang Aug 2010 A1
20100240818 Walton Sep 2010 A1
20100279571 Poon Nov 2010 A1
20100324202 Bafna Dec 2010 A1
20110003929 Soediono Jan 2011 A1
20110008570 Seth Jan 2011 A1
20110009513 Chaudhary Jan 2011 A1
20110091688 Maurer Apr 2011 A1
20110104414 Onodera May 2011 A1
20110111150 Matsuzaki May 2011 A1
20110118370 Jiang May 2011 A1
20110118416 Arriola May 2011 A1
20110124818 Arriola May 2011 A1
20110136959 Brandstetter Jun 2011 A1
20110144240 Harris Jun 2011 A1
20110217492 Stamatiou Sep 2011 A1
20110229693 Maurer Sep 2011 A1
20110230108 Arriola Sep 2011 A1
20110318560 Yun Dec 2011 A1
20120004087 Tharayil Jan 2012 A1
20120024873 Roseblade Feb 2012 A1
20120028065 Bafna Feb 2012 A1
20120041148 Bafna Feb 2012 A1
20120043374 Lemon Feb 2012 A1
20120045603 Zerafati Feb 2012 A1
20120108714 Wittner May 2012 A1
20120108743 Krishnaswamy May 2012 A1
20120125926 Iyori May 2012 A1
20120132699 Mann May 2012 A1
20120178896 Bastioli Jul 2012 A1
20120184657 Lake Jul 2012 A1
20120193365 Humphries Aug 2012 A1
20120199278 Lee Aug 2012 A1
20120199641 Hsieh Aug 2012 A1
20120214890 Senda Aug 2012 A1
20120220730 Li Aug 2012 A1
20120225961 VanHorn Sep 2012 A1
20120237734 Maurer Sep 2012 A1
20120267368 Wu Oct 2012 A1
20120270039 Tynys Oct 2012 A1
20120295994 Bernreitner Nov 2012 A1
20120318805 Leser Dec 2012 A1
20120318807 Leser Dec 2012 A1
20130023598 Song Jan 2013 A1
20130032963 Tokiwa Feb 2013 A1
20130052385 Leser Feb 2013 A1
20130280517 Buehring Oct 2013 A1
20130303645 Dix Nov 2013 A1
Foreign Referenced Citations (74)
Number Date Country
2291607 Jun 2000 CA
2765489 Dec 2010 CA
1288427 Mar 2001 CN
101429309 May 2009 CN
2831240 Jan 1980 DE
2831240 Mar 1988 DE
102006025612 Nov 2007 DE
102006025612 Nov 2007 DE
0086869 Aug 1983 EP
0161597 Nov 1985 EP
0318167 May 1989 EP
0570221 Nov 1993 EP
0659647 Jun 1995 EP
0972727 Jan 2000 EP
0796199 Feb 2001 EP
0940240 Oct 2002 EP
1308263 May 2003 EP
1479716 Nov 2004 EP
1666530 Jun 2006 EP
1754744 Feb 2007 EP
1921023 May 2008 EP
1939099 Jul 2008 EP
2266894 Dec 2010 EP
2386584 Nov 2011 EP
1078326 Aug 1967 GB
52123043 Oct 1977 JP
52123043 Oct 1977 JP
58029618 Feb 1983 JP
3140847 Jan 1994 JP
P310847 Dec 2000 JP
2001310429 Nov 2001 JP
2003292663 Oct 2003 JP
2004018101 Jan 2004 JP
2004168421 Jun 2004 JP
2004168421 Jun 2004 JP
2006096390 Apr 2006 JP
2006130814 May 2006 JP
2009066856 Apr 2009 JP
2009190756 Aug 2009 JP
100306320 Oct 2001 KR
2003036558 May 2003 KR
2004017234 Feb 2004 KR
101196666 Nov 2012 KR
9413460 Jun 1994 WO
9729150 Aug 1997 WO
9816575 Apr 1998 WO
0119733 Mar 2001 WO
0132758 May 2001 WO
0153079 Jul 2001 WO
03076497 Sep 2003 WO
03099913 Dec 2003 WO
2004104075 Dec 2004 WO
2006042908 Apr 2006 WO
2006124369 Nov 2006 WO
2007020074 Feb 2007 WO
2008030953 Mar 2008 WO
2008038750 Apr 2008 WO
2008045944 Apr 2008 WO
2008057878 May 2008 WO
2008080111 Jul 2008 WO
2009035580 Mar 2009 WO
2010006272 Jan 2010 WO
2010019146 Feb 2010 WO
2010076701 Jul 2010 WO
2010111869 Oct 2010 WO
2011005856 Jan 2011 WO
2011036272 Mar 2011 WO
2011076637 Jun 2011 WO
2011141044 Nov 2011 WO
2012020106 Feb 2012 WO
2012025584 Mar 2012 WO
2012044730 Apr 2012 WO
2012055797 May 2012 WO
2012099682 Jul 2012 WO
Non-Patent Literature Citations (46)
Entry
New Zealand First Examination Report for Application No. 621219 dated Nov. 17, 2014.
International Search Report dated Jul. 29, 2013, relating to International Application No. PCT/US2012/043016, 25 pages.
International Search Report and Written Opinion dated Sep. 17, 2013, relating to International Application No. PCT/US2012/041395.
International Search Report dated Feb. 26, 2013, relating to International Application No. PCT/US2012/043018.
International Search Report dated Jan. 29, 2013, relating to International Application No. PCT/US2012/043017.
International Search Report dated Jan. 30, 2013, relating to International Application No. PCT/US2012/042737.
International Search Report dated Jul. 30, 2012, relating to International Application No. PCT/US2012/041397.
International Search Report dated Nov. 19, 2012, relating to International Application No. PCT/US2012/041395.
Jaakko I. Raukola, A New Technology to Manufacture Polypropylene Foam Sheet and Biaxially Oriented Foam Film, VTT Publications 361, Technical Research Centre of Finland, Apr. 1998, 100 pages.
Borealis AG, Daploy(TM) HMS Polypropylene for Foam Extrusion, 2010, 20 pages.
Machine English translation of JP 2006-130814.
Office Action dated Oct. 10, 2014 for U.S. Appl. No. 14/106,358.
Office Action dated Oct. 16, 2014 for U.S. App.. No. 14/106,212.
New Zealand First Examination Report for Application No. 619616 dated Oct. 10, 2014.
Office action dated Apr. 11, 2014 for U.S. Appl. No. 13/526,417.
Office Action dated Aug. 19, 2014 for Chinese Application No. 201280035667.4.
Office Action dated Aug. 21, 2014 for U.S. Appl. No. 13/526,454.
Office Action dated Jul. 25, 2014 for U.S. Appl. No. 13/525,640.
Office Action dated Sep. 25, 2014 for U.S. Appl. No. 13/526,417.
International Search Report and Written Opinion dated Apr. 16, 2014, relating to International Application No. PCT/US2013/075013.
International Search Report and Written Opinion dated Apr. 21, 2014, relating to International Application No. PCT/US2013/074923.
International Search Report and Written Opinion dated Apr. 22, 2014, relating to PCT/US2013/074965.
International Search Report and Written Opinion dated Apr. 25, 2014, relating to PCT/US2013/075052.
International Search Report dated Mar. 11, 2014, relating to International Application No. PCT/US2013/66811.
International Search Report and Written Opinion dated Jul. 3, 2014, relating to International Application No. PCT/US2014/025697.
International Search Report and Written Opinion dated Jan. 19, 2015, relating to International Application No. PCT/US2014/059312.
International Search Report dated Jan. 19, 2015, relating to International Application No. PCT/US2014/059216.
Office Action dated Jan. 6, 2015 for Chinese Application No. 201280034350.9 (11 pages).
Office Action dated Jan. 9, 2015 for Chinese Application No. 201280035667.4 (22 pages).
Spanish Search Report of Application No. 201390099, dated Feb. 9, 2015.
European Search Report of Application No. 12861450.0, dated Nov. 21, 2014.
International Search Report dated Nov. 7, 2014, relating to International Application No. PCT/US2014/51508.
Third-Party Submission Under 37 CFR 1.290 filed on Dec. 9, 2014 in U.S. Appl. No. 14/063,252.
Machine English translation of EP0086869.
Singapore Office Action dated Dec. 18, 2014 for Singapore Application No. 2014002273.
Third-Party Submission Under 37 CFR 1.290 filed on Feb. 26, 2015 in U.S. Appl. No. 13/491,007.
Certified English translation of EP0086869.
Office Action dated Apr. 30, 2015 for U.S. Appl. No. 14/462,073.
Office Action dated Apr. 14, 2015 for U.S. Appl. No. 14/106,212.
Office Action dated Apr. 10, 2015 for U.S. Appl. No. 14/106,358.
English translation of Spanish Search Report of Application No. 201490025, dated Apr. 20, 2015.
Spanish Search Report for Application No. 201490025, dated Apr. 20, 2015.
Office Action dated Jun. 23, 2015 for U.S. Appl. No. 13/525,640.
Third Party Submission Under 37 CFR 1.290 in U.S. Appl. No. 14/188,504 submitted May 11, 2015 and May 27, 2015 (43 pages).
Naguib et al., “Fundamental Foaming Mechanisms Governing the Volume Expansion of Extruded Polypropylene Foams,” Journal of Applied Polymer Science, vol. 91, pp. 2661-2668, 2004 (10 pages).
Wang et al., “Extending PP\s Foamability Through Tailored Melt Strength and Crystallization Kinetics,” paper 19 from the Conference Proceedings of the 8th International Conferences of Blowing Agents and Foaming Processes, May 16-17th, 2006 in Munich, Germany Smithers Rapra Ltd, 2006 (14 pages).
Related Publications (1)
Number Date Country
20140166738 A1 Jun 2014 US
Provisional Applications (1)
Number Date Country
61737406 Dec 2012 US