Paper-based cooking container providing improved product browning
09707730 ยท 2017-07-18
Assignee
Inventors
Cpc classification
A47J36/022
HUMAN NECESSITIES
B31B50/59
PERFORMING OPERATIONS; TRANSPORTING
B21D51/18
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D1/42
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A paper-based cooking container providing improved product browning is disclosed, wherein the container includes a base, a sidewall and, optionally, a rim, and wherein a portion of the base has been modified through densification of the paper-based material. The container preferably includes both densified and undensified paper-based material.
Claims
1. A cooking container comprising a paper-based material that includes a base and a sidewall, at least a portion of the base being densified to a point density range of about 12.5 lbs/r.c.p. to about 14 lbs/r.c.p., and at least a portion of the sidewall having a point density range of about 9 lbs/r.c.p. to about 11 lbs/r.c.p.
2. The container of claim 1 further comprising a rim.
3. The container of claim 1 wherein the container acts as both cookware and a serving container.
4. The container of claim 3 wherein the serving container also acts as a closeable carryout container.
5. The container of claim 1 wherein at least a portion of the base being densified to a point density range of about 13 lbs/r.c.p. to about 14 lbs/r.c.p.
6. The cooking container of claim 1, wherein the paper-based material is paperboard.
7. A method of manufacturing a cooking container including a base component and a sidewall component, the method comprising steps of: (a) providing a paper-based blank; (b) densifying at least a portion of the paper-based blank that is corresponded to the base component such that the densified portion of the base component has a point density range of about 12.5 lbs/r.c.p. to about 14 lbs/r.c.p. while leaving at least a portion of the paper-based blank at a point density range of about 9 lbs/r.c.p to about 11 lbs/r.c.p.; and (c) forming the blank obtained from step b into the container.
8. The method of claim 7 wherein the densifying step (b) is performed such that the densified portion of the base component has a point density range of about 13 lbs/r.c.p. to about 14 lbs/r.c.p.
9. The method of claim 7 wherein the densifying step (b) is performed such that the densified portion of the blank has a point density about 20% to 30% higher than a point density of a portion not being densified.
10. A method of manufacturing a cooking container including steps of: (a) providing a paper-based blank; (b) forming the paper-based blank into a container shape that comprises a base component and a sidewall component; and after said forming step (c) densifying at least a portion of the base component such that the densified portion has a point density range of about 12.5 lbs/r.c.p. to about 14 lbs/r.c.p.
11. The method of claim 10 wherein the densifying step (c) is performed such that the densified portion of the base component has a point density range of about 13 lbs/r.c.p. to about 14 lbs/r.c.p.
12. The method of claim 10 wherein the densifying step (c) is performed such that the densified portion of the base component has a point density about 20% to 30% higher than a point density of a portion not being densified.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(12) With reference to
(13) With reference to
(14) As shown in
(15) A connection configured as a curvilinear profile, such as profile 13 in container 10, may be desired because the container base and sidewall act as conductive cooking surfaces. Use of a curvilinear profile may reduce the cooking surface contact area per unit of product volume in locations where a wall and base meet, such as transition 13 in container 10, which may prevent localized overcooking of the product's edges and promote more uniform browning of the product. Use of a curvilinear profile may also reduce the tendency of doughs to bridge across locations where a wall and base meet, which may prevent localized undercooking of the product and promote more uniform browning of the product's edges. Connections configured as a curvilinear profile or surface may be especially desired in configurations that include corners, since the cooking surface contact area per unit of product volume can be expected to approach a maximum value in proximity to such corners.
(16) The containers 10, 10, 10 disclosed herein may be constructed from a substrate that is water, oil and/or heat resistant. In one aspect, as shown in
(17) Additional aspects of the container may be constructed from other paper materials such as uncoated paperboard and molded pulp. The paperboard substrate may be the aforementioned paperboard type product. A molded pulp container may be formed using various techniques known in the art and, preferably, include a base layer 52 having a thickness of about 0.010 to about 0.030. A molded pulp container may also include a coating layer 54, which may be combined with the base layer 52 using techniques known in the art, such as the vacuum thermoforming techniques disclosed in U.S. Pat. No. 4,337,116 to Foster et al., the entire content of which are incorporated herein by reference.
(18) The substrate may be modified by densification to selectively improve the heat transfer characteristics of portions of the paper-based container and improve product browning. A mechanical press, hydraulic press or the like may be employed to selectively increase the point density of portions of the material by applying Z direction compression across the thickness of the substrate. The initial and modified point density of the selectively compressed portions may be calculated through use of the following formula:
=W/d
where is the point density of the paper in pounds per ream per caliper point (lbs./r.c.p.), W is the basis weight of the paper, and d is the thickness of the paper in caliper points (1 caliper point=0.001). The change in point density of the selectively compressed portions may also be calculated through use of the following formula:
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where d.sub.1 is the initial thickness and d.sub.2 is the compressed thickness after densification. The particular pressures and compression required to achieve heat transfer characteristics similar to those of metal cookware, such as a 0.075 thick aluminum pan, will vary depending on the composition and grade of the paper material selected for the container.
(20) Modifying the point density of the container material through mechanical compression enhances the heat transfer characteristics of the material as measured by its thermal resistance or R-value. In general, satisfactory changes have been observed when the point density of the material has been increased in a range of about 20 to about 35 percent, from a point density in a range of about 9 to about 11 lbs./r.c.p. to a point density in a range of about 12.5 to about 14 lbs./r.c.p., and preferably to a point density in a range of about 13 to about 14 lbs./r.c.p. For example, Table 1 summarizes the observed heat transfer characteristics of a number of relevant materials, including various coated paperboards, a densified and coated paperboard, and sample of an aluminum cooking pan. The observations were collected using the method disclosed in U.S. Pat. No. 6,183,128, the entire contents of which are incorporated herein by reference.
(21) TABLE-US-00001 TABLE 1 Thermal Resistance of Paper-based Materials and Comparison to Metal Material detail R-value Sample Material ( in units of lbs./r.c.p.) (hr- F.-ft.sup.2/BTU) Corrugated paper 3 ply, F-flute, 100 lb. basis 0.072 weight per ply Paperboard 0.023, 240 lb. basis weight, 0.050 PET coating, 10.5 Paperboard 0.023, 240 lb. basis weight, 0.049 PMP coating, 10.5 Paperboard 0.019, 200 lb. basis weight, 0.037 PMP coating, 10.5 Densified paperboard 0.019, 200 lb. basis weight, 0.025 PMP coating, d.sub.2 = 0.0145, 14. Metal 0.075 aluminum 0.020
(22) Similarly, Table 2 summarizes the observed heat transfer characteristics of a 19 caliper point (nominal) coated paperboard both before and after modification by densification. The observations were collected using a Netzsch Light Flash Apparatus, which measures a sample's thermal diffusivity in accordance with ASTM E1461 and a sample's specific heat through a comparison of the temperature increase in the sample and the temperature increase in a known standard. The general method and calculations are described in Parker, W. J., Jenkins, R. J., Butler, C. P., and Abbott, G. L., A Flash Method of Determining Thermal Diffusivity, Heat Capacity, and Thermal Conductivity, Journal of Applied Physics, 32 (9), 1961, pp. 1679-1684, the entire contents of which are incorporated herein by reference. These measurements may be combined with measurements of the sample's thickness and bulk density to calculate the sample's thermal conductivity and thermal resistance.
(23) TABLE-US-00002 TABLE 2 Thermal Resistance of Standard and Densified Paperboard Material* Bulk Testing R-value Sample Material Thickness density Temp. (hr- F.- ( in lbs./c.p.) @ 25 C. @ 25 C. ( C.) ft.sup.2/BTU) 0.019, 200 lb. basis 0.0181 0.726 g/cm.sup.3 25 0.0296 weight, PMP coating, 50 0.0271 10.5 75 0.0253 100 0.0239 0.019, 200 lb. basis 0.0160 0.807 g/cm.sup.3 25 0.0265 weight, PMP coating, 50 0.0242 d.sub.2 = 0.016, 12.5 75 0.0228 100 0.0216 *Testing performed using a Netzsch LFA 447 Light Flash Apparatus
(24) Modifying the point density of the container material through mechanical compression also alters the physical structure of the material. With reference to
(25) In one aspect, the container material may be modified by densification prior to the construction of the container. For example, if an uncoated or coated paperboard material is selected, that material may be manufactured or purchased as continuous rolls or large format sheets and subdivided or cut into container blanks prior to densification. The blanks may then be registered with a mechanical press, hydraulic press or the like and selectively compressed to produce a blank having both densified and undensified portions of material, the portions of densified material corresponding to those portions of the container 10, 10, 10 which are intended to have enhanced heat transfer characteristics, such as major portions of the base 12, 12, 12, portions of the sidewall 14, 14, 14 and/or transition portions 13, 13, 13. The blanks may subsequently be registered with machinery that configures the container material into a container 10, 10, 10. Densification is likely to reduce the ability of the material to maintain a rigid shape, such as a curvilinear profile 13, an angular transition 13 or a peripheral rim 16, 16. Therefore, densification may be avoided for portions of the material that will be used to form such container features or that will comprise the structure immediately adjacent to such features. In instances where such densification is desired, the intended container design may require a reconfiguration of the features or a selection of different materials (thickness, grade, or the like) to provide sufficient rigidity.
(26) In another aspect, the container may be modified by densification after construction of the container. Premanufactured, unmodified containers may be placed between dies loaded into a mechanical press, hydraulic press or the like, with the dies configured so that compression is selectively applied to those portions of the container which are intended to have enhanced heat transfer characteristics. Again, densification is likely to reduce the ability of the material to maintain a rigid shape, such as a curvilinear profile 13, an angular transition 13, or a peripheral rim 16, 16. In instances where such densification is desired, the intended container design may require some alteration to provide sufficient rigidity.
(27) Selective densification of the container material advantageously improves the heat transfer characteristics of portions of the container 10 that are intended to cook and brown food, but maintains the insulative characteristics of the unmodified material in portions of the container such as the rim 16 and base-sidewall transition 13. Such unmodified portions of the paper-based cooking container will feel cooler to the touch than a comparable metal construction, and may serve to prevent accidental burns when a product is served and subdivided at a customer's table or when a container is delivered to a customer for carry-out. Selective densification of the container may also be used to customize the heat transfer characteristics of multiple compartment containers to suit the container for various types of foods. For example, with reference to
(28) The containers 10, 10, 10 may be constructed by various techniques known in the art. For example, containers manufactured from the paperboard or coated paperboard materials discussed previously may be thermoformed to produce configurations like those shown in
(29) Containers constructed using densified paper-based materials such as those disclosed herein are expected to exhibit improved browning performance. For example, with reference to
STATEMENT OF THE INVENTION
(30) A paper-based cooking container providing improved product browning, wherein the container includes a base, a sidewall and, optionally, a rim, and wherein a portion of the base has been modified through densification of the paper-based material. The container includes both densified and undensified paper-based material.
(31) A method of manufacturing a paper-based cooking container providing improved product browning, wherein a paper material is modified through densification of a portion of the material corresponding to a portion of the base of said container, and said container is subsequently thermoformed, scored and folded or otherwise manufactured from blanks of partially modified material.
(32) A method of manufacturing a paper-based cooking container providing improved product browning, wherein a container is molded, thermoformed, scored and folded or otherwise manufactured from a paper-based material, and said container is subsequently modified through densification of a portion of the base of said container.