EP3497282B1 - Compostable paperboard with oil, grease, and moisture resistance - Google Patents

Compostable paperboard with oil, grease, and moisture resistance Download PDF

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Publication number
EP3497282B1
EP3497282B1 EP17751962.6A EP17751962A EP3497282B1 EP 3497282 B1 EP3497282 B1 EP 3497282B1 EP 17751962 A EP17751962 A EP 17751962A EP 3497282 B1 EP3497282 B1 EP 3497282B1
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EP
European Patent Office
Prior art keywords
paperboard
binder
coating
coated
coated paperboard
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Revoked
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EP17751962.6A
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German (de)
French (fr)
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EP3497282A1 (en
EP3497282C0 (en
Inventor
Jiebin Pang
Natasha MELTON
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WestRock MWV LLC
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WestRock MWV LLC
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Priority claimed from US15/230,896 external-priority patent/US9670621B2/en
Application filed by WestRock MWV LLC filed Critical WestRock MWV LLC
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    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H19/00Coated paper; Coating material
    • D21H19/36Coatings with pigments
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B65CONVEYING; PACKING; STORING; HANDLING THIN OR FILAMENTARY MATERIAL
    • B65DCONTAINERS FOR STORAGE OR TRANSPORT OF ARTICLES OR MATERIALS, e.g. BAGS, BARRELS, BOTTLES, BOXES, CANS, CARTONS, CRATES, DRUMS, JARS, TANKS, HOPPERS, FORWARDING CONTAINERS; ACCESSORIES, CLOSURES, OR FITTINGS THEREFOR; PACKAGING ELEMENTS; PACKAGES
    • B65D65/00Wrappers or flexible covers; Packaging materials of special type or form
    • B65D65/38Packaging materials of special type or form
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H19/00Coated paper; Coating material
    • D21H19/36Coatings with pigments
    • D21H19/44Coatings with pigments characterised by the other ingredients, e.g. the binder or dispersing agent
    • D21H19/50Proteins
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H19/00Coated paper; Coating material
    • D21H19/36Coatings with pigments
    • D21H19/44Coatings with pigments characterised by the other ingredients, e.g. the binder or dispersing agent
    • D21H19/54Starch
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H21/00Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties
    • D21H21/14Non-fibrous material added to the pulp, characterised by its function, form or properties; Paper-impregnating or coating material, characterised by its function, form or properties characterised by function or properties in or on the paper
    • D21H21/16Sizing or water-repelling agents
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
    • D21H27/00Special paper not otherwise provided for, e.g. made by multi-step processes
    • D21H27/10Packing paper

Definitions

  • This disclosure relates to paperboard substrates having good oil and grease resistance, yet with full recyclability and without a tendency toward blocking, and furthermore being compostable.
  • Oil and grease resistance is one of the top needs for paperboard packages in food and food service industries.
  • Several technologies including specialty chemical (wax, fluorochemicals, starch, polyvinyl alcohol (PVOH), sodium alginate, etc.) treatment, polymer extrusion coating (polyethylene, etc.) have been employed to provide oil and grease resistance of paperboard packaging.
  • the paper or paperboard treated with wax or coated with polyethylene which is currently used in oil and grease resistant packaging, has difficulties in repulping and is not as easily recyclable as conventional paper or paperboard.
  • Paper or paperboard treated with specialty chemicals such as fluorochemicals has potential health, safety and environmental concerns, and scientists have called for a stop to non-essential use of fluorochemicals in common consumer products including packaging materials.
  • Aqueous coating is one of the promising solutions to achieve these goals.
  • blocking the tendency of layers in a roll of paperboard to stick to one another
  • blocking is also a major technical hurdle for on-machine application of aqueous barrier coatings.
  • most aqueous barrier coatings are not fully repulpable.
  • US6548120B1 discloses a recyclable and repulpable coated paper stock, preferably for use as ream wrap, comprising a substrate coated on at least one surface with a base coat and at least one additional coat over said base coat. Both coats are water-based dispersions of a polymer selected from the group consisting of acrylic polymers, acrylic copolymers, polyvinyl acetate, polyvinyl alcohol, ethylene-vinyl acetate, polyvinyl chloride, styrene butadiene copolymers, polyvinylidiene chloride and its copolymers, or starch.
  • the wax free coating forms a pin-hole free continuous film on the substrate which is resistant to water and water vapor.
  • the invention also includes processes for making and recycling the invented coated paper stocks.
  • certain inventive coatings that have barrier properties have achieved the ASTM compostability standard, at least for paperboard that is 12 caliper (305 ⁇ m (.012")) or higher.
  • the coating(s) typically contribute a larger share of the total weight, with the result that the non-biodegradable organic constituent in the coatings becomes more than 1% of such lower-caliper paperboard.
  • the general purpose of the invention is to coat the 'barrier' side of a paperboard with at least one layer of aqueous coating containing a renewable natural material (modified starch) and a specialty synthetic binder, resulting in the coated oil and grease resistant paperboard (i.e., 305 ⁇ m (12 pt.) caliper and above) meeting the ⁇ 1% non-biodegradable composition requirement for the compostability standard.
  • the coating can either be applied on a paper machine or by an off-line coater, and can be applied in two coating steps (or two passes) for further enhanced barrier properties.
  • Paperboard coated according to the invention provides resistance to oil and grease, does not have any tendency to block, is compliant to safety and environmental regulations, is fully repulpable, is compostable, and can be produced at a low cost.
  • a coated paperboard which includes a paperboard substrate; a coating in contact with the paperboard substrate, the coating comprising binder and pigment, the pigment comprising at least one of a clay and calcium carbonate, the coating containing substantially no fluorochemical or wax; wherein the binder comprises synthetic and natural binders; wherein the binder to pigment ratio in the coating is between 25 to 40 parts binder per 100 parts pigment, by weight; wherein the coated paperboard has a caliper of at least 254 ⁇ m (0.010"); wherein the coated paperboard provides barrier properties to at least one of oil, grease, and moisture; and wherein the coated paperboard is compostable according to the ASTM D6868-11 standard for compostability.
  • the binder to pigment ratio in the coating is between 30 to 35 parts binder per 100 parts pigment, by weight.
  • the binder comprises a synthetic polymer including (i) a non-biodegradable component and (ii) a natural biodegradable component.
  • the binder further comprises (iii) an additional natural biodegradable component.
  • the additional biodegradable component (iii) is at least one of polysaccharide and protein.
  • the additional biodegradable component (iii) comprises between 1 to 7 parts starch per 100 parts pigment, by weight.
  • the 3M kit test value is at least 3.
  • the coated paperboard has a 30-minute oil Cobb test of at most 20 grams per square meter.
  • the coated paperboard is repulpable to the extent that after repulping the percentage accepts is at least 99%.
  • the percentage accepts is at least 99.9%.
  • the coated paperboard having no tendency toward blocking, defined as a blocking rating of "0" determined by evaluating the adhesion between the barrier coated side and the other uncoated side of samples of the coated paperboard using a test device (700) (illustrated in FIG. 5 ) and holding said samples for 24 hours at 50°C at a pressure of 689.5 kPa (100 psi).after being held for 24 hours at 50°C at a pressure of 689.5 kPa (100 psi).
  • a method of treating paperboard including providing a paperboard substrate; applying to the paperboard substrate a coating comprising binder and pigment, the pigment comprising at least one of a clay and calcium carbonate, and the coating containing substantially no fluorochemical or wax; wherein the binder comprises synthetic and natural binders; wherein the binder to pigment ratio in the coating is between 25 to 40 parts binder per 100 parts pigment, by weight; wherein the coated paperboard has a caliper of at least 254 ⁇ m (0.010"); wherein the coated paperboard is compostable according to the ASTM D6868-11 standard for compostability
  • the natural binder is starch.
  • the coating on the paperboard substrate has a coating weight, on a dry basis, of 8.1 g/m 2 to 19.5 g/m 2 (5 to 12 lbs per 3000 ft 2 ).
  • the coating applied to the paperboard substrate is applied in two passes for a total coat weight of coating on the paperboard substrate, on a dry basis, of 8.1 g/m 2 to 19.5 g/m 2 (5 to 12 lbs per 3000 ft 2 ).
  • FIG.1 and FIG 2 illustrate an exemplary on-paper machine method for coating a paperboard web with one or more layers of aqueous coating.
  • a forming wire 110 in the form of an endless belt passes over a breast roll 115 that rotates proximate to a headbox 120.
  • the headbox provides a fiber slurry in water with a fairly low consistency (for example, about 0.5% solids) that passes onto the moving forming wire 110.
  • a first distance 230 water drains from the slurry and through the forming wire 110, forming a web 300 of wet fibers.
  • the slurry during distance 130 may yet have a wet appearance as there is free water on its surface. At some point as drainage continues the free water may disappear from the surface, and over distance 231, water may continue to drain although the surface appears free from water.
  • the web is carried by a transfer felt or press felt through one or more pressing devices such as press rolls 130 that help to further dewatering the web, usually with the application of pressure, vacuum, and sometimes heat.
  • the still relatively wet web 300 is dried, for example using dryer or drying sections 401, 402 to produce a dry web ("raw stock") 310 which may then be run through a size press 510 that applies a surface sizing to produce a sized "base stock” 320 which may then be run through additional dryer sections 403 and (on FIG. 2 ) smoothing steps such as calendar 520.
  • the base stock 320 may then be run through one or more coaters.
  • coater 530 may apply a first coat ("BC") to a first side ("C1") of the web, and the first coat may be dried in one or more dryer sections 404.
  • Coater 540 may apply a second coat ("TC") to the first side of the web, and the second coat may be dried in one or more dryer sections 405.
  • coater 550 may apply a first coat to the second side ("C2") of the web, and this coat may be dried in one or more dryer sections 406.
  • Coater 560 may apply a second coat to the second side of the web, and this coat may be dried in one or more dryer sections 407.
  • the order of coaters 540, 550 may be swapped, so that both sides C1 and C2 are first given a first coat, and then one side or both sides are given a second coat. In some instances, only one side will be coated as shown in FIG. 3 , or only a first coat may be applied. In some instances, a third coat may be applied to one side.
  • coating may be applied by an off-machine coater as shown in Fig. 4 .
  • the paperboard having been produced on the paper machine and wound onto reel 572 may then be transported (as a reel or as smaller rolls) to an off-machine coater 600, where the paperboard is unwound from reel 572, given a first coating by coater 610, dried in dryer(s) 601, given an optional second coating by coater 620, dried in dryer(s) 602, optionally given further treatment (such as gloss calendaring) and then wound onto reel 573.
  • An off-machine coater could instead apply a single coat to one side of the paperboard, or could apply a single coat to each side, or could apply more than one coat to either or both sides. Alternately some coating may be done on the paper machine, with additional coating done on an off-machine coater.
  • coaters illustrated in FIGs. 2 to 4 are devices where a coating is held in a pan, transferred by a roll to the lower surface of the web (which may be either the first side or the second side depending on the web path), and then the excess coating scraped off by a blade as the web wraps partially around a backing roll.
  • coater types including but not limited to curtain coater, air knife coater, rod coater, film coater, short-dwell coater, spray coater, and metering film size press.
  • the particular materials used in the coatings may be selected according to the desired properties of the finished paperboard.
  • one side e.g. C1 may be given coating(s) that provide desired printability, while the other side e.g. C2 may be given barrier coating(s) that provide oil and grease resistance (OGR).
  • the printability coating may be applied before the OGR coating, or, the OGR coating may be applied before the printability coating.
  • Typical aqueous barrier coatings often use specialty polymer(s), wax, and/or a higher polymer binder level (compared to conventional print coatings). These coatings can cause problems with repulpability of the coated paperboard because the coatings are usually difficult to breakdown to acceptable size or tend to form 'stickies' in paperboard making with the recycled fibers. Due to the high content of synthetic polymer binder in the coating, it is extremely challenging for each of the individual organic components in the coating to meet the ⁇ 1% non-biodegradable composition requirement of the ASTM D6868-11 compostability standard.
  • barrier coatings give paperboard a tendency to 'block' (the layers stick together) either in the reel 570, 571, 572, 573 or after it is rewound into rolls.
  • the reel 570 there may be residual heat from the dryers, which may dissipate quite slowly because of the large mass of the reel. Higher temperatures may increase the tendency toward blocking.
  • paperboard coated with conventional printability coatings usually does not block, and usually is fully repulpable. It would be advantageous if non-blocking and fully repulpable coatings also provided at least some degree of barrier properties.
  • conventional printability coatings do not provide satisfactory barrier properties.
  • Their formulations have relatively low levels of binder so as to absorb rather than repel fluid (printing ink, for example).
  • Binder amounts in conventional printability coatings can range from 15-25 parts per 100 parts of pigment by weight for base coatings, and 10-20 parts per 100 parts pigment by weight for top coatings. Printing grades would tend to be in the lower half of these ranges. Limiting the binder amount in the top coating may allow printing inks or adhesives to absorb readily into the printability coating. Simply increasing the binder to improve barrier properties eventually interferes with printability and causes additional problems, including blocking and repulpability problems.
  • inventive coatings disclosed in the present application provide easy repulping, meet the composition requirement for the ASTM compostability standard, do not block at elevated temperature and pressure, and show good barrier properties, while using conventional pigments and synthetic and natural binders that are low-cost and readily available as coating materials for the paper or paperboard industry.
  • pigments are used in the present invention and may include, but are not limited to, kaolin clay, calcium carbonate, etc. Pigments used in the examples herein are given the following 'shorthand' designations:
  • Synthetic polymer binders may include, but are not limited to, styrene acrylate copolymer (SA), polyvinyl acetate (PVAc), and styrene-butadiene copolymer (SB), etc.
  • Natural binders may include, but are not limited to, starch, alginate, protein, etc.
  • Coatings including control coatings in the present invention were prepared according to the formulations shown in Table 1, which provides a list of major constituents in dry parts of the aqueous coating (C - Control, CF - Compostable Formulation) formulations used to achieve the oil and grease resistance, and to meet the composition requirement for the ASTM compostability standard, without blocking or repulpability problems.
  • Table 1 provides a list of major constituents in dry parts of the aqueous coating (C - Control, CF - Compostable Formulation) formulations used to achieve the oil and grease resistance, and to meet the composition requirement for the ASTM compostability standard, without blocking or repulpability problems.
  • Tables 3 and 4 The test results are shown in Tables 3 and 4.
  • substantially no fluorochemical was used in the coatings.
  • substantially no fluorochemical is meant that fluorochemicals were not deliberately utilized, and that any amount present would have been at most trace amounts. Although fluorochemicals can be excluded in lab experiments, trace amounts of such materials might be present in some paper machine systems due to making various grades of product, or might be introduced into a papermaking system through recycling processes. Likewise, substantially no wax was used in the coatings.
  • the total binder to pigment ratio (parts of binder, by weight, to 100 parts of pigment) of the formulations shown in Table 1 ranges from 30 to 35. This is more than the binder to pigment ratio for typical printability coatings (where rapid absorption of ink is desired) and less than the binder to pigment ratio of typical barrier coatings. Thus, it appears that an effective binder to pigment ratio may be from about 25 to about 40 parts binder per 100 parts pigment (by weight), or from 30 to 35 parts binder per 100 parts pigment. However, perhaps acceptable results (good 3M kit test, no blocking, and good repulpability) might be achieved with a slightly greater range.
  • Blending starch (such as Pen-cote@ D), a natural biodegradable material, into the formulation helps meet the ⁇ 1% non-biodegradable composition requirement for the ASTM compostability standard while maintaining the barrier performance.
  • the Pen-cote ® D starch was added at up to 5 parts in the final formulations.
  • Paperboard samples were made using solid bleached sulphate (SBS) substrate with a caliper of 457 ⁇ m (18 pt. (0.018”)). The samples were coated on one side (herein termed the "barrier side") using a pilot blade coater with a one-layer coating. The pilot results are expected to be representative of results that might be achieved on a production paper machine or a production off-machine coater.
  • SBS solid bleached sulphate
  • the oil and grease resistance (OGR) of the samples was measured on the 'barrier side' by the 3M kit test (TAPPI Standard T559 cm-02). With this test, ratings are from 1 (the least resistance to oil and grease) to 12 (excellent resistance to oil and grease penetration). The results here gave 3M kit levels between 1 to 6 (see Table 3). The higher values were obtained with the higher coat weights for each specific formulation.
  • Basonal@ binder itself (C2 formulation) performs better on 3M kit level than SA binder (C1 formulation) at comparable coat weights (see Table 3); furthermore, blending Pen-cote@ D starch with Basonal@ (CF1-3) maintains the performance on 3M kit level as using Basonal@ itself at comparable or slightly higher coat weight, while meeting the ⁇ 1% non-biodegradable composition requirement for the ASTM compostability standard. Especially, a 3M kit level of 4 to 5 (suitable for most food service packages) is achieved while meeting the compostability standard.
  • oil absorptiveness was used to quantify and compare the OGR performance (oil and grease resistance), which measures the mass of oil absorbed in a specific time, e.g., 30 minutes, by 1 square meter of coated paperboard.
  • OGR performance oil and grease resistance
  • the sample was cut to provide two pieces each 6 inch ⁇ 6 inch square.
  • Each square sample was weighed just before the test. Then a 4 inch ⁇ 4 inch (area of 16 square inches or 0.0103 square meters) square of blotting paper saturated with peanut oil was put on the center of the test specimen (barrier side) and pressed gently to make sure the full area of oily blotting paper was contacting the coated surface.
  • Moisture resistance of the coatings was evaluated by WVTR (water vapor transmission rate at 38°C and 90% relative humidity; TAPPI Standard T464 OM-12) and water Cobb (TAPPI Standard T441 om-04). All the formulations (CF1-4, Table 3) containing Basonal@ and Pen cote ® D starch showed similar water Cobb and WVTR values compared to both control formulations (C1 or C2), while all of them met the ASTM compostability standard.
  • the blocking behaviour of the samples was tested by evaluating the adhesion between the barrier coated side and the other uncoated side.
  • a simplified illustration of the blocking test is shown in FIG. 5 .
  • the paperboard was cut into 5cm ⁇ 5cm (2" ⁇ 2") square samples.
  • Several duplicates were tested for each condition, with each duplicate evaluating the blocking between a pair of samples 752, 754. (For example, if four duplicates were test, four pairs - eight pieces - would be used.)
  • Each pair was positioned with the 'barrier-coated' side of one piece 752 contacting the uncoated side of the other piece 754.
  • the pairs were placed into a stack 750 with a spacer 756 between adjacent pairs, the spacer being foil, release paper, or even copy paper.
  • the entire sample stack was placed into the test device 700 illustrated in FIG. 5 .
  • the test device 700 includes a frame 710. An adjustment knob 712 is attached to a screw 714 which is threaded through the frame top 716. The lower end of screw 714 is attached to a plate 718 which bears upon a heavy coil spring 720. The lower end of the spring 720 bears upon a plate 722 whose lower surface 724 has an area of one square inch. A scale 726 enables the user to read the applied force (which is equal to the pressure applied to the stack of samples through the one-square-inch lower surface 724).
  • the stack 750 of samples is placed between lower surface 724 and the frame bottom 728.
  • the knob 712 is tightened until the scale 726 reads the desired force of 100 lbf (100 psi applied to the samples).
  • the entire device 700 including samples is then placed in an oven at 50°C for 24 hours.
  • the device 700 is then removed from the test environment and cooled to room temperature. The pressure is then released and the samples removed from the device.
  • Blocking damage is visible as fiber tear, which if present usually occurs with fibers pulling up from the non-barrier surface of samples 754. If the non-barrier surface was coated with a print coating, then blocking might also be evinced by damage to the print coating.
  • samples 752(0)/754(0) might be representative of a "0" blocking (no blocking).
  • the circular shape in the samples indicates an approximate area that was under pressure, for instance about one square inch of the overall sample.
  • Samples 752(3)/754(3) might be representative of a "3" blocking rating, with up to 25% fiber tear in the area that was under pressure, particularly in the uncoated surface of sample 754(3).
  • Samples 752(4)/754(4) might be representative of a "4" blocking rating with more than 25% fiber tear, particularly in the uncoated surface of sample 754(4).
  • the depictions in FIG. 5 are only meant to approximately suggest the percent damage to such test samples, rather than showing a realistic appearance of the samples.
  • Repulpability was tested using an AMC Maelstom repulper. 110 grams of coated paperboard, cut into 2.5cm ⁇ 2.5cm (1" ⁇ 1") squares, was added to the repulper containing 2895 grams of water (pH of 6.5 ⁇ 0.5, 50°C), soaked for 15 minutes, and then repulped for 30 minutes. 300 mL of the repulped slurry was then screened through a Vibrating Flat Screen (0.15mm (0.006”) slot size). Rejects (caught by the screen) and fiber accepts were collected, dried and weighed. The percentage of accepts was calculated based on the weights of accepts and rejects, with 100% being complete repulpability.
  • SBS paperboard coated with low density polyethylene (LDPE) at a coat weight of 11.3 to 17.8 g.m 2 (7-11 lbs per 3000ft 2 ) was tested and gave fiber accepts in a range of 91 to 97%. (A fiber accepts percentage close to 100% is desired). Paperboard coated with polyethylene not easily repulpable and recyclable.
  • LDPE low density polyethylene
  • paperboard CF1, CF2, CF3, CF4 are for coatings blending the Basonal@ binder with Pen-cote@ D, a modified starch made by Ingredion Incorporated. These paperboards all meet the compostability definition.
  • Gloss was measured on a Technidyne Model T 480A Glossmeter according to TAPPI standard T480.
  • GE Brightness was measured on a Technidyne Brightimeter Micro S-5 according to TAPPI standard T452.
  • CIE Whiteness was measured the Technidyne Brightimeter Micro S-5 according to TAPPI standard T562.
  • Basonal@ binder or a blend of Basonal@ binder with Pen-cote@ D starch showed similar or slightly higher gloss of the coating than using SA binder, but with slightly lower brightness and whiteness and slightly higher b-color value.
  • Barrier properties are the focus of the inventive coatings, however, if there is a need to adjust the color or shade, food contact compliant dyes can be used in the formulations.
  • the Basonal ® X 400 AL binder made by BASF Corporation contains about 30% natural polymer component.
  • a natural polymer component refers to one grown and found in nature, which for example, can be any protein or polysaccharide or their derivatives.
  • the idea of using the Basonal@ X 400 AL binder along with some additional natural polymer (such as starch) in the present invention was that the natural component in the Basonal@ binder would promote the compatibility of the additional starch with the Basonal@ binder. Compatibility of the different ingredients is important for a barrier coating.
  • Tables 3 and 4 thus show that the combined use of Pen-cote@ D specialized starch with Basonal ® binder provides improved barrier performance, especially, achieving a 3M kit level of 5+, while meeting the compostability standard, being fully repulpable, and not having blocking problems.
  • FIG. 6 shows 3M kit level vs. coat weight. The kit value generally increases (improves) as coat weight increases. None of the control samples (using SA binder) were compostable in the coat weight range of 9.7 to 19.5 g/m 2 (6-12 lbs / 3msf).
  • FIG. 7 shows oil Cobb vs. coat weight for the selected samples as in FIG. 6 .
  • the oil Cob generally decreases (improves) as coat weight increases.
  • the compostability (or lack thereof) has already been described.
  • the test samples using (combined) Basonal@ and Pen-cote@ D gave oil Cobb tests equal or better (lower) than the test samples using styrene-acrylate binder.
  • the results show that compostable paperboard with full repulpability and moderate grease resistance is achieved by replacing standard binders (such as styrene acrylate) with a binder such as Basonal@ X400AL in combination with small amounts of Pen-cote@ D specialized starch.
  • the paperboard product meets the composition requirements of the ASTM compostability standard, at least for paperboards of caliper 305 ⁇ m (12 pt.) and higher.
  • the compostability standard involves calculations of how much of each non-biodegradable organic constituent is used in the product. It is hypothesized that by adjusting the coating, or the paperboard basis weight, compostability according to the ASTM standard might be achieved with somewhat lower calipers, such as 254 ⁇ m (10 pt. (0.010”)).

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Description

    BACKGROUND OF THE INVENTION 1. Field of the Invention
  • This disclosure relates to paperboard substrates having good oil and grease resistance, yet with full recyclability and without a tendency toward blocking, and furthermore being compostable.
  • 2. Description of the Related Art
  • Sustainable packages using renewable, recyclable, and/or compostable materials are increasingly and strongly desired for food service and food packaging. Paper or paperboard itself is one of the most sustainable materials for packaging applications; however, paper or paperboard is often coated or laminated with barrier materials to fulfil the requirements of packaging. These additional barrier coatings or films often make the finished packages no longer repulpable or compostable. For example, widely used polyethylene coated paperboard is neither compostable nor recyclable under typical conditions. Polylactide coated paperboard can be compostable under industrial conditions, but it is not recyclable.
  • Oil and grease resistance is one of the top needs for paperboard packages in food and food service industries. Several technologies including specialty chemical (wax, fluorochemicals, starch, polyvinyl alcohol (PVOH), sodium alginate, etc.) treatment, polymer extrusion coating (polyethylene, etc.) have been employed to provide oil and grease resistance of paperboard packaging. However, the paper or paperboard treated with wax or coated with polyethylene, which is currently used in oil and grease resistant packaging, has difficulties in repulping and is not as easily recyclable as conventional paper or paperboard. Paper or paperboard treated with specialty chemicals such as fluorochemicals has potential health, safety and environmental concerns, and scientists have called for a stop to non-essential use of fluorochemicals in common consumer products including packaging materials.
  • There is a need for oil and grease resistant paperboard that is recyclable, compostable, low cost, and without environmental or safety concerns. Aqueous coating is one of the promising solutions to achieve these goals. However, blocking (the tendency of layers in a roll of paperboard to stick to one another) is a challenging technical hurdle in production and converting processes for aqueous barrier coated paperboard, and blocking is also a major technical hurdle for on-machine application of aqueous barrier coatings. Furthermore, most aqueous barrier coatings are not fully repulpable. Commonly-assigned United States application 15/017,735 , published as U.S. Published Patent Application No. 2016-0230343 A1 , which is incorporated herein by reference, addresses these problems. However, it is further desired to have a paperboard that is compostable. The ASTM D6868-11 Standard Specification for compostability of paper or paperboard requires any non-biodegradable organic constituent to be <1% of the dry weight of the finished product, and the total portion of organic constituents that are not biodegradable cannot exceed 5 % of the total weight. Most conventional or commercially available aqueous barrier coatings use high to pure synthetic polymer binder level, which makes it extremely challenging to meet this <1% non-biodegradable composition requirement for the ASTM compostability standard, while achieving the barrier performance required by the package.
  • US6548120B1 , discloses a recyclable and repulpable coated paper stock, preferably for use as ream wrap, comprising a substrate coated on at least one surface with a base coat and at least one additional coat over said base coat. Both coats are water-based dispersions of a polymer selected from the group consisting of acrylic polymers, acrylic copolymers, polyvinyl acetate, polyvinyl alcohol, ethylene-vinyl acetate, polyvinyl chloride, styrene butadiene copolymers, polyvinylidiene chloride and its copolymers, or starch. The wax free coating forms a pin-hole free continuous film on the substrate which is resistant to water and water vapor. The invention also includes processes for making and recycling the invented coated paper stocks.
  • SUMMARY OF THE INVENTION
  • In the present work, certain inventive coatings that have barrier properties have achieved the ASTM compostability standard, at least for paperboard that is 12 caliper (305µm (.012")) or higher. With lower caliper paperboards, the coating(s) typically contribute a larger share of the total weight, with the result that the non-biodegradable organic constituent in the coatings becomes more than 1% of such lower-caliper paperboard.
  • The general purpose of the invention is to coat the 'barrier' side of a paperboard with at least one layer of aqueous coating containing a renewable natural material (modified starch) and a specialty synthetic binder, resulting in the coated oil and grease resistant paperboard (i.e., 305µm (12 pt.) caliper and above) meeting the <1% non-biodegradable composition requirement for the compostability standard. The coating can either be applied on a paper machine or by an off-line coater, and can be applied in two coating steps (or two passes) for further enhanced barrier properties. Paperboard coated according to the invention provides resistance to oil and grease, does not have any tendency to block, is compliant to safety and environmental regulations, is fully repulpable, is compostable, and can be produced at a low cost.
  • In one embodiment a coated paperboard is disclosed which includes a paperboard substrate; a coating in contact with the paperboard substrate, the coating comprising binder and pigment, the pigment comprising at least one of a clay and calcium carbonate, the coating containing substantially no fluorochemical or wax; wherein the binder comprises synthetic and natural binders; wherein the binder to pigment ratio in the coating is between 25 to 40 parts binder per 100 parts pigment, by weight; wherein the coated paperboard has a caliper of at least 254µm (0.010"); wherein the coated paperboard provides barrier properties to at least one of oil, grease, and moisture; and wherein the coated paperboard is compostable according to the ASTM D6868-11 standard for compostability.
  • Optionally, the binder to pigment ratio in the coating is between 30 to 35 parts binder per 100 parts pigment, by weight.
  • Optionally, the binder comprises a synthetic polymer including (i) a non-biodegradable component and (ii) a natural biodegradable component.
  • Optionally, the binder further comprises (iii) an additional natural biodegradable component.
  • Optionally, the additional biodegradable component (iii) is at least one of polysaccharide and protein.
  • Optionally, the additional biodegradable component (iii) comprises between 1 to 7 parts starch per 100 parts pigment, by weight.
  • Optionally, the 3M kit test value is at least 3.
  • Optionally, the coated paperboard has a 30-minute oil Cobb test of at most 20 grams per square meter.
  • Optionally, the coated paperboard is repulpable to the extent that after repulping the percentage accepts is at least 99%.
  • Optionally, the percentage accepts is at least 99.9%.
  • Optionally, the coated paperboard, having no tendency toward blocking, defined as a blocking rating of "0", determined by evaluating the adhesion between the barrier coated side and the other uncoated side of samples of the coated paperboard using a test device (700) (illustrated in FIG. 5) and holding said samples for 24 hours at 50°C at a pressure of 689.5 kPa (100 psi).after being held for 24 hours at 50°C at a pressure of 689.5 kPa (100 psi).
  • In one embodiment a method of treating paperboard is disclosed, the method including providing a paperboard substrate; applying to the paperboard substrate a coating comprising binder and pigment, the pigment comprising at least one of a clay and calcium carbonate, and the coating containing substantially no fluorochemical or wax; wherein the binder comprises synthetic and natural binders; wherein the binder to pigment ratio in the coating is between 25 to 40 parts binder per 100 parts pigment, by weight; wherein the coated paperboard has a caliper of at least 254µm (0.010"); wherein the coated paperboard is compostable according to the ASTM D6868-11 standard for compostability
  • Optionally, the natural binder is starch.
  • Optionally, the coating on the paperboard substrate has a coating weight, on a dry basis, of 8.1 g/m2 to 19.5 g/m2 (5 to 12 lbs per 3000 ft2).
  • Optionally, the coating applied to the paperboard substrate is applied in two passes for a total coat weight of coating on the paperboard substrate, on a dry basis, of 8.1 g/m2 to 19.5 g/m2 (5 to 12 lbs per 3000 ft2).
  • BRIEF DESCRIPTION OF THE DRAWINGS
    • FIG. 1 illustrates a method for producing a base stock on a paperboard machine;
    • FIG. 2 illustrates a method for treating the base stock from FIG. 1 by applying coatings to both sides on a paperboard machine;
    • FIG. 3 illustrates a method for treating the base stock from FIG. 1 by applying coatings to one side on a paperboard machine;
    • FIG. 4 illustrates a method for treating the base stock from FIG. 1 by applying coatings to one side on an off-machine coater;
    • FIG. 5 illustrates a device for measuring blocking of paperboard;
    • FIG. 6 is a graph of oil/grease resistance (3M kit level) vs. coat weight for several coatings; and
    • FIG. 7 is a graph of oil resistance (Cobb) vs. coat weight for several coatings.
    DETAILED DESCRIPTION OF THE INVENTION
  • FIG.1 and FIG 2 illustrate an exemplary on-paper machine method for coating a paperboard web with one or more layers of aqueous coating. A forming wire 110 in the form of an endless belt passes over a breast roll 115 that rotates proximate to a headbox 120. The headbox provides a fiber slurry in water with a fairly low consistency (for example, about 0.5% solids) that passes onto the moving forming wire 110. During a first distance 230 water drains from the slurry and through the forming wire 110, forming a web 300 of wet fibers. The slurry during distance 130 may yet have a wet appearance as there is free water on its surface. At some point as drainage continues the free water may disappear from the surface, and over distance 231, water may continue to drain although the surface appears free from water.
  • Eventually the web is carried by a transfer felt or press felt through one or more pressing devices such as press rolls 130 that help to further dewatering the web, usually with the application of pressure, vacuum, and sometimes heat. After pressing, the still relatively wet web 300 is dried, for example using dryer or drying sections 401, 402 to produce a dry web ("raw stock") 310 which may then be run through a size press 510 that applies a surface sizing to produce a sized "base stock" 320 which may then be run through additional dryer sections 403 and (on FIG. 2) smoothing steps such as calendar 520.
  • The base stock 320 may then be run through one or more coaters. For example, coater 530 may apply a first coat ("BC") to a first side ("C1") of the web, and the first coat may be dried in one or more dryer sections 404. Coater 540 may apply a second coat ("TC") to the first side of the web, and the second coat may be dried in one or more dryer sections 405.
  • If the web is to be coated on two sides, coater 550 may apply a first coat to the second side ("C2") of the web, and this coat may be dried in one or more dryer sections 406. Coater 560 may apply a second coat to the second side of the web, and this coat may be dried in one or more dryer sections 407. The order of coaters 540, 550 may be swapped, so that both sides C1 and C2 are first given a first coat, and then one side or both sides are given a second coat. In some instances, only one side will be coated as shown in FIG. 3, or only a first coat may be applied. In some instances, a third coat may be applied to one side.
  • Instead of applying coating by on-machine coaters as shown in FIGs. 2 and 3, coating may be applied by an off-machine coater as shown in Fig. 4. In such cases, the paperboard having been produced on the paper machine and wound onto reel 572 may then be transported (as a reel or as smaller rolls) to an off-machine coater 600, where the paperboard is unwound from reel 572, given a first coating by coater 610, dried in dryer(s) 601, given an optional second coating by coater 620, dried in dryer(s) 602, optionally given further treatment (such as gloss calendaring) and then wound onto reel 573. An off-machine coater could instead apply a single coat to one side of the paperboard, or could apply a single coat to each side, or could apply more than one coat to either or both sides. Alternately some coating may be done on the paper machine, with additional coating done on an off-machine coater.
  • Various types of coating devices may be used. The coaters illustrated in FIGs. 2 to 4 are devices where a coating is held in a pan, transferred by a roll to the lower surface of the web (which may be either the first side or the second side depending on the web path), and then the excess coating scraped off by a blade as the web wraps partially around a backing roll. However other coater types may be used instead, including but not limited to curtain coater, air knife coater, rod coater, film coater, short-dwell coater, spray coater, and metering film size press.
  • The particular materials used in the coatings may be selected according to the desired properties of the finished paperboard. For example, one side e.g. C1 may be given coating(s) that provide desired printability, while the other side e.g. C2 may be given barrier coating(s) that provide oil and grease resistance (OGR). The printability coating may be applied before the OGR coating, or, the OGR coating may be applied before the printability coating.
  • Following the coaters, there may be additional equipment for further processing such as additional smoothening, for example gloss calendaring. Finally, the web is tightly wound onto a reel 570.
  • The general process of papermaking and coating having been outlined at a high level in the preceding description and with Figures 1-4, we now turn to the coatings of the present invention. Typical aqueous barrier coatings often use specialty polymer(s), wax, and/or a higher polymer binder level (compared to conventional print coatings). These coatings can cause problems with repulpability of the coated paperboard because the coatings are usually difficult to breakdown to acceptable size or tend to form 'stickies' in paperboard making with the recycled fibers. Due to the high content of synthetic polymer binder in the coating, it is extremely challenging for each of the individual organic components in the coating to meet the <1% non-biodegradable composition requirement of the ASTM D6868-11 compostability standard.
  • Furthermore, many barrier coatings give paperboard a tendency to 'block' (the layers stick together) either in the reel 570, 571, 572, 573 or after it is rewound into rolls. Particularly in the reel 570, there may be residual heat from the dryers, which may dissipate quite slowly because of the large mass of the reel. Higher temperatures may increase the tendency toward blocking.
  • It is known that paperboard coated with conventional printability coatings usually does not block, and usually is fully repulpable. It would be advantageous if non-blocking and fully repulpable coatings also provided at least some degree of barrier properties. However, conventional printability coatings do not provide satisfactory barrier properties. Their formulations have relatively low levels of binder so as to absorb rather than repel fluid (printing ink, for example).
  • Binder amounts in conventional printability coatings can range from 15-25 parts per 100 parts of pigment by weight for base coatings, and 10-20 parts per 100 parts pigment by weight for top coatings. Printing grades would tend to be in the lower half of these ranges. Limiting the binder amount in the top coating may allow printing inks or adhesives to absorb readily into the printability coating. Simply increasing the binder to improve barrier properties eventually interferes with printability and causes additional problems, including blocking and repulpability problems.
  • Similar blocking and repulpability problems exist with many aqueous barrier coatings that use specialty polymer(s) and/or a higher polymer binder level (compared to printability coatings), with the deleterious effect that the coated paperboard is not completely recyclable and tends to block at elevated temperature or pressure.
  • In contrast, the inventive coatings disclosed in the present application provide easy repulping, meet the composition requirement for the ASTM compostability standard, do not block at elevated temperature and pressure, and show good barrier properties, while using conventional pigments and synthetic and natural binders that are low-cost and readily available as coating materials for the paper or paperboard industry.
  • Conventional pigments are used in the present invention and may include, but are not limited to, kaolin clay, calcium carbonate, etc. Pigments used in the examples herein are given the following 'shorthand' designations:
    • "Clay-1" kaolin clay, for example, a No. 1 ultrafine clay
    • "Clay-2" platy clay with high aspect ratio
    • "CaCO3-1" coarse ground calcium carbonate (particle size 60% < 2micron)
  • Synthetic polymer binders may include, but are not limited to, styrene acrylate copolymer (SA), polyvinyl acetate (PVAc), and styrene-butadiene copolymer (SB), etc. Natural binders may include, but are not limited to, starch, alginate, protein, etc. Conventional styrene acrylate binder (SA, PHOPLEX® C-340, available from Dow Chemical Company), acrylic polymer binder (Basonal® X400AL, available from BASF Corporation), starch binder (Pen-cote® D UHV, available from Ingredion Incorporated), or a blend of Pen-cote@ D with SA or Basonal®, are used in examples described herein. Benefits of using Pen-cote® D include its being directly dispersible into the formulation, increasing the coating formulation solids, and possibly being able to eliminate other thickeners. The choice of binder in the examples is not meant to be limiting in any way.
  • Coatings including control coatings in the present invention were prepared according to the formulations shown in Table 1, which provides a list of major constituents in dry parts of the aqueous coating (C - Control, CF - Compostable Formulation) formulations used to achieve the oil and grease resistance, and to meet the composition requirement for the ASTM compostability standard, without blocking or repulpability problems. The test results are shown in Tables 3 and 4.
  • Substantially no fluorochemical was used in the coatings. By "substantially no fluorochemical" is meant that fluorochemicals were not deliberately utilized, and that any amount present would have been at most trace amounts. Although fluorochemicals can be excluded in lab experiments, trace amounts of such materials might be present in some paper machine systems due to making various grades of product, or might be introduced into a papermaking system through recycling processes. Likewise, substantially no wax was used in the coatings.
  • The total binder to pigment ratio (parts of binder, by weight, to 100 parts of pigment) of the formulations shown in Table 1 ranges from 30 to 35. This is more than the binder to pigment ratio for typical printability coatings (where rapid absorption of ink is desired) and less than the binder to pigment ratio of typical barrier coatings. Thus, it appears that an effective binder to pigment ratio may be from about 25 to about 40 parts binder per 100 parts pigment (by weight), or from 30 to 35 parts binder per 100 parts pigment. However, perhaps acceptable results (good 3M kit test, no blocking, and good repulpability) might be achieved with a slightly greater range. Blending starch (such as Pen-cote@ D), a natural biodegradable material, into the formulation helps meet the <1% non-biodegradable composition requirement for the ASTM compostability standard while maintaining the barrier performance. The Pen-cote® D starch was added at up to 5 parts in the final formulations.
  • Paperboard samples were made using solid bleached sulphate (SBS) substrate with a caliper of 457µm (18 pt. (0.018")). The samples were coated on one side (herein termed the "barrier side") using a pilot blade coater with a one-layer coating. The pilot results are expected to be representative of results that might be achieved on a production paper machine or a production off-machine coater.
  • The oil and grease resistance (OGR) of the samples was measured on the 'barrier side' by the 3M kit test (TAPPI Standard T559 cm-02). With this test, ratings are from 1 (the least resistance to oil and grease) to 12 (excellent resistance to oil and grease penetration). The results here gave 3M kit levels between 1 to 6 (see Table 3). The higher values were obtained with the higher coat weights for each specific formulation. Most interestingly, it is found that Basonal@ binder itself (C2 formulation) performs better on 3M kit level than SA binder (C1 formulation) at comparable coat weights (see Table 3); furthermore, blending Pen-cote@ D starch with Basonal@ (CF1-3) maintains the performance on 3M kit level as using Basonal@ itself at comparable or slightly higher coat weight, while meeting the <1% non-biodegradable composition requirement for the ASTM compostability standard. Especially, a 3M kit level of 4 to 5 (suitable for most food service packages) is achieved while meeting the compostability standard.
  • In addition to 3M kit test, oil absorptiveness (oil Cobb) was used to quantify and compare the OGR performance (oil and grease resistance), which measures the mass of oil absorbed in a specific time, e.g., 30 minutes, by 1 square meter of coated paperboard. For each condition tested, the sample was cut to provide two pieces each 6 inch × 6 inch square. Each square sample was weighed just before the test. Then a 4 inch × 4 inch (area of 16 square inches or 0.0103 square meters) square of blotting paper saturated with peanut oil was put on the center of the test specimen (barrier side) and pressed gently to make sure the full area of oily blotting paper was contacting the coated surface. After 30-minutes as monitored by a stop watch, the oily blotting paper was gently removed using tweezers, and the excess amount of oil was wiped off from the coated surface using paper wipes (KimwipesTM). Then the test specimen was weighed again. The weight difference in grams before and after testing divided by the test area of 0.0103 square meters gave the oil Cobb value in grams/square meter.
  • As the oil Cobb results shown in Table 3, all the formulations (CF1-4) containing Basonal@ and Pen-cote@ D starch showed similar or improved (lower) oil Cobb value compared to both control formulations (C1 or C2), while all of them met the ASTM compostability standard. This confirmed the 3M kit results; and most interestingly, although CF4 at a coat weight 18.3 g/m2 (11.3 lb/3msf) showed a 3M kit level of 3.8, it performed very well on actual oil holdout showing an oil Cobb of 4.9 gsm in 30 minutes (Table 3)
  • Moisture resistance of the coatings was evaluated by WVTR (water vapor transmission rate at 38°C and 90% relative humidity; TAPPI Standard T464 OM-12) and water Cobb (TAPPI Standard T441 om-04). All the formulations (CF1-4, Table 3) containing Basonal@ and Pen cote® D starch showed similar water Cobb and WVTR values compared to both control formulations (C1 or C2), while all of them met the ASTM compostability standard.
  • The blocking behaviour of the samples was tested by evaluating the adhesion between the barrier coated side and the other uncoated side. A simplified illustration of the blocking test is shown in FIG. 5. The paperboard was cut into 5cm × 5cm (2" × 2") square samples. Several duplicates were tested for each condition, with each duplicate evaluating the blocking between a pair of samples 752, 754. (For example, if four duplicates were test, four pairs - eight pieces - would be used.) Each pair was positioned with the 'barrier-coated' side of one piece 752 contacting the uncoated side of the other piece 754. The pairs were placed into a stack 750 with a spacer 756 between adjacent pairs, the spacer being foil, release paper, or even copy paper. The entire sample stack was placed into the test device 700 illustrated in FIG. 5.
  • The test device 700 includes a frame 710. An adjustment knob 712 is attached to a screw 714 which is threaded through the frame top 716. The lower end of screw 714 is attached to a plate 718 which bears upon a heavy coil spring 720. The lower end of the spring 720 bears upon a plate 722 whose lower surface 724 has an area of one square inch. A scale 726 enables the user to read the applied force (which is equal to the pressure applied to the stack of samples through the one-square-inch lower surface 724).
  • The stack 750 of samples is placed between lower surface 724 and the frame bottom 728. The knob 712 is tightened until the scale 726 reads the desired force of 100 lbf (100 psi applied to the samples). The entire device 700 including samples is then placed in an oven at 50°C for 24 hours. The device 700 is then removed from the test environment and cooled to room temperature. The pressure is then released and the samples removed from the device.
  • The samples were evaluated for tackiness and blocking by separating each pair of paperboard sheets. The results were reported as shown in Table 2, with a 0 rating indicating no tendency to blocking.
  • Blocking damage is visible as fiber tear, which if present usually occurs with fibers pulling up from the non-barrier surface of samples 754. If the non-barrier surface was coated with a print coating, then blocking might also be evinced by damage to the print coating.
  • For example, as symbolically depicted in FIG. 5, samples 752(0)/754(0) might be representative of a "0" blocking (no blocking). The circular shape in the samples indicates an approximate area that was under pressure, for instance about one square inch of the overall sample. Samples 752(3)/754(3) might be representative of a "3" blocking rating, with up to 25% fiber tear in the area that was under pressure, particularly in the uncoated surface of sample 754(3). Samples 752(4)/754(4) might be representative of a "4" blocking rating with more than 25% fiber tear, particularly in the uncoated surface of sample 754(4). The depictions in FIG. 5 are only meant to approximately suggest the percent damage to such test samples, rather than showing a realistic appearance of the samples.
  • Repulpability was tested using an AMC Maelstom repulper. 110 grams of coated paperboard, cut into 2.5cm × 2.5cm (1"×1") squares, was added to the repulper containing 2895 grams of water (pH of 6.5±0.5, 50°C), soaked for 15 minutes, and then repulped for 30 minutes. 300 mL of the repulped slurry was then screened through a Vibrating Flat Screen (0.15mm (0.006") slot size). Rejects (caught by the screen) and fiber accepts were collected, dried and weighed. The percentage of accepts was calculated based on the weights of accepts and rejects, with 100% being complete repulpability.
  • As an example of poor repulpability, SBS paperboard coated with low density polyethylene (LDPE) at a coat weight of 11.3 to 17.8 g.m2 (7-11 lbs per 3000ft2) was tested and gave fiber accepts in a range of 91 to 97%. (A fiber accepts percentage close to 100% is desired). Paperboard coated with polyethylene not easily repulpable and recyclable.
  • Various coating formulations shown in Table 1 were applied as single layers onto a paperboard substrate, using a range of coat weights, and the results are shown in Table 3 including repulpability and compostability. All of the samples were fully repulpable. As for compostability, as seen in the first two columns of Table 3, paperboard C1 with coating using a pure styrene acrylate (SA) binder did not meet the definition of compostable at coat weights of 9-10 pounds. Furthermore, these C1 samples blocked slightly, whereas the other samples did not. The next two columns show that paperboard C2 with coating using a Basonal@ X 400 AL binder (made by BASF Corporation) met the definition of compostability at a coat weight of 8 pounds, but not at a coat weight of 9 pounds. The last four columns (paperboard CF1, CF2, CF3, CF4) are for coatings blending the Basonal@ binder with Pen-cote@ D, a modified starch made by Ingredion Incorporated. These paperboards all meet the compostability definition.
  • Also included in Table 3 are measurements of Gloss, Brightness, Whiteness, and L-a-b Color. Gloss was measured on a Technidyne Model T 480A Glossmeter according to TAPPI standard T480. (GE) Brightness was measured on a Technidyne Brightimeter Micro S-5 according to TAPPI standard T452. (CIE) Whiteness was measured the Technidyne Brightimeter Micro S-5 according to TAPPI standard T562. L-a-b color was measured on the Technidyne Brightimeter Micro S-5 according to TAPPI standard T524. Using Basonal@ binder or a blend of Basonal@ binder with Pen-cote@ D starch showed similar or slightly higher gloss of the coating than using SA binder, but with slightly lower brightness and whiteness and slightly higher b-color value. Barrier properties are the focus of the inventive coatings, however, if there is a need to adjust the color or shade, food contact compliant dyes can be used in the formulations.
  • Another experiment was done by applying the CF3 formulation in two passes on a blade coater, with the first layer coat weight of 9.2 g/m2 (5.7 lb/3msf) and the second layer coat weight of 4.9 g/m2 (3.0 lb/3msf), resulting a total coat weight of only 14.1 g/m2 (8.7 lb/3msf), which met the composition requirement for compostability standard and showed a 3M kit value of 6.0. As shown from Table 4, a kit level of 5.2 was obtained when a single layer of CF3 was applied with a higher coat weight of 15.7 g/m2 (9.7 lb/3msf). These results demonstrated that enhanced barrier properties can be obtained with two passes of the barrier formulations.
  • The Basonal® X 400 AL binder made by BASF Corporation contains about 30% natural polymer component. A natural polymer component refers to one grown and found in nature, which for example, can be any protein or polysaccharide or their derivatives. The idea of using the Basonal@ X 400 AL binder along with some additional natural polymer (such as starch) in the present invention was that the natural component in the Basonal@ binder would promote the compatibility of the additional starch with the Basonal@ binder. Compatibility of the different ingredients is important for a barrier coating. To prove the concept, additional tests were run as shown in Table 4 to compare SA binder (PHOPLEX® C-340 from Dow Chemical Company used in the examples) and Basonal® X 400 AL (from BASF Corporation), both including Pen cote® D starch in the formulations at a same blend ratio. All of the samples were fully repulpable and non-blocking. As for compostability, as seen in the first three columns of Table 4, paperboard C3 with coating using a styrene acrylate (SA) / Pen-cote@ D binder did not meet the definition of compostability at coat weights of 8-12 pounds. The next three columns show that paperboard CF3 with coating using a Basonal@ binder and Pen-cote@ D met the definition of compostability at a coat weight of 8.0 and 9.7 pounds, but not at a high coat weight of 10.8 pounds. Most interestingly, the CF3 (Basonal® + Pen-cote@ D) coatings had better OGR and moisture vapor barrier performance, in other words, higher 3M kit and lower Oil Cobb values, lower WVTR values, and approximately equal water Cobb values, compared to the C3 (SA + Pen-cote@ D) coatings. Tables 3 and 4 thus show that the combined use of Pen-cote@ D specialized starch with Basonal® binder provides improved barrier performance, especially, achieving a 3M kit level of 5+, while meeting the compostability standard, being fully repulpable, and not having blocking problems.
  • As another way to visualize the test results, the data were plotted as shown in FIGs. 6 and 7. Some of the data on the graphs comes from Tables 3 and 4. Other data are also included. FIG. 6 shows 3M kit level vs. coat weight. The kit value generally increases (improves) as coat weight increases. None of the control samples (using SA binder) were compostable in the coat weight range of 9.7 to 19.5 g/m2 (6-12 lbs / 3msf). The samples (CF2 and CF3) using 35 parts of (combined) Basonal@ X400AL binder plus Pen-cote@ D starch were compostable except at the highest coat weights (10.2 lbs for CF2 and 10.8 lbs /3msf for CF3) and gave kit values equal to or better (higher) than the control SA sample at comparable coat weight. Samples using 30 parts of (combined) Basonal@ and Pen-Cote® D were all compostable (at least up to at least 18.6 g/m2 (11.5 lbs / 3msf)), while their kit values tended to be lower than the control and the other samples.
  • FIG. 7 shows oil Cobb vs. coat weight for the selected samples as in FIG. 6. The oil Cob generally decreases (improves) as coat weight increases. The compostability (or lack thereof) has already been described. The test samples using (combined) Basonal@ and Pen-cote@ D gave oil Cobb tests equal or better (lower) than the test samples using styrene-acrylate binder. Most interestingly, for the samples with a total 30 parts of binder (25 parts Basonal@ and 5 parts of Pen-cote@ D), although the 3M kit values were lower than the other formulations with 35 total parts of binder (as FIG. 6), the oil Cobb values were still similar or better than the control sample C1 with 35 parts of pure SA binder. This again proves the synergistic effect of Basonal@ with Pen-cote® D starch.
  • In summary, the results show that compostable paperboard with full repulpability and moderate grease resistance is achieved by replacing standard binders (such as styrene acrylate) with a binder such as Basonal@ X400AL in combination with small amounts of Pen-cote@ D specialized starch. The paperboard product meets the composition requirements of the ASTM compostability standard, at least for paperboards of caliper 305µm (12 pt.) and higher. The compostability standard involves calculations of how much of each non-biodegradable organic constituent is used in the product. It is hypothesized that by adjusting the coating, or the paperboard basis weight, compostability according to the ASTM standard might be achieved with somewhat lower calipers, such as 254µm (10 pt. (0.010")).
  • The tests described above used a blade coater to apply coating. As previously discussed, various types of coating devices may be used. TABLE 1.
    Coating Formulations
    Designation C1 C2 C3 CF1 CF2 CF3 CF4
    Clay-1 25 25 25 25 25 25 25
    Clay-2 50 50 50 50 50 50 50
    CaCO3-1 25 25 25 25 25 25 25
    PHOPLEX® C-340(SA) 35 30
    Basonal@ X400AL 35 33 32 30 25
    Pen-cote@ D UHV (starch) 5 2 3 5 5
    binder/pigment ratio 35/100 35/100 35/100 35/100 35/100 35/100 30/100
    TABLE 2.
    Blocking Ratings
    0 = samples fall apart without any force applied
    1 = samples have a light tackiness but separate without fiber tear
    2 = samples have a high tackiness but separate without fiber tear
    3 = samples are sticky and up to 25% fiber tear or coat damage (area basis)
    4 = samples have more than 25% fiber tear or coat damage (area basis)
    TABLE 3.
    Effect of Various Binders on Coating Properties including Compostability
    Designation → C1 SA C2 Basonal® CF1 Basonal + Pen-cote D CF2 Basonal + Pen-cote D CF3 Basonal + Pen-cote D CF4 Basonal + Pen-cote D
    Coat wt g/m2 (lb/3msf) 14.4 (8.9) 15.6 (9.6) 13.1 (8.1) 14.6 (9.0) 13.6 (8.4) 14.4 (8.9) 15.7 (9.7) 18.3 (11.3)
    Compostable * No No Yes No Yes Yes Yes Yes
    Repulp % accepts - 100 - 100 100 100 100 -
    3M kit 2.8 5.4 3.6 4.6 4.0 5.0 5.2 3.8
    Oil Cobb 23.7 10.2 17.5 9.4 11.3 12.3 6.1 4.9
    grams / (m2 30min)
    H2O Cobb 30.2 30.3 32.9 32.4 31.2 30.3 29.8 30.9
    grams / (m2 2min)
    WVTR 891 764 829 758 773 839 790 909
    grams / (m2 day)
    Blocking 1 1 0 0 0 0 0 0
    Gloss 13.5 14.0 - 13.8 - 14.5 16.0 16.6
    Brightness 79.5 79.4 - 76.2 - 76.1 75.5 76.3
    Whiteness 66.8 66.3 - 58.2 - 57.9 56.3 57.8
    L-a-b 91.0 91.9 - 91.2 - 90.1 90.0 90.3
    Color 0.4 0.4 0.2 0.2 0.2 0.2
    3.4 3.5 4.8 4.9 5.1 5.0
    * Compostable: defined as less than 1% by weight of non-biodegradable constituent for paperboard calipers of 305µm (12 points) or higher
    TABLE 4.
    Biodegradability with SA and Basonal® ( Pen-cote® D added to both)
    Designation → C3 SA + Pen-cote® D CF3 Basonal® + Pen-cote® D
    Coat wt g/m2 (lb/3msf) 13.4 (8.3) 16.4 (10.1) 18.8 (11.6) 13.0 (8.0) 15.7 (9.7) 17.5 (10.8)
    Compostable No No No Yes Yes No
    Repulp % accepts - 100 100 - 100 100
    3M kit 1.2 1.8 2.8 2.6 5.2 6.2
    Oil Cobb 46.5 14.9 6.1 45.5 6.1 2.3
    grams / (m2 30min)
    H2O Cobb - 26.6 28.4 31.1 29.8 31.3
    grams / (m2 2min)
    WVTR - 915 930 959 790 680
    grams / (m2 day)
    Blocking 0 0 0 0 0 0

Claims (15)

  1. A coated paperboard, comprising:
    a paperboard substrate;
    a coating in contact with the paperboard substrate, the coating comprising binder and pigment, the pigment comprising at least one of a clay and calcium carbonate, the coating containing substantially no fluorochemical or wax;
    wherein the binder comprises synthetic and natural binders;
    wherein the binder to pigment ratio in the coating is between 25 to 40 parts binder per 100 parts pigment, by weight;
    wherein the coated paperboard has a caliper of at least 254µm (0.010");
    wherein the coated paperboard provides barrier properties to at least one of oil, grease, and moisture; and
    wherein the coated paperboard is compostable according to the ASTM D6868-11 standard for compostability.
  2. The coated paperboard of claim 1, wherein the binder to pigment ratio in the coating is between 30 to 35 parts binder per 100 parts pigment, by weight.
  3. The coated paperboard of claim 1 or claim 2, wherein the binder comprises a synthetic polymer including (i) a non-biodegradable component and (ii) a natural biodegradable component.
  4. The coated paperboard of claim 3, wherein the binder further comprises (iii) an additional natural biodegradable component.
  5. The coated paperboard of claim 4, wherein the additional biodegradable component (iii) is at least one of polysaccharide and protein.
  6. The coated paperboard of claim 4 or 5, wherein the additional biodegradable component (iii) comprises between 1 to 7 parts starch per 100 parts pigment, by weight.
  7. The coated paperboard of any of claims 1 to 6, wherein the 3M kit test value is at least 3.
  8. The coated paperboard of any of claims 1 to 7, wherein the coated paperboard has a 30-minute oil Cobb test of at most 20 grams per square meter.
  9. The coated paperboard of any of claims 1 to 8, wherein the coated paperboard is repulpable to the extent that after repulping the percentage accepts is at least 99%.
  10. The coated paperboard of claim 9, wherein the percentage accepts is at least 99.9%.
  11. The coated paperboard of any of claims 1 to 10, having no tendency toward blocking, defined as a blocking rating of "0", determined by evaluating the adhesion between the barrier coated side and the other uncoated side of samples of the coated paperboard using a test device (700) (illustrated in FIG. 5) and holding said samples for 24 hours at 50°C at a pressure of 689.5 kPa (100 psi).
  12. A method of treating paperboard, the method comprising:
    providing a paperboard substrate;
    applying to the paperboard substrate a coating comprising binder and pigment, the pigment comprising at least one of a clay and calcium carbonate, and the coating containing substantially no fluorochemical or wax;
    wherein the binder comprises synthetic and natural binders;
    wherein the binder to pigment ratio in the coating is between 25 to 40 parts binder per 100 parts pigment, by weight;
    wherein the coated paperboard has a caliper of at least 254µm (0.010");
    wherein the coated paperboard is compostable according to the ASTM D6868-11 standard for compostability.
  13. The method of claim 12, wherein the natural binder is starch.
  14. The method of claim 12 or claim 13, wherein the coating on the paperboard substrate has a coating weight, on a dry basis, of 8.1 g/m2 to 19.5 g/m2 (5 to 12 lbs per 3000 ft2).
  15. The method of claim 14, wherein the coating applied to the paperboard substrate is applied in two passes for a total coat weight of coating on the paperboard substrate, on a dry basis of 8.1 g/m2 to 19.5 g/m2 (5 to 12 lbs per 3000 ft2).
EP17751962.6A 2016-08-08 2017-08-04 Compostable paperboard with oil, grease, and moisture resistance Revoked EP3497282B1 (en)

Applications Claiming Priority (2)

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US15/230,896 US9670621B2 (en) 2015-02-11 2016-08-08 Compostable paperboard with oil, grease, and moisture resistance
PCT/US2017/045412 WO2018031387A1 (en) 2016-08-08 2017-08-04 Compostable paperboard with oil, grease, and moisture resistance

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US11549216B2 (en) 2020-11-11 2023-01-10 Sappi North America, Inc. Oil/grease resistant paper products

Citations (18)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3235368A1 (en) 1982-09-24 1984-03-29 Basf Ag, 6700 Ludwigshafen Process for coating paper and cardboard
US5989724A (en) 1993-05-10 1999-11-23 International Paper Company Recyclable and repulpable ream wrap and related methods of manufacture
EP0991815B1 (en) 1997-05-28 2002-08-28 Stora Enso Oyj Food containers and packages
WO2003002342A1 (en) 2001-06-29 2003-01-09 Spectra-Kote Corporation Grease, oil and wax resistant paper composition
WO2003078734A1 (en) 2002-03-19 2003-09-25 Raisio Chemicals Ltd Composition for surface treatment of paper
US6740373B1 (en) 1997-02-26 2004-05-25 Fort James Corporation Coated paperboards and paperboard containers having improved tactile and bulk insulation properties
WO2008100688A1 (en) 2007-02-13 2008-08-21 Tate & Lyle Ingredients Americas, Inc. Starch-containing compositions for use in imparting oil or grease resistance to paper
WO2010042162A1 (en) 2008-10-10 2010-04-15 Dow Global Technologies, Inc. Multilayer coating for paper based substrate
WO2010052571A2 (en) 2008-11-07 2010-05-14 The Bankruptcy Estate Of Stromsdal Oyj Coated recyclable paper or paperboard and methods for their production
WO2010114467A1 (en) 2009-04-02 2010-10-07 Korsnäs AB (publ) A pigment coated paperboard adapted for sterilizable packages
WO2011088966A1 (en) 2010-01-23 2011-07-28 Huhtamäki Oyj A smart laminate and a smart container thereof
WO2014005697A2 (en) 2012-07-03 2014-01-09 Huhtamäki Oyj A recyclable sheet material and a container thereof
WO2014006269A1 (en) 2012-07-05 2014-01-09 Upm-Kymmene Corporation Package for foodstuff
US9175442B2 (en) 2011-06-03 2015-11-03 Omya International Process for manufacturing coated substrates
CN105603814A (en) 2015-12-25 2016-05-25 中国制浆造纸研究院 Method for producing environment-friendly paper cup paper
DE102014119572A1 (en) 2014-12-23 2016-06-23 Delfortgroup Ag Environmentally friendly packaging paper for food
WO2016130751A1 (en) 2015-02-11 2016-08-18 Westrock Mwv, Llc Oil, grease, and moisture resistant paperboard
US20160340833A1 (en) 2015-02-11 2016-11-24 Westrock Mwv, Llc Compostable paperboard with oil, grease, and moisture resistance

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2004035931A1 (en) * 2002-10-15 2004-04-29 Dow Global Technologies Inc. Process for making coated paper or paperboard
FI120318B (en) * 2004-06-23 2009-09-15 M Real Oyj Silicon containing starch composites, process for making them and use in making paper and paperboard
WO2015021351A2 (en) * 2013-08-08 2015-02-12 Meadwestvaco Packaging Systems, Llc Systems and methods for dispensing articles from a carton

Patent Citations (19)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3235368A1 (en) 1982-09-24 1984-03-29 Basf Ag, 6700 Ludwigshafen Process for coating paper and cardboard
US5989724A (en) 1993-05-10 1999-11-23 International Paper Company Recyclable and repulpable ream wrap and related methods of manufacture
US6548120B1 (en) 1993-05-10 2003-04-15 International Paper Company Recyclable and repulpable ream wrap and related methods of manufacture
US6740373B1 (en) 1997-02-26 2004-05-25 Fort James Corporation Coated paperboards and paperboard containers having improved tactile and bulk insulation properties
EP0991815B1 (en) 1997-05-28 2002-08-28 Stora Enso Oyj Food containers and packages
WO2003002342A1 (en) 2001-06-29 2003-01-09 Spectra-Kote Corporation Grease, oil and wax resistant paper composition
WO2003078734A1 (en) 2002-03-19 2003-09-25 Raisio Chemicals Ltd Composition for surface treatment of paper
WO2008100688A1 (en) 2007-02-13 2008-08-21 Tate & Lyle Ingredients Americas, Inc. Starch-containing compositions for use in imparting oil or grease resistance to paper
WO2010042162A1 (en) 2008-10-10 2010-04-15 Dow Global Technologies, Inc. Multilayer coating for paper based substrate
WO2010052571A2 (en) 2008-11-07 2010-05-14 The Bankruptcy Estate Of Stromsdal Oyj Coated recyclable paper or paperboard and methods for their production
WO2010114467A1 (en) 2009-04-02 2010-10-07 Korsnäs AB (publ) A pigment coated paperboard adapted for sterilizable packages
WO2011088966A1 (en) 2010-01-23 2011-07-28 Huhtamäki Oyj A smart laminate and a smart container thereof
US9175442B2 (en) 2011-06-03 2015-11-03 Omya International Process for manufacturing coated substrates
WO2014005697A2 (en) 2012-07-03 2014-01-09 Huhtamäki Oyj A recyclable sheet material and a container thereof
WO2014006269A1 (en) 2012-07-05 2014-01-09 Upm-Kymmene Corporation Package for foodstuff
DE102014119572A1 (en) 2014-12-23 2016-06-23 Delfortgroup Ag Environmentally friendly packaging paper for food
WO2016130751A1 (en) 2015-02-11 2016-08-18 Westrock Mwv, Llc Oil, grease, and moisture resistant paperboard
US20160340833A1 (en) 2015-02-11 2016-11-24 Westrock Mwv, Llc Compostable paperboard with oil, grease, and moisture resistance
CN105603814A (en) 2015-12-25 2016-05-25 中国制浆造纸研究院 Method for producing environment-friendly paper cup paper

Non-Patent Citations (27)

* Cited by examiner, † Cited by third party
Title
"Food and Beverage Packaging Technology, Second Edition", 1 January 2011, BLACKWELL PUBLISHING , article RICHARD COLES, MJ. KIRWAN: "8. Paper and Paperboard Packaging", pages: 213 - 250, XP055854249
"Handbook of paper and paperboard packing technology, 2nd Edition", 1 January 2013, WILEY BLACKWELL, ISBN: 978-0-470-67066-8, article MICHAEL JUKES: "9. Rigid boxes", pages: 253 - 263, XP009557466
ANONYMOUS: " Chenming coated folding boxboard poplar C1S ", CHENMING, 16 September 2014 (2014-09-16), pages 1 - 1, XP093231979, Retrieved from the Internet <URL:https://chenmingpaper.de/wp-content/uploads/2020/12/140916_Coated_FBB_Poplar_C1S_.pdf> [retrieved on 20241206]
ANONYMOUS: "Acronal® Basonal® Styronal®, BASF Coating Binders", YUMPU.COM, 1 January 2015 (2015-01-01), pages 1 - 5, XP093233869, Retrieved from the Internet <URL:https://www.yumpu.com/en/document/read/41171282/acronalr-basonalr-styronalr-basf-packaging-portal#google_vignette>
ANONYMOUS: "Coated unbleached kraft (CUK)", INTERNATIONAL PAPER - SVETOCOAT, 1 February 2012 (2012-02-01), pages 1 - 1, XP093231988
ANONYMOUS: "EnShield Challenge kit instructions", MWV, 1 January 2015 (2015-01-01), pages 1 - 13, XP093232002
ANONYMOUS: "Foopak Bio Container", FOOPAK, 20 June 2016 (2016-06-20), pages 1 - 1, XP093231960
ANONYMOUS: "Fully coated CTMP board with uncoated reverse", STORAENSO KOPPARGLOSS, 1 November 2011 (2011-11-01), pages 1 - 1, XP093231990
ANONYMOUS: "High bulk folding box board (GC1 Hi Bulk )", BOHUI PAPER TECHNICAL SPECIFICATIOIN, 1 February 2014 (2014-02-01), pages 1 - 1, XP093231972
ANONYMOUS: "Incada Exel ", IGGESUND PAPERBOARD, 1 June 2019 (2019-06-01), pages 1 - 7, XP093231984
ANONYMOUS: "PankaBrite", PANKABOARD, 1 September 2012 (2012-09-01), pages 1 - 1, XP093231976
ANONYMOUS: "Paperboard Defenition", BRITANNICA, 8 October 2024 (2024-10-08), pages 1 - 3, XP093233879, Retrieved from the Internet <URL:https://www.britannica.com/technology/paperboard>
ANONYMOUS: "PEN-COTE™ D series coating binders", INGREDION INCORPORATED, 1 November 2016 (2016-11-01), pages 1 - 2, XP093233861
ANONYMOUS: "Pick Paperboard Like a Pro", THE INDUSTRY VOICE, 1 January 2024 (2024-01-01), pages 1 - 3, XP093234224, Retrieved from the Internet <URL:https://paperbox.org/pick-paperboard-like-a-pro/#>
ANONYMOUS: "Standard Specification for Labeling of End Items that Incorporate Plastics and Polymers as Coatings or Additives with Paper and Other Substrates Designed to be Aerobically Composted in Municipal or Industrial Facilities - Designation: D6868 − 11", ASTM INTERNATIONAL, DESIGNATION: D6868 − 11, ASTM INTERNATIONAL, 1 February 2011 (2011-02-01), XP093211518, Retrieved from the Internet <URL:https://tajhizkala.ir/doc/ASTM/D6868-11.pdf> DOI: 10.1520/D6868-11
ANONYMOUS: "StarBlanc H OBA Coated Cigarette Board (TBAT) Specificatios", INTERNATIONAL PAPER, 18 August 2015 (2015-08-18), pages 1 - 1, XP093231995
ANONYMOUS: "Symbol card ", FEDRIGONI - PRODUCT DATA SHEET SYM/462, 1 February 2016 (2016-02-01), pages 1 - 2, XP093231998
ANONYMOUS: "Upgraded Invercote G ", IGGESUND PAPERBOARD - PRODUCT CATALOGUE, 1 January 2015 (2015-01-01), pages 1 - 2, XP093231962
CHEN TING: "Application of Starch-Based Nanoparticle Colloidal Dispersion in Curtain Coating", DOCTORAL DISSERTATION, WESTERN MICHIGAN UNIVERSITY, 1 December 2015 (2015-12-01), XP093211506
D15t - English translation of DE 102014119572 A1 -Derwent Innovation Patent Export
D22 - Catia Bastoli, Handbook of Biodegradable Polymers, Rapra Technology Limited, UK, 2005
D27 - OK compost INDUSTRIAL & similar standards, TUV Austria
MARK J. KIRWAN: "Handbook of paper and paperboard packing technology, 2nd Edition", 1 January 2013, WILEY BLACKWELL, ISBN: 978-0-470-67066-8, article MARK J. KIRWAN: "1: Paper and paperboard – raw materials,processing and properties", pages: 1 - 49, XP009557465
O MITAFTSI AND S R SMITH: "Quantifying Household Waste Diversion from Landfill Disposal by Home Composting and Kerbside Collection", ICSW 2006 PROCEEDINGS OF THE 21ST INTERNATIONAL CONFERENCE ON SOLID WASTE TECHNOLOGY AND MANAGEMENT; PHILADELPHIA, USA; MARCH 26-29, 2006, 1 December 2006 (2006-12-01) - 29 March 2006 (2006-03-29), pages 96 - 105, XP009558732
RISSA KATI : "Characterization of water-based barrier coatings", THESIS, 1 June 2002 (2002-06-01), pages 1 - 129, XP093231951
SIISKONEN OLLI: "Towards 100% natural binder concepts for paper and board", WORLD PULP & PAPER - THE INTERNATIONAL REVIEW FOR THE PULP AND PAPER INDUSTRY, 1 January 2014 (2014-01-01), pages 66 - 68, XP093211503
VÄHÄ-NISSI MIKA, LAINE CHRISTIANE, TALJA RIKU, MIKKONEN HANNU, HYVÄRINEN SARI, HARLIN ALI, : "Aqueous Dispersions from Biodegradable/Renewable Polymers", VTT TECHNICAL RESEARCH CENTRE OF FINLAND, 1 January 2011 (2011-01-01), pages 1 - 14, XP093231945

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