Lid foil for sealing beverage capsules
A multi-layer lid film for beverage capsules addresses waste and aroma loss by using biodegradable materials with enhanced gas and moisture barriers, ensuring effective sealing and compostability.
Patent Information
- Application Number
- PCT/EP2025/069080
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-03
- Filing Date
- 2025-07-03
- Publication Date
- 2026-01-08
AI Technical Summary
Existing beverage capsules, particularly those made of aluminum, generate significant waste due to non-compostability and lack effective gas and moisture barriers, leading to aroma loss.
A multi-layer lid film composed of paper, polylactic acid, metallization, and a thermoplastic sealing layer made from glucose, lignin, or cellulose, with additional biodegradable adhesives and coatings, providing enhanced gas and moisture barriers.
The lid film achieves excellent sealing properties against gas ingress and moisture while being fully compostable, reducing waste and preserving beverage aroma.
Abstract
Description
[0001] Lid foil for sealing beverage capsules
[0002] Description
[0003] The present invention relates to a lid film for airtight sealing of beverage capsules, in particular coffee capsules, with excellent barrier properties against gas ingress, water or humidity and oxygen.
[0004] Capsules for brewing single portions of beverages like coffee or tea are widely used. The capsules consist of a cup-shaped base and a lid or lid film that tightly seals the base. The capsules are designed to be inserted into a compatible brewing machine with the lid film attached. To brew, the capsule with the lid film is pierced. Hot water, preferably under pressure, is then forced into the capsule by the machine. The hot beverage, e.g., brewed coffee, can then flow out through the pierced holes in the lid film.
[0005] As is well known, the capsules, including the base and lid foil, are made of aluminum to protect the contents from loss of aroma, for example, due to oxygen exposure. Since aluminum capsules are not compostable, a huge amount of waste is generated that must be disposed of.
[0006] Meanwhile, capsules are also known that have a base body and lid film made of a biodegradable plastic or similar material, such as WO 2018 / 202821 A1 of the applicant or biodegradable beverage capsules as described in WO 2015 / 121489 A1 of Ritter GmbH or in DE 20 2016 104 950 U1 by Francesco Spignesi.
[0007] It is therefore an object of the present invention to provide a lid film made of a biodegradable, compostable or home compostable material that is suitable for sealing containers with capsules and prevents the ingress of gases even better.
[0008] According to the invention, a lid film is provided which is made up of several layers and thus has complete sealing capability.
[0009] The present invention further relates to a beverage capsule with the lid film according to the invention. Therefore, the invention relates to a lid film for beverage capsules comprising, from the outside in, several layers: i.) at least one layer of paper, ii.) at least one layer containing polylactic acid, iii.) at least one layer of metallization, iv.) at least one sealing layer containing at least one thermoplastic
[0010] Plastic made from glucose, lignin, or cellulose.
[0011] In a preferred embodiment, the layers between i.) and ii.) and iii.) and iv.) can be provided with at least one laminating adhesive.
[0012] In a preferred embodiment, the layer i.) can have a basis weight of 25 to 50 g / m², in particular 30 to 40 g / m², and / or a thickness of 25 to 75 µm. Paper within the meaning of this invention is a thin material made essentially from plant fibers.
[0013] In a further preferred embodiment, layer ii.) can contain at least one further aliphatic aromatic copolyester, in particular polybutylene adipate terephthalate (PBAT) (ecoflex® BASF), which is compostable according to EN 13432.
[0014] Particularly preferred are those from BASF with the trade name ecovio ® based on polylactic acid, which are compostable according to EN 13432.
[0015] Preferably, layer ii.) has a maximum modulus of elasticity of 100 to 300 MPa according to ISO 527. Furthermore, it is preferred that the maximum yield strength or tensile stress is 45 MPa, particularly 35 to 40 MPa according to ISO 527.
[0016] Furthermore, an MVR (190 degrees Celsius / 5 kg) of 8-12 cm3 / 10 min according to ISO 1133 is preferred.
[0017] In a further preferred embodiment, layer ii.) can consist of several such layers, in particular two or three layers, each layer containing polylactic acid, or additionally containing at least one further aliphatic aromatic copolyester.
[0018] In layer ii.), in addition to polylactic acid (PLA), other biopolymers may be present, such as modified polylactic acid, polylactic acid copolymers, polyhydroxyalkanoates (PHA), and polycaprolactone (PCL). Examples of PLA copolymers are copolymers with polyesters, e.g., aliphatic polyesters (CPLA).
[0019] Preferred are biodegradable polylactide-based plastics, such as modified polylactide, polylactide copolymers, alpha hydroxy acids such as poly(lactide-co-glycolide) (PLGA), polyanhydrides, aliphatic polyesters, copolyesters with aliphatic and aromatic blocks, polyesteramide, polyester urethane, a polyethylene oxide polymer, a polyglycol and copolymers thereof.
[0020] Layer ii.) can have a thickness of 10 - 50 pm.
[0021] In a further preferred embodiment, according to layer iii.) the metal can be selected from boron, aluminium or silicon, in particular boron oxide, aluminium oxide or silicon oxide.
[0022] In a further preferred embodiment, layer iii.) can have a thickness of 20–50 nm, in particular 30–40 nm. Metallization is carried out by vapor deposition onto layer ii.).
[0023] In a further preferred embodiment, layer iii) can additionally contain an acrylate coating.
[0024] In a further preferred embodiment, the acrylate coating can have an additional thickness of 20–40 nm on top of layer iii). The coating provides advantageous protection and fixation of the metallization in layer iii).
[0025] At least one acrylate may be selected from the group of polyurethane, polyester, epoxy and polyether acrylates or methaacrylates, in particular oligomers, and / or monomers selected from the group of mono-, di-, tri-, tetra- and hexafunctional acrylates or methaacrylates.
[0026] Furthermore, it is preferred that the metallization layer iii.) - on layer ii.) - has a weight of 0.1 to 0.15 g / m² and / or that the acrylate has a weight of 0.04 to 0.06 g / m².
[0027] In a further preferred embodiment, the sealing layer iv.) can contain at least one thermoplastic polymer made from glucose, lignin, or cellulose, preferably compostable according to EN 13432. Furthermore, the sealing layer iv.) can contain biopolymers, such as, but not limited to, polyhydroxyalkanoates (PHA), polycaprolactone (PCL), polyester (PET), starch, polylactic acid (PLA), polyolefins (PE), and polyamides (PA).
[0028] Preferably, the sealing layer iv.) has a maximum modulus of elasticity of 3000 or 4000 to 4500 MPa according to ISO 527 (measurement of the modulus of elasticity at a test speed of 1 mm / min). Furthermore, it is preferred that the maximum yield strength or tensile stress is 40 to 60 MPa, in particular 55 or 54 MPa according to ISO 527.
[0029] Furthermore, a melt volume flow rate (MVR) of 3-5 cm (standardized test conditions: 190 degrees Celsius / 2.16 kg) is preferred. 3 / 10 min according to ISO 1133.
[0030] In one embodiment, a sealing layer iv.) is preferably made of a polymer mixture, namely comprising a.) 70-95 wt. % of at least one thermoplastic polymer made of glucose,
[0031] a.) is made from lignin or cellulose, having a modulus of elasticity of 4000 - 4400 MPa and a yield strength or tensile strength of 50 - 60 MPa according to ISO 527, and b.) 5 - 30 wt. % of at least one thermoplastic polymer made from glucose,
[0032] is made from lignin or cellulose, having a modulus of elasticity of 200 - 400 MPa and a yield strength or tensile stress of 10 - 20 MPa according to ISO 527
[0033] Furthermore, a polymer mixture of a.) / b.) of 85 wt. % : 15 wt. % is preferred.
[0034] Furthermore, it is preferred that a.) a melt volume flow rate (MVR) (190 degrees Celsius / 2.16 kg) of 3 cm 3 / 10 min according to ISO 1133 and b.) has a melt volume flow rate (MVR) (190 degrees Celsius / 2.16 kg) of 6 cm 3 / 10 min according to ISO 1133.
[0035] Furthermore, a.) and b.) may contain biopolymers such as polyhydroxyalkanoates (PHA), polycaprolactone (PCL), polyester (PET), starch, polylactic acid (PLA), polyolefins (PE), polyamides (PA).
[0036] Such polymer mixtures are available from the company Tecnaro, Ilsfeld, Germany. For example
[0037] Abroblend®. In particular, the sealing layer allows for advantageous mechanical strength of the beverage capsule with optimal internal pressure.
[0038] In a further preferred embodiment, the sealing layer iv.) can consist of several such layers, in particular two or three layers, each layer containing at least one further thermoplastic polymer made from glucose, lignin or cellulose that is compostable according to EN 13432.
[0039] The sealing layer iv.) can have a thickness of 30 - 70 pm.
[0040] Therefore, the invention also relates to a lid film for beverage capsules or a beverage capsule with a lid film according to the invention, wherein the beverage capsule contains or consists of at least one layer of ii.) and / or iv.).
[0041] Overall, the present invention realizes a compostable or home-compostable lid film together with beverage capsule in accordance with the European Standard (EN) 13432.
[0042] The layer of paper according to i.) forms the outer layer of the lid film according to the invention.
[0043] To protect the contents of the container, the layers according to the invention, in their selected arrangement, exhibit optimal barrier properties against oxygen and water vapor and therefore achieve excellent sealing properties. The barrier layers according to the invention have a suitable barrier effect against oxygen and water vapor.
[0044] To produce the lid film, the respective layer is laminated using a preferably biodegradable laminating adhesive.
[0045] Preferably, a biodegradable, food-safe laminating adhesive is used. Examples include aqueous solutions of polyvinyl alcohol (PVOH) based on starch, protein adhesives, or polyurethane (Morchem, Munich, Germany).
[0046] Another suitable biodegradable laminating adhesive is the water-based adhesive Epotal® Eco from BASF. Capsules for beverages made of biodegradable plastic can be manufactured using standard plastics engineering processes, such as thermoforming or injection molding.
[0047] It should be noted that features described in connection with an exemplary embodiment or an exemplary object can be combined with any other exemplary embodiment or with any other exemplary object.
[0048] When a term is referred to with an indefinite or definite article, such as "ein" in the singular, this also includes the term in the plural and vice versa, unless the context clearly indicates otherwise.
[0049] The term "encompass", as used here, not only includes the meaning of "contain", but can also mean "consisting of" and "essentially consisting of".
[0050] ISO 527 defines the mechanical behavior of plastics under tensile stress. This standard specifies the test methods for determining the tensile properties of plastics. ISO 527 describes the maximum yield stress or tensile stress that the material can withstand when stretched before it breaks, or the maximum slope of the stress-strain curve in the linear region (maximum modulus of elasticity).
[0051] ISO 1133 describes the method for determining the MVR (Melt Volume Rate) and the MFR (Melt Flow Rate), which indicate the mass of plastic extruded through the die in grams per 10 minutes (g / 10 min). The MVR indicates how much volume of plastic is extruded through a defined die in a specific time period under specified conditions. The MVR is expressed in cubic centimeters per 10 minutes (cm³). 3 / 10 min). Standardized test conditions are, for example, 190 degrees Celsius / 2.16 kg or 190 degrees Celsius / 5 kg.
Claims
Patent claims:
1. Lid film for beverage capsules comprising, from the outside in, several layers, i.) at least one layer of paper, ii.) at least one layer containing polylactic acid, iii.) at least one layer of metallization, iv.) at least one sealing layer containing at least one thermoplastic Plastic made from glucose, lignin, or cellulose.
2. Lid film for beverage capsules according to claim 1 comprising at least one laminating adhesive between i.) and ii.) and iii.) and iv.).
3. Lid film for beverage capsules according to claim 1 or claim 2, wherein layer ii.) contains at least one further aliphatic aromatic copolyester, in particular polybutylene adipate terephthalate (PBAT), which is compostable according to EN 13432.
4. Lid film for beverage capsules according to one of the preceding claims, wherein the sealing layer iv.) contains at least one further thermoplastic material made from glucose, lignin or cellulose, which is compostable according to EN 13432.
5. Lid film for beverage capsules according to one of the preceding claims, wherein the beverage capsule contains or consists of at least one layer of ii.) and / or iv.).
6. Lid film for beverage capsules according to one of the preceding claims, wherein i.) has a grammage of 25 to 50 g / m², in particular 30 to 40 g / m² and / or has a thickness of 25 - 75 pm.
7. Lid foil for beverage capsules according to one of the preceding claims, wherein according to layer iii.) the metal is selected from boron, aluminium or silicon, in particular boron oxide, aluminium oxide or silicon oxide.
8. Lid film for beverage capsules according to one of the preceding claims, wherein layer iii.) has a thickness of 20 - 50 nm.
9. Lid film for beverage capsules according to one of the preceding claims, wherein iii.) additionally includes a coating made of acrylate.
10. Lid film for beverage capsules according to claim 9, wherein at least one acrylate is selected from the group consisting of polyurethane, polyester, epoxy and polyether acrylates or methaacrylates, in particular oligomers, and / or monomers selected from the group consisting of mono-, di-, tri-, tetra- and hexafunctional acrylates or methaacrylates.
11. Lid film for beverage capsules according to one of claims 9 or 10, wherein the acrylate coating has a thickness of 20 - 40 nm.
12. Lid film for beverage capsules according to one of claims 1 to 8 and 9 or 10, wherein the metallization layer iii.) has a weight of 0.1 to 0.15 g / m² and / or the acrylate has a weight of 0.04 to 0.06 g / m².
13. Lid film for beverage capsules according to any one of claims 1 to 13, wherein layer ii.) has a maximum modulus of elasticity of 100 to 300 MPa according to ISO 527 and / or the maximum yield strength or tensile stress is 45 MPa, in particular 35 to 40 MPa according to ISO 527 and / or the melt volume flow rate (MVR) is 8-12 cm⁻¹ 3 / 10 min under standardized test conditions 190 degrees Celsius / 5 kg according to ISO 1133.
14. Lid film for beverage capsules according to any one of claims 1 to 13, wherein the sealing layer iv.) has a maximum modulus of elasticity up to 4500 MPa according to ISO 527, and / or the maximum tensile stress or yield strength of 40 - 60 MPa according to ISO 527, and / or the melt volume flow rate (MVR) of 3-5 cm3 / 10 min under standardized test conditions 190 degrees Celsius / 2.16 kg according to ISO 1133.
Citation Information
Patent Citations
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