Multilayer film containing highly refined cellulose fibers

The multilayer film production method addresses issues of slow drying and pinhole formation in MFC films by separately dehydrating and joining wet webs, resulting in high-speed, pinhole-free films with improved gas barrier and recyclability for packaging applications.

JP7839741B2Active Publication Date: 2026-04-02STORA ENSO OYJ
View PDF 5 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-04-14
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

Existing methods for producing microfibrillated cellulose (MFC) films face challenges such as slow drying rates, pinhole formation, and reduced mechanical strength due to water diffusion and shrinkage tension, which affect the efficiency and quality of gas barrier properties.

Method used

A method involving the formation of a multilayer film by separately coating and partially dehydrating two wet webs of highly purified cellulose fibers on different wires, then joining and further dehydrating them to create a pinhole-free film with improved mechanical and barrier properties.

Benefits of technology

The method enables high-speed production of films with reduced pinholes, enhanced gas barrier properties, and high recyclability, using renewable raw materials, suitable for paper and cardboard-based packaging.

✦ Generated by Eureka AI based on patent content.
Patent Text Reader

Abstract

The present invention relates to a method for producing a multilayer film comprising highly purified cellulose fibers, the method comprising the steps of: a) forming a first wet web by applying a first pulp suspension comprising highly purified cellulose fibers onto a first wire; b) partially dewatering the first wet web to obtain a first partially dewatered web; c) forming a second wet web by applying a second pulp suspension comprising highly purified cellulose fibers onto a second wire; d) partially dewatering the second wet web to obtain a second partially dewatered web; e) bonding the first and second partially dewatered webs to obtain a multilayer web; and f) further dewatering and optionally drying the multilayer web to obtain a multilayer film comprising highly purified cellulose fibers.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] This disclosure relates to gas barrier films, such as gas barrier films useful in paper and cardboard-based packaging materials. More specifically, this disclosure relates to a method for producing films containing highly purified cellulose fibers, particularly films containing microfibrillated cellulose (MFC). [Background technology]

[0002] Effective gas barriers, aroma barriers, and / or moisture barriers are required in the packaging industry to shield sensitive products. In particular, oxygen-sensitive products require oxygen barriers to extend their shelf life. Oxygen-sensitive products include many food products, but also pharmaceutical and electronic products. Known packaging materials with oxygen barrier properties can consist of one or more polymer films, usually as part of a multilayer coating structure, or fibrous paper or board coated with one or more layers of oxygen barrier polymers. Another important property for food packaging is resistance to grease and oil.

[0003] More recently, microfibrillated cellulose (MFC) films have been developed, in which defibrillated cellulose fibrils are suspended, for example in water, reorganized, and recombined to form a continuous film. MFC films have been found to provide good gas barrier properties as well as good resistance to grease and oil.

[0004] MFC films can be produced by using a casting technique that involves coating an MFC dispersion onto a non-porous cast substrate, such as a polymer or metal substrate, and drying the film by evaporation. Advantages of this technique include a uniform thickness distribution and a smooth film surface. Publication EP2771390 A4 describes the preparation of an MFC film in which an aqueous cellulose nanofiber dispersion is coated onto a paper or polymer substrate, dried, and finally peeled off as a nanofiber film sheet.

[0005] A problem related to the casting process is that the slow diffusion of water limits the drying rate as the film is formed during the drying process. The diffusion of water vapor through the film is a slow process that negatively impacts process efficiency. As the drying rate increases, pinholes may form within the film, degrading its barrier properties. A further problem in the casting process is the formation of shrinkage tension in the formed film, which can negatively affect its strength properties, such as fracture strain or tensile strength.

[0006] Alternatively, the film can be made by coating an MFC suspension onto a porous substrate to form a web, and then dewatering the web by draining water through the substrate to form a film. The porous substrate may be, for example, a membrane or wire fabric, or it may be a paper or cardboard substrate. Web formation can be achieved, for example, by using a paper machine or a cardboard machine type process. U.S. Patent Application US20120298319 A1 teaches a method for producing an MFC film by directly coating a finished pulp containing MFCs onto a porous substrate, thereby enabling the dewatering and filtration of the MFCs.

[0007] The production of films and barrier substrates from highly purified cellulose or suspensions with very slow discharge is difficult on paper machines because it is difficult to create a good barrier due to the occurrence of pinholes. Pinholes are microscopic holes that can appear in the web during the formation process. Examples of reasons for the appearance of pinholes include irregularities in the pulp suspension, such as fibril aggregation or reaggregation, rough dewatering of the fabric, uneven pulp distribution on the wire, or irregularities in the pulp suspension caused by too low a web basis weight. Pinhole formation typically increases with increasing dewatering rate. However, in the pinhole-free region, the oxygen permeability value is such that the basis weight is 20-40 g / m². 2 It is good when it exceeds [a certain value].

[0008] One method to improve barrier properties was to create a thin base substrate containing several pinholes and then coat the substrate with a polymer coating composition. However, this method requires a coating concept and a coating formulation that is optimized with respect to surface filling while simultaneously providing a barrier. Coating thin webs is also difficult because the coating can cause web breakdown. The number of times the substrate is re-wetted and dried should also be kept to a minimum, as each additional step increases costs. Polymer coatings can also reduce the repulpability of the film, thereby reducing the recyclability of products containing the film.

[0009] Another possibility discussed in prior art would be to have an extremely slow dewatering time, but this is not feasible for a high-speed and thorough discharge concept.

[0010] Another solution would be to increase the basis weight or coarseness of the film, but this would significantly increase the dewatering time and thus the risk of pinholes.

[0011] From a technical and economic perspective, it would be preferable to find a solution that enables fast dehydration while simultaneously improving either or both the mechanical or barrier properties of the film.

Summary of the Invention

[0012] An object of the present disclosure is to provide a method for producing a film comprising highly purified cellulose fibers, such as microfibrillated cellulose (MFC), which alleviates at least some of the above problems associated with prior art methods.

[0013] A further object of the present disclosure is to provide a method for producing a film comprising highly purified cellulose fibers with reduced pinhole formation.

[0014] A further object of the present disclosure is to provide an improved method for producing a film comprising highly purified cellulose fibers in a papermaking or board-making type process.

[0015] A further object of the present disclosure is to provide a film useful as a gas barrier in paper or board-based packaging materials based on renewable raw materials.

[0016] A further object of the present disclosure is to provide a film useful as a gas barrier in paper or board-based packaging materials having high repulpability while providing high recyclability of the packaging product comprising the film.

[0017] The above objects, as well as other objects that will be realized by those skilled in the art in light of the present disclosure, are achieved by various aspects of the present disclosure.

Modes for Carrying Out the Invention

[0018] According to a first aspect illustrated herein, a method for producing a multilayer film comprising highly purified cellulose fibers, comprising a) A step of forming a first wet web by coating a first pulp suspension containing highly purified cellulose fibers onto a first wire; b) A step of partially dehydrating a first wet web in order to obtain a first partially dehydrated web; c) A step of forming a second wet web by coating a second pulp suspension containing highly purified cellulose fibers onto a second wire; d) A step of partially dehydrating a second wet web in order to obtain a second partially dehydrated web; e) A step of joining first and second partially dehydrated webs in order to obtain a multilayer web; and f) A process of further dehydrating and optionally drying a multilayer web in order to obtain a multilayer film containing highly purified cellulose fibers. A method is provided that includes this.

[0019] As used herein, the term "film" generally refers to a thin, continuous sheet-forming material. Depending on the composition of the pulp suspension, the film may also be considered a thin paper or even a membrane. The film is preferably 100 g / m² 2 Less than 20-100 g / m² 2 It has a basis weight within the range. Multilayer films are typically relatively dense. In some embodiments, the multilayer film has a basis weight of 600 kg / m². 3 Amounts exceeding, preferably 900 kg / m 3 It has a density exceeding that of the above.

[0020] The method of the present invention enables the production of films containing highly purified cellulose fibers in a paper machine type process. More importantly, the method enables the production of films with a very low pinhole occurrence rate or substantially pinhole-free, with a density of 20-100 g / m². 2 This enables the production of films with relatively high basis weights within a certain range. Due to the high content of highly refined cellulose fibers, the resulting multilayer films typically have a basis weight of 600 kg / m². 3 Amounts exceeding, preferably 900 kg / m3 This results in a density exceeding that of [presumably a specific type of film]. Such films have been found to be extremely useful as gas barrier films, for example in packaging applications. The films can be used to replace conventional barrier films, such as synthetic polymer films, which reduce the recyclability of paper or cardboard packaging products. The films of the present invention have high repulpability while providing high recyclability of the films and paper or cardboard packaging products containing the films.

[0021] The manufacturing method involves the separate preparation and partial dewatering of two lower basis weight webs. The partially dewatered, but still wet, webs are joined to form a higher basis weight multilayer web, which is then further dewatered and optionally dried to obtain a multilayer film containing highly purified cellulose fibers. Joining them while the webs are still wet ensures good adhesion between the layers. In fact, if the composition of the two layers is identical, the resulting multilayer film can even be difficult to distinguish from a single-layer film of the corresponding thickness. Partial dewatering and lamination of partially dewatered webs have been found to substantially eliminate the occurrence of pinholes in the finished multilayer film while still allowing for high production rates. In the prior art, increasing the dewatering rate has been achieved by using large amounts of retaining and effluent chemicals at the wet end of the process, sometimes causing increased aggregation. However, retaining and effluent chemicals can also cause a more porous web structure, and therefore it is necessary to minimize the use of such chemicals. The method of the present invention provides an alternative method for increasing the dewatering rate with less reliance on the addition of retaining and effluent chemicals.

[0022] Although different configurations for carrying out the steps of the present invention can be contemplated by those skilled in the art, the present invention can be advantageously carried out in a paper machine, more preferably in a Ford linear paper machine.

[0023] A paper machine (or papermaking machine) is an industrial machine used in the pulp and paper industry to produce paper at high speed and in large quantities. Recent papermaking machines typically operate based on the Fourdrinier machine principle, which uses a moving woven mesh called a "wire" to filter and extract fibers held in a pulp suspension, creating a continuous web by producing a continuously moving wet web of fibers. This wet web is dried within the machine to produce a strong paper web.

[0024] The forming, dewatering, and bonding steps of the method of the present invention are preferably carried out in the forming section of a paper machine, commonly referred to as the wet end. The wet web is formed on different wires within the forming section of the paper machine. A preferred type of forming section for use with the present invention includes two or three Fourdrinier wire sections in combination with a support wire. The wire is preferably an endless wire. The wire used in the method of the present invention preferably has a relatively high porosity to enable fast dewatering and high discharge capacity. The air permeability of the wire is preferably greater than 5000 m 3 / m 2 / hour at 100 Pa. The wire preferably contains at least 500 knuckles per centimeter 2 and more preferably at least 1000 knuckles per centimeter 2 to reduce fiber marking.

[0025] The first and second pulp suspensions are aqueous suspensions containing a water suspension mixture of a cellulose-based fibrous material and optionally a non-fibrous additive. The method of the present invention uses pulp suspensions containing highly refined cellulose fibers. Refining, or beating, of cellulose pulp refers to the mechanical treatment and modification of cellulose fibers to impart desired properties to them. Highly refined cellulose fibers can be produced from different raw materials, such as softwood pulp or hardwood pulp. Highly refined cellulose fibers are preferably undried cellulose fibers.

[0026] As used herein, the term highly purified cellulose fiber refers to purified cellulose fiber having a Schöpper-Leighler (SR) value of 65 or higher, preferably 70 or higher, as determined by ISO standard 5267-1.

[0027] In some embodiments, the first and / or second pulp suspension is formed from a cellulose-finished paper stock having a Schöpper-Leighler (SR) value in the range of 65 to 99, preferably in the range of 70 to 90.

[0028] The dry solid content of the first and / or second pulp suspension is typically in the range of 0.1 to 0.7 wt%, preferably in the range of 0.15 to 0.5 wt%, and more preferably in the range of 0.2 to 0.4 wt%.

[0029] The dry solids of the first and / or second pulp suspension may consist solely of highly purified cellulose fibers, or it may include a mixture of highly purified cellulose fibers with other components or additives. The first and / or second pulp suspension preferably contains highly purified cellulose fibers as its main component based on the total dry weight of the pulp suspension. In some embodiments, the first and / or second pulp suspension contains at least 50 wt%, preferably at least 70 wt%, more preferably at least 80 wt%, or at least 90 wt%, of highly purified cellulose fibers based on the total dry weight of the pulp suspension.

[0030] In some embodiments, the highly purified cellulose fibers in the first and / or second pulp suspension are purified kraft pulp. The purified kraft pulp will typically contain at least 10% hemicellulose. Thus, in some embodiments, the first and / or second pulp suspension contains at least 10% hemicellulose, such as in the range of 10–25% of the amount of highly purified cellulose fibers.

[0031] The first and / or second pulp suspension may further contain additives such as natural starch or starch derivatives, cellulose derivatives such as sodium carboxymethylcellulose, fillers, retaining and / or effluent chemicals, flocculating additives, gelatinizing additives, dry strength additives, softeners, crosslinking aids, sizing chemicals, dyes and colorants, wet strength resins, fixatives, defoaming aids, microorganisms and slime inhibitors, or mixtures thereof. The first and / or second pulp suspension may further contain additives such as latex and / or polyvinyl alcohol (PVOH) to improve the ductility of the film, which will improve the mixture and / or different properties of the produced film. The method of the present invention provides an alternative method for increasing the dewatering rate that is less dependent on the addition of retaining and effluent chemicals, although smaller amounts of retaining and effluent chemicals may still be used.

[0032] The method of the present invention is particularly useful for producing so-called microfibrillated cellulose (MFC) films. Therefore, in some embodiments, the highly purified cellulose fibers are MFCs.

[0033] Microfibrillated cellulose (MFC) is understood in the context of this patent application to mean nanoscale cellulose particle fibers or fibrils having at least one dimension less than 100 nm. MFCs include partially or completely fibrillated cellulose or lignocellulose fibers. While free fibrils have a diameter of less than 100 nm, the actual fibril diameter or particle size distribution and / or aspect ratio (length / width) depend on the source and manufacturing method. The smallest fibrils are called elementary fibrils and have a diameter of approximately 2–4 nm (see, e.g., Chinga-Carrasco, G., Cellulose fibers, nanofibrils and microfibrils,: The morphological sequence of MFC components from a plant physiology and fiber technology point of view, Nanoscale Research Letters 2011, 6:417). On the other hand, the aggregated form of elementary fibrils, also defined as microfibrils (Fengel, D., Ultrastructural behavior of cell wall polysaccharides, Tappi J., March 1970, Vol. 53, No. 3), is generally the main product obtained when MFCs are produced, for example, using extended refining processes or pressure-decomposition processes. Depending on the source and production process, the length of the fibrils can vary from approximately 1 micrometer to over 10 micrometers. Coarse MFC grades may contain a significant proportion of fibrillated fibers, i.e., fibrils protruding from tracheids (cellulose fibers), along with a certain amount of fibrils released from the tracheids (cellulose fibers).

[0034] MFCs have various acronyms, including cellulose microfibrils, fibrillated cellulose, nanofibrillated cellulose, fibril aggregates, nanoscale cellulose fibrils, cellulose nanofibers, cellulose nanofibrils, cellulose microfibers, cellulose fibrils, microfibrilized cellulose, microfibril aggregates, and cellulose microfibril aggregates. MFCs can also be characterized by various physical or physicochemical properties, such as their large surface area or their ability to form gel-like materials with low solid content (1-5 wt%) when dispersed in water.

[0035] Various methods exist for producing MFCs, including one or more pass refining, pre-hydrolysis followed by refining or high-shear decomposition or fibril liberation. One or more pretreatment steps are usually required to make MFC production energy-efficient and sustainable. Thus, the cellulose fibers of the pulp to be used may be pretreated, for example enzymatically or chemically, to hydrolyze or swell the fibers or reduce the amount of hemicellulose or lignin. The cellulose fibers may be chemically modified before fibrillation so that the cellulose molecules contain (more) functional groups other than those found in natural cellulose. Such groups include, among others, carboxymethyl (CMC), aldehyde and / or carboxyl groups (cellulose obtained by N-oxyl-mediated oxidation, e.g., "TEMPO"), quaternary ammonium (cationic cellulose), or phosphoryl groups. After modification or oxidation in one of the above methods, it is easier to decompose the fibers into MFCs or nanofibrils.

[0036] Nanofibrilized cellulose may contain several types of hemicellulose, the amount of which depends on the plant source. Mechanical decomposition of pre-treated fibers, such as hydrolyzed, pre-swollen, or oxidized cellulose raw materials, is carried out using suitable equipment such as refiners, pulverizers, homogenizers, colloiders, friction pulverizers, ultrasonic sonicators, microfluidizers, macrofluidizers, or fluidinizer-type homogenizers. Depending on the MFC manufacturing method, the product may also contain fine fibers, or nanocrystalline cellulose, or other chemicals present in wood fibers or during the papermaking process. The product may also contain various amounts of micron-sized fiber particles that are not efficiently fibrillated.

[0037] MFCs are produced from wood cellulose fibers from both hardwood and softwood. They can also be made from microbial sources, agricultural fibers such as straw pulp, bamboo, and bagasse, or other non-wood fiber sources. Preferably, they are made from pulp from virgin fibers, including mechanical, chemical, and / or thermomechanical pulp. They can also be made from waste paper or recycled paper.

[0038] The dry solids of the first and / or second pulp suspension may consist solely of MFC, or it may include a mixture of MFC and other components or additives. The first and / or second pulp suspension preferably contains MFC as its main component based on the total dry weight of the pulp suspension. In some embodiments, the first and / or second pulp suspension contains 50 to 99 wt%, preferably at least 70 to 99 wt%, and more preferably at least 80 to 99 wt%, of MFC based on the total dry weight of the pulp suspension.

[0039] In some embodiments, at least a portion of the MFC is obtained from MFC waste paper.

[0040] In addition to highly purified cellulose fibers, the first and / or second pulp suspension may also contain a certain amount of unpurified or slightly purified cellulose fibers. As used herein, the term unpurified or slightly purified fibers refer to cellulose fibers having a Schöpper-Leighler (SR) value of less than 30, preferably less than 28, as determined by ISO standard 5267-1. Unpurified or slightly purified cellulose fibers are useful for promoting dewatering and can also improve the strength and fracture toughness of multilayer films. In some embodiments, the first and / or second pulp suspension contains 0.1 to 50 wt%, preferably 0.1 to 30 wt%, more preferably 0.1 to 10 wt%, of unpurified or slightly purified cellulose fibers based on the total dry weight of the pulp suspension. Unpurified or slightly purified cellulose fibers can be obtained, for example, from bleached or unbleached or mechanical or chemimechanical pulp or other high-yield pulp. Unpurified or slightly purified cellulose fibers are preferably undried cellulose fibers.

[0041] The pH values ​​of the first and / or second pulp suspensions may typically be in the range of 4 to 10, preferably 5 to 8, and more preferably 5.5 to 7.5.

[0042] The temperature of the first and / or second pulp suspension may typically be in the range of 30 to 70°C, preferably in the range of 40 to 60°C, and more preferably in the range of 45 to 55°C.

[0043] The compositions of the first and second pulp suspensions may be the same or different. For example, in some embodiments, one of the pulp suspensions may contain unpurified or slightly purified cellulose fibers, while the other pulp suspension may not contain unpurified or slightly purified cellulose fibers. One possibility is to have a first pulp suspension containing less highly purified cellulose fibers and / or a larger amount of unpurified or slightly purified cellulose fibers with a lower SR value to result in faster dehydration, and a second pulp suspension containing more highly purified cellulose fibers and / or a smaller amount of unpurified or slightly purified cellulose fibers with a higher SR value to provide good barrier properties or a surface with very high smoothness. The first web formed from the first pulp suspension may be, for example, 15-20 g / m². 2 A basis weight within the range of the second web formed from the second pulp suspension, slightly higher than the basis weight of the second web, for example, 25-30 g / m². 2 It may have a basis weight within the range of [specified range].

[0044] In some embodiments, the first and second pulp suspensions are supplied from two different headboxes. This can be advantageous because the headboxes can be operated to be slightly different, for example, with different consistency, headbox jet angles, or jet-to-wire ratios.

[0045] The wire used in the method of the present invention preferably has relatively high porosity to enable rapid dewatering and high discharge capacity. The air permeability of the wire is preferably 5000 m at 100 Pa. 3 / m 2 / Exceeds time.

[0046] The wire preferably has a high fiber support index (FSI), typically above 190, to prevent fine material from penetrating the structure and to produce less wire marking and a rough, open back side.

[0047] In some embodiments, the first and second pulp suspensions have the same composition. This simplifies the process because only one pulp suspension source is required. Having the same composition also reduces the problem of curling in the finished film, as two layers of the multilayer film will have the same composition.

[0048] The basis weight of each of the first and / or second wet webs, based on the total dry weight of the web, is preferably 50 g / m². 2 Less than 30g / m², more comfortably 30g / m² 2 It is less than 50g / m². 2 Less than 30g / m² 2 A basis weight of less than 5 g / m² was found to allow for rapid partial dewatering of the wet web with minimal pinhole formation. The basis weight of the first and / or second wet web, based on the total dry weight of the web, is preferably at least 5 g / m². 2 Therefore, in some embodiments, the basis weight of the first and / or second wet web, based on the total dry weight of the web, is 5 to 50 g / m². 2 Within the range of 5-30 g / m², more preferably 5-30 g / m² 2 It is within the range.

[0049] After formation, the first and second wet webs are partially dewatered. Dewatering of the webs on the wire may be carried out using methods and equipment known in the art, including, but not limited to, table rolls and foils, frictionless dewatering, and ultrasonically assisted dewatering. Partial dewatering means that the dry solid content of the wet web is reduced compared to the dry solid content of the pulp suspension, but the dewatered web still contains a significant amount of water. In some embodiments, partial dewatering of the wet web means that the dry solid content of the first and second partially dewatered webs is greater than 1 wt% but less than 15 wt%. In some embodiments, partial dewatering of the wet web means that the dry solid content of the first and second partially dewatered webs is greater than 1 wt% but less than 10 wt%. Dry solid content of the first and second partially dewatered webs within this range has been found to be particularly suitable for bonding the first and second wet webs within a multilayer web. In some embodiments, the dry solid content of the first and second partially dehydrated webs prior to the bonding step may be in the range of 1.5 to 8 wt%, preferably in the range of 2.5 to 6 wt%, and more preferably in the range of 3 to 4.5 wt%.

[0050] Partially dehydrated, but still moist, webs are joined to form a multilayer web with a higher basis weight. The dry solid content of the first and second partially dehydrated webs when they are joined is preferably greater than 1 wt% but less than 15 wt%, more preferably greater than 1 wt% but less than 10 wt%. In some embodiments, the dry solid content of the first and second partially dehydrated webs when they are joined is in the range of 1.5 to 8 wt%, preferably in the range of 2.5 to 6 wt%, more preferably in the range of 3 to 4.5 wt%. The partially dehydrated webs are preferably joined by wet lamination. When the pulp suspension is dehydrated on the wire, a visible boundary line will appear from the point where the web has a reflective water layer to the point where this reflective layer disappears. This boundary line between the reflective web and the non-reflective web is called the water line. The water line indicates a certain solid content of the web. The webs are preferably joined after the water line. Joining the webs while they are still wet ensures good adhesion between the layers. Joining can be achieved by placing one of the partially dewatered webs on top of the other web. Joining may be performed on the non-wire side relative to the non-wire side, or on the wire side relative to the non-wire side. Joining and further dewatering of the formed multilayer webs can be improved by various additional operations. In some embodiments, joining further includes pressing the first and second partially dewatered webs together. In some embodiments, joining further includes applying suction to the joined first and second partially dewatered webs. Applying pressure and / or suction to the formed multilayer web improves adhesion between the web layers. The wire section of the paper machine may have various dewatering devices such as blades, tables and / or foil elements, suction boxes, frictionless dewatering, ultrasonically assisted dewatering, cootie rolls, or dandy rolls.

[0051] The surface of the web facing the wire is called the wire side, and the surface of the web facing the opposite direction from the wire is called the non-wire side.

[0052] When highly purified cellulose fibers, particularly MFCs, are dehydrated on a wire, a difference in microfiber content has been found between the non-wired and wired sides. Microfibers are typically concentrated on the non-wired side, with more microfibers being washed away from the wired side where dehydration occurs. This difference or imbalance in web composition causes curling problems in the finished film due to changes in humidity. Forming a multilayer film according to the present invention can solve or improve this problem by mitigating the imbalance in web composition.

[0053] The webs may preferably be joined on the non-wire side relative to the non-wire side, or on the non-wire side relative to the wire side. Joining the webs on the non-wire side relative to the non-wire side, or on the wire side relative to the non-wire side, offers the additional advantage that a larger proportion of the microfibers are concentrated toward the center of the multilayer film. This concentration of microfibers contributes to both interlayer adhesion and the gas barrier properties of the film. The microfibers can also contribute to a self-healing phenomenon, where they redistribute to fill voids in the felt-like sheet on the wet wire, thus reducing the porosity of the resulting film.

[0054] It is preferable to join the web to the non-wire side on the non-wire side for the following reasons: i) the fine fibers will be concentrated in the center; ii) the film structure will be symmetrical, reducing the curling problem; iii) the high concentration of fine fibers on the contact surface will ensure good interlayer bonding; and iv) the more porous outer surface (wire side) will allow for more efficient dewatering and faster drying in the press section.

[0055] The dry solids content of the multilayer web typically increases further during the bonding process. This increase in dry solids content can be due to dewatering of the multilayer web on the wire and optional pressure and / or suction applied to the web, and further to drying operations performed during or immediately after bonding, such as impingement drying or air or steam drying. The dry solids content of the multilayer web after bonding and the application of optional pressure and / or suction is typically above 8 wt%, but below 28 wt%. In some embodiments, the dry solids content of the multilayer web before further dewatering and optional drying steps is in the range of 8 to 28 wt%, preferably in the range of 10 to 20 wt%, and more preferably in the range of 12 to 18 wt%.

[0056] Based on the total dry weight of the web, the basis weight of multilayer webs and multilayer films is typically 100 g / m². 2 Less than 60 g / m² 2 Less than 40 g / m², more preferably 40 g / m² 2 It is less than . In some embodiments, the basis weight of multilayer webs and multilayer films, based on the total dry weight of the web, is 10 to 100 g / m². 2 Within the range of 10 to 60 g / m², preferably 10 to 60 g / m². 2 Within the range of 10-40 g / m², more preferably 10-40 g / m² 2 It falls within this range. Pinhole-free films having basis weights within these ranges have been found to have good oxygen barrier properties.

[0057] The present invention is described herein primarily with reference to embodiments in which a multilayer film is formed from two web layers containing highly purified cellulose fibers. However, it is understood that the multilayer film may also include additional web layers containing highly purified cellulose fibers. Thus, the multilayer film to be formed may also be formed from three or more web layers containing highly purified cellulose fibers, such as three, four, five, six, or seven layers. The formation, composition, and structure of each additional layer can be further characterized as described above with reference to the first and second web layers. Thus, in some embodiments, a method for producing a multilayer film is described below. c2) A step of forming a third wet web by coating a third pulp suspension containing highly purified cellulose fibers onto a third wire; d2) A step of partially dehydrating a third wet web in order to obtain a third partially dehydrated web; e2) A process of joining first, second, and third partially dehydrated webs in order to obtain a multilayer web. It also includes.

[0058] In further dehydration and optional drying steps f), the dry solid content of the multilayer web typically increases further. The resulting multilayer film preferably has a dry solid content of 90 wt% or more.

[0059] Further dewatering typically involves pressing the web to squeeze out as much water as possible. Further dewatering may, for example, involve passing the formed multilayer web through the press section of a paper machine, where the web passes between large rolls loaded under high pressure to squeeze out as much water as possible. The removed water is typically absorbed by a fabric or felt. In some embodiments, the dry solids content of the multilayer film after further dewatering is in the range of 15 to 48 wt%, preferably in the range of 18 to 40 wt%, and more preferably in the range of 22 to 35 wt%.

[0060] Optional drying may include, for example, drying the multilayer web by passing it around a series of heated drying cylinders. Drying can typically remove the water content to a level of about 1–15 wt%, preferably about 2–10 wt%.

[0061] The final dry solids content of the multilayer film may vary depending on the intended use of the film. For example, a film intended for use as a standalone product may have a dry solids content in the range of 85-99 wt%, preferably 90-98 wt%, while a film intended for use in further lamination to form paper or cardboard-based packaging materials may have a dry solids content in the range of 30-85 wt%, or less than 90 wt%, preferably less than 85 wt%.

[0062] Pinholes are microscopic holes that may appear within a web during the formation process. Examples of reasons for the appearance of pinholes include irregularities in the pulp suspension, such as fibril aggregation or reaggregation, rough dewatering of the fabric, uneven pulp distribution on the wire, or irregularities in the pulp suspension caused by too low a web basis weight. In some embodiments, a multilayer film has 10 pinholes / m² when measured according to EN standard 13676:2001. 2 Less than 8 pinholes / m 2 Less than, more preferably 2 pinholes / m 2 This includes values ​​less than [value missing]. The measurement involves treating the multilayer film with a coloring solution (e.g., dye E131 Blue in ethanol) and microscopically inspecting the surface.

[0063] Multilayer films typically exhibit good resistance to grease and oil. The grease resistance of multilayer films was evaluated by the KIT test according to ISO standard 16532-2. The test uses a series of mixtures of castor oil, toluene, and heptane. As the proportion of oil to the solvent decreases, the viscosity and surface tension also decrease, making it more difficult for subsequent mixtures to withstand. Performance is graded by the solution to which the maximum number is applied without blackening the sheet after 15 seconds. The solution to which the maximum number is applied (most aggressive) that remains on the surface of the paper without causing defects is reported as the "KIT rating" (maximum 12). In some embodiments, the KIT value of a multilayer film is at least 6, preferably at least 8, when measured according to ISO standard 16532-2.

[0064] In some embodiments, the multilayer film has a Gurley-Hill value of at least 10,000 s / 100 ml, preferably at least 25,000 s / 100 ml, and more preferably at least 40,000 s / 100 ml, when measured according to ISO standard 5636 / 6.

[0065] The multilayer film preferably has high repulpability. In some embodiments, when the multilayer film is tested as a Category II material according to the PTS-RH 021 / 97 test method, it exhibits a residue of less than 30%, preferably less than 20%, and more preferably less than 10%.

[0066] Films containing a large amount of highly purified cellulose fibers are typically transparent or translucent to visible light. Therefore, in some embodiments, multilayer films are transparent or translucent to visible light.

[0067] Furthermore, in a specific embodiment, the method of the present invention includes the following: i) Prepare a first finished pulp from a fiber mix comprising 5–15 wt% unrefined or slightly refined bleached softwood or hardwood kraft pulp having a Schöpper-Leighler (SR) value in the range of 15–25, preferably in the range of 20–25, and 95–85% highly refined bleached softwood or hardwood kraft pulp in the form of MFCs having an SR value of at least 90. All cellulosic materials can be prepared from the same kraft pulp source, where the highly refined fibers are obtained by thorough refining and / or homogenization of the fibers and optional enzymatic pretreatment. The pH of the first finished pulp is between 6.5 and 8.5.

[0068] The water retention capacity (WRV) of the mixture is approximately 300-350%. The SR value of the mix (without any further chemicals added) is at least 80, preferably at least 85. Therefore, the mixture exhibits high discharge resistance.

[0069] The first finished pulp is prepared to a consistency of 0.15–0.35 wt% and a temperature of 35–45°C. Process chemicals such as retention aids (one-component, two-component, or multi-component), forming aids (nonionic or anionic water-soluble polymers such as CMC), and optionally other additives such as fillers (<10 wt%), wet strength additives, and hydrophobic chemicals (<5 kg / tn) are added to the finished pulp.

[0070] ii) Prepare the second finished pulp according to the same recipe as the first finished pulp, but using 5-20% less MFC.

[0071] iii) Form and dewater the first web layer on the first wire using the Ford linear technique. The basis weight of the first layer is 20 g / m². 2 That is the case.

[0072] iv) Form and dewater a second web layer foamed on the second wire using the Ford linear technique. The basis weight of the second layer is 20 g / m². 2 That is the case.

[0073] v) Transferring the second web layer to the first web layer and joining them, and pressing the two layers together to ensure contact and adhesion between the layers and to further dehydrate the formed multilayer web. The dry solid content of the first and second web layers prior to the joining process is in the range of 1.5 to 8 wt%. The solid content of the second layer is slightly less than that of the first layer.

[0074] vi) To obtain a multilayer film, the multilayer web is further dehydrated and optionally dried.

[0075] The resulting product is pinhole-free and possesses good oxygen barrier properties (15 cc / m³ when measured according to ASTM standard D-3985 at 50% relative humidity and 23°C). 2 It has grease barrier properties (KIT > 11) and a surface roughness of 3.0 or higher for the uncalendered base PPS10, and a density of 600-900 kg / m³. 3 It is within the range. The Gurley-Hill value of the film is 42300.

[0076] A second embodiment illustrated herein provides a multilayer film comprising highly purified cellulose, which can be obtained by the method of the present invention.

[0077] The multilayer film of the present invention is particularly suitable as a thin packaging film when coated or laminated with one or more layers of thermoplastic polymer. Therefore, the multilayer film may preferably be coated or laminated with one or more polymer layers.

[0078] The multilayer film may have polymer layers on one or both sides.

[0079] The polymer layer may generally contain either thermoplastic polymers commonly used in paper or cardboard-based packaging materials, or polymers particularly used in liquid packaging boards. Examples include polyethylene (PE), polyethylene terephthalate (PET), polypropylene (PP), polylactic acid (PLA), polyglycolic acid (PGA), starch, and cellulose. Polyethylene, especially low-density polyethylene (LDPE) and high-density polyethylene (HDPE), are the most common and versatile polymers used in liquid packaging boards.

[0080] Thermoplastic polymers are useful because they can be easily processed by extrusion coating techniques to form very thin and homogeneous films with good liquid barrier properties. In some embodiments, the polymer layer comprises polypropylene or polyethylene. In preferred embodiments, the polymer layer comprises polyethylene, more preferably LDPE or HDPE.

[0081] The polymer layer may comprise one or more layers formed of the same polymer resin or different polymer resins. In some embodiments, the polymer layer comprises a mixture of two or more different polymer resins. In some embodiments, the polymer layer is a multilayer structure consisting of two or more layers, where the first layer is made of a first polymer resin and the second layer is made of a second polymer resin, which is different from the first polymer resin.

[0082] In some embodiments, the polymer layer is formed by extrusion coating of a polymer onto the surface of a multilayer film. Extrusion coating is a process by which molten plastic material is applied to a substrate to form a very thin, smooth, and uniform layer. The coating can be formed by the extruded plastic itself, or molten plastic can be used as an adhesive to laminate a solid plastic film onto the substrate. Common plastic resins used in extrusion coating include polyethylene (PE), polypropylene (PP), and polyethylene terephthalate (PET).

[0083] The basis weight of each polymer layer in the multilayer film is preferably 50 g / m². 2 It is less than 8 g / m². To achieve a continuous and substantially defect-free film, at least 8 g / m² is required. 2 Preferably at least 12 g / m 2 A typical basis weight of the polymer layer is required. In some embodiments, the basis weight of the polymer layer is 8-50 g / m². 2 Within the range of preferably 12-50 g / m² 2 It is within the range.

[0084] The multilayer film of the present invention may preferably be used as a gas barrier layer in paper or cardboard-based packaging materials, for example, in liquid packaging boards (LPBs) for use in packaging liquids or products containing liquids. Accordingly, according to the third embodiment illustrated herein, Paper or cardboard substrate; and Multilayer film obtainable by the method of the present invention Paper or cardboard-based packaging materials containing the following are provided.

[0085] Paper generally refers to a material manufactured in sheets or rolls from wood pulp or other fibrous materials containing cellulose fibers, for use, for example, for writing, drawing, or printing, or as packaging material. Paper may be bleached or unbleached, coated or uncoated, and can be produced in various thicknesses depending on the requirements of its final use.

[0086] Paperboard generally refers to strong, thick paper or cardboard containing cellulose fibers, used, for example, as a flat substrate, tray, box, and / or other type of packaging. Paperboard may be bleached or unbleached, coated or uncoated, and can be produced in various thicknesses depending on the end-use requirements.

[0087] A multilayer film of a paper or cardboard-based packaging material according to a second embodiment can be further defined as described above with reference to the first embodiment.

[0088] In some embodiments, the multilayer film is directly bonded to a paper or cardboard substrate, for example, when the multilayer film is wet-laminated onto the substrate. Therefore, in some embodiments, the multilayer film is in direct contact with the substrate.

[0089] In other embodiments, the multilayer film is indirectly bonded to a paper or cardboard substrate, for example, when the multilayer film is laminated onto the substrate using an adhesive layer placed between the substrate and the multilayer film. Thus, in some embodiments, the paper or cardboard-based packaging material further includes an adhesive layer placed between the substrate and the multilayer film.

[0090] In some embodiments, the paper or cardboard-based packaging material is 200 g / m² as measured according to ISO standard 15106-2 / ASTM standard F1249 at a relative humidity of 50% and 23°C. 2 It has a water vapor transmission rate (WVTR) of less than 24 hours.

[0091] In some embodiments, the paper or cardboard-based packaging material has a humidity of 1000 cc / m², measured according to ASTM standard D-3985 at a relative humidity of 50% and 23°C. 2 Less than 24 hours / atm, preferably 500cc / m 2 Less than 24 hours / atm, more preferably 100cc / m 2 Less than / 24 hours / atm, most preferably 50cc / m 2 It has an oxygen permeability (OTR) of less than / 24 hours / atm.

[0092] Generally, products, polymers, materials, layers, and processes are described as "containing" various components or steps, but products, polymers, materials, layers, and processes can also "essentially consist of" or "made up of" various components and steps.

[0093] While the present invention has been described with reference to various exemplary embodiments, it will be understood by those skilled in the art that various modifications may be made without departing from the scope of the invention, and that elements may be substituted with equivalents. In addition, many modifications may be made to adapt the teachings of the invention to specific situations or materials without departing from its essential scope. Thus, the present invention is not limited to the specific embodiments disclosed as the best mode contemplated for carrying out the invention, however, the present invention is intended to include all embodiments contained within the appended claims. [Examples]

[0094] Experiments were conducted in a pilot Ford linear machine to demonstrate that the dewatering speed, and consequently the running speed, can also be increased by using two Ford linear wire sections.

[0095] Driving conditions Pulp mixture: 100% MFC Water retention value: >350% SR:>90 Additives: Cationic starch, cationic retention aid, anionic retention aid, hydrophobic sizing, wetting strength agent pH: 7.5 Temperature: 45℃ Wet pressurization: 3 nip 10 / 15 / 15 kN / m

[0096] Reference trial point As a standard, 30g / m 2 The web was run at a speed of 30 m / min on wire section 1. The wire retention rate was 99%. The waterline was very slow, so increasing the running speed was not possible in this setup.

[0097] Trial point 1 The first web was run on wire section 1, and the second web was run on wire section 2. Each web was weighed 20g / m 2 The device was run at a speed of 30 m / min. The wire retention rate on each wire was 99.6%. The web was joined in a wet state, with a density of 40 g / m 2 A multilayer web with a combined weight was formed, and the multilayer web was further dewatered. Based on the waterline position, it was clear that a much higher running speed would have been possible.

[0098] Trial point 2 The first web was run on wire section 1, and the second web was run on wire section 2. Each web was weighed 15g / m 2 The device was run at a speed of 45 m / min. The wire retention rate on each wire was 98.8%. The web was joined in a wet state, with a thickness of 30 g / m 2 A multilayer web with a combined weight was formed, and the multilayer web was further dewatered. Based on the waterline position, it was clear that an even higher running speed would have been possible.

[0099] The results indicate that the dewatering rate, and consequently the running speed, can be increased by using two Ford linear wire sections. All three films obtained had high Gurley-Hill values ​​(42,300 s / ml when measured according to ISO standard 5636 / 6, which was the maximum value of the instrument). This indicates that the higher running speed did not significantly affect the barrier properties of the film.

Claims

1. A method for producing a multilayer film containing highly purified cellulose fibers, a) A step of forming a first wet web by coating a first pulp suspension containing highly refined cellulose fibers having a Schöpper-Leighler (SR) value greater than 90 as determined by ISO standard 5267-1 onto a first wire; b) A step of partially dehydrating a first wet web in order to obtain a first partially dehydrated web; c) A step of forming a second wet web by coating a second wire with a second pulp suspension containing highly refined cellulose fibers having a Schöpper-Leighler (SR) value greater than 90 as determined by ISO standard 5267-1; d) A step of partially dehydrating a second wet web in order to obtain a second partially dehydrated web; e) A step of joining first and second partially dehydrated webs in order to obtain a multilayer web; the step of joining first and second partially dehydrated webs wherein the dry solid content of the first and second partially dehydrated webs prior to the joining step is in the range of 1.5 to 8 wt%, and f) A step of further dehydrating and optionally drying the multilayer web in order to obtain a multilayer film containing highly purified cellulose fibers. Includes, A method comprising highly purified cellulose fibers being microfibrillated cellulose (MFC), wherein the first and second pulp suspensions contain 80-99 wt% MFC based on the total dry weight of the pulp suspension.

2. The method according to claim 1, wherein the dry solid content of the first and / or second pulp suspension is in the range of 0.1 to 0.7 wt%.

3. The method according to claim 1 or 2, wherein the first and second pulp suspensions have the same composition.

4. The basis weight of the first and / or second wet webs, based on the total dry weight of the webs, is 50 g / m². 2 The method according to any one of claims 1 to 3, wherein the result is less than [amount missing].

5. The method according to any one of claims 1 to 4, wherein the dry solid content of the first and second partially dehydrated webs prior to the bonding step is in the range of 2.5 to 6 wt%.

6. The method according to any one of claims 1 to 5, wherein bonding is carried out by wet lamination of first and second partially dehydrated webs.

7. The method according to any one of claims 1 to 6, further comprising pressing together a first and a second partially dehydrated web.

8. The method according to any one of claims 1 to 7, further comprising applying suction to the joined first and second partially dehydrated webs.

9. The method according to any one of claims 1 to 8, wherein the dry solid content of the multilayer web before further dehydration and before an optional drying step is in the range of 8 to 28 wt%.

10. The basis weight of multi-layer webs, based on the total dry weight of the web, is 10-100 g / m². 2 The method according to any one of claims 1 to 9, which is within the range of claims 1 to 9.

11. The method according to any one of claims 1 to 10, wherein the multilayer film is transparent or translucent to visible light.

12. The method according to any one of claims 1 to 11, wherein the KIT value of the multilayer film is at least 6 when measured in accordance with ISO standard 16532-2.

13. When a multilayer film is measured according to EN standard 13676:2001, it has 10 pinholes / m². 2 The method according to any one of claims 1 to 12, including less than

14. The method according to any one of claims 1 to 13, wherein the multilayer film has a Gurley-Hill value of at least 10,000 s / 100 ml when measured according to ISO standard 5636 / 6.

15. A method for manufacturing a paper or cardboard-based packaging material, Paper or cardboard substrate; and Multilayer film obtainable by the method of any one of claims 1 to 14 Methods that include...

16. Paper or cardboard-based packaging material, measured at 50% relative humidity and 23°C according to ISO standard 15106-2 / ASTM standard F1249, weighing 200 g / m². 2 The method according to claim 15, having a water vapor transmission rate (WVTR) of less than 24 hours.

17. A paper or cardboard-based packaging material having a volume of 1000 cc / m³ measured according to ASTM standard D-3985 at a relative humidity of 50% and 23°C. 2 The method according to claim 15, having an oxygen permeability (OTR) of less than / 24 hours / atm.

Citation Information

Patent Citations

  • Formation of microfibrillated flexible films

    JP2018527476A

  • Coated paper, paperboard or film manufacturing method and coated paper, paperboard or film

    JP2020502379A

  • Fibrous substrate containing fibers and nanofibrillar polysaccharide

    US20160016717A1

  • Web-forming section and method for manufacturing multi-layer web

    WO2007048877A2

  • A method for the production of a coated paper, paperboard or film and a coated paper, paperboard or film

    WO2019198040A1