Method for manufacturing cellulose products using a pressure molding apparatus, pressure molding apparatus, and cellulose products

The pressure molding method addresses the challenges of cellulose product production by applying isotropic or anisotropic pressure and heat to cellulose blanks, resulting in recyclable products with thermoplastic-like properties and reduced cycle times.

JP7848442B2Active Publication Date: 2026-04-21PULPAC AB
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
PULPAC AB
Filing Date
2022-11-02
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing methods for producing cellulose products face challenges such as the need for energy-intensive drying processes, formation of strong interfiber bonds limiting flexibility, and the use of non-recyclable thermoplastic components, which hinder the sustainable production of recyclable and mechanically strong packaging materials.

Method used

A method involving the use of a pressure molding apparatus that applies isotropic or anisotropic pressure and heat to cellulose blanks containing less than 45% water, allowing for the production of cellulose products with desirable mechanical properties in shorter cycle times, using primarily wood pulp and minimal additives.

Benefits of technology

The method enables the production of recyclable cellulose products with mechanical properties comparable to thermoplastics, overcoming the limitations of traditional methods by achieving high strength and flexibility while reducing manufacturing time and environmental impact.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method for producing a cellulosic product having a flat or non-flat product shape by a pressure-molding apparatus including a mold and said pressure-molding apparatus are provided. [Solution] A molding die (2a) has a molding surface that defines the product shape. The method includes the following steps: placing a cellulose blank containing less than 45% by weight of water in the molding die; heating the cellulose blank to a molding temperature T1 in the range of 100°C to 200°C; and pressing the cellulose blank using the molding die at a molding pressure P1 in the range of 1 MPa to 100 MPa acting on the cellulose blank across the entire molding surface.
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Description

[Technical Field]

[0001] Technical field to which the invention belongs This disclosure relates to a method for producing cellulose products from wood pulp, an apparatus for producing such cellulose products, and cellulose products.

[0002] Background of the Invention In many situations, it is desirable to provide two-dimensional (2D) or three-dimensional (3D) shaped objects made from sustainable materials. One such situation relates to the packaging of highly sensitive items such as mechanical precision parts, electronic equipment, and other household goods and hardware products, which require protective packaging to prevent damage to confidential items from, for example, mechanical shock, vibration, or compression during transport, storage, or other handling. Such packaging typically requires protective inserts shaped to fit the contained goods so that the goods are held securely within the package. Such inserts are usually made of expanded polystyrene (EPS), a lightweight petroleum-derived material that is not considered sustainable.

[0003] A commonly used, low-cost material for packaging inserts is molded pulp. Molded pulp has the advantage of being considered a sustainable packaging material because it is made from biomaterials and can be recycled after use. As a result, molded pulp is rapidly gaining popularity in both primary and secondary packaging applications (packaging that is tightly attached to an article and collections of such packages). Molded pulp is generally formed by immersing a suction mold in a pulp suspension during suction, thereby forming a mass of pulp into the shape of the desired article by the deposition of fibers. The suction mold is then withdrawn from the suspension, and suction is typically continued while the remaining liquid is drained, compressing the deposited fibers.

[0004] A common drawback of all wet molding techniques is the need to dry the molded product, which is a time-consuming and energy-intensive process. Another drawback is the formation of strong interfiber bonds, often described as hydrogen bonds, between the fibers in the material, which limit the material's flexibility.

[0005] Furthermore, many modern lean production lines require the in-line and on-demand manufacturing of packages or components, in which case wet molding processes are undesirable.

[0006] In recent years, new fibrous materials have been developed to enable the dry molding of three-dimensional objects. One method is disclosed in International Publication No. 2014142714 (WO2014142714A1). International Publication No. 2014142714 (WO2014142714A1) discloses a dry composite web, an intermediate product for thermoforming three-dimensional objects, comprising 40-95% by mass of CTMP fibers, 5-50% by mass of thermoplastic material, and 0-10% by mass of additives. The dry composite web is impregnated with a dispersion, emulsion, or solution containing the thermoplastic material and polymer, and dried to a density of 50-250 kg / m². 3 If a density of 400-1000 kg / m³ is obtained, or if compressed by calendering, it will be 400-1000 kg / m³. 3 A density is obtained. According to International Publication No. 2014142714 (WO2014142714A1), polymer bonding is activated by applying higher temperatures in the thermoforming process, contributing to the final strength of the thermoformed object.

[0007] The polymers described in International Publication No. 2014142714 (WO2014142714A1) contribute to the final strength and enable the molding of dry webs; however, such thermoplastic components cause the composite to lose its sustainable functionality as the composite is not recycled. This drawback also applies when renewable and compostable bioplastics, such as polylactide (PLA), are used as presented in International Publication No. 2014142714 (WO2014142714A1), because logistics for recycling the material are not available.

[0008] Recent research and political decisions, such as the Paris Agreement on Climate Change in 2015, stipulate that the carbon footprint of consumed goods and packaging is strongly influenced by the potential for recycling and reuse of materials in so-called life cycle analyses (LCAs). Even renewable materials such as cellulose and PLA must be recycled to meet the standards for non-renewable, multiple-recycled materials like polyethylene terephthalate (PET).

[0009] Material recycling is gradually becoming established in most parts of the world. Europe boasts a recycling rate of approximately 30% globally, while the United States is at only 10%, and many developing countries have yet to begin recycling. All recycling efforts commonly focus on the most frequently used materials, such as paper, cardboard, glass, aluminum, steel, and PET. These recyclable fractions make up the majority of waste, and it is unlikely that other fractions, such as biopolymers, will be established as publicly available recycling logistics in the near future.

[0010] Therefore, there is a very high global demand for renewable and recyclable materials with mechanical properties similar to plastics for 3D molded packaging, boxes, cups, plates, bowls, inserts, and covers.

[0011] ISBN 978-91-7501-518-7 (Helena Halonen, October 2012) studies hydroxyethylcellulose (HEC), one method for creating new all-cellulose composites by compressing commercially available chemical wood pulp treated with water alone. The objective was to study the structural changes during processing and the complexity of the relationship between the mechanical properties of the final biocomposite and its nanoscale structure.

[0012] During compression molding, the combined use of high temperature (150°C to 170°C) and high pressure (45 MPa) significantly increases fibril aggregation, likely including cellulose-cellulose fusion bonds, i.e., fibril aggregation in the fiber-fiber bonding region. This fibril aggregation results in a biocomposite material with remarkable mechanical properties, such as improved strength (289 MPa), modulus (12.5 GPa), and toughness (6%) compared to, for example, PET strength (75 MPa) and PET modulus (PET 3 GPa).

[0013] International Publication No. 2014142714 (WO2014142714A1) proposes non-recyclable thermoplastic components, and ISBN 978-91-7501-518-7 presents scientific results for molding recyclable cellulose fibers to obtain good mechanical properties. However, no practical or industrial method has been invented to date that would enable the commercial production of cellulose packaging and goods as a recyclable plastic alternative to cardboard, within a reasonable cycle time.

[0014] Summary of the Invention The object of the present invention is to provide a method for producing a cellulose product, a cellulose molding apparatus, and a cellulose product that avoid the above-mentioned problems. This object is at least partially solved by the features of the independent claims. Dependent claims include further developments of the method for producing a cellulose product, a cellulose molding apparatus, and a cellulose product.

[0015] In many situations, it is desirable to provide objects made from sustainable materials in flat or substantially non-flat shapes. Flat shapes generally refer to two-dimensional shapes, such as sheet materials or blanks, while substantially non-flat shapes refer to the shape of a suitable three-dimensional object. One such situation relates to the packaging of liquids, dry goods, and various articles, where the packaging may be made in a three-dimensional shape or formed from a two-dimensional sheet material into a three-dimensional shape.

[0016] The present invention relates to a method for producing a cellulose product having a flat or non-flat shape using a pressure molding apparatus having a mold, the mold having a molding surface that defines the shape of the product, the method comprising the following steps: - A step of placing a cellulose blank containing less than 45% by mass of water into the mold; - A step of heating the cellulose blank to a molding temperature in the range of 100°C to 200°C; and - A step of pressing the cellulose blank using the mold with a molding pressure in the range of 1 MPa to 100 MPa acting on the entire molding surface of the cellulose blank. The present invention relates to the manufacturing method, including the present invention.

[0017] The molding pressure can be isotropic or anisotropic.

[0018] A further aspect of the present invention provides a method for producing a cellulose product having a non-flat product shape, comprising the steps of: preparing an isostatic molding apparatus including a mold having a molding surface that defines the product shape and a pressure mold; placing a cellulose blank containing less than 45 mass percent of water between the mold and the pressure mold; heating the cellulose blank to a molding temperature in the range of 100°C to 200°C; and pressing the cellulose blank against the mold using the pressure mold with substantially equal molding pressure acting on the cellulose blank across the entire molding surface, wherein the molding pressure is in the range of 1 MPa to 100 MPa.

[0019] It is also possible to perform the heating step and the pressing step at least partially simultaneously, or to preheat the cellulose blank and not apply additional heat during pressing.

[0020] Cellulose products can be, for example, containers or parts of containers, and can be, for example, alternatives to plastic products that are more difficult to recycle by the production of cellulose products using the method according to an embodiment of the present invention. Thus, cellulose products produced using the method of the present invention can be, for example, packages, boxes, bowls, plates, cups, trays or covers for packages, inserts.

[0021] The term "isotropic" should be understood to mean that the volumetric pressure on the fibers of the biocomposite heated during the fibril aggregation process is substantially equal at all geometric positions of the final 3D object during manufacture.

[0022] The term "anisotropic" should be understood to mean that the volumetric pressure on the fibers of the biocomposite heated during the fibril aggregation process is not equal at all geometric positions of the final 3D object during manufacture. <000090>

[0023] Cellulose blanks can be prepared in various forms, for example, as webs, mats, felts, loosened fibers, foams, sheets, etc. The blank contains trace amounts (0 - 10%) of reagents to increase strength, reduce hygroscopicity, or make the final component hydrophobic, flame retardant, color the component, or otherwise modify the characteristics of the final material. However, the amount of additive should not be a problem in achieving the object of the present invention of producing a component that can be recycled as cardboard.

[0024] The blank can be produced in a pulp processing plant as a rolled mat.

[0025] The present invention is based on the fact that flat or non-flat cellulose products can be produced more homogeneously in shorter cycle times using an isotropic molding apparatus. In particular, the inventors have found that, depending on the desired shape of the cellulose product, the isotropic pressure acting on the cellulose blank can significantly reduce the holding time required to obtain a final product with the same mechanical properties. Furthermore, the inventors have also found that, depending on the desired shape of the cellulose product, anisotropic pressure acting on the cellulose blank can properly mold the cellulose product, resulting in a final product with desirable mechanical properties.

[0026] In this context, it should be noted that the processing time required to obtain acceptable mechanical properties of the final product is related to the humidity of the blank, a specific temperature, and specific isotropic or anisotropic pressures.

[0027] A variety of mechanical properties can be produced by a temperature preferably between 150°C and 170°C, and a pressure preferably between 3 MPa and 7 MPa. For example, at an air humidity of 50% relative humidity, an isotropic temperature of 168°C, and an isotropic pressure of 4.8 MPa, a hard and rigid component will be formed after a holding time of 10 seconds. Lowering the temperature and pressure will result in a softer and more flexible component.

[0028] Furthermore, a large amount of water in the blank significantly extends the holding time. ISBN 978-91-7501-518-7 specifies a holding time of 20 minutes, and substantially moist pulp is used in the study. Experiments have shown that the optimal water content in the cellulose blank during processing should be in the range of 0.5% by mass to 10% by mass.

[0029] In harsh conditions where large pressure differences occur in the blank during bonding, any part of the component will inevitably fail, regardless of the holding time.

[0030] Prior art describes pulp compression devices with hydraulic cylinders that use conventional presses, where the hydraulic cylinder converts hydraulic pressure, called a pressure medium, into force on a tool or die via the cylinder's piston. When forming non-planar objects such as hollow 3D objects, the die has a convex die section, a concave die section, and a cavity (called the die cavity) between them that represents the desired thickness and shape of the component, and this die is compressed by force from the piston. In such shape-defined compression devices, if no compensation is made for component thickness versus processing pressure, large local pressure differences will occur in the blank during heat treatment. As a result, in shape-defined compression devices that do not compensate for isotropic pressure, the quality of the component becomes inconsistent, and in most industrial cases, the manufacturing cycle time can become unacceptable.

[0031] Furthermore, the inventors have found that when using the isotropic method, the required pressure level can be significantly reduced. In ISBN 978-91-7501-518-7, a hollow hemisphere is used as a reference for the study in a shape-defined compression apparatus at 45 MPa and 20 minutes. The internal pressure of the blank in the mold cavity is extremely high at the top (near the poles) and close to zero at the bottom (adjacent to the equator). The inventors have found, surprisingly, that by using isotropy, an object can be manufactured with a holding time of a few seconds and at one-tenth of the pressure used.

[0032] According to various embodiments of the present invention, the cellulose blank may contain wood pulp. While so-called mechanical pulp can be used in the cellulose blank, it has been found that chemical wood pulp yields products with superior material properties.

[0033] In one embodiment, the cellulose blank may contain at least 90 percent by mass of wood pulp and therefore be manufactured almost entirely from easily recyclable materials.

[0034] According to various embodiments, the pressurized type advantageously includes a flexible membrane, and the pressurized molding apparatus further includes a fluid control device for controlling the fluid to apply isotropic pressure to the cellulose blank through a fluid-impermeable membrane.

[0035] It should be noted that in this context, the term "liquid" includes both liquids and gases.

[0036] In some embodiments, the molding apparatus may contain a high-pressure fluid within an enclosure partially enclosed by a membrane. Increasing the volume of fluid in the enclosure and / or decreasing the size of the enclosure increases the fluid pressure. As the liquid pressure increases, the isotropic pressure acting on the cellulose blank increases.

[0037] Therefore, the fluid control device may be an actuator for compressing a fluid, or a fluid flow control device capable of controlling the pressurized fluid to enter a pressure chamber, the pressure chamber having a flexible membrane as part of its wall.

[0038] In some embodiments, the above-mentioned membrane may be an integral part of the apparatus and may be used during a series of pressing operations.

[0039] In other embodiments, the film is fixed to the cellulose blank during pressing, for example, by an adhesive, and this method may further include a step of providing a new film following the pressing process. In these embodiments, the film can be provided, for example, on a roll and applied to a manufactured product to add functionality to the product.

[0040] In yet another embodiment, the above-described film may be provided on a cellulose blank.

[0041] According to a further aspect of the present invention, an isostatic molding apparatus is provided for producing a cellulose product having a flat or non-flat product shape starting from a cellulose blank, the apparatus comprising a mold having a molding surface that defines the product shape, and a fluid control device for controlling a fluid to apply isostatic pressure to the cellulose blank and press the cellulose blank against the molding surface.

[0042] The mold may include a concave molding portion and a concave pressing portion.

[0043] The mold may include a concave mold portion and a convex press portion.

[0044] The present invention also relates to cellulose products manufactured by the described method. The cellulose products have a flat or substantially non-flat shape.

[0045] According to one embodiment of the present invention, isotropic pressure is obtained by a power-controlled compressor, the compressor comprising a flexible barrier or membrane that surrounds a blank and isolates the blank from a pressure medium, such as gas, hydraulic oil, water to be filled, beverage, elastomer, or dilatant material.

[0046] Methods and apparatus according to embodiments of the present invention relate to blow molding of hollow 3D objects such as bottles, milk packaging, cans, and glass bottles. Conventional cellulose-based packaging for dairy products and juices is facing competition from blow-molded PET bottles. While cellulose and paper-based packaging are renewable and recyclable, the widespread adoption of folded paper packaging has been limited by the moldability of blow-molded PET.

[0047] According to the blow molding embodiment described above, the apparatus includes at least two concave molds surrounding the cellulose fibers and a single-use film layer barrier that forms an integrated part with the final component, wherein the cellulose fibers and the film layer barrier are provided in a tubular shape into the cavity of the mold, and the film layer barrier isolates the pressure medium from the cellulose fibers during filling in the tubular shape, pressurizing the pressure medium to apply isotropic pressure to all parts of the cellulose fibers toward the mold.

[0048] Accordingly, the present invention provides a method, a tubular blank, a blow molding apparatus, and a recyclable package having properties similar to those of thermoplastic plastics, the package being recyclable as paper and cardboard.

[0049] Such a blow molding apparatus can preferably be used as a filling device at a dairy plant, brewery, or juice factory, using the beverage or liquid to be filled as the pressure medium.

[0050] According to another embodiment, isotropy is achieved in a shape-defining compression device having two rigid molds (one convex and the other concave), where the shape of the final three-dimensional object is defined by a cavity between the closed molds, and the thickness of the cavity or the blank is designed so that isotropy is applied to all parts of the cellulose fibers toward the molds.

[0051] These and other aspects of the present invention will be described in more detail herewith with reference to the accompanying drawings illustrating exemplary embodiments of the present invention. [Brief explanation of the drawing]

[0052] [Figure 1] Figures 1a to 1c schematically show conventional pressing methods, compression devices, and components. [Figure 2a] Figure 2a schematically shows an alternative configuration for a compression device using a reusable membrane, illustrating an initial stage according to an exemplary embodiment of the present invention. [Figure 2b] Figure 2b schematically shows an alternative configuration of a compression device using a reusable membrane, illustrating the compression stage according to an exemplary embodiment of the present invention. [Figure 3] Figures 3a and 3b schematically show alternative configurations of a compression device, including an integrated barrier of single-use material, illustrating the initial stage (a) and the compression stage (b) according to exemplary embodiments of the present invention. [Figure 4] Figures 4a to 4d schematically show alternative configurations of the compression device and components using a single-use integrated barrier and blow molding, illustrating the initial stages (a and b) and the compression stage (c) according to exemplary embodiments of the present invention. [Figure 5] Figures 5a and 5b schematically illustrate alternative configurations of a compressor using a reusable membrane, showing the initial stage (a) and the compression stage (b) according to exemplary embodiments of the present invention. [Figure 6] Figures 6a to 6c schematically show alternative configurations of a compressor using cavity-compensated pressure control, illustrating the initial stages (a and b) and the compression stage (c) according to exemplary embodiments of the present invention. [Figure 7] Figures 7a and 7b schematically show alternative configurations of a compression device using blank thickness compensation, illustrating the initial stage (a) and the compression stage (b) according to exemplary embodiments of the present invention. [Figure 8] Figures 8a to 8c schematically show alternative configurations for a compressor that use a large flexible membrane. [Figure 9] Figures 9a to 9c schematically show another alternative configuration of the compressor using a large flexible membrane.

[0053] Description of Exemplary Embodiments Various aspects of the present disclosure are described below in conjunction with the accompanying drawings, illustrating but not limiting the present disclosure, where similar names refer to similar elements, and variations of the described aspects are applicable to other variations of the present disclosure, not limited to the embodiments specifically shown.

[0054] A detailed description of the present invention will explain a method for producing cellulose products, a pressure molding apparatus, and cellulose products.

[0055] The various embodiments of sheet materials or blanks described herein primarily relate to cellulose blanks positioned in a flat shape within a mold for molding. It should be noted that this does not limit the scope of the invention, and similarly includes, for example, blanks pre-formed into three-dimensional objects. For instance, a blank may be supplied to the mold in a shape resembling an object of a desired final shape. Another embodiment may include a cellulose blank supplied to the mold in the form of a web on a roll.

[0056] A planar shape generally refers to a two-dimensional (2D) shape, such as the shape of a blank or sheet material, while a substantially non-planar shape may refer to a suitable three-dimensional (3D) shape. The objects of this disclosure may be made in a two-dimensional shape, a three-dimensional shape, or may be formed into a three-dimensional shape from a two-dimensional blank or sheet material.

[0057] Furthermore, by schematically illustrating a coherent sheet of cellulose fibers, it is shown that this does not limit the scope of the present invention, for example, in a mold. Includes loosened and separated fibers applied This also includes blanks.

[0058] In the detailed description of the present invention, various embodiments of the molds used to form three-dimensional objects and objects according to the present invention are discussed, primarily with respect to hollow bowls, hollow cups, or hollow bottles having generally uniform thickness. It should be noted that this is by no means limiting the scope of the invention, and similarly includes, for example, complex shapes with varying thicknesses, non-hollow parts, or large objects. For example, an object may advantageously include stiffeners, folds, holes, 3D shaped text, hinges, locks, threads, snaps, feet, handles, or surface patterns.

[0059] Figures 1a to 1c show components manufactured using conventional pressing methods, compression devices, and anisotropic methods and devices.

[0060] Figure 1a is a schematic side view of a conventional compression device in an uncompressed state, having an upper concave mold 102b, a lower convex mold 102a, and a cellulose fiber sheet 101a.

[0061] Figure 1b is a schematic side view of a conventional compression device in a compressed state, having an upper concave mold 102b, a lower convex mold 102a, and a cellulose fiber sheet 101a, wherein the device is partially compressed by a force F that uses heat and pressure P to form a desired final shape 101b.

[0062] Conventionally, the thickness of the final component 101b is uniform, and therefore the thickness of the cavity between the two molds 102a and 102b is t1 = r b -r a It is uniform. Conventional tools for compression are made of rigid metal or similar non-flexible material, and since dry cellulose fibers do not behave as a pressure equalizing fluid, the pressure P in the cavity depends on the amount of the blank 101 and the principle of local pressure generation.

[0063] The principle of generating local pressure at pressures P2 and P5 is defined by force F. The principle of generating local pressure at P4 is defined by the geometry of the cavity and the quantity of the blank 101. Local pressure P3 is determined by combining the principles of force and shape-defined pressure generation.

[0064] Shape-defined pressures like P4 are highly dependent on the actual current quantity of blank 101. Small, typically stochastic fluctuations in local material supply can significantly impact the resulting local pressure. Power-defined pressures have a linear gain and are a far more robust process for industrial applications.

[0065] Figure 1c shows a three-dimensional object, component, and hemisphere 101b manufactured by the conventional compression method described above. As the blank 101a bends on the lower mold 102a, a portion of the blank 101a may stretch, and as the upper pressurizing mold 102b closes the tool on the blank 101a, the mechanical properties of the final component 101b differ between position 101b P4 and position 101b P2.

[0066] A power-controlled compression device according to an exemplary embodiment of the present disclosure will be described here with reference to Figures 2a and 2b. Figure 2a shows a schematic side view in an open position of a compression device or pressure molding device in the form of a heat-using cellulose fiber mold 3. The compression device or mold may be configured to apply isotropic pressure when molding a cellulose product. Alternatively, the applied pressure may be anisotropic so that different pressure levels are applied to different parts of the mold 3 when molding a cellulose product. The mold 3 has at least one molding surface that defines the shape of the product.

[0067] The mold 3 of this embodiment of the present disclosure uses one rigid mold portion 2a positioned beneath a reusable membrane 4. The membrane 4 constitutes a seal for a pressure medium or fluid 5, such as hydraulic oil, housed in a pressure chamber not shown. The membrane 4, also called a diaphragm, may preferably be made of rubber, silicone, elastomer, or polyurethane.

[0068] Similar presses are found in entirely different industries, for example, when forming metal sheets for aircraft or processing metal powder into a uniform material. For instance, isotropic presses for conventional purposes typically use very high pressures, such as in the range of 1000-2000 bar.

[0069] The cellulose blank 1a, which mainly contains cellulose fibers along with several additives and reagents, is placed in the gap between the membrane 4 and the rigid mold portion 2a, which is located beneath the membrane 4 in Figure 2a, as shown in Figure 2a. The cellulose blank 1a also contains a large amount of moisture, which may change depending on, for example, the humidity of the surrounding atmosphere.

[0070] To form a cellulose product or a portion of a cellulose product from a cellulose blank 1a, the cellulose blank 1a must be heated to a molding temperature T1 (which may be in the range of 100°C to 200°C). The mold portion 2a may be heated to a desired temperature T2, and the heat may be transferred to the cellulose blank 1a so that the cellulose blank 1a reaches its molding temperature T1. The mold 3 may be preheated to a temperature of, for example, 150°C to 170°C by pumping heated oil into the internal channels 7 of the mold portion 2a. An alternative method for preheating the mold 3 is to use an integrated electrical resistor, not shown. The cellulose blank 1a may also be preheated using infrared light, for example, before being placed in a tool. Heating the pressure medium 5 to a pressure medium temperature T5 may also be a suitable alternative method.

[0071] In Figure 2b, the hydraulic oil 5 is pressurized to at least 1 MPa, and the membrane 4 encloses the heated mold 2a together with the compression material 1b, forming the cellulose product between them. The appropriate pressure P1 for molding the cellulose product may be in the range of 1 to 100 MPa. By applying the appropriate pressure P1, the cellulose fibers are compressed. The applied pressure P1 may be uniform or isotropic in order to uniformly compress the cellulose fibers regardless of their relative position on the mold 2a or the actual local amount of fibers. In alternative embodiments, the pressure may be anisotropic, and different pressure levels may be used in different parts of the mold 3 to mold the cellulose product. This may be used, for example, when different structural properties are desired in different parts of the cellulose product.

[0072] The compression device may include a fluid control device (not shown), which may be an actuator for compressing the fluid 5, or a fluid flow control device capable of controlling the pressurized fluid 5 to enter a pressure chamber, the pressure chamber having a flexible membrane 4 as part of its wall. The device may contain the fluid 5, or the fluid 5 may be air taken in from the ambient atmosphere.

[0073] The inventors have found that when a pressure P1 of 4 MPa (40 bar) is applied at a temperature of 160°C during the molding of a cellulose product, fibril aggregation comparable to that of many thermoplastics occurs in the cellulose fibers after a holding time of 10 seconds.

[0074] To shorten the industrial production cycle time from the compressed material 1b to the cellulose product, the compressed material 1b may be cooled, for example, by injecting cooled oil into an internal channel 7 or pressure chamber located in the mold portion 2a, in which case the temperature T2 of the mold portion 2a and the temperature T5 of the pressure medium 5 can decrease rapidly after fibril aggregation in the cellulose fibers is complete.

[0075] The process and apparatus return to the open state shown in Figure 2a by lowering the pressure medium 5 to atmospheric pressure P0, at which point the membrane 4 returns to a more or less flat initial state, the finished cellulose product is removed, and any unwanted residual compressed or uncompressed cellulose fibers can preferably be cut and removed.

[0076] The final thickness t1 of the cellulose product may vary slightly depending on the actual local amount of cellulose fibers.

[0077] In another embodiment, a rigid mold portion may be used instead of the flexible or pliable membrane 4, which may be suitable when various pressure levels are desired when molding the cellulose product. The use of the flexible membrane 4 results in isotropic compression, which in turn yields a uniform cellulose product with high strength and a short manufacturing cycle time.

[0078] One difference between the compression method and apparatus shown in Figures 2a-2b of the present invention when using isotropic pressure and the prior art method and apparatus shown in Figures 1a-1b is the configuration of using a flexible or pliable membrane 4 instead of a rigid upper mold 102b. The isotropic compression method and apparatus yield homogeneous components with high strength and short manufacturing cycle times.

[0079] In the above, one exemplary embodiment of the isotropic compression method and apparatus was described with reference to Figures 2a and 2b. It should be understood that the molding of three-dimensional objects of all-cellulose composites using the heat compression molding of wood pulp treated with water alone can also be carried out under isotropic pressure by other methods.

[0080] Referring to Figures 3a to 3b, the multi-use film 4 in Figures 2a to 2b is replaced with a single-use film including a thin film barrier 6, in which case the barrier 6 may be applied to the cellulose blank 1a in advance when manufacturing the cellulose blank 1a, or the film barrier 6 may be supplied to a compression device from, for example, a roll (not shown) and applied to the cellulose blank 1a while it is under isotropic pressure.

[0081] The thin film barrier 6 is made of a thermoplastic material such as PET or PLA and may have a thickness in the range of 1 to 700 μm.

[0082] Figure 3a schematically illustrates a method that includes a compression device or mold 3 in its initial open state, using a thin film barrier 6 applied to cellulose fibers 1a, a lower concave mold portion 2b preheated to temperature T2, and a pressure medium or fluid 5, preferably atmospheric gas or air, housed in a pressure chamber (not shown).

[0083] Figure 3b shows the same apparatus and cellulose blank 1a as shown in Figure 3a in a compressed state, wherein the pressure medium 5, preferably a non-contaminating liquid such as compressed air or water, is pressurized to a pressure P1, and a thin film barrier layer 6 isolates and seals the pressure medium from the compressed material 1b of the cellulose blank 1a, and the pressure medium 5 and film 6 apply equal pressure to the cellulose fibers across the entire heated molding surface at the temperature T2 of the mold portion 2b.

[0084] By maintaining a constant pressure P1 at a temperature T1 for a certain period of time X, fibril aggregation occurs in the cellulose fibers, creating a biocomposite component of the compressible material 1b with mechanical properties similar to those of a thermoplastic. For example, if the pressure P1 is 4 MPa (40 bar), the molding temperature T1 is 140°C, the temperature T2 of the mold part 2b is 160°C, and the time X is 10 seconds, a biocomposite component of the compressible material 1b with mechanical properties similar to those of a thermoplastic is obtained.

[0085] By removing the pressure medium 5 and reducing the pressure to atmospheric pressure P0 after time X, the cellulose product formed by the compressed material 1b can be removed and cut into its final shape as needed.

[0086] One advantage of the method discussed in Figures 3a and 3b is that the membrane barrier 6 can also function as a barrier to other media to which the components are exposed during product use. For example, if a cellulose product with membrane barrier 6 is a takeaway salad bowl, it protects the cellulose fibers in the compressed material 1b from contact with vegetables and reduces the hygroscopic properties of the bowl. This method can also be used in the manufacture of bottles or containers for liquid products, and therefore, cellulose products may be suitable for filling various types of liquids or beverages, including carbonated liquids.

[0087] Referring to Figures 4a to 4d, the mold 3 includes at least two openable and closable concave molded surfaces or portions 2a, 2b surrounding a tubular cellulose blank 1a containing a membrane barrier 6, wherein the outer layer is made of uncompressed cellulose 1a fibers, and its additives and inner layer 6 is a single-use membrane containing the thin film barrier 6. The blank is preferably in a flat shape and can be supplied to a compression device from a roll (not shown), where it is formed into a tubular shape (not shown) surrounding a pressure medium nozzle 8.

[0088] In Figure 4a, a mold 3 having molding surfaces or portions 2a, 2b is preheated to mold temperature T2 and is schematically shown in the open initial stage of the molding process method. A tubular cellulose blank 1a having a membrane barrier 6 is supplied from above surrounding a fixed pressure medium nozzle 8, which means that the tubular cellulose blank 1a having a membrane barrier 6 is supplied from above toward the molding surfaces 2a, 2b.

[0089] The preheated mold 3 is closed by force F c The closing force is greater than the opening force generated by the pressure P1 applied to the inside of the mold 3 based on the pressure medium from the pressure medium nozzle 8 shown in Figure 4c. The closed state of the mold 3 with molding surfaces 2a and 2b is schematically shown in Figures 4b and 4c. Closing force F c The configuration of the molding surfaces 2a and 2b adjacent to the top and bottom of the cavity ensures that the internal volume of the cellulose blank 1a is sealed from the external air pressure P0. In another embodiment, the cellulose blank may be cut from the residual material by the mold when the mold 3 is closed.

[0090] Figure 4c shows the fibril aggregated phase and molding of the method of the present invention, where the internal volume of the blank is filled with a pressure medium 9 from a pressure medium nozzle 8 and pressurized to a pressure P1, where the pressure medium 9 and the single-use film 6 apply equal pressure to the cellulose fibers across the heated molding surfaces 2a and 2b of the mold.

[0091] The filling process takes place between the steps shown in Figures 4b and 4c, and it is required that the air channel 10 allows air outside the cellulose blank 1a having a membrane barrier 6 in the cavity of the mold 3 to be released during the blank expansion process.

[0092] Figure 4d shows a three-dimensional cellulose product in the form of a hollow object made from a compressed material 1b and a membrane barrier 6, for example, a beverage bottle molded by the method described in Figures 4a to 4c, filled with the pressure medium 9, wherein the membrane barrier 6 separates the pressure medium 9 from the compressed cellulose fibers 1b.

[0093] According to this disclosure, the pressure medium 9 consists of beverages intended to be filled into cellulose products, such as milk, juice, water, and carbonated beverages.

[0094] The membrane barrier 6 is preferably made of a thin thermoplastic material such as PET or PLA and has a thickness in the range of 1 to 700 μm, where the membrane barrier 6 conventionally applied to paper packaging for beverages also seals the cellulose fibers 1b from contact with the beverage 9 during the storage and use of the cellulose product.

[0095] The cycle time of the process shown in Figure 4c can be shortened if the beverage 9 is cooled to a temperature T9, for example, 1 to 20°C, and filled rapidly, preferably in less than 1 second. If the mold 3 having molding surfaces 2a, 2b is preheated to a molding temperature T2, for example, 200°C, and the blank is preheated to a temperature T1, for example, 140°C, the compressed medium temperature T9 allows the filled bottle to be removed from the mold 3 in a cycle time of a few seconds or less.

[0096] Figures 5a and 5b schematically illustrate another principle of the present disclosure, in which the compression device comprises at least one convex mold portion 2a, at least one concave pressurized portion (mold portion) 2b, and a reusable pre-molded film 4, wherein the mold portions 2a and 2b surrounding the cellulose blank 1a are closed, and the pressure medium 5 is pressurized to a pressure P1.

[0097] Figure 5b shows the final molding stage in which fibril aggregation occurs in the cellulose fibers of the cellulose blank 1a. The enlarged cross-sectional view shown in Figure 5b illustrates how the pressure medium 5 penetrates into the mold 3 between the upper concave pressurized portion 2b and the membrane 4, where the cellulose blank 1b is uniformly compressed toward the molding surface of the preheated lower convex mold 2a by the pressure P1. The penetration of the pressure medium 5 can be facilitated by small indentations (not shown) on the surface of the upper concave pressurized portion 2b, which act as microchannels for the pressure medium 5.

[0098] If a shorter cycle time is preferred, the compression apparatus embodiments shown in Figures 5a to 5b may be more advantageous than the method shown in Figures 2a to 2b. In the embodiments shown in Figures 5a to 5b, it is not necessary to deform the membrane 4 to the same extent.

[0099] The above example of compression method, with reference to Figures 2-5, includes a flexible membrane 4 that can be used to apply isotropic pressure. It should be understood that the molding of three-dimensional objects of all-cellulose composites using heat compression molding of wood pulp treated with water alone can still be performed using conventional tools while achieving isotropic pressure.

[0100] Referring to FIGS. 6a to 6c, an upper preheated concave non-flexible pressure type portion 2b and a lower preheated convex non-flexible mold portion 2a surround a cellulose blank 1a, where the cavity thickness t(P) between the lower preheated convex non-flexible mold portion 2a and the upper preheated concave non-flexible pressure type portion 2b deviates from the nominal uniform thickness, and the deviation has been theoretically and / or practically proven. When the mold portions 2a and 2b are compressed together by a force F, an isotropic pressure P1 is applied to all parts of the cellulose blank 1a towards the mold portions.

[0101] FIG. 6a schematically shows an initial open state embodiment having a flat cellulose blank of a continuous web 1a supplied to the mold portion. FIG. 6c schematically shows a closed state embodiment having a compressed non-flat cellulose blank 1a. FIG. 6b schematically shows an intermediate embodiment in an uncompressed non-flat state, between the open state and the closed state.

[0102] FIGS. 6a to 6c show an example of a compression device for a hollow bowl, where the convex mold portion 2a has a nominal preferred shape and the concave pressure type portion 2b has a shape adjusted to obtain an equal pressure P1.

[0103] As shown in FIG. 6b, the blank is deformed by the two mold parts 2a, 2b, and the thickness t of the cellulose blank 1a changes due to friction and the strain remaining in the cellulose blank 1a. In this schematic example, which can be changed in many ways, the cellulose blank 1a has the thinnest thickness t min near the cavity inlet of the pressure type portion 2b and the thickest thickness t max at the upper part of the mold 2a.

[0104] Therefore, by pressing the cellulose blank 1a against the convex mold 2a with a substantially equal forming pressure P1 acting on the cellulose blank 1a over the entire forming surface using the concave pressure type portion 2b, the narrowest cavity thickness s minThis is the thinnest t of the cellulose blank. min Located in the vicinity of and with the widest cavity thickness s max The thickest part of the uncompressed cellulose blank 1a is t max Because it is located in the vicinity of the two molded parts 2a and 2b, the thickness s of the cavity between them is compensated for or adjusted.

[0105] Furthermore, the relationship between the thickness t of the cellulose blank, the thickness s of the cavity, and the final cavity shape also affects the generation of geometric pressure in the cavity. The force F determines the pressure P1 at the top of the convex mold portion 2a, and the narrowest cavity thickness s min The convexity, thickness, and angle of the nearby cavity determine the final pressure P1.

[0106] The inventors have found that in order to obtain a substantially isotropic pressure P1, the final shape of the cavity is determined by a complex algorithm t(P), and in this process, both mathematical analysis, preferably the finite element method (FEM), and empirical testing, preferably trial and error, are necessary to obtain equal pressure throughout the component.

[0107] According to another embodiment of the present disclosure that does not use a flexible membrane, the geometrically pressure-controlled cavity shown in Figures 6a-6c can be replaced by thickness compensation (adjustment) of the cellulose blank.

[0108] Figures 7a and 7b schematically show a conventional pressure-unadjusted concave mold portion 2b and an unadjusted convex mold portion 2a, which preferably result in equal nominal cavity thickness t, where the blank is established in the same theory and in the same manner as described in the embodiments discussed with respect to Figures 6a and 6c. min -t max It has a pressure-adjusted thickness between them.

[0109] The selection of methods for generating isotropy without using flexible membranes, as shown in Figures 6a-6c and 7a-7b, is associated with reduced cycle time and cost for the compressor. However, methods using rigid molds may incur higher development costs.

[0110] The advantage of using the methods described in Figures 7a-7b over those described in Figures 6a-6c is that a final cellulose product with a uniform thickness t1 can be obtained. However, manufacturing the blanks using the methods described in Figures 7a-7b may be more costly.

[0111] Alternatively, the mold 3 may be formed from a membrane configured as a large, thick, flexible membrane structure. Figures 8a to 8c schematically show another mold 3 having a concave mold portion 2b and a convex mold portion 2a. The convex mold portion 2a applies a molding pressure F to a large, thick, flexible membrane 4 that applies isotropic pressure to the cellulose blank 1a when molding the cellulose product. A large flexible membrane refers to a flexible structure that has the ability to apply isotropic pressure to the cellulose blank 1a, similar to the membrane structure described in the above embodiment, but has a larger elastic deformation region compared to a thinner membrane structure. The large flexible membrane 4 may be composed of a thick film structure, or it may be made of a solid mass of homogeneous flexible material. The flexible material may have properties that cause the material to float between the mold portions when pressure is applied to the mass. In the embodiments shown in Figures 8a to 8c, the large flexible membrane 4 is composed of a solid mass of homogeneous flexible material.

[0112] In another embodiment, the large flexible membrane 4 may have varying thicknesses, in which case the large flexible membrane may be molded or cast into structures of varying thicknesses, for example. The thin and thick regions of the large flexible membrane having varying thicknesses can compensate for areas of the mold where small or large deformations of the membrane are required to equalize or keep the pressure applied to the cellulose blank 1a uniform. By using a large flexible membrane structure, the mold can be manufactured at a lower cost and with a simpler structure.

[0113] The large flexible membrane 4 is configured to deform and apply isotropic pressure when pressure F is applied from the mold portion. The large flexible membrane 4 may be made of a suitable elastomer material such as rubber, silicone, polyurethane or other elastomers. Due to the flexibility of the large flexible membrane 4, it applies isotropic pressure to the cellulose blank 1a.

[0114] In Figure 8a, the cellulose blank 1a is positioned between the concave mold portion 2b and the large flexible membrane 4. As shown in Figures 8a and 8b, when the molding pressure F is applied to the mold portion, the convex mold portion 2a presses the large flexible membrane 4 and the cellulose blank 1a into the concave mold portion 2b. When molding the cellulose product, the concave mold portion 2b is heated to the mold portion temperature T2, and during the molding process, the cellulose blank 1a is heated to the molding temperature T1 (see Figures 8a and 8c).

[0115] Figures 9a to 9c schematically show another alternative mold 3 having a concave mold portion 2b and a convex mold portion 2a. The concave mold portion 2b applies a molding pressure F to a large flexible membrane 4 when molding a cellulose product, which applies isotropic pressure to the cellulose blank 1a. The large flexible membrane 4 is configured to deform and apply isotropic pressure when pressure F is applied from the mold portion. The large flexible membrane 4 may have the same structure as described above in relation to the embodiments shown in Figures 8a to 8c. In the embodiments shown in Figures 9a to 9c, the large flexible membrane 4 has a thickness that varies to match the shape of the convex mold 2a. Due to the flexibility of the large flexible membrane 4, it applies isotropic pressure to the cellulose blank 1a.

[0116] In Figure 9a, the cellulose blank 1a is positioned between the convex mold portion 2a and the large flexible membrane 4. As shown in Figures 9a to 9b, when the molding pressure F is applied to the mold portion, the convex mold portion 2a pushes the cellulose blank 1a into the concave mold portion 2b toward the large flexible membrane 4. When molding the cellulose product, the convex mold portion 2a is heated to the mold portion temperature T2, and during the molding process, the cellulose blank 1a is heated to the molding temperature T1 (see Figures 9a to 9c).

[0117] In the claims, the term “comprising” does not exclude other elements or processes, and the indefinite article “a” or “an” does not exclude plurals. The mere fact that certain measurements are described in different dependent claims does not imply that a combination of these measurements cannot be used to one's advantage.

[0118] It will be understood that the above description is essentially illustrative and does not limit the Disclosure, its uses, or applications. While specific examples are described in the specification and shown in the drawings, those skilled in the art will understand that various modifications may be made and equivalents may be used in place of those elements without departing from the scope of the Disclosure as defined in the claims. Furthermore, modifications may be made to adapt specific situations or materials to the teachings of the Disclosure without departing from its essential scope.

[0119] Therefore, this disclosure is not limited to the specific examples shown in the drawings and described in the specification as the best possible mode for carrying out the teachings of this disclosure, and the scope of this disclosure includes all embodiments that fall within the scope of the foregoing description and the appended claims.

[0120] Reference numerals in the claims should not be considered to limit the scope of the matters protected by the claims; their sole function is to make the claims easier to understand.

Claims

1. A method for producing a cellulose product having a non-flat shape using a pressure molding apparatus having a mold (3), the mold (3) having a molding surface that defines the shape of the product, the method comprising the following steps: A step of placing a cellulose blank (1a) containing loosened and separated cellulose fibers containing less than 45 mass percent of water in a position for molding within the mold (3) in its initial open state; A step of heating the cellulose blank (1a) to a molding temperature in the range of 100°C to 200°C; and The process involves pressing the cellulose blank (1a) using the mold (3) with a molding pressure in the range of 1 MPa to 100 MPa that acts on the entire molding surface of the cellulose blank (1a). Includes, The mold (3) has a large flexible film (4) that applies an isotropic molding pressure to the cellulose blank (1a) when forming the cellulose product, and the large flexible film (4) is composed of a thick film structure or is made of a homogeneous mass of flexible material. method.

2. The method includes the step of placing the cellulose blank (1a) containing less than 45 mass percent of water and containing loosened and separated cellulose fibers in a position for molding within the mold (3) in an initially open state, The method according to claim 1, wherein the cellulose blank (1a) is a sheet material or a blank having a two-dimensional shape, or the cellulose blank (1a) is formed from a two-dimensional sheet material into a three-dimensional shape.

3. The method according to claim 1 or 2, wherein the loosened and separated cellulose fibers contain less than 25 percent by mass of water.

4. The method according to any one of claims 1 to 3, wherein the loosened and separated cellulose fibers contain less than 15 percent by mass of water.

5. The method according to any one of claims 1 to 4, wherein the loosened and separated cellulose fibers include wood pulp.

6. The method according to any one of claims 1 to 5, wherein the loosened and separated cellulose fibers comprise at least 90 mass percent of wood pulp.

7. The method according to any one of claims 1 to 6, wherein the heating step is performed at least partially before the pressing step.

8. The method according to any one of claims 1 to 7, wherein the mold (3) includes a mold portion (2a) and a press portion (2b), and at least one of the mold portion and the press portion is heated before the pressing step.

9. The method according to any one of claims 1 to 8, wherein the cellulose blank (1a) is cut from the residual material by the mold (3) when the mold (3) is closed.

10. The method according to any one of claims 1 to 9, wherein fibril aggregation occurs in the cellulose fibers by heating and pressing the cellulose blank (1a).

11. A pressure molding apparatus for producing a cellulose product having a non-flat product shape, starting from a cellulose blank (1a) containing loosened and separated cellulose fibers, The aforementioned pressure molding apparatus, A mold (3) having a molding surface that defines the shape of the product, A heating device is provided to heat the cellulose blank (1a) to a molding temperature in the range of 100°C to 200°C. Includes, The mold (3) has a convex mold portion (2a) and a concave mold portion (2b) arranged across the entire molding surface to provide the cellulose blank (1a) with a molding pressure in the range of 1 MPa to 100 MPa, The mold (3) has a large flexible film (4) that applies an isotropic molding pressure to the cellulose blank (1a) when forming the cellulose product, and the large flexible film (4) is composed of a thick film structure or is made of a homogeneous mass of flexible material. Device.

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