Method and apparatus for dry production of rigid cellulose products

The multi-stage cellulose blank forming unit with controlled airflow and differential perforation densities addresses issues of water consumption, fragility, and cracking in cellulose product manufacturing, ensuring efficient production of non-flat cellulose products with uniform properties.

JP7835865B2Active Publication Date: 2026-03-25ヤンギ·アクチボラグ
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-28
Publication Date
2026-03-25

AI Technical Summary

Technical Problem

Existing dry forming methods for cellulose products with non-flat shapes face challenges such as high water consumption, energy inefficiency, fragility, non-uniform basis weight, and cracking during pressing, making them unsuitable for large-scale production and complex manufacturing processes.

Method used

A multi-stage cellulose blank forming unit with two cooperating forming drums and controlled airflow to create cellulose blanks with variable basis weights, preventing cracking and ensuring uniformity and rigidity through differential perforation densities and chemical treatments.

Benefits of technology

The method and apparatus produce cellulose products with consistent properties and reduced cracking, enabling efficient, flexible, and cost-effective manufacturing of non-flat cellulose products with adjustable rigidity and thickness.

✦ Generated by Eureka AI based on patent content.

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Abstract

An apparatus (100) and method for dry manufacturing of an essentially shaped rigid cellulosic product, the apparatus (100) comprising a disintegrating unit (3), a multi-stage cellulosic blank forming unit (30) and a product forming unit (40) for making a rigid cellulosic product (14). The blank forming unit (30) comprises a dispenser for directing a cellulosic fiber carrying air stream from the disintegrating unit (3), a first forming drum (15) having an outer surface configured to receive the cellulosic fibers and form a part of a cellulosic blank (13) by a first air removal device (54) arranged in the first forming drum (15), a second forming drum (15') for forming a continuous or discontinuous cellulosic blank (13) by a second air removal device (54') arranged in the second forming drum (15), and a support structure (8) for receiving the cellulosic blank (13) formed on said second drum (15').
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Description

Technical Field

[0001] The present invention generally relates to methods and apparatuses for the dry manufacture of rigid cellulose products having an essentially non-flat general shape. The cellulose products can be used for the packaging, storage, transportation, and / or display of other products such as electronic devices, tools, jewelry, food, dairy products, cosmetics, etc., and / or can be used as disposable articles that can be used once / multiple times. The present invention also relates to rigid cellulose products and continuous or discontinuous cellulose blanks.

Background Art

[0002] In many situations, it is desirable to provide objects in two-dimensional (2D) or three-dimensional (3D) shapes made from sustainable materials. The material commonly used for packaging inserts is wet-formed pulp. Wet-formed pulp has the advantage of being considered a sustainable packaging material because it is made from biological materials and can be recycled after use. As a result, formed pulp is rapidly gaining popularity for both primary and secondary packaging applications (subsequent packaging of articles and assembly of such packaging).

[0003] A drawback common to all wet-forming techniques is that they require large amounts of water during manufacturing and drying of the formed products, which is a time-consuming and energy-consuming process, thereby reducing the production speed and substantially increasing the investment costs for machinery and tools. This means that it is not feasible for this technology to replace fossil-based alternatives on a large scale.

[0004] Furthermore, many modern lean production lines require the manufacture of packaging or components based on in-line demand, where wet forming processes are undesirable or impractical. Recently, new fiber-based materials have been developed with the aim of enabling the dry forming of three-dimensional objects / products. One method is disclosed by WO2014 / 142714. WO2014 / 142714 discloses a dry-assembled composite web, an intermediate product for thermoforming objects of three-dimensional shape, comprising 40-95 wt% CTMP fibers, 5-50 wt% thermoplastic material, and 0-10 wt% additives, wherein the dry-assembled composite web is impregnated in a dispersion, emulsion, or solution containing the thermoplastic material and polymer, dried, and obtains a density of 50-250 kg / m3, or 400-1000 kg / m3 if compressed by calendering. According to WO2014 / 142714, polymer bonding is activated by the higher temperatures applied during the thermoforming process, contributing to the final strength of the thermoformed object.

[0005] When cellulose fiber sheets are formed using an air / dry agglomeration process, the network strength of the cellulose fibers is generally weakened, i.e., the self-supporting properties are reduced. The air-agglomerated sheets / blanks can become intermediate products in the dry cellulose formation / manufacturing process for products that are inherently non-flat. Due to the fragility of these intermediate products, it may be necessary to improve the self-supporting properties of the sheets to improve the efficiency and flexibility of the manufacturing process for the rigid cellulose products that have an inherently non-flat overall shape.

[0006] Cellulose fibers are highly hygroscopic, and air / dry agglomeration processes have been identified as being susceptible to process conditions such as electrostatic charge, airflow, and humidity. Because cellulose fibers tend to clump together, resulting in non-uniform / unpredictable basis weight / thickness of the blank, this behavior of cellulose fibers makes it difficult to provide a uniform blank / sheet of cellulose fibers on the forming structure / web. In the art, attempts have been made to provide solutions to control the properties / basis weight of cellulose blanks, namely using the tower forming unit described in SE1750313, with fiber separation brushes and a first compression roller to obtain a uniform cellulose blank in both axial and transverse directions. The non-uniform basis weight of the cellulose blank can be compensated to some extent by the hydrostatic pressing treatment described in EP3429928. However, this is a more complex process in terms of tools, requires longer process times, and is more complicated overall. The problem with this forming tower and hydrostatic pressing process is that it is rather complex, with all its mechanical components provided to distribute the cellulose fibers as uniformly as possible on the forming web. A common problem in pressing processes for forming 3D-shaped components / products is that the complex structure / design of the components and / or the depth of the product can cause cracks in the cellulose fiber sheet / blank.

[0007] A more reliable dry cellulose formation / manufacturing process for inherently non-flat rigid cellulose products is needed in this field, which reduces or eliminates the risk of cracking during the pressing process. [Overview of the project] [Problems that the invention aims to solve]

[0008] The present invention aims to prevent the aforementioned and other drawbacks and weaknesses of previously known methods and apparatus for the dry production of rigid cellulose products, and to provide an improved method and apparatus for the dry production of rigid cellulose products having an essentially non-flat overall shape.

[0009] The primary object of the present invention is to provide an improved method and apparatus for dry forming / manufacturing rigid cellulose products having an essentially non-flat overall shape from cellulose fibers. Another object of the present invention is to provide a method and apparatus for manufacturing rigid cellulose products, which inevitably results in the absence of cracks that would normally occur due to the pressing of the cellulose product. Another object of the present invention is to provide a method and apparatus for manufacturing rigid cellulose products, in which the basis weight of the cellulose blank may be adjusted to obtain a final cellulose product having the required characteristics / properties such as rigidity, thickness, and basis weight. Another object of the present invention is to provide a method and apparatus for manufacturing rigid cellulose products, which can produce continuous or discontinuous cellulose blanks. Another object of the present invention is to provide a method and apparatus for manufacturing rigid cellulose products that generate less fragmentation / waste. Another object of the present invention is to provide a method and apparatus for manufacturing rigid cellulose products, in which the blank forming unit is not very complex. [Means for solving the problem]

[0010] According to the present invention, at least the primary object is achieved by the initially defined method and apparatus having the features defined in the independent claim. Preferred embodiments of the present invention are further defined in the dependent claims.

[0011] According to a first aspect of the present invention, - A decomposition unit for providing a certain amount of separated cellulose fibers from a cellulose raw material, - A multi-stage cellulose blank forming unit comprising a dispenser for guiding a cellulose fiber transport airflow from a decomposition unit, configured to form continuous or discontinuous cellulose blanks having different basis weights at different locations from a certain quantity of separated cellulose fibers transported by the airflow via the dispenser, - A product forming unit for producing rigid cellulose products having an essentially non-flat overall shape from a cellulose blank by pressing. A device equipped with, A multi-stage cellulose blank forming unit, - A first forming drum having an outer surface configured to receive cellulose fibers from a dispenser by a first air removal device located inside the first forming drum and to form a portion of a cellulose blank, - A second forming drum having an outer surface configured to receive cellulose fibers originating from the dispenser and the outer surface of the first forming drum by a second air removal device located inside the second forming drum, and to form a continuous or discontinuous cellulose blank, - A support structure for receiving a continuous or discontinuous cellulose blank formed on the second forming drum. An apparatus is provided that is characterized by comprising the following.

[0012] According to a second aspect of the present invention, - A step of providing a certain amount of separated cellulose fibers by breaking down a cellulose raw material, - A step of transporting the separated cellulose fibers by airflow to a multi-stage cellulose blank forming unit having a first forming drum and a second forming drum, - A step of transferring cellulose fibers from a first forming drum to a second forming drum, - A step of forming a continuous or discontinuous cellulose blank having different basis weights at different positions on the outer surface of a second forming drum, - A step of transferring a continuous or discontinuous cellulose blank from a second forming drum to a support structure, - A step of producing a rigid cellulose product having an essentially non-flat overall shape by pressing continuous or discontinuous cellulose blanks having different basis weights at different positions within a product forming unit. A method including this is provided.

[0013] Accordingly, the present invention is based on the insight that a multi-stage cellulose blank forming unit has two cooperating forming drums to provide continuous or discontinuous cellulose blanks, both forming drums containing separated cellulose fibers, and that before the rigid cellulose product is made / pressed, the cellulose fibers collected on the first forming drum are transferred to and connected to the cellulose fibers collected on the second forming drum. This enhances the ability to adjust the basis weight at different positions of the continuous or discontinuous cellulose blank that reaches the product forming unit compared to a cellulose blank forming unit having only one forming drum. The present invention involves the possibility that the continuous or discontinuous cellulose blank, transferred to the support structure, may have different / variable basis weights or surface weights in the axial and / or radial directions.

[0014] The advantage of the present invention is that this method and apparatus provides the cellulose blank with appropriate strength and rigidity and prevents cracking in the cellulose blank when producing / pressing the rigid cellulose product which has an essentially non-flat overall shape.

[0015] Another advantage of the present invention is that the basis weight of the cellulose blank can be easily adjusted to obtain the required properties of the essentially non-flat rigid cellulose product to be produced. According to various exemplary embodiments of the present invention, the cellulose blank is discontinuous in the axial and / or transverse directions, i.e., perpendicular and / or parallel to the direction of motion of the support structure / web. An advantage of these embodiments is that individual strips and / or tiles of the cellulose blank having sufficient basis weight in the axial and transverse directions may be formed for subsequent use in a press tool for producing essentially non-flat rigid cellulose products.

[0016] According to various embodiments of the present invention, the outer surface of a first forming drum includes a first area having a first perforation density and a second area having a second perforation density less than the first perforation density, for forming a sheetlet of cellulose blank to be transferred to the outer surface of a second forming drum.

[0017] The non-uniform perforation density on the outer surface of the first forming drum provides that different amounts of cellulose fibers adhere to / collect from different parts of the rotating first forming drum, thereby allowing the final continuous or discontinuous cellulose blank, when the cellulose fibers are transferred from the first forming drum to the second forming drum, to efficiently have different / variable basis weight or surface weight in the axial and / or radial directions.

[0018] According to various embodiments of the present invention, the decomposition unit comprises a first decomposition unit configured to supply cellulose fibers to a first forming drum, and a second decomposition unit configured to supply cellulose fibers to a second forming drum. Thereafter, the cellulose fibers supplied to the first and second forming drums via the dispenser may be of different types, i.e., different raw materials, different fiber sizes, different additives, etc. The advantage of these embodiments is that the mechanical properties of the final cellulose product may be adjusted to meet specific requirements.

[0019] According to various embodiments of the present invention, the multi-stage cellulose blank forming unit comprises a compression roll for compressing continuous or discontinuous cellulose blanks downstream of the second forming drum. The compressed continuous or discontinuous cellulose blanks are easier to handle in the remainder of the process, i.e., prior to the final pressing, the individual cellulose fibers are locked / tangled more efficiently with each other.

[0020] Further advantages and features of the present invention will become apparent from the following detailed description of the preferred embodiments. A more complete understanding of the above and other features and advantages of the present invention will become apparent from the following detailed description of the preferred embodiments in conjunction with the accompanying drawings.

Brief Description of the Drawings

[0021] [Figure 1] It is a schematic view of one exemplary embodiment of a continuous cellulose blank having a variable basis weight in the axial and transverse directions. [Figure 2] They are respectively cross-sectional and top surface schematic views of one exemplary embodiment of a discontinuous cellulose blank in the axial and transverse directions. [Figure 3] It is a schematic view of the outer surface of a forming drum having a recess in the main envelope surface. [Figure 4] It is a schematic view of one exemplary embodiment of an apparatus for dry manufacturing a rigid cellulose product having an essentially non-flat overall shape from a cellulose raw material, wherein the cellulose blank is produced by two forming drums. [Figure 5] It is a schematic view of one exemplary embodiment of an apparatus for dry manufacturing a rigid cellulose product having an essentially non-flat overall shape from a cellulose raw material, wherein different cellulose raw materials are provided to two separate forming drums. [Figure 6] It is a schematic view of one exemplary embodiment of an apparatus for dry manufacturing a rigid cellulose product having an essentially non-flat overall shape from a cellulose raw material, wherein the product forming unit is continuous. [Modes for carrying out the invention]

[0022] In this specification, the term “air / dry forming or air / dry stacking” means a well-known method by which separated cellulose fibers are formed into a cellulose blank / sheet.

[0023] In air agglomeration, small fibers having an average length in the range of 1 to 50 mm are separated and captured by an airflow and then agglomerated onto the forming mesh / forming surface, usually using vacuum / low pressure on the other side of the mesh / surface. The terms "air agglomeration" and "air forming" are used without distinction herein. The cellulose fiber transport airflow may be generated by suitable devices located upstream and / or downstream of the forming mesh / forming surface.

[0024] Figures 4, 5, and 6 disclose various exemplary embodiments of an apparatus for dry manufacturing rigid cellulose products to produce a cellulose product 14 having an essentially non-flat overall shape from cellulose fibers, the entire apparatus referred to as 100. Different illustrated embodiments may be combined.

[0025] The entire apparatus 100 of the present invention is described with reference to Figure 4, and the apparatus 100 comprises a separation / decomposition unit 3, a cellulose blank / sheet forming unit 30, and a final product forming unit 40. Cellulose raw material 1 is supplied to the decomposition unit 3. Cellulose raw material 1 may be in the form of wound pulp or paper 1a, bale 1b of cellulose pulp, paper, etc., and / or sheet 1c of paper, cellulose pulp, etc. If the cellulose raw material 1 is in the form of sheet 1c and / or wound pulp or paper 1a, it may be supplied directly into the separation unit 3. However, if the cellulose raw material 1 is in the form of a compressed stack of bale 1b or sheet 1c, etc., it may be necessary to use one or more shredders 18 and / or one or more additional separation / decomposition units 3 to separate and inject the cellulose raw material from the bale 1b or sheet 1c in smaller quantities. The shredder 18 prepares the cellulose raw material 1 for acceptance by the separation unit 3. The separation / decomposition unit 3 decomposes the cellulose raw material 1 into separated cellulose fibers. The one or more shredders 18 are located upstream of the one or more separation units 3, and the output of one of the shredders 18 is connected to the input of one of the separation units 3. The shredders 18 may be arranged parallel to each other or perpendicular to each other, and the decomposition units 3 may be arranged parallel to each other or perpendicular to each other. The shredders 18 and the decomposition units 3 together constitute a cellulose fiber separation unit located upstream of the cellulose blank forming unit 30.

[0026] The cellulose fibers may be unused cellulose fibers and / or recycled cellulose fibers, and may be derived from wood pulp such as kraft pulp, sulfite pulp, mechanical pulp, thermomechanical pulp (TMP), chemically treated mechanical pulp, chemothermetic pulp (CTMP), and / or non-wood pulp such as bagasse, bamboo, Manila hemp, hemp, flax, and cotton.

[0027] According to various embodiments, the separation unit 3 may be composed of a hammer mill. In the separation unit 3, the cellulose raw material is separated into fibers having an average length in the range of 1 to 50 mm. The length of the fibers may be customized by adjusting the internal properties of the separation unit 3 and / or by selecting different separation units 3 and / or by selecting different cellulose raw materials. According to various embodiments, the fiber length of wood pulp is in the range of 0.5 to 4 mm, preferably in the range of 1.7 to 3.6 mm. According to various embodiments, the fiber length of non-wood pulp is in the range of 0.5 to 70 mm.

[0028] Generally, in air / dry forming / air aeration methods, wood pulp fibers are individualized / separated using, for example, a hammer mill, and transported by airflow through a dispenser, which distributes the fibers substantially uniformly in the transverse direction of the fabrication apparatus. The fibers are accreted onto a moving perforation surface using an airflow generated beneath its surface by a vacuum / low-pressure chamber. As described above, the cellulose fiber transport airflow may be generated by suitable devices located upstream and / or downstream of the perforation surface.

[0029] Referring specifically to Figures 4 to 6, Figures 4 to 6 schematically disclose exemplary embodiments having a multi-stage cellulose blank forming unit 30. It will be noted that the upstream and downstream portions of the apparatus 100 described herein can be combined with the multi-stage cellulose blank forming unit 30 shown in Figures 4 to 6.

[0030] The multi-step cellulose blank forming unit 30 includes two substeps, namely two forming arrangements that together produce / provide continuous or discontinuous cellulose blanks 13.

[0031] In Figure 4, individualized / separated cellulose fibers are supplied to a multi-stage cellulose blank / sheet forming unit 30. In the schematic embodiment shown in Figure 4, the cellulose blank forming unit 30 comprises a first fan 4, a first forming drum / cylinder 15, and a support structure / web 8. The first fan 4 is positioned between the separation unit 3 and the first forming drum / cylinder 15, and the disintegration unit 3 is connected to the first fan 4. The first fan 4 generates a cellulose fiber transport airflow, blowing the cellulose fibers from the separation unit 3 onto the outer surface of the first forming cylinder 15 via a dispenser extending between the disintegration unit 3 and the first forming cylinder 15. According to various exemplary embodiments, the application of the fibers onto the first forming cylinder 15 is performed at an angle to the outer surface of the first forming cylinder 15. According to various exemplary embodiments, the angle is 90°, i.e., the fibers are applied perpendicular to the outer surface of the first forming cylinder 15. According to various exemplary embodiments, the angle is less than or greater than 90°, i.e., the cellulose fibers are applied without being perpendicular to the outer surface of the first forming drum / cylinder 15. A predetermined angular gap 5 of the first forming cylinder 15 is under vacuum / low pressure conditions. The first forming drum 15 rotates continuously at a predetermined speed, and the angular gap 5 is stationary. Thus, the outer surface of the first forming drum 15 passes through the angular gap 5.

[0032] The separated cellulose fibers may flow at a fiber / air concentration of approximately 500g of cellulose fibers per cubic meter of air, and the moisture content of the air is 5-20g of water / kg of air in the separation unit 3 and / or the cellulose blank forming unit 30.

[0033] The outer surface of the first forming cylinder 15 is perforated. To impart the cellulose fibers containing air onto the outer surface of the first forming drum / cylinder 15, air inside the first forming drum 15 is removed at angular intervals 5, and the cellulose fibers remain attached to the perforated outer surface, i.e., the cellulose fibers are attracted to the outer surface of the first forming drum 15. The air is removed by a first air removal device 54 located inside the first forming drum 15, i.e., at least a portion of the first air removal device 54 is located inside the first forming drum 15. The first air removal device 54 is configured to remove at least the same amount of air introduced by the first fan 4 generating a cellulose fiber transport airflow. Thereafter, the separated cellulose fibers adhere to / accumulate on the outer surface of the first forming drum 15 at the locations with perforations. As the cellulose fibers accumulate on the outer surface of the first forming drum 15, the cellulose blank 13 begins to form. The amount of cellulose fibers in the airflow from the first fan 4, the velocity of the airflow from the first fan 4, the velocity of the outer surface of the first forming drum 15, and the perforation density of the outer surface all determine the basis weight of the cellulose blank 13 to be formed. Alternatively, the first air removal device 54 may also perform the tasks of the first fan 4, thereby becoming a single device that generates the cellulose fiber transport airflow to the first forming drum 15.

[0034] Furthermore, the multi-stage cellulose blank forming unit 30 includes a second forming drum 15', the second forming drum 15' being configured in a straight line with the first forming drum 15 in all essential respects.

[0035] Therefore, the second forming drum 15' has an outer surface including perforations, and the outer surface is configured to receive cellulose fibers and form a cellulose blank 13 from a certain amount of separated cellulose fibers transported by an airflow through a dispenser extending from the outer surface of the first forming drum 15 between the decomposition unit 3 and the second forming cylinder 15'. Furthermore, a second air removal device 54' is located inside the second forming drum 15', i.e., at least a portion of the second air removal device 54' is located inside the second forming drum 15'.

[0036] According to various embodiments, a second fan 4' for generating a cellulose fiber transport airflow is attached to the second forming drum 15'. A decomposition unit 3 is connected to the second fan 4', and a separate or identical decomposition unit acts on the first forming drum 15. Thus, the outer surface of the second forming drum 15' is configured to receive cellulose fibers from the amount of separated cellulose fibers transported by the airflow generated by the second fan 4' and to form a cellulose blank. Alternatively, one identical fan may be attached to both the first forming drum 15 and the second forming drum 15'. Or, a second air removal device 54' also performs the task of the second fan 4', thereby becoming a single device that generates the cellulose fiber transport airflow attached to the second forming drum 15'.

[0037] In the example shown in Figure 4, the first forming drum 15 is located upstream of the second forming drum 15', and the angular spacing 5' of the second forming drum 15' extends from the position where cellulose fibers are added from the second fan 4' to the position where the cellulose blank 13 is received by the support structure 8. The second forming drum 15' can produce a continuous cellulose blank on its outer surface, and the continuous cellulose blank on the second forming drum 15' may be uniform. A sheetlet of cellulose blank is then added from the first forming drum 15 to the second forming drum 15', after which the cellulose blank 13 having a uniform or variable basis weight is received by the support structure 8. The first forming drum 15 rotates clockwise, and the second forming drum 15' rotates counterclockwise, and these forming drums are positioned adjacent to each other such that the cellulose fibers of the two drums contact at one point / interface.

[0038] According to Figure 4, the first forming drum 15 forms a discontinuous sheetlet of cellulose blank, i.e., several parts of the cellulose blank, and the second forming drum 15' similarly forms a discontinuous sheetlet of cellulose blank. The angular spacing 5 of the first forming drum 15 ends at the position / boundary where the cellulose fibers of the two drums come into contact, and the angular spacing 5' of the second forming drum 15' becomes active at the said position / boundary. Thereafter, the cellulose fibers on the outer surface of the first forming drum 15 are transferred to the outer surface of the second forming drum 15', and the combined discontinuous cellulose blank 13 is subsequently received by the support structure 8. Figure 4 discloses the use of a compression roll 10 located downstream of the two drums and upstream of the product forming unit 40. Below the support structure / web 8 is a means 54” for removing air so that the cellulose blank 13 produced by the forming drums is fixed to the moving support structure 8. Thereafter, the orientation / position of the sheetlet of cellulose blank 13 is ensured. This also applies to embodiments of other figures disclosing the apparatus 100.

[0039] The cellulose blank 13 is removed from the second forming drum / cylinder 15' and applied to or received by the support structure / web 8. For this reason, only a predetermined angular interval 5' of the second forming cylinder 15' has the vacuum / low-pressure condition. The angular interval 5' overlaps with the airflow from the second fan 4. The vacuum condition is released / terminated in front of the outer surface of the forming cylinder 15 or at the position of the outer surface of the second forming cylinder 15 closest to the support structure 8, thereby allowing the cellulose blank / sheet 13 to be released from the second forming cylinder 15 and applied to the support structure 8. The support structure 8 may be a continuous web or a continuous belt, as shown in Figure 1. The rotation / surface speed of the second forming cylinder 15 is synchronized with the speed of the support structure 8. A fan 54 may be provided to create pressurization within the forming cylinder 15 at the angular interval 5.

[0040] The support structure 8 may also be a discontinuous web. The discontinuous web may be movable back and forth to capture the cellulose blank / sheet and deliver the cellulose blank / sheet to further process steps. The cellulose blank may be discontinuous, i.e., a stack of multiple sheetlets of cellulose blank, or continuous, i.e., a folded cellulose blank.

[0041] The cellulose blank 13 is then supplied into the product forming unit 40 from the same production line as the multi-stage cellulose blank forming unit 30, or from intermediate storage between the cellulose blank forming unit 30 and the product forming unit 40. According to various embodiments, the product forming unit 40 comprises a press unit 12 having a molding tool 11. The molding tool 11 has a male portion and a corresponding female portion and includes the design / construction of the final rigid cellulose product having an essentially non-flat overall shape. In Figure 1, an optional preheating unit 16 is located upstream of the press unit 12. According to various exemplary embodiments, the cellulose blank 13 may be heated to a high temperature before being supplied into the press unit 12 of the product forming unit 40. In such embodiments where the cellulose blank 13 is preheated before being supplied into the press unit 12 of the product forming unit 40, the molding tool 11 may or may not include heating. According to various exemplary embodiments, the molding tool 11 in the press unit 12 may be a heat molding tool 11 for forming the final cellulose product 14 while heating the cellulose blank 13. In the case of the heat molding tool 11, preheating of the cellulose blank 13 by the preheating unit 16 is optional. According to various exemplary embodiments, preheating of the cellulose blank 13 in the preheating unit 16 is combined with the heat molding tool 11. In such a case, the cellulose blank 13 may be heated to a first temperature by the preheating unit 16, and the molding tool 11 heats the cellulose blank 13 to a second temperature while pressing / forming the final cellulose product 14. The first and second temperatures may be different or equal. According to various exemplary embodiments, preheating may be performed to reach an intermediate temperature, which is then increased to a final temperature by the molding tool 11. The intermediate temperature may be between the final temperature and room temperature. According to various exemplary embodiments, the intermediate temperature may be close to the final temperature. By combining the preheating unit 16 with the heat molding tool 11, the manufacturing process in the press unit 12 is accelerated.The preheating unit 16 may heat the cellulose blank 13 from one side, i.e., the top or bottom, or from both sides, i.e., the top and bottom. The molding tool 11 may heat one or both of the male and female parts, and / or the male and female parts may have different temperatures. The optional preheating unit 16 may be an IR heater or a resistance heater, with or without a fan.

[0042] Within the molding tool 11, the cellulose blank 13 is heated to a temperature of 120-200°C to obtain sufficient rigidity and strength in the final cellulose product 14. According to various exemplary embodiments, the cellulose blank 13 may be preheated to 100°C before reaching the press unit 12 of the product forming unit 40, where the cellulose blank is heated to 120-200°C by the molding tool 11. According to various exemplary embodiments, the cellulose blank is heated to 120-200°C by the preheating unit 16 so that no excess heat is delivered to the cellulose blank during the molding of the final cellulose product 14. According to various exemplary embodiments, heating of the cellulose blank 13 is performed only within the press unit 12 of the product forming unit 40 during the formation of the final cellulose product 14, i.e., no preheating is performed.

[0043] The apparatus 100 may comprise one or more humidifier units 17a to 17b. According to various exemplary embodiments, a first humidifier unit 17a may be positioned to humidify the ambient air and / or the internal volume of the apparatus 100, particularly in the decomposition unit 3 and / or cellulose blank forming unit 30, in order to ensure proper humidity for the cellulose fibers. According to various exemplary embodiments, a second humidifier 17b may be positioned before the separation / decomposition unit 3, i.e., at the inlet to the separation unit 3, in order to humidify the cellulose raw material entering the separation unit 3. According to various exemplary embodiments, a third humidifier may be positioned at the outlet of the separation unit 3, in order to humidify the cellulose fibers discharged from the separation unit 3. The third humidifier may be positioned at the inlets of a first fan 4 and / or a second fan 4', which are provided to extract fibrous material from the separation unit 3 and spray the same fibrous material onto the first forming drum 15 and the second forming drum 15', respectively. A third humidifier may also be positioned in the fan to mix the incoming air with the fibrous material at the desired humidity before the cellulose fibers are applied to the forming drum. These humidifiers may provide water in liquid and / or gaseous form. Alternatively, an in-line humidifier may be used to provide additives / chemicals other than water in liquid and / or gaseous form.

[0044] The cellulose blank requires a moisture content within a specified range. As mentioned above, the moisture content of the air is 5-20 g of water per 1 kg of air in the separation unit 3 and / or the cellulose blank forming unit 30. According to various exemplary embodiments, the moisture content of the air is 9-12 g of water per 1 kg of air in the separation unit 3 and / or the cellulose blank forming unit 30. If the moisture content of the cellulose fibers is too low, the risk of static electricity increases, resulting in uneven formation of the cellulose blank, which in turn affects the basis weight of the cellulose blank. If the moisture content is too high, the cellulose fibers become clogged, which in turn affects the basis weight of the cellulose blank.

[0045] According to various exemplary embodiments, one or more optional chemical injection units may be provided and configured to increase the network strength of the cellulose blank 13. In the first exemplary embodiment, at least one first chemical injection unit 9 is provided to apply a liquid binder to the bottom and / or top surface of the cellulose blank to form a support layer.

[0046] The liquid binder may be allowed to penetrate from either side of the cellulose blank / sheet 13 to a penetration depth of less than 50% of the thickness within the cellulose blank 13. According to various exemplary embodiments, the penetration depth of the liquid binder is 5 to 49% of the overall thickness of the cellulose blank 13. According to various exemplary embodiments, the penetration depth of the liquid binder is 10 to 30% of the overall thickness of the cellulose blank 13. The injection unit may apply the liquid binder before receiving the cellulose blank 13 onto the support web 8. The injection unit 9 may apply the liquid binder before the press unit 12 of an optional preheating unit 16 and / or product forming unit 40. The liquid binder may be an organic liquid or an inorganic liquid. The final cellulose product 14 is, accordingly, a laminated product, and different layers may have different properties and thicknesses. The strength and / or stiffness of the final cellulose product 14 may be increased by adding liquid binders such as starch, plant gum, CMC, MFC, synthetic and natural polymers, organic acids, latex, modified cellulose, and / or lignin. The liquid binders do not include thermoplastic resins. The liquid binders may be organic or inorganic liquids, and may be, for example, natural polymers or waxes extracted from plants, potassium oxide or magnesium oxide (water glass), or silica compounds. The penetration depth may be changed by changing the pressure of the liquid binder in the injection unit 9 and / or by changing the discharge pattern of the injection unit 9 and / or by changing the speed of the cellulose blank 13 and / or by changing the size of the orifice that discharges the liquid binder and / or by changing the number and / or size of the orifices that discharge the liquid binder and / or by changing the duty cycle of discharge of the liquid binder from at least one of the injection units. Furthermore, the viscosity and / or degree of pressure of the additives / agents on the other side of the cellulose blank directly affect the penetration depth.

[0047] The final cellulose product 14 is formed in the press unit 12 of the product forming unit 40. The pressure that the press unit 12 applies to the molding tool 11 is 40 to 10,000 N / cm². 2 It may be so. According to various exemplary embodiments, the pressure is 100 to 4000 N / cm². 2 According to various exemplary embodiments, the pressure is 400 N / cm². 2 It exceeds this value, preferably 1000 to 3900 N / cm². 2 That is the case.

[0048] According to various exemplary embodiments, before the forming / molding step, a liquid or solid agent may be applied to the cellulose material to alter the hydrophobic and / or oleophobic characteristics / properties of the essentially non-planar cellulose product 14. In Figure 4, this is illustrated by a second chemical injection unit 2, which applies a liquid agent to the wound pulp or paper 1a before it enters the separation unit 3. The liquid or solid agent for altering the hydrophobic and / or oleophobic properties of the essentially non-planar cellulose product 14 may be a starch compound, a rosin compound, a butanetetracarboxylic acid, a gelatin compound, an alkylketene dimer (AKD), an alkenyl succinic anhydride (ASA), a wax compound, a silicon compound, and / or a calcium compound, and may be added at a dry content of 0.2 to 15%, preferably 0.5 to 12%. As described below, when using parallel decomposition units 3, different chemicals / agents may be applied to different cellulose raw materials 1 supplied into individual decomposition units 3.

[0049] According to various exemplary embodiments, when the cellulose blank is provided into the molding tool 11, the moisture content of the cellulose blank 13 is at least 5%. According to various exemplary embodiments, when the cellulose blank is provided into the molding tool 11, the moisture content of the cellulose blank 13 is 7-12%.

[0050] The formation of the cellulose blank 13, i.e., the control of the basis weight of the cellulose blank 13, is critical to the properties resulting in the final cellulose product 14. When the design / structure of the final cellulose product 14 is complex, conventional solutions do not provide sufficient rigidity / strength to the final cellulose product 14, and cracks occur during pressing in the forming unit 40. The present invention is based on the insight that the cellulose blank 13 must have different basis weights at different locations so that the final cellulose product 14 has the required properties in terms of rigidity / strength / basis weight and does not exhibit / contain cracks. By having different basis weights at different locations in the cellulose blank 13, the final cellulose product 14 can have a uniform basis weight and / or a high basis weight at specified locations.

[0051] To generate / form cellulose blanks having different basis weights at different locations on the outer surface of a first forming drum 15, the outer surface of the first forming drum 15 includes a first area having a first perforation density and a second area having a second perforation density lower than the first perforation density. Perforation density means the ratio of the area with openings to the area without openings. The dimensions of individual openings may be the same or different throughout the first forming drum 15. Since the first perforation density is higher than the second perforation density, i.e., more air is drawn through the outer surface of the first forming drum 15 in the first area than in the second area, and more cellulose fibers adhere to the outer surface of the first forming drum 15 in the first area than in the second area. Thereafter, the first forming drum 15 generates continuous or discontinuous cellulose blanks 13 having a higher basis weight at a first location originating from the first area than at a second location originating from the second area. A higher basis weight means more cellulose fibers per unit area of ​​the cellulose blank 13. The first forming drum 15 may have three or more levels of perforation density, and / or the interface between two areas with different perforation densities may be an abrupt or smooth transition.

[0052] According to various embodiments, the second perforation density of the second area on the outer surface of the first forming drum 15 is equal to 0, i.e., there are no perforations, and thus cellulose fibers do not adhere to the second area on the outer surface of the first forming drum 15. Furthermore, a low perforation density in the second area on the outer surface of the first forming drum 15 inevitably results in a large amount of cellulose fibers not adhering to the second area on the outer surface of the first forming drum 15. The first and second areas may be provided on the enclosing surface of the first forming drum 15. This forms a discontinuous cellulose blank 13, i.e., one with different basis weights at different locations. Thus, the basis weight is 0 at some locations and high at others. Each sheetlet of the discontinuous cellulose blank 13 may have a uniform basis weight or areas with different basis weights.

[0053] According to various embodiments, the outer surface of the first forming drum 15 includes a main enveloping surface 64 and one or more recesses / internal growths 62 provided within the main enveloping surface 64 (see Figure 3). The recesses / internal growth 62 are suitable for producing continuous or discontinuous cellulose blanks 13 having locations / areas with different basis weights. Thus, a first area of ​​a first forming drum 15 having a first perforation density is located in one or more recesses 62, forming continuous or discontinuous cellulose blanks 13 having a higher basis weight at locations originating from the first area than at locations originating from the second area. The locations of the cellulose blanks emerging from the internal growth 62 have a higher basis weight than the locations of the cellulose blanks emerging from the peripheral areas of the outer surface of the first forming drum 15 without such internal growth.

[0054] Each recess 62 may include both a first area having a first perforation density and a second area having a second perforation density, and / or the recess may have different depths relative to the first and second areas. Preferably, the second area having the second perforation density is located on the main envelope surface 64, and the first area having the first perforation density is located within the recess.

[0055] The advantage of having recesses within the forming drum to produce higher basis weight portions of a continuous or discontinuous cellulose blank, i.e., locations with more cellulose fibers, is that the manufacturing process of air / dry accumulating cellulose fibers in the forming drum is made easier to sort / encapsulate. Furthermore, it is clear that the forming drum may be adapted to the final cellulose product in various ways to reinforce particularly crack-prone areas and / or to make certain areas of the product more rigid.

[0056] The first forming cylinder 15 may be provided with perforations in the internal growth area 62 and the main enclosing surface 64 surrounding the internal growth area 62. The above description of the first forming drum 15 also applies to the second forming drum 15'.

[0057] Exemplary embodiments of the resulting continuous cellulose blank 13 provided to the support structure may be similar to those shown in Figure 1. The lower portion of Figure 1 shows a top view of the cellulose blank 13, and the upper portion of Figure 1 shows a cross-sectional view of the same cellulose blank 13. This cross-sectional view is located in a plane perpendicular to the top surface of the cellulose blank 13 and perpendicular to the movement of the cellulose blank when it is attached to the support structure 8. The cellulose blank 13 emerging from the second forming drum 15' may have an essentially flat base structure 34, on which cellulose fiber protrusions are attached to form a 3D structured cellulose blank having different basis weights. In Figure 1, the cellulose blank is a continuous cellulose blank 13 having a 3D structure.

[0058] Areas of the forming drum without perforations may have a relatively smooth surface. When loose cellulose fibers come into contact with such a smooth surface that does not have the potential to remove excess air, the cellulose fibers become very difficult to adhere to such areas of the forming drum, thereby forming individual sheetlets 32 of the cellulose blank 13 as shown in Figure 2. Figure 2 is an example of a discontinuous cellulose blank 13. The sheetlets 32 are shown in Figure 2 as being separated in both the axial and transverse directions when viewed from above. In alternative embodiments, the sheetlets 32 may be formed in strips / tiles in the axial or transverse direction when viewed from above.

[0059] According to Figure 4, the product forming unit 40 comprises a fixed press unit 12 having a single forming tool 11 for producing one or more three-dimensional products in a single mold / process. It will be understood that the apparatus according to Figure 4 may have parallel press units 12 and / or parallel forming tools 11 within a single press unit 12. Alternatively, the product forming unit 40 is a continuous process, with a female and male part positioned on two rotational forming units. The rotation of the forming units may be synchronized with the supply of cellulose blank 13 into the product forming unit 40. The rotational forming units may have multiple parallel shapes for forming three-dimensional products. The rotational forming units may include multiple identical shapes for forming identical three-dimensional products. The rotational forming units may include multiple different shapes for forming multiple different three-dimensional products. The rotation of the rotational forming units can advance the three-dimensional products from the press unit 12 and supply new cellulose blanks into the press unit 12. It will be noted that product forming units 40 according to different embodiments are interchangeable without affecting the rest of the apparatus 100.

[0060] The compression roll 10 may compress the air-filled cellulose blank 13 to at least half of its initial / uncompressed thickness. According to various exemplary embodiments, the compression roll 10 compresses the cellulose blank 13 to at least one-third of its initial / uncompressed thickness. This makes the compressed cellulose blank 13 easier to handle after the cellulose blank forming unit 30, i.e., before the forming unit 40, up to the forming unit 40, and within the forming unit 40.

[0061] Therefore, each forming drum may produce a continuous cellulose blank as shown in Figure 1, or a discontinuous cellulose blank as shown in Figure 2. The result from the first drum is applied to the outer surface of the second forming drum 15'. According to the exemplary embodiment disclosed in Figure 4, the cellulose fibers are supplied from one same separation unit 3, so the composition of the cellulose fibers from the first forming drum 15 and the second forming drum 15' is the same. According to an alternative embodiment, as shown in Figure 5, the first forming drum 15 is supplied with cellulose fibers separated from the first decomposition / separation unit, and the second forming drum 15' is supplied with cellulose fibers separated from the second decomposition / separation unit. In such a case, as already discussed, the cellulose fibers from the first and second separation units may be different, i.e., they may originate from different cellulose raw materials, have different fiber lengths, have different agents / additives, and so on.

[0062] Referring next to Figure 5, Figure 5 illustrates the use of a first decomposition unit 3 associated with a first forming drum 15 and a second decomposition unit 3' associated with a second forming drum 15'. In such cases, as already discussed, the cellulose fibers from the first decomposition unit 3 and the cellulose fibers from the second decomposition unit 3' may be different in order to further adjust the properties of the final cellulose product 14. It will be noted that when different decomposition units are associated with different forming drums / units, these decomposition units may also be configured to provide the same type of cellulose fibers. Different layers of the cellulose blank 13 may have different properties by adding different additives / agents to different cellulose raw materials, thereby allowing for very precise control of the penetration depth of the additives in the final cellulose product 14.

[0063] Referring next to Figure 6, the cellulose blank forming unit 30 includes an alternative type of compression roll 10. The compression roll 10 is also configured to remove continuous or discontinuous cellulose blank 13 from the second forming drum 15' and transfer it to the support structure 8 while the cellulose blank 13 is being compressed.

[0064] Therefore, the compression roll 10 is composed of one or more compression drums, with perforation and air removal means arranged inside each drum. Thereafter, the cellulose blank 13 formed on the second forming drum 15' is transferred to the first compression drum at the position / boundary where the angular boundary 5' of the second forming drum 15' ends, and the corresponding angular boundary of the first compression drum becomes active. The transfer from one drum to the other is the same throughout the apparatus 100, i.e., one angular interval ends (pressurization ends) and the next angular interval becomes active (pressurization becomes active). The second compression drum is positioned in close proximity to the first compression drum, and at the position / boundary where these compression drums meet, continuous or discontinuous cellulose blanks 13 are compressed and transferred from the first compression drum to the second compression drum. The compressed cellulose blank may be transferred to additional compression drums before the cellulose blank is received by the support structure 8, during which the cellulose blank may be further compressed.

[0065] According to the alternative embodiment, the second compression drum is replaced with a compression roll, and the cellulose blank 13 is compressed between the first compression drum and such a compression roll, and the cellulose blank is not transferred from the first compression drum. The compressed cellulose blank is then transferred from the first compression drum to the support structure 8.

[0066] According to various exemplary embodiments, an intermediate product may be manufactured for the dry production of at least one rigid cellulose product 14 having an essentially non-flat overall shape. The intermediate product consists of continuous or discontinuous cellulose blanks 13 having different basis weights at different positions, i.e., a first position and a second position, the first position having a higher basis weight than the second position. The basis weight at the second position may be 0, as discussed above. Such an intermediate product may be supplied, for example, in the form of individual sheets or on a roll. The first position of the cellulose blank, i.e., the intermediate product, overlaps with the crack-prone and / or stiffened areas of the subsequent rigid cellulose product 14 having an essentially non-flat overall shape.

[0067] From an intermediate product, i.e., a cellulose blank 13, a rigid cellulose product 14 having an essentially non-flat overall shape may be produced by pressing in a product forming unit 40, where the maximum basis weight of the rigid cellulose product 14 is less than the maximum basis weight of a continuous or discontinuous cellulose blank 13. Thus, the cellulose fibers of the cellulose blank 13, the intermediate product, are dispersed again during the pressing step in response to the non-flat overall shape of the final cellulose product 14.

[0068] The circumferential velocity within the separation unit may be in the range of 50 to 150 m / sec. In various exemplary embodiments, the circumferential velocity may be in the range of 90 to 150 m / sec. In various exemplary embodiments, the size of the cellulose fibers may be 2 mm, and the amount of fiber per unit volume of air may be 9 to 12 g of water / 1 kg of air and 100 g of fiber / 1 m³ of air. The support structure, continuous forming cylinder, and / or continuous web may have a width of 20 to 100 cm. In various exemplary embodiments, the width is 30 to 70 cm. The sheet of cellulose fiber 13 may have a weight of 200 to 2000 g / m². The pressure within the pressure unit may be in the range of 40 to 10000 N / cm².

[0069] For example, a discontinuous cellulose blank is formed on the outer surface of a second forming drum 15', with each sheetlet measuring approximately 20cm x 30cm. To obtain a final cellulose product with a thickness of 0.5mm, the basis weight is approximately 600g / m2 in the first area and 0g / m2 in the second area, i.e., between the sheetlets of the discontinuous cellulose blank. This process can produce 2500 sheetlets per hour, with each sheetlet weighing 36g, i.e., 90kg of cellulose raw material per hour. To obtain approximately 500g of cellulose fibers per cubic meter of air, the required airflow is 180m3 of air per hour. To accumulate sufficient cellulose fibers in each sheetlet of the cellulose blank, the air velocity on the outer surface of the second forming drum 15' is approximately 3-5m / sec.

[0070] The humidity of the airflow should be in the range of 9 to 12 g per kg of air, preferably 11 g per kg of air (equivalent to 14.3 g per m³ of air). To obtain the required level, different amounts of water must be added depending on the humidity of the ambient air. The humidity of the ambient air should preferably be in the range of 55 to 65% RH at 20 degrees Celsius.

[0071] For example, a discontinuous cellulose blank is formed using two forming drums 15 and 15'. A first circular cellulose blank is formed on the outer surface of the second forming drum 15', with a diameter of 40 cm and a basis weight of approximately 500 g / m2, and a second circular cellulose blank is formed on the outer surface of the first forming drum 15', with a diameter of 20 cm and a basis weight of approximately 200 g / m2. This process can produce 2500 sheetlets per hour, with each sheetlet weighing 63 + 6 = 69 g, i.e., 172.5 kg of cellulose raw material per hour. To obtain approximately 500 g of cellulose fiber per cubic meter of air, the required airflow is 345 m3 of air per hour.

[0072] Executable modifications of the present invention The present invention is not limited to the embodiments described above as shown in the drawings, which are primarily for illustrative purposes. This patent application is intended to encompass all modifications and variations of the preferred embodiments described herein, and therefore the present invention is defined by the expression of the appended claims and its equivalents. Thus, the apparatus may be modified in any way within the scope of the appended claims. Throughout this specification and the subsequent claims, unless otherwise required by context, the word “comprise” and its variations such as “comprises” or “comprising” will be understood to indicate the inclusion of the integer or step or group of integers or group of steps described, rather than the exclusion of any other integer or step or group of integers or group of steps.

[0073] Therefore, it can be pointed out that even when it is not explicitly stated that features from a particular embodiment may be combined with features from another embodiment, if such combination is possible, it should be considered obvious. Specific embodiments of the present invention are as follows. [Aspect 1] An apparatus (100) for dry manufacturing a rigid cellulose product (14) having an essentially non-flat overall shape, - A decomposition unit (3) for providing a certain amount of cellulose fibers (6) separated from a cellulose raw material (1), - A multi-stage cellulose blank forming unit (30) comprising a dispenser for guiding a cellulose fiber transport airflow from the decomposition unit (3), wherein the multi-stage cellulose blank forming unit (30) is configured to form continuous or discontinuous cellulose blanks (13) having different basis weights at different locations from a certain amount of separated cellulose fibers transported by the airflow via the dispenser, - A product forming unit (40) for producing a rigid cellulose product (14) having an essentially non-flat overall shape from a cellulose blank (13) by pressing, and In an apparatus (100) comprising, The multi-stage cellulose blank forming unit (30) - The first forming drum (15) has an outer surface configured to receive cellulose fibers from the dispenser by a first air removal device (54) located inside the first forming drum (15) and to form a portion of the cellulose blank (13), - A second forming drum (15') having an outer surface configured to receive cellulose fibers originating from the dispenser and the outer surface of the first forming drum (15) by a second air removal device (54') located inside the second forming drum (15), and to form the continuous or discontinuous cellulose blank (13), - A support structure (8) for receiving the continuous or discontinuous cellulose blank (13) formed on the second forming drum (15') and Apparatus (100) characterized by comprising: [Aspect 2] The apparatus (100) according to embodiment 1, wherein the outer surface of the first forming drum (15) includes a first area having a first perforation density and a second area having a second perforation density less than the first perforation density, for forming a sheetlet of cellulose blank (13) to be transferred to the outer surface of the second forming drum (15'). [Aspect 3] The dispenser of the multi-stage cellulose blank forming unit (30) is - A first fan (4) for generating a cellulose fiber transport airflow directed toward the first forming drum (15), and / or - A second fan (4') for generating a cellulose fiber transport airflow directed toward the second forming drum (15') The apparatus (100) according to embodiment 1 or 2, comprising: [Aspect 4] The apparatus (100) according to any one of embodiments 1 to 3, wherein the decomposition unit comprises a first decomposition unit (3) configured to provide cellulose fibers to the first forming drum (15) and a second decomposition unit (3') configured to provide cellulose fibers to the second forming drum (15). [Aspect 5] The apparatus (100) according to any one of embodiments 1 to 4, wherein the product forming unit (40) comprises a molding tool (11) for producing the rigid cellulose product having an essentially non-flat overall shape from the continuous or discontinuous cellulose blank (13). [Aspect 6] The apparatus (100) according to any one of embodiments 1 to 5, wherein the multi-stage cellulose blank forming unit (30) comprises a compression roll (10) downstream of the second forming drum (15') for compressing the continuous or discontinuous cellulose blank (13). [Aspect 7] The apparatus (100) according to embodiment 6, wherein the compression roll (10) is also configured to remove the continuous or discontinuous cellulose blank (13) from the second forming drum (15') and to transfer the cellulose blank (13) to the support structure (8). [Aspect 8] A dry manufacturing method for a rigid cellulose product (14) having an essentially non-flat overall shape, - A step of providing a certain amount of separated cellulose fibers (6) by breaking down a cellulose raw material (1), - A step of transporting the separated cellulose fibers (6) by airflow to a multi-stage cellulose blank forming unit (30) having a first forming drum (15) and a second forming drum (15'), - A step of transferring the cellulose fibers from the first forming drum (15) to the second forming drum (15'), - The step of forming continuous or discontinuous cellulose blanks (13) having different basis weights at different positions on the outer surface of the second forming drum (15'), - A step of transferring the continuous or discontinuous cellulose blank (13) from the second forming drum (15') to the support structure (8), - A step of producing a rigid cellulose product (14) having an essentially non-flat overall shape by pressing the continuous or discontinuous cellulose blanks (13) having different basis weights at different positions within a product forming unit (40). Methods that include... [Aspect 9] The method according to embodiment 8, wherein the continuous or discontinuous cellulose blank (13) is compressed downstream of the second forming drum (15'). [Aspect 10] A continuous or discontinuous cellulose blank (13) which is an intermediate product for dry manufacturing at least one rigid cellulose product (14) having an essentially non-flat overall shape, wherein the continuous or discontinuous cellulose blank (13) has different basis weights at different locations. [Aspect 11] A rigid cellulose product (14) having an essentially non-flat overall shape, which is produced by pressing the continuous or discontinuous cellulose blank (13) described in embodiment 10 within a product forming unit (40), wherein the maximum basis weight of the rigid cellulose product (14) is less than the maximum basis weight of the continuous or discontinuous cellulose blank (13). [Aspect 12] The rigid cellulose product (14) having an essentially non-flat overall shape according to Embodiment 11, wherein the cellulose product (14) comprises cellulose fibers from a cellulose raw material (1) composed of unused cellulose fibers and / or recycled cellulose fibers, wherein the cellulose fibers are derived from wood pulp such as kraft pulp, sulfite pulp, mechanical pulp, thermomechanical pulp, chemically treated mechanical pulp, chemothermetic pulp, and / or non-wood pulp such as bagasse, bamboo, Manila hemp, hemp, flax, and cotton.

Claims

1. An apparatus (100) for dry manufacturing a rigid cellulose product (14) having an essentially non-flat overall shape, - A decomposition unit (3) for providing a certain amount of cellulose fibers (6) separated from a cellulose raw material (1), - A multi-stage cellulose blank forming unit (30) comprising a dispenser for guiding a cellulose fiber transport airflow from the decomposition unit (3), wherein the multi-stage cellulose blank forming unit (30) is configured to form continuous or discontinuous cellulose blanks (13) having different basis weights at different positions from a certain amount of separated cellulose fibers transported by the airflow via the dispenser, - A product forming unit (40) for producing a rigid cellulose product (14) having an essentially non-flat overall shape from the cellulose blank (13) by pressing, and In an apparatus (100) comprising, The multi-stage cellulose blank forming unit (30) - The first forming drum (15) has an outer surface configured to receive cellulose fibers from the dispenser by a first air removal device (54) located inside the first forming drum (15) and to form a part of the cellulose blank (13), - A second forming drum (15') having an outer surface configured to receive cellulose fibers originating from the dispenser and the outer surface of the first forming drum (15) by a second air removal device (54') located inside the second forming drum (15), and to form the continuous or discontinuous cellulose blank (13), - A support structure (8) for receiving the continuous or discontinuous cellulose blank (13) formed on the second forming drum (15') and An apparatus (100) characterized by comprising:

2. The apparatus (100) according to claim 1, wherein the outer surface of the first forming drum (15) includes a first area having a first perforation density and a second area having a second perforation density less than the first perforation density, for forming a sheetlet of cellulose blank (13) to be transferred to the outer surface of the second forming drum (15').

3. The dispenser of the multi-stage cellulose blank forming unit (30) is - A first fan (4) for generating a cellulose fiber transport airflow directed toward the first forming drum (15), and / or - A second fan (4') for generating a cellulose fiber transport airflow directed toward the second forming drum (15') The apparatus (100) according to claim 1 or 2, comprising:

4. The apparatus (100) according to any one of claims 1 to 3, wherein the decomposition unit comprises a first decomposition unit (3) configured to provide cellulose fibers to the first forming drum (15), and a second decomposition unit (3') configured to provide cellulose fibers to the second forming drum (15).

5. The apparatus (100) according to any one of claims 1 to 4, wherein the product forming unit (40) comprises a molding tool (11) for producing the rigid cellulose product having an essentially non-flat overall shape from the continuous or discontinuous cellulose blank (13).

6. The apparatus (100) according to any one of claims 1 to 5, wherein the multi-stage cellulose blank forming unit (30) comprises a compression roll (10) downstream of the second forming drum (15') for compressing the continuous or discontinuous cellulose blank (13).

7. The apparatus (100) according to claim 6, wherein the compression roll (10) is also configured to remove the continuous or discontinuous cellulose blank (13) from the second forming drum (15') and to transfer the cellulose blank (13) to the support structure (8).

8. A dry manufacturing method for a rigid cellulose product (14) having an essentially non-flat overall shape, - A step of providing a certain amount of separated cellulose fibers (6) by decomposing a cellulose raw material (1), - A step of transporting the separated cellulose fibers (6) by airflow to a multi-stage cellulose blank forming unit (30) having a first forming drum (15) and a second forming drum (15'), - A step of transferring the cellulose fibers from the first forming drum (15) to the second forming drum (15'), - The step of forming continuous or discontinuous cellulose blanks (13) having different basis weights at different positions on the outer surface of the second forming drum (15'), - A step of transferring the continuous or discontinuous cellulose blank (13) from the second forming drum (15') to the support structure (8), - A step of producing a rigid cellulose product (14) having an essentially non-flat overall shape by pressing the continuous or discontinuous cellulose blanks (13) having different basis weights at different positions within a product forming unit (40). Methods that include...

9. The method according to claim 8, wherein the continuous or discontinuous cellulose blank (13) is compressed downstream of the second forming drum (15').

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