EP4551760A1 - In-situ patterning of fibre articles - Google Patents
In-situ patterning of fibre articlesInfo
- Publication number
- EP4551760A1 EP4551760A1 EP23738729.5A EP23738729A EP4551760A1 EP 4551760 A1 EP4551760 A1 EP 4551760A1 EP 23738729 A EP23738729 A EP 23738729A EP 4551760 A1 EP4551760 A1 EP 4551760A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- crease
- fibres
- patterned
- pulp
- article
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Pending
Links
Classifications
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H27/00—Special paper not otherwise provided for, e.g. made by multi-step processes
- D21H27/02—Patterned paper
-
- D—TEXTILES; PAPER
- D21—PAPER-MAKING; PRODUCTION OF CELLULOSE
- D21H—PULP COMPOSITIONS; PREPARATION THEREOF NOT COVERED BY SUBCLASSES D21C OR D21D; IMPREGNATING OR COATING OF PAPER; TREATMENT OF FINISHED PAPER NOT COVERED BY CLASS B31 OR SUBCLASS D21G; PAPER NOT OTHERWISE PROVIDED FOR
- D21H25/00—After-treatment of paper not provided for in groups D21H17/00 - D21H23/00
- D21H25/005—Mechanical treatment
Definitions
- the present invention relates to methods for preparing a crease patterned fibre article, a crease patterned fibre article obtainable by said method as well as the use of a crease patterned fibre article as a packaging, design article, fabrics, bio-tissue implant, organ substitute, organ regeneration (patch), organ model, tissue substitute, tissue model, tissue scaffolds, cell growth support, cell maturing support or bone reinforcement.
- Origami paper folding is a very well-known technique, which is used to shape robust and reliable 3D-shaped articles such as animals and flowers from a flat sheet of paper.
- This technique only a very small part of the paper sheet is deformed when it is creased, but the existence of such crease readily changes its deformation modes in that the formed article is robust and reliable against mechanical action to some extent.
- a method for preparing a crease patterned fibre article preferably a crease patterned paper or paperboard.
- the method comprising the steps of a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, c) depositing the aqueous suspension comprising fibres onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article.
- a method for preparing a crease patterned fibre article comprising the steps of a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, c1) depositing the aqueous suspension comprising fibres onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using the crease patterning device to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article.
- the crease patterning device is made from a material selected from the group comprising alloy and non-alloy steel, cast steel, cast iron, aluminium, ceramics, sintered metal, brass, titanium, copper and polymer materials.
- the crease patterning device is a mesh, preferably a wire mesh, most preferably a wire mesh containing a crease pattern.
- the wire mesh comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm, and/or an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm; and/or an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the crease pattern of the crease patterning device is created by engraving, laid wires, chain wires, soldering, embossing, 3D printing or melt moulding, preferably embossing e.g. of a brass mesh.
- the aqueous suspension comprises the fibres in an amount ranging from 0.5 to 30 wt.-%, based on the total weight of the aqueous suspension, preferably from 0.5 to 25 wt.-%, more preferably from 0.5 to 20 wt.-% and most preferably from 0.5 to 15 wt.-%.
- the fibres in the aqueous suspension are biocompatible and/or the fibres in the aqueous suspension comprise cellulose, preferably the fibres comprising cellulose are contained in pulps selected from the group comprising eucalyptus pulp, spruce pulp, pine pulp, beech pulp, hemp pulp, cotton pulp, wheat pulp, oat pulp, rye pulp, barley pulp, rice pulp, bamboo pulp, bagasse pulp, miscanthus pulp, sisal pulp, jute pulp, acacia pulp, birch pulp and mixtures thereof.
- pulps selected from the group comprising eucalyptus pulp, spruce pulp, pine pulp, beech pulp, hemp pulp, cotton pulp, wheat pulp, oat pulp, rye pulp, barley pulp, rice pulp, bamboo pulp, bagasse pulp, miscanthus pulp, sisal pulp, jute pulp, acacia pulp, birch pulp and mixtures thereof.
- the fibres in the aqueous suspension have an average diameter ranging from 1 to 35 pm, preferably from 2 to 30 pm and most preferably from 3 to 20 pm, and/or an average length ranging from 0.7 to 250 mm, preferably from 0.8 to 230 mm and most preferably from 0.9 to 200 mm.
- the depositing in step c) or step c1) is carried out by jetting, casting, spray coating, curtain coating, slide bed coating, film pressing, metered film pressing, blade coating, brush coating or paper press forming.
- drying step d) is carried out under vacuum and/or a temperature ranging from 80 to 200°C, preferably from 85 to 180°C and most preferably from 90 to 150°C.
- the process comprises a further step e) of separating the crease patterned fibre article from the crease patterning device and/or wire mesh.
- the process comprises a further step f) of folding the crease patterned fibre article into a 3D shape.
- the process comprises a further step g) of applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article.
- the cells and/or enzymes and/or pharmaceuticals are provided in a carrier material, preferably the carrier material is selected from the group comprising gelatin, methylcellulose, alginate, agarose, fibrin, hyaluronic acid, K-carrageenan, polyethylene glycol) (PEG), polycaprolactone (PCL), matrigel, gelatin methacrylate, poloxamer, nanocellulose, peptide, silk fibroin and mixtures thereof.
- the carrier material is selected from the group comprising gelatin, methylcellulose, alginate, agarose, fibrin, hyaluronic acid, K-carrageenan, polyethylene glycol) (PEG), polycaprolactone (PCL), matrigel, gelatin methacrylate, poloxamer, nanocellulose, peptide, silk fibroin and mixtures thereof.
- a crease patterned fibre article preferably a crease patterned paper or paperboard, obtainable by a method as described herein, is provided.
- the article is a packaging, design article, fabrics, bio-tissue implant, organ substitute, organ regeneration (patch), organ model, tissue substitute, tissue model, tissue scaffolds, cell growth support, cell maturing support or bone reinforcement.
- a crease patterned fibre article as a packaging, design article, fabrics, bio-tissue implant, organ substitute, organ regeneration (patch), organ model, tissue substitute, tissue model, tissue scaffolds, cell growth support, cell maturing support or bone reinforcement is provided.
- biocompatible in the meaning of the present invention refers to a material that is in accordance with EN ISO 10993-1 :2021 -05.
- biocompatible refers to the ability of a medical device (3.14) or material (3.12) to perform with an appropriate host response in a specific application.
- biocompatible materials (3.12) are defined as being a synthetic or natural polymer, metal or alloy, ceramic, or composite, including tissue rendered nonviable, used as a medical device (3.14) or any part thereof.
- the method for preparing a crease patterned fibre article, preferably a crease patterned paper or paperboard, of the present invention comprises the steps of a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article.
- the method for preparing a crease patterned fibre article, preferably a crease patterned paper or paperboard, of the present invention comprises the steps of a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article.
- the invention refers to a method for preparing a crease patterned fibre article.
- the crease patterned fibre article is preferably a crease patterned paper or paperboard.
- a crease patterning device is provided.
- a “crease patterning device” is a device creating a crease patterning on a fibre web that is treated with such a device. Furthermore, the crease patterning device should be in a condition such that the crease pattern can be reliably created in the fibre web without deformations and failures in the crease pattern. In addition, thereto, the crease patterning device should be (chemically) stable in that it is neither reacting with the moisture nor the fibres in the fibre web that is treated with the crease patterning device (at least for the period of the method). Furthermore, the crease patterning device should be mechanically and thermally stable at temperatures of up to about 120°C. Thus, the crease patterning device can be made of any material that is rigid and (chemically) stable. Examples of materials include but are not limited to inert metals and alloys, ceramics and polymer materials.
- the crease patterning device is made from a material selected from the group comprising alloy and non-alloy steel, cast steel, cast iron, aluminium, ceramics, sintered metal, brass, titanium, copper and polymer materials.
- the crease patterning device is made of a polymer material.
- the polymer material can be e.g. selected from biocompatible resins, thermoplastics and duroplasts.
- the polymer material can be selected from acrylonitrile butadiene styrene (ABS), polycarbonate (PC) and polycarbonate blends with biomaterials or fossil-fuel, polyether ether ketone (PEEK), polyethylene terephthalate glycol (PETG), polylactic acid (PLA), polyamide 12 (also known as Nylon 12), (meth)acrylic-based polymers, epoxy-based polymers and polyurethane, such as thermoplastic polyurethane.
- the polymer material is polycarbonate (PC).
- the polymer material is polylactic acid (PLA).
- Such materials are very well known in the art and the skilled person is well aware of how such polymer material is selected for the desired purpose.
- the crease patterning device is made from a material selected from the group comprising non-alloy steel, ceramics, copper and polymer materials.
- the crease patterning device is made of a metal or alloy, the crease patterning device is preferably a mesh, preferably a wire mesh. In this embodiment, the crease patterning device is thus preferably a wire mesh containing a crease pattern.
- the crease patterning device in the form of a wire mesh is made of steel or copper.
- the wire mesh comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm.
- the wire mesh has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm.
- the wire mesh has an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm, and an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm, or the wire mesh has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm, and an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 25 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm
- the wire mesh has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm
- an amount of weft wires ranging from 200 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh has a similar amount of warp wires/cm and weft wires/cm, i.e. the amount of warp and weft wires is similar and ranges from 20 to 90 warp and weft wires/cm, preferably from 20 to 80 warp and weft wires/cm and most preferably from 20 to 70 warp and weft wires/cm, e.g. from 40 to 65 warp and weft wires/cm.
- the wording “similar” amount of warp wires/cm and weft wires/cm throughout the present invention means that the amount of warp wires/cm and weft wires/ cm differ by at most 10/cm, more preferably by at most 8/cm and most preferably by at most 6/cm.
- the crease patterning device is made of a ceramic or polymer material such as a biocompatible resins or polycarbonate or polylactic acid
- the crease patterning device is preferably a mould.
- the crease patterning device is thus preferably a mould containing a crease pattern.
- the crease pattern of the crease patterning device can be achieved by any method known in the art for creating such a pattern on a device.
- the crease pattern of the crease patterning device is created by engraving, laid wires, chain wires, soldering, embossing, 3D printing or melt moulding, preferably embossing e.g. of a brass mesh. Such methods are well known and do not need to be described in more detail herein.
- the crease pattern created by the crease patterning device may be any pattern known to the skilled person that is suitable to be further folded into a 3D shape.
- the crease pattern is selected from the Miura pattern, Miura Ori pattern, Yoshimura pattern, waterbomb pattern, Ron Resch pattern, Glide Reflection (GR, GR2) pattern, and mixtures and derivatives thereof.
- the crease pattern created by the crease patterning device is the Miura pattern or Yoshimura pattern.
- the crease pattern created by the crease patterning device is the Miura pattern.
- the crease pattern created by the crease patterning device on fibre article can be created on only a part or the whole fibre article.
- an aqueous suspension comprising fibres is provided.
- the amount of fibres in the aqueous suspension may vary in a broad range. However, it is preferred that the amount of fibres in the aqueous suspension is such that the fibres can be easily deposited on the crease patterning device or wire mesh in step c). Furthermore, it is preferred that the amount of solvent in the aqueous suspension is such that the water consumption and the energy required for filtrating in step c) or step c1) is as low as possible.
- the aqueous suspension thus comprises the fibres, preferably the biocompatible fibres, in an amount ranging from 0.5 to 30 wt.-%, based on the total weight of the aqueous suspension.
- the aqueous suspension thus comprises the fibres, preferably the biocompatible fibres, in an amount ranging from 0.5 to 25 wt.-%, more preferably from 0.5 to 20 wt.-% and most preferably from 0.5 to 15 wt.-%, based on the total weight of the aqueous suspension.
- the aqueous suspension comprises the fibres, preferably the biocompatible fibres, in an amount ranging from 0.5 to 10 wt.-%, based on the total weight of the aqueous suspension.
- the fibres in the aqueous suspension are not restricted to a specific type of fibres.
- any kind of fibre that is suitable for preparing fibre articles such as paper or paperboard can be used in the methods of the present invention. More precisely, any fibre that is suitable for the desired article and its corresponding use can be used in the aqueous suspension.
- the fibres in the aqueous suspension are biocompatible.
- biocompatible fibres refers to fibres that do not exert a negative impact, i.e. they are not harmful or toxic, on (living) tissue or cell viability.
- the biocompatible fibres do not exert a negative impact on the viability of (living) cells such as cardiovascular cells, e.g. endothelial cells, vascular smooth muscle cells, lymphatic endothelial cells, cardiomyocytes, and atherosclerosis cells, or skin cells, e.g. keratinocytes, melanocytes, Langerhans cells, and Merkel cells, or bone cells, e.g. osteoblasts, osteocytes, osteoclasts, and osteoprogenitor cells and/or enzymes such as transglutaminase enzyme.
- cardiovascular cells e.g. endothelial cells, vascular smooth muscle cells, lymphatic endothelial cells, cardiomyocytes, and atherosclerosis cells
- skin cells e.g. keratinocytes, melanocytes, Langerhans cells,
- the fibres in the aqueous suspension comprise cellulose.
- the fibres in the aqueous suspension are biocompatible or the fibres in the aqueous suspension comprise cellulose.
- the fibres in the aqueous suspension are biocompatible and the fibres in the aqueous suspension comprise cellulose.
- the fibres, preferably the biocompatible fibres, comprising cellulose are contained in pulps selected from the group comprising eucalyptus pulp, spruce pulp, pine pulp, beech pulp, hemp pulp, cotton pulp, including cotton linters, wheat pulp, oat pulp, rye pulp, barley pulp, rice pulp, bamboo pulp, bagasse pulp, miscanthus pulp, sisal pulp, jute pulp, acacia pulp, birch pulp, fir pulp, lyocell pulp and mixtures thereof.
- the fibres, preferably the biocompatible fibres, comprising cellulose are contained in eucalyptus pulp or in cotton pulp.
- the fibres, preferably the biocompatible fibres, comprising cellulose are contained in cotton pulp.
- the fibres preferably the biocompatible fibres, comprising cellulose are contained in a mixture of pulps comprising two or more pulps selected from the group comprising eucalyptus pulp, spruce pulp, pine pulp, beech pulp, hemp pulp, cotton pulp, wheat pulp, oat pulp, rye pulp, barley pulp, rice pulp, bamboo pulp, bagasse pulp, miscanthus pulp, sisal pulp, jute pulp, acacia pulp, birch pulp, fir pulp and lyocell pulp.
- pulps comprising two or more pulps selected from the group comprising eucalyptus pulp, spruce pulp, pine pulp, beech pulp, hemp pulp, cotton pulp, wheat pulp, oat pulp, rye pulp, barley pulp, rice pulp, bamboo pulp, bagasse pulp, miscanthus pulp, sisal pulp, jute pulp, acacia pulp, birch pulp, fir pulp and lyocell pulp.
- the fibres preferably the biocompatible fibres, comprising cellulose are contained in a mixture of pine pulp and spruce pulp, preferably a mixture comprising about 20 to 30 wt.-% pine pulp and 70 to 80 wt.-% of spruce pulp, based on the total weight of the mixture.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension are selected from the group comprising eucalyptus fibres, spruce fibres, pine fibres, beech fibres, hemp fibres, cotton fibres, cotton linters, wheat fibres, oat fibres, rye fibres, barley fibres, rice fibres, bamboo fibres, bagasse fibres, miscanthus fibres, sisal fibres, jute fibres, acacia fibres, birch fibres, fir fibres, lyocell fibres, viscose fibres and mixtures thereof.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension are eucalyptus fibres or cotton fibres or cotton linters.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension are cotton fibres or cotton linters.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension are a mixture of fibres comprising two or more fibres, preferably the biocompatible fibres, selected from the group comprising eucalyptus fibres, spruce fibres, pine fibres, beech fibres, hemp fibres, cotton fibres, cotton linters, wheat fibres, oat fibres, rye fibres, barley fibres, rice fibres, bamboo fibres, bagasse fibres, miscanthus fibres, sisal fibres, jute fibres, acacia fibres, birch fibres, fir fibres, viscose fibres and lyocell fibres.
- the biocompatible fibres selected from the group comprising eucalyptus fibres, spruce fibres, pine fibres, beech fibres, hemp fibres, cotton fibres, cotton linters, wheat fibres, oat fibres, rye fibres, barley fibres, rice fibres, bamboo fibres
- the fibres, preferably the biocompatible fibres, in the aqueous suspension are a mixture of pine fibres and spruce fibres, preferably a mixture comprising about 20 to 30 wt.-% pine fibres and 70 to 80 wt.-% of spruce fibres, based on the total weight of the mixture.
- the fibres in the aqueous suspension preferably consist of biocompatible fibres.
- the biocompatible fibres are preferably free of fibres that are bio-incompatible.
- the fibres preferably the biocompatible fibres, have dimensions that are typically observed for the articles to be prepared.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension preferably have an average diameter ranging from 1 to 35 pm, preferably from 2 to 30 pm and most preferably from 3 to 20 pm.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension preferably have an average length ranging from 0.7 to 250 mm, preferably from 0.8 to 230 mm and most preferably from 0.9 to 200 mm. In one embodiment, the fibres, preferably the biocompatible fibres, in the aqueous suspension preferably have an average length ranging from 0.8 to 250 mm, preferably from 1 to 230 mm and most preferably from 2 to 200 mm.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension have an average diameter ranging from 1 to 35 pm, preferably from 2 to 30 pm and most preferably from 3 to 20 pm or an average length ranging from 0.7 to 250 mm, preferably from 0.8 to 230 mm and most preferably from 0.9 to 200 mm.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension have an average diameter ranging from 1 to 35 pm, preferably from 2 to 30 pm and most preferably from 3 to 20 pm and an average length ranging from 0.7 to 250 mm, preferably from 0.8 to 230 mm and most preferably from 0.9 to 200 mm.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension have an average diameter ranging from 1 to 35 pm, preferably from 2 to 30 pm and most preferably from 3 to 20 pm or an average length ranging from 0.8 to 250 mm, preferably from 1 to 230 mm and most preferably from 2 to 200 mm.
- the fibres, preferably the biocompatible fibres, in the aqueous suspension have an average diameter ranging from 1 to 35 pm, preferably from 2 to 30 pm and most preferably from 3 to 20 pm and an average length ranging from 0.8 to 250 mm, preferably from 1 to 230 mm and most preferably from 2 to 200 mm.
- the solvent of the aqueous suspension comprises water, optionally in admixture with an organic solvent such as methanol, ethanol, n-butanol, isopropanol, n-propanol, acetone, dimethylsulphoxide, dimethylformamide, tetrahydrofurane, and mixtures thereof.
- an organic solvent such as methanol, ethanol, n-butanol, isopropanol, n-propanol, acetone, dimethylsulphoxide, dimethylformamide, tetrahydrofurane, and mixtures thereof.
- the solvent is water, methanol, ethanol and/or acetone. More preferably, the solvent comprises, most preferably consists of, water.
- the aqueous suspension comprising fibres, preferably biocompatible fibres may further comprise typical additives used in the paper making process.
- the aqueous suspension may comprise lignin as additive.
- the aqueous suspension comprising fibres, preferably biocompatible fibres, is deposited onto one surface of the crease patterning device and the aqueous suspension is filtrated to form a patterned fibre web.
- the aqueous suspension comprising fibres, preferably biocompatible fibres, can be deposited onto one surface of the crease patterning device by any method known in the art.
- the depositing in step c) is carried out by jetting, casting, spray coating, curtain coating, slide bed coating, film pressing, metered film pressing, blade coating, brush coating or paper press forming.
- a preferred method in step c) is jetting, preferably jetting into a paper machine’s headbox.
- the aqueous suspension comprising fibres, preferably biocompatible fibres is deposited onto one surface of the crease patterning device.
- the crease patterning device is provided in a horizontal or almost horizontal position such that the fibres, preferably the biocompatible fibres, in the aqueous suspension can be evenly distributed on the surface of the crease patterning device.
- the aqueous suspension is then filtrated to form a patterned fibre web on the crease patterning device.
- the patterned fibre web is primarily formed through removal of the solvent, e.g. water, from the aqueous suspension comprising fibres, preferably biocompatible fibres, via filtration.
- the filtration in step c) can be done without further aids, i.e. by gravity only.
- the filtration in step c) is done by applying vacuum or partial vacuum.
- the vacuum or partial vacuum may be advantageous in order to speed up the formation of the patterned fibre web on the surface of the crease patterning device. That is to say, the vacuum or partial vacuum is applied opposite to the surface onto which the aqueous suspension comprising fibres is deposited.
- Step c) is preferably carried out at room temperature, temperatures ranging from 20 to 24°C, but it is also possible to carry out method step c) at higher temperatures such as from 25 to 50°C.
- the aqueous suspension comprising fibres, preferably biocompatible fibres, is deposited onto a wire mesh and the aqueous suspension is filtrated to form a fibre web and in step c2), the fibre web is then patterned by using the crease patterning device to form a patterned fibre web.
- the wire mesh of method step c1) can be a wire mesh containing a crease pattern or a wire mesh without a crease pattern.
- the wire mesh of method step c1) is a wire mesh without a crease pattern.
- the wire mesh of method step c1) is preferably made of steel or copper. However, any other material that is inert with respect to the aqueous suspension comprising fibres may be also suitable.
- the wire mesh of method step c1) comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm.
- the wire mesh of method step c1) has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm.
- the wire mesh of method step c1) has an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh of method step c1) has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm, and an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh of method step c1) comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm, or the wire mesh has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm, and an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 weft wires/cm.
- the wire mesh comprises wires having a diameter ranging from 20 to 500 pm, preferably from 40 to 450 pm and most preferably from 50 to 400 pm
- the wire mesh has an amount of warp wires ranging from 20 to 90 warp wires/cm, preferably from 20 to 80 warp wires/cm and most preferably from 20 to 70 warp wires/cm, e.g. from 40 to 65 warp wires/cm
- an amount of weft wires ranging from 20 to 90 weft wires/cm, preferably from 20 to 80 weft wires/cm and most preferably from 20 to 70 weft wires/cm, e.g. from 40 to 65 warp wires/cm.
- the wire mesh of method step c1) has a similar amount of warp wires/cm and weft wires/cm, i.e. the amount of warp and weft wires is similar and ranges from 20 to 90 warp and weft wires/cm, preferably from 20 to 80 warp and weft wires/cm and most preferably from 20 to 70 warp and weft wires/cm, e.g. from 40 to 65 warp and weft wires/cm.
- the aqueous suspension comprising fibres, preferably biocompatible fibres, can be deposited onto the wire mesh by any method known in the art.
- the depositing in step c1) is carried out by jetting, casting, spray coating, curtain coating, slide bed coating, film pressing, metered film pressing, blade coating, brush coating or paper press forming.
- a preferred method in step c1) is jetting, preferably jetting into a paper machine’s headbox.
- the aqueous suspension comprising fibres, preferably biocompatible fibres is deposited onto the wire mesh.
- the wire mesh is provided in a horizontal or almost horizontal position such that the fibres , preferably the biocompatible fibres, in the aqueous suspension can be evenly distributed on the wire mesh.
- the aqueous suspension is then filtrated to form a fibre web on the wire mesh.
- the fibre web is primarily formed through removal of the solvent from the aqueous suspension comprising fibres , preferably biocompatible fibres, via filtration.
- the filtration in step c1) can be done without further aids, i.e. by gravity only.
- the filtration in step c1) is done by applying vacuum or partial vacuum.
- the vacuum or partial vacuum may be advantageous in order to speed up the formation of the fibre web onto the wire mesh. That is to say, the vacuum or partial vacuum is applied opposite to the surface onto which the aqueous suspension comprising fibres is deposited.
- the wire mesh of step c1) is preferably unpatterned such that the fibre web formed on the wire mesh by filtration is also preferably unpatterned.
- the fibre web is then patterned by using the crease patterning device to form a patterned fibre web
- the wire mesh used in method step c1) is a patterned wire mesh, it is appreciated that the wire mesh and the crease patterning device provide the positive and negative form of the pattern.
- the wire mesh used in method step c2) is an unpatterned wire mesh
- the wire mesh must be configured such that the pattern can be created in the fibre web via the crease patterning device. That is to say, the wire mesh must be configured such that it gives in under pressure of the crease patterning device and thus adapts to the form of said device and thus creating the pattern into the fibre web.
- Steps c1) and c2) are preferably carried out at room temperature, temperatures ranging from 20 to 24°C, but it is also possible to carry out method steps c1) and c2) at higher temperatures such as from 25 to 50°C.
- the patterned fibre web formed in step c) or the fibre web formed in step c1) has a higher content of fibres, preferably biocompatible fibres, compared to the aqueous suspension comprising the fibres, preferably the biocompatible fibres, which is deposited on the crease patterning device or the wire mesh.
- the patterned fibre web formed in step c) or the fibre web formed in step c1) has a content of fibres, preferably biocompatible fibres, in an amount ranging from 10 to 80 wt.-%, based on the total weight of the patterned fibre web formed in step c) or the fibre web formed in step c1).
- the patterned fibre web formed in step c) or the fibre web formed in step c1) has a content of fibres, preferably biocompatible fibres, in an amount ranging from 12 to 70 wt.-%, more preferably from 15 to 65 wt.-% and most preferably from 18 to 60 wt.-%, based on the total weight of the patterned fibre web formed in step c) or the fibre web formed in step c1).
- the patterned fibre web formed in step c) or the fibre web formed in step c1) has a solvent content, e.g. water, ranging from 20 to 90 wt.-%, based on the total weight of the patterned fibre web formed in step c) or the fibre web formed in step c1).
- the patterned fibre web formed in step c) or the fibre web formed in step c1) has a solvent content, e.g. water, ranging from 30 to 88 wt.-%, more preferably from 35 to 85 wt.-% and most preferably from 40 to 82 wt.-%, based on the total weight of the patterned fibre web formed in step c) or the fibre web formed in step c1).
- a solvent content e.g. water
- the patterned fibre web is dried to obtain the crease patterned fibre article.
- Drying step d) can be carried out by any means known to the skilled person for decreasing the moisture content in a fibre web.
- drying step d) is carried out under vacuum or partial vacuum.
- drying step d) is carried out at a temperature ranging from 80 to 200°C, preferably from 85 to 180°C and most preferably from 90 to 150°C.
- drying step d) is carried out under vacuum (or partial vacuum) or a temperature ranging from 80 to 200°C, preferably from 85 to 180°C and most preferably from 90 to 150°C.
- drying step d) is carried out under vacuum (or partial vacuum) and a temperature ranging from 80 to 200°C, preferably from 85 to 180°C and most preferably from 90 to 150°C.
- the crease patterned fibre article is thus a dried crease patterned fibre article.
- the dried crease patterned fibre article preferably has a moisture content of ⁇ 12 wt.-%, more preferably of ⁇ 11 wt.-% and most preferably of ⁇ 10 wt.-%, based on the total weight of the crease patterned fibre article.
- the dried crease patterned fibre article has a moisture content ranging from 0.5 to 12 wt.-%, more preferably from 0.8 to 11 wt.-% and most preferably from 1 to 10 wt.-%, based on the total weight of the crease patterned fibre article.
- the (dried) crease patterned fibre article is separated from the crease patterning device.
- the method of the present invention thus preferably comprises a further step e) of separating the crease patterned fibre article from the crease patterning device.
- the method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, and e) separating the crease patterned fibre article from the crease patterning device.
- the (dried) crease patterned fibre article is separated from the crease patterning device and wire mesh.
- the alternative method of the present invention thus preferably comprises a further step e) of separating the crease patterned fibre article from the crease patterning device and wire mesh.
- the method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, and e) separating the crease patterned fibre article from the crease patterning device and wire mesh.
- the (dried) crease patterned fibre article is folded into a desired 3D shape.
- Such folding can be done by any method known by the skilled person. The folding is done along the creases of the crease patterned fibre article.
- the method of the present invention thus preferably comprises a further step f) of folding the crease patterned fibre article into a 3D shape.
- the method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, e) separating the crease patterned fibre article from the crease patterning device, and f) folding the crease patterned fibre article into a 3D shape.
- the alternative method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, e) separating the crease patterned fibre article from the crease patterning device and wire mesh, and f) folding the crease patterned fibre article into a 3D shape.
- the alternative method for preparing a crease patterned fibre article preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, and f) folding the crease patterned fibre article into a 3D shape.
- the crease patterned fibre article may be used as a scaffold for living cells to potentially substitute animal trials.
- the scaffold is thus a tissue scaffold such as for cardiovascular cells, e.g. endothelial cells, vascular smooth muscle cells, lymphatic endothelial cells, cardiomyocytes, and atherosclerosis cells, or skin cells, e.g. keratinocytes, melanocytes, Langerhans cells, and Merkel cells, or bone cells, e.g. osteoblasts, osteocytes, osteoclasts, and osteoprogenitor cells.
- the crease patterned fibre article may be also used as bio-tissue implant, organ substitute, organ regeneration (patch), tissue substitute or bone reinforcement.
- the crease patterned fibre article comprises cells and/or enzymes and/or pharmaceuticals to support the function of the article.
- the method of the present invention thus preferably comprises a further step g) of applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article.
- the method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, e) separating the crease patterned fibre article from the crease patterning device, f) folding the crease patterned fibre article into a 3D shape, and g) applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article.
- the alternative method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, e) separating the crease patterned fibre article from the crease patterning device and wire mesh, f) folding the crease patterned fibre article into a 3D shape, and g) applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article.
- the method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, e) separating the crease patterned fibre article from the crease patterning device, f) folding the crease patterned fibre article into a 3D shape, and g) applying enzymes onto at least one side of the crease patterned fibre article.
- the alternative method for preparing a crease patterned fibre article thus preferably comprises the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, d) drying the patterned fibre web to obtain the crease patterned fibre article, e) separating the crease patterned fibre article from the crease patterning device and wire mesh, f) folding the crease patterned fibre article into a 3D shape, and g) applying enzymes onto at least one side of the crease patterned fibre article.
- a patterned fibre article onto which cells and/or enzymes and/or pharmaceuticals are applied is typically sterilized before step g) of applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article is carried out.
- the cells and/or enzymes and/or pharmaceuticals are preferably applied in a carrier material.
- the carrier material can be any material known to be suitable for the intended use.
- the carrier material is selected from the group comprising gelatin, methylcellulose, alginate, agarose, fibrin, hyaluronic acid, K-carrageenan, polyethylene glycol) (PEG), polycaprolactone (PCL), matrigel, gelatin methacrylate, poloxamer, nanocellulose, peptide, silk fibroin and mixtures thereof.
- Such further step of drying is preferably carried out at under vacuum or partial vacuum.
- such further step of drying is carried out at a temperature ranging from 30 to 200°C, preferably from 35 to 180°C and most preferably from 40 to 150°C.
- such further step of drying is carried out under vacuum (or partial vacuum) or a temperature ranging from 30 to 200°C, preferably from 35 to 180°C and most preferably from 40 to 150°C.
- such further step of drying is carried out under vacuum (or partial vacuum) and a temperature ranging from 30 to 200°C, preferably from 35 to 180°C and most preferably from 40 to 150°C.
- step g) thus includes applying cells and enzymes onto at least one side of the crease patterned fibre article.
- the carrier material is preferably gelatin.
- the enzyme used for crosslinking the carrier material for example gelatin, is transglutaminase enzyme.
- the enzyme is used in amounts typically applied for crosslinking the carrier material used.
- the enzyme is used in an amount ranging from 0.01 to 30 vol.-%, based on the total amount of the carrier material, preferably from 0.05 to 20 vol.-% and most preferably from 0.1 to 15 vol.-%.
- the carrier material is gelatin and the enzyme is transglutaminase enzyme.
- the pharmaceuticals that are applied onto at least one side of the crease patterned fibre article are preferably selected from grow factors, adhesion proteins, chemotherapeutics, vaccines such as mRNA vaccines, proteins such as spike proteins, cell culture serum, peptides, antibiotics, antiinflammatory drugs, biomarkers and the like.
- the method for preparing a crease patterned fibre article may comprise a further step of cross-linking the carrier material in which cells and/or enzymes and/or pharmaceuticals are applied.
- Such step may be advantageous in order to further immobilize the crease patterned fibre article, preferably the crease patterned paper or paperboard.
- Such cross-linking of the carrier material can be carried out by using any cross-linking agent that is known for cross-linking the corresponding carrier material, provided that the carrier material is suitable to be cross-linked.
- the method for preparing a crease patterned fibre article comprises a further step of cross-linking the carrier material in which enzymes are applied.
- the cross-linking depending on the carrier material, can be carried out by using UV radiation (e.g. for the carrier material gelatin methacrylate) or thermal crosslinking (e.g. for the carrier material matrigel and poloxamer) or enzymes (e.g. for the carrier material gelatin).
- UV radiation e.g. for the carrier material gelatin methacrylate
- thermal crosslinking e.g. for the carrier material matrigel and poloxamer
- enzymes e.g. for the carrier material gelatin.
- Other suitable methods for cross-linking may use agents selected from calcium chloride, potassium chloride and the like.
- the cross-linking is carried out by using transglutaminase enzymes.
- the cross-linking of gelatin as carrier material is carried out by using transglutaminase enzymes.
- Such further step of cross-linking is preferably carried out at a temperature ranging from 30 to 100°C, preferably from 35 to 60°C and most preferably from 35 to 50°C.
- the further step of cross-linking is carried out at high relative humidity. For example, at a relative humidity of at least 90 %, preferably from 90 to 98 %, most preferably from 92 to 97 %. Additionally or alternatively, the further step of cross-linking is carried out in an atmosphere comprising from 3 to 6 vol.-% CO2. Additionally or alternatively, the further step of cross-linking is carried out for at least 10 min and/or at most 2 hours. For example, the further step of cross-linking is carried out for 10 min to 2 hours, preferably for 20 min to 90 min and most preferably for 20 min to 60 min.
- the present invention refers in another aspect to a crease patterned fibre article, preferably a crease patterned paper or paperboard, obtainable by the method for preparing a crease patterned fibre article, preferably a crease patterned paper or paperboard, as defined herein.
- the crease patterned fibre article is obtainable by a method comprising the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article, e) optionally separating the crease patterned fibre article from the crease patterning device, f) optionally folding the crease patterned fibre article into a 3D shape, and g) optionally applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article.
- the crease patterned fibre article preferably a crease patterned paper or paperboard
- a method comprising the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article, e) optionally separating the crease patterned fibre article from the crease patterning device and wire mesh, f) optionally folding the crease patterned fibre article into a 3D shape, and g) optionally applying cells and/or enzymes and/or pharmaceuticals onto at least one side of the crease patterned fibre article.
- the crease patterned fibre article is obtainable by a method comprising the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto one surface of the crease patterning device and filtrating the aqueous suspension to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article, e) optionally separating the crease patterned fibre article from the crease patterning device, f) optionally folding the crease patterned fibre article into a 3D shape, and g) applying enzymes onto at least one side of the crease patterned fibre article.
- the crease patterned fibre article preferably a crease patterned paper or paperboard
- a method comprising the steps of: a) providing a crease patterning device, b) providing an aqueous suspension comprising fibres, preferably biocompatible fibres, c1) depositing the aqueous suspension comprising fibres, preferably biocompatible fibres, onto a wire mesh and filtrating the aqueous suspension to form a fibre web, c2) patterning the fibre web by using a crease patterning device to form a patterned fibre web, and d) drying the patterned fibre web to obtain the crease patterned fibre article, e) optionally separating the crease patterned fibre article from the crease patterning device and wire mesh, f) optionally folding the crease patterned fibre article into a 3D shape, and g) applying enzymes onto at least one side of the crease patterned fibre article.
- the crease patterned fibre article preferably the crease patterned paper or paperboard
- the crease patterned fibre article preferably the crease patterned paper or paperboard
- the crease patterned fibre article, preferably the crease patterned paper or paperboard has a paperweight ranging from 30 to 50 g/m 2 , e.g. about 40 g/m 2 .
- the crease patterned fibre article is not particularly limited. However, it is preferred that the crease patterned fibre article is a packaging, design article, fabrics, bio-tissue implant, organ substitute, organ regeneration (patch), organ model, tissue substitute, tissue model, tissue scaffolds, cell growth support, cell maturing support or bone reinforcement.
- a crease patterned fibre article as a packaging, design article, fabrics, bio-tissue implant, organ substitute, organ regeneration (patch), organ model, tissue substitute, tissue model, tissue scaffolds, cell growth support, cell maturing support or bone reinforcement.
- the creased patterned fibre article is preferably obtainable by the method for preparing a crease patterned fibre article, preferably a crease patterned paper or paperboard, as defined herein.
- Fig. 1 shows the polymer moulds and pressure device used to deform the wire mesh
- Fig. 2 shows the resulting crease patterned paper
- Fig. 3 shows a copper wire that was used to create the wire Yoshimura pattern
- Fig. 4 shows a dried and folded sample
- Fig. 5 shows the mould made of PC
- Fig. 6 shows the depositing of the mould on top of the wet paper
- Fig. 7 shows the wet paper having the stamp of the mould
- Fig. 8 shows the positive and negative PLA moulds with the Miura pattern
- Fig. 9 shows the paper with the Miura pattern in the top (9A) and cross sectional view (9B).
- Wire steel mesh wire 60 warp wire/cm; 55 weft wire/cm; wire-diameter 0.060-0.065 mm,
- the fibres were suspended and hydrated at room temperature in 4 L of tap water in a plastic container of 6 L.
- the fibres were stirred for 10 min at 540 rpm. After stirring, the fibres were placed in a mixer container and were diluted with tap water to 5 L total volume. The fibre slurry was stirred constantly at 140 rpm.
- the elaboration of the sheet papers were performed according ISO 5269-2 norm on a Rapid Kothen sheet former. From the fibre slurry the desired amount was taken to form dry sheets of 40 g/m 2 . The fibres were further water suspended and diluted in the cylindrical vessel of the Rapid Kothen until a final volume of 6 L. The fibres were agitated using air-bubbles coming from the bottom of the column for 5 s followed by a vacuum dewatering step. The fibres which were distributed on the bottom of the apparatus and collected by the metallic wire mesh (steel top wire mesh supported by a bronze supported screen) were dried. The drying step is explained in each of the following examples. Examples
- the wire steel mesh was slowly pressed in between the positive and negative 3D printed polymer moulds, made previously in a Formalabs 3D printer with Dental SG material. Polymer moulds and pressure device used to deform the wire mesh are shown in Fig. 1.
- the wire was used as the base wire for the elaboration of the paper on the Rapid Kothen.
- the wet paper mounted on the wire was put in the oven at 120 °C for 15 minutes.
- Fig. 2 shows the resulting crease patterned paper.
- the Yoshimura pattern retrieved with Google, was printed out on paper. This paper was used as a template to puncture holes at the pattern nodes into the mesh by means of a stitching awl. Then, a copper wire was used to weave the pattern by pushing the wire through the punched holes and tightening to create the wire pattern as shown in Fig. 3.
- the wire mesh with the pattern was then used for paper forming on the Rapid Kothen.
- the obtained sheet of 40 g/m 2 was couched to a supporting paperboard and oven dried at 90°C.
- the dried and folded sample is shown in Fig. 4.
- the mould was printed on the vomrker S5 printer with PC polymer and is shown in Fig. 5.
- the PC mould provided a Miura pattern.
- the wet paper made previously on the Rapid Kothen was transferred to a wet mat and the before mentioned mould was deposited on top of the wet paper as shown in Fig. 6.
- the mould was pressed on the wet paper at 5 bars on the sheet press.
- the wet paper had the stamp of the mould, i.e. a 2D (Miura) crease pattern, as shown in Fig. 7.
- the paper obtained after drying is 40 g/m 2 . Posterior to this step the paper was folded via positive and negative moulds and the 3D crease pattern was formed.
- the sample was pressed as described in numeral one.
- the wet pressed paper and mould were together transferred to the sheet drying section. Posterior to the drying process, the paper was folded via positive and negative moulds and the 3D crease pattern was formed.
- PLA positive and negative moulds with the Miura pattern were 3D printed on the Ultimaker S5 (shown in Fig. 8).
- the pattern was transferred to the paper on an already formed wetted paper.
- the process consisted of putting the paper between the two moulds and start slowly the pressure of the moulds until both positive and negative moulds were aligned and together. After this, the paper was dried at 100 ° C for 15 min in the oven.
- the paper with the Miura pattern is shown in Fig. 9 A and B (cross section area of the 3D crease patterned paper).
- Example 5 3D crease patterning on paper
- the fibre materials listed in Table 1 were used to produce the creased patterned paper.
- Papers were mainly produced using a Rapid Kothen sheet former from Gerd Senkel and a dynamic sheet former (DSF) from CanPa.
- the Rapid Kothen system triggers a typical stochastic distribution of the fibers in normal use, whereas the DSF can be employed to induce fiber alignment by means of a rotational mesh in the form of a cylinder.
- DSF dynamic sheet former
- Rapid Kothen sheet former ISO 5269-2 norm was employed for the paper sheet production.
- Waterborne diluted fibres 40g I L were suspended in a cylindrical vessel and filled up until the final volume of 6 liters with water. The fibres were agitated using airbubbling through the vessel for 5s followed by dewatering by vacuum. The fibres which were distributed on the bottom of the apparatus and collected by a metallic wire mesh (bronze top mesh supported by steel grid) into a wet mat, were transferred to a carrier board for further dewatering and drying.
- Dynamic sheet former A suspension of 0.23 wt % of solid content made with fibres and water was sprayed with a flow rate of 9.9 L/min on a rotatory cylindrical mesh with a speed of 1400 min-1 . The excess of water was removed by centrifugal forces. The formed sheet was transferred to a carrier board where the wire was removed and the formed sheet was dewatered and dried. The formed sheet was dewatered twice using pressure and it was dried in a drum drier at 60 °C.
- the mechanical properties in MD and CD were first evaluated for the dry papers. All samples were measured under controlled conditions (50 % RH and 23 °C) according to the ISO 187 norm. The grammage was measured using an analytical balance according to the ISO 536 norm. The thickness of the papers was measured with a Lorentzen & Wettre micrometer according with the EN ISO 12625- 3 norm. The specimen dimensions for the samples elaborated with the Rapid Kothen and DSF were 15 mm of width x 150 mm of length (clamping length 100 mm). For each measurement 10 specimens were evaluated in a Lorentzen & Wettre tensile tester using a speed for the tensile test of 10 mm/min. DSF sheets were evaluated in MD and CD while the samples produced with the Rapid Kothen were evaluated in random direction.
- Table 2 shows the values of strain at break, tensile strength and E- Modulus for each of the assessed paper sheets.
- Method B wet forming: The origami pattern was generated in-situ during the wet paper forming process onto a wire mesh containing the origami crease pattern in the paper-sheet former's draining section.
- Two approaches were used to produce the patterned wire mesh: The first variant employs a 3D printed origami shaped mesh (DentalSG, Formlabs) which was mounted on top of a standard wire mesh.
- the 3D pattern was embossed into a standard wire mesh using 3D patterned stamps similar to the one used in method A.
- the sieved paper was dried on the modified mesh in the oven for 15 min at 120 °C. Thereafter the patterned paper was removed from the wire mesh.
- the structural stability of the crease patterned paper was fixed by the addition of hydrogel.
- the crease patterned and folded papers were mounted on a 3D printed form with the same origami pattern and wetted with 20 pl of 10 %w/v gelatin (Porcine skin, Sigma Aldrich) solution including 1 % v/v transglutaminase enzyme.
- the assembly was allowed to enzymatically crosslink in a conventional cell culture incubator at 37°C 5 % CO2 and 95 % RH for 30 minutes.
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Abstract
Description
Claims
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP22183300 | 2022-07-06 | ||
| EP22192932 | 2022-08-30 | ||
| PCT/EP2023/068546 WO2024008794A1 (en) | 2022-07-06 | 2023-07-05 | In-situ patterning of fibre articles |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP4551760A1 true EP4551760A1 (en) | 2025-05-14 |
Family
ID=87157953
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP23738729.5A Pending EP4551760A1 (en) | 2022-07-06 | 2023-07-05 | In-situ patterning of fibre articles |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US20260002324A1 (en) |
| EP (1) | EP4551760A1 (en) |
| AU (1) | AU2023302064A1 (en) |
| CA (1) | CA3261141A1 (en) |
| WO (1) | WO2024008794A1 (en) |
Families Citing this family (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| FI20245696A1 (en) * | 2024-05-31 | 2025-12-01 | Teknologian Tutkimuskeskus Vtt Oy | Press formed packaging |
Family Cites Families (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4698257A (en) * | 1982-11-08 | 1987-10-06 | The Celotex Corporation | Wet-end molded product |
| GB2309039B (en) * | 1996-01-12 | 1999-07-07 | Portals Ltd | Security paper |
| KR102540278B1 (en) * | 2016-07-29 | 2023-06-08 | 킴벌리-클라크 월드와이드, 인크. | patterned tissue products |
-
2023
- 2023-07-05 US US18/879,838 patent/US20260002324A1/en active Pending
- 2023-07-05 WO PCT/EP2023/068546 patent/WO2024008794A1/en not_active Ceased
- 2023-07-05 CA CA3261141A patent/CA3261141A1/en active Pending
- 2023-07-05 EP EP23738729.5A patent/EP4551760A1/en active Pending
- 2023-07-05 AU AU2023302064A patent/AU2023302064A1/en active Pending
Also Published As
| Publication number | Publication date |
|---|---|
| AU2023302064A1 (en) | 2025-02-20 |
| CA3261141A1 (en) | 2024-01-11 |
| US20260002324A1 (en) | 2026-01-01 |
| WO2024008794A1 (en) | 2024-01-11 |
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Inventor name: MELO RODRIGUEZ, GABRIELA Inventor name: SCHOELKOPF, JOACHIM Inventor name: GULLO, ROSARIO MAURIZIO |