WO2023232572A1 - Rod-based wood materials - Google Patents

Rod-based wood materials Download PDF

Info

Publication number
WO2023232572A1
WO2023232572A1 PCT/EP2023/063869 EP2023063869W WO2023232572A1 WO 2023232572 A1 WO2023232572 A1 WO 2023232572A1 EP 2023063869 W EP2023063869 W EP 2023063869W WO 2023232572 A1 WO2023232572 A1 WO 2023232572A1
Authority
WO
WIPO (PCT)
Prior art keywords
wood
split
rods
densified
wood rods
Prior art date
Application number
PCT/EP2023/063869
Other languages
French (fr)
Inventor
Thomas Schnider
Ingo BURGERT
Original Assignee
Eth Zurich
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Eth Zurich filed Critical Eth Zurich
Publication of WO2023232572A1 publication Critical patent/WO2023232572A1/en

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/08Moulding or pressing
    • B27N3/18Auxiliary operations, e.g. preheating, humidifying, cutting-off
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27MWORKING OF WOOD NOT PROVIDED FOR IN SUBCLASSES B27B - B27L; MANUFACTURE OF SPECIFIC WOODEN ARTICLES
    • B27M3/00Manufacture or reconditioning of specific semi-finished or finished articles
    • B27M3/0013Manufacture or reconditioning of specific semi-finished or finished articles of composite or compound articles
    • B27M3/0026Manufacture or reconditioning of specific semi-finished or finished articles of composite or compound articles characterised by oblong elements connected laterally
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N1/00Pretreatment of moulding material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N3/00Manufacture of substantially flat articles, e.g. boards, from particles or fibres
    • B27N3/02Manufacture of substantially flat articles, e.g. boards, from particles or fibres from particles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27NMANUFACTURE BY DRY PROCESSES OF ARTICLES, WITH OR WITHOUT ORGANIC BINDING AGENTS, MADE FROM PARTICLES OR FIBRES CONSISTING OF WOOD OR OTHER LIGNOCELLULOSIC OR LIKE ORGANIC MATERIAL
    • B27N5/00Manufacture of non-flat articles
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B27WORKING OR PRESERVING WOOD OR SIMILAR MATERIAL; NAILING OR STAPLING MACHINES IN GENERAL
    • B27LREMOVING BARK OR VESTIGES OF BRANCHES; SPLITTING WOOD; MANUFACTURE OF VENEER, WOODEN STICKS, WOOD SHAVINGS, WOOD FIBRES OR WOOD POWDER
    • B27L7/00Arrangements for splitting wood

Definitions

  • the present invention relates to a method for the production of wood rods for the fabrication of high performance wood-based products.
  • Wood is becoming an increasingly important building material due to its renewability and CO2 storage capacity. This results in high demand of the dominantly used wood species (e.g. spruce, pine (in Europe).
  • the share of hardwood species which are far less utilized in the construction sector, is continuously increasing in central European forests and in particular spruce monocultures are destroyed by draught and bark beetles, due to impacts of climate change.
  • spruce pine
  • spruce monocultures are destroyed by draught and bark beetles, due to impacts of climate change.
  • common products like Glulam and cross-laminated timber are predominantly based on the softwood species currently under pressure.
  • the problem of efficient use of the wood material calls for new inventions.
  • the prior art (WO 2012042027 A1) describes a method for the production of a wood composite with reduced density and lower weight but without loss in rigidity and strength.
  • the method for the production of the wood composites includes the production of macro fibres which are aligned in a mould, covered with a glue and pressed together in a press giving the wood composite product.
  • the glue is foamed up and surrounds the macro fibres.
  • the macro fibres are produced through a cutting process of the tree.
  • the objective of the present invention is to provide means and methods to produce a high performance wood product, based on a more efficient use of the wood material and more diverse use of wood species.
  • a first aspect of the invention relates to a method for the production of a densified wood product comprising a. provision of a wood material, splitting parallel to the grain, yielding split wood rods, b. a production step, wherein the split wood rods are being placed into a mould, contacting a binder and the split wood rods are being pressed against said mould in a pressing step, yielding said densified wood product.
  • a second aspect of the invention relates to a densified wood comprising split wood rods, wherein the split wood rods are characterised in that they are raw and exactly aligned with the fibre direction (no cut fibres).
  • references to “about” a value or parameter herein includes (and describes) variations that are directed to that value or parameter per se. For example, description referring to “about X” includes description of “X.”
  • hardwood species in the context of the present specification relates to wood from angiosperm trees, including ash, hornbeam, poplar, willow, basswood, birch, beech, buckeye, chestnut, hazel, walnut, elm, oak, maple, alder, plane tree, balsa, eucalyptus, paulownia.
  • softwood species in the context of the present specification relates to wood from gymnosperm trees, including cypress, Douglas-fir, fir, hemlock, larch, pine, spruce, yew, and cedar.
  • radial board in the context of the present specification relates to the product of the initial splitting step, wherein these boards are irregularly shaped, elongated boards, which were split off the tree trunk segment along its grain.
  • wood rod in the context of the present specification relates to the product of additional splitting steps, wherein these wood rods are elongated rods of certain dimensions, which were split off the radial boards along its grain.
  • ply assembly in the context of the present specification relates to two or more layers of wood rods added on top of each other, wherein each additional ply is rotated through 90° compared to the previous layer.
  • aspect ratio in the context of the present specification relates to the ratio of length/width of a wood rod element.
  • raw in the context of the present specification relates to any wood material, including wood rods, not being sawn and processed so that no cutting surface and no truncated fibres are present.
  • a first aspect of the invention relates to a method for the production of a densified wood product comprising a. provision of a wood material, splitting parallel to the grain, yielding split wood rods, b. a production step, wherein the split wood rods are being placed into a mould, contacting a binder and the split wood rods are being pressed against said mould in a pressing step, yielding said densified wood product.
  • the wood material is split into radial boards in an initial splitting step.
  • the radial boards are split off a mostly debarked tree trunk segment along the grain of the tree similar to the traditional production of wood shingles.
  • the way of splitting the radial boards off the tree trunk results in obtaining clean and raw radial boards.
  • the radial boards are split into wood rods in further splitting steps.
  • Each radial board is split along the grain into several wood rods. Equally to the radial boards, the splitting processes result in raw, clean wood rods. Furthermore, the rod’s fibre are exactly aligned with the fibre direction (no cut fibres) as they are split along the grain, which results in better properties of the product.
  • the splitting technique allows for an efficient use of the full tree trunk without losing potential wood product e.g. in sawdust and side products.
  • the split wood rods are characterised in that the width is 3 mm to 25 mm, particularly 5 mm to 20 mm, more particularly 8 mm to 15 mm.
  • a thicker wood rod is more stable towards breakings than a thinner rod, so that longer wood rods can be produced if their width is between 5 mm to 25 mm.
  • the split wood rods are characterised in that the height is 3 mm to 25 mm, particularly 5 mm to 20 mm, more particularly 8 mm to 15 mm.
  • the split wood rods are characterised in that the length is 50 cm to 100 cm.
  • Wood rods with a length of around 100 cm have better mechanical performance in the pressed wood product due to a higher length and a higher aspect ratio.
  • the split wood rods are processed straight or curved.
  • the tree trunks contains tight knots inside the trunk resulting in irregular growing of the wood and thus curved wood rods when split.
  • the aspect ratio of the wood rods is around 80 to 1 .
  • the rods are dried.
  • the split wood rods are dried in advance to the pressing step, wherein the drying is performed according to common procedures known by the person skilled in the art (see a).
  • the densified wood product is produced in the production step, wherein the wood rods are placed in a mould, contacted with a binder and pressed against the mould in a pressing step, or are continuously processed as known for fibre- or particle board production.
  • the production and pressing step are performed according to common procedures known by the person skilled in the art (see b).
  • the binder, contacting the split wood rods is polymer based and/or and/or mineral based.
  • the binder is selected from starch, tannins, micro fibrillated cellulose (MFC), nanocrystalline cellulose (NCC), methylcellulose, polyethylene polymers (PE), polypropylene polymers (PP), polymethylmethacrylate polymers (PMMA), polylactic acid polymers (PLA), epoxy polymers, melamine urea formaldehyde polymers (MUF), phenol- resorcinol-formaldehyde (PRF), polyurethanes (PUR), urea formaldehyde polymers (UF), cement, ceramic or gypsum.
  • MFC micro fibrillated cellulose
  • NCC nanocrystalline cellulose
  • methylcellulose methylcellulose
  • PE polyethylene polymers
  • PP polypropylene polymers
  • PMMA polymethylmethacrylate polymers
  • PLA polylactic acid polymers
  • epoxy polymers melamine urea formaldehyde polymers (MUF), phenol- resorcinol-formaldehyde (PRF), polyurethanes
  • the binder is selected from melamine urea formaldehyde polymers (MUF), phenol resorcinol formaldehyde (PRF), polyurethane (PUR), or cement.
  • MAF melamine urea formaldehyde polymers
  • PRF phenol resorcinol formaldehyde
  • PUR polyurethane
  • the binder is bio-based and recyclable.
  • the split wood rods are ordered in said mould in the same direction or in ply assemblies.
  • a uniform alignment of the wood rods leads to a densified wood product with higher mechanical properties in the direction of alignment (Fig. 5).
  • the densified wood product is a wood board or a wood beam, wherein the wood board or beam is straight or curved.
  • the wood roads can be shaped into curved wood boards.
  • a second aspect of the invention relates to a densified wood product comprising split wood rods, wherein the split wood rods are characterised in that they are raw and exactly aligned with the fibre direction (no cut fibres).
  • the densified wood product comprising split wood rods, wherein the split wood rods are characterised in that the width is 8 mm to 15 mm and the height is 8 mm to 15 mm.
  • the densified wood product comprising split wood rods, wherein the split wood rods are characterised in that the length is 50 to 100 cm
  • the densified wood product is characterised in that the content of split wood rods from one or more hardwood species is 51% to 100%, particularly 70 % to 100%.
  • wood hardwood species make the densified product be more aligned with healthy and more sustainable forests of the future. Some hardwood species are not as endangered by dimate change and draught as commonly used softwood species so that they provide a high quality alternative for wood products used in construction.
  • Fig. 1 shows a side view of radial boards of ash wood after the initial splitting step.
  • Fig. 2 shows a side view of the wood rods of ash wood after further splitting of the radial boards.
  • Fig. 3 shows wood rods of spruce assembled in a mould before adding a binder and pressing.
  • Fig. 4 shows the cross-section of a densified wood product consisting of spruce rods after pressing it to a height of -28 mm and cutting into a beam of -50mm width.
  • Fig. 5 shows force deflection curve of a densified wood product sample produced from split spruce wood rods and MUF resins, wherein the spruce wood rods are optimally aligned.
  • the specimen with a density of 676 kg/m 3 reached a bending strength of 85.5 MPa and a Young's modulus of 10400 MPa
  • Wood rods are split in a two-step process from stem segments.
  • the length of the stem segment determines the length of the rods.
  • radial boards are split along the radial direction (along the rays).
  • rods are produced by splitting the radial boards in the tangential direction.
  • Hydraulic splitting devices as used for the industrial shingle production, can be applied for the splitting .
  • Rods with a moisture content of -8-12 % are aligned in parallel and layered in a mould and MUF resin is added to each layer.
  • the composite is pressed at ambient temperature until the resin has cured. Density of the composites can be adjusted by the applied pressure.
  • Example 3 Three-point bending test to measure mechanical properties of the densified wood product
  • Such produced wood-based products can be used as beams (such as Parallam) or as panel elements in flat or curved shape.

Landscapes

  • Life Sciences & Earth Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Wood Science & Technology (AREA)
  • Forests & Forestry (AREA)

Abstract

Wood is becoming an increasingly important building material due to its renewability and CO2 storage capacity. This results in high demand of the dominantly used wood species (e.g. spruce, pine). At the same, the share of hardwood species, which are far less utilized in the construction sector, is continuously increasing in central European forests and in particular spruce monocultures are destroyed by draught and bark beetles, due to climate changes. Hence in the near future new wood based products are needed, since common products like Glulam and cross-laminated timber are predominantly based on the softwood species currently under pressure. Moreover, the material yield in saw timber production is very low for softwoods (~60%) and is even lower for hardwoods. The invention is reviving the traditional method for shingle production transferring it in the context of wood based products. This is a non-cutting process, which makes use of the easy fissility of wood parallel to the grain. In contrast to shingle production it serves for the production of up to ~1 m rods in a two-step process.

Description

Rod-based wood materials
The present invention relates to a method for the production of wood rods for the fabrication of high performance wood-based products.
Background of the Invention
Wood is becoming an increasingly important building material due to its renewability and CO2 storage capacity. This results in high demand of the dominantly used wood species (e.g. spruce, pine (in Europe). At the same time, the share of hardwood species, which are far less utilized in the construction sector, is continuously increasing in central European forests and in particular spruce monocultures are destroyed by draught and bark beetles, due to impacts of climate change. Hence in the near future new wood based products are needed, since common products like Glulam and cross-laminated timber are predominantly based on the softwood species currently under pressure. Besides the demand in terms of timber provision also the problem of efficient use of the wood material calls for new inventions.
The prior art (WO 2012042027 A1) describes a method for the production of a wood composite with reduced density and lower weight but without loss in rigidity and strength. The method for the production of the wood composites includes the production of macro fibres which are aligned in a mould, covered with a glue and pressed together in a press giving the wood composite product. The glue is foamed up and surrounds the macro fibres. The macro fibres are produced through a cutting process of the tree.
In Switzerland, roughly only 60% of a processed stem finally ends in sawn timber and for the rest of the material secondary use needs to be considered (e.g. particle boards, cardboard). Hence, the invention for a new wood based product should be based on a non-cutting process for wood element production.
Based on the above-mentioned state of the art, the objective of the present invention is to provide means and methods to produce a high performance wood product, based on a more efficient use of the wood material and more diverse use of wood species. This objective is attained by the subject-matter of the independent claims of the present specification, with further advantageous embodiments described in the dependent claims, examples, figures and general description of this specification.
Summary of the Invention
A first aspect of the invention relates to a method for the production of a densified wood product comprising a. provision of a wood material, splitting parallel to the grain, yielding split wood rods, b. a production step, wherein the split wood rods are being placed into a mould, contacting a binder and the split wood rods are being pressed against said mould in a pressing step, yielding said densified wood product.
A second aspect of the invention relates to a densified wood comprising split wood rods, wherein the split wood rods are characterised in that they are raw and exactly aligned with the fibre direction (no cut fibres).
Terms and definitions
For purposes of interpreting this specification, the following definitions will apply and whenever appropriate, terms used in the singular will also include the plural and vice versa. In the event that any definition set forth below conflicts with any document incorporated herein by reference, the definition set forth shall control.
The terms “comprising,” “having,” “containing,” and “including,” and other similar forms, and grammatical equivalents thereof, as used herein, are intended to be equivalent in meaning and to be open-ended in that an item or items following any one of these words is not meant to be an exhaustive listing of such item or items, or meant to be limited to only the listed item or items. For example, an article “comprising” components A, B, and C can consist of (i.e., contain only) components A, B, and C, or can contain not only components A, B, and C but also one or more other components. As such, it is intended and understood that “comprises” and similar forms thereof, and grammatical equivalents thereof, include disclosure of embodiments of “consisting essentially of” or “consisting of.”
Where a range of values is provided, it is understood that each intervening value, to the tenth of the unit of the lower limit, unless the context clearly dictates otherwise, between the upper and lower limit of that range and any other stated or intervening value in that stated range, is encompassed within the disclosure, subject to any specifically excluded limit in the stated range. Where the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included in the disclosure.
Reference to “about” a value or parameter herein includes (and describes) variations that are directed to that value or parameter per se. For example, description referring to “about X” includes description of “X.”
As used herein, including in the appended claims, the singular forms “a,” “or,” and “the” include plural referents unless the context clearly dictates otherwise.
The term hardwood species in the context of the present specification relates to wood from angiosperm trees, including ash, hornbeam, poplar, willow, basswood, birch, beech, buckeye, chestnut, hazel, walnut, elm, oak, maple, alder, plane tree, balsa, eucalyptus, paulownia. The term softwood species in the context of the present specification relates to wood from gymnosperm trees, including cypress, Douglas-fir, fir, hemlock, larch, pine, spruce, yew, and cedar.
The term radial board in the context of the present specification relates to the product of the initial splitting step, wherein these boards are irregularly shaped, elongated boards, which were split off the tree trunk segment along its grain.
The term wood rod in the context of the present specification relates to the product of additional splitting steps, wherein these wood rods are elongated rods of certain dimensions, which were split off the radial boards along its grain.
The term ply assembly in the context of the present specification relates to two or more layers of wood rods added on top of each other, wherein each additional ply is rotated through 90° compared to the previous layer.
The term aspect ratio in the context of the present specification relates to the ratio of length/width of a wood rod element.
The term raw in the context of the present specification relates to any wood material, including wood rods, not being sawn and processed so that no cutting surface and no truncated fibres are present.
Detailed Description of the Invention
A first aspect of the invention relates to a method for the production of a densified wood product comprising a. provision of a wood material, splitting parallel to the grain, yielding split wood rods, b. a production step, wherein the split wood rods are being placed into a mould, contacting a binder and the split wood rods are being pressed against said mould in a pressing step, yielding said densified wood product.
In certain embodiments, the wood material is split into radial boards in an initial splitting step.
The radial boards are split off a mostly debarked tree trunk segment along the grain of the tree similar to the traditional production of wood shingles. The way of splitting the radial boards off the tree trunk results in obtaining clean and raw radial boards.
In certain embodiments, the radial boards are split into wood rods in further splitting steps.
Each radial board is split along the grain into several wood rods. Equally to the radial boards, the splitting processes result in raw, clean wood rods. Furthermore, the rod’s fibre are exactly aligned with the fibre direction (no cut fibres) as they are split along the grain, which results in better properties of the product.
Contrary to sewing processes to obtain wood pieces, the splitting technique allows for an efficient use of the full tree trunk without losing potential wood product e.g. in sawdust and side products.
In certain embodiments, the split wood rods are characterised in that the width is 3 mm to 25 mm, particularly 5 mm to 20 mm, more particularly 8 mm to 15 mm.
In the splitting process, a thicker wood rod is more stable towards breakings than a thinner rod, so that longer wood rods can be produced if their width is between 5 mm to 25 mm.
In certain embodiments, the split wood rods are characterised in that the height is 3 mm to 25 mm, particularly 5 mm to 20 mm, more particularly 8 mm to 15 mm.
In certain embodiments, the split wood rods are characterised in that the length is 50 cm to 100 cm.
Wood rods with a length of around 100 cm have better mechanical performance in the pressed wood product due to a higher length and a higher aspect ratio.
In certain embodiments, the split wood rods are processed straight or curved.
For example the tree trunks contains tight knots inside the trunk resulting in irregular growing of the wood and thus curved wood rods when split.
In certain embodiments, the aspect ratio of the wood rods is around 80 to 1 .
In certain embodiments, the rods are dried.
The split wood rods are dried in advance to the pressing step, wherein the drying is performed according to common procedures known by the person skilled in the art (see a).
In certain embodiments, the densified wood product is produced in the production step, wherein the wood rods are placed in a mould, contacted with a binder and pressed against the mould in a pressing step, or are continuously processed as known for fibre- or particle board production.
The production and pressing step are performed according to common procedures known by the person skilled in the art (see b).
In certain embodiments the binder, contacting the split wood rods, is polymer based and/or and/or mineral based.
In certain embodiments the binder is selected from starch, tannins, micro fibrillated cellulose (MFC), nanocrystalline cellulose (NCC), methylcellulose, polyethylene polymers (PE), polypropylene polymers (PP), polymethylmethacrylate polymers (PMMA), polylactic acid polymers (PLA), epoxy polymers, melamine urea formaldehyde polymers (MUF), phenol- resorcinol-formaldehyde (PRF), polyurethanes (PUR), urea formaldehyde polymers (UF), cement, ceramic or gypsum.
In certain embodiments, the binder is selected from melamine urea formaldehyde polymers (MUF), phenol resorcinol formaldehyde (PRF), polyurethane (PUR), or cement.
In certain embodiments, the binder is bio-based and recyclable.
The use of bio-based and recyclable binders will result in a more sustainable, ecological and healthier fabrication of wood products.
In certain embodiments, the split wood rods are ordered in said mould in the same direction or in ply assemblies.
A uniform alignment of the wood rods leads to a densified wood product with higher mechanical properties in the direction of alignment (Fig. 5).
In certain embodiments, the densified wood product is a wood board or a wood beam, wherein the wood board or beam is straight or curved.
Depending on the slenderness of the wood rods, the wood roads can be shaped into curved wood boards. The higher the slenderness, the easier they can be shaped. Fabrication of straight as well as curved wood products allow for a more versatile spectrum of use.
A second aspect of the invention relates to a densified wood product comprising split wood rods, wherein the split wood rods are characterised in that they are raw and exactly aligned with the fibre direction (no cut fibres).
The use of cleanly split wood rods characterised by a surface and ideal fibre orientation results in a densified wood product with similar or higher strength than wood products from sawn wood.
In certain embodiments, the densified wood product, comprising split wood rods, wherein the split wood rods are characterised in that the width is 8 mm to 15 mm and the height is 8 mm to 15 mm.
In certain embodiments, the densified wood product, comprising split wood rods, wherein the split wood rods are characterised in that the length is 50 to 100 cm
In certain embodiments, the densified wood product is characterised in that the content of split wood rods from one or more hardwood species is 51% to 100%, particularly 70 % to 100%.
The use of an increased amount of wood hardwood species makes the densified product be more aligned with healthy and more sustainable forests of the future. Some hardwood species are not as endangered by dimate change and draught as commonly used softwood species so that they provide a high quality alternative for wood products used in construction.
Description of the Figures
Fig. 1 shows a side view of radial boards of ash wood after the initial splitting step.
Fig. 2 shows a side view of the wood rods of ash wood after further splitting of the radial boards.
Fig. 3 shows wood rods of spruce assembled in a mould before adding a binder and pressing.
Fig. 4 shows the cross-section of a densified wood product consisting of spruce rods after pressing it to a height of -28 mm and cutting into a beam of -50mm width.
Fig. 5 shows force deflection curve of a densified wood product sample produced from split spruce wood rods and MUF resins, wherein the spruce wood rods are optimally aligned. The specimen with a density of 676 kg/m3 reached a bending strength of 85.5 MPa and a Young's modulus of 10400 MPa
Examples
Example 1: Production of wood rods
Wood rods are split in a two-step process from stem segments. The length of the stem segment determines the length of the rods. At first radial boards are split along the radial direction (along the rays). Afterwards, rods are produced by splitting the radial boards in the tangential direction. Hydraulic splitting devices, as used for the industrial shingle production, can be applied for the splitting .
Example 2: Production of the densified wood product
Rods with a moisture content of -8-12 % are aligned in parallel and layered in a mould and MUF resin is added to each layer. The composite is pressed at ambient temperature until the resin has cured. Density of the composites can be adjusted by the applied pressure.
Example 3: Three-point bending test to measure mechanical properties of the densified wood product
A specimen, produced from spruce wood rods bound with MUF (length: 503 mm width -48 mm, height -28 mm), was loaded in a standard 3-point bending test. The specimen with a density of 676 kg/m3 reached a bending strength of 85.5 MPa and a Young's modulus of 10400 MPa. Example 4: Application of densified wood
Such produced wood-based products can be used as beams (such as Parallam) or as panel elements in flat or curved shape.
List of references a) Trubswetter T. (2006) Holztrocknung. Hanser Fachbuchverlag, ISBN 3-446-40477-5 b) Paulitsch M., Barbu, M.C. (2015) Holzwerkstoffe der Moderne. DRW Verlag Weinbrenner GmbH & Co. KG, ISBN 978-3-87181-891-2

Claims

Claims
1 . A method for the production of a densified wood product, comprising a. provision of a wood material, splitting parallel to the grain, yielding split wood rods, b. a production step, wherein the split wood rods are being placed into a mould, contacting a binder and the split wood rods are being pressed against said mould in a pressing step, yielding said densified wood product
2. The method according to claim 1 , wherein the wood material is split into radial boards in an initial splitting step.
3. The method according to any of the preceding claims, wherein the radial boards are split into wood rods in further splitting steps.
4. The method according to any of the preceding claims, wherein the split wood rods are characterised in that the width is 3 mm to 25 mm, particularly 5 mm to 20 mm, more particularly 8 mm to 15 mm and/or the height is 3 mm to 25 mm, particularly 5 mm to 20 mm, more particularly 8 mm to 15 mm.
5. The method according to any of the preceding claims, wherein the split wood rods are characterised in that the length is 50 to 100 cm.
6. The method according to any of the preceding claims, wherein the aspect ratio of fibres to wood rods is around 80 to 1 .
7. The method according to any of the preceding claims, wherein the production step is provided with a mix of split wood rods from different softwood and/or hardwood species.
8. The method according to any of the preceding claims, wherein the binder contacting the split wood rods, is polymer based and/or mineral based, particularly polymer based.
9. The method according to claim 8, wherein the binder is selected from starch, tannins, micro fibrillated cellulose (MFC), nanocrystalline cellulose (NCC), methylcellulose, polyethylene polymers (PE), polypropylene polymers (PP), polymethylmethacrylate polymers (PMMA), polylactic acid polymers (PLA), epoxy polymers, melamine urea formaldehyde polymers (MUF), phenol-resorcinol-formaldehyde (PRF), polyurethanes (PUR) or urea formaldehyde polymers (UF), cement, ceramic or gypsum, more particularly from melamine urea formaldehyde polymers (MUF), phenol resorcinol formaldehyde (PRF), polyurethane (PUR), cement, or gypsum.
10. The method according to any of the preceding claims, wherein all split wood rods are ordered in said mould in the same direction or in ply assemblies.
11 . The method according to any of the preceding claims, wherein the densified wood product is a wood board or a wood beam and wherein the wood board or beam is straight or curved.
12. A densified wood product, in particular produced by the method according to claims 1 to 11 , comprising split wood rods, wherein the split wood rods are characterised in that the width is 8 mm to 15 mm and the height is 8 mm to 15 mm.
13. The densified wood product, in particular produced by the method according to claims 1 to 11 , comprising split wood rods, wherein the split wood rods are characterised in that the length is 50 to 100 cm.
14. A densified wood product in particular produced by the method according to claims 1 to 11 , comprising split wood rods, wherein the split wood rods are characterised in that they are raw.
15. The densified wood product according to claim 13, wherein the densified wood product is characterised in that the content of split wood rods from one or more hardwood species is 51% to 100%, particularly 70% to 100%.
PCT/EP2023/063869 2022-05-30 2023-05-24 Rod-based wood materials WO2023232572A1 (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
EP22176100.0A EP4286123A1 (en) 2022-05-30 2022-05-30 Rod-based wood materials
EP22176100.0 2022-05-30

Publications (1)

Publication Number Publication Date
WO2023232572A1 true WO2023232572A1 (en) 2023-12-07

Family

ID=82156610

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2023/063869 WO2023232572A1 (en) 2022-05-30 2023-05-24 Rod-based wood materials

Country Status (2)

Country Link
EP (1) EP4286123A1 (en)
WO (1) WO2023232572A1 (en)

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4711689A (en) * 1983-11-23 1987-12-08 Commonwealth Scientific And Industrial Research Organization Process for reconsolidated wood production
EP0259069A2 (en) * 1986-09-03 1988-03-09 Macmillan Bloedel Limited Waferboard lumber
WO2012042027A1 (en) 2010-10-01 2012-04-05 Doka Industrie Gmbh Wood composite material
EP3543000A1 (en) * 2018-03-21 2019-09-25 EMPA Eidgenössische Materialprüfungs- und Forschungsanstalt Manufacturing method of shaped multi-layer plant-fibre based components

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4711689A (en) * 1983-11-23 1987-12-08 Commonwealth Scientific And Industrial Research Organization Process for reconsolidated wood production
EP0259069A2 (en) * 1986-09-03 1988-03-09 Macmillan Bloedel Limited Waferboard lumber
WO2012042027A1 (en) 2010-10-01 2012-04-05 Doka Industrie Gmbh Wood composite material
EP3543000A1 (en) * 2018-03-21 2019-09-25 EMPA Eidgenössische Materialprüfungs- und Forschungsanstalt Manufacturing method of shaped multi-layer plant-fibre based components

Non-Patent Citations (2)

* Cited by examiner, † Cited by third party
Title
PAULITSCH M.BARBU, M.C.: "Holzwerkstoffe der Moderne", 2015, DRW VERLAG WEINBRENNER
TRUBSWETTER T: "Holztrocknung", 2006, HANSER FACHBUCHVERLAG

Also Published As

Publication number Publication date
EP4286123A1 (en) 2023-12-06

Similar Documents

Publication Publication Date Title
EP1325083B1 (en) Fibrous composite articles
FI97033C (en) Cellulose fiber aggregates and method for their preparation
RU2766676C2 (en) Osb board (oriented strand board) based on a wood material with improved characteristics and method for manufacture thereof
Nurhazwani et al. Hybrid particleboard made from bamboo (Dendrocalamus asper) veneer waste and rubberwood (Hevea brasilienses)
EP3129199B1 (en) Chemically modified wood and non-wood products and methods for the production thereof
ZA200304103B (en) Wood products and processes for the preparation thereof.
Hughes Plywood and other veneer-based products
Alade et al. Adhesion performance of melamine-urea–formaldehyde joints of copper azole-treated Eucalyptus grandis at varied bonding process conditions
Shukla et al. Studies on laminated and scrimber composites produced from thermally modified D. strictus bamboo bonded with melamine-based adhesive
Demirel et al. Effect of alkyl ketene dimer on the physical, mechanical, and biological durability of plywood
EP4286123A1 (en) Rod-based wood materials
Van Acker et al. Enhanced potential of poplar and willow for engineered wood products
Akbulut et al. Some advantages of three-layer medium-density fibreboard as compared to the traditional single-layer one
Savov et al. Influence of hot-pressing temperature on properties of eco-friendly dry-process fibrebords with lignosulfonate adhesive.
AU2004314464A1 (en) Hard wood strand products
Awang et al. Medium density fibreboard (MDF) from oil palm fibre: a review
Ohagwu et al. Status of wood processing and storage in Nigeria
Chai et al. Production of oil palm trunk core board with wood veneer lamination
Ghani et al. Comparison of Properties between Solid and Laminated Mahang Wood
Song et al. Using surface modified E-glass fiber cloths to enhance poplar laminated veneer lumber composites: Effects of modification conditions, gluing processes, hot-pressing parameters, and assembly patterns on physical-mechanical and interfacial properties
Alipon et al. Development of floor tiles from Philippine bamboos
Zeleniuc et al. Properties evaluation by thickness and type of oriented strand boards manufactured in continuous press line
Surmiński Wood properties and uses
Percin et al. Physical and mechanical properties of laminated wood made from heat-treated scotch pine reinforced with carbon fiber
CN105473295B (en) The timber and non-timber product and method for the production thereof of chemical modification

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 23728351

Country of ref document: EP

Kind code of ref document: A1