WO2017200452A1 - Corps poreux solide formé par voie humide, procédé de régulation de propriétés structurelles et mécaniques dans la fabrication d'un corps poreux solide et la fabrication de papier, et procédé de formation par voie humide du corps poreux solide - Google Patents

Corps poreux solide formé par voie humide, procédé de régulation de propriétés structurelles et mécaniques dans la fabrication d'un corps poreux solide et la fabrication de papier, et procédé de formation par voie humide du corps poreux solide Download PDF

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Publication number
WO2017200452A1
WO2017200452A1 PCT/SE2017/050291 SE2017050291W WO2017200452A1 WO 2017200452 A1 WO2017200452 A1 WO 2017200452A1 SE 2017050291 W SE2017050291 W SE 2017050291W WO 2017200452 A1 WO2017200452 A1 WO 2017200452A1
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WIPO (PCT)
Prior art keywords
porous body
solid porous
fiber
fibers
weighted average
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.)
Ceased
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PCT/SE2017/050291
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English (en)
Inventor
Dag Molteberg
Gudmund JENSSEN
Johan Patrik AXELSSON
Joar Helge STENSLÖKKEN
Per Thomas Gunnar BAJER
Lars DAHLSTRÖM
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Swedish Woodfibre Boards AB
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Swedish Woodfibre Boards AB
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Publication date
Application filed by Swedish Woodfibre Boards AB filed Critical Swedish Woodfibre Boards AB
Priority to EP17719025.3A priority Critical patent/EP3458644B1/fr
Publication of WO2017200452A1 publication Critical patent/WO2017200452A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP 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
    • D21H11/00Pulp or paper, comprising cellulose or lignocellulose fibres of natural origin only
    • D21H11/08Mechanical or thermomechanical pulp
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21DTREATMENT OF THE MATERIALS BEFORE PASSING TO THE PAPER-MAKING MACHINE
    • D21D1/00Methods of beating or refining; Beaters of the Hollander type
    • D21D1/20Methods of refining
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21DTREATMENT OF THE MATERIALS BEFORE PASSING TO THE PAPER-MAKING MACHINE
    • D21D5/00Purification of the pulp suspension by mechanical means; Apparatus therefor
    • D21D5/02Straining or screening the pulp
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21HPULP 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
    • D21H15/00Pulp or paper, comprising fibres or web-forming material characterised by features other than their chemical constitution
    • D21H15/02Pulp or paper, comprising fibres or web-forming material characterised by features other than their chemical constitution characterised by configuration
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21JFIBREBOARD; MANUFACTURE OF ARTICLES FROM CELLULOSIC FIBROUS SUSPENSIONS OR FROM PAPIER-MACHE
    • D21J1/00Fibreboard
    • DTEXTILES; PAPER
    • D21PAPER-MAKING; PRODUCTION OF CELLULOSE
    • D21JFIBREBOARD; MANUFACTURE OF ARTICLES FROM CELLULOSIC FIBROUS SUSPENSIONS OR FROM PAPIER-MACHE
    • D21J7/00Manufacture of hollow articles from fibre suspensions or papier-mâché by deposition of fibres in or on a wire-net mould

Definitions

  • the present invention relates to a wet-formed solid porous body that has a density of 100 to 400 kg/m 3 , and is based on fibrous material from softwood including fractions of fibers separated from one another in a mechanical pulping process.
  • It also relates to a process for controlling structural and mechanical properties in the manufacture of a solid porous body and paper manufacture by using combined fiber selection strategy.
  • a method of wet forming a solid porous body that has a density of 100 to 400 kg/m 3 and is based on fibrous material from softwood including fractions of fibers separated from one another in a mechanical pulping process.
  • pulp is produced with little or no chemicals by
  • the pulp is used mainly for newsprint and as an ingredient of base stock for lower grade printing papers.
  • the most important ones of the various grades of mechanical pulps are the fully mechanical pulps Groundwood Pulp (GW), Pressurized Groundwood Pulp (PGW), and Refiner Mechanical Pulp (RMP), and further the mechanical and thermal pulps Thermo Mechanical Pulp (TMP), Thermo Chemi -Mechanical Pulp (TCMP) and Chemi-Thermo-Mechanical Pulp (CTMP).
  • the density figures above refer to oven dry density. When the produced bodies are in equilibrium with the moisture in ordinary indoor air, they usually contain about 10-12 % of water.
  • fibers from wood for producing wet-formed solid porous bodies, such as fiberboard and molded fibrous objects, for example.
  • Such bodies are eco-friendly alternatives to oil based products such as expanded polystyrene (EPS), polyurethane (PUR), polyisocyanurate (PIR), and further to wood particle board, flax particle board, and mineral wool, for example.
  • EPS expanded polystyrene
  • PUR polyurethane
  • PIR polyisocyanurate
  • wood particle board flax particle board
  • mineral wool for example.
  • Other additives are added to make the solid porous bodies heat insulating, flame-retardant, soundproof, moisture repelling, and rot-resistant, for example.
  • a wet- formed solid porous body that has a density of 100 to 400 kg/m 3 and is based on fibrous material from softwood including fractions of fibers separated from one another in a mechanical pulping process.
  • the solid porous body comprises:
  • the particles have a weighted average length of less than 0.2 mm and constitute from 5 to 50 percent by weight of said fibrous material; and said solid body being hydrogen bonded and free from added non-cellulose based binders.
  • Fiber length and width are fundamental pulp properties that relate directly to paper properties.
  • the traditional method for measuring fiber dimensions involves classifying the pulp into screened fractions and then measuring the weight and length of fibers in each fraction to calculate the weighted average length by weight or weighted average width by weight.
  • Weighted average length or “length weighted average length” means that the average is influenced by using a weight for each observation, in this case the length of each fiber. Each observation is multiplied by its weight, in this case the length of each fiber is multiplied by the same length. Then, the sum of this product is calculated for all the fibers in the distribution, a sample. To find the length weighted average length, this sum is divided by the sum of the weight, in this case the sum of length of all the fibers.
  • Weighted average width or “length weighted average width” means that the average is influenced by using a weight for each observation, in this case the length of each fiber.
  • each observation is multiplied by its weight, in this case the width of each fiber is multiplied by the length. Then, the sum of this product is calculated for all the fibers in the distribution, a sample. To find the length weighted average width, this sum is divided by the sum of the weight, in this case the sum of length of all the fibers.
  • Such a wet-formed solid porous body may be produced by a process that to some degree utilizes waste products and waste energy from pulp mills.
  • new applications for mechanical pulping and fractions thereof are created.
  • the wet-formed solid porous bodies of the invention give excellent soundproofing, have excellent thermal insulation properties and do not burn if treated by including clay and/or flame retardants, and they have an excellent weight to volume ratio. Further, they are eco-friendly, as they are based on reject fractions from the mechanical pulping process (viz.
  • the coarsest fiber fraction and the fines fraction are made without any addition of a non-cellulose based binder, and they are an eco-friendly alternative to expanded polystyrene (EPS), polyurethane (PUR), polyisocyanurate (PIR), wood particle board, flax particle board, and mineral wool, for example.
  • EPS expanded polystyrene
  • PUR polyurethane
  • PIR polyisocyanurate
  • wood particle board wood particle board
  • flax particle board flax particle board
  • mineral wool for example.
  • the reject fractions from the mechanical pulping mill are not burnt but incorporated in the produced wet-formed solid porous bodies, the production of the bodies contribute to the lowering of carbon dioxide emissions.
  • the wet-formed solid porous body has at least one of the following properties:
  • the Janka hardness test measures the resistance of a sample of wood to denting and wear. It measures the force required to embed an 11.28 mm (.444 in) steel ball into wood to half the ball's diameter. A common use of Janka hardness ratings is to determine whether a species is suitable for use as flooring.
  • the above listed strength properties of the wet-formed solid porous body make the body suitable as a replacement for fiberboard bonded by non-cellulose based binders, petroleum based insulating materials such as expanded polystyrene, for example, and also for replacing wood in a plurality of applications.
  • the body has a density of 120 to 140 kg/ m 3 , a length weighted average fiber length of from 1.35 to 1.55 mm, a length weighted average fiber width of from 36 to 38 ⁇ , and the fines fraction of particles constitutes from 8 to 12 percent by weight of said fibrous material.
  • the body has a density of 120 to 140 kg/ m 3 , a length weighted average fiber length of from 1.35 to 1.55 mm, a length weighted average fiber width of from 32 to 34 ⁇ , and the fines fraction of particles constitutes from 8 to 12 percent by weight of said fibrous material.
  • the body has a density of 210 to 250 kg/m 3 , a length weighted average fiber length of from 0.9 to 1.1 mm, a length weighted average fiber width of from 29 to 31 ⁇ , and the fines fraction of particles constitutes from 30 to 40 percent by weight of said fibrous material.
  • the body has a thermal conductivity of at most 0.060 W/m K, whereby it can be used for thermal insulation.
  • the properties of the body can be improved in that the body comprises at least one additive.
  • the additive is preferably selected from the group consisting of clays, flame retardants, synthetic fibers, non-wood based natural fibers, dyes, moisture repellents, biocides, such as rot-resistant (anti-fouling) additives, and microfibrillated cellulose (MFC).
  • the softwood used in the mechanical pulping process is Norway spruce (Picea abies), which gives high quality fibers.
  • the wet-formed solid porous body may be of various shapes, but a fiberboard panel, a fillet or strip, a pot, or a coffin are examples of shapes in demand.
  • it is an object of the invention to provide a process for controlling structural and mechanical properties by using combined fiber selection strategy in the manufacture of a solid porous body and paper manufacture In accordance with a preferred embodiment of the present invention, this object is achieved in that the process comprises:
  • combined fiber selection strategy has the meaning that fibers with certain desired characteristics are selected from wood raw material and/or the fibers are also fractionated and/or sorted within the selected wood raw material.
  • Tree fibers selected from a trunk portion close to a tree root or close to a tree top, or fibers selected from a part close to the heartwood or close to the cortex of the tree all comprise fibers with different fiber characteristics.
  • the length and width of the fibers depend on which part of the tree stem the fibers originate from.
  • the selection of the fiber is made in view of variety of three, genetic material/origin, the habitat of the tree, trunk portion including saw mill chips, and growth rate.
  • the fibers that are provided with the desired type of characteristic are fractionated and/or sorted out of the wood raw material.
  • the selection from a certain part of the tree stem together with fractioning and/or sorting of the fibers constitute the “combined fiber selection strategy" which facilitate the manufacture the solid porous body with the desired characteristics.
  • the phrase "combined” relates to the combination of these techniques: raw material selection and/or wood sorting and/or fiber fractionating, with the purpose of getting a tailor made defined fiber property distribution necessary to reach the wanted properties of the final product.
  • the fiber fraction selected in step f) has weighted average fiber length of from 0.7 to 1.8 mm and a weighted average fiber width of from 25 to 42 ⁇ ; and that the process further comprises:
  • the process for controlling structural and mechanical properties by using combined fiber selection strategy in the manufacture of a solid porous body and paper manufacture comprises the step of mixing the two different fiber fractions.
  • the two fiber fractions have a weighted average fiber length of from 0.7 to 1.8 mm and a weighted average fiber width of from 25 to 42 ⁇ , and the other fiber fraction have a fines fraction of particles with a weighted average length of less than 0.2 mm and constituting from 8 to 40 percent by weight of said fibrous material.
  • this object is achieved in that the method comprises:
  • Such a method is eco-friendly and well suited for the production of wet-formed solid porous bodies to be used as an eco-friendly alternative to expanded polystyrene, polyurethane (PUR), polyisocyanurate (PIR), wood particle board, flax particle board, and mineral wool, for example, and the body may be produced by a process that to some degree utilizes waste products and waste energy from pulp mills.
  • new applications for mechanical pulping and fractions thereof are created.
  • the method suitably further comprises in step c) and/or between steps e) and f) and/or in or after step f) adding an additive other than a non-cellulose based binder.
  • the additive is preferably selected from the group consisting of clays, flame retardants, synthetic fibers, non-wood based fibers, dyes, moisture repellents, biocides, such as rot-resistant (anti-fouling) additives, and microfibrillated cellulose (MFC).
  • the prepared stock preferably has a consistency of 0.5 to 5 percent by weight. Lower values mean that unnecessarily large amounts of water have to be handled without giving any advantage, and higher values mean that the produced body risks being inhomogeneous.
  • the draining device may be a mold, but if the body is in the shape of a plate or panel, the draining device may include a running forming fabric.
  • the method suitably further comprises the step of subjecting the stabilized solid porous body to a light pressure of at most 0.1 MPa.
  • the drying is carried out by utilization of waste heat, which is eco-friendly and also may reduce the cost of drying.
  • waste heat which is eco-friendly and also may reduce the cost of drying.
  • microwave heating may also be substituted for the utilization of waste heat.
  • microwave heating is regarded as a relatively low-cost alternative.
  • the drying may be carried out in a continuous dryer section, which may be suitable for bodies formed on a travelling forming fabric, or in a drying chamber, which may be suitable for bodies formed in a mold.
  • the method also further comprises attaching a protective and/or decorative sheet on at least one surface of the dried solid porous body.
  • Fig. 1 is a block diagram showing the principle of refining and fiber fractionating.
  • Fig. 2 is a block diagram illustrating a mechanical pulping process delivering fibers to both paper and board production.
  • Fig. 3 is a block diagram illustrating production of fiberboard with fiber selection.
  • Fig. 4a is a diagram showing sheet density as a function of fiber length (FL).
  • Fig. 4b is a diagram showing sheet density as a function of fiber width (FW).
  • Fig. 4c is a diagram showing sheet density as a function of fiber wall thickness (FWT).
  • Fig. 5 is a diagram showing measured sheet density as a function of sheet density calculated from FL, FW, FWT.
  • Fig. 6 is a diagram showing tensile index as a function of sheet density.
  • Fig. 7a is a diagram showing the dewatering capacity of the pulp of latewood (LW) and earlywood ((EW) at two temperatures and expressed as freeness (CSF) as a function of specific refining energy supplied to the refiner.
  • Fig. 7b is a diagram showing the fiber lengths for pulp of latewood (LW) and earlywood ((EW) at two temperatures as a function of the freeness (CSF).
  • Fig. 7c is a diagram showing the sheet densities for pulp of latewood (LW) and earlywood ((EW) at two temperatures as a function of the freeness (CSF).
  • Fig. 8a is a diagram showing fiber length as a function of post treatment with low consistency refining at various energy levels.
  • Fig. 8b is a diagram showing fiber width as a function of post treatment with low
  • Fig. 8c is a diagram showing sheet density as a function of post treatment with low
  • Fig. 9 is a diagram showing density of various sheets as a function of pressure on the sheet during forming.
  • Fig. 10 is a diagram showing sheet density for board made from different fiber selections and additives.
  • Fig. 1 illustrates the principle of refining and fiber fractionation.
  • Wood chips 1 are fed to first refiner 2, which is supplied with a variable input of energy 3.
  • the resulting fibers are delivered to a first separating device 4, e.g. one or more screens or hydrocyclones, to form a first fine (accept) fraction 5 and a first coarse (reject) fraction 6 of fibers.
  • Part of the first coarse fiber fraction 6 is fed to a second refiner 7, which is supplied with a variable input of energy 8.
  • the resulting fibers are delivered to a second separating device 9, e.g. one or more screens or hydrocyclones, to form a second fine (accept) fraction 10 and a second coarse (reject) fraction 11 of fibers.
  • Part of the second coarse fiber fraction 11 is fed to a third refiner 12, which is supplied with a variable input of energy 13.
  • the resulting fibers delivered from the third refiner 12 forms a fifth fiber fraction 14.
  • the five fiber fractions 5, 6, 10, 11, and 14 will be different with respect to length, width, cell wall thickness and fines content.
  • the system may be simplified or more complex in a real application, but the block diagram illustrates the principles.
  • the block diagram in Fig. 2 illustrates possibilities in a conventional mechanical pulping process delivering fibers to both paper and board production.
  • the selected wood raw material 15, usually chips from a chipper is fed to a TMP pulp mill 31 including a series of groups (only one group is shown), each of which includes a refiner 16 and a fractionator 17.
  • the fractionators in the groups deliver a normal fiber fraction A suitable for papermaking, a coarse fiber fraction B and an extra coarse fiber fraction C.
  • the normal fiber fraction A has a weighted average fiber length in an interval of 0.95-1.15 mm, a weighted average fiber width in an interval of 29-31 ⁇ , and a fines content by weight of 30-36 %.
  • the coarse fiber fraction B has a weighted average fiber length in an interval of 1.35-1.55 mm, a weighted average fiber width in an interval of 32-34 ⁇ , and a fines content by weight of 8-12 %.
  • the extra coarse fiber fraction C has a weighted average fiber length in an interval of 1.35-1.55 mm, a weighted average fiber width in an interval of 36- 38 ⁇ , and a fines content by weight of 8-12 %.
  • the normal fiber fraction A and a first part of the coarse fiber fraction B are delivered to a paper production mill 18 for production of a first paper grade 19 and a second paper grade 20, respectively.
  • a second part of the coarse fiber fraction B is delivered to a fiberboard production mill 21for production of a first fiberboard grade 22.
  • a third part of the coarse fiber fraction B is branched off from the second part and delivered to the fiberboard production mill 21, which includes a mixer 25 for mixing with a first part of the extra coarse fiber fraction C for production of a second fiberboard grade 23.
  • a second part of the extra coarse fiber fraction C is delivered to the fiberboard production mill 21 for production of a third fiberboard grade 24.
  • FIG. 3 Another block diagram is shown in Fig. 3 and illustrates other aspects of a conventional mechanical pulping process delivering fibers to both paper and board production.
  • a vertical dotted line 26 divides the diagram into a left-hand part representing paper manufacturing and a right-hand part representing fiberboard manufacturing.
  • Roundwood 27 from a wood yard is delivered to a station 28 for sorting and mixing of wood, barking, and production of wood chips.
  • the wood chips are delivered to a storage 29, where mixing may be carried out. Mixing is necessary if saw mill chips 30 are added to the wood chips.
  • the chips are fed to a TMP pulp mill 31 as shown in Fig. 2, where refining, screening and fractionating is carried out to produce fibers 32 for paper and fibers 35 for fiberboard.
  • the fibers 32 for paper are delivered to a first paper machine 33 and a second paper machine 34.
  • the fibers 35 for fiberboard are delivered to a mixing station 36, which also receives desirable chemical additives 37 such as flame retardants, dyes, moisture repellents, biocides, such as rot-resistant (anti-fouling) additives, and microfibrillated cellulose (MFC), for example, and fillers 38 such as clay, synthetic fibers, non-wood based natural fibers, for example.
  • desirable chemical additives 37 such as flame retardants, dyes, moisture repellents, biocides, such as rot-resistant (anti-fouling) additives, and microfibrillated cellulose (MFC), for example
  • fillers 38 such as clay, synthetic fibers, non-wood based natural fibers, for example.
  • the obtained slush of fibers, chemical additives and fillers is diluted to a stock that is delivered to a fiberboard machine 39 for wet forming and dewatering on a running,
  • the formed fibrous sheet is exposed to a light pressing (preferably at most 0.1 MPa), if desired, to assist in the dewatering.
  • a light pressing preferably at most 0.1 MPa
  • the sheet is still wet, and at a station 40, the wet sheet can be provided with a cover of one or more of the chemical additives 37, if desired.
  • the optionally wet covered fibrous sheet is delivered to a saw 41 for wet sawing essentially to desired length before being passed on to a dryer 42.
  • the dryer 42 may include a continuous dryer section or a drying chamber, and suitably at least part of the drying is carried out to oven dryness by means of waste heat from the pulp mill 31 and/or microwave heating.
  • the obtained dry fiberboard panels are trimmed (at 43) to desired length, width and thickness, and passed on to a joining or finishing station 44, where they may be covered with some sheet decor, if desired, or combined with other building elements to form structural insulated panels (SIP) having an insulating layer of rigid core sandwiched between two layers of structural board.
  • SIP structural insulated panels
  • the fiberboard products are packed at a packaging station 45, from where they are delivered to a store 46 or shipped to customer.
  • the fibers used for fiberboard it is common to try to use as little energy as possible in the defibration, and therefore the fibers have a low bonding ability.
  • Typical energy levels are some hundred kWh/t fiber.
  • the energy level is from about 500 kWh/t to about 2500 kWh/t, preferably between 1000 kWh/t and 2000 kWh/t.
  • a fiber fractionation after the main fractionation as illustrated in Fig. 1, it is possible to separate fibers for printing paper and fibers for fiberboard.
  • the so called fine fraction is selected.
  • the coarser and thick-walled fibers are selected for fiberboard, these are called the coarse fraction.
  • the coarse fraction fibers provide high bulk and low density, but at the same time these fibers provide a well developed fiber surface with much better ability to create stronger bonds to one another in comparison to conventional fibers for fiberboard. The improved surface development is due to the fact that these fibers have been exposed to a high amount of refining energy.
  • a mechanical defibration is carried out by exposing wood of a correct moisture content to high mechanical shearing forces simultaneously with a heating of the wood.
  • the large shearing forces cause the fibers to break loose from one another, but the breaks will not always occur between the fibers or wood cells. Consequently, also fiber fragments will break loose and create much fine material.
  • the mechanical defibration was carried out by rotating grindstones in the groundwood pulp process, where short logs were pressed against wet grindstones rotating at a very high speed and partly submerged in water. As time went by, refiners were developed, having steel discs with blade bars and grooves there between.
  • RMP refiner mechanical pulp
  • TMP thermo mechanical pulp
  • the TMP process includes moisturizing the chips to get a predetermined moisture content, steam treating them and passing them under high pressure and temperature through a refiner, where the chips are rubbed between the steel discs with blade bars and grooves.
  • the fibers break free and their surface is activated, fibrillated.
  • Fibrillation is a structural change in the fiber walls e.g. through beating, whereby a number of fibrils are completely or partially removed and the binding between the remaining fibrils is weakened. Fibrillation makes it possible for the fibers to form hydrogen bonds with one another and thereby create a strong network. Also internally in the fiber wall there will be a large amount of minor breaks in the structure and result in an inner fibrillation, such that the fiber will be suppler and more flexible. The amount of energy used in this process will determine the degree of fibrillation and dimensional change of and in the wood fibers.
  • the amount of fine material, i.e. fiber fragments that are formed in connection with the defibration, will also be influenced by the amount of energy that is used and the mentioned defibration conditions.
  • the type of raw material used i.e. variety of tree, age (thinning, final felling), growing conditions, genetic material/origin, the habitat of the tree, trunk portion (root, stem, top) including saw mill chips, and growth rate (wide or thin annual rings), will also be of importance for the quality of the fibers and their dimensions.
  • softwood is chosen as raw material and suitably wood that is pale and has a low extractable content, preferably spruce and silver fir. Norway spruce (Picea abies) is most preferred in the process.
  • the fibers of Norway spruce have a length of 1-5 mm, but there is also a minor share of fibers that are shorter than 0.5 mm.
  • the fibers are shortened, and the final length will typically be 0.7-1.6 mm.
  • a large amount of the pulp will consist of fiber parts and fragments with lengths shorter than 0.2 mm and is called fine material. The amount of fine material is determined by the defibrating conditions.
  • Fine material amount as well as fiber dimensions like length and width can be influenced by sorting fibers both prior to and after the defibration.
  • sorting can be done by classifying the pulp wood by variety of tree, age (thinning, final felling), growing conditions, genetic material/origin, the habitat of the tree, trunk portion (root, stem, top) including saw mill chips, and growth rate (wide or thin annual rings), as all of these conditions affect length, width and wall thickness of the fibers.
  • Such wood classification is well adapted for controlling fiber dimensions with respect to length, width and wall thickness.
  • the fibers may also be sorted after the defibration.
  • Such sorting is known as fiber fractionating and is generally carried out by using screens and
  • Screens have slit openings of a predetermined size, and fibers that are smaller than the slits and sufficiently flexible will pass through the slits. Screens are specially suited for sorting fibers by length.
  • additives like clay, mineral ash, various synthetic fibers such as polylactide (PLA), other non-wood-based natural fibers like hemp, bamboo, bagasse, reed, (waste) haulm, etc.
  • PLA polylactide
  • MFC microfibrillated cellulose
  • CNF cellulose nanofibers
  • a process for controlling the structural and mechanical properties by using combined fiber selection strategy in the manufacture of a solid porous body and paper manufacture comprises: a) selecting a suitable wood raw material;
  • the fiber fraction selected in step f) has weighted average fiber length of from 0.7 to 1.8 mm and a weighted average fiber width of from 25 to 42 ⁇ ; and that the process further comprises:
  • a wet-formed solid porous body that is produced from the fiber material obtained in steps a) to f) above and has a density of 100 to 400 kg/m 3 and is based on fibrous material from softwood including fractions of fibers separated from one another in a mechanical pulping process comprises:
  • Such a wet-formed solid porous body may be produced by a process that to some degree utilizes waste products and waste energy from pulp mills. In addition, new applications for mechanical pulping and fractions thereof are created.
  • the wet-formed solid porous bodies of the invention give excellent soundproofing, have excellent thermal insulation properties and do not burn if treated by including clay and/or flame retardants, and they have an excellent weight to volume ratio. Further, they are eco-friendly, as they are based on reject fractions from the mechanical pulping process (viz.
  • the coarsest fiber fraction and the fines fraction are made without any addition of a non-cellulose based binder, and they are an eco-friendly alternative to expanded polystyrene (EPS), polyurethane (PUR), polyisocyanurate (PIR), wood particle board, flax particle board, and mineral wool, for example.
  • EPS expanded polystyrene
  • PUR polyurethane
  • PIR polyisocyanurate
  • wood particle board wood particle board
  • flax particle board flax particle board
  • mineral wool for example.
  • the reject fractions from the mechanical pulping mill are not burnt but incorporated in the produced wet-formed solid porous bodies, the production of the bodies contribute to the lowering of carbon dioxide emissions.
  • the wet-formed solid porous body has at least one of the following properties:
  • the Janka hardness test measures the resistance of a sample of wood to denting and wear. It measures the force required to embed an 11.28 mm (.444 in) steel ball into wood to half the ball's diameter. A common use of Janka hardness ratings is to determine whether a species is suitable for use as flooring.
  • the above listed strength properties of the wet-formed solid porous body make the body suitable as a replacement for fiberboard bonded by non-cellulose based binders, petroleum based insulating materials such as expanded polystyrene, for example, and also for replacing wood in a plurality of applications.
  • the body has a density of 120 to 250 kg/ m3, a length weighted average fiber length of from 0.9 to 1.55 mm, a length weighted average fiber width of from 29 to 38 ⁇ , and the fines fraction of particles constitutes from 8 to 40 percent by weight of said fibrous material.
  • the body has a density of 120 to 140 kg/ m 3 , a length weighted average fiber length of from 1.35 to 1.55 mm, a length weighted average fiber width of from 36 to 38 ⁇ , and the fines fraction of particles constitutes from 8 to 12 percent by weight of said fibrous material.
  • the body has a density of 120 to 140 kg/ m , a length weighted average fiber length of from 1.35 to 1.55 mm, a length weighted average fiber width of from 32 to 34 ⁇ , and the fines fraction of particles constitutes from 8 to 12 percent by weight of said fibrous material.
  • the body has a density of 210 to 250 kg/m 3 , a length weighted average fiber length of from 0.9 to 1.1 mm, a length weighted average fiber width of from 29 to 31 ⁇ , and the fines fraction of particles constitutes from 30 to 40 percent by weight of said fibrous material.
  • the body has a thermal conductivity of at most 0.060 W/m K, whereby it can be used for thermal insulation.
  • the properties of the body can be improved in that the body comprises at least one additive.
  • the additive is preferably selected from the group consisting of clays, flame retardants, synthetic fibers, non-wood based natural fibers, dyes, moisture repellents, biocides, such as rot-resistant (anti-fouling) additives, and microfibrillated cellulose (MFC).
  • the softwood used in the mechanical pulping process is Norway spruce (Picea abies), which with due regard to tree age (thinning, final felling), growing
  • the wet-formed solid porous body may be of various shapes, but a fiberboard panel, a fillet or strip, a pot, or a coffin are examples of shapes in demand. If desired, the wet-formed solid porous body may constitute a core and/or any one of the two covering layers of a structural insulating panel (SIP).
  • SIP structural insulating panel
  • a method of wet forming a solid porous body that is produced from the fiber material obtained in steps a) to f) above and has a density of 100 to 400 kg/m 3 and is based on fibrous material from softwood including fractions of fibers separated from one another in a mechanical pulping process comprises: a) providing a draining device having a wire-net bottom;
  • the fractionated fibers are separated to obtain
  • Such a method is eco-friendly and well suited for the production of wet-formed solid porous bodies to be used as an eco-friendly alternative to expanded polystyrene, polyurethane (PUR), polyisocyanurate (PIR), wood particle board, flax particle board, and mineral wool, for example, and the body may be produced by a process that to some degree utilizes waste products and waste energy from pulp mills.
  • new applications for mechanical pulping and fractions thereof are created.
  • the method suitably further comprises in step c) and/or between steps e) and f) and/or in or after step f) adding an additive other than a non-cellulose based binder.
  • the additive is preferably selected from the group consisting of clays, flame retardants, synthetic fibers, non-wood based fibers, dyes, moisture repellents, biocides, such as rot-resistant (anti-fouling) additives, and microfibrillated cellulose (MFC).
  • the prepared stock preferably has a consistency of 0.5 to 5 percent by weight. Lower values mean that unnecessarily large amounts of water have to be handled without giving any advantage, and higher values mean that the produced body risks being inhomogeneous.
  • the draining device may be a mold, but if the body is in the shape of a plate or panel, the draining device may include a running forming fabric.
  • the method suitably further comprises the step of subjecting the stabilized solid porous body to a light pressure of at most 0.1 MPa.
  • the drying is carried out by utilization of waste heat, which is eco-friendly and also may reduce the cost of drying.
  • waste heat which is eco-friendly and also may reduce the cost of drying.
  • microwave heating may also be substituted for the utilization of waste heat. Also microwave heating is regarded as a relatively low-cost alternative.
  • the drying may be carried out in a continuous dryer section, which may be suitable for bodies formed on a travelling forming fabric, or in a drying chamber, which may be suitable for bodies formed in a mold. If desired, the method also further comprises attaching a protective and/or decorative sheet on at least one surface of the dried solid porous body.
  • Finished fibers are mixed with possible additives and water to form a stock where the dry material content is 0.5 to 5 percent by weight.
  • This stock is then discharged from a headbox onto a travelling endless forming fabric.
  • the water starts draining through the forming fabric, while a fibrous web is being formed on top of the fabric.
  • the dry material content of the fiber web will increase as the fiber web is being transported forward on the fabric.
  • fabric supporting suction boxes may be provided. It is also possible to apply a light pressure of at most 0.1 MPa on the fiber web to increase the dry solids content even more, but that will increase the density of the finished product.
  • the pressure may be applied by means of at least one press roll or by providing a covering fabric on top of the fiber web and applying pressure on the top fabric. Water will now be pressed out on the bottom side and/or the top side and will be removed. At the end of the fabric, the fiber web will be separated from the fabric and transferred to another fabric. The side edges of the web will be trimmed and the web will be cross-cut to form single fiberboard panels.
  • the fiberboard panels are fed into drying pockets in a stack having a plurality of fiberboard panels on top of one another but with air gaps in between and travel into a drying chamber, where they are being dried by means of added heat and moisture. It is important to control temperature and moisture during the drying process to achieve an even drying of the product and avoid formation of local hardened areas or other problems. At the end of the drying process the fiberboard panels are conditioned to a normal indoor climate before they are finished to desired dimensions (cutting, profiling, smoothing).
  • the wet-formed solid porous body may also be produced by molding. Then wet undried fiber web mats or thick pulp is fed to a suitable mold and dried in the mold. This can be done in a piece by piece process or in a continuous process.
  • Example 1 Fiber length, width and wall thickness in wood raw materials and their effect on sheet density
  • Figs. 4a-4c show the sheet density in kg/m 3 as a function of fiber length (FL) in mm, fiber width (FW) in ⁇ , and fiber wall thickness (FWT) in ⁇ , respectively.
  • R 2 designates the coefficient of explanation (which again is the square of the coefficient of correlation R), indicating that the length, width and wall thickness of the fibers together explains about 70 % of the total variation of sheet density observed.
  • the sheet density was measured on hand sheets from 848 different unbleached, never-dried Kraft pulps originated from wood samples of Norway spruce and Scots Pine grown on different locations in Norway (Molteberg D. and Storebraten S. (2002) Styring av fiberdimensjoner - hvordan? Paper read at Skogbrukets og skogindustriens temadag 28.8.2002 (in Norwegian)).
  • the pulps were produced in laboratory scale, and beaten in a PFI mill at 250 revs prior to hand sheet forming.
  • Fiber properties were measured on unbeaten pulps with a Kajaanii FS-200 fiber analyzer. Fiber wall thickness and fiber width were calculated according to Braaten K. R. and Molteberg D. (2004), A mathematical method for determining fiber wall thickness and fiber width. Tappi Journal Vol 3(2):9-12.
  • Fiber wall thickness is the most important single fiber dimension describing sheet density, explaining 53 % of the total sheet density variation observed in this material. Fiber length alone describes 28 %, and fiber width 0 % of the sheet density, accordingly. Higher sheet density is obtained with shorter fibers and thinner fiber walls.
  • Example 2 Fiber dimensions in raw material controls density of paper sheets and fiberboard
  • Fig. 5 is a diagram showing measured sheet density as a function sheet density calculated from FL, FW, FWT.
  • Example 3 Density of sheet structure controls material strength (tensile strength
  • Fig. 6 is a diagram showing tensile index as a function of sheet density.
  • a simple regression model of tensile strength based on sheet density was formed and explains 71 % of the variation of tensile strength measured on hand sheets made from several hundred wood samples from Norway (Molteberg and Storebraten, 2002, supra).
  • Example 4 Effect of increased refining energy on fiber dimensions and sheet density
  • a common way to quantify the result of refining is to measure the dewatering capacity of the pulp, the Freeness (Canadian Standard Freeness, CSF, measured in ml). Increased refining will decrease freeness, as is shown in Fig. 7a. Increased temperature during refining (from 120 to 160 °C) will lower the energy needed to reach a certain freeness level. Earlywood (spring wood, EW) needs more refining energy than latewood (summer wood, LW) to reach the same freeness level. Increased refining energy will also reduce fiber length (and fiber width and wall thickness), shown as shorter fibers for lower freeness in Fig. 7b.
  • the source of the data in this example is Huang, F., Lanouette, R. and Law, K.N. (2007) Jack pine TMP: earlywood versus latewood and effect of refining temperature. Proceedings of International Mechanical Pulping Conference, Minneapolis, Minnesota, USA.
  • Example 5 Effect of post treatment with low consistency refining on fiber length, width and sheet density
  • Figs. 8a-8c show results from a mill trial at Norske Skog Saugbrugs. Increased refining energy during low consistency refining (LC) will reduce fiber length (Fig. 8a) and fiber width (Fig. 8b), and increase sheet density (Fig. 8c) as reported by Molteberg D (2014) Studie LC raffin0r TMP feb2014. A-rapport Norske Skog Saugbrugs 201404 (in
  • Fig. 10 shows the density of the various sheets of Fig. 9 when no pressure was used to assist in the dewatering. All fiber selections were made from same raw material (80 % round wood and 20 % saw mill chips, Norway spruce), clay 1 and 2 designates different amounts of clay, and MFC designates microfibrillated cellulose from Kraft pulp.
  • Example 7 raw material selection
  • Molteberg and Storebraten, 2002 have investigated fiber separation by raw material selection, and data from their investigation are assembled in Tables la, lb and lc. The fiber dimensions are shown as weighted averages.
  • Fiber length spruce has longer fibers than pine. Length is diminished with latitude, altitude (elevation), growth speed (ring width), but increases with tree-age.
  • Fiber width pine has wider fibers than spruce. Width increases with growth speed (ring width) and tree-age.
  • Fiber wall thickness pine has thicker walls than spruce. Wall thickness is
  • Sheet density pine has generally lower sheet density than spruce. Increased growth speed (ring width), latitude and altitude (elevation) increases sheet density.
  • the fibers for paper are “fraction A” in the description of Fig. 2 above, the “extra coarse fibers” are “fraction C”, and the “coarse fibers” are “fraction B”. Further, when clay or MFC was added, the fiberboard contained 30 % clay and 25 % MFC.
  • the commercial samples include fibers from wood, aluminum sulfate, paraffin, silicate, waterproofing agents, and a bonding agent between layers. No percentages are known (not stated by the manufacturer).
  • Table 2 shows that the inventive product based on coarse fibers alone can achieve the same or higher modulus of elasticity, bending strength, compression strength, hardness, and a lower thermal conductivity than the best commercial sample (sample 2), and in addition have much lower density or weight. If the inventive product is pressed harder to have the same density or weight as a commercial sample (sample 1), the invented product based on extra coarse fibers gives much better physical properties. When using a normal TMP (i.e. fibers for papermaking), the strength (modulus of elasticity, bending strength, and compression strength), is increased even more and 3-4 doubles the strength of the best commercial sample (sample 2). Adding MFC to coarse fibers make this effect even larger for modulus of elasticity, bending strength and compression strength.
  • TMP i.e. fibers for papermaking
  • Adding clay as a filler will increase density, but lower strength (bending strength, compression strength and hardness). It will also increase thermal conductivity. Generally, the amount of energy supplied to the mechanical pulping process is about 1400 kWh/t for extra coarse fibers, about 1700 kWh/t for coarse fibers, and about 2300 kWh/t for TMP, i.e. fibers for papermaking. Table 2
  • the Janka hardness test measures the resistance of a sample of wood to denting and wear. It measures the force required to embed an 11.28 mm (.444 in) steel ball into wood to half the ball's diameter. A common use of Janka hardness ratings is to determine whether a species is suitable for use as flooring.
  • the present invention is applicable in a process for controlling structural and mechanical properties by using combined fiber selection strategy in the manufacture of a solid porous body and paper manufacture, further in a method of wet forming a solid porous body that has a density of 100 to 400 kg/m and is based on fibrous material from softwood including fractions of fibers separated from one another in a mechanical pulping process, and the fiberboard panel or other solid porous body produced, e.g. a fillet or strip, a pot, or a coffin, is applicable in the construction or furniture industry, for example.

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Abstract

La présente invention concerne un procédé de formation par voie humide d'un corps poreux solide qui est sensiblement plus léger que des produits similaires conventionnellement produits mais qui présente une résistance/rigidité comparable et est à base de matériau fibreux de bois tendre, comprenant des fractions de fibres séparées les unes des autres dans un procédé de fabrication de pâte mécanique, qui comprend : a) la fourniture d'un dispositif de drainage ayant un fond en treillis métallique ; b) le fractionnement des fibres séparées pour obtenir - une fraction de fibres ayant une longueur de fibre moyenne en poids de 0,7 à 1,8 mm et une largeur de fibre moyenne en poids de 25 à 42 µm, et - une fraction de particules fines ayant une longueur moyenne en poids inférieure à 0,2 mm et constituant de 8 à 40 % en poids dudit matériau fibreux ; c) le mélange desdites fractions et la préparation d'un stock à partir du mélange ; d) la fourniture du stock au dispositif de drainage ; e) le drainage de l'eau de la pâte sur le dispositif de drainage pour former un corps poreux solide stabilisé ; et f) le séchage du corps poreux solide stabilisé pour produire un corps poreux solide lié par liaison hydrogène exempt de liants non cellulosiques ajoutés. En outre, un procédé de régulation de propriétés structurelles et mécaniques au moyen d'une stratégie combinée de sélection de fibres dans la fabrication d'un corps poreux solide et d'une fabrication de papier comprend : - la sélection d'une matière première de bois adaptée ; - le défibrage de la matière première de bois dans un processus de fabrication de pâte mécanique pour obtenir des fibres libres séparées les unes des autres ; - la sélection d'un degré de traitement de la matière première de bois par régulation d'une quantité d'énergie fournie au processus de fabrication de pâte mécanique ; - l'exposition des fibres libres à un post-traitement mécanique dans au moins un raffineur ; - le fractionnement de la pâte obtenue au moyen de tamis ou d'hydrocyclones pour obtenir des fractions de fibres utiles dans la fabrication d'un corps poreux solide et la fabrication de papier ; et - la sélection d'au moins une fraction de fibres adaptée pour la fabrication d'un corps poreux solide.
PCT/SE2017/050291 2016-05-20 2017-03-27 Corps poreux solide formé par voie humide, procédé de régulation de propriétés structurelles et mécaniques dans la fabrication d'un corps poreux solide et la fabrication de papier, et procédé de formation par voie humide du corps poreux solide Ceased WO2017200452A1 (fr)

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WO2023028067A1 (fr) * 2021-08-24 2023-03-02 W.R. Meadows, Inc. Panneau de fibre fabriqué avec des nanofibrilles de cellulose en tant que liant et son procédé de fabrication
WO2023180808A3 (fr) * 2022-03-21 2023-11-02 Fiberlean Technologies Limited Article moulé en pâte et ses procédés de fabrication
CN117364537A (zh) * 2023-10-19 2024-01-09 西昌学院 基于动物纤维的土豆纸韧性提升方法及系统
CN117716089A (zh) * 2021-08-02 2024-03-15 凸版印刷株式会社 纸浆模塑成形品及其制造方法
CN117716088A (zh) * 2021-08-02 2024-03-15 凸版印刷株式会社 纸浆模塑成形品及其制造方法
TWI847028B (zh) * 2020-06-29 2024-07-01 日商凱品股份有限公司 紙漿模造品之製造裝置及製造方法
WO2024234062A1 (fr) * 2023-05-17 2024-11-21 Varden Process Pty Ltd Procédé de formation de produits en pâte à papier moulés
US12163284B2 (en) 2019-03-28 2024-12-10 Nichiha Corporation Fiberboard manufacturing method and fiberboard
US12195924B2 (en) 2021-08-02 2025-01-14 Toppan Inc. Molded pulp article and method for producing molded pulp article
EP4382668A4 (fr) * 2021-08-02 2025-04-02 Toppan Inc. Produit de pâte de cellulose moulée et son procédé de fabrication

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Cited By (11)

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Publication number Priority date Publication date Assignee Title
US12163284B2 (en) 2019-03-28 2024-12-10 Nichiha Corporation Fiberboard manufacturing method and fiberboard
TWI847028B (zh) * 2020-06-29 2024-07-01 日商凱品股份有限公司 紙漿模造品之製造裝置及製造方法
CN117716089A (zh) * 2021-08-02 2024-03-15 凸版印刷株式会社 纸浆模塑成形品及其制造方法
CN117716088A (zh) * 2021-08-02 2024-03-15 凸版印刷株式会社 纸浆模塑成形品及其制造方法
US12195924B2 (en) 2021-08-02 2025-01-14 Toppan Inc. Molded pulp article and method for producing molded pulp article
EP4382669A4 (fr) * 2021-08-02 2025-04-02 Toppan Inc. Article moulé en pâte et son procédé de production
EP4382668A4 (fr) * 2021-08-02 2025-04-02 Toppan Inc. Produit de pâte de cellulose moulée et son procédé de fabrication
WO2023028067A1 (fr) * 2021-08-24 2023-03-02 W.R. Meadows, Inc. Panneau de fibre fabriqué avec des nanofibrilles de cellulose en tant que liant et son procédé de fabrication
WO2023180808A3 (fr) * 2022-03-21 2023-11-02 Fiberlean Technologies Limited Article moulé en pâte et ses procédés de fabrication
WO2024234062A1 (fr) * 2023-05-17 2024-11-21 Varden Process Pty Ltd Procédé de formation de produits en pâte à papier moulés
CN117364537A (zh) * 2023-10-19 2024-01-09 西昌学院 基于动物纤维的土豆纸韧性提升方法及系统

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