Gypsum hardened body

Incorporating cellulose microfibers, particularly chemically modified cellulose nanofibers, into gypsum hardened materials improves strength and reduces impurities in recycled gypsum powder, enhancing the performance of gypsum-based products.

JP7841915B2Active Publication Date: 2026-04-07NIPPON PAPER IND CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-24
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing gypsum hardened materials, when regenerated and reused as recycled gypsum powder, contain impurities from added inorganic substances and do not sufficiently enhance strength.

Method used

Incorporation of cellulose microfibers, specifically chemically modified cellulose nanofibers with low viscosity, into the gypsum hardened body to improve compressive strength and reduce impurities in recycled gypsum powder.

Benefits of technology

The gypsum hardened body exhibits enhanced compressive strength and produces recycled gypsum powder with fewer impurities, addressing the limitations of existing technologies.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a gypsum hardened body having excellent compressive strength and capable of obtaining a recycled gypsum powder with less impurity in a case of reuse as a recycled gypsum powder after use.SOLUTION: A gypsum hardened body includes a gypsum and a cellulose fine fiber having a B type viscosity at 60 rpm of 2000 mPa s or under.SELECTED DRAWING: None
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Description

Technical Field

[0001] The present invention relates to a gypsum hardened body containing cellulose microfibers.

Background Art

[0002] Gypsum board is formed into a plate shape with gypsum, that is, calcium sulfate, as the core material and both sides covered with base paper for board. The adhesion between this gypsum and the base paper for board is achieved by the involvement of a needle-like structure accompanying the hydration reaction of calcium sulfate. Such gypsum board is excellent in strength, has excellent dimensional stability in addition to incombustibility and sound insulation, and is inexpensive, so it is widely used as a building board material.

[0003] In recent years, there has been a demand for gypsum board with added functions such as moisture absorption and desorption function, deodorizing function, and high strength, and various contrivances have been made to achieve high functionality.

[0004] For example, Patent Document 1 discloses a technique for obtaining a gypsum hardened body with improved strength even with a small specific gravity by adding calcium hydrogen phosphate dihydrate to the gypsum hardened body.

[0005] On the other hand, used gypsum board is recycled and reused as recycled gypsum powder. When reused as recycled gypsum powder, it is preferable that there are fewer impurities.

Prior Art Documents

Patent Documents

[0006]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0007] However, the technology described in Patent Document 1 involves adding inorganic substances, and when the resulting gypsum hardened material is regenerated and reused as recycled gypsum powder, it contains impurities derived from the added inorganic substances. Furthermore, the technology described in Patent Document 1 does not sufficiently improve the strength of the resulting gypsum hardened material, and there was a need for a gypsum hardened material with even greater strength.

[0008] Therefore, the present invention aims to provide a hardened gypsum body that has excellent compressive strength and can produce recycled gypsum powder with fewer impurities when reused as recycled gypsum powder after use. [Means for solving the problem]

[0009] The present invention provides the following: (1) A hardened gypsum body containing gypsum and cellulose microfibers having a B-type viscosity of 2000 mPa·s or less at 60 rpm. (2) The gypsum hardened body according to (1), wherein the content of the cellulose fine fibers is 0.1 to 5% by weight. (3) The gypsum hardened body according to (1) or (2), wherein the cellulose microfibers are chemically modified cellulose nanofibers. (4) The gypsum hardened body according to (3), wherein the chemically modified cellulose nanofiber is TEMPO-oxidized cellulose nanofiber. [Effects of the Invention]

[0010] According to the present invention, it is possible to provide a hardened gypsum body that has excellent compressive strength and can produce recycled gypsum powder with fewer impurities when reused as recycled gypsum powder after use. [Brief explanation of the drawing]

[0011] [Figure 1] This is an image of the scanning electron microscope (SEM) observation results of the gypsum hardened material obtained in Example 2. [Figure 2] This is an image of the scanning electron microscope (SEM) observation results of the gypsum hardened material obtained in Reference Example 1. [Modes for carrying out the invention]

[0012] The hardened gypsum body of the present invention will be described below. In the present invention, "~" includes the endpoints. That is, "X~Y" includes the values ​​X and Y at both ends.

[0013] The gypsum hardened body of the present invention contains gypsum and cellulose fine fibers having a B-type viscosity of 2000 mPa·s or less at 60 rpm.

[0014] (hardened gypsum) The method for producing the hardened gypsum body of the present invention is not particularly limited, but for example, it can be obtained by kneading calcined gypsum, an aqueous dispersion of cellulose microfibers having a specific viscosity, and water to obtain a gypsum slurry, and then hardening the slurry.

[0015] Calcined gypsum, also known as calcium sulfate 1 / 2 hydrate, is an inorganic composition with hydraulic properties. As calcined gypsum, either β-type or α-type calcined gypsum, obtained by calcining natural gypsum, by-product gypsum, and flue gas desulfurization gypsum (either individually or in mixtures) in air or water (including steam), can be used. Furthermore, the presence of trace amounts of anhydrous type III gypsum, which is produced during the calcination process, is also acceptable.

[0016] (Cellulose microfibers) The cellulose microfibrils used in the present invention are microfibrils made from cellulose, and include microfibrillated cellulose (hereinafter sometimes referred to as "MFC") with an average fiber diameter of 500 nm or more and cellulose nanofibers (hereinafter sometimes referred to as "CNF") with an average fiber diameter of less than 500 nm. The average fiber diameter of the cellulose microfibrils is not particularly limited, but is about 1 nm to 20 μm. The average fiber diameter and average fiber length of the cellulose microfibrils can be obtained by appropriately selecting and using a fiber tester manufactured by ABB Ltd., a fractionator manufactured by Valmet, a scanning electron microscope (SEM), an atomic force microscope (AFM), or a transmission electron microscope (TEM) according to the size of the fiber diameter, and averaging the fiber diameter and fiber length obtained from the results of observing each fiber. The cellulose microfibrils can be manufactured by defibrating cellulose.

[0017] In addition, in the present invention, when pulp before being made into microfibrils is used as it is instead of cellulose microfibrils, it is likely to settle when made into a gypsum hardened body, and the obtained gypsum hardened body has a reduced compressive strength, which is not preferable.

[0018] The average aspect ratio of the cellulose microfibrils used in the present invention is preferably 10 or more, more preferably 15 or more, and even more preferably 20 or more. The upper limit of the aspect ratio is not particularly limited, but is preferably 1000 or less, more preferably 100 or less, and even more preferably 80 or less. The average aspect ratio can be calculated by the following formula: Aspect ratio = average fiber length / average fiber diameter

[0019] The transparency of the cellulose microfiber dispersion used in the present invention is not particularly limited, but for example, at a concentration of 0.01%, the transparency is preferably 10% or more, and more preferably 20% or more. At a concentration of 1.0%, the transparency is preferably 70% or more, and more preferably 80% or more. The transparency can be obtained, for example, by preparing a cellulose microfiber dispersion of a predetermined concentration and measuring the transmittance of 660 nm light using a UV-VIS spectrophotometer UV-1800 (manufactured by Shimadzu Corporation) with a square cell having an optical path length of 10 mm.

[0020] Cellulose raw materials are not particularly limited as long as they contain cellulose, but examples include plants (e.g., wood, bamboo, hemp, jute, kenaf, agricultural waste, cloth, pulp (unbleached softwood kraft pulp (NUKP), bleached softwood kraft pulp (NBKP), dissolved softwood kraft pulp (NDKP), unbleached hardwood kraft pulp (LUKP), bleached hardwood kraft pulp (LBKP), bleached kraft pulp (BKP), unbleached softwood sulfite pulp (NUSP), bleached softwood sulfite pulp (NBSP), thermomechanical pulp (TMP), bleached thermomechanical pulp (BCTMP), recycled pulp, waste paper, etc.)), animals (e.g., sea squirts), algae, microorganisms (e.g., acetic acid bacteria (Acetobacter)), microbial products, etc.). The cellulose raw material may be any one of these or a combination of two or more, but it is preferably a cellulose raw material derived from plants or microorganisms (e.g., cellulose fibers), and more preferably a cellulose raw material derived from plants (e.g., cellulose fibers).

[0021] Cellulose has three hydroxyl groups per glucose unit and can undergo various chemical modifications. In the present invention, either the chemically modified cellulose raw material (chemically modified cellulose) obtained by chemical modification or the unmodified cellulose raw material can be used as the cellulose raw material. However, from the perspective of promoting the progress of fibrillation, it is preferable to use chemically modified cellulose as the cellulose raw material. In the present application, the cellulose microfibrils obtained by fibrillation of chemically modified cellulose are referred to as chemically modified cellulose microfibrils, and the cellulose microfibrils obtained by fibrillation of the unmodified cellulose raw material are referred to as mechanically treated cellulose microfibrils.

[0022] As the chemical modification, anion modification for introducing an anionic group into cellulose is preferable. Specifically, anion modification means introducing an anionic group into the pyranose ring by an oxidation or substitution reaction. In the present invention, the oxidation reaction refers to a reaction of directly oxidizing the hydroxyl group of the pyranose ring to a carboxyl group. Also, in the present invention, the substitution reaction refers to a reaction of introducing an anionic group into the pyranose ring by a substitution reaction other than the oxidation. Examples of anion modification include oxidation (carboxylation), carboxymethylation, esterification, etc. Among them, oxidation (carboxylation) and carboxymethylation are more preferable.

[0023] (Chemical modification) (Oxidation) As anionically modified cellulose, oxidized (carboxylated) cellulose can be used. Oxidized cellulose (also called "carboxylated cellulose") can be obtained by oxidizing (carboxylating) the above-mentioned cellulose raw material by a known method. Although not particularly limited, the amount of carboxyl groups is preferably 0.6 to 3.0 mmol / g, and more preferably 1.0 to 2.0 mmol / g, relative to the oven-dry weight of the anionically modified cellulose. As an example of an oxidation (carboxylation) method, the cellulose raw material can be oxidized in water using an oxidizing agent in the presence of an N-oxyl compound and a compound selected from the group consisting of bromide, iodide, and mixtures thereof. This oxidation reaction selectively oxidizes the primary hydroxyl group at the C6 position of the glucopyranose ring on the surface of the cellulose, resulting in the formation of an aldehyde group and a carboxyl group (-COOH) or carboxylate group (-COOH) on the surface. ― A cellulose fiber having the following properties can be obtained. The concentration of cellulose during the reaction is not particularly limited, but 5% by weight or less is preferred.

[0024] An N-oxyl compound is a compound capable of generating a nitroxyl radical. Any compound that promotes the desired oxidation reaction can be used as the N-oxyl compound. Examples include 2,2,6,6-tetramethylpiperidine-1-oxyl radical (TEMPO) and its derivatives (e.g., 4-hydroxyTEMPO). The amount of N-oxyl compound used is not particularly limited, as long as it is a catalytic amount that can oxidize the cellulose raw material. For example, 0.01 to 10 mmol is preferred, 0.01 to 1 mmol is more preferred, and 0.01 to 0.5 mmol is even more preferred, per 1 g of oven-dried cellulose raw material. Also, a concentration of about 0.1 to 4 mmol / L relative to the reaction system is preferable.

[0025] Bromides are compounds containing bromine, and examples include alkali metal bromides that can dissociate and ionize in water. Iodides are compounds containing iodine, and examples include alkali metal iodides. The amount of bromide or iodide used can be selected within a range that can promote the oxidation reaction. The total amount of bromide and iodide is preferably 0.1 to 100 mmol, more preferably 0.1 to 10 mmol, and even more preferably 0.5 to 5 mmol per 1 g of oven-dried cellulose raw material. This modification is due to an oxidation reaction.

[0026] As an oxidizing agent, known substances can be used, such as halogens, hypohalous acids, halogenous acids, perhalous acids or their salts, halogen oxides, and peroxides. Among these, sodium hypochlorite is preferred because it is inexpensive and has a low environmental impact. The appropriate amount of oxidizing agent to use is, for example, 0.5 to 500 mmol, more preferably 0.5 to 50 mmol, and even more preferably 2.5 to 25 mmol per 1 g of oven-dried cellulose raw material. Also, for example, 1 to 40 moles per 1 mole of N-oxyl compound is preferred.

[0027] The oxidation process of the cellulose raw material can proceed efficiently even under relatively mild conditions. Therefore, the reaction temperature is preferably 4 to 40°C, and can also be room temperature of about 15 to 30°C. As the reaction progresses, carboxyl groups are generated in the cellulose, causing the pH of the reaction solution to decrease. To ensure that the oxidation reaction proceeds efficiently, it is preferable to add an alkaline solution such as an aqueous sodium hydroxide solution to the reaction system as needed to maintain the pH of the reaction solution at about 9 to 12, preferably 10 to 11. Water is preferred as the reaction medium due to its ease of handling and low likelihood of side reactions. The reaction time in the oxidation reaction can be appropriately set according to the degree of oxidation, and is usually 0.5 to 6 hours, for example, about 0.5 to 4 hours.

[0028] Furthermore, the oxidation reaction may be carried out in two stages. For example, by oxidizing the cellulose obtained by filtering after the first stage of the reaction under the same or different reaction conditions, carboxyl groups can be efficiently introduced into the cellulose raw material without being inhibited by the salt produced as a by-product in the first stage of the reaction.

[0029] Another example of an oxidation (carboxylation) method is oxidation by ozone treatment, but in the present invention, it is preferable to use TEMPO-oxidized cellulose fine fibers obtained by defibrating oxidized cellulose obtained by oxidation with TEMPO (TEMPO oxidation).

[0030] The amount of carboxyl groups in oxidized cellulose microfibers obtained by modifying cellulose raw materials by oxidation, relative to the oven-dry weight of the cellulose microfibers, is preferably 0.6 mmol / g or more, more preferably 0.8 mmol / g or more, and even more preferably 1.0 mmol / g or more. The upper limit is preferably 2.2 mmol / g or less, more preferably 2.0 mmol / g or less, and even more preferably 1.8 mmol / g or less. Therefore, 0.6 mmol / g to 2.2 mmol / g is preferred, 0.8 mmol / g to 2.0 mmol / g is more preferred, and 1.0 mmol / g to 1.8 mmol / g is even more preferred.

[0031] The amount of carboxyl groups in oxidized cellulose can be adjusted by controlling the reaction conditions, such as the amount of oxidizing agent added and the reaction time. The amount of carboxyl groups in oxidized cellulose is usually the same as the amount of carboxyl groups in the fine fibers.

[0032] In the present invention, the carboxyl groups introduced into the cellulose raw material in the oxidized cellulose obtained in the above process are usually of the salt type, and are alkali metal salts such as sodium salts. Before the defibration process, the alkali metal salt of the oxidized cellulose may be replaced with other cationic salts such as phosphonium salts, imidazolinium salts, ammonium salts, and sulfonium salts. The replacement can be carried out by known methods.

[0033] (carboxymethylation) Preferred anionic groups include carboxyalkyl groups such as carboxymethyl groups. Carboxyalkylated cellulose may be obtained by known methods or commercially available products may be used. The degree of carboxyalkyl substitution per anhydrous glucose unit of cellulose is preferably less than 0.60. Furthermore, if the anionic group is a carboxymethyl group, the degree of carboxymethyl substitution is preferably less than 0.60. If the degree of substitution is 0.60 or higher, the crystallinity decreases and the proportion of dissolved components increases, resulting in a loss of function as a fine fiber. The lower limit of the degree of carboxyalkyl substitution is preferably 0.01 or higher. Considering operability, the degree of substitution is particularly preferably 0.02 to 0.50, and even more preferably 0.10 to 0.30. An example of a method for producing such carboxyalkylated cellulose is a method including the following steps. This modification is a modification by a substitution reaction. Carboxymethylated cellulose will be explained as an example. i) A step of mixing the spawning raw material, solvent, and mercerizing agent, and mercerizing the mixture at a reaction temperature of 0 to 70°C, preferably 10 to 60°C, and for a reaction time of 15 minutes to 8 hours, preferably 30 minutes to 7 hours. ii) Next, a carboxymethylating agent is added in an amount of 0.05 to 10.0 moles per glucose residue, and the etherification reaction is carried out at a reaction temperature of 30 to 90°C, preferably 40 to 80°C, and for a reaction time of 30 minutes to 10 hours, preferably 1 hour to 4 hours.

[0034] The aforementioned cellulose raw material can be used as the base material. As a solvent, 3 to 20 times the weight of water or lower alcohol can be used, specifically water, methanol, ethanol, N-propyl alcohol, isopropyl alcohol, N-butanol, isobutanol, tertiary butanol, etc., either individually or in mixtures of two or more. When lower alcohols are mixed, the mixing ratio is 60 to 95% by weight. As a mercing agent, 0.5 to 20 times the molar amount of alkali metal hydroxide per anhydrous glucose residue of the base material can be used, specifically sodium hydroxide or potassium hydroxide.

[0035] As mentioned above, the degree of carboxymethyl substitution per glucose unit of cellulose is less than 0.06, and preferably between 0.01 and 0.60. By introducing carboxymethyl substituents to cellulose, the cellulose molecules repel each other electrically. For this reason, cellulose to which carboxymethyl substituents have been introduced can be easily defibrated. However, if the degree of carboxymethyl substituent per glucose unit is less than 0.02, defibration may not be sufficient. The degree of substitution in carboxymethylated cellulose and the degree of substitution when it is formed into fine fibers are usually the same.

[0036] In the present invention, the carboxyalkyl group introduced into the cellulose raw material in the carboxyalkylated cellulose obtained in the above process is usually in salt form, and is an alkali metal salt such as a sodium salt. Before the defibration process, the alkali metal salt of the carboxyalkylated cellulose may be replaced with other cationic salts such as phosphonium salts, imidazolinium salts, ammonium salts, or sulfonium salts. The substitution can be carried out by known methods.

[0037] (Esterification) Esterified cellulose can also be used as anionically modified cellulose. Methods include mixing a powder or aqueous solution of phosphate compound A with the cellulose raw material, or adding an aqueous solution of phosphate compound A to a slurry of the cellulose raw material. Examples of phosphate compound A include phosphoric acid, polyphosphate, phosphorous acid, hypophosphorous acid, phosphonic acid, polyphosphonic acid, or esters thereof. These may also be in the form of salts. Among the above, compounds having a phosphate group are preferred because they are low-cost, easy to handle, and can improve defibration efficiency by introducing a phosphate group into the cellulose of the pulp fiber. Examples of compounds having a phosphate group include phosphoric acid, sodium dihydrogen phosphate, disodium hydrogen phosphate, trisodium phosphate, sodium phosphite, potassium phosphite, sodium hypophosphite, potassium hypophosphite, sodium pyrophosphate, sodium metaphosphate, potassium dihydrogen phosphate, dipotassium hydrogen phosphate, tripotassium phosphate, potassium pyrophosphate, potassium metaphosphate, ammonium dihydrogen phosphate, diammonium hydrogen phosphate, triammonium phosphate, ammonium pyrophosphate, and ammonium metaphosphate. One or more of these can be used in combination to introduce a phosphate group. Of these, phosphoric acid, sodium phosphoric acid, potassium phosphoric acid, and ammonium phosphoric acid are preferred from the viewpoint of high efficiency in introducing phosphate groups, ease of defibration in the defibration process described below, and ease of industrial application. Sodium dihydrogen phosphate and disodium hydrogen phosphate are particularly preferred. Furthermore, it is desirable to use the phosphate compound A as an aqueous solution so that the reaction can proceed uniformly and the efficiency of introducing phosphate groups is high. The pH of the aqueous solution of phosphate compound A is preferably 7 or less in order to increase the efficiency of introducing phosphate groups, but from the viewpoint of suppressing hydrolysis of pulp fibers, the pH is preferably 3 to 7.

[0038] An example of a method for producing phosphate-esterified cellulose is as follows: A phosphate compound A is added to a suspension of cellulose raw material with a solid content concentration of 0.1 to 10% by weight while stirring to introduce phosphate groups into the cellulose. When the cellulose raw material is 100 parts by weight, the amount of phosphate compound A added is preferably 0.2 to 500 parts by weight, and more preferably 1 to 400 parts by weight, in terms of phosphorus element content. If the proportion of phosphate compound A is above the lower limit, the yield of cellulose fine fibers can be further improved. However, if it exceeds the upper limit, the effect of improving the yield plateaus, which is undesirable from a cost perspective.

[0039] In addition to phosphate compound A, powder or aqueous solution of compound B may be mixed. Compound B is not particularly limited, but a nitrogen-containing compound exhibiting basicity is preferred. Here, "basicity" is defined as the aqueous solution exhibiting a pink to red color in the presence of phenolphthalein indicator, or the pH of the aqueous solution being greater than 7. The nitrogen-containing compound exhibiting basicity used in the present invention is not particularly limited as long as it achieves the effects of the present invention, but a compound having an amino group is preferred. Examples include urea, methylamine, ethylamine, trimethylamine, triethylamine, monoethanolamine, diethanolamine, triethanolamine, pyridine, ethylenediamine, and hexamethylenediamine. Among these, urea is preferred because it is low-cost and easy to handle. The amount of compound B added is preferably 2 to 1000 parts by weight, and more preferably 100 to 700 parts by weight, per 100 parts by weight of solid content of the cellulose raw material. The reaction temperature is preferably 0 to 95°C, and more preferably 30 to 90°C. The reaction time is not particularly limited, but is about 1 to 600 minutes, and more preferably 30 to 480 minutes. When the esterification reaction conditions are within these ranges, it is possible to prevent excessive esterification of cellulose, which can make it easily soluble, and a good yield of phosphate-esterified cellulose can be obtained. After dehydrating the obtained phosphate-esterified cellulose suspension, it is preferable to heat-treat it at 100 to 170°C from the viewpoint of suppressing hydrolysis of cellulose. Furthermore, it is preferable to heat it at 130°C or lower, preferably 110°C or lower, while water is present during the heat treatment, and then heat-treat it at 100 to 170°C after removing the water.

[0040] The degree of phosphate group substitution per glucose unit in phosphate-esterified cellulose is preferably 0.001 or more and less than 0.40. By introducing phosphate group substituents to cellulose, the cellulose molecules repel each other electrically. Therefore, cellulose with introduced phosphate groups can be easily defibrillated. If the degree of phosphate group substitution per glucose unit is less than 0.001, sufficient defibrillation is not possible. On the other hand, if the degree of phosphate group substitution per glucose unit is greater than 0.40, swelling or dissolution may occur, making it impossible to obtain fine fibers. In order to efficiently defibrillate, it is preferable that the phosphate-esterified cellulose raw material obtained above be boiled and then washed with cold water. These modifications by esterification are modifications by substitution reactions. The degree of substitution in phosphate-esterified cellulose and the degree of substitution when it is made into fine fibers are usually the same.

[0041] In the present invention, the phosphate groups introduced into the cellulose raw material in the phosphate-esterified cellulose obtained in the above process are usually of the salt type, and are alkali metal salts such as sodium salts. Before the defibration process, the alkali metal salt of the phosphate-esterified cellulose may be replaced with other cationic salts such as phosphonium salts, imidazolinium salts, ammonium salts, and sulfonium salts. The substitution can be carried out by known methods.

[0042] (Fibreation) In the present invention, the apparatus for defibrating the cellulose raw material is not particularly limited, but it is preferable to apply shear force to the cellulose raw material (usually an aqueous dispersion) using an apparatus such as a high-speed rotary type, colloidal mill type, high-pressure type, roll mill type, ultrasonic type, refiner, beater, PFI mill, kneader, disperser, grinder, or cavitation jet device. In particular, to obtain MFC, it is preferable to use a beater or grinder that can efficiently obtain fine fibers, and to obtain CNF, it is preferable to use a wet high-pressure or ultra-high-pressure homogenizer that can apply a pressure of 50 MPa or more to the cellulose raw material (usually an aqueous dispersion) and apply a strong shear force. Furthermore, if necessary, pretreatment can be performed prior to the defibration and dispersion treatment. Pretreatment can be performed using known mixing, stirring, emulsifying, and dispersion devices such as a high-speed shear mixer. The number of treatments (passes) in the defibration device may be one or two or more, and two or more is preferable.

[0043] In dispersion processes, chemically modified or unmodified cellulose is typically dispersed in a solvent. The solvent is not particularly limited as long as it can disperse cellulose, but examples include water, organic solvents (e.g., hydrophilic organic solvents such as methanol), and mixtures thereof.

[0044] The solid content concentration of cellulose in the dispersion is usually 0.1% by weight or more, preferably 0.2% by weight or more, and more preferably 0.3% by weight or more. This ensures an appropriate amount of liquid relative to the amount of cellulose raw material, making it efficient. The upper limit is usually 10% by weight or less, preferably 6% by weight or less. This allows for maintaining fluidity.

[0045] Prior to defibration or dispersion, preliminary treatment may be performed as needed. Preliminary treatment can be carried out using mixing, stirring, emulsifying, and dispersion equipment such as a high-speed shear mixer.

[0046] The cellulose microfibers used in this invention have a B-type viscosity of 2000 mPa·s or less, preferably 1500 mPa·s or less, at 25°C and 60 rpm when dispersed in a 1% by weight aqueous solution. If the viscosity is too high, the resulting gypsum hardened body will have an inferior effect in improving compressive strength. The lower limit of the B-type viscosity is not particularly limited, but it is preferably 1 mPa·s or more. Furthermore, the B-type viscosity at 25°C and 6 rpm when dispersed in a 1% by weight aqueous solution is preferably 10000 mPa·s or less, more preferably 8000 mPa·s or less.

[0047] In the present invention, the content of cellulose microfibers in the gypsum hardened body is not particularly limited, but from the viewpoint of slurry molding operation and strength, 0.1 to 5.0% by weight is preferred, and 0.5 to 1.5% by weight is more preferred. If the content of cellulose microfibers is less than the lower limit above, the effect of improving compressive strength may be inferior, and if the content of cellulose microfibers is more than the upper limit above, the viscosity of the slurry may become high, making mixing and pouring difficult, or the cost may increase.

[0048] The concentration of the aqueous dispersion of cellulose fine fibers used to produce the gypsum slurry is not particularly limited, but is preferably 0.1 to 5.0% by weight, and more preferably 1.0 to 3.0% by weight, in order to uniformly mix the slurry.

[0049] The concentration of the gypsum slurry is not particularly limited; the amount of water used can be adjusted according to the required fluidity, etc., to achieve any desired concentration.

[0050] In addition to the essential component, specific cellulose microfibers, various additives conventionally added to the raw materials for hardened gypsum can also be added to the gypsum slurry. Furthermore, known strength-enhancing agents other than cellulose microfibers can also be added.

[0051] The aforementioned optional additives can be added at any time during the preparation of the gypsum slurry.

[0052] The gypsum hardened body of the present invention is obtained when the calcined gypsum in the above-mentioned gypsum slurry undergoes a hydration reaction to become dihydrate gypsum, generating long, fibrous crystals (acine-like crystals), which then intertwine and harden as a whole. By shaping the material into a desired form before hardening, a gypsum hardened body having the desired shape can be obtained.

[0053] The specific gravity of the gypsum hardened material of the present invention is not particularly limited, but from the viewpoint of conforming to JIS A6901, it is preferably 0.6 to 0.9 and more preferably 0.65 to 0.75.

[0054] The gypsum hardened body of the present invention is not particularly limited in shape and can be any shape.

[0055] The gypsum hardened body of the present invention has excellent compressive strength because it contains specific cellulose microfibers. Furthermore, when the used gypsum hardened body is recycled and reused as recycled gypsum powder, the cellulose microfibers added as additives can be burned off, resulting in recycled gypsum powder with fewer impurities compared to when inorganic substances are added as additives. [Examples]

[0056] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to these examples. Unless otherwise specified, the measurement / calculation methods for each numerical value in each example are those described in the specification.

[0057] (Measurement of compressive strength) The hardened bodies (at least 10 of each) obtained in the examples, comparative examples, and reference examples were subjected to stress using a compression strength tester (Aiko Engineering Co., Ltd., CH-1002P) at a crosshead speed of 5 mm / min. The compressive strength value was obtained by dividing the stress at fracture by the sample cross-sectional area. In the compression strength test, data from samples (at least 6) that showed a linear stress-strain curve were used, and their arithmetic mean was taken to obtain the compressive strength value. The compressive strength value was evaluated according to the following criteria. The compressive strength values ​​and evaluation results are shown in Table 1. A higher value indicates superior compressive strength. A: Compressive strength value of 3.5 MPa or higher B: Compressive strength value is 3.1 MPa or higher, and less than 3.5 MPa. C: Compressive strength value is 2.7 MPa or higher, and less than 3.1 MPa. D: Compressive strength value is 2.3 MPa or higher, and less than 2.7 MPa. E: Compressive strength value is 1.9 MPa or higher, and less than 2.3 MPa. F: Compressive strength value is less than 1.9 MPa.

[0058] (Manufacturing Example 1) (Manufacturing of TEMPO-oxidized cellulose nanofibers 1) 5 g (absolutely dry) bleached conifer-derived DKP (manufactured by Bacchae) was added to 500 mL of an aqueous solution containing 78 mg (0.5 mmol) of TEMPO (Sigma Aldrich) and 755 mg (7.3 mmol) of sodium bromide, and the mixture was stirred until the pulp was uniformly dispersed. After adding 16 mL of 2 M sodium hypochlorite aqueous solution to the reaction system, the pH was adjusted to 10.3 with 0.5 N hydrochloric acid aqueous solution to start the oxidation reaction (oxidation treatment). During the reaction, the pH in the system decreased, but it was adjusted to 10 by sequentially adding 0.5 N sodium hydroxide aqueous solution. After reacting for 2 hours, the mixture was filtered through a glass filter and thoroughly washed with water to obtain oxidized cellulose. The amount of carboxyl groups in the obtained oxidized cellulose was 1.7 mmol / g. This was adjusted to 5.0% (w / v) with water and treated 10 times in an ultra-high pressure homogenizer (20°C, 140 MPa) (defibrillation and dispersion treatment) to obtain a dispersion of cellulose nanofiber (CNF) 1. The average fiber diameter was 6 nm and the average fiber length was 230 nm. The transparency was 100% (solid content 0.01%) and 92.5% (solid content 1.0%). Furthermore, the B-type viscosity of this CNF 1 dispersion at 60 rpm was 9 mPa·s when the solid content concentration was 1 wt%, and the B-type viscosity at 6 rpm was less than 10 mPa·s.

[0059] (Manufacturing example 2) (Manufacturing of TEMPO-oxidized cellulose nanofibers 2) 5.00 g (dry) of bleached, unbeaten kraft pulp (whiteness 85%) derived from coniferous trees was added to 500 mL of an aqueous solution containing 39 mg of TEMPO (Sigma Aldrich) (0.05 mmol per 1 g of dry cellulose) and 514 mg of sodium bromide (1.0 mmol per 1 g of dry cellulose), and the mixture was stirred until the pulp was uniformly dispersed. An aqueous solution of sodium hypochlorite was added to the reaction system until the sodium hypochlorite concentration reached 6.0 mmol / g, and the oxidation reaction was initiated. During the reaction, the pH of the system decreased, but 3M aqueous sodium hydroxide solution was added sequentially to adjust the pH to 10. The reaction was terminated when the sodium hypochlorite was consumed and the pH of the system no longer changed. The mixture after the reaction was acidified with hydrochloric acid, filtered through a glass filter to separate the pulp, and the pulp was thoroughly washed with water to obtain oxidized pulp (carboxylated cellulose). The pulp yield at this time was 90%, the oxidation reaction took 90 minutes, and the carboxyl group content was 1.6 mmol / g. This was adjusted to 1.0% (w / v) with water, and the pH was adjusted to 7 by adding a 3M sodium hydroxide solution. A dispersion of cellulose nanofiber (CNF) 2 was obtained by treating it three times with an ultra-high pressure homogenizer (20°C, 150 MPa). The average fiber diameter was 3 nm, and the average fiber length was 550 nm. The transparency was 100% (solid content 0.01%) and 88.9% (solid content 1.0%). Furthermore, the B-type viscosity of this CNF 2 dispersion at 60 rpm with a solid content concentration of 1 wt% was 3260 mPa·s, and the B-type viscosity at 6 rpm was 22530 mPa·s.

[0060] (Manufacturing Example 3) (Manufacturing of mechanically processed microfibrillary cellulose) Bleached thermomechanical pulp (BCTMP) was diluted with water to 2.0% (w / v), filtered to a water content of 100 mL or less using a Niagara beater, and then processed three times with a grinder (mascolloider) to obtain a dispersion of mechanically treated microfibril cellulose (MFC). The average fiber diameter was 21 μm, and the average fiber length was 211 μm. The transparency was 25.4% (solids content 0.01%). When the solids content was 1.0%, the transparency was too low to measure. Furthermore, the B-type viscosity of this MFC dispersion at 60 rpm was 140 mPa·s when it was 1 wt%, and the B-type viscosity at 6 rpm was 540 mPa·s. The pH of this MFC dispersion at 1 wt% was 7.9.

[0061] (Example 1) To 58.7 g of calcined gypsum, TEMPO-oxidized CNF1 (5% solid content) obtained in Production Example 1 was added and mixed in an amount such that the solid content concentration of CNF was 0.5 wt% of the resulting hardened body. Further, 73.8 g of water was added and mixed to prepare a slurry. Ten or more molds made of polyfluoroethylene (Teflon®) with an inner diameter of 10 mm and a height of 30 mm were prepared. This slurry was loaded into the molds, allowed to harden, demolded, and dried at 37.5°C until constant weight was achieved to obtain a hardened gypsum body with a specific gravity of 0.7.

[0062] (Example 2) To 58.4 g of calcined gypsum, TEMPO-oxidized CNF1 (5% solid content) obtained in Production Example 1 was added and mixed in an amount such that the solid content concentration of CNF was 1.0 wt% of the resulting hardened body. Further mixing with 57.6 g of water prepared a slurry. Except for using this slurry, a hardened gypsum body with a specific gravity of 0.7 was obtained in the same manner as in Example 1. Figure 1 shows an image of the obtained hardened gypsum body obtained by SEM observation.

[0063] (Example 3) To 58.1 g of calcined gypsum, TEMPO-oxidized CNF1 (5% solid content) obtained in Production Example 1 was added and mixed in an amount such that the solid content concentration of CNF was 1.5 wt% of the resulting hardened body. Further, 60.1 g of water was added and mixed to prepare a slurry. Except for using this slurry, a hardened gypsum body with a specific gravity of 0.7 was obtained in the same manner as in Example 1.

[0064] (Example 4) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 1, except that the mechanically treated MFC (solid content 2%) obtained in Production Example 3 was added as the cellulose microfiber instead of the TEMPO-oxidized CNF1 obtained in Production Example 1.

[0065] (Example 5) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 4, except that the amount of mechanically processed MFC added was changed to an amount such that the solid content concentration of the MFC was 1.0 wt% of the resulting hardened body.

[0066] (Example 6) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 4, except that the amount of mechanically processed MFC added was changed to an amount such that the solid content concentration of the MFC was 1.5 wt% of the resulting hardened body.

[0067] (Comparative Example 1) To 56.1 g of calcined gypsum, Ca(OH)2 (manufactured by Kanto Chemical Co., Ltd., reagent grade) was added and mixed in an amount equivalent to 5.0 wt% of the hardened body obtained after carbonation, calculated as CaCO3 after carbonation. Further mixing with 80.2 g of water prepared a slurry. This slurry was loaded into the same mold as in Example 1, cured, demolded, and dried at 37.5°C until constant weight was achieved to obtain a hardened gypsum body with a specific gravity of 0.7. The obtained hardened body was carbonized by holding it in an atmosphere of 23°C, 93% relative humidity, 0.3 atm of carbon dioxide, and 0.7 atm of nitrogen gas for 24 hours.

[0068] (Comparative Example 2) Except for changing the amount of Ca(OH)2 added to an amount equivalent to 10 wt% of the hardened body obtained after carbonation, as calculated in terms of CaCO3 after carbonation, a hardened gypsum body with a specific gravity of 0.7 was obtained in the same manner as in Comparative Example 1.

[0069] (Comparative Example 3) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 1, except that kaolinite (manufactured by the Natural Cosmetics Research Institute, white kaolin) was added instead of TEMPO-oxidized CNF1 obtained in Production Example 1, and the amount added was changed to an amount that constituted 1.0 wt% of the resulting hardened body.

[0070] (Comparative Example 4) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 1, except that bentonite (manufactured by Shiraishi Kogyo Co., Ltd., domestic product) was added instead of TEMPO-oxidized CNF1 obtained in Production Example 1, and the amount added was changed to an amount that constitutes 1.0 wt% of the resulting hardened body.

[0071] (Comparative Example 5) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 1, except that Al(OH)3 (manufactured by Kanto Chemical Co., Ltd., reagent grade) was added instead of TEMPO-oxidized CNF1 obtained in Production Example 1, and the amount added was changed to an amount that constituted 5.0 wt% of the resulting hardened body.

[0072] (Comparative Example 6) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Comparative Example 5, except that the amount of Al(OH)3 added was changed to an amount that constituted 10 wt% of the resulting hardened body.

[0073] (Comparative Example 7) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Example 1, except that TEMPO-oxidized CNF2 (1% solid content) obtained in Production Example 2 was added instead of TEMPO-oxidized CNF1 obtained in Production Example 1.

[0074] (Comparative Example 8) A gypsum hardened body with a specific gravity of 0.7 was obtained in the same manner as in Comparative Example 7, except that the amount of TEMPO-oxidized CNF2 added was changed to an amount such that the solid content concentration of CNF was 1.0 wt%.

[0075] (Reference example 1) A hardened body was obtained without the use of additives. Specifically, a slurry was prepared by adding and mixing 80.6 g of water with 59.0 g of calcined gypsum. This slurry was molded, hardened, demolded, and dried using the same procedure as in Example 1 to obtain a hardened gypsum body with a specific gravity of 0.7. Figure 2 shows an image of the obtained hardened gypsum body obtained by SEM observation.

[0076] [Table 1]

[0077] The results in Table 1 show that the gypsum from Examples 1-6 and the gypsum hardened bodies containing cellulose microfibers with a B-type viscosity of 2000 mPa·s or less at 60 rpm exhibit superior compressive strength compared to Reference Example 1, which contains no additives. In particular, the gypsum hardened bodies from Examples 1-5 showed superior compressive strength despite the low additive concentration of 0.5-1.5%.

[0078] Comparing Figure 1 and Figure 2, the gypsum hardened body of Example 2 (Figure 1), which contains cellulose microfibers with a B-type viscosity of 2000 mPa·s or less at 60 rpm, showed a tendency for the shape of the dihydrate gypsum crystal particles to change from needle-shaped to plate-shaped, the length of the crystal particles to shorten, and the orientation of the crystal particles to become irregular, compared to the gypsum hardened body of Reference Example 1 (Figure 2), which had no additives. It is thought that these differences in trends contribute to the improvement in compressive strength.

Claims

1. It contains gypsum and cellulose microfibers having a B-type viscosity of 2000 mPa·s or less at 60 rpm. The cellulose microfibers are chemically modified cellulose nanofibers. The aforementioned chemical modification is anionic modification, in which anionic groups are introduced into the cellulose, in a hardened gypsum body.

2. The gypsum hardened body according to claim 1, wherein the content of the cellulose fine fibers is 0.1 to 5% by weight.

3. The gypsum hardened body according to claim 1 or 2, wherein the chemically modified cellulose nanofiber is TEMPO-oxidized cellulose nanofiber.

Citation Information

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