Patterned paper and its manufacturing method
Patterned paper is manufactured using pulp and hollow flat rayon fibers to achieve a PVA-free texture similar to Unryu paper, ensuring printability and strength through hydrogen bonding and wet strength agents.
Patent Information
- Application Number
- JP2021161646
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-09-30
- Publication Date
- 2025-11-06
- Estimated Expiration
- 2041-09-30
AI Technical Summary
Overseas markets demand PVA-free patterned paper with a Japanese texture for packaging, as PVA use is restricted in some countries, and similar regulations are anticipated in Japan, necessitating a PVA-free manufacturing method for patterned papers like rayon paper.
Patterned paper is produced using pulp fibers and hollow flat rayon fibers with a fiber length of 10 to 20 mm, without PVA-based resin, utilizing hydrogen bonding for fixation and optionally incorporating a wet strength agent to maintain paper integrity.
The solution provides PVA-free patterned paper with a dragon pattern texture similar to Unryu paper, maintaining printability and strength without using binders like PVA or vinylon.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to patterned paper and a method for producing the same. [Background technology]
[0002] One type of handmade washi paper is a patterned paper called Unryu paper, which incorporates long fibers such as kozo. Industrially, machine-made "rayon paper" is produced to resemble the texture of this handmade Unryu paper. Rayon paper is made from a mixture of bleached kraft pulp and rayon fiber, with a binder such as polyvinyl alcohol (PVA) added.
[0003] For example, Patent Document 1 describes Unryu paper, which is made by papermaking from a raw material that is a mixture of a rayon flock slurry containing rayon fibers, a cationic styrene-based resin, and an anionic polyacrylamide-based resin, and a cellulosic raw material slurry containing NBKP, rayon fibers, and PVA binder fibers.
[0004] Furthermore, Patent Document 2 describes a patterned paper having luminous properties, which is made by papermaking raw materials containing hollow flat rayon fibers, luminous oral powder, and a fibrous vinylon binder. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Patent No. 4662252 [Patent Document 2] Patent No. 4787810 Summary of the Invention [Problem to be solved by the invention]
[0006] In recent years, overseas markets have been demanding patterned paper with a Japanese paper-like texture, such as the rayon paper mentioned above, as packaging for Japanese-made foods and foods that imitate Japanese cuisine. However, in some countries, the use of PVA is restricted by law, so PVA-free patterned paper is being sought, with exports and overseas use in mind. It is also predicted that similar regulations will be imposed in Japan, and this has been raised as one of the required qualities.
[0007] Therefore, an object of the present invention is to provide a patterned paper that does not use a PVA-based resin and a method for producing the same. [Means for solving the problem]
[0008] The patterned paper according to the present invention contains pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, and contains a PVA-based resin. The surface smoothness of the patterned part of the patterned paper is 2.0 to 4.0 μm. It is something. In another embodiment, the paper contains pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm to 20 mm, does not contain a PVA-based resin, and contains 0.05 mass % to 2.0 mass % of a wet strength agent.In yet another embodiment, the paper contains pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm to 20 mm, does not contain a PVA-based resin, and has a thickness of 15 μm to 71 μm.
[0009] In addition, the first method for manufacturing patterned paper according to the present invention includes a step of making paper from a raw material containing pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, and not containing PVA-based resin. In another embodiment, the method includes a step of wet-laid papermaking using a raw material containing pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, but not containing a PVA-based resin, and a step of drying the obtained wet paper without subjecting it to a high-pressure water jet treatment.
[0010] In addition, the second method for manufacturing patterned paper according to the present invention includes the steps of: making a first raw material containing pulp fibers but not containing PVA-based resin; making a second raw material containing hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less and not containing PVA-based resin; and laminating a layer made from the first raw material and a layer made from the second raw material. [Effects of the Invention]
[0011] According to the present invention, it is possible to provide patterned paper that does not use PVA-based resins and a method for producing the same. DETAILED DESCRIPTION OF THE INVENTION
[0012] The patterned paper according to the present embodiment contains pulp fibers and hollow flat rayon fibers with a fiber length of 10 mm to 20 mm, and does not contain a PVA-based resin as a binder. In this specification, PVA-based resin refers to polymers and copolymers having the vinyl acetate-derived structural unit -CHCH(OH)-, and includes PVA, PVA-derived synthetic resins such as vinylon, PVA-based resin fibers, and vinylon fibers. The patterned paper according to the present embodiment may be a single-layer mixed paper, or a laminate of two or more layers.
[0013] (pulp fiber) As the pulp fibers, for example, kraft pulp, non-wood pulp, recycled paper pulp, mercerized pulp, and combinations of these pulps can be used.
[0014] Examples of kraft pulp that can be used alone or in combination include chemical pulps such as bleached hardwood kraft pulp (LBKP), bleached softwood kraft pulp (NBKP), unbleached hardwood kraft pulp (LUKP), unbleached softwood kraft pulp (NUKP), semi-bleached hardwood kraft pulp (LSBKP), semi-bleached softwood kraft pulp (NSBKP), hardwood sulfite pulp, and softwood sulfite pulp; and mechanical pulps (MP) such as stone ground pulp (SGP), pressed stone ground pulp (TGP), chemi-ground pulp (CGP), groundwood pulp (GP), and thermomechanical pulp (TMP).
[0015] Examples of non-wood pulp that can be used include hemp pulp, kenaf pulp, abaca pulp, cotton linter pulp, straw pulp, and bamboo pulp.
[0016] Lyocell fiber and the like can also be used as the recycled pulp.
[0017] Examples of waste paper pulp that can be used include disintegrated waste paper pulp, disintegrated and deinked waste paper pulp (DIP), and disintegrated, deinked, and bleached waste paper pulp, which are produced from brown waste paper, kraft envelope waste paper, magazine waste paper, newspaper waste paper, flyer waste paper, office waste paper, corrugated cardboard waste paper, white waste paper, Kent waste paper, imitation waste paper, and land tax waste paper, and these can be used alone or in combination.
[0018] The freeness of the pulp fiber is not particularly limited, but is preferably 300 to 650 ml. The freeness is a value in accordance with JIS P 8121 (2012). When the freeness of the pulp fiber is in the above range, the printability is improved.
[0019] (hollow flat rayon fiber) Hollow flat rayon fibers have fine irregularities on their surfaces, which function like fibrils. Furthermore, hollow flat rayon fibers can form hydrogen bonds with each other and with pulp fibers (cellulose fibers). Rayon fibers that do not have a hollow flat shape cannot be fixed to pulp fibers without the use of a binder, resulting in the rayon fibers falling off after papermaking. However, hollow flat rayon fibers are fixed to pulp fibers even after papermaking due to hydrogen bonding with the rayon and cellulose fibers. By using hollow flat rayon fibers as the rayon fibers, it is possible to make patterned paper with a texture similar to that of Unryu paper without using binders such as PVA or vinylon. Here, examples of hollow flat rayon fibers that can be used include Corona SBH and SBR manufactured by Daiwabo Rayon Co., Ltd.
[0020] The fiber length of the hollow flat rayon fibers used to form the patterned layer is preferably 10 mm or more and 20 mm or less. If the fiber length of the hollow flat rayon fibers is less than 10 mm, the dragon pattern will be too small, and the texture of Unryu paper will not be obtained, which is not preferred. On the other hand, if the fiber length of the hollow flat rayon fibers is more than 20 mm, the hollow flat rayon fibers will not form the dragon pattern, and will bond together to form clumps, which will not be able to obtain the texture of Unryu paper, which is not preferred.
[0021] (fiber composition ratio) Of the total amount of pulp fiber and hollow flat rayon fiber, the pulp fiber content is 30.0% by mass or more and 99.5% by mass or less, and the hollow flat rayon fiber content is 0.5% by mass or more and 70.0% by mass or less. By using pulp fiber and hollow flat rayon fiber in this blending range, it is possible to produce patterned paper with a dragon pattern similar to Unryu paper. If the hollow flat rayon fiber content is less than 0.5% by mass, the amount of hollow flat rayon fiber is too small, resulting in a less pronounced dragon pattern and the texture of Unryu paper being lost, which is undesirable. A higher hollow flat rayon fiber content improves surface smoothness and is therefore preferable in terms of printability, but if the hollow flat rayon fiber content exceeds 70.0% by mass, the shives become noticeable, hindering the pattern.
[0022] (internal additives) Furthermore, internal additives such as pigments, surfactants, waxes, sizing agents, fillers, rust inhibitors, conductive agents, antifoaming agents, dispersants, viscosity adjusters, flocculants, coagulants, paper strength improving components, wet strength improvers, retention aids, paper dust prevention agents, bulking agents, etc. may be added to the papermaking raw materials.
[0023] Examples of wet strength agents that can be used include epichlorohydrin resins such as polyamide-epichlorohydrin resins, polyamine resins, urea resins, acid colloid-melamine resins, thermally crosslinked polyacrylamides (thermally crosslinked PAMs), etc. Unless otherwise noted, the amount of the agent used in this application refers to the solid content equivalent.
[0024] When a wet strength agent is added, the amount of the wet strength agent added is preferably 0.05% by mass or more and 2.0% by mass or less of the total of the pulp fibers and hollow flat rayon fibers, and particularly preferably 0.10% by mass or more and 0.50% by mass or less. As described above, the hollow flat rayon fibers are fixed by hydrogen bonding with the pulp fibers or between the hollow flat rayon fibers. However, since the hollow flat rayon fibers do not contain a binder, the hydrogen bonds are broken when the hollow flat rayon fibers become wet with water, reducing the self-fixing ability of the hollow flat rayon fibers. Adding a wet strength agent in the above range is preferable because it can compensate for the reduced self-fixing ability of the hollow flat rayon fibers when wet and can impart water resistance to the hollow flat rayon fibers, which are weak in water resistance.
[0025] (Surface PPS smoothness) The surface PPS smoothness of the pattern portion of the patterned paper according to this embodiment is preferably 2.0 to 4.0 μm. The surface PPS smoothness of the pattern portion is a value measured at a measurement site selected so as to cross the pattern. Having the surface PPS smoothness within the above range has the effect of improving printability. In addition, the bond between fibers is maintained, preventing the hollow flat rayon fibers from falling off.
[0026] The surface smoothness of PPS is the Parker Print Surf smoothness (μm) measured in accordance with Appendix A of JIS-P8151 (2004). The Parker Print Surf smoothness is measured using a device that determines smoothness from the amount of air flow, but by applying pressure to the measuring head, it is possible to measure smoothness under pressure. The Parker Print Surf smoothness is measured using a soft-type backing at a clamping pressure of 1.0 MPa, and can be used to evaluate microscopic surface smoothness.
[0027] (Beck smoothness) The Beck smoothness of one side of the patterned paper according to this embodiment is preferably 20 seconds or more. The Beck smoothness is a value measured in accordance with JIS P 8119 (1998) "Paper and paperboard - Smoothness test method using a Beck smoothness tester." If the Beck smoothness of one side of the patterned paper is 20 seconds or more, this is preferable because the printability of that side is excellent. The measurement was performed on a blank part of the paper, without selecting a pattern.
[0028] (Basic weight) The basis weight (grams per unit area) of the patterned paper according to this embodiment is not particularly limited, but is preferably 8.0 to 60.0 g / m 2 The basis weight is a value measured in accordance with "Paper and paperboard - Method for measuring basis weight" JIS P8124 (2011). 2 If the basis weight is less than 60.0 g / m, the strength of the patterned paper will be low and it may not be suitable for use as packaging material. 2 If the stiffness exceeds this value, the stiffness will be too high and the paper may not be suitable for use as a packaging material. The basis weight is the value for the entire patterned paper, regardless of whether the patterned paper is a single layer or a laminate.
[0029] (Thickness) The thickness of the patterned paper according to this embodiment is not particularly limited, but is preferably 15 to 80 μm. The density is a value measured in accordance with JIS P 8118 (2014).
[0030] (density) The density of the patterned paper according to this embodiment is not particularly limited, but is preferably 0.20 to 1.00 g / cm 3 It is preferable that the density is a value measured in accordance with JIS P 8118 (2014).
[0031] (tensile strength) The tensile strength in the machine direction of the patterned paper according to this embodiment is not particularly limited, but is preferably 0.20 kN / m or more. The tensile strength is a value measured in accordance with "Paper and paperboard - Testing methods for tensile properties" JIS P 8113 (2006).
[0032] (Manufacturing method) When producing the patterned paper according to this embodiment as a single-layer mixed paper, the patterned paper can be produced by wet-laid papermaking using a raw material containing pulp fibers and hollow flat rayon fibers but not containing a PVA-based resin, and then drying the resulting wet paper.
[0033] Furthermore, when patterned paper is constructed as a laminate of two or more layers, the patterned paper can be produced by wet-laid papermaking a first raw material containing pulp fibers but not PVA-based resin, and wet-laid papermaking a second raw material containing hollow flat rayon fibers but not PVA-based resin, and then stacking and pressing the layers made from the first raw material and the second raw material, and drying them. The first raw material may contain hollow flat rayon fibers with a fiber length of less than 10 mm in addition to the pulp fibers. The second raw material may contain pulp fibers in addition to the hollow flat rayon fibers.
[0034] The paper is preferably dried using a Yankee dryer. When dried using a Yankee dryer, one side of the resulting patterned paper becomes glossy, and the smoothness is increased, improving printability.
[0035] After the drying step, calendering can be performed to increase the smoothness of the patterned paper and improve its printability, but calendering is not always necessary and can be omitted.
[0036] The calendering process can be carried out using calendering equipment such as a hard nip calender, soft calender, or super calender. The drying process can also be carried out using calendering equipment that combines a metal roll and an elastic roll. The metal roll is a heated calender roll made of cast steel. The elastic roll is a calender roll on the non-heated side that is made of a material such as cotton, epoxy resin, special polyester, or aramid. The Shore hardness of the elastic roll is preferably D60 or more and D95 or less.
[0037] The linear pressure in the calendering step is preferably 30 kg / cm or more and 350 kg / cm or less. From the viewpoint of improving the uniformity of the thickness of the laminating packaging paper, the linear pressure in the calendering step is more preferably 80 kg / cm or more and 180 kg / cm or less.
[0038] The surface temperature (heating temperature) of the metal roll in the calendering step is preferably 70° C. or higher and 200° C. or lower. From the viewpoint of preventing a decrease in the tensile strength of the wrapping paper to be laminated, the surface temperature of the metal roll in the calendering step is more preferably 80° C. or higher and 180° C. or lower.
[0039] As described above, the patterned paper according to this embodiment contains pulp fibers and hollow flat rayon fibers with a fiber length of 10 mm to 20 mm, and does not contain binders such as PVA resin, PVA-derived fibers, or vinylon fibers. However, the hollow flat rayon fibers can be fixed to the patterned paper by hydrogen bonding with the pulp fibers or between the hollow flat rayon fibers. Furthermore, by setting the fiber length of the hollow flat rayon fibers to 10 mm to 20 mm, a dragon pattern can be formed, and patterned paper with a texture similar to that of cloud dragon paper can be obtained. [Example]
[0040] Examples of specific implementations of the patterned paper according to the present invention will be described below. However, the present invention is not limited to these examples. Furthermore, the parts by mass, % by mass, and % shown in the examples indicate values of dry solids or substantial components.
[0041] Each internal additive was added to a raw material slurry containing fibers in the formulation shown in Table 1 (0.2% by mass for the wet strength agent), which was then fed into a cylinder paper machine for wet papermaking. The wet-made paper was then dried in a Yankee dryer to produce the papers of Examples 1 to 12 and Comparative Examples 1 to 6.
[0042] [Table 1]
[0043] The basis weight, thickness, density, tensile strength (longitudinal and transverse), surface PPS smoothness and Beck smoothness of the obtained paper were measured. The measurement methods are as follows. The basis weight was measured in accordance with JIS P8124 (2011) "Paper and paperboard - Method for measuring basis weight." The thickness and density were measured in accordance with JIS P 8118 (2014) "Paper and paperboard - Test methods for thickness, density and specific volume." The tensile strength was measured based on JIS P 8113 (2006) "Paper and paperboard - Testing methods for tensile properties." The surface smoothness of PPS was measured based on Appendix A of JIS-P8151 (2004) "Paper and paperboard - Surface roughness and smoothness test method (air leak method) - Print surf tester method." Beck smoothness was measured in accordance with JIS P 8119 (1998) "Paper and paperboard - Smoothness test method using a Beck smoothness tester."
[0044] The surface of the resulting paper was visually inspected, and the state of formation of the Unryu paper-like dragon pattern was visually evaluated according to the following criteria. ○: A dragon pattern is formed, and the paper has an excellent texture as Unryu paper. △: The dragon pattern is a little small, but it has a texture similar to Unryu paper. ×: The dragon pattern is not formed, and the texture is different from Unryu paper.
[0045] Table 2 shows the above measured values and the evaluation values for packaging suitability.
[0046] [Table 2]
[0047] As shown in Table 2, the papers of Examples 1 to 12 were made from raw materials containing pulp fibers and hollow flat rayon fibers, but no rayon fibers other than hollow flat rayon fibers or vinylon fibers, and all had a dragon pattern similar to Unryu paper. Furthermore, although the papers of Examples 1 to 12 did not contain a binder, they did not fall off due to the self-fixing properties of the hollow flat rayon fibers.
[0048] In contrast, the papers of Comparative Examples 1 and 2 used rayon fibers that did not have a hollow flat structure, and therefore it was essential to add vinylon fibers as a binder to fix the rayon fibers that did not have a hollow flat structure.
[0049] The paper of Comparative Example 3 used hollow flat rayon fibers, but the hollow flat rayon fibers were too long, so the hollow flat rayon fibers were bound together and did not form a dragon pattern.
[0050] Since the paper of Comparative Example 4 was made from hollow flat rayon fibers and rayon fibers without a hollow flat structure, it was essential to add vinylon fibers as a binder to fix the rayon fibers without a hollow flat structure.
[0051] The paper of Comparative Example 5 was made using only hollow flat rayon fibers, but no dragon pattern was formed.
[0052] The paper of Comparative Example 6 was a blend of hollow flat rayon fibers and rayon fibers that did not have a hollow flat structure, so it was essential to add vinylon fibers as a binder to fix the rayon fibers that did not have a hollow flat structure. [Industrial Applicability]
[0053] The present invention can be used as a patterned paper having a texture similar to that of Unryu paper and as a method for manufacturing the same.
Claims
1. The patterned paper contains pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, does not contain a PVA-based resin, and has a surface PPS smoothness of 2.0 to 4.0 μm in the patterned portion of the patterned paper.
2. A patterned paper containing pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, containing no PVA-based resin, and containing 0.05 mass % or more and 2.0 mass % or less of a wet strength agent.
3. A patterned paper containing pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, not containing PVA-based resin, and having a thickness of 15 μm or more and 71 μm or less.
4. The patterned paper according to any one of claims 1 to 3, wherein the content of the pulp fibers is 30.0% by mass or more and 99.5% by mass or less, and the content of the hollow flat rayon fibers is 0.5% by mass or more and 70.0% by mass or less.
5. A method for producing patterned paper according to any one of claims 1 to 4, comprising a step of making paper from a raw material containing pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, and not containing a PVA-based resin.
6. A step of making a first raw material containing pulp fibers and not containing a PVA-based resin; a step of making a second raw material containing hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less and not containing a PVA-based resin; and laminating a layer made from the first raw material and a layer made from the second raw material.
7. A process of wet-processing a raw material containing pulp fibers and hollow flat rayon fibers having a fiber length of 10 mm or more and 20 mm or less, and not containing a PVA-based resin; and drying the obtained wet paper without subjecting it to a high-pressure water jet treatment.
Citation Information
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