Film manufacturing method

By shielding the ends of the raw sheet during heating and stretching, the method addresses the issue of wrinkles in film production, ensuring smooth and wrinkle-free film manufacturing.

JP7840182B2Active Publication Date: 2026-04-03KANEKA CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-03-16
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

When a raw sheet is stretched in the conveyance direction, it tends to contract in the width direction, leading to wrinkles in the film.

Method used

A method involving heating the raw sheet by radiation from a heater while using shielding members to cover each end, which shields radiation from the heater, and employing a reflector to control heat distribution, thereby reducing end heating and maintaining end rigidity during stretching.

Benefits of technology

This approach effectively reduces the occurrence of wrinkles in the film by maintaining the integrity of the sheet ends during stretching, allowing for smooth and wrinkle-free film production.

✦ Generated by Eureka AI based on patent content.

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Abstract

To prevent wrinkles from occurring when stretching the raw fabric.SOLUTION: A method for producing a film includes the step for heating the transported raw fabric (S) by radiation from a heater (4) to stretch it in the stretching direction, wherein both ends (14, 16) of the raw fabric (S) are covered with shields (S1, S2) that block the radiation from the heater (4).SELECTED DRAWING: Figure 2
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Description

Technical Field

[0006] , ,

[0001] The present disclosure relates to a method for manufacturing a film and a manufacturing apparatus.

Background Art

[0002] Patent Documents 1 to 5 disclose a method for manufacturing a film including a step of stretching a raw sheet.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Patent Document 2

Patent Document 3

Patent Document 4

Patent Document 5

Summary of the Invention

Problems to be Solved by the Invention

[0004] When the raw sheet is stretched in the conveyance direction, the raw sheet tends to contract in the width direction. Due to this contraction, there is a problem that wrinkles occur in the film.

Means for Solving the Problems

[0005] In order to solve the above problems, a method for manufacturing a film according to one aspect of the present disclosure includes a step of heating a conveyed raw sheet by radiation from a heater and stretching it in the conveyance direction, and in the step (1), each of both ends of the raw sheet is covered with a shielding member that shields radiation from the heater.

[0006] A method for manufacturing a film according to one aspect of this disclosure may be a method in which the heater is a far-infrared heater.

[0007] A method for manufacturing a film according to one aspect of the present disclosure may be a method in which the shielding material is inserted between the heater and each of the ends of the raw material in step (1).

[0008] A method for manufacturing a film according to one aspect of the present disclosure may involve using a reflector provided on the opposite side of the heater to the raw material in step (1).

[0009] A method for manufacturing a film according to one aspect of the present disclosure may be a method in which the shielding material is inserted between the reflector and each of the ends of the raw material in step (1).

[0010] A method for manufacturing a film according to one aspect of the present disclosure may be a method in which the shielding material includes at least one selected from the group including stainless steel and steel.

[0011] A method for manufacturing a film according to one aspect of the present disclosure may be a method in which the width of the shielding covering each of the two ends is 3 mm or more and less than 30 mm.

[0012] A method for manufacturing a film according to one aspect of this disclosure may be a method in which the shielding material has a portion that does not overlap with the raw material in a plan view.

[0013] A method for manufacturing a film according to one aspect of the present disclosure may be a method in which the raw material includes at least one selected from the group including polyimide, polyethylene terephthalate, polyethylene naphthalate, polypropylene, and polyester.

[0014] In one aspect of the present disclosure, the method for manufacturing a film is a method in which the stretching method in step (1) is uniaxial stretching using a drive roll.

[0015] The method for manufacturing a film according to one aspect of the present disclosure may be a method in which, in the step (1), the central portion between both ends of the raw sheet is not covered with the shielding material.

[0016] The method for manufacturing a film according to one aspect of the present disclosure may be a method of continuously performing the step (1) to manufacture a long film.

[0017] The method for manufacturing a film according to one aspect of the present disclosure may be a method in which the step (2) of removing both ends of the raw sheet is performed on the raw sheet after the step (1).

[0018] The method for manufacturing a film according to one aspect of the present disclosure may be a method of separating both ends from the raw sheet using a blade in the step (2).

[0019] The method for manufacturing a film according to one aspect of the present disclosure may be a method in which the film is a transparent polyimide film having a total light transmittance of 80% or more per 50 μm thickness.

[0020] The method for manufacturing a film according to one aspect of the present disclosure may be a method in which the film is a thermoplastic film.

[0021] The film manufacturing apparatus according to one aspect of the present disclosure includes a heater that heats a conveyed raw sheet by radiation, a shielding material that covers each of both ends of the raw sheet and shields radiation from the heater, and a stretching unit that stretches the raw sheet in the conveying direction.

Advantages of the Invention

[0022] According to one aspect of the present disclosure, it is possible to realize a method and an apparatus for manufacturing a film in which a raw sheet is stretched while reducing the occurrence of wrinkles.

Brief Description of the Drawings

[0023] [Figure 1] It is a schematic diagram showing an example of the schematic configuration of a film manufacturing apparatus according to one embodiment of the present disclosure. [Figure 2]This is a cross-sectional view of the portion of the schematic configuration shown in Figure 1 where the raw material is heated and stretched. [Figure 3] This is a perspective view showing the portion of the schematic configuration shown in Figure 1 where both ends are cut off from the raw material. [Figure 4] This is a plan view showing the raw material S before stretching in the comparative example. [Figure 5] This is a plan view showing the stretched raw material S in the comparative example. [Figure 6] This is a plan view showing the stretched raw material in one embodiment of the present disclosure. [Figure 7] This is a schematic diagram showing an example of the schematic configuration of a film manufacturing apparatus according to another embodiment of the present disclosure. [Figure 8] This is a cross-sectional view of the portion of the schematic configuration shown in Figure 7 where the raw material is heated and stretched. [Modes for carrying out the invention]

[0024] [Embodiment 1] (Manufacturing method) Hereinafter, a method for manufacturing a thermoplastic film F according to one embodiment of this disclosure will be described with reference to Figures 1 to 3.

[0025] Figure 1 is a schematic diagram showing an example of the general configuration of the film manufacturing apparatus 2 according to this embodiment. Figure 1 is a view of the raw material roll S from a direction perpendicular to a plane that is parallel to the length direction of the raw material roll S and perpendicular to the width direction of the raw material roll S, with the upstream side of the raw material roll S conveyance on the left and the downstream side on the right. In Figure 1, the conveyance direction is the length direction of the raw material roll S.

[0026] Figure 2 is a cross-sectional view taken along the AB arrow, showing the portion of the schematic configuration shown in Figure 1 in which the raw material S is heated and stretched. Figure 3 is a perspective view showing the portion of the schematic configuration shown in Figure 1 in which both ends 14 and 16 are cut off from the raw material S. In Figure 3, the upstream side of the raw material S transport is shown towards the back, and the downstream side is shown towards the front.

[0027] First, the raw material S is transported through the conveyor roll R1 to the drive roll R2. The drive roll R2 then rotates while gripping the raw material S between itself and the nip roll N1, driving the transport of the raw material S. Next, the raw material S is transported to another drive roll R3. The drive roll R3 then rotates while gripping the raw material S between itself and the nip roll N2, driving the transport of the raw material S. The transport speed by the downstream drive roll R3 is greater than the transport speed by the upstream drive roll R2. Due to this speed difference, tension in the transport direction is applied to the raw material S between the drive rolls R2 and R3. At the same time, the heater 4 heats the raw material S by radiation between the drive rolls R2 and R3. As a result, the raw material S is uniaxially stretched by the drive rolls R2 and R3, and the direction of this stretching is the transport direction.

[0028] Furthermore, while the roll of raw material S is being heated and stretched, the shields S1 and S2 cover one side of each of the ends 14 and 16 of the roll of raw material S so as not to cover the central part 18 of the roll of raw material S. Specifically, the first shield S1 is inserted between the heater 4 and the first end 14 of the roll of raw material S, and the second shield S2 is inserted between the heater 4 and the second end 16 of the roll of raw material S. This reduces the heating of both ends 14 and 16 of the roll of raw material S by the heater 4. The first end 14 is one end in the width direction of the roll of raw material S, and the second end 16 is the other end in the width direction of the roll of raw material S. The width direction of the roll of raw material S intersects or is approximately perpendicular to the conveying direction.

[0029] The heater 4 may be a far-infrared heater. The heater 4 heats the raw material S such that the surface temperature of the central part 18 of the raw material S is in the range from near the glass transition temperature of the raw material S to near the softening temperature of the raw material S. The central part 18 of the raw material S is located between the ends 14 and 16 of the raw material S. Under heating, the surface temperature of the central part 18 of the raw material S may be in the range from 30 degrees Celsius lower than the glass transition temperature of the raw material S to 20 degrees Celsius higher than the softening temperature of the raw material S. Preferably, the surface temperature under heating is in the range from 20 degrees Celsius lower than the glass transition temperature of the raw material S to the softening temperature of the raw material S. Furthermore, a reflector 6 may be provided on the opposite side of the heater 4 from the raw material S. The reflector 6 reflects the heat or heat rays radiated from the heater 4 towards the raw material S.

[0030] Here, the glass transition temperature (Tg) is defined as the temperature at the inflection point obtained by plotting the correlation between the storage modulus of the raw material S and the measured temperature, after measuring the dynamic viscoelasticity of the raw material S. The dynamic viscoelasticity of the raw material S is measured using a DMS-200 manufactured by Seiko Electronics Industries, Ltd., with a measurement jig spacing of 20 mm and a frequency of 5 Hz. Furthermore, the temperature at which the storage modulus at the inflection point is 1 / 1000 of the storage modulus is defined as the softening temperature (Tm).

[0031] Next, the raw material S is transported to the conveyor roll R4 while dissipating heat. Then, on the conveyor roll R4, or between the conveyor roll R4 and the next conveyor roll R5, both ends 14 and 16 are removed from the raw material S to obtain a thermoplastic film F. For example, a blade 8 is provided on the conveyor roll R4, or between the conveyor roll R4 and the next conveyor roll R5, and the blade 8 is used to cut off both ends 14 and 16 from the raw material S.

[0032] Next, the thermoplastic film F is further conveyed via the conveyor roll R5. Meanwhile, the removed ends 14 and 16 are collected in the recovery unit 12. For example, the recovery unit 12 may include a winding device for winding up the first end 14 and a winding device for winding up the second end 16.

[0033] By continuously performing the above process, a long thermoplastic film F can be manufactured.

[0034] (manufacturing equipment) As shown in Figures 1 to 3, the film manufacturing apparatus 2 according to this embodiment is a thermoplastic film F manufacturing apparatus and comprises a heater 4 for heating the raw material S being conveyed, shielding objects S1 and S2 that cover the heater 4-side surfaces of both ends 14 and 16 of the raw material S and shield from radiation from the heater 4, and drive rolls R2 and R3 and nip rolls N1 and N2 (stretching section) for stretching the raw material S in the conveying direction. The film manufacturing apparatus 2 may further include a blade 8 (removal section) for removing both ends 14 and 16, conveying rolls R1, R4, and R5, and a recovery section 12.

[0035] (Shielding and raw material) The shielding objects S1 and S2 and the raw material S will be explained below, with reference to Figure 2 once again.

[0036] The shields S1 and S2 shield the radiation from the heater 4. The shields S1 and S2 may either reflect or absorb the radiated electromagnetic waves. If absorption occurs, it is preferable that the shields S1 and S2 are connected to or have a heat dissipation section. The shields S1 and S2 may include, for example, at least one selected from the group including stainless steel (SUS) and steel. For example, structural rolled steel (SS) can be used as the steel. It is preferable that the shields S1 and S2 are the same as each other, but they may be different from each other.

[0037] The width W3 over which the shields S1 and S2 cover each of the ends 14 and 16 of the raw material S is selected so that both ends 14 and 16 of the raw material S can be stretched together with the central part 18 of the raw material S, while the ends 14 and 16 of the raw material S are not softened by heating. This covering width W3 is the width of the portion 22 of each of the shields S1 and S2 that overlaps with the raw material S in a plan view. For this reason, the covering width W3 is preferably 3 mm or more and less than 30 mm when the width W2 of the raw material S is 300 mm and the distance D1 from the shields S1 and S2 to the raw material S is 5 mm. That is, the ratio of the covering width W3 to the width W2 of the raw material S (W3 / W2) is preferably 1% or more and 10% or less. The distance D1 from the shield S1 to the raw material S is the distance from the surface of each shield S1 and S2 on the raw material S side to the corresponding surface of the raw material S on the shield S1 and S2 side. The width W1 of the first shielding S1 covering the first end 14 and the width W1 of the second shielding S2 covering the second end 16 are preferably the same, but they may be different. Also, the distance D1 from the first shielding S1 to the raw material S and the distance D1 from the second shielding S2 to the raw material S are preferably the same, but they may be different.

[0038] Furthermore, each of the shields S1 and S2 may have a portion 24 that does not overlap with the raw material S in a plan view. This non-overlapping portion 24 protrudes outward from the raw material S in the width direction. This non-overlapping portion 24 can function as a heat dissipation portion. The width W4 of the non-overlapping portion 24 of the first shield S1 and the width W4 of the non-overlapping portion 24 of the second shield S2 are preferably the same, but they may be different.

[0039] The glass transition temperature of the base material S may be, for example, 60 degrees Celsius or more and 370 degrees Celsius or less. The base material S may contain at least one selected from the group including, for example, polyimide, polyethylene terephthalate, polyethylene naphthalate, polypropylene, and polyester. It is preferable that the base material S contains polyimide so that the thermoplastic film F is a transparent polyimide film with a total light transmittance of 80% or more per 50 μm thickness. Here, the total light transmittance should be measured in accordance with JIS standard K7361-1:1997.

[0040] By covering one side of both ends 14 and 16 of the raw material roll S with shields S1 and S2, both ends 14 and 16 are not heated or softened. In other words, the rigidity of both ends 14 and 16 of the raw material roll S is maintained even while the raw material roll S is heated and stretched. Therefore, by applying a large tension to the raw material roll S and stretching it, the shrinkage in the width direction of the raw material roll S caused by stretching can be reduced. In addition, breakage of the raw material roll S in the transport direction is prevented. The tensile strength is the applied tension when pulled to the breaking limit, and should be measured in accordance with JIS standard K7127:1999. [Examples]

[0041] The comparative examples and embodiments of this disclosure will be described below with reference to Figures 4 to 6.

[0042] [Comparative Example 1] Figure 4 is a plan view showing the raw material S before stretching in Comparative Example 1. Figure 5 is a plan view showing the raw material S after stretching in Comparative Example 1.

[0043] In Comparative Example 1, stainless steel plates were used as shielding materials S1 and S2. The width W1 of shielding materials S1 and S2 was 50 mm, the thickness was 5 mm, and the length was 300 mm. Shielding materials S1 and S2 were installed across the drive rolls R2 and R3 such that they did not completely cover the raw material S. That is, the covering width W3 was 0 mm. The raw material S was a colorless, transparent polyimide film with a width W2 of 300 mm, a thickness of 50 μm, a tensile strength per unit width in the length direction of 17000 N / m, and a glass transition temperature of 300 degrees Celsius. The width W2 of the raw material S at this time was defined as "width W2b before stretching".

[0044] As shown in Figure 4, marks M1 and M2 were placed on the central part 18 of the raw material S, separated along the length of the raw material S. The distance D2 between marks M1 and M2 was then measured. This measured distance D2 was defined as the "length before stretching D2b".

[0045] Next, the raw material S was sandwiched between the drive roll R2 and the nip roll N1, and between the drive roll R3 and the nip roll N2. At this time, the distance from the raw material S to the heater 4 was 40 mm, and the distance from the raw material S to the reflector 6 was 20 mm. Then, the raw material S was heated by the heater 4 and the reflector 6, and the raw material S was uniaxially stretched by the drive rolls R2, R3 and the nip rolls N1, N2. At this time, the conveying speed of the raw material S was 0.4 m / min, and the tension applied to the raw material S in the conveying direction was 188 N / m. The heater 4 was a far-infrared heater, and the surface temperature of the central part 18 of the raw material S reached a temperature range of 300 degrees Celsius or more and 350 degrees Celsius or less.

[0046] The stretching of the raw material S was completed without any breakage. After the stretching was completed, the raw material S was removed from between the drive roll R2 and the nip roll N1, and from between the drive roll R3 and the nip roll N2.

[0047] As shown in Figure 5, the width W2 of the roll S was then measured at the position where its width W2 was smallest, and this measured width W2 was defined as the "stretched width W2a". The distance D2 between marks M1 and M2 was also measured, and this measured distance D2 was defined as the "stretched length D2a". The stretching rate (%) in the transport direction and the shrinkage rate (%) in the width direction of the roll S were then calculated as follows.

[0048] Elongation ratio in the transport direction = (D2a - D2b) / D2b * 100% Shrinkage rate in the width direction = (W2b - W2a) / W2b * 100% The asterisk (*) is an operator that indicates multiplication.

[0049] The stretched portion of the raw material S had wrinkles C1 at both ends 14, 16 and in the center 18. The wrinkles C1 generally extended diagonally with respect to the stretching direction and the width direction.

[0050] [Comparative Example 2] Comparative Example 2 was carried out in the same manner as Comparative Example 1, except that the shielding objects S1 and S2 were installed so that they covered both ends 14 and 16 of the raw material S with a constant width W3, and the width W3 was 30 mm, across the drive rolls R2 and R3. As a result, the raw material S did not stretch.

[0051] [Example 1] Example 1 was carried out in the same manner as Comparative Example 2, except that the width W3 of the shielding objects S1 and S2 covering both ends 14 and 16 was 5 mm.

[0052] Figure 6 is a plan view showing the stretched raw material S in Example 1. As shown in Figure 6, the stretched portion of the raw material S had wrinkles C2 only at both ends 14 and 16, while the central portion 18 was wrinkle-free. The wrinkles C2 extended generally parallel to the stretching direction.

[0053] [Example 2] Example 2 was carried out in the same manner as Comparative Example 2, except that the width W3 of the shielding objects S1 and S2 covering both ends 14 and 16 was 20 mm. As a result, similar to Example 1, wrinkles C2 were present only at both ends 14 and 16.

[0054] The stretch ratio in the transport direction and shrinkage ratio in the width direction of the raw material S, calculated in Comparative Examples 1 and 2 and Examples 1 and 2 described above, are shown in Table 1 below.

[0055] [Table 1] As shown in Table 1, in the range where the width W3 of the shielding objects S1 and S2 covering both ends 14 and 16 is greater than 0 mm and less than 30 mm, the stretching rate of the raw material S in the transport direction was greater than 0%, and the shrinking rate of the raw material S in the width direction was 5% or less. Furthermore, in this range, there were no wrinkles in the central part 18 of the stretched portion of the raw material S.

[0056] [Embodiment 2] Other embodiments of this disclosure are described below. For the sake of clarity, components having the same function as those described in the above embodiments are denoted by the same reference numerals, and their descriptions are not repeated.

[0057] Figure 7 is a schematic diagram showing an example of the general configuration of the film manufacturing apparatus 2 according to this embodiment. Figure 7 is a view taken from a direction perpendicular to a plane that is parallel to the length direction of the raw material roll S and perpendicular to the width direction of the raw material roll S, with the upstream side of the raw material roll S conveyance on the left and the downstream side on the right. In Figure 8, the conveyance direction is the length direction of the raw material roll S. Figure 8 is a cross-sectional view taken along the arrow AB, showing the portion of the schematic configuration shown in Figure 7 in which the raw material roll S is heated and stretched.

[0058] As shown in Figures 7 and 8, the method for manufacturing the thermoplastic film F according to this embodiment is equivalent to the method for manufacturing the thermoplastic film F according to Embodiment 1 described above, except that the shields S1 to S4 cover both sides of each of the ends 14 and 16 of the raw material S. Specifically, in the manufacturing method according to this embodiment, a first shield S1 is inserted between the heater 4 and the first end 14 of the raw material S, a second shield S2 is inserted between the heater 4 and the second end 16 of the raw material S, a third shield S3 is inserted between the reflector 6 and the first end 14 of the raw material S, and a fourth shield S4 is inserted between the reflector 6 and the second end 16 of the raw material S.

[0059] By covering both ends 14 and 16 with shielding materials S1 to S4, heating to both ends 14 and 16 is further reduced, thereby further reducing shrinkage in the width direction of the raw material S caused by stretching.

[0060] The film manufacturing apparatus 2 according to this embodiment further includes, in addition to the configuration of the film manufacturing apparatus 2 according to the first embodiment described above, shielding objects S1 and S2 that cover the reflector 6 side of each of the two ends 14 and 16 of the raw material roll S.

[0061] This disclosure is not limited to the embodiments described above, and various modifications are possible within the scope of the claims. Embodiments obtained by appropriately combining the technical means disclosed in different embodiments are also included in the technical scope of this disclosure. [Explanation of symbols]

[0062] 2 Manufacturing equipment 4 Heaters 6 Reflector 8 blades 14,16 End F Thermoplastic film (film) N1, N2 Nip Roll R1, R4, R5, R6, R7 Conveyor Rolls R2, R3 Drive Roll S Original fabric S1,S2,S3,S4 Shield W1, W2, W3, W4 width

Claims

1. A method for manufacturing a film, (1) The process includes heating the conveyed raw material by radiation from a heater and stretching it in the conveying direction, In step (1) above, each of the ends of the raw material is covered with a shield to block radiation from the heater, while the central part of the raw material between the ends is not covered with the shield, and the surface temperature of the central part of the raw material is heated to a temperature ranging from 30 degrees Celsius lower than the glass transition temperature of the raw material to 20 degrees Celsius higher than the softening temperature of the raw material. Let W2 be the width of the raw material, and let W3 be the width over which the shielding material covers each of the ends of the raw material in step (1), such that W3 / W2 is 1% or more and 10% or less. A method for producing a film, characterized in that the raw material comprises at least one selected from the group consisting of polyimide, polyethylene terephthalate, polyethylene naphthalate, polypropylene, and polyester.

2. The method for manufacturing a film according to claim 1, characterized in that the heater is a far-infrared heater.

3. The method for manufacturing a film according to claim 2, characterized in that, in step (1) above, the shielding material is inserted between the heater and each of the ends of the raw material.

4. The method for manufacturing a film according to claim 2 or 3, characterized in that, in step (1), a reflector provided on the side opposite to the heater with respect to the raw material.

5. The method for manufacturing a film according to claim 4, characterized in that, in step (1) above, the shielding material is inserted between the reflector and each of the ends of the raw material.

6. The method for manufacturing a film according to any one of claims 1 to 5, characterized in that the shielding material includes at least one selected from the group including stainless steel and steel materials.

7. The method for manufacturing a film according to any one of claims 1 to 6, characterized in that the width of the shield covering each of the two ends is 3 mm or more and less than 30 mm.

8. The method for manufacturing a film according to any one of claims 1 to 7, characterized in that the shielding material has a portion that does not overlap with the raw material in a plan view.

9. The method for manufacturing a film according to any one of claims 1 to 8, characterized in that the stretching method in step (1) is uniaxial stretching using a driven roll.

10. A method for manufacturing a film according to any one of claims 1 to 9, characterized in that the above step (1) is carried out continuously to manufacture a long film.

11. (2) The method for manufacturing a film according to any one of claims 1 to 10, characterized in that the step of removing both ends of the raw material is performed on the raw material after step (1).

12. The method for manufacturing a film according to claim 11, characterized in that in step (2) above, the ends of the raw material are cut off using a blade.

13. The method for manufacturing a film according to any one of claims 1 to 12, characterized in that the film is a transparent polyimide film having a total light transmittance of 80% or more per 50 μm thickness.

14. The method for manufacturing a film according to any one of claims 1 to 13, characterized in that the film is a thermoplastic film.

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