Thin film winding device and connection device between thin film stretching device and thin film winding device

The thin film winding device addresses the challenge of high-speed winding by dynamically adjusting the winding angle and stabilizing the film with support rolls and static eliminators, ensuring reliable and wrinkle-free winding for diverse film types.

JP7724082B2Active Publication Date: 2025-08-15BRUCKNER MASCHINEHAU GMBH & CO KG
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Patent Information

Application Number
JP2021093358
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2020-06-05
Filing Date
2021-06-03
Publication Date
2025-08-15
Estimated Expiration
2041-06-03

AI Technical Summary

Technical Problem

Existing thin film winding devices struggle to reliably wind thin films without causing wrinkles or airflow vibrations, particularly at high operating speeds, and fail to optimize the winding angle for different film properties.

Method used

A thin film winding device with an adjustable winding angle mechanism, utilizing a contact roll and an adjustment roll, where the adjustment roll is moved relative to the contact roll via displacement devices to set the optimal winding angle based on film properties and conditions, and includes support rolls and static eliminators to stabilize the film.

Benefits of technology

The device ensures reliable winding without wrinkles or cracks, accommodating various film types by dynamically adjusting the winding angle, and maintaining film stability through support rolls and eliminating static charge.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a thin film winding device capable of reliably winding a thin film and a connection device between a thin film stretching device and the thin film winding device.SOLUTION: A thin film winding device 1 for a thin film stretching device includes a thin film inlet region 3 for supplying a thin film 2 to be wound to the thin film winding device 1. A first winding drum 4 is arranged at a winding position for winding the thin film 2 on a thin film winding drum 5. A contact roll 6 arranged adjacent to the first winding drum 4 at the winding position guides the thin film 2 to the first winding drum 4, an adjustment roll 8 arranged upstream of the contact roll 6 in a moving direction of the thin film 2 guides the thin film 2 to the contact roll 6. A first displacement device 10 moves the adjustment roll 8 with respect to the contact roll 6 along a movement path to change a winding angle of the thin film 2 wound around the contact roll 6.SELECTED DRAWING: Figure 3A
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Description

[Technical Field]

[0001] The present invention relates to a thin film winding apparatus and a connection device for connecting the thin film winding apparatus to a thin film stretching apparatus. [Background technology]

[0002] Resin films (sheets, webs) produced from molten resin using a thin film stretching device are adapted for specific purposes and have specific material properties. The thin film stretching device has multiple stretching stages in the longitudinal and / or transverse directions. The operating speed of thin film stretching devices is constantly increasing, and today's thin film stretching devices already have a rotation speed exceeding 400 m / min. In the future, even faster thin film stretching devices will likely be operated. As the operating speed of thin film stretching devices increases, improving the winding method for the final thin film product is also an important consideration. For this reason, multiple thin film winding devices have been proposed for winding the thin film. When winding the thin film, it is important to prevent wrinkles from occurring in the film while simultaneously trapping a sufficient amount of air between the wound layers of the film so that the layers can be easily separated and unwound later. The film is wound around a winding drum having a suitable base for winding the film. As is well known, when a thin film is wound onto a reel, a contact roll must feed the film onto the reel and maintain the film at an optimal orientation or wrap angle before winding. For example, the film may contact the contact roll at a wrap angle of 90° or 0°. When the wrap angle (also referred to as the wrap angle) of the film relative to the contact roll is 0°, the film travels between the contact roll and the film drum (also referred to as the take-up drum) and is wound onto the film drum. At a wrap angle of 90°, the film is turned 90° by the contact roll before contacting the film drum. Higher speed thin film stretching devices undoubtedly leave room for improvement, as is known to those skilled in the art. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] German Patent Application Publication No. 10 2009 048 074A1 Summary of the Invention [Problem to be solved by the invention]

[0004] SUMMARY OF THE INVENTION Accordingly, an object of the present invention is to provide a thin film winding device that can reliably wind up a thin film, and a connection device for connecting a thin film stretching device and the thin film winding device. [Means for solving the problem]

[0005] The problem of the present invention is solved by a thin film winding device according to claim 1. The remaining dependent claims show advantageous improved embodiments of the thin film winding device.

[0006] The thin film winding device of the present invention has a thin film inlet area through which the thin film to be wound is fed into the thin film winding device. A first winding drum is provided in a winding position for winding the thin film onto the thin film winding drum. A contact roll and an adjustment roll are also provided. The contact roll, which is arranged (directly) adjacent to the first winding drum (when in the winding position), guides the thin film to the first winding drum. The term "directly" should be understood to mean that the contact roll is in contact with the thin film winding drum or that only the thin film being wound onto the thin film winding drum moves between the contact roll and the thin film winding drum. However, a gap may be formed between the contact roll and the thin film winding drum. The gap, i.e., the distance between the contact roll and the thin film winding drum, is preferably less than 100 cm, 80 cm, 70 cm, 60 cm, 50 cm, 40 cm, 30 cm, 20 cm, 10 cm, 5 cm, 3 cm, 2 cm, 1 cm, or 0.5 cm. The adjustment roll, which is arranged upstream of the contact roll in the direction of thin film movement, guides the thin film to the contact roll. The term "direction of movement of the thin film" should be understood to mean that the thin film moves over the adjustment roll in an initial region and then over the contact roll. The first displacement device provided in the thin film winding device of the present invention can also move the adjustment roll relative to the contact roll along the movement path to change the wrapping angle of the thin film covering the contact roll. The "wrapping angle" is the angular value of the thin film wrapped around the contact roll. The contact roll has an outer circumference of 360°. At a wrapping angle of 90°, the thin film wraps around only 1 / 4 of the outer surface of a cylindrical contact roll. At a wrapping angle of 180°, the thin film wraps around half of the outer surface of a cylindrical contact roll.

[0007] An adjustment structure that allows for a change in the winding angle is particularly advantageous. The adjustment structure is realized by a winding structure in which the thin film is first wound around an adjustment roll, and then the thin film wound around the adjustment roll is brought into contact with or wound around a contact roll. By changing the position of the adjustment roll relative to the contact roll, the angular region of the thin film that contacts the contact roll can be adjusted, thereby changing the winding angle. Therefore, the present invention allows for the selection of a winding angle that meets various thin film conditions. That is, the winding angle can be optimized to meet the thin film properties, such as the material thickness, material strength, material elastic modulus, or shrinkage rate. Furthermore, the optimal winding angle for achieving the best thin film winding drum can be set for each material. At small winding angles, the contact roll has little effect on the thin film tension force. At large winding angles, the influence on the thin film tension force (due to the driving torque or braking torque of the contact roll) increases. As a result of the research of the present inventors, it was found that a small winding angle is advantageous for a thick thin film, while a large winding angle is advantageous for a thin thin film. This is because a thick thin film is less likely to experience airflow vibration (fluttering) than a thin thin film. A highly rigid thin film can be wound well at a winding angle of approximately 0°, but for example, a shrinkable thin film can be wound well by adopting a large winding angle. In particular, it was found that a shrinkable thin film can be wound at a winding angle of approximately 90° (with a deviation of less than 3°), while a thick or highly rigid thin film should be wound at a winding angle of approximately 0° (with a deviation of less than 3°).

[0008] Another embodiment of the thin film winding device proposes a first displacement device that moves the adjusting roll along a movement path relative to the contact roll during operation, i.e., while the thin film is being wound, thereby changing the winding angle during operation, thereby enabling quick response to changes in the parameters of the thin film. For example, when the thin film to be produced moves very quickly, a different winding angle may be required. In this case, it is not necessary to loosen the locking screws and reconfigure inconvenient device parts to accommodate rapid production. When changing the winding angle, the first displacement device can continuously move the adjusting roll relative to the contact roll. It is also possible to move the adjusting roll at each stage (e.g., while the contact roll is fixed).

[0009] The first displacement device moves the adjustment roll in a first dynamic vector and / or a second dynamic vector along the entire travel path or a major portion of the travel path. To this end, the first displacement device comprises a first guide device that moves the adjustment roll in the first dynamic vector. Additionally or alternatively, the first displacement device comprises a second guide device that moves the adjustment roll in the second dynamic vector. For example, the first guide device or the second guide device can be formed by a carrier device or a track device. The adjustment roll itself can be fixed to the first guide device or the second guide device. As an alternative, the first guide device can be fixed to the second guide device, or the second guide device can be fixed to the first guide device. The adjustment roll can be moved by the first guide device in the first dynamic vector and simultaneously moved by the second guide device in the second dynamic vector. This is optional. A simple configuration in which the adjustment roll is moved only in the first dynamic vector or the second dynamic vector can also be used. The adjustment roll is constantly moved relative to the contact roll to change the wrap angle.

[0010] In a specific embodiment of the present invention, the first dynamic vector includes only one X-direction component. One X-direction component is non-zero, and the other components (Y and Z-directions) are zero. The X-direction, which is parallel to the ground surface, is an extension of the inlet region of the thin film. The Y-direction is parallel to the longitudinal axis of the contact roll or adjustment roll. The Z-direction is a vertical direction away from the ground surface. The second dynamic vector includes X-direction and Z-direction components, neither of which is zero. The Y-direction component is zero (none). This means that the adjustment roll moves only horizontally due to the first dynamic vector. The second dynamic vector, which includes X-direction and Z-direction components, means that the adjustment roll moves tilting in two directions.

[0011] When moving the adjustment roll with the second dynamic vector, the adjustment roll can be moved more in the Z direction than in the X direction over the entire travel distance. Conversely, the adjustment roll can be moved more in the X direction than in the Z direction. It is also possible to move the adjustment roll essentially the same distance in the Z direction and the X direction over the entire travel distance (a 45° path). When moving the adjustment roll with the second dynamic vector, it is preferable that the ratio of the X direction component to the Z direction component is constant over most or all of the travel path.

[0012] The angle that the second dynamic vector makes with the XY plane is preferably greater than 10°, 20°, 30°, 40°, 50°, 60° or greater than 70°, and more preferably less than 80°, 75°, 65°, 55°, 45°, 35°, 25° or less than 15°.

[0013] The travel path of the adjustment roll can also be formed in an arcuate shape, or by a plurality of arcuate sections connected to one another directly or by straight sections.

[0014] It is particularly preferred to use a first displacement device to position the adjusting roll between the first and second positions and set the wrap angle. The adjusting roll is positioned in the first position, spaced only vertically (upward or downward) from the contact roll, and the wrap angle of the contact roll is set to approximately 0°, allowing the film to move between the adjusting roll and the contact roll with an almost exclusively vertical component. The adjusting roll in the second position is spaced only horizontally from the contact roll (in the direction of film withdrawal between the film inlet region and the contact roll), and the wrap angle of the contact roll is set to 90°, allowing the film to move between the adjusting roll and the contact roll with an almost exclusively horizontal component. The wrap angle range of the adjusting roll between the first and second positions is between 0° and 90°.

[0015] In another preferred embodiment, the proposed control device drives the first displacement device to move the adjusting roll to achieve a predetermined winding angle target value. The control device can use the winding angle target value, for example, transmitted from a data memory or received from an input device (e.g., a keyboard). The control device can also calculate the target value itself. The control device can read from a data memory or receive from an input device (e.g., a keyboard) values related to at least one material property of the thin film, such as the thin film type, material thickness, material strength, material elastic modulus, shrinkage rate, and / or thin film temperature. The control device can calculate the winding angle target value from the at least one material property. Additionally or alternatively, the control device can read from a data memory or receive from an input device at least one device parameter of the stretching device, such as the device operating speed and / or thin film tension force. The control device can calculate the winding angle target value from the at least one device parameter. Depending on the winding angle target value, the adjusting roll can be moved accordingly. The specific positions of the adjusting roll can be stored in a data structure (look-up table) together with a number of winding angles, and the control device can calculate the corresponding positions of the adjusting roll depending on the target values from a memory device that stores the corresponding calculation formula (e.g., a functional equation).

[0016] Preferably, a tension measuring device provided on the adjusting roll measures the actual film tension value and transmits the measured value to the control device, which compares the actual film tension value with the target film tension value, and depending on the comparison result, the control device can increase, decrease, or maintain the winding angle, for example, to prevent cracks from occurring in thin films.

[0017] In another preferred embodiment, the deflection roll is positioned between the film entrance area and the adjustment roll, and the second displacement device moves the deflection roll vertically while maintaining the film approximately horizontal (less than 5° offset) between the deflection roll and the adjustment roll or between the deflection roll and the contact roll. Measurements obtained from tension meters employed on deflection rolls that change the direction of film movement as well as on the adjustment roll can also be compared for different wrap angles.

[0018] A first support roll (first stabilizing roll) and a second support roll (second stabilizing roll) are preferably arranged in a first edge region of the film to improve the stability of the film. The first support roll may contact the top surface of the film, and the second support roll may contact the bottom surface of the film. The first support roll and the second support roll are preferably arranged one above the other and spaced apart only vertically to support each other. A third support roll (third stabilizing roll) and a fourth support roll (fourth stabilizing roll), arranged similarly to the first and second support rolls, are arranged opposite the first edge, which is the right edge region of the film, and at the second edge, which is the left edge region of the film. The "edge region" is preferably an area of the film that is less than 50 cm, 40 cm, 30 cm, 20 cm, or 10 cm from each side edge of the film. The support rolls may also be called tenter frames.

[0019] It is preferable to provide a third displacement device that fixes the contact roll. The third displacement device, which moves the contact roll toward the film inlet region, reliably maintains a constant distance between the film winding drum and the contact roll, as the film thickness gradually increases, so that the contact roll can always be brought into contact with the film winding drum at a specific contact pressure. It is preferable to move the contact roll with a dynamic vector of the third displacement device that has only an X-direction component. When the contact roll moves, it is preferable to move the adjustment roll with the same dynamic vector as the contact roll, so that the winding angle during operation can be maintained constant as necessary.

[0020] In another embodiment, at least one static eliminator is disposed adjacent to the thin film and provided on the thin film winding device to remove charge (static electricity) on the thin film or thin film winding drum. Without the use of a static eliminator, charge (static electricity) adhering to the thin film or thin film winding drum could threaten the life of the operator. The static eliminator is preferably provided with multiple flexible / movable conductive metal pieces (a type of gold or silver thread) that contact the thin film. It is preferable to distribute the metal pieces across the entire width or most of the width of the thin film. Essentially, a static eliminator (e.g., rod-shaped) may also be used. It is preferable to arrange one or more static eliminators at a position spaced apart from the thin film. The preferred distance between the static eliminator and the thin film is less than 30 mm, 20 mm, 10 mm, or less than 5 mm. However, a distance greater than 4 mm or greater than 5 mm is preferred. A high-voltage AC electric field is applied to the static eliminator to remove static electricity.

[0021] The connection device of the present invention, which couples the thin film stretching apparatus and the thin film winding apparatus, allows the thin film winding apparatus to be connected to the outlet region of the thin film stretching apparatus. The thin film stretching apparatus is provided with an inlet region for feeding the thin film or molten resin. The thin film stretching apparatus includes various regions (e.g., via a longitudinal stretching stage and / or a transverse stretching stage or a heating furnace) in which the molten resin is heated and / or stretched to form a uniaxially oriented or biaxially oriented thin film. The formed thin film is then fed to the thin film winding apparatus.

[0022] The drawings, which show various exemplary embodiments of the present invention, are described below, in which like parts are given like reference numerals and will not be described again. Corresponding figures of the drawings are individually identified below. [Brief explanation of the drawings]

[0023] [Figure 1] FIG. 1 is a plan view showing a connection device between a thin film winding device and a thin film stretching device. [Figure 2A] Cross-sectional view showing an embodiment of a contact roll with a winding angle of 0° in a thin film winding device [Figure 2B] Cross-sectional view showing an embodiment of a contact roll with a winding angle of 90° in a thin film winding device [Figure 3A]Cross-sectional view showing a thin film winding device having a contact roll with a thin film winding angle of 0° [Figure 3B] Cross-sectional view showing a thin film winding device having a contact roll with a thin film winding angle of 22.5° [Figure 3C] Cross-sectional view showing a thin film winding device having a contact roll with a thin film winding angle of 45° [Figure 3D] Cross-sectional view showing a thin film winding device with a contact roll with a thin film winding angle of 67.5° [Figure 3E] Cross-sectional view showing a thin film winding device with a contact roll with a thin film winding angle of 90° [Figure 4] 1 is a cross-sectional view showing an embodiment of a thin film winding device provided with a static eliminator; DETAILED DESCRIPTION OF THE INVENTION

[0024] FIG. 1 shows a plan view of a connection device 100 including a thin film winding apparatus 1 and a thin film stretching apparatus 110. The thin film stretching apparatus 110 can be configured as a longitudinal stretching apparatus, a transverse stretching apparatus, a sequential stretching apparatus having a longitudinal stretching stage and a transverse stretching stage, or a simultaneous stretching apparatus. The thin film stretching apparatus 110 is used to produce a resin thin film 2 (also referred to as a thin film 2). To produce the resin thin film 2, the thin film stretching apparatus 110 is divided into various zones 110a, 110b, 110c, 110d, and 110e. However, it is not necessary to actually provide all of the zones 110a, 110b, 110c, 110d, and 110e. In each zone 110a-110e, the thin film 2 is exposed to a different temperature to generate or set specific thin film properties. The first zone 110a is also referred to as a preheating zone. The second region 110b is called the stretching region, the third region 110c is called the heating region, the fourth region 110d is called the neutral region, and the fifth region 110e is called the cooling region. By providing some neutral regions between the regions 110a-110e and isolating the regions 110a-110e to essentially ensure independent operation, the effects of interactions between the regions 110a-110e can be avoided (air flowing from one region 110a-110e to another). Thin films with widths greater than 2 m, greater than 3 m, 4 m, 5 m, 6 m, 7 m, 8 m, 9 m, 10 m, 11 m, 12 m, 13 m, or 15 m, but preferably less than 17 m, and less than 16 m, 15 m, 14 m, 13 m, 12 m, 11 m, 10 m, 9 m, 8 m, 7 m, 6 m, 5 m, 4 m, or 3 m can be produced in the thin film stretching apparatus 110.

[0025] The thin film stretching apparatus 110 includes an inlet region 111 through which the thin film to be stretched is fed into the thin film stretching apparatus 110. The stretched thin film 2 is discharged from an outlet region 112, which is the final region of the thin film stretching apparatus 110. The outlet region 112 of the thin film stretching apparatus 110 is connected to the thin film inlet region 3 of the thin film winding apparatus 1 of the present invention.

[0026] The structure of the thin film winding device 1 of the present invention will be described in detail below with reference to FIGS. 2A, 2B, 3A to 3E and 4. FIG.

[0027] As described above, it is necessary to trap a sufficient amount of air between each wound layer of the thin film 2 so that the thin film 2 can be wound up without problems in the subsequent process without causing wrinkles in the thin film 2, and different types of thin films can be wound up using different methods. Also, it is necessary to reliably prevent cracks from occurring in the thin film 2 during winding by the thin film winding device 1 of the present invention.

[0028] 2A and 2B show a conceptual view of one embodiment of the thin film winding apparatus 1. The thin film 2 is fed from the thin film stretching device 110 through the thin film inlet region 3 to the thin film winding apparatus 1. In FIGS. 2A and 2B, the thin film 2 is moving towards the first winding drum 4 and is in the winding position on the first winding drum 4. At the first winding drum 4, the thin film 2 is wound onto the thin film winding drum 5.

[0029] FIG. 2A shows the thin film 2 being fed onto the first winding drum 4 at a 0° wrap angle relative to the contact roll 6. FIG. 2B shows the thin film 2 being fed onto the first winding drum 4 at a 90° wrap angle relative to the contact roll 6. The contact roll 6 is used to adjust the wrap angle of the thin film 2 relative to the first winding drum 4. The thin film 2 in FIG. 2A is fed perpendicular to the contact roll 6, passes through the gap between the contact roll 6 and the first winding drum 4, and is immediately wound onto the thin film winding drum 5. The effect of deflection due to the wrap angle created by the contact roll 6 is smaller for the thin film 2 at a 0° wrap angle than for a 90° wrap angle. When the thin film 2 initially moves somewhat unsteadily on the contact roll 6, a smaller wrap angle can maintain a constant amount of air infiltration between the wound layers of the thin film 2 and maintain multiple conditions constant on the thin film winding drum 5.

[0030] Unlike FIG. 2A, in FIG. 2B, where the thin film 2 is fed horizontally to the contact roll 6, the thin film 2 contacts the contact roll 6 at approximately one-quarter of the outer surface of the contact roll 6, causing a 90° change in direction. Deflection of the contact roll 6 due to its own weight may occur in areas other than the supported portion. A 90° wrap angle is more adversely affected by deflection than a 0° wrap angle. Due to the deflection of the contact roll 6, the thin film 2 comes into surface contact with the underside of the contact roll 6. Due to deflection, the wrap angle becomes slightly larger at both edges and in the center of the thin film 2, which can cause wrinkles to form in the thin film 2. To stabilize a thin thin film 2, which is susceptible to airflow vibration (fluttering), a larger wrap angle is required. Conversely, for a thick thin film 2, a smaller wrap angle is desirable to guide the thin film 2 beyond the contact roll 6 and prevent wrinkles from forming. The appropriate operational adjustment of the wrap angle is described below with reference to FIGS. 3A to 3E.

[0031] 2A and 2B show a substrate 4a mounted on a first winding drum 4, which is rotated, for example, by an electric motor. In the simplest configuration, the substrate 4a can be formed of a hollow cylindrical cardboard, but the substrate 4a can also be formed of metal. FIGS. 2A and 2B also show a second winding drum 7 having a rotatable substrate 7a, onto which the thin film 2 can be wound. In the illustrated example, the first winding drum 4 is moved to a winding position, and the first winding drum 4 in the winding position is positioned adjacent to the contact roll 6. Meanwhile, the second winding drum 7 is moved or rotated to a position from which the thin film 2 is unwound (delivered). The thin film 2 can be removed from the first winding drum 4 in the unwinding position or from the thin film winding drum 5 of the second winding drum 7. In FIG. 2A, arrows indicate the first winding drum 4 being moved or rotated from the winding position to the unwinding position. The second winding drum 7 can also be moved or rotated from the unwinding position to the winding position (after removing the thin film winding drum 5 from the second winding drum 7). When the winding drum moves from the winding position to the unwinding position and returns to the winding position, it is preferable to move the winding drum in a circular or nearly circular motion. It is also preferable to move the winding drum through a plurality of arc-shaped sections connected to each other by a plurality of linear regions or continuous arcs. When the first winding drum 4 or the second winding drum 7 is rotated to the unwinding position, a cutting device (not shown) is provided to cut the entire width of the thin film 2. At this time, the other second winding drum 7 or the first winding drum 4 is rotated to the winding position, so that the base body 7a of the second winding drum 7 or the base body 4a of the first winding drum 4 comes into contact with the new leading end of the thin film 2 immediately after cutting, and the new leading end is wound around the rotating base body 4a, 7a. Taking into consideration the moving speed of the thin film 2, it is preferable to move the cutting device diagonally (in the X and Y directions) to form a linear cut in the thin film 2. However, the cutting device may also be moved straight (only in the Y direction) to cut the thin film 2 diagonally.

[0032] A desired winding method for winding the thin film 2 onto a winding drum by pressing the contact roll 6 shown in Figures 3A, 3B, 3C, 3D and 3E will now be described in detail.

[0033] FIG. 3A shows a winding method in which the thin film 2 is wound around the contact roll 6 at a 0° angle. A contact roll 6 and an adjusting roll 8 are essentially provided. The contact roll 6 is arranged directly adjacent (less than 10 cm, 8 cm, 6 cm, 4 cm, 2 cm, or 1 cm) to the first winding drum 4, which is in the winding position. It is preferable to have the contact roll 6 in contact with the first winding drum 4. When the first winding drum 4 and the second winding drum 7 are used, the first winding drum 4 and the second winding drum 7 are alternately arranged in the winding position. The contact roll 6 guides the thin film 2 to the first winding drum 4. The adjusting roll 8, which is arranged upstream of the contact roll 6 along the movement path of the thin film 2, guides the thin film 2 to the contact roll 6. A first displacement device 10 (FIG. 3A) is provided to move the adjusting roll 8 along the movement path relative to the contact roll 6 to set or change the desired winding angle at which the thin film 2 wraps around the contact roll 6.

[0034] The contact roll 6 and the adjustment roll 8 may have different diameters, but may be formed with the same diameter. It is preferable to move the thin film 2 between the adjustment roll 8 and the contact roll 6 only in the vertical direction (perpendicular to the ground surface) to achieve a 0° wrap angle with respect to the contact roll 6. Figure 3A shows the adjustment roll 8 in a first position. A 0° wrap angle can be achieved by positioning the adjustment roll 8 away from the contact roll 6 only in the vertical direction (Z direction). If the diameters of the contact roll 6 and the adjustment roll 8 are different, the adjustment roll 8 must be offset from the contact roll 6 to bring both the contact roll 6 and the adjustment roll 8 into contact with the thin film 2 in a single, coplanar plane (YZ plane) perpendicular to the ground surface. The thin film 2 moves along a single, coplanar, vertical plane. Therefore, the long axes (rotation axes) of the contact roll 6 and the adjustment roll 8 are offset from each other in the X direction. At a winding angle of 0°, the distance between the different sized adjusting roll 8 and the contact roll 6 is less than 3 mm, and is 2.5 m, 2 m, 1.5 m, or less than 1 m.

[0035] The contact roll 6 and the adjustment roll 8 rotate in the same direction. The base bodies 4a, 7a of the winding drums 4, 7 arranged at the winding positions rotate in a direction different from that of the contact roll 6.

[0036] It is possible to basically regulate the temperature of both the contact roll 6 and the regulation roll 8. Temperature regulation (cooling or heating) can be achieved by means of a suitable heating fluid (air, liquid).

[0037] The separation distance between the conditioning roll 8 and the contact roll 6 may be constant over the entire travel path of the conditioning roll 8, but it is preferred that the separation distance be variable. The separation distance can be decreased or increased over the entire travel path.

[0038] Even during the winding operation of the thin film 2, the first displacement device 10 can be operated to move the adjustment roll 8 relative to the contact roll 6 and change the winding angle. This allows the adjustment roll 8 to be continuously moved relative to the contact roll 6. Furthermore, the adjustment roll 8 can be moved at each stage by, for example, a pneumatically, electrically, hydraulically and / or mechanically driven displacement device.

[0039] The first displacement device 10 moves the adjustment roll 8 along the entire or a large part of the path of travel with a first dynamic vector and / or a second dynamic vector. Figure 3A shows the first displacement device 10 with a first guiding device 11 that moves the adjustment roll 8 with the first dynamic vector. A second guiding device 12 that moves with the second dynamic vector is also shown.

[0040] For example, the first guiding device 11 and / or the second guiding device 12 can be configured by a loading platform device, a track device, and / or a chain device. The second guiding device 12 shown in FIG. 3A is attached to the first guiding device 11, and the adjusting roll 8 is attached to the second guiding device 12. It is preferable that the first guiding device 11 and the second guiding device 12 can be driven independently of each other. Alternatively, the adjusting roll 8 may be fixed to the first guiding device 11, and the first guiding device 11 may be fixed to the second guiding device 12. When the first guiding device 11 is fixed to the second guiding device 12, the second guiding device 12 always moves in conjunction with the movement of the first guiding device 11, but the movement of the first guiding device 11 is not linked to the movement of the second guiding device 12. When the second guiding device 12 is fixed to the first guiding device 11, the opposite operation occurs.

[0041] The first dynamic vector has only one component in the X direction, which is parallel to the ground surface in the direction of the thin film inlet region 3. The X direction component is greater than zero, and conversely, all other components are zero. The second dynamic vector has an X direction component and a Z direction component. The Z direction component is a vertical component away from the ground surface and is perpendicular to the X direction component. The Y direction component is zero. Otherwise, the Y direction component is parallel to the rotation axis or long axis of the contact roll 6 or the adjustment roll 8.

[0042] The first guiding device 11 allows the adjustment roll 8 to move only horizontally in the X direction (toward or away from the first winding drum 4 or the second winding drum 7). The second guiding device 12 allows the adjustment roll 8 to move in an inclined direction. The second dynamic vector preferably forms an inclination angle of 45° with respect to the XY plane. In particular, the inclination angle is preferably greater than 10° and greater than 20°, 30°, 40°, 50°, 60°, or 70°, but is preferably less than 80° and less than 75°, 65°, 55°, 45°, 35°, 25°, or 15°.

[0043] The travel path of the adjusting roll 8 can also be formed essentially in an arc shape, and an arc-shaped travel path can also be applied to the second guiding device 12. Furthermore, the travel path of the adjusting roll 8 can be provided with a plurality of sections arranged in an arc shape that are directly connected to one another or connected to one another in straight lines.

[0044] 3A shows the state in which the adjustment roll 8 is moved to a first position to set the winding angle of the thin film 2 relative to the contact roll 6 at 0°. The adjustment roll 8 in the first position is vertically spaced apart from the contact roll 6. In this embodiment, the adjustment roll 8 is disposed below the contact roll 6, but the adjustment roll 8 may also be disposed above the contact roll 6. When the contact roll 6 and the adjustment roll 8 are disposed vertically, the thin film 2 can be moved between the adjustment roll 8 and the contact roll 6 with only a vertical component.

[0045] The deflection roll 15 and the second displacement device 16 can be selectively installed. The second displacement device 16 is preferably configured by a carrier device, a track device, and / or a chain device. Pneumatic, electric, hydraulic, and / or mechanical drives are preferred. The deflection roll 15 is arranged between the film entrance area 3 and the adjustment roll 8. The second displacement device 16 is provided to move the deflection roll 15 in the vertical (Z) direction while the film 2 is positioned approximately horizontally (with a deviation of less than 5°) between the deflection roll 15 and the adjustment roll 8 or between the deflection roll 15 and the contact roll 6. The deflection roll 15 can also be temperature-controlled (e.g., heated and / or cooled). When the second guide device 12 moves the adjustment roll 8 obliquely with a vertical (Z) component, the deflection roll 15 is also moved with a Z component. The diameter of the deflection roll 15 can be the same as or different from the diameter of the contact roll 6 or the adjustment roll 8.

[0046] In addition to the vertical movement, the deflection roll 15 can also be moved in the horizontal (X) direction. The deflection roll 15 can be moved with a dynamic vector that includes components in both the X and Y directions. In the simplest configuration, the deflection roll 15 is moved along a straight line, but it would also be possible to move the deflection roll 15 along an arcuate path of movement. The path of movement of the deflection roll 15 may include several essentially arcuately shaped movement sections that are directly connected to one another or connected to one another with at least one linearly arranged section.

[0047] The path of movement of the deflecting roll 15 may essentially coincide with the path of movement of the adjusting roll 8. It is preferred that the movements of the deflecting roll 15 and the adjusting roll 8 are completed simultaneously in the same sequence.

[0048] The first support roll 20 and the second support roll 21 can be arranged in a first edge region of the thin film 2. The first support roll 20 can be in contact with the upper surface of the thin film 2, and the second support roll 21 can be in contact with the lower surface of the thin film 2. The first support roll 20 and the second support roll 21 are arranged one above the other, spaced apart from each other only in the vertical direction. A third support roll and a fourth support roll (not shown) are preferably provided in a second edge region opposite the first edge region of the thin film 2. The third support roll and the fourth support roll are preferably arranged offset from the first support roll 20 and the second support roll 21, respectively, only in the lateral (Y) direction. The first support roll 20 and the second support roll 21 are preferably arranged between the deflection roll 15 and the adjustment roll 8. The first support roll 20 and the second support roll 21 are preferably arranged closer to the adjustment roll 8 or the contact roll 6 than the deflection roll 15.

[0049] It is preferable to provide a third displacement device 25 consisting of a carrier device, a track device, and / or a chain device. The third displacement device 25 can be constituted by a pneumatic, electric, hydraulic, and / or mechanical drive device. The third displacement device 25 moves the contact roll 6 in the X direction, and the distance between the contact roll 6 fixed to the third displacement device 25 and the thin film winding drum 5, which gradually becomes thicker as the winding amount increases, can be reliably kept constant by the operation of the third displacement device 25. Alternatively, the first winding drum 4 or the second winding drum 7 at the winding position can be moved in the X direction by a displacement device to keep constant the distance between the contact roll 6 and the outermost layer of the thin film winding drum 5 facing the contact roll 6.

[0050] The control device 30 is shown only in Fig. 3A for the sake of simplicity. It is of course possible to provide the control device 30 in all other figures. The control device 30 controls the driving of the first displacement device 10, which moves the adjusting roll 8 to achieve a predetermined target value for the winding angle. The control device 30 can also drive the second displacement device 16 and / or the third displacement device 25.

[0051] The control device 30 can select a specific position of the regulating roll 8 based on the target value to be set and move the regulating roll 8 to the selected position. For example, the relationship between the target value and the position of the regulating roll 8 can be stored in a data structure or array (look-up table). The position to be set of the regulating roll 8 can also be corrected by the current position of the contact roll 6 (which can move in the X direction depending on the thickness of the thin film winding drum 5). Instead of using a data structure, the position to be set of the regulating roll 8 can be calculated using a relational expression or a functional equation. The functional equation parameters are at least the target value for the winding angle and the selectable position of the contact roll 6. The control device 30 can then drive the first guiding device 11 and / or the second guiding device 12 to set the position of the regulating roll 8.

[0052] The control device 30 can receive and input target values stored in a data memory (not shown) or receive and write target values from an input device (e.g., a computer, a tablet computer, an external control device, and / or a mobile wireless device). The control device 30 can determine the target value based essentially on at least one material property of the thin film. The material property of the thin film may include, for example, the type of thin film, the material thickness, the material strength, the material elastic modulus (stress-strain rate of change), the shrinkage rate, and / or the thin film temperature. The control device 30 can also determine the target value from equipment parameters of the thin film stretching device 110. Equipment parameters include, for example, the speed of the thin film stretching device and the thin film tension force. It is also preferable to determine the tension force acting on the thin film using a tension measuring device (not shown) provided on the adjusting roll 8. The tension measuring device of the adjusting roll 8 transmits the actual (current) measured value of the thin film tension force to the control device 30. Based on the measured actual value, the control device 30 can drive the first displacement device 10 to increase, decrease or maintain the winding angle to prevent cracks that may occur in the thin film 2.

[0053] 3B shows a wrap angle of 22.5° of the thin film 2 relative to the contact roll 6 achieved by moving the adjustment roll 8 with a first dynamic vector in the X direction (e.g., only in the X direction). In moving the adjustment roll 8 toward the thin film entry area 3, the adjustment roll 8 can also be moved with a second dynamic vector (which includes components in both the X and Z directions).

[0054] 3C shows a 45° wrap angle of the thin film 2 relative to the contact roll 6, formed by moving the adjustment roll 8 in a second dynamic vector along the X and Z directions. The position of the deflection roll 15 is moved vertically by a second displacement device 16, while the thin film 2 is maintained horizontal between the deflection roll 15 and the adjustment roll 8. The adjustment roll 8 may be moved in addition to or instead of the first dynamic vector, or only in the first dynamic vector (X direction), to essentially achieve a 45° wrap angle.

[0055] 3D shows a wrapping angle of 67.5° of the film 2 relative to the contact roll 6, which is formed by moving the adjustment roll 8 along the X and Z directions of the second dynamic vector. The position of the deflection roll 15 is moved vertically by the second displacement device 16, while the film 2 remains horizontal between the deflection roll 15 and the adjustment roll 8. The adjustment roll 8 can be additionally moved either along the first dynamic vector or only along the first dynamic vector (X direction).

[0056] The first support roll 20 and the second support roll 21 are preferably mounted on a second guiding device 12, and the positions (particularly the vertical positions) of the first support roll 20 and the second support roll 21 are preferably moved by a first displacement device 10. The vertical positions of the third support roll and the fourth support roll are preferably similarly movable. When the position of the adjustment roll 8 is moved in the second kinematic vector (X and Z directions), it is preferably possible to simultaneously change at least the vertical positions of the first support roll 20 and the second support roll 21.

[0057] 3E shows a wrapping angle of 90° of the thin film 2 relative to the contact roll 6 formed by further moving the adjustment roll 8 with a second dynamic vector along the X and Z directions. The second displacement device 16 also moves the vertical position of the deflection roll 15 between the deflection roll 15 and the contact roll 6, while maintaining the thin film 2 in a more horizontal state. Essentially, the adjustment roll 8 could be moved additionally with the first dynamic vector or only with the first dynamic vector (X direction). In this embodiment, the adjustment roll 8 does not contact the thin film 2, but it could be.

[0058] 3E shows the adjustment roll 8 in a second position, spaced only horizontally from the contact roll 6. The control device 30 preferably moves the adjustment roll 8 between the first position (FIG. 3A) and the second position (FIG. 3E) as desired. When the wrap angle of the thin film 2 relative to the contact roll 6 is large, the first support roll 20 and the second support roll 21 are preferably positioned closer to the contact roll 6 than when the wrap angle is small.

[0059] Comparing Figure 3A (where the winding angle of the thin film 2 relative to the contact roll 6 is 0°) with Figure 3E (where the winding angle of the thin film 2 relative to the contact roll 6 is 90°), it is clear that the second guiding device 12 can slide relative to the first guiding device 11.

[0060] It is preferable that the first displacement device 10, the second displacement device 16 and / or the third displacement device 25 are provided with braking and / or latching devices that continuously hold the first displacement device 10, the second displacement device 16 and / or the third displacement device 25 in their respective positions (when the power supply is stopped), so that the braking and / or latching devices continuously and reliably hold each of the displacement devices 10, 16 and 25 in their respective positions until power is supplied again.

[0061] In principle, it is also possible for the membrane 2 to move completely above the contact roll 6. In this case, the adjusting roll 8 and the deflecting roll 15 are arranged in mirror-image positions.

[0062] FIG. 4 shows another embodiment of the thin film winding apparatus 1. FIG. 4 shows at least one static eliminator 40, 41, 42. The static eliminators 40, 41, 42, located adjacent to the thin film 2, function to remove charge or static electricity on the thin film 2 or on the thin film winding drum 5. For example, the static eliminator 40 may be located between the deflection roll 15 and the adjustment roll 8. The static eliminator 40 can be located above and / or below the thin film 2. Additionally or alternatively, the static eliminator 41 may be located in the region of the adjustment roll 8 or between the adjustment roll 8 and the contact roll 6. Additionally or alternatively, the static eliminator 42 may be located directly on the thin film winding drum 5 downstream of the contact roll 6. The static eliminators 40, 41, 42 may be multiple flexible conductive metal strips (e.g., pieces of gold or silver thread) that can contact the thin film 2. It is preferable to arrange the conductive metal strips across the entire width (Y direction) of the thin film 2. Additionally or alternatively, the at least one static eliminator 40, 41, 42 may be a static eliminator arranged at a distance from the thin film 2 (the at least one static eliminator conductor is arranged without contacting the thin film 2) and excited by an AC electric field (high voltage: more than 500 V, 1000 V, 2000 V, 3000 V, 4000 V, 5000 V, 6000 V, 7000 V, 8000 V, 9000 V, or more than 10000 V). The distance from the thin film 2 to the at least one static eliminator conductor can be set, and in particular can be changed continuously or stepwise (e.g., automatically) during operation. For example, the distance can be set depending on the type of thin film and / or the voltage level.

[0063] In principle, a contact roll 6 with a variable diameter can also be used. For this purpose, a contact roll with adjustable bending can be employed. Instead of a contact roll with adjustable bending, a curved or cambered contact roll 6 can be used; for example, the contents of Patent Document 1, which shows a cambered contact roll 6, are incorporated herein by reference. This allows a more uniform thin film winding drum 5 to be obtained even when the thickness distribution of the thin film 2 varies or when a very flexible surface that is easily stretched (for example, in the case of an optical thin film) is to be produced.

[0064] The contact roll 6, the adjustment roll 8 and the deflection roll 15 preferably have an axial length spanning the entire width (possibly exceeding the entire width) of the thin film 2. A first support roll 20 and a second support roll 21 can be arranged in the region of only each edge of the thin film 2 or in a part thereof.

[0065] Furthermore, an additional control device may be provided between the deflection roll 15 and the adjusting roll 8, between the adjusting roll 8 and the contact roll 6, or between the contact roll 6 and the corresponding winding drum 4, 7 at the winding position, to detect different thin film characteristics (e.g., thin film thickness, thin film temperature, crack formation) and transmit the detected thin film characteristics to the control device 30, which can then correct the winding angle based on the different thin film characteristics. For example, the additional control device may be configured by an optical camera and / or an IR sensor.

[0066] The adjusting roll 8 and / or the deflecting roll 15 and / or the contact roll 6 could also be driven essentially synchronously by a common drive. For example, this can be achieved via corresponding gears and / or chains or belts. However, the adjusting roll 8 and / or the deflecting roll 15 and / or the contact roll 6 could also be driven via their own drives.

[0067] The invention is not limited to the embodiments described herein, but can be combined in any way with the features of the invention set out in this specification and / or illustrated in the drawings.

Claims

1. a thin film inlet area (3) for supplying a thin film (2) to be wound into the thin film winding device (1); a first winding drum (4) disposed at a winding position for winding the thin film (2) onto a thin film winding drum (5); a contact roll (6) disposed adjacent to the first winding drum (4) in the winding position to guide the thin film (2) onto the first winding drum (4); an adjusting roll (8) disposed upstream of the contact roll (6) in the moving direction of the thin film (2) and guiding the thin film (2) to the contact roll (6); a first displacement device (10) that moves the adjustment roll (8) along a movement path relative to the contact roll (6) to change the winding angle at which the thin film (2) is wound around the contact roll (6); A thin film winding device (1) for a thin film stretching device (110), characterized in that the first displacement device (10) moves the adjusting roll (8) along the entire movement path or a major part of the movement path in a) a first dynamic vector and / or b) a second dynamic vector.

2. 2. The thin film winding device (1) according to claim 1, wherein the first displacement device (10) moves the adjustment roll (8) relative to the contact roll (6) along a travel path during winding of the thin film (2) to change the winding angle.

3. 3. The thin film winding device (1) according to claim 1 or 2, wherein the first displacement device (10) moves the adjustment roll (8) continuously or stepwise relative to the contact roll (6).

4. 4. The thin film winding device (1) according to claim 3, wherein the first displacement device (10) comprises: a) a first guiding device (11) moving with a first dynamic vector; and / or b) a second guiding device (12) moving with a second dynamic vector.

5. 5. The thin film winding device (1) according to claim 4, wherein the measuring roll (8) is fixed to a) the first guiding device (11) or b) the second guiding device (12).

6. a) the first guide device (11) is fixed to the second guide device (12) or 6. A thin film winding device (1) according to claim 5, wherein the second guiding device (12) is fixed to the first guiding device (11).

7. the first dynamic vector acting on the first guiding device (11) contains only one X-direction component, which is arranged parallel to the earth's surface in the direction of the membrane inlet area (3); and / or 7. The thin film winding device (1) according to claim 3, wherein the second dynamic vector acting on the second guiding device (12) includes an X-direction component that is arranged in the direction of the thin film inlet area (3) and parallel to the ground surface, and a Z-direction component that is arranged perpendicular to the X-direction and spaced apart from the ground surface.

8. The adjustment roll (8) moves in the Z direction rather than the X direction through the entire travel path, The adjustment roll (8) moves in the X direction rather than the Z direction through the entire travel path or 8. The thin film winding device (1) according to claim 7, wherein the adjusting roll (8) moves the same distance in the Z direction and the X direction through the entire movement path.

9. 9. A thin film winding device (1) according to claim 7 or 8, wherein the ratio of the X-component to the Z-component of the second dynamic vector is constant over most or all of the travel path.

10. 10. The thin film winding device (1) according to any one of claims 7 to 9, wherein the angle formed by the second dynamic vector with the XY plane is greater than 10° and smaller than 80°.

11. The thin film winding device (1) according to any one of claims 1 to 8, wherein the moving path of the adjusting roll (8) is formed in an arc shape.

12. 12. The thin film winding device (1) according to claim 11, wherein the travel path of the adjustment roll (8) comprises a plurality of arcuate sections which are directly connected to one another or which are connected to one another at a plurality of linearly extending portions.

Citation Information

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