Log formation method and log formation apparatus

The log formation method and apparatus address diameter variations by adjusting embossing pressure, tension, and winding end position based on roll status, ensuring consistent log diameter and quality throughout the unwinding process.

JP7841393B2Active Publication Date: 2026-04-07OJI HLDG CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-08-31
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing methods for forming logs from a strip-shaped web fail to adequately address variations in log diameter due to changes in web thickness from the beginning to the end of use, leading to inconsistent product quality.

Method used

A log formation method and apparatus that adjusts parameters such as embossing pressure, tension, and winding end position based on the remaining amount of the raw material roll to maintain consistent log diameter, using a detection unit to monitor roll status and an adjustment unit to modify these parameters.

Benefits of technology

The method and apparatus effectively suppress variations in log diameter, ensuring consistent product quality by dynamically adjusting parameters to compensate for changes in web thickness throughout the unwinding process.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To suppress variation in a diameter of a log formed from an original fabric roll.SOLUTION: A log forming method in which a belt-shaped web unwound from an original fabric roll is cut each time it is wound to a predetermined length to form a plurality of logs includes: detection step S11A of detecting a remaining amount Lx of the original fabric roll, and adjustment step S11B in which a parameter that affects the diameter of the log in the processing applied to the web is changed according to the remaining amount Lx detected in detection step S11A.SELECTED DRAWING: Figure 10
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Description

Technical Field

[0005]

[0001] This invention relates to a log forming method and a log forming apparatus that cut a strip-shaped web fed out from a raw reel into a plurality of logs each time a predetermined length is wound.

Background Art

[0002] Logs for cutting roll-shaped products such as toilet paper and kitchen paper are formed by cutting a strip-shaped material fed out from a large-diameter raw reel each time a predetermined length is wound. In a manufacturing line that continuously forms logs by rewinding the material in this way, various methods have been proposed to suppress variations in the diameter (log diameter) of the formed logs.

[0003] For example, Patent Document 1 discloses a method of using a pressing roll that can move in conjunction with the rotational movement of a cam of a cam mechanism as a method of suppressing variations in log diameter. In Patent Document 1, the pressing roll is moved away from the log from the start to the end of winding the log. Then, at the stage when the winding of the log is completed, the pressing roll is moved to a position (end winding position) that regulates the log to a predetermined diameter, and a log of the predetermined diameter is thus formed.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] Incidentally, the thickness of the web unwound from the raw material roll may change from the beginning to the end of use (from the start to the end of unwounding). As a result, there may be variations in the log diameter between the log formed from the web at the beginning of use and the log formed from the web at the end of use. In this regard, the method disclosed in Patent Document 1 controls the position of the retaining roll regardless of the usage status of the raw material roll (whether it is the beginning or the end of use), and therefore has room for improvement in suppressing the above-mentioned variations in log diameter.

[0006] This invention was conceived in light of the above-mentioned problems, and one of its objectives is to suppress variations in the diameter of logs formed from raw material rolls. However, beyond this objective, other objectives of this invention include achieving effects and benefits that cannot be obtained with conventional technology, derived from the various configurations shown in the "Modes for Carrying Out the Invention" described later. [Means for solving the problem]

[0007] The log formation method disclosed herein comprises the configurations described in (1) to (9) below. Furthermore, the log formation apparatus disclosed herein comprises the configurations described in (10) to (18) below.

[0008] (1) A log forming method in which a strip-shaped web unwound from a raw material roll is cut each time it is wound to a predetermined length to form multiple logs, A detection step for detecting the remaining amount of the raw material roll, The process applied to the web includes an adjustment step which modifies a parameter that affects the diameter of the log according to the remaining amount detected in the detection step. A log formation method characterized by the following features.

[0009] (2) The adjustment step modifies the parameters in a direction that increases the diameter of the log, in accordance with the decrease in the remaining amount detected in the detection step. The log formation method according to (1), characterized in that

[0010] (3) The adjustment step involves changing the parameters, including the winding end position of the retaining roll that holds down the wound web, during the process of winding the web. The log formation method according to (1) or (2), characterized in that

[0011] (4) The adjustment step involves pressing the web with an embossing roll equipped with a convex structure for imparting an embossed pattern, and changing the parameters, including the pressing pressure of the embossing roll against the web. A log formation method according to any one of (1) to (3), characterized by the above.

[0012] (5) The adjustment step adjusts the amount of change in the pressing pressure according to the feed speed of the web being fed out from the raw material roll. The log formation method according to (4), characterized in that

[0013] (6) The adjustment step involves changing the parameters, including the tension of the web, in the process of transporting the web. A log formation method according to any one of (1) to (5), characterized by the above.

[0014] (7) The adjustment step involves changing the parameter when the remaining amount detected in the detection step decreases to a predetermined amount. A log formation method according to any one of (1) to (6), characterized by the above.

[0015] (8) The adjustment step involves gradually changing the parameters as the remaining amount detected in the detection step decreases. A log formation method according to any one of (1) to (6), characterized by the above.

[0016] (9) The adjustment step continuously changes the parameter as the remaining amount detected in the detection step decreases. The log formation method according to any one of (1) to (6), characterized in that.

[0017] (10) A log forming device that cuts a belt-like web fed out from a raw roll every time a predetermined length is wound to form a plurality of logs, a detection unit that detects the remaining amount of the raw roll, and an adjustment unit that changes a parameter that affects the diameter of the log according to the remaining amount detected by the detection unit in a process applied to the web. A log forming device, characterized in that.

[0018] (11) The adjustment unit changes the parameter in a direction to increase the diameter of the log according to the decrease in the remaining amount detected by the detection unit. The log forming device according to (10), characterized in that.

[0019] (12) The adjustment unit changes the parameter including the winding end position of a pressing roll that presses the wound web in the process of winding the web. The log forming device according to (10) or (11), characterized in that.

[0020] (13) The adjustment unit changes the parameter including the pressing pressure of the embossing roll on the web in the process of pressing the web by an embossing roll provided with a convex structure for imparting an embossing pattern. The log forming device according to any one of (10) to (12), characterized in that.

[0021] <​​The adjustment unit adjusts the amount of change in the pressing pressure according to the feed speed of the web being fed out from the raw material roll. The log forming apparatus according to (13), characterized in that

[0022] (15) The adjustment unit modifies the parameters, including the tension of the web, in the process of transporting the web. A log forming apparatus according to any one of (10) to (14), characterized by the above.

[0023] (16) The adjustment unit changes the parameter when the remaining amount detected by the detection unit decreases to a predetermined amount. A log forming apparatus according to any one of (10) to (15), characterized by the above.

[0024] (17) The adjustment unit changes the parameters in steps as the remaining amount detected by the detection unit decreases. A log forming apparatus according to any one of (10) to (15), characterized by the above.

[0025] (18) The adjustment unit continuously changes the parameter as the remaining amount detected by the detection unit decreases. A log forming apparatus according to any one of (10) to (15), characterized by the above. [Effects of the Invention]

[0026] According to this method, it is possible to suppress variations in the diameter of logs formed from raw material rolls. [Brief explanation of the drawing]

[0027] [Figure 1] This is a schematic perspective view of the manufacturing line. [Figure 2] This is a schematic side view of the dispensing section located in the manufacturing line shown in Figure 1. [Figure 3]This is a schematic side view of the embossing section located in the manufacturing line shown in Figure 1. [Figure 4] This is a schematic side view of the winding section installed in the manufacturing line shown in Figure 1. [Figure 5] This is a block diagram of a log formation apparatus according to one embodiment. [Figure 6] These are examples of maps showing the relationship between embossing pressure (pressing pressure) and the remaining amount of raw material on the roll. (a) is a map for single-stage changes, (b) is a map for multi-stage changes, and (c) is a map for continuous changes. [Figure 7] These are examples of maps showing the relationship between tension and the remaining amount of raw material on the roll; (a) is a map for single-stage changes, (b) is a map for multi-stage changes, and (c) is a map for continuous changes. [Figure 8] These are examples of maps showing the relationship between the winding end position and the remaining amount of raw material on the roll. (a) is a map for single-stage changes, (b) is a map for multi-stage changes, and (c) is a map for continuous changes. [Figure 9] This is a flowchart illustrating the processes carried out on the manufacturing line shown in Figure 1. [Figure 10] This is a flowchart illustrating one embodiment of the log formation method performed in the log formation process shown in Figure 9. [Modes for carrying out the invention]

[0028] The following describes the embodiments for implementing this matter. The embodiments shown below are merely examples, and there is no intention to exclude various modifications or applications of technologies not explicitly stated herein. Each configuration of the embodiments below can be modified in various ways without departing from their intended purpose. Furthermore, they can be selected or combined as needed.

[0029] [1. Equipment] [1-1. Overall Structure] As shown in Figure 1, the log-forming apparatus 1 according to this embodiment is applied to a manufacturing line 2 that produces a roll-shaped product 3. Here, product 3 is exemplified as toilet paper (toilet roll) in which a strip of sanitary paper is wound into a roll. However, product 3 is not particularly limited as long as it is made of a strip of material wound into a roll, and may be, for example, kitchen paper or made of a material other than paper.

[0030] The manufacturing line 2 includes a log forming part 10 that forms a roll-shaped log 4 that is longer in the axial direction than the product 3, an adjustment part 60 that temporarily stores the log 4 formed in the log forming part 10 and adjusts the timing of the log 4 delivery, and a cutting part 70 that cuts the log 4 delivered from the adjustment part 60 into multiple products 3. Furthermore, the manufacturing line 2 includes a packaging part 80 that packages the products 3 cut in the cutting part 70 in predetermined numbers, and a boxing part 90 that boxes the packages 5 of the products 3 packaged in the packaging part 80.

[0031] The upstream and downstream are defined below based on the sequence of each process performed on production line 2. On production line 2, the log forming part 10, the adjustment part 60, the cutting part 70, the packaging part 80, and the boxing part 90 are arranged in this order from upstream to downstream.

[0032] Log forming part 10 unwinds the base paper 6 (web), which is wider than product 3, from a roll 7 and rewinds it to form log 4. Log 4 is roll-shaped with an axial length equal to the axial length of the roll 7 and a diameter (log diameter) equal to the diameter of product 3. The roll 7 may be a primary roll (jumbo roll) with a single layer (1 ply) of base paper 6 wound around it, or a secondary roll with multiple layers (2 or more plies) of base paper 6 made up of multiple sheets of paper laminated together.

[0033] The log forming part 10 includes a feeding part 20 that feeds the base paper 6 from the raw material roll 7, an embossing part 30 that applies embossing to the base paper 6 fed out by the feeding part 20, a tension adjustment part 40 that adjusts the tension of the base paper 6 fed out from the embossing part 30, and a winding part 50 that rewinds the base paper 6 fed out from the tension adjustment part 40 to form the log 4. The log forming part 10 may also include a printing part that applies printing to the base paper 6. Furthermore, the log forming part 10 may include a gluing part as a final step after the winding part 50 that glues (tail seals) the end of the rewinded log 4 to its outer surface.

[0034] The feeding part 20, for example, uses a belt drive device 21 shown in Figure 2 to rotate the raw material roll 7 and feed out the raw paper 6 that has been fed out from the raw material roll 7. The belt drive device 21 comprises two pulleys 21A and 21B and a belt 21C that is placed around the outer circumference of the two rolls 21A and 21B. The belt 21C is in contact with the outer circumference of the raw material roll 7.

[0035] The belt drive device 21 is mounted so as to be able to swing around the rotation axis of one of the two pulleys 21A and 21B. For example, in Figure 2, the belt drive device 21 is pivotally supported so as to be able to swing around the rotation axis of the lower pulley 21B. The belt drive device 21 starts at a position where the belt 21C contacts the outer circumference of the raw material roll 7 at the beginning of use (start of unwinding), and rotates toward the center of the raw material roll 7 as the amount of raw paper 6 wound around the raw material roll 7 (hereinafter referred to as "remaining amount Lx") decreases.

[0036] The belt drive unit 21 is equipped with an angle sensor 22 that detects the angle α of rotation of the belt drive unit 21. The angle α is set to 0 when the belt drive unit 21 is in its initial position, and increases as more paper 6 is fed out from the raw material roll 7 (the remaining amount Lx in the raw material roll 7 decreases), that is, as the belt drive unit 21 rotates toward the center of the raw material roll 7. In this way, the angle α changes according to the remaining amount Lx in the raw material roll 7.

[0037] The belt 21C rotates due to power transmitted from one of the two pulleys 21A and 21B, which are provided as driving pulleys (for example, the lower pulley 21B), and rotates the raw material roll 7. This causes the raw paper 6 to be fed out.

[0038] The embossing part 30 involves, for example, sandwiching the base paper 6 in the embossing device 31 shown in Figure 3 and embossing the base paper 6. The embossing device 31 is equipped with a pair of embossing rolls 32 and 33 that rotate relative to each other. Of the pair of embossing rolls 32 and 33, for example, the outer peripheral surface 32f of the upper embossing roll 32, which contacts the base paper 6 from above, is fitted with a convex structure that applies an embossing pattern. On the other hand, the outer peripheral surface 33f of the lower embossing roll 33, which contacts the base paper 6 from below, is a smooth surface without irregularities.

[0039] In the embossing apparatus 31, the convex structure of the upper embossing roll 32 is pressed against the smooth outer surface 33f of the lower embossing roll 33. More specifically, in the embossing apparatus 31, pressure is applied to both ends of the embossing roll 32 in the width direction (corresponding to the width direction of the base paper 6), so that the convex structure of the embossing roll 32 is pressed against the outer surface 33f of the embossing roll 33. As a result, the base paper 6 sandwiched between the pair of embossing rolls 32 and 33 is pressed by the above pressure, giving it an uneven surface. The pressing pressure P1 of the embossing roll 32 against the base paper 6 (hereinafter also referred to as embossing pressure P1) is one of the parameters that affect the diameter of the log 4 and is changeable. For example, a reference base pressure P10 may be set in the embossing apparatus 31. In this case, the amount of pressure applied to the embossing pressure P1 may be changed based on the base pressure P10. The base pressure P10 is the pressure of the embossing roll 32 set for each product 3 (type). As described above, since pressure is applied to the embossing roll 32 from both ends in the width direction, the embossing pressure P1 may be individually changed for the pressure applied from the operating side (e.g., the front side of the paper, one side in the width direction of the embossing roll 32) and the pressure applied from the driving side (e.g., the back side of the paper, the other side in the width direction of the embossing roll 32). In this case, the base pressure P10 may be individually set for the pressure applied from the operating side and the pressure applied from the driving side. The amount of pressure applied to the embossing pressure P1 applied from the operating side and the driving side may be changed based on the respective base pressures P10 of the operating side and the driving side.

[0040] The raised structure that imparts the embossed pattern may be formed on the outer peripheral surface 33f of the lower embossing roll 33. In addition, concave grooves that engage with the raised structure may be formed on the other outer peripheral surfaces 32f, 33f where the raised structure is not formed.

[0041] The tension adjustment part 40 is a part that maintains a constant actual tension (hereinafter referred to as "actual tension") of the base paper 6 as it passes through the tension adjustment part 40. This tension adjustment part 40 is installed to ensure that the actual tension is maintained at the set tension P2 of the base paper 6. In this embodiment, the tension adjustment part 40 is provided with a tension roller 41 that detects the actual tension of the base paper 6. The tension roller 41 is positioned, for example, between two guide rollers whose axis positions are fixed, and contacts the surface of the base paper 6 opposite to the surface where the two guide rollers contact. The tension adjustment part 40 maintains the actual tension at a set tension P2 by adjusting the rotational speed of the embossing rolls 32, 33 and the drive roll 52 (described later) according to the actual tension detected by the tension roller 41. The tension P2 of the base paper 6 is one of the parameters that affect the diameter of the log 4 and is changeable. In other words, the tension adjustment part 40 does not simply maintain a constant actual tension, but adjusts so that the actual tension is maintained at a set tension P2.

[0042] The winding part 50 continuously forms logs 4 by cutting the base paper 6 after winding it a predetermined length around a cylindrical core 4c (long core tube). As shown in Figure 4, the winding part 50 is equipped with a pressing roll 51 that holds down the base paper 6 wound around the core 4c and a plurality of drive rolls 52. The winding part 50 holds the base paper 6 wound around the core 4c between the pressing roll 51 and the plurality of drive rolls 52, and by rotating the plurality of drive rolls 52, it winds up the base paper 6 and winds it around the core 4c.

[0043] The pressing roll 51 is displaced from the pressing start position P0 to the set winding end position P3 each time a log 4 is formed. As the base paper 6 is wound around the core 4c, the pressing roll 51 displaces from the pressing start position P0 to the winding end position P3, pressing down on the base paper 6 wound around the core 4c, as shown by the black arrows in Figure 4. The displacement of the pressing roll 51 is controlled, for example, by driving the arm 53 that supports the pressing roll 51. In Figure 4, the state in which the pressing roll 51 is positioned at the pressing start position P0 is shown by the dashed line.

[0044] The pressing start position P0 is, for example, the position where the outer surface of the pressing roll 51 contacts the outer surface of the core 4c. Alternatively, if the pressing roll 51 presses the base paper 6 after the core 4c has been underwound, the pressing start position P0 may be the position that contacts the base paper 6 underwound on the core 4c. The winding end position P3 is set radially outward from the pressing start position P0 of the core 4c. The winding end position P3 is one of the parameters that affects the diameter of the log 4 and is changeable. For example, the winding end position P3 may be set to the position that contacts the outer surface of the desired log 4 when the log 4 is formed with the desired winding diameter (according to the set value of the winding diameter) (hereinafter referred to as the "reference position P30"). Also, the winding end position P3 may be set to a position closer to the pressing start position P0 than the reference position P30 (a radially inward position of the core 4c). The winding end position P3 may be set at a position further from the pressing start position P0 than the reference position P30 (a radially outer position of the core 4c). The outer diameter of the log 4 formed by the winding part 50 does not necessarily coincide with the diameter corresponding to the winding end position P3. Therefore, the winding end position P3 can be changed to a position closer to or further from the pressing start position P0 than the reference position P30, with respect to the reference position P30. Furthermore, if the rotation center position of the core 4c is displaced as the base paper 6 is wound around the core 4c, the reference position P30 and the winding end position P3 may be set taking into account the displacement of the rotation center position of the core 4c.

[0045] The adjustment part 60 stores multiple logs 4 in the accumulator 61 and sequentially sends the logs 4 to the downstream cutting part 70. Here, we illustrate an example of an adjustment part 60 that sends two logs 4 at a time to the cutting part 70.

[0046] The cutting part 70 cuts the log 4, which has been fed out from the adjustment part 60, at predetermined intervals in the axial direction using the log saw 71. This cuts each log 4 into multiple products 3. The packaging part 80 inserts, for example, four products 3 (two in two layers) as a set into the packaging bag 8, seals the opening 8a of the packaging bag 8, and forms the package 5. In packing step 90, multiple packages (for example, four) of package 5 are packed together as a set into a cardboard box 9. Then, the packages 5 packed in the cardboard box 9 are shipped.

[0047] [1-2.Main part configuration] The log forming apparatus 1 is installed in the log forming part 10 of the manufacturing line 2 described above. As shown in Figure 5, the log forming apparatus 1 includes a detection unit 11A that detects the remaining amount Lx of the raw material roll 7, and an adjustment unit 11B that changes parameters that affect the diameter of the log 4 in the processing applied to the base paper 6 according to the remaining amount Lx detected by the detection unit 11A. Here, the detection unit 11A and the adjustment unit 11B, which are provided as functions of the log diameter control device 11, which is an electronic control device, are illustrated as examples. An angle sensor 22 is connected to the log diameter control device 11, and the angle α data detected by the angle sensor 22 is transmitted (input). Furthermore, the log diameter control device 11 of this embodiment transmits (outputs) the parameters adjusted by the adjustment unit 11B to various parts that process the base paper 6 (for example, the embossing part 30, the tension adjustment part 40, and the winding part 50), or to a control device (not shown) that controls the operation of the various parts.

[0048] The detection unit 11A detects the remaining amount Lx of the raw material roll 7 by analyzing data transmitted from the angle sensor 22, for example. More specifically, the detection unit 11A detects the remaining amount Lx from the angle α by using the relationship that the angle α increases as the remaining amount Lx of the raw material roll 7 decreases. The detection unit 11A then transmits the detected remaining amount Lx to the adjustment unit 11B.

[0049] The adjustment unit 11B changes the parameters that affect the diameter of the log 4 in the processing applied to the base paper 6, according to the remaining amount Lx transmitted from the detection unit 11A. Here, "processing applied to the base paper 6" in this embodiment refers to the processing applied to the base paper 6 in at least one of the embossing part 30 and the winding part 50, or the processing applied to the base paper 6 according to the detection result in the tension adjustment part 40. Furthermore, as described above, in this embodiment, the following parameters are exemplified as "parameters that affect the diameter of the log 4". • Embossing pressure P1 to be applied to base paper 6 in Embossing Part 30 • The tension P2 of the base paper 6 is set using the tension adjustment part 40. • Winding end position P3 of the retaining roll 51 set in winding part 50 The amount of parameter change by the adjustment unit 11B is set appropriately according to the degree of change in the thickness of the base paper 6 from the beginning of use (outer circumference side) to the end of use (inner circumference side) of the base paper roll 7.

[0050] Here, the magnitude of the embossing pressure P1 affects the thickness of the embossed base paper 6. That is, the greater the embossing pressure P1, the deeper the indentations formed on the base paper 6, thus increasing the thickness of the embossed base paper 6. Conversely, the smaller the embossing pressure P1, the shallower the indentations formed on the base paper 6, thus suppressing the increase in the thickness of the embossed base paper 6. The thickness of the base paper 6 then affects the diameter of the log 4 around which a predetermined length of base paper 6 is wound. Therefore, changing the parameter in the direction of increasing the embossing pressure P1 is equivalent to changing the parameter in the direction of increasing the diameter of the log 4, and changing the parameter in the direction of decreasing the embossing pressure P1 is equivalent to changing the parameter in the direction of decreasing the diameter of the log 4.

[0051] Furthermore, the magnitude of the tension P2 affects the tightness or looseness of the winding of the base paper 6 when it is wound around the core 4c in the subsequent winding part 50. That is, the greater the tension P2, the tighter the winding of the base paper 6 in the subsequent winding part 50, resulting in a smaller diameter for the log 4. Conversely, the smaller the tension P2, the looser the winding of the base paper 6 in the subsequent winding part 50, resulting in a larger diameter for the log 4. Therefore, changing the parameter in the direction of increasing the tension P2 is equivalent to changing the parameter in the direction of decreasing the diameter for the log 4, and changing the parameter in the direction of decreasing the tension P2 is equivalent to changing the parameter in the direction of increasing the diameter for the log 4.

[0052] Furthermore, the distance between the winding end position P3 and the pressing start position P0 directly affects the size of the log 4 diameter. In the winding part 50 process, the closer the winding end position P3 is to the pressing start position P0, the greater the pressing force with which the base paper 6 wound around the core 4c is pressed towards the core 4c, resulting in a smaller log 4 diameter. Conversely, the further the winding end position P3 is from the pressing start position P0, the weaker the pressing force with which the base paper 6 wound around the core 4c is pressed towards the core 4c, resulting in a larger log 4 diameter. Therefore, changing the parameters to bring the winding end position P3 closer to the pressing start position P0 results in a parameter change that reduces the log 4 diameter, while changing the parameters to move the winding end position P3 further away from the pressing start position P0 results in a parameter change that increases the log 4 diameter.

[0053] In this embodiment, the base paper 6 wound on the base paper roll 7 tends to have a thinner thickness at the end of use than at the beginning of use, due to the effect of its own weight, for example. That is, in this embodiment, the thickness of the base paper 6 on the inner circumference of the base paper roll 7 tends to be smaller than the thickness of the base paper 6 on the outer circumference. Therefore, in this embodiment, the adjustment unit 11B changes the parameters in a direction that increases the diameter of the log 4 in accordance with the decrease in the remaining amount Lx detected by the detection unit 11A.

[0054] The adjustment unit 11B changes the above parameters by one of the following methods, for example: single-step change, multi-step change, or continuous change. In single-step change, the adjustment unit 11B changes the above parameters when the remaining amount Lx decreases to a predetermined amount La. In multi-step change, the adjustment unit 11B changes the above parameters in steps as the remaining amount Lx decreases. Furthermore, in continuous change, the adjustment unit 11B continuously changes the above parameters as the remaining amount Lx decreases.

[0055] Here, we will specifically explain the three methods described above, using the case where the adjustment unit 11B changes the embossing pressure P1 as a parameter as an example. Figures 6(a) to 6(c) are maps illustrating the relationship between the embossing pressure P1 and the remaining amount Lx as changed by the three methods described above. These maps are pre-stored in the adjustment unit 11B, for example. Note that the maps in Figures 6(a) to 6(c) where the vertical axis is tension P2 instead of embossing pressure P1 will have the shape of the thick arrows in Figures 6(a) to 6(c) inverted vertically, as shown in Figures 7(a) to 6(c). In other words, when changing tension P2 as one of the above parameters, the maps in which the thick arrows in Figures 6(a) to 6(c) are inverted vertically (either of Figures 7(a) to 7(c)) are used. Also, when changing the winding end position P3 as one of the above parameters, the maps in which the direction of the arrows on the vertical axis of Figures 6(a) to 6(c) is changed to move away from the starting position P0 (i.e., "(high)" on the vertical axis is replaced with "(far)" and "(low)" with "(near)") are used, as shown in Figures 8(a) to 6(c).

[0056] As shown in Figure 6(a), in a single-step change, the adjustment unit 11B changes the parameter only once when the remaining amount Lx decreases to a predetermined amount La from the start to the end of use of the raw material roll 7. Specifically, in a single-step change, the adjustment unit 11B changes the embossing pressure P1 to a larger value than before when the remaining amount Lx decreases to a predetermined amount La. Here, the predetermined amount La, which is the threshold for changing the parameter, can be, for example, the remaining amount Lx corresponding to the diameter of the raw material roll 7 being halved, or the remaining amount Lx corresponding to the length of the base paper 6 wound on the raw material roll 7 being halved. Preferably, the predetermined amount La is defined in correspondence with the diameter of the raw material roll 7. This is because if the predetermined amount La is defined in correspondence with the length of the base paper 6 wound on the raw material roll 7, it would be necessary to set the predetermined amount La for each type depending on differences in weighing, paper thickness, or the type of base paper 6 (such as basis weight and ply count).

[0057] As shown in FIG. 6(b), in the case of multi-step change, the adjustment unit 11B changes the embossing pressure P1 to a value larger than before when the remaining amount Lx decreases to each of a plurality of predetermined values L1, L2, L3. In the example of FIG. 6(b), three predetermined values L1, L2, L3 (0 < L3 < L2 < L1) smaller than the remaining amount Lx (the initial value and the maximum value of the remaining amount Lx) of the unused original roll 7 are illustrated. These predetermined values L1, L2, L3 are also defined in advance, for example, as the remaining amount Lx corresponding to the case where the diameter of the original roll 7 or the length of the base paper 6 reaches a predetermined value. However, the specific setting method of the predetermined value is not particularly limited. The predetermined values L1, L2, L3 may be set, for example, so that the intervals are equal (L1 - L2 = L2 - L3), or may be set so that the intervals gradually become smaller (L1 - L2 > L2 - L3) or larger (L1 - L2 < L2 - L3) as the remaining amount Lx decreases. Also, at least two or more predetermined values may be defined.

[0058] As shown in FIG. 6(c), in the case of continuous change, the adjustment unit 11B gradually increases the embossing pressure P1 as the remaining amount Lx decreases. FIG. 6(c) shows an example in which the adjustment unit 11B increases the embossing pressure P1 at a constant rate (linearly) only during a partial period from the start to the end of use of the original roll 7 (the period during which the remaining amount Lx decreases from the predetermined start change remaining amount Ls to the end change remaining amount Le). Here, the start change remaining amount Ls is smaller than the amount of the base paper 6 wound around the unused original roll 7, and the end change remaining amount Le is defined in advance as a value smaller than the start change remaining amount Ls (0 < Le < Ls). Note that the continuous change is not limited to that shown in FIG. 6(c), and for example, the parameters may be gradually changed over the entire period from the start to the end of use of the original roll 7, or the parameters may be changed at a variable rate (curvilinearly).

[0059] Here, the depth of the indentations applied to the base paper 6 by the embossing part 30 (embossing device 31) is affected not only by the embossing pressure P1, but also by the feed speed of the base paper 6 from the roll 7, that is, by the rotation speed of the belt 21C of the belt drive device 21 provided in the feed part 20. More specifically, the faster the feed speed of the base paper 6, the shorter the time it takes for the base paper 6 to pass through the embossing device 31, resulting in shallower indentations applied to the base paper 6. Conversely, the slower the feed speed of the base paper 6, the longer the time it takes for the base paper 6 to pass through the embossing device 31, resulting in deeper indentations applied to the base paper 6.

[0060] Based on the relationship between the feed speed of the base paper 6 and the depth of the indentations, the adjustment unit 11B may adjust the amount of change in the embossing pressure P1 according to the feed speed of the base paper 6 fed from the roll 7 when changing the embossing pressure P1 as a parameter according to the remaining amount Lx as described above. For example, when the adjustment unit 11B increases the embossing pressure P1 according to the remaining amount Lx, if the feed speed is faster than a predetermined value, it increases the amount of increase (change) in the embossing pressure P1 more than when the feed speed is less than or equal to a predetermined value, as shown by the thick dashed arrow in Figure 6(a). In other words, the adjustment unit 11B adds the amount of increase in the embossing pressure P1 when the feed speed is faster than a predetermined value. Alternatively, instead of the configuration described above where the adjustment unit 11B increases the amount of increase in the embossing pressure P1 with a predetermined value as a threshold, the amount of increase in the embossing pressure P1 may be increased as the feed speed increases.

[0061] The adjustment unit 11B may adjust the embossing pressure P1 over the entire remaining amount Lx, that is, from the start to the end of use of the roll 7, according to the feed speed of the base paper 6 fed from the roll 7. For example, if the base paper 6 is fed from the roll 7 at a feed speed faster than the feed speed when the maps in Figures 6(a) to (c) are applied, the adjustment unit 11B may shift (transition) the position of the thick arrow in the maps in Figures 6(a) to (c) upwards in order to add the embossing pressure P1. Conversely, if the base paper 6 is fed from the roll 7 at a feed speed slower than the feed speed when the maps in Figures 6(a) to (c) are applied, the adjustment unit 11B may shift the position of the thick arrow in the maps in Figures 6(a) to (c) downwards in order to subtract the embossing pressure P1.

[0062] Furthermore, if the embossing pressure P1 is set individually on the operating side and the driving side as described above, the adjustment unit 11B may change the embossing pressure P1 according to the remaining amount Lx by individually adjusting the pressure applied from the operating side and the pressure applied from the driving side. For example, the adjustment unit 11B may increase the embossing pressure P1 according to the remaining amount Lx by increasing the pressure applied from the operating side and the pressure applied from the driving side, and may reduce the embossing pressure P1 according to the deceleration of the feeding speed by individually decreasing the pressure applied from the operating side and the pressure applied from the driving side. When the thickness of the base paper 6 is not constant and is uneven depending on the width direction position, the diameter of the formed log 4 can be made to vary depending on the width direction position by changing the pressure (embossing pressure P1) applied on the operating side and the driving side as described above. By adjusting the diameter of the log 4 in the width direction in this way, the unevenness of the base paper 6 caused by variations in the papermaking process when manufacturing the base paper 6 can be adjusted during processing.

[0063] The adjustment unit 11B may directly control the various devices that process the base paper 6 so that the modified parameters described above are realized, or it may transmit the modified parameters to the various devices (or their control devices) that process the base paper 6. For example, the adjustment unit 11B may directly control the embossing device 31 of the embossing part 30 so that the modified embossing pressure P1 is realized, or it may transmit the modified embossing pressure P1 to a control device (not shown) of the embossing device 31. The adjustment unit 11B may also transmit the modified tension P2 to the tension adjustment part 40. The tension adjustment part 40 may directly control the embossing rolls 32, 33 and the drive roll 52 so that the transmitted tension P2 is realized. Alternatively, the tension adjustment part 40 may calculate the difference between the transmitted tension P2 and the actual tension, or the rotational speed that eliminates the difference, so that the transmitted tension P2 is realized, and send this to the control devices (not shown) of each roll 32, 33, 52. Alternatively, the control unit 11B may directly control each roll 32, 33, 52 so that the actual tension detected by the tension adjustment part 40 becomes the changed tension P2. The adjustment unit 11B may directly control the arm 53 of the winding part 50 so that the changed winding end position P3 is realized, or it may transmit the changed winding end position P3 to a control device (not shown) of the arm 53.

[0064] [2. Method] As shown in Figure 9, the manufacturing line 2 carries out the processes corresponding to each of the above parts. Specifically, the manufacturing line 2 carries out the log formation process S10, the adjustment process S60, the cutting process S70, the packaging process S80, and the boxing process S90 in order. Furthermore, in the log formation process S10, each process corresponding to each of the above-mentioned parts included in the log formation part 10 is carried out. Specifically, in the log formation process S10, the feeding process S20, the embossing process S30, the tension adjustment process S40, and the winding process S50 are carried out in order. In each of the above processes, processing is carried out by a device whose name is derived by replacing "process" with "part". For example, the log formation process S10 is processed by the log formation part 10.

[0065] Furthermore, as shown in Figure 10, the log formation process S10 includes the detection process S11A and the adjustment process S11B in sequence. The detection process S11A and the adjustment process S11B are steps included in the log formation method according to this embodiment and are performed by the log formation apparatus 1 described above. More specifically, the detection step S11A is performed by the detection unit 11A, and detects the remaining amount Lx based on the angle α as described above. The adjustment step S11B is performed by the adjustment unit 11B, and changes at least one of the parameters, embossing pressure P1, tension P2, and winding end position P3, according to the remaining amount Lx detected in the detection step S11A.

[0066] The detection process S11A and the adjustment process S11B are performed in parallel with the other processes performed sequentially in the log formation process S10, namely the feeding process S20, the embossing process S30, the tension adjustment process S40, and the winding process S50. The detection process S11A is performed repeatedly (multiple times) for one raw material roll 7, for example, at a predetermined cycle, while the other processes S20, 30, 40, and 50 of the log formation process S10 are repeatedly performed. On the other hand, the adjustment process S11B may be performed only once or multiple times for one raw material roll 7, while the other processes S20, 30, 40, and 50 of the log formation process S10 are repeatedly performed. In the embossing process S30, the tension adjustment process S40, and the winding process S50, each process is performed based on the parameters changed in the adjustment process S11B.

[0067] [3. Action and Effects] (1) According to the log forming apparatus 1 and log forming method described above, the parameters that affect the diameter of the log 4 are changed according to the remaining amount Lx of the raw material roll 7. Therefore, when the thickness of the raw paper 6 changes from the beginning to the end of use of the raw material roll 7, the diameters of multiple logs 4 formed from a single raw material roll 7 can be uniformly adjusted. Thus, variations in diameter can be suppressed in multiple logs 4 formed from the beginning to the end of unwinding the raw material roll 7.

[0068] This reduces the occurrence of problems caused by variations in the diameter of the logs 4 during processing after log 4 formation. Specifically, in the packaging part 80 and the boxing part 90, it reduces problems such as variations in the size of individual packages 5 or inability to package properly due to variations in the diameter of the logs 4. Furthermore, if the log forming part 10 includes an adhesive part, it reduces problems such as small-diameter logs 4 slipping through the adhesive area and failing to seal. In addition, it reduces problems such as inability to cut properly in the subsequent cutting part 70 if unsealed logs 4 are supplied.

[0069] (2) In the raw material roll 7, the weight of the raw paper 6 may cause the thickness of the raw paper 6 to be less at the end of unwinding than at the beginning of unwinding. In this case, unless the above parameters are changed in a direction that increases the diameter of the log 4 in accordance with the decrease in the remaining amount Lx of the raw material roll 7, the log 4 formed from the raw paper 6 at the end of unwinding will have a smaller diameter than the log 4 formed from the raw paper 6 at the beginning of unwinding. For this reason, by changing the above parameters in a direction that increases the diameter of the log 4 in accordance with the decrease in the remaining amount Lx of the raw material roll 7, the variation in the diameter of the log 4 can be suppressed.

[0070] (3) As described above, the distance between the winding end position P3 of the presser roll 51 and the pressing start position P0 affects the size of the log 4 diameter. Therefore, by including the winding end position P3 as a parameter, variations in the log 4 diameter can be suppressed. Also, the winding end position P3 directly affects the size of the log 4 diameter. In other words, the winding end position P3 is easy to treat as a parameter for adjusting the size of the log 4 diameter, and by changing the winding end position P3 as a parameter, variations in the log 4 diameter can be suppressed more reliably. When changing the winding end position P3 to move closer to the pressing start position P0, for example, by reducing the tension P2, variations in the log 4 diameter can be suppressed while ensuring paper thickness (fluffiness).

[0071] (4) As described above, the magnitude of the embossing pressure P1 of the embossing roll 32 affects the magnitude of the diameter of the log 4. Therefore, by including the embossing pressure P1 as a parameter, variations in the diameter of the log 4 can be suppressed. Furthermore, by changing the embossing pressure P1 as a parameter, variations in the diameter of the log 4 can be suppressed without changing the winding end position P3 or tension P2, making it possible to form a log 4 with uniform winding looseness. As a result, the winding looseness (winding tightness) of the product 3 cut from the log 4 will also be uniform, thus improving the quality of the product 3. On the other hand, when increasing the embossing pressure P1 in accordance with the decrease in remaining amount Lx, if the tension P2 is decreased and / or the winding end position P3 is changed to move away from the pressing start position P0, it is possible to suppress the crushing of the unevenness applied to the base paper 6 while suppressing variations in the diameter of the log 4.

[0072] (5) As described above, the depth of the indentations applied to the base paper 6 by the embossing roll 32 also changes depending on the feed speed of the base paper 6 from the roll 7. Therefore, by adjusting the amount of change in the embossing pressure P1 according to the feed speed, variations in the diameter of the log 4 can be suppressed more reliably. For example, when increasing the embossing pressure P1 according to the remaining amount Lx, the faster the feed speed, the larger the increase (change) in the embossing pressure P1, thereby more reliably increasing the depth of the indentations applied from the embossing roll 32 to the base paper 6. As a result, even at high feed speeds, the depth of the indentations applied from the embossing roll 32 to the base paper 6 is appropriately ensured, thereby accurately suppressing variations in the diameter of the log 4.

[0073] Furthermore, when reducing the embossing pressure P1 according to the remaining amount Lx, that is, when changing the parameters in a direction that reduces the diameter of log 4, the slower the feed speed, the greater the reduction (change) in the embossing pressure P1, thereby more reliably suppressing the depth of the indentations applied from the embossing roll 32 to the base paper 6. As a result, even at slow feed speeds, the depth of the indentations applied from the embossing roll 32 to the base paper 6 is appropriately ensured, thereby accurately suppressing variations in the diameter of log 4.

[0074] (6) As mentioned above, the magnitude of the tension P2 affects the magnitude of the diameter of log 4. Therefore, by including tension P2 as a parameter, variations in the diameter of log 4 can be suppressed. Also, when changing the tension P2 as a parameter, it is possible to form a log 4 that has less distortion relative to the axis, i.e., a log 4 that is closer to a perfect circle, compared to when changing the winding end position P3. Therefore, the product 3 cut from log 4 will also have less distortion relative to its axis, thus improving the quality of product 3.

[0075] (7) When changing the above parameters in a single step, variations in the diameter of log 4 can be suppressed with simple control. (8) When the above parameters are changed by multi-stage changes, variations in the diameter of log 4 can be suppressed effectively. In particular, when the diameter of log 4 tends to change gradually from the beginning to the end of use of the raw material roll 7, changing the parameters in stages can suppress variations in the diameter of log 4 effectively while reducing the complexity of control compared to continuously changing the parameters. In addition, compared to single-stage changes, the amount of parameter change at the timing of the switch can be reduced, thus suppressing problems such as log clogging. In other words, the amount of parameter change at the time of switch can be kept within the allowable range of the equipment, thus suppressing the above problems.

[0076] (9) When the above parameters are changed by continuous modification, variations in the diameter of log 4 can be effectively suppressed. In particular, when the diameter of log 4 tends to change gradually from the beginning to the end of use of the raw material roll 7, variations in the diameter of log 4 can be effectively suppressed by continuously changing the parameters. Furthermore, as shown in the maps in Figures 6(c), 7(c), and 8(c), if the parameters are continuously changed in a certain range and not changed in other ranges, complex control in other ranges becomes unnecessary. This partially reduces the complexity of the control while effectively suppressing variations in the diameter of log 4. In particular, assuming that slight changes in the thickness of the base paper 6 at the beginning and end of use of the raw material roll 7 are acceptable, by continuously changing the parameters from the stage when the remaining amount Lx decreases to the change start remaining amount Ls to the change end remaining amount Le, as shown in the maps in Figures 6(c), 7(c), and 8(c), variations in the diameter of log 4 can be effectively suppressed while partially reducing the complexity of the control.

[0077] [4. Variant] The log forming apparatus and log forming method are not limited to those described above. For example, the log forming apparatus and log forming method may change all of the above parameters, namely the embossing pressure P1, tension P2, and winding end position P3, or it may change two of the embossing pressure P1, tension P2, and winding end position P3.

[0078] Furthermore, parameter changes are not limited to increasing the diameter of log 4 in response to a decrease in remaining amount Lx; they may also be made to decrease it. For example, if the thickness of the base paper 6 tends to be greater at the end of use than at the beginning of use of the base paper roll 7, the variation in the diameter of log 4 can be suppressed by changing the above parameter in response to a decrease in remaining amount Lx to increase the diameter of log 4.

[0079] Furthermore, when changing all parameters such as embossing pressure P1, tension P2, and winding end position P3, one parameter may be changed to decrease the diameter of log 4 and the other parameters to increase the diameter of log 4, depending on the decrease in remaining material Lx. The log forming apparatus and log forming method may change parameters other than the embossing pressure P1, tension P2, and winding end position P3 according to the remaining amount Lx, as long as they affect the diameter of the log 4.

[0080] Depending on the parameters to be changed, some of the processing performed in the embossing part 30 and winding part 50, and some of the processing applied to the base paper 6 according to the detection results in the tension adjustment part 40, may be omitted. For example, if the embossing pressure P1 is not changed, the processing performed in the embossing part 30 may be omitted. Also, for example, if the winding end position P3 is not changed, the processing of pressing the base paper 6 with the presser roll 51 in the winding part 50 may be omitted. In this case, the winding part 50 may wind the base paper 6 by rotating the axis of the core 4c.

[0081] The log forming part 10 may include parts other than the feeding part 20, the embossing part 30, the tension adjustment part 40, and the winding part 50. Furthermore, the production line 2 may include parts other than the log forming part 10, the adjustment part 60, the cutting part 70, the packaging part 80, and the boxing part 90. The detection of the remaining amount Lx of the raw material roll 7 is not limited to the method using the angle sensor 22. For example, the detection unit 11A may detect the remaining amount Lx of the raw material roll 7 by analyzing data transmitted from a camera that images the raw material roll 7 from the axial side. [Explanation of Symbols]

[0082] 1. Log formation apparatus 2. Manufacturing Line 3 Products 4 Logs 4c core 5 packages 6. Original document (web) 7. Roll of raw material 8 Packaging bag 8a opening 9 cardboard boxes 10. Log formation part 11 Log diameter control device 11A Detection Unit 11B Adjustment part 20. Dispensing Part 21 Belt drive system 21A, 21B pulleys 21C Belt 22 Angle Sensor 30 Embossing Part 31 Embossing machine 32,33 Embossing Roll 32f,33f outer surface 40 Tension adjustment part 41 Tension Roller 42 Arms 50 Wrapping Parts 51 Pressing Roll 52 Drive Roll 53 Arm 60 Adjustment Part 61 Accumulator 70 Cutting parts 71 Log saw 80 Packaging Part 90 Packing Part L1,L2,L3 Predetermined values La predetermined amount Le Change Start Remaining Amount Ls remaining amount after change Lx remaining P0 Starting position for pressing down P1 Embossing pressure (pressure) P2 tension P3 End of winding position P10 Base pressure P30 Reference position α angle

Claims

1. A log forming method in which a strip of web unwound from a raw material roll is cut each time it is wound to a predetermined length to form multiple logs, A detection step for detecting the remaining amount of the raw material roll, The process applied to the web includes an adjustment step which modifies a parameter that affects the diameter of the log according to the remaining amount detected in the detection step, The adjustment step modifies the parameters in a direction that increases the diameter of the log, in accordance with the decrease in the remaining amount detected in the detection step. A log formation method characterized by the following features.

2. The adjustment step involves changing the parameters, including the winding end position of the retaining roll that holds down the wound web, during the process of winding the web. The log formation method according to feature 1.

3. The adjustment step involves pressing the web with an embossing roll equipped with a convex structure for imparting an embossed pattern, and changing the parameters, including the pressing pressure of the embossing roll against the web. The log formation method according to feature 1.

4. The adjustment step adjusts the amount of change in the pressing pressure according to the feed rate of the web being fed out from the raw material roll. The log formation method according to feature 3.

5. The adjustment step involves changing the parameters, including the tension of the web, in the process of transporting the web. The log formation method according to feature 1.

6. The adjustment step involves changing the parameter when the remaining amount detected in the detection step decreases to a predetermined amount. A log formation method according to any one of claims 1 to 5.

7. The adjustment step involves gradually changing the parameters as the remaining amount detected in the detection step decreases. A log formation method according to any one of claims 1 to 5.

8. The adjustment step involves continuously changing the parameters as the remaining amount detected in the detection step decreases. A log formation method according to any one of claims 1 to 5.

9. A log forming apparatus that cuts a strip of web unwound from a raw material roll after winding it to a predetermined length to form multiple logs, A detection unit for detecting the remaining amount of the raw material roll, The system includes an adjustment unit that modifies a parameter affecting the diameter of the log in the processing performed on the web, according to the remaining amount detected by the detection unit, The adjustment unit changes the parameters in a direction that increases the diameter of the log in accordance with the decrease in the remaining amount detected by the detection unit. A log formation apparatus characterized by the following features.

Citation Information

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