Filament winding device and filament winding method

The filament winding device addresses path length discrepancies by switching between straight and crown rollers, ensuring uniform tension and improving the mechanical strength of the wound product.

JP7732966B2Active Publication Date: 2025-09-02HONDA MOTOR CO LTD
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Patent Information

Application Number
JP2022209144
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-12-27
Publication Date
2025-09-02
Estimated Expiration
2042-12-27

AI Technical Summary

Technical Problem

The existing filament winding devices result in a difference in path length between the center and ends of a strip bundle, leading to uneven tension application and reduced mechanical strength of the wound product.

Method used

A filament winding device and method that utilizes a roller changing mechanism to switch between straight and crown rollers during hoop and helical winding, ensuring appropriate tension is applied to each fiber bundle by selecting the appropriate roller based on the winding angle and curvature of the workpiece.

Benefits of technology

The solution effectively absorbs the path length difference, allowing for uniform tension application and enhancing the mechanical strength of the wound product.

✦ Generated by Eureka AI based on patent content.

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Abstract

SOLUTION: In a filament winding apparatus 10 and a filament winding method, when a belt-like bundle 12 is wound around a work 14 by hoop winding, a straight roller 110 is selected, and the selected straight roller 110 is contacted to the belt-like bundle 12. When a belt-like bundle 12 is wound around a work 14 by helical winding, a crown roller 112 is selected, and the selected crown roller 112 is contacted to the belt-like bundle 12.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] The present invention relates to a filament winding device and a filament winding method. [Background technology]

[0002] Patent Document 1 discloses a filament winding device (FW device) that winds a fiber bundle made by bundling multiple fibers around a workpiece. In the FW device, multiple fiber bundles are aligned in a line in the width direction of the fiber bundle to form a single belt-shaped fiber bundle (belt-shaped bundle). The belt-shaped bundle is then wound around the workpiece. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-276193 Summary of the Invention [Problem to be solved by the invention]

[0004] When a strip bundle is helically wound around a workpiece, a difference in path length occurs between the center and both ends of the strip bundle in the width direction. Specifically, the path length at the center of the strip bundle is longer, while the path length at both ends of the strip bundle is shorter. As a result, the tension applied to the fiber bundles at both ends of the strip bundle is smaller than the tension applied to the fiber bundle at the center of the strip bundle. As a result, the mechanical strength of the product, which is the workpiece around which the strip bundle is wound, may be reduced.

[0005] The present invention aims to solve the above-mentioned problems. [Means for solving the problem]

[0006] A first aspect of the present invention is a filament winding device for supplying a strip bundle made of a plurality of fibers to a workpiece, the workpiece having a cylindrical cylinder portion and dome portions provided at both ends of the cylinder portion, and winding the strip bundle around the workpiece, the filament winding device comprising: a plurality of rollers that can rotate while in contact with the strip bundle to send the strip bundle toward the workpiece; and a roller changing mechanism that selects one of the plurality of rollers and brings the selected roller into contact with the strip bundle, the plurality of rollers including a straight roller and a crown roller, and the roller changing mechanism selects the straight roller when winding the strip bundle around the workpiece by hoop winding and brings the selected straight roller into contact with the strip bundle, and selects the crown roller when winding the strip bundle around the workpiece by helical winding and brings the selected crown roller into contact with the strip bundle.

[0007] A second aspect of the present invention is a filament winding method for supplying a strip bundle of multiple fibers to a workpiece, the workpiece having a cylindrical cylinder portion and dome portions provided at both ends of the cylinder portion, and winding the strip bundle around the workpiece, the filament winding method comprising: a first step of selecting a straight roller and bringing the selected straight roller into contact with the strip bundle when winding the strip bundle around the workpiece by hoop winding; and a second step of rotating the straight roller or crown roller contacting the strip bundle to feed the strip bundle toward the workpiece and wind the strip bundle around the workpiece. [Effects of the Invention]

[0008] According to the present invention, a straight roller is selected for hoop winding, and a crown roller is selected for helical winding. This allows the difference in path length that occurs between the center and both ends of the strip bundle in the width direction when the strip bundle is wound around the workpiece to be absorbed, and appropriate tension can be applied to each fiber bundle of the strip bundle. As a result, the mechanical strength of the product, which is the workpiece around which the strip bundle is wound, can be improved. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a diagram showing the configuration of the FW device. [Figure 2] FIG. 2 is a front view of the workpiece. [Figure 3] FIG. 3 is a front view of the straight roller. [Figure 4] FIG. 4 is a front view of the crown roller. [Figure 5] FIG. 5 is a flowchart showing the operation of the FW device. DETAILED DESCRIPTION OF THE INVENTION

[0010] FIG. 1 is a configuration diagram of a filament winding device 10 (FW device 10) according to this embodiment.

[0011] The FW device 10 manufactures products such as high-pressure tanks (not shown) by winding a strip-shaped bundle 12, which is a bundle of multiple fibers (not shown), around a workpiece 14. The strip-shaped bundle 12 is formed by arranging fiber bundles 16, which are bundles of multiple fibers, in a row in the width direction of the strip-shaped bundle 12 (the direction of arrow C in Figures 3 and 4).

[0012] The fiber bundle 16 is formed by bundling a large number of fibers. The fibers forming the fiber bundle 16 are, for example, carbon fibers or glass fibers. The fiber bundle 16 is pre-impregnated with resin. The resin impregnated into the fiber bundle 16 is, for example, epoxy resin, which is a thermosetting resin. Therefore, the fiber bundle 16 is a so-called tow prepreg.

[0013] 2, the workpiece 14 is a resin or metal liner 18. By winding the strip bundle 12 around the surface of the liner 18, a fiber-reinforced resin layer (not shown) is formed on the surface of the liner 18.

[0014] Specifically, the liner 18 has a cylindrical cylinder portion 20 and dome portions 22 provided on both ends of the cylinder portion 20. A cylindrical mouthpiece 28 is attached to each of the two dome portions 22 so as to be coaxial with an axis 24 (central axis) of the liner 18. The axis 24 of the liner 18 is oriented in the direction of arrow A.

[0015] The FW device 10 forms a helical layer on the surface of the workpiece 14 by helically winding the strip bundle 12 around the surfaces of the two dome sections 22 so as to straddle the surface of the cylinder section 20. The FW device 10 also forms a hoop layer by hoop winding the strip bundle 12 around the surface of the portion of the helical layer formed on the cylinder section 20. By winding the strip bundle 12 around the surface of the workpiece 14 in this manner, a fiber-reinforced resin layer is formed on the surface of the workpiece 14.

[0016] 1, the FW device 10 includes a fiber bundle delivery section 30, a delivery head 32, and a liner support section 34. In the FW device 10, the fiber bundle delivery section 30 and the delivery head 32 are arranged in this order along the direction of arrow B toward the workpiece 14. The direction of arrow B is also the transport direction of the multiple fiber bundles 16 and the strip-shaped bundle 12.

[0017] The fiber bundle delivery section 30 pays out a plurality of fiber bundles 16 and delivers them to the delivery head 32. Specifically, the fiber bundle delivery section 30 has a plurality of bobbins 36, a plurality of bobbin driving sections (not shown), and a plurality of guide rollers 38. Each of the plurality of bobbins 36 has the same configuration. Each of the plurality of bobbin driving sections has the same configuration. Each of the plurality of guide rollers 38 has the same configuration.

[0018] A fiber bundle 16, which is a roving, is wound around each of the plurality of bobbins 36 in advance. A bobbin drive unit is connected to each of the plurality of bobbins 36. Each of the plurality of bobbin drive units is a motor or the like. Each of the plurality of bobbin drive units drives and rotates the bobbin 36, thereby unwinding the fiber bundle 16 from the bobbin 36.

[0019] Each of the plurality of guide rollers 38 is rotatably provided. Each of the plurality of guide rollers 38 conveys the fiber bundle 16 unwound from each bobbin 36 to the delivery head 32 while changing the direction of the fiber bundle 16. Therefore, the fiber bundle delivery section 30 and the delivery head 32 are formed with a plurality of conveying paths 40 for conveying the plurality of fiber bundles 16 unwound from the plurality of bobbins 36.

[0020] 1, as an example, six bobbins 36, six bobbin drive units, and two guide rollers 38 are provided in the fiber bundle delivery unit 30. Each of the two guide rollers 38 transports three fiber bundles 16 unwound from the three bobbins 36 to the delivery head 32. Therefore, the multiple transport paths 40 include a first transport path 42 and a second transport path 44. The multiple fiber bundles 16 are supplied to the delivery head 32 via each of the first transport path 42 and the second transport path 44.

[0021] In the following description, the fiber bundle 16 transported via the first transport path 42 will be referred to as the first fiber bundle 46. The fiber bundle 16 transported via the second transport path 44 will be referred to as the second fiber bundle 48. Furthermore, the fiber bundle 16 wound around each bobbin 36 and the fiber bundle 16 after being unwound from each bobbin 36 will be referred to as the fiber bundle 16 if it is made of a bundle of multiple fibers.

[0022] The delivery head 32 forms a belt-like bundle 12, which is a single belt-shaped fiber bundle (band), by gathering together a plurality of first fiber bundles 46 supplied via the first conveying path 42 and a plurality of second fiber bundles 48 supplied via the second conveying path 44. The delivery head 32 supplies the formed single belt-like bundle 12 to the liner 18.

[0023] The delivery head 32 has multiple roller rows 50. The multiple roller rows 50 have multiple alignment rollers 52, two collecting rollers 54 and 55, and multiple tip rollers 56 (rollers). The multiple alignment rollers 52 are arranged upstream of the delivery head 32 in the direction of arrow B. The two collecting rollers 54 and 55 are arranged downstream of the multiple alignment rollers 52 in the direction of arrow B in the delivery head 32. The multiple tip rollers 56 are arranged between the two collecting rollers 54 and 55 and the workpiece 14.

[0024] The alignment rollers 52 include a plurality of first alignment rollers 58 and a plurality of second alignment rollers 60. The first alignment rollers 58 are disposed in the first conveying path 42. The second alignment rollers 60 are disposed in the second conveying path 44.

[0025] A plurality of first alignment rollers 58 are arranged in sequence on the first conveying path 42. A plurality of first fiber bundles 46 are stretched across the plurality of first alignment rollers 58. A plurality of second alignment rollers 60 are arranged in sequence on the second conveying path 44. A plurality of second fiber bundles 48 are stretched across the plurality of second alignment rollers 60.

[0026] The first conveying path 42 and the second conveying path 44 join at two collecting rollers 54, 55. The two collecting rollers 54, 55 rotate while contacting the plurality of first fiber bundles 46 conveyed via the first conveying path 42 and the plurality of second fiber bundles 48 conveyed via the second conveying path 44, thereby forming the plurality of fiber bundles 16 into a belt-like bundle 12. The two collecting rollers 54, 55 send out the formed belt-like bundle 12 in the direction of arrow B.

[0027] The leading end roller 56 pays out the strip bundle 12 conveyed from the two collecting rollers 54 and 55 toward the liner 18 supported by the liner support portion 34 .

[0028] The liner support part 34 supports the liner 18, which is the workpiece 14. The liner support part 34 has a base 70, a first support pillar 72, a second support pillar 74, a first support shaft part 76, and a second support shaft part 78. The base 70 is a plate-like member. The first support pillar 72 and the second support pillar 74 are erected on the base 70 at an interval in the direction of arrow A. The first support shaft part 76 extends from the first support pillar 72 toward the second support pillar 74. The first support shaft part 76 is inserted into one of the nozzles 28 (see FIG. 2) of the liner 18. The second support shaft part 78 extends from the second support pillar 74 toward the first support pillar 72, coaxially with the first support shaft part 76. The second support shaft part 78 is inserted into the other nozzle 28 of the liner 18. Therefore, the first support shaft portion 76 and the second support shaft portion 78 are arranged coaxially with the axis 24 of the liner 18 .

[0029] A rotation drive unit 80 such as a motor is connected to the first support shaft 76. The rotation drive unit 80 rotates the first support shaft 76, thereby rotating the workpiece 14 around the axis 24 of the liner 18. As the workpiece 14 rotates, the delivery head 32 is moved upstream and downstream in the directions of arrows A and B, and the strip bundle 12 is unwound via the tip roller 56, thereby winding the strip bundle 12 around the surface of the liner 18.

[0030] The delivery head 32 is provided with a roller changing mechanism 90. The roller changing mechanism 90 selects one of the plurality of leading edge rollers 56 and brings the selected leading edge roller 56 into contact with the web bundle 12. Specifically, the roller changing mechanism 90 has a drive source 92 such as a motor and a plurality of arms 96 connected to a shaft 94 of the drive source 92. One of the leading edge rollers 56 is connected to the leading edge of each of the plurality of arms 96. The drive source 92 rotates one of the arms 96 around the shaft 94, thereby bringing the leading edge roller 56 connected to the arm 96 into contact with the web bundle 12. The remaining leading edge rollers 56 that were not selected are retracted from the web bundle 12.

[0031] 1, three tip rollers 56 and three arms 96 are arranged in the delivery head 32. In the following description, the three tip rollers 56 may be referred to as a first tip roller 100, a second tip roller 102, and a third tip roller 104.

[0032] As shown in FIG. 1, the contact points of the first leading edge roller 100, the second leading edge roller 102, and the third leading edge roller 104 with the strip bundle 12 are different from one another. Specifically, the first leading edge roller 100 can contact the strip bundle 12 at a location upstream in the direction of arrow B between the two collecting rollers 54, 55 and the workpiece 14. The second leading edge roller 102 can contact the strip bundle 12 at a location downstream in the direction of arrow B from the contact point of the first leading edge roller 100. The third leading edge roller 104 can contact the strip bundle 12 at a location downstream in the direction of arrow B from the contact point of the second leading edge roller 102. FIG. 1 illustrates a case where the first leading edge roller 100 is in contact with the strip bundle 12.

[0033] The plurality of tip rollers 56 includes a straight roller 110 (see FIG. 3) and a crown roller 112 (see FIG. 4).

[0034] 3, the straight roller 110 is a cylindrical roller that extends in the direction of arrow C, which is the axial direction of the tip roller 56, and has an outer diameter Φ. In FIG.

[0035] As shown in Fig. 4, the crown roller 112 is a cylindrical roller that extends in the direction of arrow C and whose outer diameter decreases from the center to both ends in the direction of arrow C. The outer diameter of the center of the crown roller 112 is Φ1. The outer diameter of both ends of the crown roller 112 is Φ2 (Φ1 > Φ2). In Fig. 1, the first tip roller 100 and the second tip roller 102 are crown rollers 112.

[0036] When winding the strip bundle 12 around the workpiece 14 by hoop winding, the roller changing mechanism 90 selects the third tip roller 104, which is a straight roller 110, and brings the selected third tip roller 104 into contact with the strip bundle 12. When winding the strip bundle 12 around the workpiece 14 by helical winding, the roller changing mechanism 90 selects the first tip roller 100 or the second tip roller 102, which is a crown roller 112, and brings the selected tip roller 56 into contact with the strip bundle 12.

[0037] 2, the curvature of the surface of the dome portion 22 varies along the radial direction of the dome portion 22, which is perpendicular to the axis 24 of the liner 18. Specifically, the curvature of the surface of the dome portion 22 decreases as it approaches the axis 24. Furthermore, the curvature of the surface of the dome portion 22 increases as it moves away from the axis 24 and closer to the cylinder portion 20.

[0038] The curvature of the crown roller 112 is set according to the winding angle WA of the strip bundle 12 around the liner 18 with respect to the axis 24 of the liner 18. The winding angle WA is the angle between the strip bundle 12 wound around the liner 18 and the axis 24 of the liner 18. The winding angle WA becomes smaller as the strip bundle 12 approaches the axis 24. The winding angle WA also becomes larger as the strip bundle 12 moves away from the axis 24 and approaches the cylinder portion 20. As described above, the curvature of the surface of the dome portion 22 changes along the radial direction of the dome portion 22. Therefore, the winding angle WA of the strip bundle 12 around the dome portion 22 is a winding angle that corresponds to the curvature of the surface of the dome portion 22.

[0039] The first tip roller 100 and the second tip roller 102 are crown rollers 112 with different curvatures. Specifically, the curvature of the surface of the first tip roller 100 is smaller than the curvature of the surface of the second tip roller 102.

[0040] When helically winding the portion of the dome portion 22 close to the axis 24 where the surface curvature is relatively small, the strip bundle 12 is wound at a small winding angle WA. In this case, the roller changing mechanism 90 selects the first leading edge roller 100 with the small surface curvature and brings the selected first leading edge roller 100 into contact with the strip bundle 12.

[0041] When helically winding is performed on a portion of the dome portion 22 having a relatively large surface curvature, the strip bundle 12 is wound at a large winding angle WA. In this case, the roller changing mechanism 90 selects the second leading edge roller 102 having a large surface curvature and brings the selected second leading edge roller 102 into contact with the strip bundle 12.

[0042] When the control unit 130 determines to wind the strip bundle 12 around the liner 18 according to a schedule included in a predetermined program, the control unit 130 can select an arbitrary winding angle WA as a threshold value. As a result, if the winding angle WA is equal to or greater than the threshold value, the roller changing mechanism 90 selects the second leading edge roller 102, which has a larger surface curvature, and brings the selected second leading edge roller 102 into contact with the strip bundle 12. Furthermore, if the winding angle WA is less than the threshold value, the roller changing mechanism 90 selects the first leading edge roller 100, which has a smaller surface curvature, and brings the selected first leading edge roller 100 into contact with the strip bundle 12. In this way, the first leading edge roller 100 or the second leading edge roller 102 can be selected in advance based on the threshold value. Alternatively, the winding angle WA may be detected using a camera or sensor (not shown), and the first leading edge roller 100 or the second leading edge roller 102 may be selected based on the detected winding angle WA.

[0043] When winding the strip bundle 12 around the cylinder portion 20 by hoop winding, the roller changing mechanism 90 selects the third leading edge roller 104 and brings the selected third leading edge roller 104 into contact with the strip bundle 12.

[0044] The FW device 10 further includes a control unit 130. The control unit 130 has a memory 132. The control unit 130 reads and executes programs stored in the memory 132, thereby realizing various functions for controlling each part of the FW device 10.

[0045] The control unit 130 controls the rotation drive unit 80 to rotate the workpiece 14. The control unit 130 controls the plurality of bobbin drive units to rotate the plurality of bobbins 36. The control unit 130 controls the roller changing mechanism 90 to bring any one of the first to third tip rollers 100 to 104 into contact with the strip bundle 12.

[0046] The control unit 130 controls the rotation drive unit 80 in accordance with a schedule included in a predetermined program, thereby rotating the workpiece 14 and winding the strip bundle 12 around the workpiece 14. Therefore, the control unit 130 can determine in advance the timing at which hoop winding and helical winding will be performed.

[0047] Specifically, by winding the strip bundle 12 around the workpiece 14, a fiber-reinforced resin layer in which the strip bundle 12 is laminated is formed on the surface of the workpiece 14. Therefore, when the control unit 130 controls each part according to a schedule included in a predetermined program, it controls the roller changing mechanism 90 to select the third tip roller 104 when performing hoop winding on the surface of the workpiece 14. Furthermore, when the control unit 130 controls each part according to a schedule included in a predetermined program, it controls the roller changing mechanism 90 to select the first tip roller 100 or the second tip roller 102 when performing helical winding on the workpiece 14.

[0048] FIG. 5 is a flowchart showing the operation of the FW device 10.

[0049] When winding the strip bundle 12 around the workpiece 14, first, as shown in FIG. 1 , the liner 18 is supported by the liner support unit 34, and the fiber bundle feed unit 30 and the delivery head 32 are arranged upstream of the workpiece 14 in the direction of arrow B. Next, a plurality of fiber bundles 16 are pulled out from a plurality of bobbins 36, and the pulled out plurality of fiber bundles 16 are passed over a plurality of alignment rollers 52 and two collecting rollers 54, 55. In this case, the two collecting rollers 54, 55 align the plurality of fiber bundles 16 in a line in the direction of arrow A, thereby forming one strip bundle 12. Next, the starting end of one strip bundle 12 is fixed to the surface of the workpiece 14.

[0050] Thereafter, in step S1 (first step) of FIG. 5, the control unit 130 determines whether or not to perform hoop winding on the workpiece 14 (whether or not to form a hoop layer on the surface of the workpiece 14).

[0051] If a hoop layer is to be formed on the surface of the workpiece 14 (step S1: YES), the control unit 130 proceeds to step S2 (first step). In step S2, the control unit 130 determines to use the straight roller 110. Next, the control unit 130 instructs the roller changing mechanism 90 to select the straight roller 110. The drive source 92 of the roller changing mechanism 90 selects the third leading edge roller 104, which is the straight roller 110, in accordance with the instruction from the control unit 130. Next, the drive source 92 rotates the arm 96 to bring the third leading edge roller 104 into contact with the strip bundle 12.

[0052] In step S1, if a helical layer is to be formed on the surface of the workpiece 14 (step S1: NO), the control unit 130 proceeds to step S3 (first step). In step S3, the control unit 130 determines to use the crown roller 112. Next, the control unit 130 determines whether or not to perform helical winding on a portion of the surface of the dome portion 22 that has a small surface curvature. In other words, the control unit 130 determines whether or not to form a helical layer with a relatively small surface curvature (a low helical layer with a small winding angle WA) on a portion of the surface of the dome portion 22 that is close to the axis 24.

[0053] If a low helical layer is to be formed on the surface of the workpiece 14 (step S3: YES), the control unit 130 proceeds to step S4 (first step). In step S4, the control unit 130 determines to use the first leading edge roller 100, which is the leading edge roller 56 for the low helical layer. Next, the control unit 130 instructs the roller changing mechanism 90 to select the first leading edge roller 100. The drive source 92 of the roller changing mechanism 90 selects the first leading edge roller 100 in accordance with the instruction from the control unit 130. Next, the drive source 92 rotates the arm 96 to bring the first leading edge roller 100 into contact with the strip bundle 12.

[0054] If a low helical layer is not to be formed on the surface of the workpiece 14 in step S3 (step S3: NO), the control unit 130 proceeds to step S5 (first step). In step S5, the control unit 130 determines to form a helical layer on a portion of the surface of the dome portion 22 that is far from the axis 24. That is, the control unit 130 determines to form a helical layer on the surface of the dome portion 22 that has a relatively medium or large curvature (a medium-high helical layer with a large winding angle WA). Based on this determination result, the control unit 130 determines to use the second leading end roller 102, which is the leading end roller 56 for the medium-high helical layer. Next, the control unit 130 instructs the roller changing mechanism 90 to select the second leading end roller 102. The drive source 92 of the roller changing mechanism 90 selects the second leading end roller 102 in accordance with the instruction from the control unit 130. Next, the drive source 92 rotates the arm 96 to bring the second leading end roller 102 into contact with the strip bundle 12.

[0055] In addition, in steps S2, S4, and S5, if another tip roller 56 is already in contact with the strip bundle 12, the drive source 92 moves the other tip roller 56 away from the strip bundle 12 and brings the selected tip roller 56 into contact with the strip bundle 12.

[0056] After the processing of step S2, step S4, or step S5, in step S6 (second step), the control unit 130 drives the rotation drive unit 80 to rotate the workpiece 14. The control unit 130 also drives the multiple bobbin drive units to rotate the multiple bobbins 36 and transport the multiple fiber bundles 16 to the delivery head 32. This starts winding the strip bundle 12 around the surface of the workpiece 14.

[0057] In this case, when the strip bundle 12 is wound around the workpiece 14 by hoop winding, the third tip roller 104, which is a straight roller 110, feeds the strip bundle 12 to the workpiece 14. When the strip bundle 12 is wound around the workpiece 14 by helical winding, the first tip roller 100 or the second tip roller 102, which is a crown roller 112, feeds the strip bundle 12 to the workpiece 14.

[0058] In the next step S7, the control unit 130 determines whether or not the winding of the strip bundle 12 around the workpiece 14 is to be completed.

[0059] If the winding of the strip bundle 12 around the workpiece 14 is to continue (step S7: NO), the control unit 130 returns to step S1 and executes the processes of steps S1 to S6 again. By repeatedly executing the processes of steps S1 to S6, the strip bundle 12 is wound around the workpiece 14, and a fiber-reinforced resin layer including a helical layer and a hoop layer is formed on the surface of the workpiece 14.

[0060] When winding of the strip bundle 12 around the workpiece 14 is finished (step S7: YES), the control unit 130 stops driving the rotation drive unit 80 and the multiple bobbin drive units. By removing the workpiece 14 from the liner support unit 34, the desired product can be obtained.

[0061] In the above description, the FW device 10 is described as including one straight roller 110 and two crown rollers 112. In this embodiment, the number of crown rollers 112 may be changed depending on the shape of the dome portion 22 and the number of fiber bundles 16 used (the width of the strip bundle 12).

[0062] In this embodiment, the curvature of the surface of the dome portion 22 may decrease radially away from the axis 24 of the liner 18. In this case, when helical winding is performed on a portion of the dome portion 22 close to the axis 24 where the surface curvature is relatively large, the roller changing mechanism 90 may select the second tip roller 102 and bring the selected second tip roller 102 into contact with the strip bundle 12. Furthermore, when helical winding is performed on a portion of the dome portion 22 close to the cylinder portion 20 where the surface curvature is relatively small, the roller changing mechanism 90 may select the first tip roller 100 and bring the selected first tip roller 100 into contact with the strip bundle 12.

[0063] In this embodiment, the curvature of the surface of the dome portion 22 may be greater or smaller relative to a radially intermediate position on the surface of the dome portion 22 as it approaches the axis 24 of the liner 18 or the cylinder portion 20. In this case, the roller changing mechanism 90 may select one of the multiple crown rollers 112 depending on the winding angle WA of the strip bundle 12 around the liner 18.

[0064] The invention that can be understood from the above-described embodiments will be described below.

[0065] A first aspect of the present invention is a filament winding device (10) for supplying a strip bundle (12) of multiple fibers to a work (14), the work having a cylindrical cylinder portion (20) and dome portions (22) provided at both ends of the cylinder portion, and winding the strip bundle around the work, the filament winding device including a plurality of rollers (56) that rotate while in contact with the strip bundle to feed the strip bundle toward the work, and a roller selecting one of the plurality of rollers and selecting the roller. and a roller changing mechanism (90) that brings the selected roller into contact with the strip bundle, wherein the rollers include straight rollers (110) and crown rollers (112), and the roller changing mechanism selects the straight roller and brings the selected straight roller into contact with the strip bundle when winding the strip bundle around the workpiece by hoop winding, and selects the crown roller and brings the selected crown roller into contact with the strip bundle when winding the strip bundle around the workpiece by helical winding.

[0066] According to the present invention, a straight roller is selected for hoop winding, and a crown roller is selected for helical winding. This allows the difference in path length that occurs between the center and both ends of the strip bundle in the width direction when the strip bundle is wound around the workpiece to be absorbed, and appropriate tension can be applied to each fiber bundle of the strip bundle. As a result, the mechanical strength of the product, which is the workpiece around which the strip bundle is wound, can be improved.

[0067] In the first aspect of the present invention, the curvature of the crown roller may be set in accordance with a winding angle (WA) of the strip bundle around the workpiece relative to a central axis (24) of the workpiece.

[0068] The curvature of the crown roller is set according to the winding angle of the strip bundle around the workpiece, so that when the strip bundle is wound around the workpiece by helical winding, appropriate tension can be applied to each fiber bundle of the strip bundle.

[0069] In a first aspect of the present invention, the curvature of the surface of the dome portion changes along the radial direction of the dome portion perpendicular to the central axis, the crown roller has multiple crown rollers with different curvatures, and the roller changing mechanism may select one of the multiple crown rollers depending on the winding angle of the strip bundle around the workpiece, and bring the selected crown roller into contact with the strip bundle.

[0070] Since the curvature of the surface of the dome portion corresponds to the winding angle, when winding a strip bundle around a workpiece by helical winding, tension can be more appropriately applied to each fiber bundle of the strip bundle by switching the crown roller according to the winding angle.

[0071] In a first aspect of the present invention, the multiple crown rollers include a first crown roller and a second crown roller having a curvature greater than that of the first crown roller, and the curvature of the surface of the dome portion increases as it moves away from the central axis in the radial direction, and the roller changing mechanism may select the first crown roller and bring the selected first crown roller into contact with the strip bundle when performing the helical winding on a portion of the dome portion close to the central axis where the surface curvature is relatively small, and may select the second crown roller and bring the selected second crown roller into contact with the strip bundle when performing the helical winding on a portion of the dome portion close to the cylinder portion where the surface curvature is relatively large.

[0072] When winding a strip bundle around a dome portion by helical winding, by switching to an appropriate crown roller according to the winding angle, tension can be applied more appropriately to each fiber bundle of the strip bundle.

[0073] In a first aspect of the present invention, the multiple crown rollers include a first crown roller and a second crown roller having a curvature greater than that of the first crown roller, and the curvature of the surface of the dome portion decreases as it moves away from the central axis in the radial direction.The roller changing mechanism may select the second crown roller and bring the selected second crown roller into contact with the strip bundle when performing the helical winding on a portion of the dome portion close to the central axis where the surface curvature is relatively large, and may select the first crown roller and bring the selected first crown roller into contact with the strip bundle when performing the helical winding on a portion of the dome portion close to the cylinder portion where the surface curvature is relatively small.

[0074] Even with this configuration, when winding the strip bundle around the dome portion by helical winding, by switching to an appropriate crown roller according to the winding angle, tension can be more appropriately applied to each fiber bundle of the strip bundle.

[0075] In a first aspect of the present invention, the curvature of the surface of the dome portion becomes larger or smaller as it approaches the central axis or the cylinder portion relative to the radial intermediate position on the surface of the dome portion, and the roller changing mechanism may select one of the multiple crown rollers depending on the winding angle of the strip bundle around the workpiece.

[0076] Even with this configuration, when winding the strip bundle around the dome portion by helical winding, by switching to an appropriate crown roller according to the winding angle, tension can be more appropriately applied to each fiber bundle of the strip bundle.

[0077] A second aspect of the present invention is a filament winding method for supplying a strip bundle of multiple fibers to a workpiece, the workpiece having a cylindrical cylinder portion and dome portions provided at both ends of the cylinder portion, and winding the strip bundle around the workpiece, the filament winding method comprising: a first step (S1-S5) of selecting a straight roller and bringing the selected straight roller into contact with the strip bundle when winding the strip bundle around the workpiece by hoop winding; and a second step (S6) of rotating the straight roller or the crown roller in contact with the strip bundle to feed the strip bundle toward the workpiece and wind the strip bundle around the workpiece.

[0078] According to the present invention, a straight roller is selected for hoop winding, and a crown roller is selected for helical winding. This allows the difference in path length that occurs between the center and both ends of the strip bundle in the width direction when the strip bundle is wound around the workpiece to be absorbed, and appropriate tension can be applied to each fiber bundle of the strip bundle. As a result, the mechanical strength of the product, which is the workpiece around which the strip bundle is wound, can be improved.

[0079] The present invention is not limited to the above disclosure, and various configurations can be adopted without departing from the gist of the present invention. [Explanation of symbols]

[0080] 10...Filament winding device 12...Cervical bundle 14...Work 20...Cylinder section 22...Dome section 90...Roller change mechanism 100...First tip roller (roller) 102...Second tip roller (roller) 104...Third tip roller (roller) 110...Straight roller 112...Crown roller

Claims

1. A filament winding device for supplying a strip-shaped bundle formed by bundling a plurality of fibers to a workpiece, the workpiece having a cylindrical cylinder portion and dome portions provided at both ends of the cylinder portion, and winding the strip-shaped bundle around the workpiece, a plurality of rollers that rotate while in contact with the strip bundle to feed the strip bundle toward the workpiece; a roller change mechanism that selects one of the rollers and brings the selected roller into contact with the web; Equipped with The plurality of rollers include straight rollers and crown rollers, The roller changing mechanism includes: When winding the strip bundle around the workpiece by hoop winding, the straight roller is selected, and the selected straight roller is brought into contact with the strip bundle; When winding the strip bundle around the workpiece by helical winding, the filament winding device selects the crown roller and brings the selected crown roller into contact with the strip bundle.

2. 2. The filament winding device according to claim 1, A filament winding device, wherein the curvature of the crown roller is set according to the winding angle of the strip bundle around the workpiece relative to the central axis of the workpiece.

3. 3. The filament winding device according to claim 2, the curvature of the surface of the dome portion varies along a radial direction of the dome portion perpendicular to the central axis, The crown roller has a plurality of crown rollers with different curvatures, The roller change mechanism selects one of the multiple crown rollers depending on the winding angle of the strip bundle around the workpiece, and brings the selected crown roller into contact with the strip bundle, a filament winding device.

4. 4. The filament winding device according to claim 3, the plurality of crown rollers include a first crown roller and a second crown roller having a curvature larger than that of the first crown roller; the curvature of the surface of the dome portion increases with increasing distance from the central axis in the radial direction, The roller changing mechanism includes: When the helical winding is performed on a portion of the dome portion close to the central axis where the surface curvature is relatively small, the first crown roller is selected, and the selected first crown roller is brought into contact with the strip bundle, A filament winding device that selects the second crown roller and brings the selected second crown roller into contact with the strip bundle when performing helical winding on a portion of the dome portion that is close to the cylinder portion and has a relatively large surface curvature.

5. 4. The filament winding device according to claim 3, the plurality of crown rollers include a first crown roller and a second crown roller having a curvature larger than that of the first crown roller; the curvature of the surface of the dome portion decreases as it moves away from the central axis in the radial direction, The roller changing mechanism includes: When the helical winding is performed on a portion of the dome portion close to the central axis where the surface curvature is relatively large, the second crown roller is selected, and the selected second crown roller is brought into contact with the strip bundle, A filament winding device that selects the first crown roller and brings the selected first crown roller into contact with the strip bundle when performing helical winding on a portion of the dome portion that is close to the cylinder portion and has a relatively small surface curvature.

6. 4. The filament winding device according to claim 3, a curvature of the surface of the dome portion increases or decreases with increasing distance from a central position on the surface of the dome portion in the radial direction to the central axis or the cylinder portion, The roller change mechanism selects one of the plurality of crown rollers in accordance with the winding angle of the strip bundle around the workpiece.

7. A filament winding method for winding a strip bundle of multiple fibers onto a workpiece, the workpiece having a cylindrical cylinder portion and dome portions provided on both ends of the cylinder portion, the method comprising: a first step of selecting a straight roller and bringing the selected straight roller into contact with the strip bundle when winding the strip bundle around the workpiece by hoop winding, and selecting a crown roller and bringing the selected crown roller into contact with the strip bundle when winding the strip bundle around the workpiece by helical winding; a second step of rotating the straight roller or the crown roller in contact with the strip bundle to feed the strip bundle toward the workpiece and wind the strip bundle around the workpiece; A filament winding method comprising:

Citation Information

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