Bobbin unwinding device of filament winding device
09796557 · 2017-10-24
Assignee
Inventors
Cpc classification
B65H57/18
PERFORMING OPERATIONS; TRANSPORTING
B65H57/14
PERFORMING OPERATIONS; TRANSPORTING
B65H2701/31
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65H57/14
PERFORMING OPERATIONS; TRANSPORTING
B65H57/18
PERFORMING OPERATIONS; TRANSPORTING
Abstract
This bobbin unwinding device (32A (32B)) is provided with a bobbin support shaft (33) which rotatably supports a bobbin (B) around which a band-like fiber bundle (F) is wound, a fixed guide (35) which changes the running direction of the fiber bundle (F) unwound from the bobbin (B), and an auxiliary roller (34) arranged between the bobbin (B) and the fixed guide (35), wherein the fixed guide (35) is arranged such that the shaft center of the fixed guide (35) is substantially perpendicular to the shaft center of the bobbin support shaft (33), and the auxiliary roller (34) is arranged such that the shaft center of the auxiliary roller (34) is parallel or substantially parallel to the shaft center of the bobbin support shaft (33).
Claims
1. A bobbin unwinding device of a multiple fiber bundles supplying filament winding device in which a liner is rotated and wound on an outer periphery surface of the liner with fiber bundles, wherein the filament winding device comprises: a liner transfer part, wherein the liner transfer part is configured to transfer and rotate the liner; a helical winding part comprising a plurality of nozzles, wherein the helical winding part is configured to guide the fiber bundles around the outer periphery surface of the liner; and a creel stand comprising a plurality of bobbin unwinding devices, wherein the creel stand is configured to supply the fiber bundles to each of the nozzles of the helical winding part, wherein the plurality of bobbin unwinding devices each comprises: a bobbin support shaft which rotatably supports a bobbin around which one of the fiber bundles is wound; a fixed guide which is rotated by the fed fiber bundle and changes the running direction of the fiber bundle unwound from the bobbin; and an auxiliary roller arranged between the bobbin and the fixed guide, wherein the fixed guide is arranged such that a longitudinal center axis of the fixed guide is substantially perpendicular to the bobbin support shaft and changes the running direction of the fiber bundle to the direction which is parallel to the longitudinal center axis of the bobbin support shaft, the auxiliary roller is arranged such that the longitudinal center axis of the auxiliary roller is parallel or substantially parallel to the longitudinal center axis of the bobbin support shaft, the fixed guide is arranged under the auxiliary roller and perpendicular to the auxiliary roller, and the fiber bundle is twisted between the auxiliary roller and the fixed guide.
2. The bobbin unwinding device according to claim 1, wherein the length of the auxiliary roller is substantially equal to the length of the bobbin in a longitudinal center axis direction of the bobbin.
3. The bobbin unwinding device according to claim 1, wherein the fixed guide is disposed at a position shifted from a central position of a traverse width of the fiber bundle when the fiber bundle is unwound from the bobbin.
4. The bobbin unwinding device according to claim 1, wherein the auxiliary roller comprises an outer periphery surface which is gradually reduced in outer diameter as progressing toward the end portion in a longitudinal center axis direction from a central part in the longitudinal center axis direction of the auxiliary roller.
5. The bobbin unwinding device according to claim 1, wherein the auxiliary roller is disposed at a position at which a contact length between the auxiliary roller and the fiber bundle is longer than the width dimension of the fiber bundle by two or more times.
6. The bobbin unwinding device according to claim 1, wherein the auxiliary roller is disposed at a position at which an angle formed by a trajectory of the fiber bundle led to the auxiliary roller from the bobbin and the trajectory of the fiber bundle led to the fixed guide from the auxiliary roller is set a value smaller than 90 degrees.
7. The bobbin unwinding device according to claim 1, wherein the fixed guide is disposed at a position at which an angle formed by the trajectory of the fiber bundle led to the fixed guide from the auxiliary roller and the trajectory of the fiber bundle fed from the fixed guide is set a value greater than 90 degrees.
8. A bobbin unwinding device of a multiple fiber bundles supplying filament winding device in which a liner is rotated and wound on an outer periphery surface of the liner with fiber bundles, wherein the filament winding device comprises: a liner transfer part, wherein the liner transfer part is configured to transfer and rotate the liner; a helical winding part comprising a plurality of nozzles, wherein the helical winding part is configured to guide the fiber bundles around the outer periphery surface of the liner; and a creel stand comprising a plurality of bobbin unwinding devices, wherein the creel stand is configured to supply the fiber bundles to each of the nozzles of the helical winding part, wherein the plurality of bobbin unwinding devices each comprises: a bobbin support shaft which rotatably supports a bobbin around which one of the fiber bundles is wound; a fixed guide which is rotated by the fed fiber bundle and changes the running direction of the fiber bundle unwound from the bobbin; and an auxiliary roller arranged between the bobbin and the fixed guide, wherein the fixed guide is arranged such that the longitudinal center axis of the fixed guide is substantially perpendicular to the longitudinal center axis of the bobbin support shaft, is disposed at a position shifted from a central position of a traverse width of the fiber bundle when the fiber bundle is unwound from the bobbin, is disposed at a position at which an angle formed by the trajectory of the fiber bundle led to the fixed guide from the auxiliary roller and the trajectory of the fiber bundle fed from the fixed guide is set a value greater than 90 degrees, and changes the running direction of the fiber bundle to the direction which is parallel to the longitudinal center axis of the bobbin support shaft, and wherein the auxiliary roller is arranged such that the longitudinal center axis of the auxiliary roller is parallel or substantially parallel to the longitudinal center axis of the bobbin support shaft, the fixed guide is arranged under the auxiliary roller and perpendicular to the auxiliary roller, and the fiber bundle is twisted between the auxiliary roller and the fixed guide.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
DESCRIPTION OF NOTATIONS
(7) 1 liner 10 liner transfer part 11 pedestal 12 liner support frame 13 rotational shaft 20 helical winding part 21 pedestal 22 helical head 23 nozzle 30 creel stand 31 rack 32A bobbin unwinding device 32B bobbin unwinding device 33 bobbin support shaft 34 auxiliary roller 35 fixed guide B bobbin F fiber bundle
DESCRIPTION OF EMBODIMENTS
(8) Next, an explanation will be given of embodiments of the present invention.
(9) Bobbin unwinding devices 32A (32B) according to an embodiment of the present invention are included in a filament winding device 100. Therefore, first of all, a brief explanation will be given of an overall configuration of the filament winding device 100 (Hereinafter referred to as “FW device 100”)
(10)
(11) The FW device 100 winds a fiber bundle F around the outer periphery surface of the liner 1. The FW device 100 mainly includes a liner transfer part 10, a helical winding part 20, and creel stands 30.
(12) The liner transfer part 10 transfers the liner 1 while rotating it. In particular, the liner 1 is rotated about the longitudinal direction of the FW device 100 as a center axis, and is transferred in the longitudinal direction of the FW device 100 by the liner transfer part 10. The liner transfer part 10 mainly includes a pedestal 11, liner support frames 12, and a rotational shaft 13.
(13) The pedestal 11 is placed on a pair of rails extending in the longitudinal direction of the FW device 100. The pedestal 11 is provided with the pair of liner support frames 12 and the rotational shaft 13. The liner 1 is attached to the rotational shaft 13 and is rotated one direction via a power mechanism (not shown).
(14) Because of this configuration, it is possible that the liner 1 is rotated about the longitudinal direction of the FW device 100 as a center axis, and is transferred in the longitudinal direction of the FW device 100 by the liner transfer part 10.
(15) The helical winding part 20 winds the fiber bundle F around the outer periphery surface of the liner 1. In particular, the helical winding part 20 performs so-called helical winding in which the winding angle of the fiber bundle F is set to be a prescribed value relative to the longitudinal direction of the FW device 100. The helical winding part 20 mainly includes a pedestal 21 and a helical head 22.
(16) The pedestal 21 is provided with the helical head 22. The helical head 22 is provided with a plurality of nozzles 23 each of which guides the fiber bundle F. The fiber bundle F guided by each nozzle 23 is wound around the outer periphery surface of the liner 1 passing through while rotating.
(17) Because of this configuration, it is possible that the helical winding part 20 performs so-called helical winding, where the winding angle of the fiber bundle F is set to be the prescribed value relative to the longitudinal direction of the FW device 100.
(18) The creel stand 30 supplies the fiber bundles F to the helical winding part 20. In particular, the creel stand 30 supplies the fiber bundle F to each nozzle 23 of the helical head 22 included in the helical winding part 20. The creel stand 30 mainly includes a rack 31 and the bobbin unwinding devices 32A (32B). The bobbin unwinding device 32A (32B) mainly includes a bobbin support shaft 33, an auxiliary roller 34, and a fixed guide 35 (see
(19) The plurality of bobbin support shafts 33 and auxiliary rollers 34 are attached to the rack 31 such that the bobbin support shafts 33 and the auxiliary rollers 34 are in parallel to each other. Moreover, the fixed guides 35 are attached to the rack 31 such that the fixed guides 35 are perpendicular to the longitudinal center axis direction of the bobbin support shafts 33 (see
(20) Because of this configuration, it is possible that the fiber bundle F is fed to each nozzle 23 of the helical head 22 included in the helical winding part 20 by the creel stand 30.
(21) Next, a detailed explanation will be given of the bobbin unwinding device 32A which is a first embodiment of the present invention.
(22)
(23) The bobbin support shaft 33 is a support member which supports the bobbin B to be rotatable. The bobbin support shaft 33 is formed in an approximately cylindrical shape, and the bobbin support shaft 33 is fit into the bobbin B. As described above, the bobbin B supported by the bobbin support shaft 33 rotates in a state that the fiber bundle F is pulled, whereby the fiber bundle F is unwound (rollingly reeling-off type). And the fiber bundle F unwound from the bobbin B is led to the auxiliary roller 34.
(24) The auxiliary roller 34 is a rotary member which guides the fiber bundle F to a prescribed direction. The auxiliary roller 34 is formed in an approximately cylindrical shape, and the fiber bundle F unwound from the bobbin B is whipped to the auxiliary roller 34. The auxiliary roller 34 is rotated by the fed fiber bundle F in a state where it is brought into contact with the auxiliary roller 34, whereby the fiber bundle F is guided to the prescribed direction. The fiber bundle F guided by the auxiliary roller 34 is then led to the fixed guide 35. Since the auxiliary roller 34 is arranged such that the longitudinal center axis 34a of the auxiliary roller 34 is parallel to the longitudinal center axis 33a of the bobbin support shaft 33, the fiber bundle F would not twist between the bobbin B and the auxiliary roller 34.
(25) Moreover, since the fiber bundle F traverses (see the arrow T in
(26) The fixed guide 35 is a rotary member which guides the fiber bundle F to a prescribed direction. The fixed guide 35 is formed in an approximately cylindrical shape, and the fiber bundle F guided by the auxiliary roller 34 is whipped to the fixed guide 35. The fixed guide 35 is rotated by the fed fiber bundle F in a state where it is brought into contact with the fixed guide 35, whereby the fiber bundle F is guided to the prescribed direction. And the fiber bundle F guided by the fixed guide 35 is led to the corresponding nozzle 23. Since the fiber bundle F guided by the auxiliary roller 34 is whipped to the fixed guide 35, the fiber bundle F is constrained in a constant path. Here, since the fixed guide 35 is arranged such that the longitudinal center axis 35a of the fixed guide 35 is perpendicular to the longitudinal center axis 33a of the bobbin support shaft 33, the fiber bundle F is twisted between the auxiliary roller 34 and the fixed guide 35.
(27) Because of this configuration, with regard to the bobbin unwinding device 32A, the fiber bundle F would not twist between the bobbin B and the auxiliary roller 34 even at a position in the vicinity of folding-back position TL, TR of traversing. Alternatively, the fiber bundle F is twisted between the auxiliary roller 34 and the fixed guide 35. As such, the grip force of the auxiliary roller 34 is maintained. Accordingly, the behavior of the fiber bundle F can be stabilized, and turnover of the fiber bundle F can be prevented.
(28) Next, a detailed explanation will be given of the bobbin unwinding device 32B which is a second embodiment of the present invention.
(29)
(30) The configuration of the bobbin unwinding device 32B according to the present embodiment is approximately the same as that of the above-mentioned bobbin unwinding device 32A according to the first embodiment. Accordingly, an explanation will be given focusing on differences relative to the bobbin unwinding device 32A of the first embodiment.
(31) As shown in
(32) Specifically, at the position where the fiber bundle F is unwound from the bobbin B, one side in the width direction of the fiber bundle F is defined as a1, and other side in the width direction of the fiber bundle F is defined as a2, whereas at the position where the fiber bundle F is whipped to the fixed guide 35, one side in the width direction of the fiber bundle F is defined as b1, and other side in the width direction of the fiber bundle F is defined as b2. In that case, a difference between a distance from a1 to b1 and a distance from a2 to b2 at the folding-back position TL, TR of traversing may become smaller than the case when the auxiliary roller 34 is formed in an approximately cylindrical shape (see
(33) Because of this configuration, with regard to the bobbin unwinding device 32B, the difference of distance due to the width of the fiber bundle F is reduced even at the position in the vicinity of folding-back position TL, TR of traversing. As such, twisting of the fiber bundle F is suppressed. Accordingly, the behavior of the fiber bundle F can be stabilized, and turnover of the fiber bundle F can be prevented.
(34) Moreover, as shown in
L>2W Formula
(35) Because of this configuration, with regard to the bobbin unwinding device 32A (32B), while the fiber bundle F unwound from the bobbin B is en route to the fixed guide 35, the fiber bundle F is touched to the auxiliary roller 34 for a long distance. As such, the grip force of the auxiliary roller 34 to the fiber bundle F increases. Accordingly, the behavior of the fiber bundle F can be stabilized, and turnover of the fiber bundle F can be prevented.
(36) As shown in
R1<90° Formula
(37) Because of this configuration, with regard to the bobbin unwinding device 32A (32B), while the fiber bundle F unwound from the bobbin B is en route to the fixed guide 35, the fiber bundle F is touched to the auxiliary roller 34 for a long distance. As such, the grip force of the auxiliary roller 34 to the fiber bundle F increases. Accordingly, the behavior of the fiber bundle F can be stabilized, and turnover of the fiber bundle F can be prevented.
(38) Furthermore, as shown in
R2>90° Formula
(39) Because of this configuration, with regard to this bobbin unwinding device 32A (32B), turnover of the fiber bundle F at a position in the vicinity of one folding-back position TR of traversing can be suppressed. As such, a possibility of turnover of the fiber bundle F can be reduced. Accordingly, the behavior of the fiber bundle F can be stabilized, and turnover of the fiber bundle F can be prevented.
(40) In more detail, the possibility of turnover of the fiber bundle F occurs only at a position in the vicinity of the other folding-back position TL of traversing. That is to say, a part of the fiber bundle F where turnover may occur is specified to the position nearby the folding-back position TL of traversing. Accordingly, a probability of turnover of the fiber bundle F is reduced to be approximately 50%.
INDUSTRIAL APPLICABILITY
(41) The present invention can be utilized to a technique of a bobbin unwinding device of a filament winding device.