Filament winding method and apparatus, and tank
09688508 ยท 2017-06-27
Assignee
Inventors
Cpc classification
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M8/04
ELECTRICITY
B65H81/02
PERFORMING OPERATIONS; TRANSPORTING
B29C53/602
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65H81/02
PERFORMING OPERATIONS; TRANSPORTING
B29C70/32
PERFORMING OPERATIONS; TRANSPORTING
B29C53/60
PERFORMING OPERATIONS; TRANSPORTING
Abstract
In a filament winding method, while a rotating tank relatively reciprocates in a tank axial direction to a helical winding head, fibers are fed from yarn-feeding sections to the tank. After the tank turns back in the tank axial direction, a large number of fibers are wound around one domed portion and a trunk portion of the tank, and trailing ends of the large number of fibers are located at one end portion of the trunk portion. Then a piece or a small number of fibers are fed from a rotating hoop winding head to the trunk portion, and hoop winding is performed on helical winding layers formed around the trunk portion. Then, at the one end portion of the trunk portion, the large number of fibers pulled from the yarn-feeding sections of the helical winding head are cut off.
Claims
1. A filament winding method for winding fibers around a tank composed of a trunk portion having a uniform radius in a tank axial direction and a pair of domed portions, wherein each of the domed portions communicates with a corresponding end portion of the trunk portion in the tank axial direction and is formed with a diameter that becomes smaller outward in the tank axial direction, comprising the steps of: a first step wherein while the tank, which is rotating, relatively reciprocates in the tank axial direction to a helical winding head, fibers are fed from each of a plurality of yarn-feeding sections to the tank, wherein the helical winding head includes the plurality of yarn-feeding sections arranged on a concentric circle around the tank; a second step wherein after the tank lastly turns back in the tank axial direction, a large number of fibers are wound around only one of the domed portions and the trunk portion of the tank at the outermost layer of the helical winding, trailing ends of the large number of fibers are located at one end portion of the trunk portion, and feeding of the large number of fibers from the helical winding head is stopped; and a third step wherein after the second step, a small number of fibers are fed from a rotating hoop winding head to the trunk portion, hoop winding is performed on the outermost helical winding layer formed around to the other end portion of the trunk portion, and feeding of the small number of fibers from the hoop winding head is stopped, and then at the one end portion of the trunk portion, the large number of fibers pulled from the yarn-feeding sections of the helical winding head are cut off.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION OF EMBODIMENTS OF THE INVENTION
(4) An embodiment of the present invention will be described with reference to the drawings.
(5) The FW apparatus 1 includes a base 10, a tank supporting unit 11, a helical winding head 12, a hoop winding head 13, a first moving device 14, a second moving device 15 and a controlling device 16. The tank supporting unit 11 is arranged on the base 10 to be capable of moving in the tank axial direction, and supports a gas tank 2 to be capable of rotating. The helical winding head 12 is fixedly attached on the base 10 in the tank axial direction, and performs helical winding on a circumference surface of the gas tank 2 by simultaneously feeding a large number of fibers 300 to the gas tank 2 supported with the tank supporting unit 11. The hoop winding head 13 is arranged on the base 10 to be capable of moving in the tank axial direction, is capable of rotating, and performs hoop winding on the circumference surface of the gas tank 2 by simultaneously feeding a piece or a small number of fibers 300 to the gas tank 2. The first moving device 14 reciprocates the tank supporting unit 11 in the tank axial direction X, and relatively moves the gas tank 2 in the tank axial direction X to the helical winding head 12. The second moving device 15 reciprocates the hoop winding head 13 in the tank axial direction X, and relatively moves the hoop winding head 13 in the tank axial direction X to the static gas tank 2 supported with the tank supporting unit 11. The controlling device 16 controls movements of these devices and units.
(6) The tank supporting unit 11 includes a pair of shafts 20, a pair of chucks 21, a pair of supporting columns 22, and a moving base 23. Each of the chucks 21 is structured to be capable of coupling with a mouthpiece 3 provided at each end portion of the gas tank 2. Each of the chucks 21 holds an outward end portion of each shaft 20. Each of the supporting columns 22 holds each of the supporting columns 21. The paired supporting columns 22 are fixedly attached on the moving base 23 which moves in the tank axial direction X to the base 10. The paired chucks 21 are provided with a rotation drive source which rotates the gas tank 2 by rotating the shafts 20. A rail 24 is arranged on the base 10 along with the tank axial direction X. The moving base 23 is arranged on the rail 24, and reciprocates along the rail 24 with a drive source 25. The drive source 25 is, for example, an electric motor. With this configuration, the gas tank 2 supported with the paired shafts 20 reciprocates in the tank axial direction X. In a present embodiment, the first moving device 14 is composed of the moving base 23, the rail 24 and the drive source 25.
(7) The helical winding head 12 includes a guide ring 30, guide tubes 31 as a multi-yarn-feeding section, and yarn-feeding port moving devices 33. As illustrated in
(8) Each guide tube 31, whose yarn-feeding port 32 faces toward the axial center of the gas tank 2, is arranged in a radial manner. Tube holders 40 fix the guide tubes 31 to the guide ring 30. A piece of fiber 300 is inserted into each guide tube 31 from the outside toward the tank axial center, and is pulled from the yarn-feeding port 32 at the edge of the guide tube 31 in the side of the gas tank 2.
(9) The yarn-feeding port moving device 33 may be composed of, for example, a gear mechanism and its drive source.
(10) A supporting member 60 is fixedly attached to the base 10, and the plurality of guide tubes 31 are supported with the supporting member 60 via the guide rings 30.
(11) The hoop winding head 13 includes a rotation ring 70, which is capable of rotating, and one or a small number of yarn-feeding section(s) 71 (a small number of yarn-feeding sections in an embodiment indicated in
(12) The controlling device 16 controls movements of, at least, the helical winding head 12, the hoop winding head 13, the first and the second moving devices 14, 15 in accordance with, for example, a program stored in a storage section, and thus the FW method, which is described later, is executed on the gas tank 2.
(13) An FW method using the FW apparatus 1 will be described below.
(14) As illustrated in
(15) In a step of the hoop winding, while each yarn-feeding section 71 feeds a piece of fiber 300 to the gas tank 2 in conjunction with rotation of the rotation ring 70 of the hoop winding head 13 around the tank axial center, the hoop winding head 13 reciprocates in the tank axial direction X between both ends of the trunk portion 201 at a low speed. In this way, the fibers 300 are wound around the trunk portion 201 of the gas tank 2 with the hoop winding.
(16) In a step of the helical winding, while the gas tank 2, which is rotating upon the tank axis, reciprocates in the tank axial direction X at a high speed to the helical winding head 12 between the mouthpieces 3 arranged at both ends of the gas tank 2, a piece of fiber 300 is fed from each guide tube 31 of the helical winding head 12. Accordingly, a large number of fibers 300 are simultaneously wound around the whole portion of the gas tank 2 (trunk portion 201 and domed portions 202) with the helical winding.
(17) A method for fastening fiber trailing ends to the gas tank 2 with the helical winding of the FW method according to the present invention is described below.
(18) As illustrated in
(19) Then, once the large number of fibers 300 are wound to the one end portion 400 of the gas tank 2 (left end in
(20) Then, while rotation and movement in the tank axial direction X are stopped, the hoop winding head 13 moves in the tank axial direction X to the side of the helical winding head 12 (rightward in
(21) Next, as illustrated in
(22) According to the embodiment of the present invention, hoop winding layers fasten the fiber trailing ends of the large number of fibers 300 wound with the helical winding at once. Thus, in the multi-yarn feeding method, it becomes easy to fasten the fiber trailing ends wound with the helical winding, which eventually reduces the time taken to fasten fiber trailing ends wound with the helical winding. Helical winding is performed to the other end portion 500 of the trunk portion 201, and as hoop winding is performed over the entire length of the trunk portion 201, the trailing ends of the fibers 300 wound with the helical winding are fastened firmly. Further, it becomes possible to visually confirm the trailing ends of the fibers 300 wound with the helical winding.
(23) Embodiments of the present invention have been described with reference to attached drawings. However, the present invention is not limited to these embodiments.
(24) In the embodiments described above, the gas tank 2 moves in the tank axial direction X during a helical winding operation. However, the helical winding head 12 may move in the tank axial direction X. Further, in the embodiments described above, the hoop winding head 13 moves in the tank axial direction X during a hoop winding operation. However, the gas tank 2 may move in the tank axial direction X.
(25) The FW apparatus 1 and the FW method in accordance with the present embodiments can be applied not only to manufacturing of tanks used in fuel-cell power vehicles but also manufacturing of tanks used in other types of vehicles, such as electric automobiles or hybrid automobiles, various transporting vehicles, such as vessels, air planes, or robots, and fixed buildings, such as a residence and a building.
(26) While the present invention has been described with respect to embodiments thereof, it will be apparent to those skilled in the art that the disclosed invention may be modified in numerous ways and may assume many embodiments other than those specifically set out and described above. Accordingly, it is intended by the appended claims to cover all modifications of the present invention that fall within the true spirit and scope of the present invention.