Pressure vessel and method of manufacturing the pressure vessel
The opposite-handed thread fastening structure in pressure vessels synchronizes nozzle and liner rotation, addressing assembly challenges and reducing complexity and costs in the manufacturing process.
Patent Information
- Application Number
- JP2025547298
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2023-09-21
- Filing Date
- 2024-08-30
- Publication Date
- 2026-02-25
- Estimated Expiration
- 2044-08-30
AI Technical Summary
Conventional pressure vessels face issues with nozzle rotation relative to the liner during filament winding, leading to assembly difficulties and increased production costs due to complex nozzle structures designed to prevent rotation.
A fastening structure is implemented where the fastening directions of the nozzles and protrusions are opposite, using opposite-handed threads to synchronize the rotation of the nozzle and liner, preventing relative rotation during filament winding.
This configuration ensures secure assembly of the nozzle to the liner without requiring special shapes, simplifying the manufacturing process and reducing production costs.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a pressure vessel and a method for manufacturing a pressure vessel. [Background technology]
[0002] A pressure vessel is known that includes a body that contains a gas or liquid, a liner that has a pair of protrusions that protrude outward from the body, a metal mouthpiece that is provided on the outer periphery of the protrusions, and a fiber-reinforced resin layer that covers the liner and the mouthpiece (Patent Document 1). For example, when forming the fiber-reinforced resin layer by filament winding, a drive shaft fitted to the mouthpiece is rotated to rotate the mouthpiece and liner together, while winding the fiber-reinforced resin around the outer periphery of the liner. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2009-58111 [Patent Document 2] Japanese Patent Application Laid-Open No. 2017-122464 Summary of the Invention [Problem to be solved by the invention]
[0004] Some conventional pressure vessels use a screw structure to connect a pair of protrusions and a nozzle, as described in Patent Document 1. The threads provided in such a screw structure are all right-handed (or both left-handed). Therefore, for example, when unidirectional tension acts on the fiber during filament winding, one of the pair of protrusions moves in a direction that tightens the nozzle, while the other moves in a direction that loosens the nozzle. This causes a problem that the other nozzle rotates in a direction that loosens the nozzle relative to the liner during filament winding, making it difficult to securely assemble the nozzle. Also, as described in Patent Document 2, there is a method of preventing relative rotation of the nozzle relative to the liner by providing a rotation restriction portion on the nozzle, such as a recess or projection, but this method has problems such as a tendency for molding defects to occur and increased production costs when the nozzle structure becomes complex.
[0005] The present invention has been devised from this perspective, and has as its object to provide a pressure vessel and a method for manufacturing a pressure vessel that prevents the mouthpiece from rotating relative to the liner during manufacturing. [Means for solving the problem]
[0006] In order to solve the above problem, the present invention comprises a hollow liner having a pair of protrusions that protrude away from each other, a pair of nozzles that are connected to the pair of protrusions by a fastening structure that involves rotation, and a fiber-reinforced resin layer formed by winding fiber around the outer peripheral surfaces of the liner and the nozzle, and is characterized in that the fastening direction in connecting the pair of protrusions to the nozzle is set in the direction in which each of the nozzles is fastened to the pair of protrusions when the fiber is wound around the outer surface of the liner.
[0007] The present invention also provides a method for manufacturing a pressure vessel having a hollow liner having a pair of protrusions that protrude away from each other, and a pair of nozzles that are connected to the pair of protrusions by a fastening structure that involves rotation, the method comprising: a fastening step of fastening each of the nozzles to the pair of protrusions, and a fiber-reinforced resin layer forming step of rotating the liner and winding fiber around the outer peripheral surface of the liner to form a fiber-reinforced resin layer, wherein in the fiber-reinforced resin layer forming step, a drive shaft is fitted into the pair of nozzles, and the drive shaft and the nozzles are rotated synchronously to wind the fiber around the outer surface of the liner, and the nozzles and the protrusions are formed so that each of the nozzles is fastened to the pair of protrusions.
[0008] According to the present invention, the nozzle can be prevented from rotating relative to the liner during manufacturing without providing the liner or nozzle with a special shape.
[0009] Furthermore, it is preferable that the fastening structure between the pair of protrusions and the nozzle has a screw structure, and is formed so that the fastening direction in the screw connection between one of the protrusions and the nozzle is opposite to the fastening direction in the screw connection between the other protrusion and the nozzle.
[0010] According to the present invention, the nozzle can be prevented from rotating relative to the liner with a simple configuration. [Effects of the Invention]
[0011] According to the pressure vessel and the method for manufacturing a pressure vessel of the present invention, it is possible to prevent the mouthpiece from rotating relative to the liner during manufacturing. [Brief explanation of the drawings]
[0012] [Figure 1] 1 is a side cross-sectional view showing a pressure vessel according to an embodiment of the present invention. [Figure 2] FIG. 2 is an enlarged cross-sectional side view showing the connection structure between one liner and a nozzle. [Figure 3] FIG. 3 is a side view showing the direction of threading of the fastening structure of FIG. 2. [Figure 4] FIG. 10 is an enlarged cross-sectional side view showing the connection structure between the other liner and the nozzle. [Figure 5] 5 is a side view showing the direction of threading of the fastening structure of FIG. 4. [Figure 6] FIG. 10 is a diagram showing a state in which fibers are wound around the outer periphery of a liner. [Figure 7] 1 is a comparison table showing the effects of the pressure vessel according to the present embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0013] <Pressure vessel according to the embodiment> Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings. In the description of the drawings, the same elements are given the same reference numerals, and duplicated descriptions will be omitted as appropriate.
[0014] As shown in Fig. 1, the pressure vessel 1 according to this embodiment is used as a vessel for storing low-pressure gases such as LPG, high-pressure gases such as hydrogen gas, and other fluids. As shown in Fig. 1, the pressure vessel 1 of the present invention comprises a liner 2, a fiber-reinforced resin layer 3, and nozzles 4A and 4B.
[0015] The liner 2 includes a cylindrical body 21, dome portions 22, 22 formed on both ends of the body 21, and protrusions 23A, 23B protruding in directions away from each other from the dome portions 22, 22. The liner 2 is made of a resin material such as high-density polyethylene (HDPE), polyamide, polyketone, or polyphenylene sulfide (PPS), and is formed by injection molding, blow molding, or the like.
[0016] The dome portions 22, 22 are formed continuously from both ends of the body portion 21, and are portions whose diameter decreases toward the ends. The dome portions 22, 22 are formed with protruding portions 23A, 23B, respectively, which protrude outward and have a generally cylindrical shape. The protruding portions 23A, 23B are portions to which the bases 4A, 4B are respectively connected. The connection structure between the protruding portions 23A, 23B and the bases 4A, 4B will be described in detail later.
[0017] The fiber reinforced resin layer 3 is made of, for example, FRP (fiber reinforced resin) and serves to reinforce the pressure resistance strength of the liner 2. The fiber reinforced resin layer 3 is formed on the outer surfaces of the liner 2 and the mouthpieces 4A and 4B by, for example, using a filament winding method in which a fiber bundle impregnated with resin is wound and then the resin is cured.
[0018] The nozzles 4A and 4B are members fitted onto the protruding portions 23A and 23B of the liner 2, and are used to inject and discharge gas. The nozzles 4A and 4B are made of a metal material such as a high-strength aluminum alloy or stainless steel alloy, and a valve or the like is inserted and attached to them. In the fiber-reinforced resin layer forming step described below, a drive shaft V (see FIG. 6) is inserted into the nozzles 4A and 4B, and the liner 2 is rotated around the drive shaft V to wind the fibers, thereby forming the fiber-reinforced resin layer 3.
[0019] As shown in FIG. 2, the base 4A includes a tubular portion 44 and a flange portion 45. The tubular portion 44 is cylindrical and rises from the flange portion 45. The flange portion 45 is a portion that protrudes in a plate-like shape in the circumferential direction. The flange portion 45 is disposed in a recess 24 formed in the dome portion 22. The outer surface of the flange portion 45 and the outer surface of the dome portion 22 are flush with each other. As shown in FIG. 4, the base 4B includes a tubular portion 44 and a flange portion 45. The base 4B is identical to the base 4A except for the female thread formed on the inner circumferential surface.
[0020] (fastening structure) Next, a fastening structure between the liner 2 and the mouthpieces 4A and 4B will be described. First, the mouthpiece 4A side will be described. As shown in Fig. 3, a male thread (right-handed thread) S1 is formed on the outer peripheral surface of the protrusion 23A. That is, the threads are wound clockwise from the tip (upper side of the drawing) of the protrusion 23A to the base end (lower side of the drawing). On the other hand, a female thread (right-handed thread) S2 is formed on the inner peripheral surface of the base 4A. That is, the thread grooves are wound clockwise from the tip (upper side of the drawing) to the base end (lower side of the drawing) of the base 4A. The protrusion 23A and the base 4A are screwed together to form a fastening structure 43. Note that in this embodiment, the fastening structure 43 is a screw connection, but it may be any structure that involves rotation, such as a cam lock type.
[0021] As shown in Fig. 5, a male thread (left-handed thread) S3 is formed on the outer peripheral surface of the protrusion 23B. That is, the threads are wound counterclockwise from the tip (upper side of the drawing) of the protrusion 23B to the base end (lower side of the drawing). On the other hand, a female thread (left-handed thread) S4 is formed on the inner peripheral surface of the base 4B. That is, the thread grooves are wound counterclockwise from the tip (upper side of the drawing) of the base 4B to the base end (lower side of the drawing). The protrusion 23B and the base 4B are screwed together to form a fastening structure 48. Note that in this embodiment, the fastening structure 48 is a screw connection, but it may be any structure that involves rotation, such as a cam lock type.
[0022] <<Method for manufacturing pressure vessel according to embodiment>> Next, a description will be given of a method for manufacturing the pressure vessel 1. In the method for manufacturing the pressure vessel according to this embodiment, a preparation step, a fastening step, and a fiber reinforced resin layer forming step are performed.
[0023] In the preparation step, the liner 2 and the nozzles 4A and 4B having the protrusions 23A and 23B are formed. The liner 2 is molded using a mold, for example, by blow molding. As described above, a male thread (right-handed thread) S1 is formed on the outer peripheral surface of the protrusion 23A, and a male thread (left-handed thread) S3 is formed on the outer peripheral surface of the protrusion 23B. As described above, a female thread (right-handed thread) S2 is formed on the inner peripheral surface of the nozzle 4A, and a female thread (left-handed thread) S4 is formed on the inner peripheral surface of the nozzle 4B.
[0024] In the fastening step, the base 4A is fastened to the protruding portion 23A by screwing, and the base 4B is fastened to the protruding portion 23B by screwing.
[0025] In the fiber-reinforced resin layer forming process, the fiber-reinforced resin layer 3 is formed using a filament winding method in which resin-impregnated fiber Z is wound around the outer periphery of the liner 2 and the spindles 4A and 4B, as shown in Fig. 6. In this embodiment, as shown in Fig. 7, a drive shaft V extending from a motor (rotation drive unit) is inserted (fitted) into the inner surface of the spindles 4A and 4B, and the drive shaft V is rotated clockwise as viewed from the motor, causing the drive shaft V and the spindles 4A and 4B to rotate synchronously, and the liner 2 also rotates accordingly. The fiber Z is wound around the outer surface of the liner 2 while the liner 2 is rotated clockwise around the drive shaft V.
[0026] The method for manufacturing a pressure vessel liner is not limited to the above-described method. For example, although blow molding has been exemplified as the molding of the liner 2, other molding methods such as rotational molding and injection molding may also be used.
[0027] (Action and effect) FIG. 7 is a comparison table showing the effects of the pressure vessel according to this embodiment. Before the countermeasures were implemented, as shown in FIG. 7, the nozzle 104A was fastened to one of the protrusions 123A with a right-handed thread, and the nozzle 104B was fastened to the other protrusion 123B with a right-handed thread. Therefore, when the drive shaft V was rotated, tension from the wound fibers (see arrow C in FIG. 7) was applied to the liner 2, restricting the rotation of the liner 2 relative to the rotation of the drive shaft V and the nozzles 104A and 104B. Therefore, the nozzle 104A on the upper side of the drawing acts in a tightening direction, while the nozzle 104B on the lower side of the drawing acts in a loosening direction. In other words, the nozzle 104B on the lower side of the drawing loosens during filament winding, making it difficult to securely assemble the nozzles.
[0028] In contrast, in this embodiment, the nozzle 4A is fastened to one of the protrusions 23A with a right-handed screw, and the nozzle 4B is fastened to the other protrusion 23B with a left-handed screw. As a result, when the drive shaft V is rotated, tension from the wound fibers (arrow C in Figures 6 and 7) is applied to the liner 2, which restricts the rotation of the liner 2 relative to the rotation of the drive shaft V and the nozzles 4A and 4B, causing both the nozzles 4A and 4B to act in a tightening direction. This allows the liner 2 and the nozzles 4A and 4B to be firmly assembled with the fiber-reinforced resin layer 3.
[0029] According to the pressure vessel 1 of this embodiment described above, the fastening directions of the nozzles 4A, 4B and the protrusions 23A, 23B are set in the direction in which they tighten during filament winding. This prevents the nozzles 4A, 4B from rotating relative to the liner 2 during filament winding without requiring any special shapes for the liner 2 or the nozzles 4A, 4B.
[0030] The fastening structure 43 has a screw structure in which the male screw S1 of the protrusion 23A is screwed into the female screw S2 of the base 4A. The fastening structure 48 has a screw structure in which the male screw S3 of the protrusion 23B is screwed into the female screw S4 of the base 4B. This allows the fastening structure to be easily configured.
[0031] Although the embodiment of the present invention has been described above, appropriate design changes are possible within the scope of the present invention. For example, in this embodiment, the nozzle 4A side is formed with a right-handed thread and the nozzle 4B is formed with a left-handed thread, but if the rotation direction of the liner 2 is reversed (counterclockwise) when viewed from the motor side, the nozzle 4A may be formed with a left-handed thread and the nozzle 4B with a right-handed thread. [Explanation of symbols]
[0032] 1. Pressure vessels 2 Liner 3 Fiber-reinforced resin layer 4A, 4B nozzle 21 Torso 23A,23B Projection
Claims
1. a hollow liner having a pair of protrusions protruding in directions away from each other; a pair of nozzles coupled to the pair of protrusions by a fastening structure involving rotation; a fiber-reinforced resin layer formed by winding fibers around the outer peripheral surfaces of the liner and the nozzle, A pressure vessel characterized in that the fastening direction in which the pair of protrusions and the nozzles are connected is set to the direction in which each of the nozzles is fastened to the pair of protrusions when the fiber is wound around the outer surface of the liner.
2. a fastening structure between the pair of protrusions and the base has a screw structure, The pressure vessel according to claim 1, characterized in that the fastening direction in the screw connection between one of the protrusions and the nozzle is opposite to the fastening direction in the screw connection between the other of the protrusions and the nozzle.
3. A method for manufacturing a pressure vessel having a hollow liner having a pair of protrusions protruding in directions away from each other, and a pair of mouthpieces coupled to the pair of protrusions by a fastening structure involving rotation, comprising: a fastening step of fastening each of the nozzles to the pair of protrusions, respectively; a fiber reinforced resin layer forming step of rotating the liner and winding fibers around the outer peripheral surface of the liner to form a fiber reinforced resin layer, A method for manufacturing a pressure vessel, characterized in that in a fiber-reinforced resin layer forming process, when a drive shaft is fitted into a pair of nozzles and the drive shaft and the nozzles are rotated synchronously to wind the fiber onto the outer surface of the liner, the nozzles and the protrusions are formed so that each nozzle is fastened to a pair of protrusions.
Citation Information
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