METHOD AND DEVICE FOR MANUFACTURING HIGH-PRESSURE TANK LINER
20230279998 · 2023-09-07
Inventors
Cpc classification
F17C13/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2203/0604
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/0109
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02P70/50
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
F17C2209/221
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/32
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
International classification
Abstract
A manufacturing method for a high-pressure tank liner achieves a good welding quality between a pair of liner halves without removing burrs in advance before welding together the liner halves, includes steps of: arranging the pair of liner halves to face each other; adjusting parallelism between end surfaces of the liner halves; and welding the end surfaces of the liner halves together to integrate them, wherein the step of adjusting the parallelism is performed by clamping the parallelism adjustment jig between the end surfaces of the liner halves while avoiding the burrs formed on the end surfaces of the liner halves.
Claims
1. A method for manufacturing a high-pressure tank liner, the method comprising: arranging a pair of liner halves so that the liner halves face each other; adjusting parallelism between end surfaces of the liner halves; and welding the end surfaces of the liner halves together to integrate the liner halves, wherein the adjusting parallelism is performed by clamping a parallelism adjustment jig between the end surfaces of the liner halves in a manner of avoiding burrs formed on the end surfaces of the liner halves.
2. The method for manufacturing the high-pressure tank liner according to claim 1, wherein each of the liner halves includes a cylindrical body; the burrs are formed so that they originate from corners to extend between the end surfaces of the liner halves, the corners each being formed by an inner circumference and the end surface of each of the liner halves; and the parallelism adjustment jig is positioned radially outward from the corners of the liner halves.
3. The method for manufacturing the high-pressure tank liner according to claim 1, wherein the welding includes: melting the end surfaces of the liner halves by heating the end surfaces; and supporting each of the liner halves so that the end surfaces of the liner halves melted are welded together, and wherein the burrs are melted together with the end surfaces of the liner halves to disappear during the melting.
4. A manufacturing device of a high-pressure tank liner, the device comprising: a parallelism adjustment jig for adjusting parallelism between end surfaces of a pair of liner halves by clamping the parallelism adjustment jig between the end surfaces of the liner halves arranged facing each other with a predetermined load in a manner of avoiding burrs formed on the end surfaces of the liner halves; a heater for heating to melt the end surfaces of the liner halves; and a pair of support jigs supporting each of the liner halves so as to weld together the end surfaces melted of the liner halves.
5. The manufacturing device of the high-pressure tank liner according to claim 4, wherein the parallelism adjustment jig is arranged to align with the pair of the support jigs along a vertical line, when the parallelism adjustment jig is clamped with the predetermined load between the end surfaces of the liner halves supported by the pair of support jigs.
6. The manufacturing device of the high-pressure tank liner according to claim 4, wherein the parallelism adjustment jig is provided with an engagement portion for positioning with respect to the liner halves when adjusting the parallelism between the end surfaces of the liner halves.
7. The manufacturing device of the high-pressure tank liner according to claim 4, wherein the parallelism adjustment jig is made of synthetic resin, elastomer, or metal.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
[0028] Next is a detailed description of an embodiment, which is one of configuration examples implementing the invention, referring to the drawings as appropriate.
[0029] First, a description is given of a high-pressure tank using a high-pressure tank liner provided by a manufacturing method according to the present embodiment.
High-Pressure Tank
[0030]
[0031] The high-pressure tank 1 in the present embodiment is assumed to be installed, for example, in a fuel cell vehicle to store hydrogen gas supplied to a fuel cell system. However, the high-pressure tank 1 is not limited to this usage and may be used for other high-pressure gases.
[0032] As shown in
[0033] The mouthpiece 3 is assumed, for example, to be formed of a metallic material such as an aluminum alloy. The mouthpiece 3 includes a cylindrical mouthpiece body 18 having at its inside a fill and drain hole 21, and a flange 19 formed at one axial end of the mouthpiece body 18. The fill and drain hole 21 communicates with an inside of the high-pressure tank 1 at one end of the hole 21 at which end the flange 19 is formed. The other end of the fill and drain hole 21 is connected to a pipe (omitted in the figures) that is connected to the aforementioned fuel cell system or the like.
[0034] On an inner circumference of the fill and drain hole 21 at the one end of the mouthpiece body 18, there is formed a thread 21a that engages with a thread 17a formed on a tubular portion 17 of the liner 2 described below. An O-ring (not shown) is attached between an end of the tubular portion 17 of the liner 2 and the inner circumference of the fill and drain hole 21.
[0035] A cylindrical collar 22 made of metal material is disposed inside the fill and drain hole 21. This collar 22 extends from one end supported by the inner circumference of the fill and drain hole 21 to the liner 2 and is fitted into inside of the tubular portion 17 of the liner 2.
[0036] The fiber-reinforced resin layer 4 in the present embodiment is assumed to be obtained by pre-impregnating matrix resin into reinforcing fiber to obtain prepreg, winding the prepreg around outer surfaces of the liner 2 and the mouthpiece 3, and curing the matrix resin.
[0037] The reinforcing fiber in the present embodiment is assumed to be a strip-like roving (omitted in the figures), which is formed by assembling a plurality of strands made of a plurality of carbon fiber filaments. However, the reinforcing fibers are not limited to the above strip-like roving but can also use, for example, aramid fiber, boron fiber, alumina fiber, silicon carbide fibers, and the like.
[0038] The matrix resin in the present embodiment is assumed to be made of cured thermosetting resin such as epoxy resin, phenol resin, unsaturated polyester resin, and polyimide resin.
[0039] Note that a method of forming the fiber-reinforced resin layer 4 is not limited to a method using the above-described prepreg. Thus, the fiber-reinforced resin layer 4 may be made, for example, by impregnating matrix resin into resin-unimpregnated reinforcing fibers that is wound around the liner 2 and then curing the reinforcing fibers.
High-Pressure Tank Liner
[0040] Next, the liner 2 (see
[0041] The liner 2 is a hollow body made of thermoplastic resin. A thermoplastic resin include, but are not limited to, for example, polyamide resin, polyethylene resin, and the like.
[0042] The liner 2 in the present embodiment includes a body part 5 made of a cylindrical body part 5 and a mirror part 6 that are integrally molded at both ends of the body part 5 .
[0043] The body part 5 includes a major portion 8 that is formed with a predetermined outer diameter and occupies most of the body part 5 along the axis Ax, and a diameter-expanded portion 9 that is formed in a center along the axis Ax of the body part 5 and has a larger diameter than the major portion 8.
[0044] The diameter-expanded portion 9 is formed by cutting a joint 36 (see
[0045] As shown in
[0046] The radial center of the mirror part 6 is provided with a recess portion 16 that is recessed to match a shape of the flange 19 of the mouthpiece 3.
[0047] A center of the recessed portion 16 is provided with the aforementioned tubular portion 17 formed to protrude toward an inside of the fill and drain hole 21 of the mouthpiece 3. The thread 17a that engages with the thread 21a of the fill and drain hole 21 described above is formed on an outer circumference of the tubular portion 17.
Manufacturing Device of High-Pressure Tank Liner
[0048] Next, the manufacturing device of the liner 2 (see
[0049]
[0050] As shown in
[0051] First, a description is given of the liner half 31. The liner half 31 is substantially the same in its shape as that when the liner 2 shown in
[0052] The liner halves 31 are welded together on their openings 33 (see
[0053] As shown in
[0054] At a lower end of the upper support section 42a, there is attached the support jig 46 that supports the liner half 31 with the opening 33 facing downward.
[0055] At an upper end of the lower support section 42b, there is attached the support jig 46 that supports the liner half 31 with the opening 33 facing upward.
[0056] Each of the pair of the upper and lower support jigs 46 is arranged to engage the flange 32 (see
[0057]
[0058] As shown in
[0059] The flange 32 is an annulus that is coaxial with and integrally molded into the body part 5 to extend radially outward from the body part 5 of the liner half 31.
[0060] The flange 32 has a circumferential groove 32a formed.
[0061] This circumferential groove 32a extends along a circumference of the flange 32 and open upward.
[0062] A bottom surface 32a1 of the circumferential groove 32a is formed with a flat surface and is parallel to an end surface 34a of the protruding end 34 that is also formed with a flat surface.
[0063] On the other hand, the upper support jig 46 of the pair of upper and lower support jigs 46 is provided with an inner claw 46a and an outer claw 46b that engage the flange 32, as shown in
[0064] The inner claw 46a contacts the outer circumference of the body part 5 of the liner half 31 and fits into the circumferential groove 32a of the flange 32.
[0065] An end surface 46a1 of the inner claw 46a is formed with a flat surface and is parallel to the bottom surface 32a1 of the circumferential groove 32a.
[0066] The outer claw 46b is disposed on the outer circumference of the inner claw 46a and is arranged to contact the outer circumferential surface of the flange portion 32. Specifically, the outer claw 46b clamps a radially outer wall of the circumferential groove 32a of the flange portion 32 with the inner claw 46a fitted into the circumferential groove 32a.
[0067] As shown in
[0068] In other words, as shown in
[0069] In addition, like the upper support jig 46 shown in
[0070] The protruding end 34 is an annulus that is coaxial with the body part 5, integrally molded into an end surface of the opening 33 of the liner half 31, as shown in
[0071] An outer diameter of the protruding end 34 is configured to be larger than the outer diameter of the body part 5 of the liner half 31 and smaller than the outer diameter of the flange 32.
[0072] Further, an inner diameter of the protruding end 34 is set as the same as the inner diameter of the liner half 31.
[0073] Furthermore, a thickness of the protruding end 34 along the axis Ax of the liner half 31 is thicker than the melting allowance 35 for welding together the liner halves 31 as described below.
[0074] Next description is given of the parallelism adjustment jig 47 (see
[0075] The parallelism adjustment jig 47 is a jig used in the parallelism adjustment (see
[0076] The parallelism adjustment jig 47 in this embodiment is assumed to be made of synthetic resin, elastomer, or metal.
[0077] The parallelism adjustment jig 47 (see
[0078]
[0079] As shown in
[0080] Each of the top and bottom end surfaces 47a is formed with flat surfaces and parallel to each other. A cross-section of the parallelism adjustment jig 47 has a rectangular shape, which is not shown in the figure.
[0081] Of these top and bottom end surfaces 47a, the top end surface 47a is placed to contact the end surface 34a of the protruding end 34 shown in
[0082] Further, the inner and outer diameters of the parallelism adjustment jig 47 are set to avoid burrs 48 (see
[0083] Note that the parallelism adjustment jig 47 in the present embodiment is assumed to be transported by a specified transport device when the parallelism adjustment step is performed, but it may be transported to a predetermined position by a worker.
[0084] Next, the heater 40 (see
[0085] As shown in
[0086] The heater 40 includes a heating source 44a and a base member 44b that supports the heating source 44a.
[0087] The heater 40 in the present embodiment heats the end surfaces 34a of the protruding ends 34 to melt the melting allowances 35 (see
[0088]
[0089] As shown in
[0090] Incidentally, the heating source 44a in the present embodiment is assumed to be, but not limited to, one that utilizes Joule heat from an electric heating wire or the like, or one that utilizes radiant heat from far-infrared radiation.
[0091] The heating source 44a of the heater 40a shown in
[0092] Further, the heating source 44a of the heater 40b shown in
[0093] This means that the inner and outer diameters of the heating source 44a in each of the heaters 40a and 40b shown in
[0094] The heater 40 is transported by the transport mechanism 45 so as to be placed at a position just between the liner halves 31 in the heating step of the liner halves 31, and is transported so as to be moved away from the position between the liner halves 31 in the below-described steps except for the heating step.
Method for Manufacturing High-Pressure Tank Liner
[0095] Next, a manufacturing method of the present embodiment is explained while describing an operation of the manufacturing device A (see
[0096] This manufacturing method includes a arranging step of a pair of liner halves 31 (see
[0097]
Arranging Step of Liner Half
[0098] In the arranging step of liner halves 31 (see
[0099] The liner half 31 in the present embodiment is assumed to be produced by an injection molding. The mold for molding this liner half 31 includes a cavity that are surrounded, for example, by a fixed mold imitating an outer shape of the mirror part 6 (see
[0100] The liner half 31 is obtained by heating and melting the aforementioned thermoplastic resin, injecting it into the above-mentioned mold, and then cooling it. And, when the liner half 31 is removed from the mold by mold opening, the liner half 31 has the burrs 48 (see
[0101] In this arranging step, the liner halves 31 are temporarily assembled to the support jig 46, as shown in
Step of Adjusting Parallelism Between Liner Halves
[0102] Next, the parallelism adjustment step places the parallelism adjustment jig 47 shown in
[0103] This lifting up causes the parallelism adjustment jig 47 to be sandwiched between the upper liner half 31 and the lower liner half 31, as shown in
[0104] As shown in
[0105] On the other hand, there are burrs 48 between the liner halves 31. Specifically, these burrs 48 are formed at the boundary between the movable mold forming the inner circumferential surface 31a of the liner half 31 and the stripper plate mold forming the flange portion 32, as described above. This causes the burrs 48 to extend along this boundary, leading to be formed so as to extend from a corner 49, which is formed by the inner circumferential surface 31a of the liner half 31 and the end surface 34a of the protruding end 34, to a space between the liner halves 31, as shown in
[0106] In contrast, the parallelism adjustment jig 47 in the present embodiment is positioned in a direction away from the openings 33 of the liner halves 31 to avoid the burrs 48 between the liner halves 31. Specifically, the parallelism adjustment jig 47 is positioned between the inner claws 46a of the upper support jig 46 and the lower support jig 46 so as to be vertically aligned with the inner claws 46a.
[0107] The above-described parallelism adjustment step places the parallelism adjustment jig 47 between the liner halves 31 in a state of avoiding the burrs 48, and adjusts the parallelism between the liner halves 31 and the support jig 46 within a predetermined range.
Heating Step of Liner Halves
[0108] Next, the heating step of the protruding end 34 (see
[0109] As shown in
[0110] Specifically, as shown in
[0111] Lifting up of the pair of heaters 40a and 40b is then performed by the lifting mechanism 43, while the heater 40 and the lower liner half 31 are kept away with their predetermined gap D (see
[0112] As shown in
[0113] The heating source 44a of the lower heater 40b faces the end surface 34a of the protruding end 34 of the lower liner half 31 apart from each other with a predetermined gap D between them, as described above.
[0114] Further, this heating step causes the heater 40 to heat and melt the melting allowance 35 of the protruding end 34.
[0115] In addition, the heating step causes the heater 40 to melt the burrs 48, and further to integrate molten material of the burrs 48 with the molten melting allowance 35, which molten material is absorbed into the molten melting allowance 35 by surface tension. In this way, the burrs 48 between the liner halves 31 disappear.
Welding Step of Liner Halves
[0116] Next, description is given of the welding step between the liner halves 31.
[0117] In this welding step, the heater 40 (see
[0118] Then, the lifting mechanism 43 (see
[0119] As shown in
[0120] Specifically, in this welding step, as shown in
[0121] In the above-described welding step, the liner halves 31 may be vibrated by a vibrating device to accelerate the welding of the liner halves 31 when they are united at the welding surface 36a.
Cutting Step
[0122] Next, in the cutting step of the integrated liner halves 31, as shown in
[0123] The root portions 32c being left are used to form the diameter-expanded portion 9 of the liner 2 described above. This completes a series of manufacturing steps for the liner 2 of the present embodiment (see
Effects
[0124] Next, description is given of effects of the present embodiment using the manufacturing method and the manufacturing device A of the liner 2 that implements this manufacturing method.
[0125] In the manufacturing method and manufacturing device A of the liner 2 of the present embodiment, the parallelism between the end surfaces 34a of the liner halves 31 (protruding ends 34) is adjusted before welding together the liner halves 31 (protruding ends 34). In addition, as shown in
[0126]
[0127] As shown in
[0128] In other words, in the parallelism adjustment step of the manufacturing method according to this comparative example, the burrs 48 are sandwiched between the end surfaces 34a of the liner halves 31 (protruding ends 34), when the lower liner half 31 is lifted up in the direction of the white arrow by the lifting mechanism 43 shown in
[0129] In contrast, as shown in
[0130] Further, the manufacturing method and manufacturing device A according to the present embodiment prevents the end surfaces 34a of the liner halves 31 (protruding ends 34) from being damaged by the burrs 48, because the burrs 48 are not pinched between the end surfaces 34a of the liner halves 31 (protruding ends 34), unlike the conventional method and device. Further, in the present embodiment, the parallelism adjustment jig 47 is positioned while avoiding the burrs 48, which consequently prevents the burrs 48 from being pinched between the end surfaces 34a.
[0131] In addition, in the manufacturing method and manufacturing device A according to the present embodiment, although the burrs 48 are formed on the inner circumference of the end surface 34a of the liner half 31 (protruding end 34), the parallelism adjustment jig 47 is positioned radially outward from the corner 49 of the liner half 31.
[0132] The above described manufacturing method and manufacturing device A according to the present embodiment is able to prevent interference from the burrs 48 more reliably in the parallelism adjustment step between the end surfaces 34a of the liner halves 31 (protruding ends 34). Therefore, the present embodiment allows more reliably preventing the parallelism adjustment jig 47 from being misaligned with respect to the liner half 31 in the parallelism adjustment step.
[0133] In this manufacturing method according to the present embodiment, the burrs 48 are melted together with the end surface of the liner half 31and disappear in the melting step.
[0134] According to the present embodiment, the interference from the burrs 48 is completely eliminated in the welding step of the end surfaces 34a of the liner halves 31 (protruding ends 34).
[0135] Furthermore, the manufacturing method and manufacturing device A according to the present embodiment arranges the pair of support jigs 46 and the parallelism adjustment jig 47 so that they are aligned along a line (vertically in the present embodiment).
[0136] According to the above-described manufacturing method and manufacturing device A, the parallelism adjustment step transmits more efficiently the reaction force from the parallelism adjustment jig 47 via the liner half 31 (protruding end 34) to the support jig 46, and eliminates more efficiently the clearance CL between the bottom surface 32a1 of the circumferential groove 32a of the flange 32 and the end surface 46a1 of the inner claw 46a in the support jig 46. The parallelism between the end surfaces 34a of the liner halves 31 (protruding ends 34) is more reliably secured to be within a predetermined range.
[0137] Yet furthermore, in the manufacturing method and manufacturing device A according to the present embodiment, the parallelism adjustment jig 47 is assumed to be made of synthetic resin, elastomer, or metal.
[0138] The parallelism adjustment jig 47 made of synthetic resin or elastomer is able to prevent excessive stress on the liner half 31 during the parallelism adjustment step.
[0139] In addition, the parallelism adjustment jig 47 made of metal improves durability and accuracy of its positioning with respect to the end surface 34a of the liner half 31 (protruding end 34).
[0140] The present embodiment is described as the above, but the invention is not limited to the aforementioned embodiments but may be implemented in various types of embodiments.
[0141]
[0142] As shown in
[0143] The manufacturing device A according to the first modification described above is able to more effectively prevent misalignment of the parallelism adjustment jig 47 with respect to the liner half 31 in the parallelism adjustment step.
[0144]
[0145] As shown in
[0146] On the other hand, considering a case in which the mold splitting position of the stripper plate mold is changed with respect to the movable mold, the burrs 48 could be formed on the outer circumference of the protruding end 34, as shown in
[0147] Consequently, in the manufacturing device A according to the second modification, as shown in
TABLE-US-00001 Reference Signs List 1: High pressure tank 2: High pressure tank liner 4: Fiber-reinforced resin layer 5: Body part 8: Major portion of body part 9: Diameter-expanded portion 31: Liner half 31a: Inner circumferential surface of liner half 32: Flange of liner half 33: Opening of liner half 34: Protruding end of liner half 34a: End surface of liner half (of protruding end) 36: Joint 40: Heater 40a: Heater 40b: Heater 43: Lifting mechanism 45: Transport mechanism 46: Support jig 47: Parallelism adjustment jig 47b: Engagement portion for positioning 48: Burr 49: Corner between surfaces of inner circumference and protruding end of liner half A: Manufacturing device of high-pressure tank liner Ax: Axis of high pressure tank liner