Hydrogen supply piping and method of manufacturing hydrogen supply piping
10290881 ยท 2019-05-14
Assignee
Inventors
Cpc classification
B29C63/42
PERFORMING OPERATIONS; TRANSPORTING
B29C53/083
PERFORMING OPERATIONS; TRANSPORTING
H01M8/04201
ELECTRICITY
B29C63/18
PERFORMING OPERATIONS; TRANSPORTING
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
F16L9/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H01M2250/20
ELECTRICITY
Y02T90/40
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
B29C63/18
PERFORMING OPERATIONS; TRANSPORTING
H01M8/04082
ELECTRICITY
F16L9/147
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
There is provided a hydrogen supply piping for supplying hydrogen to a fuel cell, the hydrogen supply piping includes a flow path pipe member through which the hydrogen flows, and a coating member having a tube shape for covering an outer surface of the flow path pipe member. The coating member is divided into a plurality of divided pieces in pipe axis directions of the hydrogen supply piping. The divided pieces are disposed in the pipe axis directions so that an end of one of the divided pieces overlaps with an end of the adjacent divided piece. The divided pieces are wrapped tightly around an outer surface of the flow path pipe member by thermal contraction.
Claims
1. A method of manufacturing a hydrogen supply piping for supplying hydrogen to a fuel cell, comprising: providing a flow path pipe member through which the hydrogen flows; bending the flow path pipe member to form a curved portion and a substantially straight extended portion connected with the curved portion in the flow path pipe member; inserting an axial end of the bent flow path pipe member into an axial end opening of each of a plurality of tubular divided pieces in a direction parallel to a central axis of a respective one of the tubular divided pieces, wherein each of the tubular divided pieces is obtained by dividing a heat-shrinkable coating member having a tube shape, so as to sequentially attach the plurality of tubular divided pieces to the bent flow path pipe member; and thermally contracting the plurality of tubular divided pieces attached to the flow path pipe member to wrap the plurality of tubular divided pieces tightly around an outer surface of the flow path pipe member, wherein the inserting attaches the plurality of tubular divided pieces to the flow path pipe member in such a way that an overlapping portion that is a portion of adjacent tubular divided pieces where ends of the adjacent tubular divided pieces are mutually overlapped is located in the substantially straight extended portion.
2. The manufacturing method in accordance with claim 1, wherein the inserting includes attaching the tubular divided pieces so that, in a posture of the manufactured hydrogen supply piping in use, an end of each of the adjacent tubular divided pieces located ata relatively higher level in the direction of gravity relative to an end of an adjacent tubular divided piece covers an end of an adjacent tubular divided piece located at a relatively lower level in the direction of gravity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DESCRIPTION OF THE EMBODIMENTS
(6)
(7) The hydrogen supply piping 100 is disposed between the hydrogen tank 30 and the fuel cell 20, and supplies hydrogen filling the hydrogen tank 30 to the fuel cell 20. The hydrogen supply piping 100 of this embodiment has a structure in which a plurality of hydrogen supply piping members 101 and 102 are connected together by connection(s) 103. The two types of hydrogen supply piping members 101 and 102 have similar structures, which will be described later in details. The connection 103 is comprised of a connection member, such as a connector or a connecting pipe, for example. The hydrogen supply piping 100 is not limited to be disposed between the hydrogen tank 30 and the fuel cell 20, but may be disposed between the hydrogen tanks 30 if the fuel cell vehicle 10 is provided with the plurality of hydrogen tanks 30. Further, valves, such as a pressure reducing valve, a switch valve, and/or a check valve, and/or other connection members, such as a manifold, may also be provided to the hydrogen supply piping 100.
(8) The gas-discharge and water-drain piping 40 is a piping for discharging outside discharging gas containing gaseous matters produced by an electrochemical reaction of the fuel cell 20, and draining water containing produced water, one end thereof is connected with the fuel cell 20, and the other end communicates with atmosphere outside, rearward of the fuel cell vehicle 10. The gas-discharge and water-drain piping 40 is made of resin, for example.
(9)
(10) The coating member 120 is a tube-shaped member for covering an outer surface of the flow path pipe member 110, and is herein comprised of a heat shrinkable tube. The coating member 120 is contracted by heat mainly in a radial direction, and is wrapped tightly around the outer surface 111 of the flow path pipe member 110 which is disposed inside the coating member 120. Although the coating member 120 of this embodiment is made of polyethylene, it may also be made of any other materials, such as polyolefin, fluorine polymer, or thermoplastic elastomer, which is higher in noise insulation than the flow path pipe member 110. Note that the coating member 120 will have a larger thickness at a part wrapping around the flow path pipe member 110 after contraction, as the inner diameter of the coating member 120 increases even if the thickness before thermal contraction does not change. The coating member 120 improves in the noise insulation, as the thickness at the part wrapping around the flow path pipe member 110 after contraction increases. The coating member 120 has a waterproof protective function, such as a waterproof function for protecting the flow path pipe member 110 from fluid such as water, in addition to the noise insulating function. Thus, the corrosion resistance and noise insulation of the hydrogen supply piping member 101 can be improved by covering the flow path pipe member 110 with the coating member 120. Specifically, the coating member 120 prevents fluid such as water adhered to the perimeter of the hydrogen supply piping member 101 from contacting the flow path pipe member 110. Therefore, a corrosion of the flow path pipe member 110 can be prevented. In addition, noise, such as the pulsation noise generated inside the flow path pipe member 110, can be reduced by the coating member 120.
(11) The coating member 120 is divided into a plurality of divided pieces 120d in the pipe axis directions of the hydrogen supply piping member 101. Here, although the coating member 120 is divided into four divided pieces 120d (a first divided piece 120d1, a second divided piece 120d2, a third divided piece 120d3, and a fourth divided piece 120d4), the number of division is not limited. The divided pieces 120d1-120d4 are disposed in the pipe axis direction of the hydrogen supply piping member 101 so that at least one of the ends (open ends) dpe on both sides of one pipe axis direction overlaps with the opposing end dpe of another adjacent divided piece 120d. Here, each of the mutually-overlapping ends dpe of the two adjacent divided pieces 120d is also referred to as the overlapping portion PO. A sealing function between the ends dpe of the two adjacent divided pieces 120d can be secured by forming the overlapping portion PO. That is, the overlapping portion PO prevents fluid, such as water, from entering into the divided pieces 120d at boundaries between the ends dpe of the two adjacent divided pieces 120d. The divided pieces 120d are tightly wrapped around the outer surface 111 of the flow path pipe member 110 by thermal contraction. Thus, the sealing function between the divided pieces 120d and the flow path pipe member 110 is secured. Note that adhesives may be applied to inner surfaces of the divided pieces 120d. In such a case, an adhesive layer can be formed between the divided pieces 120d and the flow path pipe member 110 when the divided pieces 120d is wrapped tightly around the outer surface 111 of the flow path pipe member 110. Thus, the sealing function between the divided pieces 120d and the flow path pipe member 110 can further be improved.
(12)
(13) In a posture of the hydrogen supply piping 100 in use, the overlapping portion PO is configured so that the end dpe of one of the adjacent divided pieces 120d located relatively above covers over the end dpe of the other divided piece 120d located relatively below. Specifically, if the vertical direction of
(14)
(15) Next, as illustrated in a part (c) of
(16)
(17) After the coating member 120 is attached to the flow path pipe member 110, the coating member 120 is heated and thermally contracted to wrap tightly around the outer surface 111 of the flow path pipe member 110, as illustrated in a part (c) of
(18) According to the hydrogen supply piping 100 of this embodiment described above, since the coating member 120 can be attached to the flow path pipe member 110 after being bent by dividing the coating member 120, it is not necessary to bend the flow path pipe member 110 after the coating member 120 is wrapped tightly around the flow path pipe member 110. Therefore, even if the coating member 120 has the large thickness, the damages to the coating member can be prevented during the bending. Therefore, the noise isolation function can fully be secured in addition to the waterproof function.
(19) Modifications
(20) The present invention is not limited to the embodiment described above, but can be implemented in various forms without departing from the scope of the invention. For example, the following modifications may be possible.
(21) Modification 1
(22) In the posture of the hydrogen supply piping member 101 in use, the overlapping portion PO of this embodiment is configured so that the end dpe of one of the divided pieces 120d which is located relatively above covers the end dpe of the other divided piece 120d which is located relatively below. However, the overlapping portion PO may be configured so that the end dpe of the divided piece 120d located relatively below may cover the end dpe of the divided piece 120d located relatively above. Even in such a case, the sealing function between the ends dpe of the adjacent divided pieces 120d can fully be secured. Note that it is more preferred in terms of more fully securing the sealing function if the overlapping portion PO is configured so that the end dpe of the divided piece 120d located relatively above covers the end dpe of the divided piece 120d located relatively below.
(23) The overlapping portions PO of this embodiment are disposed at positions of the hydrogen supply piping member 101 other than the curved portions CP. However, the overlapping portions PO may also be disposed at the curved portions CP of the hydrogen supply piping member 101. Even in such a case, the sealing function between the ends dpe of the adjacent divided pieces 120d can fully be secured. Note that it is more preferred in terms of more fully securing the sealing function if the overlapping portions PO are disposed at positions of the hydrogen supply piping member 101 other than the curved portions CP.
(24) Modification 2
(25) The number of division and the number of constituent members illustrated in the embodiment described above are merely illustration and are not limited to the illustrated numbers. For example, the hydrogen supply piping 100 of the embodiment described above has the structure in which the hydrogen supply piping members 101 and 102 are connected by the connection 103. However, the hydrogen supply piping 100 may be comprised of a single hydrogen supply piping member, or may be comprised of three or more hydrogen supply piping members. Further, no connection 103 may be provided.
(26) Although the hydrogen supply piping 100 of the embodiment described above is mounted to the fuel cell vehicle 10, it may also be used at places other than the fuel cell vehicle 10. Even in such a case, the noise insulation of the hydrogen supply piping can also be improved.