Boost pump and cryogenic fluid supply system

The boost pump addresses stress concentration on the discharge pipe by using a horizontally bent pipe design, enhancing durability and reducing stress on the connection points.

JP7720372B2Active Publication Date: 2025-08-07MITSUBISHI HEAVY IND LTD
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2023185245
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-10-30
Publication Date
2025-08-07
Estimated Expiration
2043-10-30

AI Technical Summary

Technical Problem

The existing boost pump design causes stress on the discharge pipe connected to the cylinder due to downward expansion, leading to potential structural issues.

Method used

The boost pump incorporates a discharge pipe with a horizontally bent portion that is supported at the upper end by the casing, reducing stress concentration by allowing the bent portion to return to a straight shape and absorb the downward stress.

Benefits of technology

This design effectively reduces stress on the discharge pipe, improving durability and maintaining the structural integrity of the pump components.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007720372000001
    Figure 0007720372000001
  • Figure 0007720372000002
    Figure 0007720372000002
  • Figure 0007720372000003
    Figure 0007720372000003
Patent Text Reader

Abstract

To reduce stress acting on a discharge pipe in a booster pump and a low-temperature fluid supply system.SOLUTION: A booster pump includes: a casing that stores a low-temperature fluid; a cylinder that is disposed inside the casing, has a compression chamber, and has an upper end in a vertical direction supported by an upper part of the casing; a piston that is supported inside the cylinder so as to be movable along the vertical direction and compresses the low-temperature fluid sucked into the compression chamber; and a discharge pipe that has a bent part bent in a horizontal direction, a lower end in the vertical direction communicating with the compression chamber, and an upper end supported by the upper part of the casing.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a boost pump and a cryogenic fluid supply system. [Background technology]

[0002] One possible system for achieving carbon neutrality is to use hydrogen gas as fuel. Hydrogen is stored in a tank in liquid form, and the liquid hydrogen stored in the tank is vaporized to produce hydrogen gas, which is then supplied to, for example, a fuel cell or a hydrogen engine. The hydrogen supply system includes a boost pump that pressurizes the liquid hydrogen. Patent Document 1 describes an example of a boost pump. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Publication No. 2022-190932 Summary of the Invention [Problem to be solved by the invention]

[0004] The boost pump described in Patent Document 1 includes a cylinder, a piston, a drive unit, a casing, a check valve, a discharge valve, and a discharge pipe. The vertical upper end of the cylinder is supported by the lower part of the casing, and the piston is supported inside the cylinder so that it can move freely up and down. One end of the discharge pipe is connected to the lower end of the cylinder, and the upper end of the discharge pipe is supported by the lower part of the casing. The boost pump alternately draws in and compresses liquid hydrogen as the piston moves up and down, and discharges high-pressure liquid hydrogen into the discharge pipe. When the liquid hydrogen is compressed, downward stress acts on the cylinder, causing it to expand. This poses a problem in that similar downward stress acts on the discharge pipe connected to the cylinder.

[0005] The present disclosure is intended to solve the above-mentioned problems, and aims to provide a boost pump and a cryogenic fluid supply system that reduce stress acting on the discharge piping. [Means for solving the problem]

[0006] To achieve the above-mentioned object, the boost pump of the present disclosure comprises a casing for storing a low-temperature fluid, a cylinder disposed inside the casing and having a compression chamber, the cylinder having a vertical upper end supported on the top of the casing, a piston supported inside the cylinder so as to be freely movable along the vertical direction and compressing the low-temperature fluid drawn into the compression chamber, and a discharge pipe having a bent portion bent horizontally, the vertical lower end connected to the compression chamber, and the upper end supported on the top of the casing.

[0007] The cryogenic fluid supply system of the present disclosure also includes a compressor having the boost pump and compressing the cryogenic fluid, an evaporator that vaporizes the liquid hydrogen compressed by the compressor, and a dispenser that supplies the gas vaporized by the evaporator. [Effects of the Invention]

[0008] According to the boost pump and cryogenic fluid supply system of the present disclosure, stress acting on the discharge pipe can be reduced. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a schematic diagram showing the overall configuration of the hydrogen supply system of this embodiment. [Figure 2] FIG. 2 is a vertical cross-sectional view showing the compression device of this embodiment. [Figure 3] FIG. 3 is a horizontal cross-sectional view (cross-section taken along III-III in FIG. 2) showing the booster pump of this embodiment. [Figure 4] FIG. 4 is a cross-sectional view showing a main part of the booster pump. [Figure 5] FIG. 5 is a cross-sectional view showing a connection portion between the cylinder and the discharge pipe. [Figure 6]FIG. 6 is a cross-sectional view taken along line VI-VI in FIG. [Figure 7] FIG. 7 is a cross-sectional view taken along line VIII-VIII in FIG. [Figure 8] FIG. 8 is a cross-sectional view of a main part of a booster pump showing a first modified example of the discharge pipe. [Figure 9] FIG. 9 is a cross-sectional view of a main part of a booster pump showing a second modified example of the discharge pipe. DETAILED DESCRIPTION OF THE INVENTION

[0010] Preferred embodiments of the present disclosure will be described in detail below with reference to the drawings. Note that the present disclosure is not limited to these embodiments, and when there are multiple embodiments, the present disclosure also includes configurations that combine the embodiments. Furthermore, the components in the embodiments include those that can be easily imagined by a person skilled in the art, those that are substantially identical, and those that are within the so-called equivalent range.

[0011] <Hydrogen supply system> FIG. 1 is a schematic diagram showing the overall configuration of the hydrogen supply system of this embodiment.

[0012] As shown in FIG. 1, a hydrogen supply system (low-temperature fluid supply system) 10 supplies (replenishes) liquid hydrogen stored in a container 11 as hydrogen gas at a predetermined pressure to a power source of a vehicle 12. Here, the power source is, for example, a fuel cell or a hydrogen engine, and is mounted on the vehicle 12. The hydrogen supply system 10 is, for example, a so-called hydrogen station that supplies (replenishes) hydrogen gas, which is a fuel, to the power source of the vehicle 12. However, the hydrogen supply system 10 is not limited to systems that supply hydrogen gas to the power source of the vehicle 12, but also includes systems that supply hydrogen gas to a tank of a trailer that transports the hydrogen. Furthermore, the hydrogen supply system 10 is not limited to systems that supply hydrogen to the power source of the vehicle 12, and also operates in a similar manner when compressing and supplying a low-temperature fluid (e.g., liquid hydrogen, liquid nitrogen, liquid oxygen, liquefied carbon dioxide, liquefied natural gas, liquefied propane gas, etc.).

[0013] The hydrogen supply system 10 includes a compressor 21, an evaporator 22, and a dispenser 23. The compressor 21 compresses liquid hydrogen (low-temperature fluid) supplied from the container 11 to a predetermined high pressure (high-pressure state). The evaporator 22 generates hydrogen gas by vaporizing the high-pressure liquid hydrogen compressed by the compressor 21. The dispenser 23 fills the hydrogen gas generated by the evaporator 22 into the power source of the vehicle 12.

[0014] Although the compressor 21 compresses the liquid hydrogen stored in the container 11 to a predetermined high pressure, the present invention is not limited to this configuration.

[0015] The compression device 21 has a drive unit 31 and a boost pump 32. The drive unit 31 has a drive motor and a drive mechanism, not shown. The drive motor is an electric motor that can be driven by externally supplied power. The rotation speed of the drive motor is controlled by an inverter (not shown). The drive mechanism has a crank mechanism and converts the rotational power of the drive motor into linear reciprocating power. The drive motor transmits the rotational power to the drive mechanism, and the drive mechanism transmits the linear reciprocating power to the boost pump 32. The boost pump 32 is operated by the drive unit 31 and compresses the liquid hydrogen. The drive unit 31 may have a reducer between the drive motor and the drive mechanism.

[0016] <Compression device> FIG. 2 is a vertical cross-sectional view showing the compression device of this embodiment, and FIG. 3 is a horizontal cross-sectional view (cross-section III-III in FIG. 2) showing the boost pump of this embodiment.

[0017] 2, the compressor 21 has a drive unit 31 and a boost pump 32, and the drive unit 31 has a drive motor 33 and a drive mechanism 34. The compressor 21 (boost pump 32) is a device for boosting the pressure of liquid hydrogen, which is an extremely low temperature liquid, to a high pressure (about 90 MPa).

[0018] <Drive unit> The drive mechanism 34 includes an eccentric shaft portion 41, a rotor 42, a link portion 43, a swing shaft portion 44, a crosshead 45, and a housing 46.

[0019] The eccentric shaft portion 41 has a cylindrical shape and is disposed along the horizontal direction. The eccentric shaft portion 41 is supported so as to be rotatable about an axis O1 along the horizontal direction. The tip end of the output shaft 33a of the drive motor 33 is connected to the eccentric shaft portion 41. When the drive motor 33 is driven, the output shaft 33a rotates, and the rotational power of the output shaft 33a is transmitted to the eccentric shaft portion 41, causing the eccentric shaft portion 41 to rotate.

[0020] The rotor 42 has a disk shape and is disposed outside the eccentric shaft portion 41, and is rotatable integrally with the eccentric shaft portion 41. The rotor 42 has a center along the axis O2, and the center (axis O2) of the rotor 42 and the center (axis O1) of the eccentric shaft portion 41 are displaced in the radial direction. In other words, the center (axis O1) of the eccentric shaft portion 41 is disposed at a position opposite to the center (axis O2) of the rotor 42. When the eccentric shaft portion 41 rotates, the rotor 42 oscillates and rotates about the axis O1.

[0021] The link portion 43 constitutes a crank mechanism, converts rotational power into linear reciprocating power, and transmits it to the boost pump 32. The link portion 43 has an upper annular portion 43a, a connecting portion 43b, and a lower annular portion 43c. The upper annular portion 43a is annular in shape. The upper annular portion 43a is disposed outside the rotor 42 via a bearing portion (not shown), and is rotatable relative to the rotor 42. The lower annular portion 43c is annular in shape. The connecting portion 43b is disposed between the upper annular portion 43a and the lower annular portion 43c, and integrally connects the upper annular portion 43a and the lower annular portion 43c.

[0022] When the eccentric shaft portion 41 rotates and the rotor 42 swings and rotates about the axis O1, the link portion 43 is actuated. That is, in the link portion 43, the upper annular portion 43a swings about the axis O1 due to the rotation of the rotor 42, the swinging power of the upper annular portion 43a is transmitted to the lower annular portion 43c via the connection portion 43b, and the lower annular portion 43c moves linearly back and forth in the vertical direction while rotating about the axis O3 that is parallel to the axes O1 and O2.

[0023] The upper end of the oscillating shaft 44 is connected to the lower end of the lower annular portion 43c of the link portion 43. The lower end of the oscillating shaft 44 is connected to the upper end of a piston 53 (described later) in the boost pump 32. The oscillating shaft 44 is oscillating between the lower annular portion 43c and the piston 53 around an oscillating axis that is horizontal to the lower annular portion 43c and the piston 53.

[0024] The crosshead 45 has a cylindrical shape with a bottom that covers the lower annular portion 43c from the outside. The housing 46 is disposed on the outer periphery of the crosshead 45. The housing 46 is supported on a stand (not shown), and the crosshead 45 is supported so as to be movable in the vertical direction relative to the housing 46. The lower annular portion 43c of the link portion 43 is supported so as to be rotatable by the crosshead 45. When the eccentric shaft portion 41 and the rotating body 42 rotate and the link portion 43 swings back and forth in the vertical direction, the lower annular portion 43c and the crosshead 45 move back and forth in the vertical direction relative to the housing 46.

[0025] <Booster pump> As shown in FIGS. 2 and 3, the boost pump 32 includes a casing 51, a cylinder 52, a piston 53, and a discharge pipe .

[0026] <Casing> The casing 51 is a pressure vessel for storing liquid nitrogen and also an insulated vacuum vessel. The support plate 61 is arranged horizontally and is mounted on a stand (not shown). The support plate 61 has a through-hole 61a formed in it at a position on an axis O4 along the vertical direction. The casing 51 has a casing main body 51a, an intermediate flange portion 51b, a support cylinder portion 51c, and an upper flange portion 51d. The casing main body 51a is a cylindrical, bottomed, insulated structure, and has an internal liquid storage chamber 62. The intermediate flange portion 51b is disc-shaped and has a circular hole formed in its center. The intermediate flange portion 51b is fastened integrally to the upper end of the casing main body 51a. The intermediate flange portion 51b has a support cylinder portion 51c, which is smaller in diameter than the casing main body 51a, integrally formed at its upper part. An upper flange 51d having a larger diameter than the support cylinder 51c is integrally formed at the upper end of the support cylinder 51c, and a circular hole is formed in the center of the upper flange 51d. The upper flange 51d of the casing 51 is in close contact with the underside of the support plate 61 and is fastened with bolts. In other words, the upper end of the casing 51 is suspended from the support plate 61 and supported.

[0027] Casing 51 has a supply pipe 63 and a gas discharge pipe 64 connected to the side of casing main body 51a. Supply pipe 63 is a pipe for supplying liquid hydrogen from an external supply source to liquid storage chamber 62 of casing 51. Supply pipe 63 is provided near the bottom of casing 51. Gas discharge pipe 64 is a pipe for discharging components (hydrogen gas) vaporized in liquid storage chamber 62 to the outside. Gas discharge pipe 64 is located at a position spaced apart above supply pipe 63. Liquid hydrogen is stored in liquid storage chamber 62, and the liquid level of the liquid hydrogen is adjusted to be located below gas discharge pipe 64.

[0028] <Cylinder> The cylinder 52 is a container for compressing liquid hydrogen. The cylinder 52 has a cylinder body 52a and a flange portion 52b. The cylinder body 52a has a cylindrical shape with a bottom, and a compression chamber 65 is provided at the lower part of the interior. A flange portion 52b having a larger diameter than the cylinder body 52a is integrally provided at the upper end of the cylinder body 52a, and the flange portion 52b is open at the center. The flange portion 52b of the cylinder 52 fits into a through-hole 61a of a support plate 61, and the cylinder 52 is placed on the upper surface of an upper flange portion 51d of the casing 51. In other words, the upper end of the cylinder 52 is suspended and supported by the support plate 61. A seal member (not shown) is provided between the flange portion 52b of the cylinder 52 and the upper flange portion 51d of the casing 51.

[0029] An inlet valve 66 is provided at the bottom of cylinder 52. The inlet valve 66 is used to introduce liquid hydrogen from liquid reservoir chamber 62 into compression chamber 65. In other words, the inlet valve 66 is a check valve that opens when the pressure in compression chamber 65 becomes lower than the pressure in liquid reservoir chamber 62, allowing liquid hydrogen from liquid reservoir chamber 62 to enter compression chamber 65. On the other hand, when the pressure in compression chamber 65 becomes higher than the pressure in liquid reservoir chamber 62, the check valve closes, preventing liquid hydrogen from compression chamber 65 from flowing back into liquid reservoir chamber 62. Note that although FIG. 2 shows the inlet valve 66 exposed to the outside of cylinder 52, FIG. 2 is a schematic diagram, and in reality, the inlet valve 66 is provided inside cylinder 52.

[0030] A discharge valve 67 is provided on the lower side of the cylinder 52. The discharge valve 67 is for discharging (exhausting) the high-pressure liquid water compressed in the compression chamber 65 to the outside. In other words, the discharge valve 67 is a check valve that opens when the pressure in the compression chamber 65 becomes higher than the pressure on the discharge side, thereby discharging the high-pressure liquid hydrogen in the compression chamber 65 to the outside. On the other hand, when the pressure in the compression chamber 65 becomes lower than the pressure on the discharge side, the discharge valve closes, thereby preventing the high-pressure liquid hydrogen on the discharge side from flowing back into the compression chamber 65. Note that although FIG. 2 shows the discharge valve 67 as exposed to the outside of the cylinder 52, FIG. 2 is a schematic diagram, and in reality the discharge valve 67 is provided inside the cylinder 52.

[0031] <Piston> The piston 53 has a piston body 53a and a piston ring 53b. The piston body 53a has a long cylindrical shape and is disposed inside the cylinder 52. The piston body 53a is disposed along an axis O4 that is along the vertical direction. The piston body 53a has a constant outer diameter over the entire area along the axis O4. The upper end of the piston body 53a is connected to the drive unit 31.

[0032] A plurality of piston rings 53b are attached to the piston body 53a. The piston rings 53b are annular and centered on the axis O4, and are made of a resin material.

[0033] That is, a plurality of piston rings 53b are provided at intervals in the direction of the axis O4 at the lower end of the piston body 53a of the piston 53. The piston rings 53b are provided to maintain liquid-tightness and air-tightness between the piston 53 and the inner circumferential surface of the cylinder 52.

[0034] A piston 53 is disposed inside the cylinder 52, thereby defining a compression chamber 65 at the lower end. The piston 53 is reciprocated inside the cylinder 52 along the direction of the axis O4 by the drive unit 31. When the piston 53 moves upward inside the cylinder 52, the volume of the compression chamber 65 expands, the pressure decreases, and liquid hydrogen is drawn in. When the piston 53 moves downward inside the cylinder 52, the volume of the compression chamber 65 contracts, the pressure increases, and the liquid hydrogen is compressed. A seal member is provided on the inner peripheral surface of the opening of the flange portion 52b of the cylinder 52, which seals the gap with the outer peripheral surface of the piston body 53a.

[0035] <Cylinder and piston arrangement> The cylinder 52 is disposed at a position shifted to one side in the radial direction from the center of the casing 51. That is, the center position of the cylinder 52 is located on the axis O4. The center position of the casing 51 is located on the axis O5. That is, in the casing 51, the center position of the casing main body 51a is located on the axis O5, and the centers of the support cylinder portion 51c and the upper flange portion 51d are located on the axis O4. Therefore, the center (axis O4) of the cylinder 52 is disposed at a predetermined distance to one side in the radial direction from the center (axis O5) of the casing main body 51a of the casing 51.

[0036] <Discharge piping> The discharge pipe 54 is a pipe for discharging high-pressure liquid hydrogen compressed in the compression chamber 35 to the outside. The discharge pipe 54 is disposed adjacent to the cylinder 52 inside the casing 51. The cylinder 52 is disposed at a position (axis O4) shifted to one side in the radial direction from the center (axis O5) of the casing 51. The discharge pipe 54 is disposed at a position shifted to the other side in the radial direction from the center (axis O5) of the casing 51.

[0037] Discharge pipe 54 is disposed vertically, has its lower end connected to the bottom of cylinder 52, and communicates with compression chamber 65 via discharge valve 67. Discharge pipe 54 has its upper end penetrating the top of casing 51 to extend to the outside, and is supported by the top of casing 51. Discharge pipe 54 has a bent portion 71 that bends horizontally. Bent portion 71 bends toward cylinder 52. Bent portion 71 is a curved portion 72 that bends horizontally. Therefore, bent portion 71 (curved portion 72) of discharge pipe 54 does not come into contact with casing 51, and there is no need to increase the outer diameter of casing 51.

[0038] <Discharge piping details> FIG. 4 is a cross-sectional view showing a main part of the booster pump.

[0039] As shown in FIGS. 2 to 4 , the discharge pipe 54 has a bent portion 71 (hereinafter referred to as a curved portion 72), a lower straight portion 73, and an upper straight portion 74. The lower straight portion 73 is disposed vertically at the lower end of the discharge pipe 54. The upper straight portion 74 is disposed vertically at the upper end of the discharge pipe 54. The curved portion 72 is provided between the lower straight portion 73 and the upper straight portion 74. In this case, the curved portion 72 and the lower straight portion 73 are smoothly connected by a lower curved connecting portion 75, and the curved portion 72 and the upper straight portion 74 are smoothly connected by an upper curved connecting portion 76.

[0040] The curved portion 72 of the discharge pipe 54 is bent toward a position offset in the horizontal direction (radial direction of the cylinder 52) from the center (axis O4) of the cylinder 52. Therefore, the curved portion 72 of the discharge pipe 54 does not come into contact with the cylinder 52, and a sufficient amount of horizontal bending of the curved portion 72 can be ensured. Note that the discharge pipe 54 has the curved portion 72, a lower end straight portion 73, and an upper end straight portion 74, but the lower end straight portion 73 and the upper end straight portion 74 are at the same horizontal position.

[0041] The lower end of the discharge pipe 54 is connected to the cylinder 52 by a cone and thread joint 81. The upper end of the discharge pipe 54 is supported by the intermediate flange portion 51b of the casing 51.

[0042] <Discharge piping connection structure> 5 is a cross-sectional view showing a connection portion between the cylinder and the discharge pipe, FIG. 6 is a cross-sectional view taken along line VI-VI in FIG. 5, and FIG. 7 is a cross-sectional view taken along line VIII-VIII in FIG.

[0043] 3, the cylinder 52 is formed with a mounting surface 52c to which the lower end of the discharge pipe 54 is connected. The mounting surface 52c is a surface along the vertical direction, and a discharge passage 52d communicating with the compression chamber 35 opens into the mounting surface 52c. The lower end of the discharge pipe 54 is connected to the mounting surface 52c of the cylinder 52 using a cone and thread joint 81, and the inside of the discharge pipe 54 communicates with the discharge passage 52d.

[0044] As shown in FIG. 5, the discharge pipe 54 has a first discharge pipe 101 and a second discharge pipe 102. The first discharge pipe 101 is disposed vertically and has a bent portion 71 (see FIG. 4). The second discharge pipe 102 is disposed horizontally. The first discharge pipe 101 has a wedge portion 101a formed at its lower end, and the second discharge pipe 102 has a wedge portion 102a formed at one end and a wedge portion 102b formed at the other end.

[0045] The cone and thread joint 81 includes a first nut 103, a second nut 104, a third nut 105, and an elbow block 106. The elbow block 106 has an L-shaped flow path 106a therein. The lower end of the first discharge pipe 101 is disposed inside the first nut 103. The first nut 103 has threaded portions on the inner and outer circumferential surfaces of its tip. The threaded portion on the inner circumferential surface screws onto the outer circumferential portion of the first discharge pipe 101, and the threaded portion on the outer circumferential surface screws into a threaded hole formed in one end of the elbow block 106, thereby connecting the lower end of the first discharge pipe 101 to one end of the elbow block 106 via the first nut 103.

[0046] One end of the second discharge pipe 102 is disposed inside the second nut 104. The second nut 104 has threaded portions on the inner and outer peripheral surfaces of its tip, and the threaded portion on the inner peripheral surface screws onto the outer peripheral portion of the second discharge pipe 102, while the threaded portion on the outer peripheral surface screws into a threaded hole formed in the other end of the elbow block 106, thereby connecting one end of the second discharge pipe 102 to the other end of the elbow block 106 by the second nut 104.

[0047] The other end of the second discharge pipe 102 is disposed inside the third nut 105. The third nut 105 has threaded portions on the inner and outer circumferential surfaces of its tip, and the threaded portion on the inner circumferential surface screws onto the outer circumferential portion of the second discharge pipe 102, while the threaded portion on the outer circumferential surface screws into a threaded hole formed in the mounting surface 52c of the cylinder 52, thereby connecting the other end of the second discharge pipe 102 to the cylinder 52 by the third nut 105.

[0048] Therefore, the lower end of the first discharge pipe 101 is connected to the flow path 106a of the elbow block 106, the flow path 106a of the elbow block 106 is connected to the second discharge pipe 102, and the second discharge pipe 102 is connected to the compression chamber 35 via the discharge path 52d of the cylinder 52.

[0049] The first nut 103, the second nut 104, and the third nut 105 are provided with anti-rotation jigs 111 and 112, respectively. The first anti-rotation jig 111 prevents the first nut 103 from rotating, and the second anti-rotation jig 112 prevents the second nut 104 and the third nut 105 from rotating.

[0050] 5 and 6, the first anti-rotation jig 111 has a jig body 121, a plurality of (three in this embodiment) locking pieces 122, and a plurality of (four in this embodiment) anti-rotation screws 123. The jig body 121 has a cylindrical shape, and a plurality of locking pieces 122 are connected to the outer periphery in a radial pattern. The jig body 121 has First nut 103 The first anti-rotation jig 111 is arranged to cover the first nut 103 from the outside, and a plurality of anti-rotation screws 123 are threaded into threaded holes in the jig body 121 to lock onto the outer circumferential surface of the first nut 103. The plurality of locking pieces 122 are then bent and wrapped around the elbow block 106. Therefore, the first anti-rotation jig 111 prevents the first nut 103 from loosening.

[0051] 5 and 7, the second anti-rotation jig 112 has a pair of jig bodies 131, a plurality of bolts 132, a plurality of nuts 133, and a plurality of anti-rotation screws 134. The pair of jig bodies 131 have the same shape and have a semi-cylindrical covering portion 131a, a pair of mounting portions 131b provided on the outside of the covering portion 131a, and a semi-circular flange portion 131c provided at one end of the covering portion 131a and the mounting portion 131b. The pair of jig bodies 131 have Each covering part 131a The second nut 104 and Third nut 105 The bolts 132 and nuts 133 are arranged to cover the outer surface of the Mounting portion 131b At this time, Each flange portion 131cis in close contact with the mounting surface 52c of the cylinder 52. The plurality of anti-rotation screws 134 are threaded into the threaded holes of the respective covering portions 131a and are locked onto the outer peripheral surfaces of the second nut 104 and the third nut 105. Therefore, the second anti-rotation jig 112 prevents the second nut 104 and the third nut 105 from loosening.

[0052] 4, the casing 51 has a through-hole that penetrates vertically through the intermediate flange portion 51b, and the upper end of the discharge pipe 54 is attached to the through-hole. Therefore, the upper end of the discharge pipe 54 is supported by the intermediate flange portion 51b of the casing 51.

[0053] <Modification> FIG. 8 is a cross-sectional view of a main part of a booster pump showing a first modified example of the discharge pipe, and FIG. 9 is a cross-sectional view of a main part of a booster pump showing a second modified example of the discharge pipe.

[0054] As shown in FIG. 8, the discharge pipe 54A of the first modified example is a pipe for discharging high-pressure liquid hydrogen compressed in the compression chamber 35 (see FIG. 2) to the outside. The discharge pipe 54A is disposed vertically, and its lower end is connected to the lower part of the cylinder 52 via a cone-and-thread joint 81. The upper end of the discharge pipe 54A passes through the intermediate flange portion 51b of the casing 51 to extend to the outside and is supported by the intermediate flange portion 51b. The discharge pipe 54A has an upper straight portion 141, an upper bent portion (curved portion) 142, a lower bent portion (curved portion) 143, and a lower straight portion 144. The discharge pipe 54A is connected so that the upper straight portion 141, the upper bent portion 142, the lower bent portion 143, and the lower straight portion 144 are smoothly connected.

[0055] The discharge pipe 54A has an upper end bent portion 142 bent (curved) in a direction approaching the cylinder 52, and a lower end bent portion 143 bent (curved) in a direction approaching the casing 51. Therefore, the upper end bent portion 142 of the discharge pipe 54A does not come into contact with the cylinder 52, and the lower end bent portion 143 does not come into contact with the casing 51, and a sufficient amount of bending in the horizontal direction can be ensured at each of the bent portions 142, 143. Note that the discharge pipe 54A has two upper end bent portions 142 and two lower end bent portions 143, but three or more bent portions may be provided.

[0056] As shown in FIG. 9, discharge pipe 54B of the second modified example is a pipe for discharging high-pressure liquid hydrogen compressed in compression chamber 35 (see FIG. 2) to the outside. Discharge pipe 54B is disposed vertically, and its lower end is connected to the lower part of cylinder 52 via cone-and-thread joint 81. Discharge pipe 54B has an upper straight portion 151, an upper horizontal portion 152, an intermediate portion 153, a lower horizontal portion 154, and a lower straight portion 155. Upper straight portion 151, upper horizontal portion 152, intermediate portion 153, lower horizontal portion 154, and lower straight portion 155 of discharge pipe 54B are connected so as to be continuous with each other via cone-and-thread joints 156, 157, 158, and 159.

[0057] Discharge pipe 54A has upper end horizontal section 152, cone and thread joint 157, middle section 153, cone and thread joint 158, and lower end horizontal section 154, which form a bent section that is bent (curved) in a direction approaching cylinder 52. Therefore, discharge pipe 54B does not have to be composed of only straight pipes, and pipe bending processing is not required, thereby reducing processing costs.

[0058] The discharge pipes 54, 54A, and 54B are not limited to the above-described configuration. The discharge pipes may have any bent portions, and the shape, number, and position of the bent portions are not limited to those described above. For example, the bent portions may be spiral-shaped at the bent portions or may be spiral-shaped around the cylinder 52.

[0059] <Compressor operation> As shown in Figure 2, when drive motor 33 is driven, eccentric shaft 41 rotates, causing rotor 42 to oscillate and rotate. This activates link 43, converting the rotational power into linear reciprocating power and transmitting it to boost pump 32 via oscillating shaft 44. When boost pump 32 operates, first, during the suction stroke when piston 53 rises, liquid hydrogen in casing 51 is sucked into compression chamber 65. Next, during the compression stroke when piston 53 descends, the liquid hydrogen in compression chamber 65 is compressed, and high-pressure liquid hydrogen is discharged into discharge pipe 54.

[0060] When the boost pump 32 is operating, the piston 53 moves back and forth inside the cylinder 52, repeatedly sucking in and compressing liquid hydrogen. Therefore, when the piston 53 moves down inside the cylinder 52 and compresses the liquid hydrogen, a downward stress acts on the cylinder 52, causing it to expand. Because the lower end of the discharge pipe 54 is connected to the lower end of the cylinder 52, a similar downward stress acts on the discharge pipe 54, resulting in stress concentration at the connection between the cylinder 52 and the discharge pipe 54.

[0061] However, the discharge pipe 54 of this embodiment is provided with a bent portion 71. Therefore, when downward stress acts on the discharge pipe 54 from the cylinder 52, the bent portion 71 of the discharge pipe 54 returns to a straight shape, thereby absorbing part of the downward stress, and the stress acting on the connection portion between the cylinder 52 and the discharge pipe 54 is reduced.

[0062] [Effects of this embodiment] The boost pump according to the first aspect comprises a casing 51 for storing liquid hydrogen (low-temperature fluid), a cylinder 52 arranged inside the casing 51 and having a compression chamber 65, the cylinder 52 having its vertical upper end supported on the top of the casing 51, a piston 53 supported inside the cylinder 52 so as to be freely movable along the vertical direction and compressing the liquid hydrogen sucked into the compression chamber 65, and discharge pipes 54, 54A, 54B having horizontally bent portions 71, 142, 143 (152, 153, 154), the vertical lower end of which is connected to the compression chamber 65, and the upper end of which is supported on the top of the casing 51.

[0063] In the boost pump according to the first aspect, when the piston 53 reciprocates in the cylinder 52, a downward stress acts on the cylinder 52, causing it to expand, and a similar downward stress acts on the discharge pipe 54. However, because the discharge pipes 54, 54A, 54B are provided with the bent portions 71, 142, 143 (152, 153, 154), the stress acting on the discharge pipes 54, 54A, 54B is absorbed by the bent portions 71, 142, 143 (152, 153, 154) returning to their straight shapes. As a result, the stress acting on the connection portions between the cylinder 52 and the discharge pipes 54, 54A, 54B is reduced, and the stress acting on the discharge pipes 54, 54A, 54B can be reduced.

[0064] The booster pump according to the second aspect is the booster pump according to the first aspect, further comprising: a lower straight portion 73, 144, 155 extending vertically at the lower end of each discharge pipe 54, 54A, 54B; and an upper straight portion 74, 141, 151 extending vertically at the upper end of each discharge pipe 54, 54A, 54B; and a bent portion 71, 142, 143 (152, 153, 154) is provided between the lower straight portion 73, 144, 155 and the upper straight portion 74, 141, 151. This allows the bent portion 71, 142, 143 (152, 153, 154) to be located at a longitudinally intermediate position of each discharge pipe 54, 54A, 54B, facilitating installation of the discharge pipe 54, 54A, 54B.

[0065] The boost pump according to the third aspect is the boost pump according to the second aspect, further comprising: a lower-end straight portion 73, 144, 155 and an upper-end straight portion 74, 141, 151 that are positioned at the same horizontal position. As a result, when tensile stress acts on the discharge pipe 54, 54A, 54B, bending stress does not act on the lower-end straight portion 73, 144, 155 and the upper-end straight portion 74, 141, 151, thereby improving durability.

[0066] The boost pump according to a fourth aspect is the boost pump according to any one of the first to third aspects, and further, the bent portions 71, 142 (152, 153, 154) are bent toward the cylinder 52. This eliminates the need to increase the outer diameter of the casing 51, and prevents the device from becoming too large.

[0067] The boost pump according to the fifth aspect is the boost pump according to the fourth aspect, further including a bent portion 71, 142 (152, 153, 154) that is bent toward a position horizontally shifted from the center (axis O4) of the cylinder 52. This prevents the bent portion 71, 142 (152, 153, 154) of the discharge pipe 54, 54A, 54B from contacting the cylinder 52, and ensures a sufficient amount of horizontal bending at the bent portion 71, 142 (152, 153, 154).

[0068] A booster pump according to a sixth aspect is the booster pump according to any one of the first to fifth aspects, further including a curved portion 72 that is curved horizontally in the bent portion 71, 142, 143. This allows the discharge pipes 54, 54A to have a smooth shape, thereby reducing bending stress acting on the curved portion 72.

[0069] The boost pump according to a seventh aspect is the boost pump according to any one of the first to sixth aspects, and further includes: the cylinder 52 disposed at a position radially offset from the center (axis O4) of the casing 51; and the discharge pipes 54, 54A, 54B disposed at positions radially offset from the center of the casing 51. This ensures sufficient space within the casing 51 for arranging the discharge pipes 54, 54A, 54B.

[0070] The boost pump according to an eighth aspect is the boost pump according to any one of the first to seventh aspects, and further includes discharge pipes 54, 54A, 54B, each having a lower end connected to cylinder 52 by a cone-and-thread joint 81. This allows the discharge pipes 54, 54A, 54B to be easily removed from cylinder 52 during maintenance of boost pump 32, improving maintainability.

[0071] A booster pump according to a ninth aspect is the booster pump according to any one of the first to eighth aspects, further comprising: discharge pipe 54 having first discharge pipe 101 and second discharge pipe 102; first discharge pipe 101 having bent portion 71 and a lower end connected to one end of elbow block 106 by first nut 103; and second discharge pipe 102 having one end connected to the other end of elbow block 106 by second nut 104 and the other end connected to cylinder 52 by third nut 105. This allows the connection between cylinder 52 and discharge pipe 54 to be easily disassembled, improving maintainability.

[0072] The boost pump according to a tenth aspect is the boost pump according to the ninth aspect, further comprising anti-rotation jigs 111, 112 provided on the first nut 103, the second nut 104, and the third nut 105, respectively. As a result, the anti-rotation jigs 111, 112 can improve the reliability of the connection between the cylinder 52 and the discharge pipe 54.

[0073] A hydrogen supply system (low-temperature fluid supply system) according to an eleventh aspect includes a compressor 21 having a boost pump 32 according to any one of the first to sixth aspects and compressing liquid hydrogen (low-temperature fluid), an evaporator 22 that vaporizes the liquid hydrogen compressed by the compressor 21, and a dispenser 23 that supplies hydrogen gas vaporized by the evaporator 22. This reduces the stress acting on discharge pipes 54, 54A, 54B by the boost pump 32, thereby improving the durability of the compressor 21. [Explanation of symbols]

[0074] 10 Hydrogen supply system (low temperature fluid supply system) 11 Container 12 vehicles 21 Compression device 22 Evaporator 23 Dispenser 31 Drive unit 32 Booster pump 33 Drive motor 34 Drive mechanism 41 Eccentric shaft part 42 Rotating body 43 Link section 44 Swing shaft 45 Crosshead 46 Housing 51 Casing 52 cylinders 53 Piston 54, 54A, 54B Discharge piping 61 Support plate 62 Liquid storage chamber 63 Supply pipe 64 Gas exhaust pipe 65 Compression Chamber 66 Intake valve 67 Discharge valve 71 Bend 72 Curved section 73 Lower end straight section 74 Upper straight part 75 Lower curved connection part 76 Upper curved connection part 81 Cone and thread fitting 101 1st discharge piping 102 2nd discharge pipe 103 First Nut 104 Second Nut 105 Third Nut 106 Elbow Block 111 First anti-rotation jig 112 Second anti-rotation jig

Claims

1. a casing for storing a cryogenic fluid; a cylinder disposed inside the casing, having a compression chamber, and having a vertical upper end portion suspended and supported by an upper portion of the casing; a piston supported within the cylinder so as to be movable vertically and compressing the cryogenic fluid drawn into the compression chamber; a discharge pipe having a bent portion bent in the horizontal direction, a lower end portion in the vertical direction communicated with the compression chamber, and an upper end portion supported on an upper portion of the casing; A booster pump comprising:

2. The discharge pipe has a lower end straight portion along the vertical direction on the lower end side and an upper end straight portion along the vertical direction on the upper end side, and the bent portion is provided between the lower end straight portion and the upper end straight portion. The boost pump of claim 1 .

3. The lower end straight portion and the upper end straight portion are positioned at the same horizontal position.

3. The booster pump according to claim 2.

4. The bent portion is bent toward the cylinder side. The booster pump according to any one of claims 1 to 3.

5. The bending portion bends toward a position horizontally offset from the center of the cylinder.

5. The booster pump according to claim 4.

6. The bending portion has a curved portion that curves in a horizontal direction. The boost pump of claim 1 .

7. The cylinder is disposed at a position shifted to one side in the radial direction from the center of the casing, and the discharge pipe is disposed at a position shifted to the other side in the radial direction from the center of the casing. The boost pump of claim 1 .

8. The lower end of the discharge pipe is connected to the cylinder by a cone and thread joint. The boost pump of claim 1 .

9. The discharge pipe includes a first discharge pipe and a second discharge pipe, the first discharge pipe has the bent portion, and a lower end portion thereof is connected to one end of an elbow block by a first nut, and the second discharge pipe has one end thereof connected to the other end of the elbow block by a second nut and the other end thereof connected to the cylinder by a third nut.

9. The boost pump of claim 8.

10. The first nut, the second nut, and the third nut are each provided with an anti-rotation jig.

10. The boost pump of claim 9.

11. a compression device having the boost pump according to claim 1 for compressing a cryogenic fluid; an evaporator that vaporizes the liquid hydrogen compressed by the compressor; a dispenser for supplying the gas vaporized by the vaporizer; A cryogenic fluid supply system comprising:

Citation Information

Patent Citations

  • Low-pressure and low-temperature pump assembly

    CN104279135A

  • Reciprocating submerged liquid hydrogen pump capable of effectively reducing heat transfer loss

    CN111997861A

  • Needle valve for high pressure, and hydrogen station employing the same

    JP2016156442A

  • Monitoring device of booster pump

    JP2022035456A

  • Reciprocating pump and wear detection method for reciprocating pump

    JP2022190932A