Flow Control Valve
The flow control valve achieves precise control over hydrogen flow rates by using a shaft with a small-diameter tip and conversion mechanism, addressing the challenge of controlling flow rates in hydrogen filling and preventing equipment damage.
Patent Information
- Application Number
- JP2023061124
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-04-05
- Publication Date
- 2025-09-11
- Estimated Expiration
- 2043-04-05
AI Technical Summary
Existing flow control valves struggle with high-precision control at low flow rates and fail to meet the demand for high flow rates required in hydrogen filling, leading to difficulties in controlling the flow rate and potential equipment damage during hydrogen filling.
A flow control valve design featuring a shaft with a small-diameter tip and a conversion mechanism that adjusts the shaft's axial movement through rotation, utilizing a threaded portion and co-rotation prevention mechanism to fine-tune flow resistance by varying the length of the shaft inserted into a small-diameter flow passage, allowing precise control over flow rates.
Enables high-precision control at low flow rates and rapid transition to high flow rates, minimizing equipment damage and ensuring safe, efficient hydrogen filling by adjusting flow resistance through axial movement of the shaft tip.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a filling device (e.g., a hydrogen filling device) for filling gaseous fuel such as hydrogen into equipment to be filled with gaseous fuel, such as a hydrogen tank of a fuel cell vehicle (FCV), and in particular to a flow control valve that is suitably used in the filling device. [Background technology]
[0002] As one of the countermeasures to recent environmental problems, active development has been made of fuel cell vehicles (FCVs) that use hydrogen gas as fuel and related equipment. To promote the widespread use of vehicles that use hydrogen gas as fuel, a hydrogen filling device that can stably fill FCVs with hydrogen gas is needed. The applicant has already proposed such a hydrogen filling device (for example, Patent Document 1), which discloses a flow control valve that is installed in the hydrogen supply pipe and controls the flow rate of hydrogen being filled based on a signal from a control device. Another proposed flow control valve includes, for example, a flow path connecting an inlet and an outlet formed inside a body, a valve seat formed in the flow path, a valve element that contacts or separates from the valve seat to connect or block the flow path, and an actuator that moves the valve element (see Patent Document 2). In this flow control valve (the flow control valve of Patent Document 2), the rotating shaft of the stepping motor of the actuator is connected to a ball screw, and the ball screw is disposed on a slider that is provided in a cylindrical upper cover so as to be movable up and down, and the ball screw converts the rotational motion of the stepping motor into linear motion of the slider. With this configuration, for example, the flow control valve of Patent Document 2 can reliably perform opening and closing control even when the working fluid is under high pressure.
[0003] However, with the above-mentioned flow control valve, the cross-sectional area of the flow path increases suddenly and the flow rate increases the moment the valve body separates from the valve seat, which poses the problem that it is difficult to control the valve opening or flow rate, especially when a small flow rate of hydrogen is required. Here, by throttling the flow rate, it is possible to control the flow rate with high precision, but when filling gaseous fuels such as hydrogen, there is a demand to complete the filling as quickly as possible, and therefore it is necessary to fill at a large flow rate. A flow rate adjusting valve that is capable of high-precision control even at low flow rates and that can also meet the demand for gaseous fuel supply at high flow rates has not yet been proposed. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent Publication No. 2021-139390 [Patent Document 2] Patent Publication No. 2021-196001 Summary of the Invention [Problem to be solved by the invention]
[0005] The present invention has been proposed in consideration of the problems of the prior art described above, and aims to provide a flow control valve that is capable of high-precision control even at low flow rates, and is also capable of supplying gaseous fuel at high flow rates. [Means for solving the problem]
[0006] The flow control valve (30) of the present invention comprises a shaft (1) having a small-diameter tip (1A: shaft tip), a main body (2) in which a flow path (3: including a small-diameter flow path portion 3A) is formed, an opening-adjusting rotary member (4: opening-adjusting dial), and a conversion mechanism (5) that converts the rotation of the opening-adjusting rotary member (4) into axial movement of the shaft (1), The shaft tip (1A) is arranged so that it can be inserted into the small diameter flow passage portion (3A) of the flow passage (3) formed in the main body portion (2), and a (tiny) gap (δ) is set to exist between the outer periphery of the shaft tip (1A) and the inner periphery of the small diameter flow passage portion (3A).
[0007] In the present invention, the mechanism (5) that converts the rotation of the opening-adjusting rotating member (4) into axial movement of the shaft (1) preferably has a threaded portion (5A) between an internal thread (4C) formed on the opening-adjusting rotating member (4) and a thread (1C) on the opening-adjusting rotating member side of the shaft (1) (shaft base portion 1B).
[0008] It is also preferable to provide a co-rotation prevention mechanism (6: co-rotation prevention member 6A and co-rotation prevention bolt 6B) that prevents the shaft (1) from rotating together with the opening-adjusting rotating member (4) when the opening-adjusting rotating member (4) is rotated.
[0009] Furthermore, in the present invention, it is preferable to provide a rapid opening adjustment member (7: rapid opening adjustment button) that has the function of moving the shaft (1) toward the shaft tip (1A) side (the flow path adjustment part 10 side in the shaft axial direction). [Effects of the Invention]
[0010] According to the flow control valve (30) of the present invention having the above-mentioned configuration, the shaft tip tapered portion (1AT) adjacent to the small diameter shaft tip (1A) forms the valve body, and the flow path tapered portion (3AT) adjacent to the flow path small diameter portion (3A) formed in the main body portion (2) forms the valve seat, and the valve is closed when the shaft tip tapered portion (1AT) engages with the flow path tapered portion (3AT), and is opened when the shaft tip tapered portion (1AT) moves away from the flow path tapered portion (3AT). Here, a gap (δ) exists between the outer periphery of the shaft tip (1A) and the inner circumferential surface of the small-diameter flow passage portion (3A). When the flow control valve (30) is open and the shaft tip (1A) is inserted into the small-diameter flow passage portion (3A) (small flow rate region), gaseous fuel (e.g., hydrogen) flows through the gap (δ). The gap (δ) is minute, and if the distance over which the gaseous fuel flows through the gap (δ) (axial length Lt of the shaft) is long, the flow resistance increases and the flow rate of the gaseous fuel decreases, but if the distance is short, the flow resistance decreases and the flow rate of the gaseous fuel increases. According to the present invention, by adjusting the length of the gaseous fuel flowing through the gap (δ), i.e., the length of the shaft tip (1A) inserted into the small diameter flow path portion (3A), the flow rate (relatively small flow rate) of the gaseous fuel flowing through the gap (δ) can be accurately fine-tuned.
[0011] According to the present invention, a conversion mechanism (5) is provided that converts the rotation of the opening-adjusting rotating member (4) into axial movement of the shaft (1), so that by rotating the opening-adjusting rotating member (4) and moving the shaft (1) in the axial direction, the shaft axial length (Lt) within the small-diameter flow passage portion (3A) and the flow passage resistance can be varied, and the length (Lt) of the shaft tip (1A) inserted into the small-diameter flow passage portion (3A), i.e., the distance the gaseous fuel flows through the gap (δ), can be adjusted. Since this mechanism constitutes a mechanism that converts the rotation of the screw into axial movement of the screw, even if the amount of rotation of the opening-adjusting rotating member (4) is large, the amount of movement in the axial direction of the shaft does not become large, and fine adjustment of the amount of movement in the axial direction of the shaft is possible. Here, when the gaseous fuel flows through the gap (δ), the flow resistance of the gap (δ) is large, so the gaseous fuel flows at a small flow rate, and the small flow rate region can be finely adjusted easily and reliably. Furthermore, even if the shaft tip tapered portion (1AT) is separated from the flow path tapered portion (3AT), the gaseous fuel flows through the gap (δ) where the flow path resistance is large. Therefore, the flow control valve (30) of the present invention prevents a large amount of gaseous fuel from flowing out at the moment of opening.
[0012] Here, from a state in which the flow control valve (30) of the present invention is closed, through a state in which hydrogen flows at a small flow rate through the gap (δ), to a state in which the hydrogen flow rate increases rapidly (a state of a large flow rate), flow rate control is performed by moving the shaft tip (1A) in a direction away from the small diameter flow path portion (3A). Closed state → Low flow state → High flow state The transition is continuously performed by moving the shaft tip (1A) in a direction away from the small diameter flow passage portion (3A). Therefore, with the flow control valve (30) of the present invention, hydrogen flows at a small flow rate immediately after closing, i.e., when the valve is open, and the small flow rate gradually increases (small flow rate region). After a certain state (the state shown in FIG. 9 ), the flow rate increases rapidly (large flow rate region).
[0013] When filling the gaseous fuel, if the differential pressure between the container (25, e.g., a hydrogen tank of an FCV) to be filled with the gaseous fuel and the gaseous fuel supply tank (21) decreases, it is necessary to switch the gaseous fuel supply tank to the ultra-high pressure tank (22). When switching to the ultra-high pressure tank (22), it is necessary to reduce the opening of the flow rate control valve (30) to reduce the flow rate of the gaseous fuel. In the present invention, if the rapid opening adjustment member (7: rapid opening adjustment button) is provided, by pressing the rapid opening adjustment member (7) toward the flow path adjustment unit (10) in the shaft axial direction (region LC in FIG. 4), the entire shaft (1) can be moved toward the flow path adjustment unit (10) in the shaft axial direction together with the opening adjustment dial (4) screwed to the shaft base (1B). As a result, the length by which the shaft tip (1A) is inserted into the small diameter flow path portion (3A) (the distance through which the gaseous fuel flows through the gap δ: shaft axial length Lt) becomes longer, and the flow path resistance increases, so the flow rate from the flow control valve (30) becomes smaller (region LD in FIG. 4). That is, according to the present invention, by pressing the rapid opening adjustment member (7) toward the flow path adjustment portion (10) in the shaft axial direction, the flow rate from the flow control valve (30) can be suddenly reduced, thereby enabling safe and smooth replacement of the gas fuel supply tank. [Brief explanation of the drawings]
[0014] [Figure 1] FIG. 1 is an explanatory diagram showing an outline of hydrogen filling. [Figure 2] FIG. 4 is a characteristic diagram showing the characteristics of FCV tank pressure over time. [Figure 3] FIG. 1 is a characteristic diagram showing the flow control valve opening-hydrogen flow rate characteristics desirable for hydrogen filling into an FCV. [Figure 4] FIG. 3 is a characteristic diagram showing an example of time-flow rate control valve opening characteristics when hydrogen is being filled into an FCV. [Figure 5] 1 is a cross-sectional view showing a flow rate adjustment valve according to a first embodiment of the present invention when closed. [Figure 6] 4 is an enlarged explanatory cross-sectional view showing the relative positions of the shaft tip and the small diameter flow path portion when the flow rate adjustment valve according to the first embodiment is closed. FIG. [Figure 7] FIG. 4 is a cross-sectional view showing the state of the flow rate adjustment valve in a small flow rate region. [Figure 8] 8 is an enlarged explanatory cross-sectional view showing the relative positions of the shaft tip and the small diameter flow path portion in the state of the small flow rate region in FIG. 7. [Figure 9] 10 is an enlarged explanatory cross-sectional view showing the relative positions of the shaft tip and the small diameter flow passage portion at the boundary between the small flow rate region and the large flow rate region of the flow control valve. FIG. [Figure 10] FIG. 4 is a cross-sectional view showing the state of the large flow rate region of the flow rate adjustment valve. [Figure 11] 11 is an enlarged explanatory cross-sectional view showing the relative positions of the shaft tip and the small diameter flow passage portion in the state of the large flow rate region of FIG. 10. FIG. [Figure 12] 11 is a cross-sectional view showing a state in which the rapid opening adjustment button is pressed to move the entire shaft toward the flow path adjustment unit from the state of the large flow rate region in FIG. 10. FIG. [Figure 13] FIG. 6 is a cross-sectional view showing a flow rate adjustment valve according to a second embodiment of the present invention when closed. DETAILED DESCRIPTION OF THE INVENTION
[0015] Hereinafter, an embodiment of the present invention will be described with reference to the accompanying drawings. In the illustrated embodiment, an example will be described in which hydrogen as a gaseous fuel is filled into an FCV (fuel cell vehicle: equipment that is filled with fuel) by a hydrogen filling device that is a filling device. First, the operation of the flow rate adjusting valve 30 during hydrogen filling will be described with reference to FIGS. 1, the hydrogen gas supply tank 20 is made up of a high-pressure tank 21 and an ultra-high-pressure tank 22. The hydrogen gas supply tank 20 is connected to a fuel tank 25 of a fuel cell vehicle FCV via a hydrogen pipe 26, and a flow rate adjustment valve 30 is installed in the hydrogen pipe 26. In the hydrogen pipe 26, at a junction 27, a hydrogen pipe 26A connected to the high-pressure tank 21 and a hydrogen pipe 26B connected to the ultra-high-pressure tank 22 join together. Switching on-off valves 23A and 23B are installed in the hydrogen pipes 26A and 26B, respectively. When filling with hydrogen gas, the fuel tank 25 to be filled with hydrogen gas is initially connected to the high-pressure tank 21 on the hydrogen gas supply side, and when the differential pressure between the fuel tank 25 and the high-pressure tank 21 decreases, the high-pressure tank 21 is switched to the ultra-high-pressure tank 22. When switching from the high-pressure tank 21 to the ultra-high-pressure tank 22, the switching on-off valves 23A and 23B are operated, and the opening of the flow rate adjustment valve 30 is reduced at the beginning of the switch, thereby reducing the flow rate of hydrogen gas at the flow rate adjustment valve 30. In FIG. 1, the hydrogen filling device is not shown.
[0016] In the hydrogen filling described with reference to FIG. 1, the characteristics of the FCV side tank pressure versus time are shown as characteristic line L2 in FIG. Here, if the slope θ of the characteristic line L2 is large, a sudden change (increase) in pressure occurs, which increases the filling speed, but increases the possibility of damage or breakage to the fuel tank 25 (Figure 1) or the hydrogen piping 26 (Figure 1). On the other hand, when filling hydrogen, there is a demand for high-speed hydrogen filling in order to complete filling as quickly as possible, as long as the related equipment allows in terms of pressure resistance, durability, etc. To meet such demands, the hydrogen flow rate (for example, mass flow rate) needs to be controlled with high precision, and a flow rate adjustment valve 30 (FIG. 1) is provided to perform such control. Here, the region LA on the characteristic line L2 shown in FIG. 2 indicates the region where the hydrogen gas supply side is switched from the high-pressure tank 21 to the ultra-high-pressure tank 22.
[0017] In Figure 3, the characteristic line L3 shows the relationship between the opening of the flow control valve and the hydrogen flow rate. After the opening of the flow control valve is opened from a closed state (the origin of Figure 3), the opening gradually increases (to the region near the origin of Figure 3). Then, the flow rate transitions from a small flow rate region R1 where the opening is small to a large flow rate region R2 where the opening has increased. In Figure 3, the slope θ2 of the characteristic line L32 in the large flow rate region R2 is larger than the slope θ1 of the characteristic line L31 in the small flow rate region R1. By reducing the slope θ1 of the characteristic line L31, the pressure increase in the small flow rate region R1 can be reduced, thereby minimizing damage to the fuel tank and various piping of the FCV. Furthermore, if the slope θ2 of the characteristic line L32 is large, the hydrogen flow rate increases, making it possible to meet the demand for high-speed hydrogen filling. Here, the hydrogen supply system (including related equipment such as the fuel tank of the FCV) is susceptible to damage in the small flow rate region R1, particularly immediately after the flow rate adjustment valve opens. Regarding the flow control valve 30 according to the illustrated embodiment (see Figures 5 to 13), the operation of the flow control valve in the small flow region R1 will be explained with reference to Figures 5 to 9, and the operation of the flow control valve in the large flow region R2 will be explained with reference to Figures 10 to 11. In FIG. 3, reference symbol L33 denotes the boundary between the small flow rate region R1 and the second flow rate region R2, and in the illustrated embodiment, the state indicated by reference symbol 33 in FIG. 3 will be described later with reference to FIG.
[0018] 4, characteristic line L4 illustrates the time characteristic of the flow control valve opening during hydrogen filling, and the opening of the control valve increases linearly with a slope of θ1 from immediately after filling starts until time LB. As described above, hydrogen is supplied at a small flow rate immediately after filling starts (small flow rate region R1), and then hydrogen is supplied at a large flow rate thereafter (large flow rate region R2). Here, the slope in the large flow rate region R2 may change from the slope θ1 in the small flow rate region R1 and become larger, but for the sake of simplicity, the small flow rate region R1 and the large flow rate region R2 are represented by straight lines with the same slope θ1 in the characteristic line L4 in Figure 4. In Figure 4, the regions indicated by symbols LC and LD indicate the timing for switching from the high-pressure tank to the ultra-high-pressure tank. In the region indicated by symbol LC, the valve opening is suddenly reduced to switch the tank. Then, after passing through region LD for the tank switch, hydrogen is filled from the ultra-high-pressure tank into the FCV tank, and the control valve opening increases linearly according to characteristic line L41. The characteristics shown in FIGS. 3 and 4 are realized by the flow rate adjustment valve 30 according to the illustrated embodiment.
[0019] A first embodiment of the present invention will be described with reference to FIGS. In Figure 5, the flow control valve of the first embodiment is indicated as a whole by the symbol 30, and the flow control valve 30 comprises a shaft 1 with a small diameter tip 1A, a main body 2 in which a small diameter flow path portion 3A is formed, an opening adjustment rotating member 4 (opening adjustment dial), and a conversion mechanism 5 that converts the rotation of the opening adjustment rotating member 4 into axial movement of the shaft 1. The shaft 1 has a shaft tip 1A located in the flow path adjustment section 10 (the area shown by the dotted line in Figure 5) on the tip side (upper side in Figure 5), and a shaft base 1B located near the other end (lower end in Figure 5) of the shaft tip 1A, and is movable in the axial direction (up and down direction in Figure 5) within the space formed in the main body section 2. A flow path forming portion, which constitutes part of the main body portion 2 and is a region where a flow path 3A into which the shaft tip end 1A is inserted is formed, is indicated by the reference symbol 2C in FIG.
[0020] The opening adjustment dial 4 is a hollow member that is configured by connecting a shaft fitting portion 4A and a dial operation portion 4B, which are cylindrical members with different diameters, in the direction of the shaft center axis. The opening adjustment dial 4 is located at the end of the flow rate adjustment valve 30 on the opposite side to the flow path adjustment portion 10 (lower in FIG. 5). An internal thread 4C is formed on the inner peripheral surface of the shaft fitting portion 4A of the aperture adjustment dial 4, and is threadedly engaged with the shaft thread 1C formed on the shaft base portion 1B to form a threaded portion 5A. The threaded portion 5A forms a conversion mechanism 5 that converts the rotation of the aperture adjustment dial 4 into axial movement of the shaft 1. In other words, the conversion mechanism 5 is a mechanism that has the function of converting rotational motion (rotation of the screw) into linear motion (axial movement of the screw), and in the illustrated embodiment is formed by a screw mechanism. The dial operation portion 4B of the opening adjustment dial 4 is disposed so as to protrude from the main body portion 2 (downward in FIG. 5). When the dial operation part 4B of the opening adjustment dial 4 is rotated, the rotation of the dial operation part 4B is converted into a movement that moves the shaft 1 in the shaft axial direction (up and down in FIG. 5) at the screw-engagement part 5A. As a result, the shaft 1 moves up and down. To allow the opening adjustment dial 4 to rotate smoothly, the lower end (in FIG. 5) of the shaft fitting portion 4A of the opening adjustment dial 4 is supported by a thrust bearing 8 inside the main body 2 of the flow rate adjustment valve 30. Therefore, the opening adjustment dial 4 can rotate smoothly even when pressed in the axial direction of the shaft. The opening adjustment dial 4 is operated manually, but it can also be rotated by means of a motor or the like.
[0021] Hydrogen gas supplied from a high-pressure tank 21 (or an ultra-high-pressure tank 22: see Figure 1) flows into the main body 2 from a hydrogen inlet 2A (arrow A1), passes through the flow path adjustment unit 10, and flows out from an outlet 2B (arrow A2). The hydrogen gas is then filled into the FCV's on-board tank 25 (Figure 1) via a filling nozzle (not shown) of the hydrogen filling device. In the flow path adjustment unit 10, the valve opening of the flow rate adjustment valve 30 (or the hydrogen gas flow rate) is fine-tuned from the start of hydrogen gas filling depending on the axial position of the shaft 1 (small-diameter tip 1A), and the pressure and flow rate are adjusted (controlled). In the flow path adjustment section 10, when the shaft 1 moves upward (in Figure 5), the shaft tip 1A is inserted into the flow path small diameter section 3A (see Figure 6) formed in the main body section 2, and the axial length of the shaft tip 1A inserted into the flow path small diameter section 3A becomes longer. On the other hand, in the flow path adjustment section 10, when the shaft 1 moves downward (in Figure 5), the axial length by which the shaft tip 1A is inserted into the flow path small diameter section 3A (see Figure 6) becomes smaller, and furthermore, the shaft tip 1A comes out of the flow path small diameter section 3A. As will be described later with reference to Figure 6, if the axial length of the shaft tip 1A inserted into the small diameter flow passage portion 3A is large, the flow resistance in the small diameter flow passage portion 3A increases, and the flow rate of hydrogen gas flowing through the small diameter flow passage portion 3A decreases. On the other hand, if the axial length of the shaft tip 1A inserted into the small diameter flow passage portion 3A is small, the flow resistance in the small diameter flow passage portion 3A decreases, and the flow rate of hydrogen gas flowing through the small diameter flow passage portion 3A increases. The flow rate adjustment control of hydrogen gas by the flow passage adjustment unit 10 will be described in detail with reference to Figure 6.
[0022] In Figure 5, if the shaft 1 rotates together with the opening adjustment dial 4 when the opening adjustment dial 4 is rotated, the shaft 1 will not move in the axial direction (the up and down direction in Figure 5). To prevent the shaft 1 from rotating together with the opening adjustment dial 4 when the opening adjustment dial 4 is rotated, the flow rate adjustment valve 30 is provided with a co-rotation prevention mechanism 6. The co-rotation prevention mechanism 6 has a co-rotation prevention member 6A and a co-rotation prevention bolt 6B. Here, a pin can be used instead of the co-rotation prevention bolt 6B. The anti-rotation member 6A has a rotating body shape that combines a hollow cylindrical upper member 6A1 and a lower member 6A2. A flange 6A3 that extends radially outward is formed at the upper end of the upper member 6A1, and a groove 6A4 (groove of the anti-rotation member) that extends in the axial direction of the shaft is formed in the lower member 6A2. The anti-rotation member 6A is attached to the main body 2 by means not shown, so it does not rotate circumferentially around the shaft.
[0023] The anti-rotation bolt 6B is threaded onto the large diameter portion 1D of the shaft 1 through a groove 6A4 in the lower member 6A2, and a nut 6D is fitted to the other end. Because the groove 6A4 extends in the axial direction of the shaft, the anti-rotation bolt 6B and the shaft 1 can move in the axial direction of the shaft (up and down in FIG. 5). Inside the main body 2, a plurality of (for example, four) biasing springs 6C are provided radially outward of the anti-rotation member 6A at equal intervals in the circumferential direction of the shaft. The upper end of the biasing spring 6C (in FIG. 5) abuts against the flange 6A3 fixed in the axial direction of the shaft, and the lower end of the biasing spring 6C abuts against the anti-rotation bolt 6B. The elastic repulsive force of the biasing spring 6C that tries to stretch in the axial direction of the shaft acts to constantly press the anti-rotation bolt 6B downward in the axial direction of the shaft (in FIG. 5).
[0024] A shaft rotation prevention bearing 6E is provided on the anti-rotation bolt 6B so as to abut against the groove 6A4 of the lower member 6A2. The shaft rotation prevention bearing 6E rotates smoothly around the circumference of the anti-rotation bolt 6B, helping the anti-rotation bolt 6B to move smoothly in the axial direction of the shaft (up and down in FIG. 5) within the groove 6A4 of the anti-rotation member 6A. Therefore, the rotation of the opening adjustment dial 4 is converted into the axial movement of the shaft 1 at the screw engagement portion 5A (conversion mechanism 5), and the shaft 1 moves smoothly in the axial direction of the shaft (up and down in FIG. 5).
[0025] In FIG. 5, a movable seal 9 is disposed in the axial direction of the shaft 1 at an intermediate position between the shaft tip 1A and the position where the anti-rotation member 6A is disposed. The movable seal 9 has the function of preventing hydrogen gas (arrow A1) that has flowed into the main body 2 from the inlet 2A from leaking in the opposite direction to the outlet 2B (downward in FIG. 5) along the boundary between the shaft 1 and the main body 2. In addition to this leakage prevention function, the movable seal 9 also has the function of supporting smooth relative movement between the shaft 1 and the main body 2 in the shaft axial direction. However, the movable seal 9 does prevent movement of the shaft 1 in the radial direction. Additionally, an axial bearing 11 is disposed on the inner peripheral surface of the anti-co-rotation member 6A on the shaft 1. Providing the axial bearing 11 promotes smooth axial movement of the shaft 1 (vertical direction in FIG. 5: vertical movement relative to the main body 2).
[0026] 5, a rapid opening adjustment member 7 (rapid opening adjustment button) that has the function of quickly moving the shaft 1 toward the shaft tip 1A side (toward the flow path adjustment unit 10, upward in FIG. 5) is disposed at the end of the flow rate adjustment valve 30 opposite the shaft tip 1A (opposite the flow path adjustment unit 10: downward in FIG. 5). The rapid opening adjustment button 7 includes a button operation unit 7A and a shaft 7B, and is fastened to an internal thread (female thread) formed in the shaft base 1B at a shaft screw engagement portion 7C near the tip of the shaft 7B, thereby fixing the shaft 7B to the shaft base 1B. By pressing the rapid opening adjustment button 7 toward the shaft tip 1A (upward in FIG. 5), the entire shaft 1 can be moved toward the small diameter flow passage portion 3A (upward in FIG. 5).
[0027] 6 in addition to Fig. 5, the control of the regulating valve opening or hydrogen gas flow rate in the flow path adjusting unit 10 of the flow rate regulating valve 30 will be described. In the state shown in Fig. 5 and Fig. 6, the flow rate regulating valve 30 is closed. In Figure 6, which shows details of the flow path adjustment section 10, a flow path 3 (hydrogen gas flow path) is formed in the flow path forming section 2C, which forms the area into which the shaft tip 1A is inserted, and the flow path forming section 2C forms part of the main body section 2. The flow path 3 is formed by a small diameter flow path portion 3A communicating with the outlet 2B, a large diameter flow path portion 3B communicating with the inlet 2A, and a tapered flow path portion 3AT connecting them. A shaft tip tapered portion 1AT is formed on the inlet 2A side of the shaft tip 1A (lower side in Figures 5 and 6), and the inlet 2A side of the shaft tip tapered portion 1AT is continuous with the shaft 1 (shaft main body). In the state shown in Figure 6, the shaft tip 1A is inserted into the small-diameter flow path portion 3A, and the shaft tip tapered portion 1AT is engaged with (seated on) the flow path tapered portion 3AT. Here, the shaft tip tapered portion 1AT forms the valve body, and the flow path tapered portion 3AT forms the valve seat. In the state shown in Figure 6, the flow rate adjustment valve 30 is closed, and hydrogen gas cannot pass through. Here, in order for the shaft tip tapered portion 1AT constituting the valve body to move from a disengaged state to an engaged state (seated state) with the flow path tapered portion 3AT, the shaft tip tapered portion 1AT moves upward (towards the outlet 2B) in Figures 5 and 6.
[0028] In Figure 6, an annular gap δ with a minute radial dimension exists between the outer periphery of the shaft tip 1A and the inner circumferential surface of the small diameter flow path portion 3A. The radial dimension of this gap δ is extremely small, for example, less than 3% of the diameter of the shaft tip 1A. When the shaft tip tapered portion 1AT and the flow path tapered portion 3AT that form the valve body are spaced apart, hydrogen flows through the annular gap δ at a small flow rate, as will be described later in Figure 8. Furthermore, the length Lt of the shaft in the axial direction, at which the shaft tip 1A is inserted into the small diameter flow passage portion 3A, is the distance (length in the axial direction of the shaft) that hydrogen gas flows through the annular gap δ.
[0029] Figures 7 and 8 show the state when the opening adjustment dial 4 is rotated to move the shaft 1 (shaft tip 1A) (downward in Figure 5) from the closed state of the flow control valve 30 shown in Figures 5 and 6. In Fig. 7, the position of the threaded portion 5A where the thread 1C on the outer periphery of the shaft base portion 1B and the internal thread 4C of the shaft fitting portion 4A of the aperture adjustment dial 4 are threaded together is closer to the shaft tip 1A (upper side in Figs. 5 and 7) compared to Fig. 5. Since the position of the aperture adjustment dial 4 in the direction of the shaft central axis (up-and-down direction position in Figs. 5 and 7) is fixed, if the position of the threaded portion 5A is closer to the shaft tip 1A as shown in Fig. 7, the shaft 1 (shaft tip 1A) will be positioned lower relative to the main body portion 2 compared to Fig. 5. 8, which shows the flow path adjusting section 10 in FIG. 7 in detail, the shaft 1 (shaft tip 1A) is lowered, so that the shaft tip tapered section 1AT is separated from the flow path tapered section 3AT, and the flow rate adjusting valve 30 opens. Here, the axial length Lt of the shaft by which the shaft tip 1A is inserted into the flow path small diameter section 3A is shorter than that in FIG.
[0030] In the state shown in Fig. 8, hydrogen gas flows through the annular gap δ. The radial dimension of the gap δ is minute, and in the state shown in Fig. 8, the axial length Lt of the shaft inserted into the small diameter flow path portion 3A is long, so the flow path resistance in the annular gap δ is large. Therefore, the flow rate of hydrogen gas flowing through the gap δ is small. Here, when the shaft 1 (shaft tip 1A) is lowered further than in Figure 8 and the axial length Lt of the shaft inserted into the small diameter flow path portion 3A becomes shorter (not shown), the flow path resistance in the gap δ becomes smaller and the hydrogen gas flow rate increases. In the illustrated first embodiment, the flow rate of hydrogen gas flowing through the annular gap δ can be finely adjusted by rotating the opening adjustment dial 4 to change the axial length Lt of the shaft and thereby change the flow path resistance.
[0031] 7 and 8, when the opening adjustment dial 4 is rotated to move the shaft 1 (shaft tip 1A) further toward the rapid opening adjustment button 7 (when the shaft 1 is further lowered in FIGS. 7 and 8), the end face 1AB of the shaft tip 1A is positioned so as to align with the boundary 3C between the small diameter flow path section 3A and the tapered flow path section 3AT, as shown in FIG. 9. In other words, the axial length Lt of the shaft (FIG. 8) becomes zero. The state shown in FIG. 9 is the boundary state between the small flow rate region and the large flow rate region of the flow rate adjustment valve 30 according to the first embodiment shown in the figure. That is, the small flow rate region R1 in Figures 3 and 4 is the state shown in Figures 5 to 8, the large flow rate region R2 in Figures 3 and 4 is the state shown in Figures 10 and 11 described below, and the state of the boundary between the small flow rate region R1 and the large flow rate region R2 is the state shown in Figure 9.
[0032] As explained with reference to FIGS. 5 to 9, in the small flow rate region, the flow resistance in the gap δ is changed by moving the shaft 1 (shaft tip 1A) in the shaft axial direction, thereby controlling the flow rate of hydrogen. When the shaft 1 moves in the axial direction, the rotation of the aperture adjustment dial 4 is converted into axial movement at the threaded portion 5A. Therefore, the amount of movement of the shaft 1 (shaft tip 1A) in the axial direction is small compared to the amount of rotation of the aperture adjustment dial 4, allowing for fine adjustment. In other words, the flow rate in the small flow rate region can be finely adjusted. Here, the hydrogen gas flowing through the gap δ is at a small flow rate. 5 and 6, immediately after the shaft tip tapered portion 1AT is separated from the flow path tapered portion 3AT, a large amount of hydrogen gas cannot flow through the gap δ because the region Lt of the minute gap δ is long and the flow path resistance is large. In other words, a rapid increase in the flow rate immediately after the flow control valve 30 is opened from the closed state is reliably prevented.
[0033] Figures 10 and 11 show the state in which the flow control valve 30 has achieved the characteristics of the large flow rate region R2 in Figures 3 and 4 by rotating the opening adjustment dial 4 and further lowering (in Figure 7) the shaft 1 (shaft tip 1A) from the state shown in Figures 7 and 8. 10, the shaft 1 side (upper side in FIG. 10) end face of the dial operation unit 4B is indicated by the symbol 4BT, and the dial operation unit 4B side (lower side in FIG. 10) end face of the shaft base 1B is indicated by the symbol 1BB. The distance (axial distance of the shaft 1) between the shaft 1 side end face 4BT of the dial operation unit 4B and the dial operation unit 4B side end face 1BB of the shaft base 1B is indicated by the symbol L10.
[0034] In FIG. 11 showing the flow path adjusting portion 10 in FIG. 10, an end surface 1AB of the shaft tip 1A is located below a boundary 3C between the small diameter flow path portion 3A and the tapered flow path portion 3AT. In the small flow rate region of Figures 5 to 8, the cross-sectional area of the hydrogen gas flow path is formed by the annular gap δ between the outer circumferential surface of the shaft tip 1A and the inner circumferential surface of the small-diameter flow path section 3A, but in the state of Figure 11 (large flow rate region), it is formed by the area between the outer circumferential surface of the shaft tip 1A and the inner circumferential surface of the tapered flow path section 3AT. When the shaft 1 (shaft tip 1A) is further lowered, the hydrogen gas flow path is formed by the area between the outer circumferential surface of the shaft tip 1A and the inner circumferential surface of the large-diameter flow path section 3B. Therefore, the cross-sectional area of the hydrogen gas flow path in the states of Figures 10 and 11 increases dramatically. As shown in Figures 10 and 11, if hydrogen gas flows at a high flow rate (high flow rate region), it is possible to meet the demand for shorter filling times (quick filling). In other words, as shown in Figure 8, the flow path through which hydrogen gas flows is formed by the annular gap δ, and the flow rate of hydrogen gas when the flow path resistance is high is a "small flow rate." On the other hand, as shown in Figure 11, the flow rate of hydrogen gas when the flow path through which hydrogen gas flows is formed by the region between the outer circumferential surface of the shaft tip 1A and the inner circumferential surface of the flow path tapered portion 3AT is a "large flow rate."
[0035] According to the illustrated embodiment, the transitions from the closed state to the low flow rate state and then to the high flow rate state are all made continuously by moving the shaft tip 1A in a direction away from the small diameter flow path portion 3A. Therefore, with the flow control valve 30 of the illustrated embodiment, continuous and smooth operation allows hydrogen gas to flow at a low flow rate immediately after closing, i.e., when the valve is opened, and the low flow rate gradually increases (small flow rate region R1). After the state shown in Figure 9 (L33 in Figure 3), the hydrogen gas flow rate increases rapidly (large flow rate region R2).
[0036] For example, when switching from a high-pressure tank to an ultra-high-pressure tank while the flow control valve 30 is in the high flow region shown in Figure 10 (regions LC and LD in Figure 4), in order to perform the tank exchange safely and smoothly, it is necessary to rapidly decrease the valve opening of the flow control valve 30 and reduce the flow rate of hydrogen gas. In the illustrated first embodiment, in Figure 10, the rapid opening adjustment button 7 can be pressed toward the flow path adjustment unit 10 in the shaft axial direction (toward the shaft tip 1A: upward in Figure 10) (area LC in Figure 4), and the entire shaft 1 (together with the opening adjustment dial 4) can be quickly moved toward the flow path adjustment unit 10 in the shaft axial direction. The dial operating part 4B of the opening adjustment dial 4 has a small diameter cylindrical shape and passes through the opening 2D. Therefore, when the rapid opening adjustment button 7 is pressed toward the shaft tip 1A in the shaft axial direction (upward in Figure 10), the dial operating part 4B does not interfere with the main body part and moves in the shaft axial direction together with the shaft 1.
[0037] Figure 12 shows a state in which the rapid opening adjustment button 7 (button operation unit 7A) has been operated to move the entire shaft 1 toward the flow path adjustment unit 10 in the shaft axial direction (upward in Figure 12). Compared with Figures 5, 7, and 10, in Figure 12, the opening adjustment dial 4 (shaft fitting unit 4A, dial operation unit 4B) has moved together with the shaft 1 toward the flow path adjustment unit 10 in the shaft axial direction. The distance (axial distance of the shaft 1) between the end face 4BT of the dial operation unit 4B on the shaft 1 side (upper side in Fig. 10) and the end face of the shaft base 1B on the dial operation unit 4B side (lower side in Fig. 10) is indicated by the symbol L12 in Fig. 12. The opening adjustment dial 4 (shaft fitting portion 4A, dial operation unit 4B) has moved toward the flow path adjustment unit 10 in the shaft axial direction by the difference between the distance L10 in Fig. 10 and the distance L12 in Fig. 12. The length Lt (see FIGS. 6 and 8) of the shaft tip 1A inserted into the small diameter flow path portion 3A is long, the flow path resistance is large, and the flow rate of the hydrogen gas flowing through the flow rate adjustment valve 30 is small (region LD in FIG. 4). Therefore, by quickly moving the entire shaft 1 toward the flow path adjustment portion 10 in the shaft axial direction, the gaseous fuel supply tank can be replaced safely and smoothly.
[0038] Next, a second embodiment of the present invention will be described with reference to FIG. The flow rate adjustment valve according to the second embodiment is generally indicated by the reference numeral 30-1 in Fig. 13. The flow rate adjustment valve 30-1 shown in Fig. 13 is in a closed state. In the following description of the second embodiment, only the configurations that are different from the first embodiment will be described, and a description of the configurations that are similar to those of the first embodiment will be omitted. In Figure 13, in the flow control valve 30-1 of the second embodiment, the biasing spring 6C-1 arranged in the co-rotation prevention mechanism 6 has a different configuration from the biasing spring 6C of the co-rotation prevention mechanism 6 in the flow control valve 30 of the first embodiment (Figures 5 to 12). In the first embodiment shown in Figures 5 to 12, multiple biasing springs 6C are provided at equal intervals around the shaft circumference. In contrast, in the second embodiment shown in Figure 13, a single biasing spring 6C-1 is provided in the hollow portion of the anti-rotation member 6A-1. The single biasing spring 6C-1 is arranged so as to surround the shaft surrounding portion 6AB-1. One end of the single biasing spring 6C-1 abuts against the bottom surface 6A1-T (upper end surface: closed surface) of the hollow portion 6A1-I in the anti-co-rotation member 6A-1, and the other end abuts against the flange portion 1E formed on the shaft 1. The single biasing spring 6C-1 constantly biases the shaft flange portion 1E toward the opening adjustment dial 4 in the shaft axial direction (the lower side in Figure 13). Other configurations and effects of the second embodiment in FIG. 13 are the same as those of the first embodiment in FIGS.
[0039] It should be noted that the illustrated embodiments are merely examples and are not intended to limit the technical scope of the present invention. For example, the flow rate regulating valve of the present invention can be used in a filling device (a filling device other than a hydrogen filling machine) that fills gaseous fuels other than hydrogen into equipment other than FCVs. [Explanation of symbols]
[0040] 1. Shaft 1A···Shaft tip (small diameter tip) 1AT···Tapered shaft tip 1B: Shaft base 1C···Thread (Thread at base of shaft) 2. Main body 3. Flow path 3A: Small diameter flow passage 3AT... Tapered flow path 4. Rotating member for adjusting opening degree (opening degree adjustment dial) 4C···Internal thread (internal thread formed on the rotation member for adjusting the opening) 5. Conversion mechanism 5A...Threaded part 6. Anti-corotation mechanism 6A: Anti-rotation member 6B···Co-rotation prevention bolt 7. Rapid opening adjustment member (rapid opening adjustment button) 10 Flow path adjustment section 30 Flow control valve δ: Tiny gap
Claims
1. The valve comprises a shaft with a small diameter tip, a main body portion in which a flow path is formed, a rotary member for adjusting the opening degree, and a conversion mechanism for converting the rotation of the rotary member for adjusting the opening degree into axial movement of the shaft, the shaft tip is arranged so as to be insertable into a small diameter flow passage portion of a flow passage formed in the main body portion, and a gap is set to exist between the outer periphery of the shaft tip and the inner periphery of the small diameter flow passage portion, The mechanism for converting rotation of the opening-adjusting rotating member into axial movement of the shaft has a threaded portion between an internal thread formed on the opening-adjusting rotating member and a thread on the opening-adjusting rotating member side at the base of the shaft, and the threaded portion has a function of converting rotation of the opening-adjusting rotating member into movement in the axial direction of the shaft, A movable seal is provided to support the axial movement of the shaft but prevent the radial movement of the shaft, and an axial bearing is provided to promote smooth axial movement of the shaft. an annular gap is formed between the outer periphery of the shaft tip and the inner circumferential surface of the small diameter flow passage portion, hydrogen gas flows within the annular gap, flow passage resistance in the annular gap is large and the flow rate of the hydrogen gas flowing within the annular gap is small, and the opening-adjusting rotating member is rotated to vary the axial length of the shaft tip that penetrates the small diameter flow passage portion, thereby varying the flow passage resistance of the annular gap, thereby fine-tuning the flow rate of the hydrogen gas flowing through the annular gap, a rapid opening adjustment member having the function of moving the shaft toward the shaft tip, the rapid opening adjustment member being arranged on the end of the shaft opposite the shaft tip, the shaft being moved toward the small diameter flow path portion when the rapid opening adjustment member is pressed toward the shaft tip, the rapid opening adjustment member having a button operation unit and a shaft portion, a shaft screw portion being provided on the shaft tip side, and the shaft screw portion being fastened to an internal thread formed at the base of the shaft.
2. 2. The flow rate adjusting valve according to claim 1, further comprising a co-rotation prevention mechanism for preventing the shaft from rotating together with the opening-adjusting rotary member when the opening-adjusting rotary member is rotated.
Citation Information
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