Water flow detection device

The flow detection device addresses operational failures in conventional systems by using rotation restriction and amplification mechanisms to ensure reliable water flow detection without an air supply path, enhancing fire safety.

JP2026084769APending Publication Date: 2026-05-22NOHMI BOSAI LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
NOHMI BOSAI LTD
Filing Date
2024-11-12
Publication Date
2026-05-22

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Abstract

To provide a water flow detection device that can reliably operate in the event of a fire or other emergency. [Solution] A water flow detection device 1B comprises a valve body, a valve shaft to which the valve body is connected, and a detection mechanism 4B. The detection mechanism 4B includes a detection means 8, an operating means 9B provided to operate the detection means 8 and rotatably supported, a rotation restricting means 12 provided to restrict the rotation of the operating means 8 in one direction and rotatably supported, and a rotation amplification means 13. The rotation amplification means 13 is configured to amplify the rotation of the valve shaft and transmit it to the shaft supporting the rotation restricting means 12. The shaft supporting the operating means 9B is provided spaced apart from the valve shaft and the shaft 15 supporting the rotation restricting means 12, respectively, so that when the valve body opens, the rotation restriction of the operating means 9B by the rotation restricting means 12 is released.
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Description

Technical Field

[0001] The present invention relates to a running water detection device, and more particularly to a running water detection device provided with a detection mechanism.

Background Art

[0002] Conventionally, there is a running water detection device used in sprinkler fire extinguishing equipment or the like. The running water detection device includes a valve body, a rubber pin connected to the valve body, and an air damper. The air damper has a plunger biased by air pressure. The plunger is normally pressed by the rubber pin in a form that resists the air pressure (for example, see Patent Document 1).

[0003] When, for example, a closed sprinkler is opened and fire extinguishing water flows in the pipe, a part of the running water opens the valve body, thereby releasing the pressing of the plunger by the rubber pin. When the plunger moves up and down by air pressure, a microswitch is pressed, and thereby, the running water can be detected.

Prior Art Documents

Patent Documents

[0004]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0005] In the conventional running water detection device, an air supply path is essential to operate the air damper. Dust may enter the supply path, and the entry of the dust may cause a problem in the operation of the air damper. Therefore, the conventional running water detection device may have a risk of not operating during a fire.

[0006] Therefore, the objective of the present invention is to provide a water flow detection device that can be reliably operated in the event of a fire or other emergency. [Means for solving the problem]

[0007] The present invention relates to a flow detection device comprising a valve body, a valve shaft to which the valve body is connected, and a detection mechanism, wherein the detection mechanism comprises a detection means, an operating means provided for operating the detection means and rotatably supported, a rotation restricting means provided for restricting the rotation of the operating means in one direction and rotatably supported, and a rotation amplification means, wherein the rotation amplification means is configured to amplify the rotation of the valve shaft and transmit it to the shaft supporting the rotation restricting means, the shaft supporting the operating means is provided spaced apart from the valve shaft and the shaft supporting the rotation restricting means, and the rotation restriction of the operating means by the rotation restricting means is released when the valve body opens.

[0008] Furthermore, in the present invention, the rotation amplification means has a large gear portion provided on the valve shaft side and a small gear portion provided on the shaft side that pivotally supports the rotation restricting means, and the large gear portion and the small gear portion can be configured to mesh with each other. In addition, in the present invention, the actuation means can be configured to be rotatable in one direction by its own weight. Furthermore, in the present invention, the detection mechanism further includes a rotation delay means connected to the actuation means, and the rotation delay means can be configured such that the rotation of the actuation means is delayed compared to the rotation of the valve body, regardless of the direction in which the actuation means rotates. Furthermore, in the present invention, the actuation means can be pivotally supported by a rotary damper, and the rotary damper can constitute the rotation delay means. [Effects of the Invention]

[0009] The present invention provides a water flow detection device that can operate more reliably in the event of a fire, etc., by providing a rotation restricting means for restricting the rotation of the operating means in one direction, and a rotation amplifying means for amplifying the rotation of the valve shaft and transmitting it to the shaft that supports the rotation restricting means. [Brief explanation of the drawing]

[0010] [Figure 1] This is a perspective view showing a reference embodiment of the present invention. [Figure 2] This figure shows an embodiment of the present invention, and is an enlarged perspective view of the main part of the detection mechanism on the front side. [Figure 3] This figure shows an embodiment of the present invention, and is an enlarged perspective view of the main part on the rear side of the detection mechanism. [Figure 4] This figure shows an embodiment of the present invention, and is an enlarged perspective view of the main part of the left side of the detection mechanism. [Figure 5] This figure shows an embodiment of the present invention, and is an enlarged perspective view of the main part of the right side of the detection mechanism. [Modes for carrying out the invention]

[0011] A reference embodiment of the present invention will be described with reference to Figure 1. The flow detection device 1A is installed, for example, on a flow path from a water source (not shown) of a wet sprinkler system to a sprinkler pipe (not shown), and comprises a valve body 2, a valve stem 3, and a detection mechanism 4A.

[0012] The valve body 2 is pivotally supported on the valve shaft 3 via a hinge 5 so as to be able to open and close. Normally, the water pressure on the secondary side of the flow path closes the flow path, and in the event of a fire, a closed-type sprinkler (not shown) connected to the sprinkler piping is opened, which reduces the water pressure on the secondary side and opens the flow path.

[0013] The valve stem 3 pivotally supports the valve body 2 and is connected to the detection mechanism 4A. In this reference embodiment, the valve stem 3 is pivotally supported by a bearing 6 and penetrates the valve body 7, and a torsion coil spring 11a, which is a type of rotation transmission means 10 and rotation delay means 11 described later, is attached to the outer end of the valve body 7.

[0014] The detection mechanism 4A is a mechanism for detecting flowing water and includes a detection means 8, an operating means 9A, a rotational transmission means 10, and a rotational delay means 11. The detection means 8 is a means for detecting flowing water and is provided, for example, as a limit switch. In this reference embodiment, the detection means 8 detects flowing water when a switch part 8a is pressed by a cam provided as the operating means 9A, although this will be described in detail later.

[0015] The actuation means 9A is provided to actuate the detection means 8, is rotatably supported, and is connected to the rotation delay means 11. The shaft supporting the actuation means 9A is spaced apart from the valve stem 3. In this reference embodiment, the valve stem 3 and the shaft supporting the actuation means 9A are arranged in parallel on substantially the same axis. The actuation means 9A is provided as a cam and is supported by a rotary damper 11b provided as the rotation delay means 11.

[0016] The rotation transmission means 10 is provided to transmit the rotation of the valve stem 3 to the actuation means 9A and constitutes at least a part of the rotation delay means 11. In this reference embodiment, the rotation transmission means 10 is formed of a biasing member, for example, a torsion coil spring 11a, with one end inserted into a cam provided as the actuation means 9A, and the other end inserted into a pin portion 3a inserted into the valve stem 3. In other words, in this reference embodiment, the detection mechanism 4A is directly connected to the valve stem 3.

[0017] The rotation delay means 11 is provided to cause the detection means 8 to act with a delay in response to the rotation of the valve stem 3. The rotation delay means 11 is configured such that the rotation of the actuation means 9A is delayed compared to the rotation of the valve body 2, regardless of which direction (in this reference embodiment, the opening direction A1 and the closing direction A2) the actuation means 9A rotates. In this reference embodiment, the opening direction A1 refers to the direction of rotation when the valve body 2 opens, and the closing direction A2 refers to the direction of rotation when the valve body 2 closes.

[0018] By delaying the rotation of the actuating means 9A with respect to the opening direction A1, even if the valve body 2 opens instantaneously without being affected by the flowing water, the actuating means 9A can be prevented from rotating and false detection can be avoided.

[0019] Also, although the valve body 2 may instantaneously close due to chattering or the like even after being opened by the flowing water, by delaying the rotation of the actuating means 9A with respect to the closing direction A2, each time chattering or the like occurs while the actuating means 9A starts rotating in the opening direction A1 and before the detecting means 8 detects the flowing water, the rotation delay means 11 is reset, and it is possible to prevent the actuating means 9A from returning to its original position. Also, when the valve body 2 opens again after being closed due to chattering or the like, it is possible to restart from the middle of the rotation position of the actuating means 9A. Thereby, it is possible to prevent the detection of the flowing water from being delayed or not being detected.

[0020] In this reference embodiment, the rotation delay means 11 is constituted by a torsion coil spring 11a and a rotary damper 11b, and due to the elasticity of the torsion coil spring 11a and the viscosity of the rotary damper 11b, the detecting means 8 operates with a delay in the rotation of the valve shaft 3.

[0021] In the flowing water detection device 1A, when the water pressure on the secondary side decreases, the valve body 2 is opened, and the valve shaft 3 rotates together with the valve body 2. As a result, the torsion coil spring 11a, which is the rotation transmission means 10, rotates together with the valve shaft 3, and the rotation of the valve shaft 3 is transmitted to the cam, which is the actuating means 9A. At this time, the cam rotates with a delay in the rotation of the valve shaft 3 due to the elasticity of the torsion coil spring 11a, which is the rotation delay means 11, and the viscosity of the rotary damper 11b. Then, when the cam rotates, the switch portion 8a of the limit switch, which is the detecting means 8, is pushed, causing the limit switch to operate and the flowing water to be detected.

[0022] Therefore, in the flow detection device 1A of this reference form, by providing such a rotation transmission means 10 and a rotation delay means 11, it is no longer necessary to provide a path for supplying air, which was required in conventional flow detection devices, and thus it can operate more reliably in the event of a fire or other emergency.

[0023] As a secondary effect of this reference configuration, by transmitting the rotation of the valve stem 3 to the actuation means 9A via the rotation transmission means 10, the dependence of the actuation means 9A's rotation detection mechanism 4A on the installation direction is eliminated or reduced, making it possible to design the water flow detection device with relative freedom.

[0024] Embodiments of the present invention will be described with reference to Figures 2 to 5. Components indicated by the same reference numerals as in the above reference embodiment will be described as they are the same as in the above reference embodiment and will therefore not be described.

[0025] The flow detection device 1B of this embodiment is installed, for example, on a flow path from a water reservoir (not shown) of a wet sprinkler system to a sprinkler pipe (not shown), and comprises a valve body 2, a valve stem 3, and a detection mechanism 4B. In this embodiment, a rotation delay means 11 is further provided. In this embodiment, the outer end of the valve stem 3 is connected to the large gear portion 13a of the rotation amplification means 13, which will be described later.

[0026] The detection mechanism 4B includes a detection means 8, an operating means 9B, a rotation restricting means 12, and a rotation amplification means 13. The operating means 9B is provided to operate the detection means 8 and is rotatably supported. The shaft supporting the operating means 9B is spaced apart from the valve shaft 3 and the shaft supporting the rotation restricting means 12 (shaft 15 in this embodiment).

[0027] In this embodiment, the actuation means 9B is provided to be rotatable by its own weight in one direction (in this embodiment, the direction of the detection means 8, i.e., the opening direction A1). More specifically, the actuation means 9B is provided as a rotor and is pivotally supported by a rotary damper 11b provided as a rotation delay means 11. The actuation member 9B also pushes the switch part 8a via a push fitting 14 attached to the detection means 8.

[0028] The rotation restricting means 12 is provided to restrict the rotation of the actuari 9B in the aforementioned one direction and is rotatably supported. In this embodiment, the rotation restricting means 12 is provided as a spring stopper and is axially supported on the shaft 15. As the small gear portion 13b rotates, the spring stopper disengages, releasing the restriction on the rotation of the actuari 9B, and the rotor, which is the actuari 9B, rotates under its own weight. The shaft 15 is axially supported by a bearing 16 so as to pass through the valve body 7.

[0029] The rotation amplification means 13 is configured to amplify the rotation of the valve stem 3 and transmit it to the shaft 15 that supports the rotation restricting means 12. In this embodiment, the rotation amplification means 13 has a large gear portion 13a provided on the valve stem 3 side and a small gear portion 13b provided on the shaft 15 that supports the rotation restricting means 12, and the large gear portion 13a and the small gear portion 13b are provided so as to be able to mesh. In this embodiment, the large gear portion 13a is supported on the valve stem 3, and the small gear portion 13b is supported on the shaft 15 that supports the rotation restricting means 12.

[0030] Even if the rotation of the large gear portion 13a is small, the small gear portion 13b that meshes with it will rotate more because it has a smaller diameter than the large gear portion 13a. As a result, the rotation of the valve shaft 3 is amplified and transmitted to the shaft 15 that supports the rotation restricting means 12.

[0031] The rotation delay means 11 is provided in the same manner as the rotation delay means 11 in the reference embodiment described above, so that the detection means 8 is activated with a delay in response to the rotation of the valve stem 3. The rotation delay means 11 is configured such that the rotation of the actuating means 9B is delayed compared to the rotation of the valve body 2, regardless of which direction (in this embodiment, the opening direction A1 and the closing direction A2) the actuating means 9B rotates. In this embodiment, the rotation delay means 2 is a rotary damper 11b, and its viscosity is configured to delay the rotation of the actuating means 9B compared to the rotation of the valve body 2.

[0032] In the flow detection device 1B, when the water pressure on the secondary side decreases, the valve body 2 opens, and the valve shaft 3 rotates together with the valve body 2. As a result, the large gear section 13a, which is the rotation amplification means 13, rotates together with the valve shaft 3, and the small gear section 13b, which is meshed with the large gear section 13a, also rotates. When the small gear section 13b rotates, the spring stopper, which is the rotation restricting means 12, is released, and the rotor, which is the operating means 9B, rotates by its own weight in the direction of the limit switch, which is the detection means 8. When the operating means 9B presses the switch section 8a of the limit switch, the flow of water is detected.

[0033] Therefore, in the flow detection device 1B of this embodiment, by providing such rotation amplification means 13 and rotation restricting means 12, it is no longer necessary to provide an air supply path that was required in conventional flow detection devices, and it can be operated more reliably in the event of a fire, etc.

[0034] Furthermore, as a secondary effect of providing the operating means 9B to be rotatable by its own weight as in this embodiment, the number of parts can be reduced, thereby enabling cost reduction. In addition, by adjusting the position of the rotation restricting means 12, the installation direction of the detection means 2 can be changed, making it possible to design the water flow detection device with relative freedom.

[0035] Although the present invention has been described based on the above embodiments, the present invention is not limited to the above embodiments and can be modified as appropriate without changing the gist of the invention.

[0036] (1) The above embodiment may be combined with the above reference embodiment as appropriate.

[0037] (2) In the above embodiment, the detection of flowing water is assumed to occur when the detection means 8 is activated. However, it is also possible to keep the detection means 8 constantly activated by the activation means 9B, and to separate the activation means 9B from the detection means when the valve shaft 3 rotates. In this case, the movement of the detection mechanism 4B will be the opposite of that in the above embodiment, and the fluid detection device 1B will detect the fluid when the detection means 8 is deactivated. The same applies to the flowing water detection device 1A of the above reference embodiment.

[0038] (3) In the above embodiment, the actuation means 9B is made to rotate by its own weight, but a weight may be attached to the actuation means 9B so that it rotates by the weight of the weight. [Explanation of Symbols]

[0039] 1A Flow detection device 1B Flow detection device 2 Valve body 3 Valve shaft 3a Pin portion 4A Detection mechanism 4B Detection mechanism 5 Hinge 6 Bearing 7 Valve body 8 Detection means 8a Switch unit 9A Actuator 9B Actuator 10 Rotational transmission means 11 Rotation delay mechanism 11a Torsion coil spring 11b Rotary damper 12 Rotation restricting means 13 Rotation amplification means 13a Large gear section 13b Small gear section 14 Push fitting 15 Shaft 16 Bearing A1 Open direction A2 Closed direction

Claims

1. A water flow detection device comprising a valve body, a valve stem to which the valve body is connected, and a detection mechanism, The detection mechanism is, Detection means and An actuating means provided for activating the detection means and rotatably supported, A rotation restricting means is provided to restrict the rotation of the operating means in one direction and is rotatably supported; It has rotation amplification means, The rotation amplification means is configured to amplify the rotation of the valve shaft and transmit it to the shaft supporting the rotation restricting means. The shaft supporting the operating mechanism is spaced apart from the valve shaft and the shaft supporting the rotation restricting mechanism. A water flow detection device characterized in that, when the valve body opens, the rotation restriction of the operating means by the rotation restricting means is released.

2. The rotation amplification means has a large gear portion provided on the valve shaft side and a small gear portion provided on the shaft side that pivotally supports the rotation restricting means. The water flow detection device according to claim 1, characterized in that the large gear portion and the small gear portion are provided to be able to mesh with each other.

3. The water flow detection device according to claim 1 or 2, characterized in that the operating means is provided so as to be rotatable in one direction by its own weight.

4. The detection mechanism further comprises a rotational delay means connected to the actuation means, The flow detection device according to claim 1 or 2, characterized in that the rotation delay means is configured such that the rotation of the actuating means is delayed compared to the rotation of the valve body, regardless of the direction in which the actuating means rotates.

5. The aforementioned operating means is pivotally supported by a rotary damper. The water flow detection device according to claim 4, characterized in that the rotary damper constitutes the rotation delay means.