Trigger-type liquid dispenser

The trigger-type liquid dispenser uses a throttling channel to extend ejection duration and maintain a mist-like state by reducing flow velocity, addressing the challenge of continuous ejection without altering the ejection hole diameter, and allowing reuse of existing nozzle components.

JP7843687B2Active Publication Date: 2026-04-10YOSHINO KOGYOSHO CO LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-10-31
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Conventional trigger-type liquid ejectors face challenges in maintaining continuous liquid ejection over an extended duration without increasing manufacturing costs by reducing the inner diameter of the ejection hole.

Method used

A trigger-type liquid dispenser with a vertical supply cylinder, storage cylinder, and a throttling channel connecting the ejection port and storage cylinder, which reduces flow velocity through a throttling passage with a smaller inner diameter than the ejection hole, allowing for extended ejection time without altering the ejection hole diameter.

Benefits of technology

The design extends the duration of liquid ejection from the nozzle with a single trigger operation, enabling stable continuous ejection and maintaining a mist-like state for up to 0.8 seconds, while reusing existing nozzle components.

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Abstract

To divert an existing product and extend a time which a sprayer continues to jet a liquid from a jetting port with one-time operation of a trigger part.SOLUTION: A trigger type liquid sprayer includes a sprayer body 11 and a nozzle member 12. The sprayer body has: a vertical supply cylinder part 14; a trigger mechanism 21 having a trigger part 13 and a main pump part 22; a storage cylinder 17; and a storage plunger 18. A communication passage 32 which allows communication between a jetting port 12a of the nozzle member and the interior of the storage cylinder includes a contraction passage 33 having an inner diameter smaller than that of the jetting port.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a trigger-type liquid ejector.

Background Art

[0002] As a trigger-type liquid ejector, a configuration including a main pump unit for storing a liquid and a trigger unit for operating the main pump unit is disclosed. According to this configuration, when the trigger unit is pulled backward, the inside of the cylinder of the main pump unit is pressurized, so that the liquid in the cylinder flows toward the ejection hole. Thereby, the liquid is ejected through the ejection hole. On the other hand, as the trigger unit returns forward, the inside of the cylinder is depressurized, so that the liquid in the container body flows into the cylinder. For example, Patent Document 1 below discloses a trigger-type liquid ejector including a storage pump unit in addition to the main pump unit. In this type of trigger-type liquid ejector, when the trigger unit is operated, part of the liquid sent out from the main pump unit is ejected through the ejection hole, while the remaining liquid is stored in the cylinder of the storage pump unit. Therefore, when the operation of the trigger unit is stopped, the liquid stored in the cylinder of the storage pump unit flows toward the ejection hole. Thereby, it is said that the liquid can be continuously ejected even when the trigger unit is not operated.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] In a conventional trigger-type liquid ejector, there is a demand for increasing the time during which the liquid continues to be ejected from the ejection hole by one operation of the trigger unit. In response to such requests, one option is to reduce the inner diameter of the injection hole, but this would increase manufacturing costs, as it would require a new molding die.

[0005] This invention provides a trigger-type liquid dispenser that allows for a longer duration of liquid discharge from the nozzle with a single trigger operation, while utilizing existing products. [Means for solving the problem]

[0006] A trigger-type liquid dispenser according to one aspect of the present invention comprises a dispenser body attached to a container body containing liquid, and a nozzle member provided in front of the dispenser body and having a discharge hole formed therein for discharging liquid forward, wherein the dispenser body has a vertical supply cylinder portion extending in the vertical direction and through which liquid drawn up from the container body flows, a trigger portion provided in front of the vertical supply cylinder portion so as to be movable backward in a forward biased state, and a trigger mechanism having a main pump portion that sends liquid through the vertical supply cylinder portion toward the discharge hole when the trigger portion moves backward, and The device comprises a storage cylinder provided between the vertical supply cylinder and the nozzle member, into which liquid that has passed through the vertical supply cylinder is supplied when the trigger portion moves backward, and a storage plunger positioned within the storage cylinder so as to be movable in the axial direction along the central axis of the storage cylinder, which moves toward one side of the axial direction as liquid is supplied into the storage cylinder and is biased toward the other side of the axial direction, and a communication passage connecting the ejection hole and the inside of the storage cylinder comprises a throttling passage with an inner diameter smaller than that of the ejection hole.

[0007] The communication channel connecting the ejection port and the storage cylinder has a throttling channel with a smaller inner diameter than the ejection port. Therefore, when the trigger unit moves backward, the liquid that has passed through the vertical supply cylinder and the storage cylinder in that order passes through the throttling channel before reaching the ejection port, causing pressure loss and reducing the flow velocity. Consequently, the time during which liquid continues to be ejected from the ejection port with a single trigger operation can be extended. In this case, for example, when the trigger unit is operated multiple times, it is possible to stably achieve continuous ejection of liquid from the ejection port without interruption. Since the connecting channel is equipped with a constricted channel, there is no need to change the inner diameter of the ejection hole, and at least the nozzle component having the ejection hole can be reused from the existing product. Furthermore, if a spin channel is provided between the connecting channel and the ejection port, the diameter of the ejected droplets can be increased by reducing the flow velocity of the liquid that has passed through the throttling channel. By adjusting the dimensions of the throttling channel rather than the nozzle, the spray pattern, such as the spread of the liquid ejected from the nozzle, and the duration for which the liquid continues to spray from the nozzle with a single trigger operation can be changed according to the type, properties, and application of the liquid being sprayed.

[0008] The inner diameter of the ejection hole may be 0.5 mm or more and 0.6 mm or less, and the inner diameter of the throttling channel may be 0.3 mm or more and 0.45 mm or less.

[0009] Since the inner diameter of the nozzle is set to 0.5 mm or more and 0.6 mm or less, and the inner diameter of the throttling channel is set to 0.3 mm or more and 0.45 mm or less, it is possible to reliably extend the time during which liquid continues to be ejected from the nozzle with a single trigger operation, for example to 0.8 seconds or more, while maintaining a mist-like ejection state.

[0010] The ejector body includes a biasing member that biases the storage plunger toward the other side in the axial direction, and the biasing member is a metal coil spring, and the storage plunger may be biased toward the other side in the axial direction with a force of 30N to 60N.

[0011] Since the biasing member is a metal coil spring and the storage plunger is biased with a force of 30N to 60N toward the other side of the axial direction, the liquid can be smoothly ejected from the ejection hole even if the communication channel is a restricted channel. [Effects of the Invention]

[0012] According to the above embodiment of the present invention, it is possible to extend the time during which liquid continues to be ejected from the nozzle with a single trigger operation, while still utilizing existing products. [Brief explanation of the drawing]

[0013] [Figure 1] This is a partial longitudinal cross-sectional view of a trigger-type liquid dispenser according to one embodiment of the present invention. [Figure 2] This is a partially enlarged view of Figure 1. [Modes for carrying out the invention]

[0014] Hereinafter, embodiments of the trigger-type liquid dispenser according to the present invention will be described with reference to the drawings. The trigger-type liquid dispenser 1 comprises a dispenser body 11 and a nozzle member 12, and is attached to a container body A that holds liquid. Unless otherwise specified, each component of the trigger-type liquid dispenser 1 is a molded product made of resin material.

[0015] The dispenser body 11 mainly comprises a vertical supply cylinder 14, a connecting cylinder 15, a mounting cap 16, a storage cylinder 17, a storage plunger 18, a biasing member 19, an injection cylinder 20, a trigger mechanism 21, a ball valve 23, and a storage valve 24, and is attached to a container body A that contains liquid.

[0016] The bottom side of the container body A along the central axis O1 of the vertical supply cylinder portion 14 is referred to as the lower side, the opposite side is referred to as the upper side, and the direction along the central axis O1 is referred to as the vertical direction. When viewed from the vertical direction, one of the directions intersecting the central axis O1 is referred to as the front-rear direction, and the direction orthogonal to both the vertical direction and the front-rear direction is referred to as the left-right direction.

[0017] The mounting cap 16 is mounted on the mouth portion of the container body A. The mounting cap 16 fixes the vertical supply cylinder portion 14 to the mouth portion of the container body A. The vertical supply cylinder portion 14 penetrates the mounting cap 16 in the vertical direction. In the lower part of the vertical supply cylinder portion 14, the upper part of a pipe 14a with a lower end opening located inside the bottom of the container body A is fitted. The liquid inside the container body A is sucked up through the pipe 14a and flows upward through the vertical supply cylinder portion 14. The connection cylinder portion 15 extends forward from the upper end portion of the vertical supply cylinder portion 14. The rear end portion of the connection cylinder portion 15 opens into the vertical supply cylinder portion 14. The front end portion of the connection cylinder portion 15 opens to the outside of the ejector body 11, and a closing plug 15a is fitted into this opening, and the opening at the front end portion of the connection cylinder portion 15 is closed (sealed). The connection cylinder portion 15 is separated upward from the mounting cap 16.

[0018] The trigger mechanism 21 includes a trigger portion 13 and a main pump portion 22. The main pump portion 22 includes a cylinder 25 and a piston 26, and by moving the trigger portion 13 backward, the liquid inside the cylinder 25 is sent out through the vertical supply cylinder portion 14 toward the ejection hole 12a of the nozzle member 12.

[0019] The cylinder 25 is provided between the connection cylinder portion 15 and the mounting cap 16. The central axis of the cylinder 25 (hereinafter referred to as the cylinder axis O2) extends in the front-rear direction. The cylinder 25 protrudes forward from the vertical supply cylinder portion 14 and is fitted into a cylinder-shaped tube portion 11a that opens forward. The cylinder 25 is formed in a horizontally bottomed cylindrical shape with an open front end and a closed rear end. The inside of the cylinder 25 communicates with the inside of the vertical supply cylinder portion 14 through a communication passage 11b extending in the front-rear direction.

[0020] The piston 26 is fitted movably in the front - rear direction inside the cylinder 25. As the piston 26 moves in the front - rear direction, the inside of the cylinder 25 is pressurized and depressurized. The piston 26 is formed in a horizontally - oriented, roofed cylindrical shape with an open rear end and a closed front end. The piston 26 is biased forward by a biasing member 11c. The biasing member 11c is inserted into the piston 26 and disposed coaxially with the cylinder axis O2. The biasing member 11c is sandwiched in the front - rear direction between the top wall of the piston 26 and the bottom wall of the cylinder 25. The biasing member 11c is a metal coil spring. Note that the biasing member 11c may be formed of, for example, a resin material or the like, and the biasing member 11c may bias the trigger portion 13 forward.

[0021] The trigger portion 13 is provided movably rearward in a forward - biased state in front of the vertical supply cylinder portion 14. The trigger portion 13 extends in the vertical direction and is provided swingable in the front - rear direction around its upper end. The upper end of the trigger portion 13 is connected to the nozzle member 12. The upper end of the trigger portion 13 is located directly below the injection cylinder portion 20. The trigger portion 13 is provided in front of the piston 26 and the cylinder 25, straddling the piston 26 and the cylinder 25 in the vertical direction. The trigger portion 13 is linked to the piston 26 and is provided to be able to advance and retreat with respect to the cylinder 25. A protrusion 13a that protrudes rearward and abuts against the front surface of the top wall of the piston 26 is formed on the trigger portion 13.

[0022] The trigger portion 13 is provided with a stopper 31 that is rotatably supported around a rotation axis extending in the left - right direction between a lock position that restricts the front - rear movement of the trigger portion 13 with respect to the cylinder 25 and an unlock position that allows the front - rear movement of the trigger portion 13 with respect to the cylinder 25. In the locked position, the stopper 31 extends rearward from the trigger portion 13 and abuts against the lower end of the front opening edge of the cylinder 25. In the unlocked position, as shown by the dashed line in Figure 1, it separates from the front opening edge of the cylinder 25 and extends downward from the axis of rotation.

[0023] The storage cylinder 17 is provided between the vertical supply cylinder 14 and the nozzle member 12. When the trigger 13 moves backward, the liquid that has passed through the vertical supply cylinder 14 is supplied into the storage cylinder 17. The central axis O3 of the storage cylinder 17 is located above the vertical supply cylinder 14 and the connecting cylinder 15, and extends in the front-rear direction. The lower end of the storage cylinder 17 is integrally formed with the upper ends of the vertical supply cylinder 14 and the connecting cylinder 15, respectively.

[0024] A supply hole 17b is formed in the lower part of the front end of the storage cylinder 17, which connects the storage space 17a, defined between the front end of the storage plunger 18 and the inside of the storage cylinder 17, with the inside of the connecting cylinder portion 15. The supply hole 17b extends in the vertical direction and is located behind the closure plug 15a. The storage cylinder 17 is formed in a transverse cylindrical shape with a front end wall 27 that closes the front end opening. A connecting hole 17c is formed in the front end wall 27, penetrating in the front-rear direction and connecting the storage space 17a with the inside of the injection cylinder 20. The connecting hole 17c is arranged coaxially with the central axis O3.

[0025] The storage plunger 18 is fitted into the storage cylinder 17 so as to be movable in the front-rear direction (axial direction). The storage plunger 18 blocks communication between the vertical supply cylinder 14 and the nozzle member 12's ejection hole 12a by closing the connecting hole 17c. The storage plunger 18 moves backward when the internal pressure of the storage space 17a exceeds a predetermined value as liquid is supplied to the storage space 17a through the supply hole 17b. At this time, the connecting hole 17c opens, the storage space 17a expands, the liquid that has passed through the supply hole 17b is stored in the storage space 17a, and communication between the connecting hole 17c, the storage space 17a, the supply hole 17b, the vertical supply cylinder 14 and the ejection hole 12a is permitted. The inner diameter of the storage space 17a is between 8 mm and 20 mm (approximately 13 mm in the illustrated example).

[0026] The biasing member 19 is located inside the storage cylinder 17 and biases the storage plunger 18 forward. The biasing member 19 is a metal coil spring, but may be made of a resin material. The forward biasing force applied by the biasing member 19 to the storage plunger 18 is between 30N and 60N (approximately 45N in the illustrated example). The biasing member 19 is arranged coaxially with the central axis O3. The injection cylinder section 20 extends forward from the front end wall 27 of the storage cylinder 17. The central axis O4 of the injection cylinder section 20 is located above the central axis O3, with the same position in the left-right direction. The inside of the injection cylinder section 20 is in communication with the vertical supply cylinder section 14 through the connecting hole 17c, the storage space 17a, the supply hole 17b, and the connecting cylinder section 15.

[0027] The ball valve 23 and the storage valve 24 are located within the vertical supply cylinder section 14. The ball valve 23 is located below the communication passage 11b. The ball valve 23 acts as a check valve that, when pressurized in the cylinder 25, blocks communication between the container body A and the cylinder 25 through the vertical supply cylinder 14, and when the pressure inside the cylinder 25 is reduced, it displaces upward, thereby allowing communication between the container body A and the cylinder 25 through the vertical supply cylinder 14. The storage valve 24 is located above the ball valve 23 and the communication passage 11b. The storage valve 24 is a check valve that allows the supply of liquid from the vertical supply cylinder 14 through the connecting cylinder 15 to the storage space 17a, and restricts the outflow of liquid from the storage space 17a through the connecting cylinder 15 to the vertical supply cylinder 14.

[0028] The nozzle member 12 is located in front of the ejector body 11 and has an ejection hole 12a that ejects liquid forward. The nozzle member 12 comprises a mounting cylinder portion 28 fitted onto the injection cylinder portion 20, a nozzle shaft portion 29 provided inside the front end of the mounting cylinder portion 28, and a nozzle cap 30 attached to the nozzle shaft portion 29. The ejection hole 12a, mounting cylinder portion 28, nozzle shaft portion 29, and nozzle cap 30 are arranged coaxially with the central axis O4. The rear portion of the mounting cylinder 28 is fitted onto the injection cylinder 20, while the front portion protrudes forward from the injection cylinder 20. The nozzle shaft portion 29 is located away from the injection cylinder 20. The nozzle cap 30 has a forward-opening ejection hole 12a.

[0029] An adapter cylinder 28a is fitted into the front portion of the mounting cylinder 28, specifically the portion located behind the nozzle shaft portion 29, along its entire length in the front-to-back direction. The adapter cylinder 28a may be formed integrally with the mounting cylinder 28. The communication channel 32 connecting the ejection hole 12a and the storage space 17a comprises the inside of the adapter cylinder 28a, the inside of the injection cylinder portion 20, and the connecting hole 17c. The communication channel 32 extends in the front-rear direction. The communication channel 32 and the ejection hole 12a communicate through a spin channel 34 provided between the inner surface of the nozzle cap 30 and the outer surface of the nozzle shaft portion 29.

[0030] As shown in Figure 2, the communication channel 32 is equipped with a throttling channel 33 with an inner diameter smaller than that of the ejection hole 12a. The inner diameter of the ejection hole 12a is set to be between 0.5 mm and 0.6 mm, and the inner diameter of the throttling channel 33 is set to be between 0.3 mm and 0.45 mm. The aperture channel 33 is located in the middle of the connecting channel 32 in the front-to-back direction. The cross-sectional area of ​​the aperture channel 33 is the smallest in the connecting channel 32. The length of the aperture channel 33 is the shortest in the connecting channel 32.

[0031] The aperture channel 33 is located within the rear end of the adapter cylinder 28a. The front end 32a of the communication channel 32 is located within the front end of the adapter cylinder 28a. The front end 32a of the communication channel 32 opens toward the rear end face of the nozzle shaft portion 29 and widens in diameter as it extends forward. The inner diameter of the connection portion 32b between the front end 32a and the aperture channel 33 of the communication channel 32 is the same along its entire length in the front-rear direction. Alternatively, a throttling channel 33 may be formed in the front end wall 27 of the storage cylinder 17 without forming a connecting hole 17c.

[0032] Next, the operation of the trigger-type liquid dispenser 1 will be explained. It is assumed that liquid is filled into each part of the trigger-type liquid dispenser 1 by operating the trigger unit 13 multiple times.

[0033] When the trigger portion 13 is moved backward together with the piston 26 against the forward biasing force of the biasing member 11c, the inside of the cylinder 25 is pressurized, and the liquid inside the cylinder 25 is supplied to the vertical supply cylinder portion 14 through the connecting passage 11b. At this time, the ball valve 23 is pressed downward and the storage valve 24 is pushed up, so that the liquid inside the vertical supply cylinder portion 14 is supplied to the storage space 17a of the storage cylinder 17 through the connecting cylinder portion 15 and the supply hole 17b, and the storage space 17a is pressurized.

[0034] As a result, the storage plunger 18 moves backward against the forward biasing force of the biasing member 19, and liquid is stored in the expanded storage space 17a. Communication is also permitted between the vertical supply cylinder 14 and the ejection hole 12a through the connecting cylinder 15, the supply hole 17b, the storage space 17a, the communication channel 32, and the spin channel 34. The liquid in the storage space 17a, whose pressure has increased, is supplied to the ejection hole 12a through the communication channel 32 and the spin channel 34, and ejected forward from the ejection hole 12a.

[0035] As described above, each time the trigger unit 13 is pulled backward, the storage plunger 18 is moved backward, and liquid is accumulated in the expanded storage space 17a while the liquid is ejected from the ejection hole 12a.

[0036] Subsequently, when the trigger portion 13 is released, the piston 26 returns to its original position forward within the cylinder 25 due to the elastic restoring force (biasing force) of the biasing member 11c, and the trigger portion 13 also returns to its original position forward. As a result, the pressure inside the cylinder 25 decreases to a level lower than the internal pressure of container body A, so the ball valve 23 rises while the storage valve 24 remains closed, and the liquid inside container body A rises within the vertical supply cylinder portion 14 and is supplied into the cylinder 25 through the communication passage 11b.

[0037] When the operation of the trigger section 13 toward the rear is stopped, the supply of liquid to the storage space 17a through the vertical supply cylinder section 14, the connecting cylinder section 15, and the supply hole 17b stops, but the biasing force of the biasing member 19 causes the storage plunger 18 to start moving forward. At this time, the outflow of liquid from the storage space 17a into the vertical supply cylinder section 14 is restricted by the storage valve 24. As a result, the liquid accumulated in the storage space 17a is supplied to the ejection hole 12a through the communication channel 32 and the spin channel 34, and can continue to be ejected forward through the ejection hole 12a. In other words, liquid is ejected not only when the trigger section 13 is pulled toward the rear, but also when the trigger section 13 is not operated, enabling continuous ejection of liquid.

[0038] As described above, in the trigger-type liquid ejector 1 according to this embodiment, the communication channel 32 connecting the ejection hole 12a and the storage space 17a is equipped with a throttling channel 33 that has a smaller inner diameter than the ejection hole 12a. Therefore, when the trigger unit 13 moves backward, the liquid that has passed through the vertical supply cylinder 14 and the storage space 17a in that order passes through the throttling channel 33 before reaching the ejection hole 12a, causing a pressure loss and reducing the flow velocity. Consequently, the time during which the liquid continues to be ejected from the ejection hole 12a with a single operation of the trigger unit 13 can be extended. In this case, for example, when the trigger unit 13 is operated multiple times, it is possible to stably achieve continuous ejection of liquid from the ejection hole 12a without interruption.

[0039] Since the connecting channel 32 is equipped with a constricted channel 33, there is no need to change the inner diameter of the ejection hole 12a, and at least the nozzle cap 30 of the nozzle member 12 that has the ejection hole 12a can be reused from the current product. Since a spin channel 34 is provided between the communication channel 32 and the ejection hole 12a, the diameter of the ejected droplets can be increased by reducing the flow velocity of the liquid that has passed through the throttling channel 33. By adjusting the dimensions of the throttling channel 33 instead of the ejection hole 12a, the ejection pattern, such as the spread of the liquid ejected from the ejection hole 12a, and the duration for which the liquid continues to be ejected from the ejection hole 12a with a single operation of the trigger unit 13 can be changed according to the type, properties, and application of the liquid being ejected.

[0040] Since the inner diameter of the ejection hole 12a is set to 0.5 mm or more and 0.6 mm or less, and the inner diameter of the throttling channel 33 is set to 0.3 mm or more and 0.45 mm or less, it is possible to reliably extend the time during which the liquid continues to be ejected from the ejection hole 12a with a single operation of the trigger unit 13, for example to 0.8 seconds or more, while maintaining a mist-like ejection state.

[0041] The biasing member 19 that biases the storage plunger 18 forward is a metal coil spring, and since the storage plunger 18 is biased forward with a force of 30N to 60N, even if the communication channel 32 is equipped with a restricted channel 33, the liquid can be smoothly ejected from the ejection hole 12a.

[0042] Furthermore, the technical scope of the present invention is not limited to the embodiments described above, and various modifications can be made without departing from the spirit of the invention.

[0043] For example, it is not necessary to provide a stopper 31 on the trigger section 13. The central axis O3 of the storage cylinder 17 may extend in a direction that intersects the front-rear direction.

[0044] Furthermore, without departing from the spirit of the present invention, the components in the above embodiments may be replaced with well-known components as appropriate, and the above embodiments and modifications may be combined as appropriate. [Explanation of symbols]

[0045] 1. Trigger-type liquid dispenser 11 Squirt body 12 Nozzle component 12a Spout hole 13 Trigger section 14 Vertical supply cylinder section 17 Storage Cylinder 18 Storage Plunger 21 Trigger Mechanism 22 Main pump section 32 Connecting channels 33 Aperture channel A container O3 storage cylinder central axis

Claims

1. A sprayer body attached to a container body that holds liquid, The device comprises a nozzle member provided at the front of the ejector body, having an ejection hole formed therein for ejecting liquid forward, The aforementioned ejector body is A vertical supply cylinder section that extends in the vertical direction and through which the liquid drawn up from the container body flows, A trigger mechanism having a trigger section provided in front of the vertical supply cylinder so as to be movable backward in a forward biased state, and a main pump section that sends liquid through the vertical supply cylinder toward the ejection hole by the backward movement of the trigger section, A storage cylinder is provided between the vertical supply cylinder and the nozzle member, and when the trigger moves backward, the liquid that has passed through the vertical supply cylinder is supplied to the inside of the storage cylinder, The storage cylinder comprises a storage plunger which is disposed within the storage cylinder so as to be movable in the axial direction along the central axis of the storage cylinder, and which moves toward one side of the axial direction and is biased toward the other side of the axial direction in response to the supply of liquid into the storage cylinder, A trigger-type liquid ejector, wherein the communication channel connecting the ejection hole and the inside of the storage cylinder is a constricted channel with an inner diameter smaller than that of the ejection hole.

2. The inner diameter of the aforementioned ejection hole is set to be 0.5 mm or more and 0.6 mm or less. The trigger-type liquid dispenser according to claim 1, wherein the inner diameter of the throttling channel is 0.3 mm or more and 0.45 mm or less.

3. The ejector body includes a biasing member that biases the storage plunger toward the other side in the axial direction, The trigger-type liquid dispenser according to claim 1 or 2, wherein the biasing member is a metal coil spring, and the storage plunger is biased with a force of 30 N to 60 N toward the other side in the axial direction.

Citation Information

Patent Citations

  • Trigger type liquid jetting apparatus

    JP2017213497A

  • Trigger type liquid sprayer

    JP2020049475A