Two-fluid steam-water atomization device

By adopting the design of the engagement ball and sealing disc in the two-fluid soda atomization device, the nozzle alignment and sealing instability caused by loose thread connections are solved, and the stability of the spray effect and the long life of the equipment are achieved.

CN223128332UActive Publication Date: 2025-07-22NINGBO YIXIN ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202421984593.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-16
Publication Date
2025-07-22
Estimated Expiration
2034-08-16

AI Technical Summary

Technical Problem

The threaded connection of the existing two-fluid soda atomization device is easily loosened during use, resulting in unstable nozzle alignment and sealing, affecting the uniformity and strength of the spray effect.

Method used

While using atomizing spray head to thread the atomizing body, the stability of the thread connection is ensured through the fitting of the engaging ball and the extrusion plate, and the sliding fit between the sealing disc and the fixing cylinder is used to reduce the loose connection and maintain the alignment and sealing effect of the nozzle.

Benefits of technology

It effectively avoids loose connections caused by improper operation or improper threads, ensures the stability of spray strength and atomization effect, and extends the service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of atomization devices, and discloses a two-fluid steam-water atomization device, which comprises an atomization main body and an atomization spray head, the atomization main body is detachably arranged at the end part of the atomization main body, the inner wall of the atomization spray head is provided with a threaded section, the end part of the atomization main body is provided with a threaded section, and the atomization spray head is in threaded fit with the atomization main body. A mounting block is arranged on the side portion of the atomization nozzle, an extrusion plate is arranged in the mounting block, through arrangement of a clamping ball, when the atomization nozzle is rotated to be in threaded connection with the atomization body, the extrusion plate is pressed, the extrusion plate extrudes a telescopic column and a spring on the outer side of the telescopic column, and the extrusion plate drives a sliding rod and a piston disc to slide in a piston cavity; the air in the clamping ball is pumped out, the pressing plate is loosened after the thread is completed, the clamping ball recovers to be clamped with the clamping groove, connection looseness caused by improper operation or loose threads is reduced, and the situation that the spraying strength and the atomization effect are uneven due to the connection problem is avoided.
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Description

Technical Field

[0001] The utility model relates to the technical field of atomization devices, in particular to a two-fluid steam-water atomization device. Background Technique

[0002] The environmental protection two-fluid steam-water atomization device is an efficient atomization device that pays attention to environmental protection. Its working principle is mainly based on two-fluid atomization technology, that is, using high-speed air flow to atomize liquid into extremely fine droplets. It is made of environmentally friendly materials to ensure that it will not pollute the environment during use. By optimizing the nozzle design and air flow control, efficient atomization of the liquid is achieved, reducing waste. The device design pays attention to energy conservation, reduces energy consumption, conforms to the concept of green environmental protection, and is applicable to multiple fields, such as environmental protection dust reduction, air humidification, etc., providing an effective means to improve environmental quality. In summary, the environmental protection two-fluid steam-water atomization device is an advanced atomization device that integrates high efficiency, environmental protection, and energy conservation.

[0003] Currently, the two-fluid steam-water atomization bottle is generally connected by threads. However, the threaded connection may become loose during use. The loosening of the thread may affect the alignment and sealing of the nozzle, resulting in unstable spray effects, such as inconsistent spray intensity and atomization effect. Therefore, it does not meet the existing requirements, and for this reason, we propose a two-fluid steam-water atomization device. Content of the Utility Model

[0004] The utility model provides a two-fluid steam-water atomization device, which has the beneficial effect of reducing connection looseness caused by improper operation or loose threads, and solves the problem that the threaded connection may become loose during use as mentioned in the above background technique. The loosening of the thread may affect the alignment and sealing of the nozzle, resulting in unstable spray effects, such as inconsistent spray intensity and atomization effect.

[0005] The utility model provides the following technical solution: A two-fluid steam-water atomization device includes an atomization main body and an atomization nozzle. The atomization nozzle is detachably installed at the end of the atomization main body. The inner wall of the atomization nozzle is provided with a threaded section, and the end of the atomization main body is provided with a threaded section. The atomization nozzle is in threaded cooperation with the atomization main body. An installation block is arranged on the side of the atomization nozzle, and an extrusion plate is arranged inside the installation block.

[0006] As an optional solution of the two-fluid steam-water atomization device of the utility model, among them: a sliding groove is opened inside the installation block, the extrusion plate is arranged inside the sliding groove, there are two extrusion plates, and a telescopic column is connected between the two extrusion plates.

[0007] As an alternative embodiment of the two-fluid steam-water atomization device of the present utility model, wherein: a spring is sleeved outside the telescopic column, the telescopic column includes a sliding column and a fixed cylinder, the sliding column and the fixed cylinder are respectively connected to the sides of two pressing plates, and the fixed cylinder is sleeved outside the sliding column.

[0008] As an alternative embodiment of the two-fluid steam-water atomization device of the present utility model, wherein: a fixed rod is connected to the bottom of the sliding column, a sealing disc is connected to the bottom of the fixed rod, and the sealing disc is in sliding fit with the inner wall of the fixed cylinder.

[0009] As an alternative embodiment of the two-fluid steam-water atomization device of the present utility model, wherein: a piston chamber is communicated and opened at the bottom of the sliding groove, a sliding rod is connected to the side of the pressing plate, a piston disc is connected to the side of the sliding rod, and the piston disc is in sliding fit with the piston chamber.

[0010] As an alternative embodiment of the two-fluid steam-water atomization device of the present utility model, wherein: a flow chamber is communicated and arranged at the bottom of the piston chamber, and the piston chamber and the flow chamber are opened on the inner wall of the atomizing nozzle.

[0011] As an alternative embodiment of the two-fluid steam-water atomization device of the present utility model, wherein: a clamping groove is opened on the side of the atomizing main body, and a clamping ball is connected to the end of the flow chamber.

[0012] As an alternative embodiment of the two-fluid steam-water atomization device of the present utility model, wherein: the clamping ball is in sliding clamping fit with the clamping groove.

[0013] The present utility model has the following beneficial effects:

[0014] 1. For the two-fluid steam-water atomization device, through the setting of the clamping ball, while rotating the atomizing nozzle to be threadedly connected with the atomizing main body, the pressing plate is pressed. The pressing plate presses the telescopic column and the spring outside the telescopic column. The pressing plate drives the sliding rod and the piston disc to slide inside the piston chamber, extracting the gas inside the clamping ball. After the threading is completed, the pressing plate is released, and the clamping ball resumes clamping with the clamping groove, reducing the connection looseness caused by improper operation or loose threads, avoiding the uneven spray intensity and atomization effect caused by connection problems, and solving the problem that the threaded connection may become loose during use, and the loose threads may affect the alignment and sealing of the nozzle, resulting in unstable spray effects, such as inconsistent spray intensity and atomization effect.

[0015] 2. For the two-fluid steam-water atomization device, through the setting of the sealing disc, the sealing disc cooperates with the fixed cylinder. While squeezing the telescopic column, the sealing disc slides inside the fixed cylinder. When the sealing disc slides inside the fixed cylinder, it can help stabilize the connection between the atomizing nozzle and the main body, ensuring that the connection part does not become loose during the operation, thereby maintaining the connection stability. Brief Description of the Drawings

[0016] Figure 1 It is a three-dimensional structural schematic diagram of the present utility model.

[0017] Figure 2 It is a sectional structural schematic diagram of the present utility model.

[0018] Figure 3 For the present utility model Figure 2 An enlarged structural schematic diagram at position A.

[0019] Figure 4 It is a sectional structural schematic diagram of the telescopic column of the present utility model.

[0020] In the figure: 110, atomizing main body; 120, atomizing nozzle; 130, mounting block; 131, pressing plate; 132, sliding groove; 133, telescopic column; 134, fixed cylinder; 135, sliding column; 140, spring; 141, fixed rod; 142, sealing disc; 143, piston cavity; 144, sliding rod; 145, piston disc; 150, flow cavity; 151, card slot; 152, engaging ball. Detailed Description of the Embodiments

[0021] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0022] Embodiment 1. The purpose of this embodiment is to facilitate the solution of the problem that threaded connections may become loose during use, and the loosening of the threads may affect the alignment and sealing of the nozzle, resulting in unstable spraying effects, such as inconsistent spraying intensity and atomization effect. Please refer to Figures 1-4 , a two-fluid steam-water atomization device, including an atomizing main body 110 and an atomizing nozzle 120. The atomizing main body 110 is detachably installed at the end of the atomizing main body 110. The inner wall of the atomizing nozzle 120 is provided with a threaded section, and the end of the atomizing main body 110 is provided with a threaded section. The atomizing nozzle 120 is in threaded cooperation with the atomizing main body 110. A mounting block 130 is provided on the side of the atomizing nozzle 120, and a pressing plate 131 is provided inside the mounting block 130.

[0023] A sliding groove 132 is formed inside the mounting block 130. The pressing plate 131 is arranged inside the sliding groove 132. There are two pressing plates 131. A telescopic column 133 is connected between the two pressing plates 131. A piston chamber 143 is communicated and opened at the bottom of the sliding groove 132. A sliding rod 144 is connected to the side of the pressing plate 131. A piston disc 145 is connected to the side of the sliding rod 144. The piston disc 145 is in sliding fit with the piston chamber 143;

[0024] The two pressing plates 131 are connected by a telescopic column 133, so that the pressing plates 131 can evenly apply pressure to the piston disc 145. This uniform pressure transmission helps to ensure that the entire system can operate the piston disc 145 smoothly and consistently during operation. The sliding fit between the piston disc 145 and the piston chamber 143 can ensure good sealing performance. Inside the piston chamber 143, the piston disc 145 can slide tightly, reducing leakage and maintaining the overall sealing effect of the system. The sliding design of the piston disc 145 makes precise control during the operation process simpler. By controlling the movement of the pressing plate 131, the position of the piston disc 145 can be precisely adjusted, thereby achieving precise operation and adjustment. The sliding fit of the piston disc 145 in the piston chamber 143 can reduce friction and wear, making the movement of the device smoother. This not only improves the smoothness of the operation but also extends the service life of the device.

[0025] A flow chamber 150 is communicated and arranged at the bottom of the piston chamber 143. The piston chamber 143 and the flow chamber 150 are formed on the inner wall of the atomizing nozzle 120. A card slot 151 is formed on the side of the atomizing main body 110. A clamping ball 152 is connected to the end of the flow chamber 150. The clamping ball 152 is in sliding clamping fit with the card slot 151.

[0026] In this embodiment: through the arrangement of the clamping ball 152, while the atomizing nozzle 120 is screwed to the atomizing main body 110, the pressing plate 131 is pressed. The pressing plate 131 presses the telescopic column 133 and the spring 140 outside the telescopic column 133. The pressing plate 131 drives the sliding rod 144 and the piston disc 145 to slide inside the piston chamber 143, and the gas inside the clamping ball 152 is pumped out. After the threading is completed, the pressing plate is released, and the clamping ball 152 resumes clamping with the clamping groove, reducing connection looseness caused by improper operation or loose threading, avoiding uneven spray intensity and atomization effect caused by connection problems, and solving the problem that the threaded connection may become loose during use, and the loose threading may affect the alignment and sealing of the nozzle, resulting in unstable spray effects, such as inconsistent spray intensity and atomization effect.

[0027] Embodiment Two. The purpose of this embodiment is to facilitate the solution of the problem that the action is too large when pressing the pressing plate, resulting in loose threading. This embodiment is an improvement made on the basis of Embodiment One. Specifically, please refer toFigures 1-4 A spring 140 is sleeved outside the telescopic column 133. The telescopic column 133 includes a sliding column 135 and a fixed cylinder 134. The sliding column 135 and the fixed cylinder 134 are respectively connected to the sides of two pressing plates 131. The fixed cylinder 134 is sleeved outside the sliding column 135. A fixed rod 141 is connected to the bottom of the sliding column 135, and a sealing disc 142 is connected to the bottom of the fixed rod 141. The sealing disc 142 is in sliding fit with the inner wall of the fixed cylinder 134;

[0028] The sliding fit between the sealing disc 142 and the inner wall of the fixed cylinder 134 can effectively provide a sealing function and reduce the risk of air leakage or liquid leakage. This design ensures that the sealing disc 142 can maintain a good sealing state throughout the operating range of the telescopic column 133. The matching design of the sliding column 135 and the fixed cylinder 134 reduces friction and wear, enabling the sealing disc 142 to move more smoothly during sliding, thereby extending the service life of the device. The outer spring 140 provides additional support force, keeping the sliding column 135 and the fixed cylinder 134 stable during operation. The elastic force of the spring 140 helps reduce vibrations and instabilities generated during operation, ensuring the smooth operation of the telescopic column 133. The elasticity of the spring 140 enables the telescopic column 133 to achieve flexible telescopic movements under the action of the pressing plate 131 while maintaining a certain elastic restoring force. This design allows the device to better adapt to different working conditions and requirements during operation.

[0029] In this embodiment: Through the setting of the sealing disc 142, the sealing disc 142 cooperates with the fixed cylinder 134. While squeezing the telescopic column 133, the sealing disc 142 slides inside the fixed cylinder 134. When the sealing disc 142 slides inside the fixed cylinder 134, it can help stabilize the connection between the atomizing nozzle 120 and the main body, ensuring that the connection part does not become loose during operation, thereby maintaining the stability of the connection.

[0030] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements not only includes those elements, but also includes other elements not explicitly listed, or elements inherent to such process, method, article or device.

[0031] The above are only the preferred embodiments of the present utility model. It should be noted that for those of ordinary skill in the art, without departing from the technical principle of the present utility model, several improvements and refinements can still be made, and these improvements and refinements should also be regarded as the protection scope of the present utility model.

Claims

1. Two-fluid steam-water atomizing device, comprising an atomizing main body (110) and an atomizing nozzle (120), the atomizing nozzle (120) being detachably installed at the end of the atomizing main body (110), characterized in that: The inner wall of the atomizing nozzle (120) is provided with a threaded section, the end of the atomizing body (110) is provided with a threaded section, the atomizing nozzle (120) is in threaded fit with the atomizing body (110), an installation block (130) is arranged on the side of the atomizing nozzle (120), and an extrusion plate (131) is arranged inside the installation block (130).

2. The two-fluid steam-water atomization device according to claim 1, characterized in that: A sliding groove (132) is formed inside the installation block (130), the extrusion plate (131) is arranged inside the sliding groove (132), there are two extrusion plates (131), and a telescopic column (133) is connected between the two extrusion plates (131).

3. The two-fluid steam-water atomizing device according to claim 2, characterized in that: A spring (140) is sleeved outside the telescopic column (133). The telescopic column (133) includes a sliding column (135) and a fixed cylinder (134). The sliding column (135) and the fixed cylinder (134) are respectively connected to the sides of the two extrusion plates (131), and the fixed cylinder (134) is sleeved outside the sliding column (135).

4. The two-fluid steam-water atomization device according to claim 3, wherein: The bottom of the sliding column (135) is connected with a fixed rod (141), the bottom of the fixed rod (141) is connected with a sealing disc (142), and the sealing disc (142) is in sliding fit with the inner wall of the fixed cylinder (134).

5. The two-fluid steam-water atomizing device according to claim 4, characterized in that: A piston chamber (143) is communicated and opened at the bottom of the sliding groove (132). A sliding rod (144) is connected to the side of the extrusion plate (131), and a piston disc (145) is connected to the side of the sliding rod (144). The piston disc (145) is in sliding fit with the piston chamber (143).

6. The two-fluid steam-water atomizing device according to claim 5, characterized in that: A flow chamber (150) is communicated and arranged at the bottom of the piston chamber (143). The piston chamber (143) and the flow chamber (150) are formed on the inner wall of the atomizing nozzle (120).

7. The two-fluid steam-water atomization device according to claim 6, characterized in that: A clamping groove (151) is formed on the side of the atomizing body (110), and a clamping ball (152) is connected to the end of the flow chamber (150).

8. The two-fluid steam-water atomizing device according to claim 7, characterized in that: The clamping ball (152) is in sliding clamping fit with the clamping groove (151).