A vertical ozone generation chamber

By using positioning components to limit and fix the dielectric tube in a vertical ozone generating chamber, the problem of difficult cleaning of dirt on the outer surface of the dielectric tube is solved, enabling rapid replacement and cleaning of the dielectric tube, and improving discharge efficiency and service life of the dielectric tube.

CN224530624UActive Publication Date: 2026-07-21ZHEJIANG GENESIS ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZHEJIANG GENESIS ENVIRONMENTAL PROTECTION TECH CO LTD
Filing Date
2025-08-23
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

In existing vertical ozone generators, dirt on the outer surface of the dielectric tube is difficult to clean, leading to a decrease in discharge efficiency and making cleaning difficult, which affects the ozone generation efficiency.

Method used

Positioning components are used to limit and fix the dielectric tube, including clamps, sliding blocks, bidirectional threaded rods, compression rings, and retaining plates, to enable quick installation and removal of the dielectric tube, facilitating cleaning and replacement.

Benefits of technology

The design of the positioning components allows for quick disassembly and installation of the dielectric tube, avoiding cleaning dead spots, ensuring uniform electric field distribution, and improving discharge efficiency and the service life of the dielectric tube.

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Abstract

The utility model relates to ozone generation chamber technical field discloses a vertical ozone generation chamber, including vertical cabinet, detachable installation has a plurality of dielectric tube for ozone generation in inner chamber, and the both sides fixed mounting of vertical cabinet has a plurality of heat dissipation equipment for dielectric tube heat dissipation, positioning piece sets up in the inner chamber of vertical cabinet for the dielectric tube of limiting multiple, positioning piece includes horizontal plate, fixed mounting in the inner chamber of vertical cabinet, and the both sides symmetrical fixed mounting of horizontal plate has a plurality of riser, and the one side fixed mounting of riser has the bearing plate for the dielectric tube bearing. In the utility model, through positioning piece can make dielectric tube can be fixed in the inside of vertical cabinet, can make dielectric tube can be taken out from the inside of vertical cabinet simultaneously through the positioning piece removal to the dielectric tube of limiting, prevent the dirt of dielectric tube outer surface to cause dielectric property to drop, make the electric field distribution of dielectric tube even, avoid the influence that causes to dielectric tube's discharge efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of ozone generating chamber technology, and in particular to a vertical ozone generating chamber. Background Technology

[0002] A vertical ozone generator is a device specifically designed to generate ozone. It typically employs a vertical structure design to improve space utilization and ozone generation efficiency.

[0003] Vertical ozone generators typically consist of multiple vertically arranged dielectric tubes, transformers, inverters, and control modules, employing an S-shaped or multi-fold rotating structure to increase the contact time and reaction efficiency between ozone and the treatment medium. During operation, oxygen is converted into ozone through high-voltage electricity or discharge technology. Some units utilize spiral filament metal discharge electrodes or ceramic tube units to improve ozone production and stability. However, after prolonged use, dielectric tubes are prone to accumulating contaminants (such as dust, metal oxides, or oil stains), leading to decreased discharge efficiency and reduced ozone production. Furthermore, in existing technologies, dielectric tubes are generally fixed inside the enclosure by welding, which leads to the accumulation of contaminants on the outer surface of the dielectric tubes. When cleaning or maintaining the equipment, staff need to enter the cabinet with handheld cleaning equipment. Due to the limited space inside the cabinet, in order to save space and install multiple dielectric tubes, the distance between two adjacent dielectric tubes is relatively short. When cleaning the outer wall of the adjacent side of two adjacent dielectric tubes, it is difficult for staff to insert cleaning tools between the two adjacent dielectric tubes. Furthermore, since the adjacent side of two adjacent dielectric tubes cannot be exposed to the cleaning staff's field of vision, there are easy blind spots to cleaning the outside of the dielectric tubes. The dirt remaining on the outer surface of the dielectric tubes will reduce the dielectric performance, cause uneven electric field distribution, and reduce its discharge efficiency. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides a vertical ozone generating chamber, which aims to improve the problems in the prior art.

[0005] To achieve the above objectives, this utility model adopts the following technical solution: a vertical ozone generating chamber, comprising: The cabinet is vertical, with multiple dielectric tubes for ozone generation detachably installed inside the cavity, and multiple heat dissipation devices for heat dissipation of the dielectric tubes are fixedly installed on both sides of the vertical cabinet. Positioning components are installed inside the vertical cabinet to limit the movement of multiple dielectric tubes; Positioning components include: The horizontal plate is fixedly installed in the inner cavity of the vertical cabinet, and multiple vertical plates are symmetrically fixedly installed on both sides of the horizontal plate. A support plate for supporting the dielectric tube is fixedly installed on one side of the vertical plate.

[0006] As a further description of the above technical solution: Each dielectric tube has symmetrical clamping plates on both sides for holding itself, and each of the vertical plates has a sliding groove on one side. Two sliding blocks are symmetrically slidably installed in the inner cavity of each sliding groove. One end of each clamping plate is fixedly connected to one side of each sliding block. A bidirectional threaded rod for moving the sliding block is rotatably installed in the inner cavity of each sliding groove.

[0007] As a further description of the above technical solution: Multiple clamps are bent and made of rubber.

[0008] As a further description of the above technical solution: The positioning components also include extrusion rings and sliding plates. A fixing plate is fixedly installed in the inner cavity of the vertical cabinet. The fixing plate is located above the horizontal plate, and multiple guide tubes are symmetrically fixedly installed on both sides of the fixing plate. Sliding plates are slidably installed in the inner cavities of the multiple guide tubes. U-shaped frames are fixedly installed at the bottom of the multiple sliding plates. Extrusion rings that press against the top of the multiple dielectric tubes are fixedly installed at one end of the multiple U-shaped frames.

[0009] As a further description of the above technical solution: The inner diameter of the compression ring is smaller than the diameter of the dielectric tube.

[0010] As a further description of the above technical solution: Multiple limit strips are mounted on both sides of the multiple slide plates via torsion springs. A locking plate is fixedly mounted on one side of each limit strip. Multiple positioning teeth that engage with the locking plate are symmetrically mounted on both sides of the multiple guide tubes.

[0011] This utility model has the following beneficial effects: In this invention, the positioning component allows the dielectric tube to be fixed inside the vertical cabinet. At the same time, by releasing the limiting position of the dielectric tube by the positioning component, the dielectric tube can be quickly removed from inside the vertical cabinet, which facilitates the replacement of the dielectric tube and the cleaning of dirt on the outer surface. This prevents dirt on the outer surface of the dielectric tube from causing a decrease in dielectric performance, ensures a uniform electric field distribution in the dielectric tube, and avoids affecting the discharge efficiency of the dielectric tube. Attached Figure Description

[0012] Figure 1 This is a perspective view of the present utility model; Figure 2 This is an assembly drawing of the vertical cabinet and dielectric tube of this utility model; Figure 3 This is an assembly drawing of the dielectric tube and clamping plate of this utility model; Figure 4 This is an assembly drawing of the extrusion ring and the slide plate of this utility model; Figure 5 This utility model Figure 3 Enlarged view of the structure at point A in the middle; Figure 6 This utility model Figure 4 Enlarged view of the structure at point B.

[0013] Legend: 1. Vertical cabinet; 2. Dielectric tube; 3. Clamping plate; 4. Support plate; 5. Guide tube; 6. Slide plate; 7. U-shaped frame; 8. Fixing plate; 9. Horizontal plate; 10. Limiting strip; 11. Extrusion ring; 12. Clamping plate; 13. Vertical plate; 14. Two-way threaded rod. Detailed Implementation

[0014] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0015] Reference Figure 1-6 One embodiment of this utility model is a vertical ozone generator, comprising: The vertical cabinet 1 has multiple dielectric tubes 2 for ozone generation that can be detachably installed in its inner cavity. When the multiple dielectric tubes 2 are energized, they can convert the surrounding oxygen into ozone. The generated ozone enters the ozone storage tank through a conduit, thus realizing the generation and storage of ozone (this is existing technology and will not be elaborated on here).

[0016] Multiple heat dissipation devices for cooling the dielectric tubes 2 are fixedly installed on both sides of the vertical cabinet 1. The heat dissipation devices are composed of cooling fans. When the dielectric tubes 2 are energized, they generate a large amount of heat, which causes the internal temperature of the vertical cabinet 1 to rise rapidly. The heat dissipation devices can accelerate the airflow rate inside the vertical cabinet 1 and the rate of air exchange between the inside and outside of the vertical cabinet 1, thereby achieving the purpose of rapid heat dissipation inside the vertical cabinet 1. This allows the multiple dielectric tubes 2 to cool down quickly, preventing the dielectric tubes 2 from being damaged due to excessive operating temperature and improving the service life of the dielectric tubes 2 (this is existing technology and will not be elaborated further here).

[0017] The vertical cabinet 1 has access slots on both sides that are connected to its internal cavity. Each access slot has two cabinet doors installed in its internal cavity via a pivot. The cabinet doors seal the access slots, preventing dust from the outside air from entering the vertical cabinet 1 and causing a large amount of dust to adhere to the outer surface of the dielectric tube 2. At the same time, the cabinet doors prevent foreign objects from colliding with the dielectric tube 2 and the electrical components installed inside the vertical cabinet 1, thus protecting the dielectric tube 2 and electrical components inside the vertical cabinet 1.

[0018] A horizontal plate 9 is fixedly installed in the inner cavity of the vertical cabinet 1, and multiple vertical plates 13 are symmetrically fixedly installed on both sides of the horizontal plate 9. A support plate 4 for supporting the dielectric tube 2 is fixedly installed on one side of the vertical plate 13. Each of the multiple support plates 4 has a receiving groove adapted to the dielectric tube 2 on its top. After the multiple dielectric tubes 2 are installed in the inner cavity of the vertical cabinet 1, the multiple dielectric tubes 2 are symmetrically distributed on both sides of the horizontal plate 9, and the bottom of the multiple dielectric tubes 2 is inserted into the inner cavity of the multiple receiving grooves until the bottom of the multiple dielectric tubes 2 is in contact with the inner wall of the opening end of the receiving groove. The dielectric tubes 2 can be supported by the mutual cooperation of the support plate 4 and the receiving groove.

[0019] When the bottom of the dielectric tube 2 is attached to the inner wall of the receiving groove away from its own opening end, the distance between the outer wall of the dielectric tube 2 and the inner wall of the receiving groove is no more than 1 mm, thereby preventing the central axis of the dielectric tube 2 from being significantly offset from the central axis of the receiving groove, thus limiting the installation position of the dielectric tube 2.

[0020] Each dielectric tube 2 has a clamping plate 3 symmetrically arranged on both sides for clamping itself. Each of the multiple upright plates 13 has a sliding groove on one side. Two sliding blocks are symmetrically slidably installed in the inner cavity of the multiple sliding grooves. One end of each clamping plate 3 is fixedly connected to one side of each sliding block. Each of the multiple sliding grooves has a bidirectional threaded rod 14 rotatably installed in the inner cavity for moving the sliding blocks. Before the bottom of the dielectric tube 2 is inserted into the inner cavity of the receiving groove, the two clamping plates 3 located directly above the bearing plate 4 are positioned on both sides directly above the receiving groove to prevent the clamping plates 3 from affecting the insertion of the dielectric tube 2 into the receiving groove.

[0021] When the bottom of the dielectric tube 2 is inserted into the inner cavity of the receiving groove, the bidirectional threaded rod 14 is continuously rotated, so that the two sliding blocks located outside the same bidirectional threaded rod 14 move closer to each other until the adjacent side of the two adjacent clamping plates 3 is in contact with the outer wall of the dielectric tube 2. This clamps and limits the dielectric tube 2, preventing it from swaying or shaking when in use, and improving the stability of the dielectric tube 2 installation.

[0022] The multiple clamps 3 are all bent, which can increase the contact area between the clamps 3 and the outer wall of the dielectric tube 2, and further improve the stability of the dielectric tube 2.

[0023] Multiple clamps 3 are made of rubber material, which makes the clamps 3 softly connected to the outer wall of the dielectric tube 2, avoiding damage to the dielectric tube 2 when the clamps 3 clamp the outer wall of the dielectric tube 2. At the same time, because the rubber material has good heat resistance, the clamps 3 are not easy to deform when used in high temperature environments for a long time, which can extend the service life of the clamps 3.

[0024] A fixing plate 8 is fixedly installed in the inner cavity of the vertical cabinet 1. The fixing plate 8 is located above the horizontal plate 9, and multiple guide tubes 5 are symmetrically fixedly installed on both sides of the fixing plate 8. Slide plates 6 are slidably installed in the inner cavity of each of the multiple guide tubes 5. U-shaped frames 7 are fixedly installed at the bottom of each of the multiple slide plates 6. A compression ring 11 is fixedly installed at one end of each of the multiple U-shaped frames 7 to press the top of multiple dielectric tubes 2. The inner diameter of the compression ring 11 is smaller than the diameter of the dielectric tube 2. The multiple compression rings 11 are located directly above the multiple support plates 4. When the multiple dielectric tubes 2 are clamped by the clamping plate 3, the multiple dielectric tubes 2 are located directly below the multiple compression rings 11. Then, the slide plate 6 is pulled down until the bottom of the compression ring 11 and the top of the dielectric tube 2 are in contact. The top of the dielectric tube 2 can be squeezed by the compression ring 11, thereby further limiting the dielectric tube 2 under the action of the compression ring 11.

[0025] Multiple limit strips 10 are rotatably mounted on both sides of multiple slide plates 6 via torsion springs. A rotating shaft is fixedly mounted on both sides of the limit strip 10. The outer wall of the slide plate 6 has a groove that matches the rotating shaft. At the same time, a torsion spring that connects to the inner wall of the groove is fixedly sleeved on the outer wall of the rotating shaft.

[0026] A locking plate 12 is fixedly installed on one side of each of the multiple limiting strips 10. Multiple positioning teeth that engage with the locking plate 12 are symmetrically installed on both sides of the multiple guide tubes 5. The end of the locking plate 12 away from the limiting strip 10 is inclined. Under the action of the torsion spring, the locking plate 12 continuously moves closer to the positioning teeth, so that the inclined end of the locking plate 12 can engage between two adjacent positioning teeth. The position of the locking plate 12 can be limited by the positioning teeth. When the slide plate 6 moves down along the guide tube 5, the inclined side wall of the locking plate 12 contacts and disengages from the inclined side wall of the positioning teeth. When the bottom of the compression ring 11 is attached to the top of the dielectric tube 2, the inclined end of the locking plate 12 is located between two adjacent positioning teeth. That is, the locking plate 12 is positioned by the positioning teeth to prevent the bottom of the compression ring 11 from disengaging from the top of the dielectric tube 2.

[0027] When replacing the dielectric tube 2 or cleaning its outer surface, first press the two adjacent limiting strips 10 to disengage the clamping plate 12 from the positioning teeth. Then, continuously push the slide plate 6 upwards. After the slide plate 6 has moved a certain distance, release the pressure on the limiting strips 10, allowing the clamping plate 12 to engage with the positioning teeth again, thus limiting the movement of the slide plate 6. Then, reverse the bidirectional threaded rod 14 to disengage the two adjacent clamping plates 3 from the outer wall of the dielectric tube 2 until the distance between the two adjacent clamping plates 3 is greater than the diameter of the dielectric tube 2. Finally, lift the dielectric tube 2 so that its bottom is completely free from the confinement. The dielectric tube 2 is detached from the inside of the tank and then removed from directly above the support plate 4. This allows for the disassembly of the dielectric tube 2, facilitating the replacement of any damaged tubes. Simultaneously, removing the dielectric tube 2 from the vertical cabinet 1 allows for the cleaning of its outer surface. Cleaning the outer surface of the dielectric tube 2 ensures it is fully exposed to the cleaning personnel, preventing blind spots during cleaning and ensuring that dirt on the outer surface does not degrade its dielectric properties. This also ensures a uniform electric field distribution within the dielectric tube 2, preventing any impact on its discharge efficiency.

[0028] The bearing plate 4, clamping plate 3, bidirectional threaded rod 14, compression ring 11, clamping plate 12 and positioning teeth constitute the positioning component. The positioning component can fix the dielectric tube 2 inside the vertical cabinet 1. At the same time, the positioning component can release the restriction on the dielectric tube 2, so that the dielectric tube 2 can be quickly taken out from inside the vertical cabinet 1, which is convenient for replacing the dielectric tube 2 and cleaning dirt on the external surface.

[0029] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A vertical ozone generator, characterized in that: include The vertical cabinet (1) has multiple dielectric tubes (2) for ozone generation that can be detachably installed in its inner cavity, and multiple heat dissipation devices for heat dissipation of the dielectric tubes (2) are fixedly installed on both sides of the vertical cabinet (1). Positioning components are installed in the inner cavity of the vertical cabinet (1) to limit the movement of multiple dielectric tubes (2); The positioning element includes: A horizontal plate (9) is fixedly installed in the inner cavity of the vertical cabinet (1), and multiple vertical plates (13) are symmetrically fixedly installed on both sides of the horizontal plate (9). A support plate (4) for supporting the dielectric tube (2) is fixedly installed on one side of the vertical plate (13).

2. A vertical ozone generator according to claim 1, characterized in that: Each of the dielectric tubes (2) has a clamping plate (3) symmetrically arranged on both sides for clamping itself. Each of the vertical plates (13) has a sliding groove on one side. Two sliding blocks are symmetrically slidably installed in the inner cavity of the sliding groove. One end of each clamping plate (3) is fixedly connected to one side of each sliding block. Each of the sliding grooves has a bidirectional threaded rod (14) rotatably installed in the inner cavity for moving the sliding block.

3. A vertical ozone generator according to claim 2, characterized in that: Multiple clamps (3) are bent and are made of rubber.

4. A vertical ozone generator according to claim 1, characterized in that: The positioning component also includes a compression ring (11) and a sliding plate (6). A fixing plate (8) is fixedly installed in the inner cavity of the vertical cabinet (1). The fixing plate (8) is located above the horizontal plate (9), and multiple guide tubes (5) are symmetrically fixedly installed on both sides of the fixing plate (8). Sliding plates (6) are slidably installed in the inner cavities of the multiple guide tubes (5). U-shaped frames (7) are fixedly installed at the bottom of the multiple sliding plates (6). A compression ring (11) that presses against the top of the multiple dielectric tubes (2) is fixedly installed at one end of the multiple U-shaped frames (7).

5. A vertical ozone generator according to claim 4, characterized in that: The inner diameter of the extrusion ring (11) is smaller than the diameter of the dielectric tube (2).

6. A vertical ozone generating chamber according to claim 4, characterized in that: Multiple limit strips (10) are installed on both sides of multiple slide plates (6) by torsion springs. A clamping plate (12) is fixedly installed on one side of each of the multiple limit strips (10). Multiple positioning teeth that engage with the clamping plate (12) are symmetrically installed on both sides of multiple guide tubes (5).