CN217479075U - Drawer type ozone generator - Google Patents

Drawer type ozone generator Download PDF

Info

Publication number
CN217479075U
CN217479075U CN202221469119.XU CN202221469119U CN217479075U CN 217479075 U CN217479075 U CN 217479075U CN 202221469119 U CN202221469119 U CN 202221469119U CN 217479075 U CN217479075 U CN 217479075U
Authority
CN
China
Prior art keywords
branch
discharge chamber
gas
ozone generator
voltage electrode
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active
Application number
CN202221469119.XU
Other languages
Chinese (zh)
Inventor
郎旺凯
欧阳吉庭
郎赛灵
张聪伟
赵晓飞
樊志强
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Beijing Keshengmei Technology Co ltd
Original Assignee
Beijing Keshengmei Technology Co ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Beijing Keshengmei Technology Co ltd filed Critical Beijing Keshengmei Technology Co ltd
Priority to CN202221469119.XU priority Critical patent/CN217479075U/en
Application granted granted Critical
Publication of CN217479075U publication Critical patent/CN217479075U/en
Active legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • Oxygen, Ozone, And Oxides In General (AREA)

Abstract

The utility model provides a drawer type ozone generator, including the cabinet body, the internal discharge chamber that is equipped with the parallelly connected setting of multiunit mutual interval of cabinet, every group discharge chamber includes a discharge chamber at least, and the cabinet is external to be provided with gas circuit house steward and coolant liquid house steward, and every group discharge chamber disposes gas circuit branch pipe and coolant liquid branch pipe respectively, and gas circuit branch pipe and coolant liquid branch pipe communicate with gas circuit house steward, coolant liquid house steward respectively. The utility model aims at providing a drawer type ozone generator changes the cascade mode of traditional discharge chamber, will assemble into holistic discharge chamber and split into a plurality of little discharge chamber groups to when maintaining certain discharge chamber, also can guarantee that ozone generator's the discharge chamber group that does not damage can operate.

Description

Drawer type ozone generator
Technical Field
The utility model relates to a preparation technical field of ozone, concretely relates to drawer type ozone generator.
Background
Ozone (O) 3 ) Ozone composed of three oxygen atoms is an unstable light blue gas with special pungent smell at normal temperature and normal pressure. Ozone has extremely strong oxidation performance, is soluble in water, can be automatically decomposed into hydrated oxygen in water in a short time, has no secondary pollution, is an ideal green high-grade oxidant, has high-efficiency, quick, environment-friendly and safe effects on deodorization, sterilization, decoloration, organic matter removal and the like, and is widely applied to various industries including but not limited to drinking water, fruit and vegetable cleaning, semiconductor industry, environmental air sterilization, wastewater treatment, pharmacy, food, chemical industry, agriculture, paper making and the like.
Due to the instability of ozone, on-site preparation is generally required in industrial applications. Industrial applicability ozone sources typically employ ozone generators of the gas discharge type. Typical ozone generators generally include tubular ozone generators and plate ozone generators.
At present, the discharge chambers of the plate-type ozone generators in the prior art are combined into a large discharge chamber through simple cascading, when one discharge chamber fails, the operation of the whole plate-type ozone generator needs to be stopped, and then the failed discharge chamber needs to be maintained, so that the operation of the whole plate-type ozone generator is influenced.
SUMMERY OF THE UTILITY MODEL
The utility model aims at providing a drawer type ozone generator changes the cascade mode of traditional discharge chamber, will assemble into holistic discharge chamber and split into a plurality of little discharge chamber groups to when maintaining certain discharge chamber, also can guarantee that ozone generator's the discharge chamber group that does not damage can operate.
In order to accomplish the above object, the utility model provides a drawer type ozone generator, including the cabinet body, the internal discharge chamber that is equipped with the parallelly connected setting of multiunit mutual interval of cabinet, every group discharge chamber includes a discharge chamber at least, and the external gas circuit house steward and the coolant liquid house steward that are provided with of cabinet, and every group discharge chamber disposes gas circuit branch pipe and coolant liquid branch pipe respectively, and gas circuit branch pipe and coolant liquid branch pipe communicate with gas circuit house steward, coolant liquid house steward respectively.
Preferably, the cabinet body is internally divided into a plurality of accommodating spaces through partition plates, and the discharge chamber is fixedly installed on the partition plates.
Preferably, the gas circuit main pipe comprises a gas inlet main pipe and a gas outlet main pipe, the cooling liquid main pipe comprises a liquid inlet main pipe and a liquid outlet main pipe, the gas circuit branch pipes comprise gas inlet branch pipes and gas outlet branch pipes, the cooling liquid branch pipes comprise liquid inlet branch pipes and liquid outlet branch pipes, the gas inlet main pipe is communicated with the gas inlet branch pipes, the gas outlet main pipe is communicated with the gas outlet branch pipes, the liquid inlet main pipe is communicated with the liquid inlet branch pipes, the liquid outlet main pipe is communicated with the liquid outlet branch pipes, and the liquid inlet branch pipes, the liquid outlet branch pipes, the gas inlet branch pipes and the gas outlet branch pipes are all provided with cut-off valves.
Preferably, the discharge chamber includes two board-like telluric electricity field, two ultra-thin medium boards, the sealing washer, high voltage electrode board and high voltage electrode board connecting piece, board-like telluric electricity field's positive side is equipped with the first recess that holds, board-like telluric electricity field's dorsal part is equipped with the second and holds the recess, and the first degree of depth that holds the recess is greater than the second and holds the degree of depth of recess, when two telluric electricity field are laminated each other, the first recess that holds is corresponding to set up with the second holds the recess and forms the third and hold the recess, two ultra-thin medium boards, high voltage electrode board and high voltage electrode board connecting piece pass through the sealing washer and seal in the third holds the recess, high voltage electrode board connecting piece is connected with power module, high voltage electrode board is connected with high voltage electrode board connecting piece.
Preferably, the high-voltage electrode plate is provided with an opening, and the high-voltage electrode plate connecting piece is positioned in the opening.
Further preferably, the high-voltage electrode plate connecting piece is in a diamond shape, and two corresponding diamond corners of the diamond shape are respectively pressed and abutted against two side walls of the opening.
Further preferably, the bottom of the first accommodating groove and the second accommodating groove of the plate-type grounding electrode are arranged at intervals to form convex surfaces and concave surfaces, wherein the convex surfaces are in close contact with the adjacent ultrathin medium plates, and the concave surfaces and the adjacent two convex surfaces of the concave surfaces are in close contact with the adjacent ultrathin medium plates to form a gas cavity which is a discharge space.
Further preferably, the plate-type grounding electrode is provided with an air inlet channel, an air outlet channel, a liquid inlet channel and a liquid outlet channel, the air outlet channel is communicated with the air outlet branch pipe, the air inlet channel is communicated with the air inlet branch pipe, the liquid inlet channel is communicated with the liquid inlet branch pipe, and the liquid outlet channel is communicated with the liquid outlet branch pipe.
The utility model has the advantages that:
the utility model discloses a split into a plurality of parallelly connected little discharge chamber groups that set up with ozone generator's discharge chamber group, after the discharge chamber group local damage, only can lead to the local outage of discharge chamber group like this, and whole ozone generator still can reduce the amount in short-term and use. And maintenance personnel can replace the components (power off the damaged discharge chamber, closing a water-gas pipeline valve, and replacing a discharge chamber module or a power supply module) under the condition that the whole discharge chamber is not stopped, and after the maintenance is finished, the discharge chamber assembly is restored to be normally put into operation again.
Drawings
The present invention will be described in further detail with reference to the accompanying drawings and specific embodiments.
FIG. 1 is a schematic view of the three-dimensional structure of the drawer-type ozone generator of the present invention;
fig. 2 is another angle schematic diagram of the drawer type ozone generator of the present invention;
fig. 3 is a side view of the drawer type ozone generator of the present invention;
FIG. 4 is a sectional view taken along line A-A of FIG. 3;
FIG. 5 is a sectional view taken along line B-B of FIG. 3;
fig. 6 is a schematic structural view of a discharge chamber of the drawer-type ozone generator of the present invention;
fig. 7 is an exploded view of the discharge chamber of the drawer-type ozone generator of the present invention;
fig. 8 is a front view of the discharge chamber of the drawer-type ozone generator of the present invention;
FIG. 9 is a cross-sectional view taken along line D-D of FIG. 8;
FIG. 10 is a cross-sectional view taken along line C-C of FIG. 8;
fig. 11 is an enlarged view of a portion E in fig. 8;
fig. 12 is an enlarged view of portion F in fig. 10;
FIG. 13 is a schematic diagram of a cascade system of the operation system of the drawer-type ozone generator of the utility model;
FIG. 14 is the whole circuit diagram of the operation system of the drawer type ozone generator of the present invention;
fig. 15 is a circuit diagram of the high voltage detection module of the drawer type ozone generator of the present invention;
fig. 16 is a circuit diagram of a control module of the drawer-type ozone generator of the present invention.
Description of the reference numerals
10. A main power supply;
100. a cabinet body; 110. a partition plate; 120. a base plate;
200. a piping system; 201. a liquid inlet main pipe; 202. a liquid outlet main pipe; 203. an intake manifold;
204. a gas outlet header pipe; 211. A liquid inlet branch pipe; 212. a liquid outlet branch pipe;
213. an intake branch pipe; 214. an air outlet branch pipe; 215. a shut-off valve;
300. a discharge chamber; 310. a plate-type ground electrode; 311. an air intake passage; 312. an air outlet channel;
313. a coolant passage; 314. a concave surface; 315. a convex surface; 320. an ultra-thin dielectric slab;
330. a high voltage electrode plate; 340. a seal ring; 350. a high voltage electrode plate connector;
360. a gas chamber; 370. a power supply module;
410. a high voltage detection module; 420. and a control module.
Detailed Description
The technical solution in the embodiment of the present invention is clearly and completely described below with reference to the drawings in the embodiment of the present invention. In the following description, numerous specific details are set forth in order to provide a thorough understanding of the present invention, but the present invention may be implemented in other ways different from the specific details set forth herein, and one skilled in the art may similarly generalize the present invention without departing from the spirit of the present invention, and therefore the present invention is not limited to the specific embodiments disclosed below.
As shown in fig. 1 and fig. 2, the present invention provides a drawer-type ozone generator, which comprises a cabinet 100, wherein two corresponding sides of the cabinet 100 are open, and a cabinet door is disposed on one side of the cabinet. A plurality of accommodating spaces are formed in the cabinet 100 and are separated by a plurality of partition plates 110. The partition 110 may be fixedly installed on the cabinet 100, or may be set in a drawing state, and the drawing state may refer to a drawer arrangement in the prior art, so as to facilitate drawing the partition 110, and facilitate maintenance of the discharge chamber 300 disposed on the partition 110. Wherein, a plurality of groups of discharge chambers 300 are installed on the partition 110 and the bottom plate 120 of the cabinet 100 at intervals, each group of discharge chambers 300 at least includes one discharge chamber 300, preferably, each group of discharge chambers 300 includes 1-3 discharge chambers 300, each group of discharge chambers 300 is arranged in parallel, and the discharge chambers 300 in the same group are arranged in series. As shown in fig. 13, each group of discharge chambers 300 is provided with an independent power module 370, the power modules 370 are connected in parallel, and the power modules 370 are communicated with the main power source 10. In addition, each group of discharge chambers 300 is further configured with an operation state monitoring system, and the operation state monitoring system can identify the operating state of the voltage of the group of discharge chambers 300 and control the opening and closing of the group of discharge chambers 300 according to the operating state of the voltage of the group of discharge chambers 300 (detailed below). A plurality of pipes with different purposes are disposed outside the cabinet 100, including a gas path main pipe and a coolant main pipe (described in detail below), the gas path main pipe is communicated with the discharge chambers 300 through the gas path branch pipes, and the coolant main pipe is communicated with the discharge chambers 300 through the coolant branch pipes. Each discharge chamber 300 is provided with a separate gas path branch pipe and a separate coolant branch pipe (described in detail below), and the gas path branch pipe and the coolant branch pipe are respectively provided with a shut-off valve 215 (shown in fig. 5).
In the present embodiment, by the hierarchical arrangement, a group of discharge cells 300, a gas path branch pipe, a coolant branch pipe, a power supply module 370, and an operation state monitoring system are included in each hierarchy, the voltage of the group of discharge cells 300 is monitored by the operation monitoring system, when the voltage is higher than the normal operation voltage or lower than the normal operation voltage, it indicates that the group of discharge cells 300 has an operation problem, the operation monitoring system cuts off the power line of the power module 370 such that the power module 370 no longer provides power to the set of discharge cells 300, and, at this time, the worker only needs to cut off the gas path branch pipes and the coolant branch pipes of the group of discharge chambers 300, the damaged discharge chamber 300 (i.e. when there is a plurality of discharge chambers 300 in a group, only the damaged single discharge chamber 300 is repaired) is detected for repair, and the other discharge chambers 300 can still work without cutting off the main power supply 10 of the whole ozone generator.
Specifically, in this embodiment, as shown in fig. 1 to fig. 5, the gas path main pipe includes a gas inlet main pipe 203 and a gas outlet main pipe 204, the coolant main pipe includes a liquid inlet main pipe 201 and a liquid outlet main pipe 202, the gas path branch pipes include gas inlet branch pipes 213 and gas outlet branch pipes 214, the coolant branch pipes include liquid inlet branch pipes 211 and liquid outlet branch pipes 212, the gas inlet main pipe 203 is communicated with each gas inlet branch pipe 213, the gas outlet main pipe 204 is communicated with each gas outlet branch pipe 214, the liquid inlet main pipe 201 is communicated with each liquid inlet branch pipe 211, the liquid outlet main pipe 202 is communicated with each liquid outlet branch pipe 212, and the liquid inlet branch pipes 211, the liquid outlet branch pipes 212, the gas inlet branch pipes 213, and the gas outlet branch pipes 214 are all provided with cut-off valves 215. Meanwhile, as shown in fig. 7, the liquid inlet branch pipe 211 is communicated with a liquid inlet channel in the cooling liquid channel 313 on the corresponding discharge chamber 300, the liquid outlet branch pipe 212 is communicated with a liquid outlet channel in the cooling liquid channel 313 on the corresponding discharge chamber 300, the gas inlet branch pipe 213 is communicated with a gas inlet channel 311 on the corresponding discharge chamber 300, and the gas outlet branch pipe 214 is communicated with a gas outlet channel 312 on the corresponding discharge chamber 300. The cooling liquid passage 313 in the plate-type ground electrode 310 of the present embodiment may be designed as a liquid inlet passage or a liquid outlet passage depending on the actual installation situation.
Specifically, in the present embodiment, as shown in fig. 6 to 10, each discharge chamber 300 includes two plate-type ground electrodes 310, two ultra-thin dielectric plates 320, a seal ring 340, a high-voltage electrode plate 330 having a certain thickness, and a high-voltage electrode plate connector 350. The two ultrathin dielectric plates 320, the high-voltage electrode plate 330 and the high-voltage electrode plate connecting piece 350 are sealed between the two plate-type grounding electrodes 310 through the sealing ring 340, the front side of one plate-type grounding electrode 310 is abutted against the back side of the other plate-type grounding electrode 310, the high-voltage electrode plate connecting piece 350 is connected with the power module 370, and the high-voltage electrode plate 330 is connected with the high-voltage electrode plate connecting piece 350. Preferably, in this embodiment, a relatively deep first receiving groove is disposed on the front side of the plate-type grounding electrode 310, a relatively shallow second receiving groove is disposed on the back side of the plate-type grounding electrode 310, after the two plate-type grounding electrodes 310 are attached to each other, the first receiving groove and the second receiving groove are correspondingly disposed, so as to form a third receiving groove, and the two ultra-thin dielectric plates 320, the high-voltage electrode plate 330 and the high-voltage electrode plate connector 350 are mounted in the third receiving groove, and the mounting sequence is that the ultra-thin dielectric plate 320, the high-voltage electrode plate 330 and the other ultra-thin dielectric plate 320, wherein the ultra-thin dielectric plates 320 are respectively connected to the corresponding plate-type grounding electrodes 310 in a contact manner. In addition, when there are a plurality of discharge cells in each group of discharge cells, the first receiving groove or the second receiving groove may not be provided on the outwardly facing side of the discharge cells on both sides of the edge portion, and the operator may set and install the discharge cells according to actual situations.
Preferably, as shown in fig. 8, in the present embodiment, the high voltage electrode plate 330 is provided with an opening, and the high voltage electrode plate connector 350 is located in the opening. The high-voltage electrode plate connector 350 is in a rhombus shape, and two corresponding rhombuses of the rhombus shape are respectively pressed and abutted with two side walls of the opening of the high-voltage electrode plate 330. The embodiment utilizes the metal characteristic of high voltage electrode plate connecting piece 350 itself, makes high voltage electrode plate connecting piece 350 into the rhombus, like this when two diamonds of rhombus contact with two open-ended lateral walls, can produce certain extrusion deformation to make the angle of rhombus enlarge, and then increase high voltage electrode plate connecting piece 350 and high voltage electrode plate 330's area of contact. Meanwhile, the high-voltage electrode plate 330 and the high-voltage electrode plate connector 350 are connected in an extrusion deformation manner, so that the connection between the two is tighter.
In the present embodiment, as shown in fig. 6 to 10, each plate-type ground electrode 310 is provided with a convex surface 315 and a concave surface 314 in the first receiving recess and the second receiving recess, respectively. Thus, after the discharge chamber 300 is assembled, the gas chamber 360 formed between the concave surface of the first receiving recess of one plate-type ground electrode 310 and the two adjacent convex surfaces thereof and the ultra-thin dielectric plate is a discharge space, and the gas chamber 360 formed between the concave surface of the second receiving recess of the back side of the other plate-type ground electrode 310 and the two adjacent convex surfaces thereof and the other ultra-thin dielectric plate support is a discharge space. In the present embodiment, the convex surface 315 is in close contact with the ultra-thin dielectric plate 320, and heat generated by the ultra-thin dielectric plate 320 is conducted to the plate-type ground electrode 310 through the convex surface 315, thereby reducing the internal temperature. In addition, the rubber ring 340 in this embodiment is disposed in the annular groove 316 of the plate ground electrode 310. As shown in fig. 7 and 9, a ring-shaped groove is formed around the outer side of the first receiving groove, and a ring-shaped groove is also formed around the outer side of the second receiving groove, so that when the two plate-type ground electrodes 310 are attached to each other, the two ring-shaped grooves are combined with each other to form the ring-shaped groove 316. Meanwhile, the rubber ring 340 is not in contact with the ultra-thin dielectric plate 320, so that the burning loss of the rubber ring 340 is avoided. In this embodiment, the temperature of the ultra-thin dielectric plate 320 is uniformed by improving the structure, and the high-voltage electrode plate 330 may be, but not limited to, made of a metal material. The gas chamber 360 is used for discharging, so that the phenomenon of edge discharge of the high-voltage electrode plate 330 in the prior art is solved, and electricity is saved. In this embodiment, air or oxygen in the air inlet branch pipe 213 enters the gas chamber 360 through the air inlet channel 311, oxygen in the gas chamber 360 is converted into ozone through electric discharge, the converted ozone enters the air outlet channel 312 from the other end of the gas chamber 360, and then enters the air outlet branch pipe 214 and the air outlet header pipe 204 in sequence through the air outlet channel 312, and then enters the ozone collecting device through the air outlet header pipe 204.
In the present embodiment, please refer to fig. 3, 8 and 13, the operation status monitoring system includes a control module 420 and a high voltage detecting module 410. The control module 420 is used for turning on and off the circuit of the power module 370, and the control module 420 can receive a signal sent by the single chip microcomputer. As shown in fig. 14 and 16, the CTRL0 terminal in fig. 15 is a control output terminal of the single chip, which is connected to the control module circuit in fig. 16. Preferably, in this embodiment, as shown in fig. 16, the control module 420 includes an optical coupling module and a relay connected in series, where the optical coupling module controls the closing of the relay, and the relay is connected to the input end of the power supply module. When the single chip microcomputer receives the signal sent by the high voltage detection module 410, a control signal CTRLi (i is the number of the circuit, for example, CTRL1, that is, circuit No. 1) is sent to the control module 420, and the relay K11 is controlled to be closed by the optocoupler module, so that the power supply module 370 is powered off, and the damaged discharge chamber 300 is in a power-off state. In addition, after the single chip sends out the control signal, the control signal can drive the indicator light (XLED output end in fig. 2) to light up, so that the operator can determine the operation state of the discharge chamber unit 300 according to the display of the indicator light. In addition, a first photoelectric isolation module can also be connected in series in the control module 420, so that the circuit of the whole control module is stable in operation, and the anti-interference performance of the whole control system is improved.
In this embodiment, the high voltage detection module 410 is used to determine whether the voltage in the discharge chamber 300 is normal, and if the high voltage detection module 410 determines that the voltage in the discharge chamber 300 is abnormal, the high voltage detection module 410 sends a signal to the single chip microcomputer. As shown in fig. 14, the CHKi (i is the number of the circuit, for example, CHK1, i.e., circuit No. 1) end of the single chip is connected to the high voltage detection module 410 in fig. 15. Preferably, as shown in fig. 15, the high voltage detection module 410 includes a sampling resistor Ri (i is the number of the circuit, for example, R1, i.e., the sampling resistor R in circuit No. 1), a comparator module, and a second optoelectronic isolation module. As shown in fig. 15, a sampling resistor Ri is connected in series before the discharge chamber Ci is grounded, a voltage across the sampling resistor Ri is transmitted to one end of the comparator module, a set voltage (input by an operator) is preset in the comparator module, the comparator module compares the voltage across the sampling resistor Ri with the set voltage, the comparator module controls the U _ GD of the second photoelectric isolation module to be turned on or off according to a comparison result, if the voltage across the sampling resistor Ri is the same as the set voltage, the U _ GD of the second photoelectric isolation module is controlled to be in an on state, and if the voltage across the sampling resistor Ri is different from the set voltage, the U _ GD of the second photoelectric isolation module is controlled to be turned off. The single chip microcomputer judges the state of the discharge chamber 300 according to the judgment result of the high voltage detection module 410, thereby controlling whether the control module 420 is turned off. If the second photoelectric isolation module is in a conducting state, the single chip microcomputer judges that the discharge chamber 300 works normally, so that the control module is in a conducting state; if the second optoelectronic isolation module is in an off state, the single chip microcomputer determines that the discharge chamber 300 works abnormally, and the single chip microcomputer sends a signal to the control module 420, so that a relay in the control module 420 is turned off, and the discharge chamber module is protected.
In the embodiment, the power module 370, the discharge chamber 300, the high voltage detection module 410, the control module 420 and the like are structurally improved in a modularized manner, so that local control is realized, and the defect that the whole body is damaged locally and tired due to the existing integral binding structure is avoided. In addition, in the huge cascade system of the embodiment, the discharge chamber module of the embodiment is only locally stopped after being locally damaged, and the whole ozone generator system can still be used in a short-time derating way, so that the whole ozone generator system is not totally paralyzed. Maintenance personnel can change each module assembly (the module cuts off the power supply, closes the aqueous vapor pipeline valve, changes discharge chamber module or power module) under the condition of not shutting down the operation, after the maintenance finishes, resumes normal operation of putting into operation again.
In this embodiment, no matter whether the MCU singlechip of MCS51 series or the STM32 embedded MCU singlechip uses assembly language or C language, the control idea is similar. The methods according to the present application are all conveniently implemented.
It is obvious that the described embodiments are only some of the embodiments of the present invention, and not all of them. Based on the embodiments in the present invention, all other embodiments obtained by a person skilled in the art without creative work belong to the protection scope of the present invention.

Claims (8)

1. The drawer-type ozone generator is characterized by comprising a cabinet body, wherein a plurality of groups of discharge chambers which are arranged in parallel at intervals are arranged in the cabinet body, each group of discharge chambers at least comprises one discharge chamber, a gas circuit main pipe and a cooling liquid main pipe are arranged outside the cabinet body, each group of discharge chambers are respectively provided with a gas circuit branch pipe and a cooling liquid branch pipe, and the gas circuit branch pipes and the cooling liquid branch pipes are respectively communicated with the gas circuit main pipe and the cooling liquid main pipe.
2. The drawer-type ozone generator as claimed in claim 1 wherein the cabinet is divided into a plurality of receiving spaces by partitions, and the discharge chamber is fixedly mounted on the partitions.
3. The drawer-type ozone generator of claim 1, wherein the gas circuit main comprises a gas inlet main and a gas outlet main, the coolant main comprises a liquid inlet main and a liquid outlet main, the gas circuit branch comprises a gas inlet branch and a gas outlet branch, the coolant branch comprises a liquid inlet branch and a liquid outlet branch, the gas inlet main is communicated with the gas inlet branch, the gas outlet main is communicated with the gas outlet branch, the liquid inlet main is communicated with the liquid inlet branch, the liquid outlet main is communicated with the liquid outlet branch, and the liquid inlet branch, the liquid outlet branch, the gas inlet branch and the gas outlet branch are all provided with cut-off valves.
4. The drawer-type ozone generator as claimed in claim 3, wherein the discharge chamber comprises two plate-type grounding electrodes, two ultra-thin dielectric plates, a sealing ring, a high voltage electrode plate and a high voltage electrode plate connecting member, the front side of the plate-type grounding electrode is provided with a first accommodating groove, the back side of the plate-type grounding electrode is provided with a second accommodating groove, the depth of the first accommodating groove is greater than that of the second accommodating groove, when the two grounding electrodes are mutually attached, the first accommodating groove and the second accommodating groove are correspondingly arranged to form a third accommodating groove, the two ultrathin dielectric plates, the high-voltage electrode plate and the high-voltage electrode plate connecting piece are sealed in the third accommodating groove through the sealing ring, the high-voltage electrode plate connecting piece is connected with the power module, and the high-voltage electrode plate is connected with the high-voltage electrode plate connecting piece.
5. The drawer-type ozone generator of claim 4, wherein the high voltage electrode plate is provided with an opening, and the high voltage electrode plate connector is located in the opening.
6. The drawer-type ozone generator as claimed in claim 5, wherein the high voltage electrode plate connectors are diamond-shaped, and two corresponding diamonds of the diamond-shape are respectively pressed against two side walls of the opening.
7. The drawer-type ozone generator as claimed in claim 4, wherein the bottom of each of the first receiving recess and the second receiving recess of the plate-type ground electrode is provided with a convex surface and a concave surface at intervals, wherein the convex surfaces are in close contact connection with the adjacent ultra-thin dielectric plates, and a gas chamber enclosed by the concave surfaces and the two adjacent convex surfaces and the ultra-thin dielectric plates adjacent to the concave surfaces is a discharge space.
8. The drawer-type ozone generator as claimed in claim 4 wherein the plate-type grounding electrode is provided with an inlet channel, an outlet channel, an inlet channel and an outlet channel, the outlet channel is communicated with the outlet branch, the inlet channel is communicated with the inlet branch, and the outlet channel is communicated with the outlet branch.
CN202221469119.XU 2022-06-13 2022-06-13 Drawer type ozone generator Active CN217479075U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202221469119.XU CN217479075U (en) 2022-06-13 2022-06-13 Drawer type ozone generator

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202221469119.XU CN217479075U (en) 2022-06-13 2022-06-13 Drawer type ozone generator

Publications (1)

Publication Number Publication Date
CN217479075U true CN217479075U (en) 2022-09-23

Family

ID=83315789

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202221469119.XU Active CN217479075U (en) 2022-06-13 2022-06-13 Drawer type ozone generator

Country Status (1)

Country Link
CN (1) CN217479075U (en)

Similar Documents

Publication Publication Date Title
CN105376997B (en) Control method of positive pressure explosion-proof control cabinet
US11767599B2 (en) Electrochemical devices, modules, and systems for hydrogen generation and methods of operating thereof
CN217479075U (en) Drawer type ozone generator
CN201699472U (en) Dual-power automatic switching circuit and isolating device thereof
CN217458838U (en) Discharge chamber structure of plate-type ozone generator and plate-type ozone generator
CN114890386B (en) Drawer type ozone generator
CN112228387A (en) Ethylene three-machine dry gas seal
CN204421441U (en) A kind of cooling-water machine water inletting monitoring device
CN216714668U (en) Hydrogen diaphragm compressor system
CN105006112A (en) Civil combustible and toxic gas smoke monitoring device
CN219721754U (en) Fire suppression device for energy storage container
CN217479074U (en) Operation system of modularized ozone generator
CN218992380U (en) Double-system control DCSSIS pneumatic cut-off valve
CN213808191U (en) Ethylene three-machine dry gas seal
CN110566460A (en) Power station roots vacuum pump system with high reliability and efficiency
CN218913823U (en) Tee joint device for switching waste gas trend
CN210897497U (en) Container type fuel cell power station
CN220083315U (en) Electric heating boiler with automatic water level adjustment function
CN2426982Y (en) Linkage alarmer for gas combustion water heater
CN215180731U (en) Fuel cell altitude simulation environment cabin
CN217582423U (en) Pump replacement pipeline system without shutdown in integrated circuit manufacturing
CN213177709U (en) Pipeline exhaust emergency valve
CN203553914U (en) Unit running protection device of ion excitation equipment
CN220873100U (en) Smoke early warning device for control cabinet of booster pump station
CN221217724U (en) Ash discharger and anaerobic cracking furnace

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant