Electrode installation module for gas particulate matter purification device and gas particulate matter purification device
By employing hollow tube electrodes of different diameters and conductive mounting components in the gas particulate matter purification device, the problems of electrode assembly accuracy and complex wiring were solved, achieving synchronous electrode conduction and efficient purification effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI BIXIUFU ENTERPRISE MANAGEMENT CO LTD
- Filing Date
- 2025-04-23
- Publication Date
- 2026-05-19
AI Technical Summary
In the existing technology, the electrode assembly precision of gas particulate matter purification devices is difficult to control, resulting in frequent sparking, poor particulate matter removal rate and purification effect. At the same time, the independent connection of electrodes leads to complex wiring and uneven contact resistance.
Hollow tubes of different diameters are used as the first and second electrodes, which are coaxially mounted and staggered. The electrodes are fixed and connected by conductive mounting parts and fixing brackets. The conductive sheet is used to connect to the power supply, which simplifies the synchronous conduction and precision control of the electrodes.
It enables simultaneous conduction of multiple electrodes, improves electrode assembly accuracy, simplifies wiring structure, increases particulate matter removal rate and purification efficiency, and reduces energy consumption.
Smart Images

Figure CN224253077U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electric field technology, specifically to an electrode mounting module for a gas particulate matter purification device and a gas particulate matter purification device. Background Technology
[0002] As people become increasingly environmentally conscious, their understanding of and demand for purification of air pollutants (including but not limited to smoke, dust, VOCs, and engine exhaust) are constantly rising. Consequently, more and better purification technologies are being installed and used in vehicles, factories, and homes. Among these technologies, electrostatic precipitator technology is widely used. The principle of electrostatic precipitator technology is that gas is ionized when it passes through an electrostatic field. Particulate matter in the gas combines with charged ions and tends to move towards the electrode with the opposite polarity of the charged ions, thus depositing. Therefore, the particulate matter removal rate is related to the charge efficiency of the particulate matter. The core electrostatic field is mostly composed of an adsorption plate and a cathode wire (second electrode) set in the adsorption plate. Therefore, the technology of the adsorption plate and the second electrode has become key to improving the particulate matter removal rate.
[0003] The existing technology still has the problem of difficulty in controlling the assembly accuracy of the second electrode and the first electrode. This not only results in high manufacturing costs, but also in the problem of arcing due to the low assembly accuracy of the second electrode and the first electrode, as well as poor particulate matter removal rate and purification effect.
[0004] Current technologies still suffer from the problem of difficulty in controlling the assembly precision of the second electrode and the first electrode. This not only leads to high manufacturing costs but also causes arcing due to inaccurate assembly, as well as poor particulate matter removal rates and purification effects. Furthermore, existing electric field purification devices typically require independent power supply connections for their electrodes, resulting in complex wiring and uneven contact resistance. There is an urgent need for a simplified structure that ensures synchronous conduction of all electrodes. Summary of the Invention
[0005] The purpose of this invention is to provide an electrode mounting module and a gas particulate matter purification device for use in a gas particulate matter purification device, so as to solve the problems existing in the prior art.
[0006] To address the aforementioned problems, according to a first aspect of this utility model, an electrode mounting module for a gas particulate matter purification device is provided. The gas particulate matter purification device includes a first electrode and a second electrode, which form an electric field for particulate matter adsorption. Both the first and second electrodes are hollow tubes of different diameters, coaxially mounted and staggered sequentially from the axis outwards. The electrode mounting module is used to fix and / or conduct the first and / or second electrodes. The electrode mounting module includes an electrode mounting assembly, wherein...
[0007] The electrode mounting assembly includes multiple conductive mounting components, each including an insulating body. At least one conductive mounting component further includes a conductive sheet disposed within the insulating body. The insulating body has an electrode mounting groove and an electrode clearance groove spaced apart on its inner side for mounting the first electrode or the second electrode, and the insulating body has a conductive sheet mounting groove for mounting the conductive sheet.
[0008] The first electrode is disposed within the electrode mounting groove and the second electrode is disposed within the electrode clearance groove, or the second electrode is disposed within the electrode mounting groove and the first electrode is disposed within the electrode clearance groove.
[0009] The conductive sheet has a conductive groove on its inner side, and at least a portion of the conductive groove is disposed in the electrode mounting groove of the corresponding conductive mounting component to contact the first electrode or the second electrode.
[0010] Furthermore, in the electrode mounting module provided by this utility model, the outer side of the conductive sheet is provided with a port for electrical connection with a power source.
[0011] Furthermore, in the electrode mounting module provided by this utility model, the electrode mounting assembly includes a fixing frame, and a plurality of conductive mounting components are arranged circumferentially around the fixing frame in a radial pattern.
[0012] Furthermore, the electrode mounting module provided by this utility model includes two electrode mounting components respectively disposed at both ends of the first electrode and the second electrode, namely a first electrode mounting component and a second electrode mounting component. The first electrode mounting component includes a first conductive mounting element, and the second electrode mounting component includes a second conductive mounting element.
[0013] The first conductive mounting component fixes and conducts the first electrode, the first electrode is placed in the conductive groove of the electrode mounting groove of the first conductive mounting component and contacts the inner wall of the conductive groove, and the second electrode is placed in the electrode clearance groove of the first conductive mounting component.
[0014] The second conductive mounting component fixes and conducts the second electrode. The second electrode is placed in the conductive groove of the electrode mounting groove of the second conductive mounting component and contacts the inner wall of the conductive groove. The first electrode is placed in the electrode clearance groove of the second conductive mounting component.
[0015] Furthermore, in the electrode mounting module provided by this utility model, the first electrode mounting assembly further includes a third conductive mounting member, and the second electrode mounting assembly further includes a fourth conductive mounting member. The third conductive mounting member fixes the second electrode, the second electrode is placed in the electrode mounting groove of the third conductive mounting member, and the first electrode is placed in the electrode clearance groove of the third conductive mounting member.
[0016] The first electrode is fixed by the fourth conductive mounting component, the first electrode is placed in the electrode mounting groove of the fourth conductive mounting component, and the second electrode is placed in the electrode clearance groove of the fourth conductive mounting component.
[0017] Furthermore, in the electrode mounting module provided by this utility model, the first electrode mounting assembly further includes a fifth conductive mounting member, and the second electrode mounting assembly further includes a sixth conductive mounting member.
[0018] The first electrode is fixed in place by the fifth conductive mounting component, the first electrode is placed in the electrode mounting groove of the fifth conductive mounting component, and the second electrode is placed in the electrode clearance groove of the fifth conductive mounting component.
[0019] The sixth conductive mounting component fixes the second electrode, the second electrode is placed in the electrode mounting groove of the sixth conductive mounting component, and the first electrode is placed in the electrode clearance groove of the sixth conductive mounting component.
[0020] Furthermore, the electrode mounting module provided by this utility model includes an electrode mounting assembly (third electrode mounting assembly) disposed at one end of the first electrode and the second electrode. The electrode mounting assembly (third electrode mounting assembly) includes a seventh conductive mounting member and an eighth conductive mounting member.
[0021] The seventh conductive mounting component is used to fix and conduct the first electrode. The first electrode is placed in the conductive groove of the seventh conductive mounting component and contacts the inner wall of the conductive groove. The second electrode is placed in the electrode clearance groove of the seventh conductive mounting component.
[0022] The eighth conductive mounting component is used to fix and conduct the second electrode. The second electrode is placed in the conductive groove of the eighth conductive mounting component and contacts the inner wall of the conductive groove. The first electrode is placed in the electrode clearance groove of the eighth conductive mounting component.
[0023] Furthermore, in the electrode mounting module provided by this utility model, the first electrode mounting component, the third conductive mounting component, the fifth conductive mounting component, and the third conductive mounting component on the first electrode mounting assembly are sequentially and spaced apart around the perimeter of the fixing frame. The electrode mounting groove on each electrode mounting component corresponds to the electrode clearance groove on its adjacent electrode mounting component, that is, the electrode mounting groove on each electrode mounting component and the electrode clearance groove on its adjacent electrode mounting component are located on the same circumference. The electrode clearance groove on each electrode mounting component corresponds to the electrode mounting groove on its adjacent electrode mounting component, that is, the electrode clearance groove on each electrode mounting component and the electrode mounting groove on its adjacent electrode mounting component are located on the same circumference.
[0024] Furthermore, in the electrode mounting module provided by this utility model, the second electrode mounting component, the fourth conductive mounting component, the sixth conductive mounting component, and the fourth conductive mounting component on the second electrode mounting assembly are sequentially and spaced apart around the perimeter of the fixing frame. The electrode mounting groove on each electrode mounting component corresponds to the electrode clearance groove on its adjacent electrode mounting component. That is, the electrode mounting groove on each electrode mounting component and the electrode clearance groove on its adjacent electrode mounting component are arranged on the same circumference.
[0025] Furthermore, in the electrode mounting module provided by this utility model, the first electrode mounting component, the third conductive mounting component, the fifth conductive mounting component, and the third conductive mounting component are arranged sequentially at intervals on the first electrode mounting assembly. The electrode mounting groove on each electrode mounting component is correspondingly arranged with the electrode clearance groove on its adjacent electrode mounting component, and the electrode clearance groove on each electrode mounting component is correspondingly arranged with the electrode mounting groove on its adjacent electrode mounting component.
[0026] Preferably, the first electrode mounting assembly further includes a fixing frame, and the first electrode mounting component, the third conductive mounting component, the fifth conductive mounting component, and the third conductive mounting component are arranged circumferentially around the fixing frame in a radial pattern at intervals.
[0027] Furthermore, in the electrode mounting module provided by this utility model, the second electrode mounting component, the fourth conductive mounting component, the sixth conductive mounting component, and the fourth conductive mounting component are arranged sequentially at intervals on the second electrode mounting assembly. The electrode mounting groove on each electrode mounting component is correspondingly arranged with the electrode clearance groove on its adjacent electrode mounting component, and the electrode clearance groove on each electrode mounting component is correspondingly arranged with the electrode mounting groove on its adjacent electrode mounting component.
[0028] Preferably, the second electrode mounting assembly further includes a fixing frame, and the second electrode mounting component, the fourth conductive mounting component, the sixth conductive mounting component, and the fourth conductive mounting component are arranged circumferentially around the fixing frame in a radial pattern at intervals.
[0029] Furthermore, in the electrode mounting module provided by this utility model, the fixing frame is a cylinder with one end open.
[0030] Furthermore, in the electrode mounting module provided by this utility model, the conductive groove is a Y-shaped structure and includes a first V-shaped opening and a first groove channel. The first V-shaped opening is disposed on the side of the conductive sheet, and the first V-shaped opening extends into the interior of the conductive sheet to form the first groove channel. The first electrode or the second electrode is inserted into the first groove channel through the first V-shaped opening and contacts the inner wall of the first groove channel.
[0031] Furthermore, in the electrode mounting module provided by this utility model, the bottom of the electrode mounting groove is provided with a conductive opening, and the conductive groove of the conductive sheet passes through the conductive opening to enter the electrode mounting groove. That is, the inner wall of the conductive groove contacts the first electrode or the second electrode through the conductive opening.
[0032] Furthermore, in the electrode mounting module provided by this utility model, the electrode mounting groove has a Y-shaped structure and includes a second V-shaped opening and a second groove channel. The second V-shaped opening is disposed on the side of the insulating body, and the second V-shaped opening extends into the interior of the insulating body to form the second groove channel. The bottom of the second groove channel is provided with a conductive opening.
[0033] In a second aspect, the present invention provides a gas particulate matter purification device, the gas particulate matter purification device comprising a first electrode, a second electrode and the aforementioned electrode mounting module, wherein an electric field for particulate matter adsorption is formed between the first electrode and the second electrode.
[0034] Furthermore, the gas particulate matter purification device includes at least two first electrodes and at least two second electrodes, with multiple first electrodes and multiple second electrodes arranged in parallel and staggered, wherein a gas flow channel is formed between the second electrodes and the first electrodes to allow the gas to pass through and to perform the electric field treatment, and the distance between adjacent second electrodes and first electrodes is the same.
[0035] Furthermore, the first electrode and the second electrode are both hollow tubes with different diameters. The first electrode and the second electrode are coaxially mounted and staggered from the center outwards. The distance between adjacent first electrodes and second electrodes is the same, and a gas flow channel is formed between the first electrode and the second electrode to allow the gas to pass through for electric field treatment.
[0036] Furthermore, the cross-section of the hollow tube is circular or polygonal.
[0037] Furthermore, the polygon is a hexagon or a rectangle.
[0038] The beneficial effects of this utility model are as follows:
[0039] The electrode mounting module provided by this utility model is used to fix and / or electrically connect the first electrode and the second electrode of the gas particulate matter purification device. It can enable multiple first electrodes or multiple second electrodes to be connected to the power supply at the same time, and can improve the accuracy of the same distance between the two electrodes, thereby improving the efficiency of the gas particulate matter purification device in adsorbing particulate matter. Attached Figure Description
[0040] Figure 1 This is a schematic diagram of the assembly of an electrode mounting module with a first electrode and a second electrode according to Embodiment 1 of this utility model;
[0041] Figure 2 This is a schematic diagram of the assembly of an electrode mounting assembly with a first electrode and a second electrode according to Embodiment 1 of this utility model;
[0042] Figure 3 This is a schematic diagram of the assembly of another electrode mounting assembly with the first electrode and the second electrode according to Embodiment 1 of this utility model, wherein the conductive sheet has been removed;
[0043] Figure 4 This is a schematic diagram of an electrode mounting assembly according to Embodiment 1 of this utility model;
[0044] Figure 5 This is a schematic diagram of a conductive sheet according to Embodiment 1 of this utility model;
[0045] Figure 6 This is a first-view schematic diagram of an electrode mounting assembly according to Embodiment 1 of this utility model, wherein the conductive sheet has been removed;
[0046] Figure 7 This is a second-view schematic diagram of an electrode mounting assembly according to Embodiment 1 of this utility model, wherein the conductive sheet has been removed;
[0047] Figure 8 This is a schematic diagram of an embodiment 1 of the present utility model, wherein the outermost second electrode has been removed;
[0048] Figure 9 This is a schematic diagram of the assembly of an electrode mounting module with a first electrode and a second electrode according to Embodiment 3 of this utility model, wherein the outermost first electrode has been removed;
[0049] Figure 10 This is a schematic diagram of the assembly of an electrode mounting assembly with a first electrode and a second electrode according to Embodiment 3 of this utility model;
[0050] Figure 11 This is a schematic diagram of the assembly of another electrode mounting component with the first electrode and the second electrode according to Embodiment 3 of this utility model. Detailed Implementation
[0051] The preferred embodiments of the present invention will be described in detail below with reference to the accompanying drawings, so as to better understand the purpose, features and advantages of the present invention. It should be understood that the embodiments shown in the drawings are not intended to limit the scope of the present invention, but are only for illustrating the essential spirit of the technical solution of the present invention.
[0052] In the following description, certain specific details are set forth for the purpose of illustrating various disclosed embodiments in order to provide a thorough understanding of the various disclosed embodiments. However, those skilled in the art will recognize that embodiments may be practiced without one or more of these specific details. In other instances, well-known apparatuses, structures, and techniques associated with this application may not have been shown or described in detail to avoid unnecessarily obscuring the description of the embodiments.
[0053] Throughout this specification, references to "an embodiment" or "an embodiment" indicate that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment. Therefore, the appearance of "in an embodiment" or "an embodiment" in various places throughout the specification does not necessarily refer to the same embodiment. Furthermore, a particular feature, structure, or characteristic may be combined in any manner in one or more embodiments.
[0054] In the following description, in order to clearly demonstrate the structure and working method of this utility model, a number of directional terms will be used. However, terms such as "front", "back", "left", "right", "outside", "inside", "outward", "inward", "up", and "down" should be understood as convenient terms and not as limiting terms.
[0055] Furthermore, terms such as "horizontal," "vertical," and "sag" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal relative to "vertical," and does not mean that the structure must be completely horizontal, but can be slightly tilted.
[0056] In the description of this application, it should also be noted that, unless otherwise expressly specified and limited, the terms "set up," "install," "connect," and "link" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0057] Example 1
[0058] The first embodiment of this utility model provides an electrode mounting module, such as... Figure 1 As shown, the electrode mounting module is used to fix and / or electrically connect the two electrodes of the gas particulate matter purification device. The gas particulate matter purification device includes a first electrode 10 and a second electrode 20. The first electrode 10 and the second electrode 20 form an electric field for particulate matter adsorption. The electrode mounting module is used to fix and / or connect the first electrode 10 and / or the second electrode 20.
[0059] like Figures 1-7 As shown, the electrode mounting module includes an electrode mounting assembly 100, which includes three conductive mounting members 101. Each conductive mounting member 101 includes an insulating body 111. At least one conductive mounting member 101 also includes a conductive sheet 112 disposed within the insulating body 111. The insulating body 111 has an electrode mounting groove 1110 for mounting a first electrode 10 or a second electrode 20 on its inner side, and a conductive sheet mounting groove 1111 for mounting the conductive sheet 112 within the insulating body 111. The conductive sheet 112 has a conductive groove 1120 on its inner side. At least a portion of the conductive groove 1120 is disposed within the electrode mounting groove 1110 to contact the first electrode 10 or the second electrode 20 for electrical connection or conduction.
[0060] It should be noted that in this utility model, the side of the insulating body closest to the first electrode and / or the second electrode is the inner side, and the other side is the outer side; the side of the conductive sheet closest to the first electrode and / or the second electrode is the inner side, and the other side is the outer side.
[0061] Continue to refer to Figures 1-2 and Figures 4-7 The electrode mounting assembly 100 also includes an electrode clearance groove 113, which is located inside the insulating body 111 and spaced apart from the electrode mounting groove 1110. That is, the electrode clearance groove 113 is located between adjacent electrode mounting grooves 1110. When the first electrode 10 is located in the electrode mounting groove 1110, the second electrode 20 is located in the electrode clearance groove 113. When the second electrode 20 is located in the electrode mounting groove 1110, the first electrode 10 is located in the electrode clearance groove 113.
[0062] The outer side of the conductive sheet 112 has a port 1121 for electrical connection with a power source.
[0063] The electrode mounting assembly 100 includes a mounting frame 114, and three conductive mounting members 101 are circumferentially arranged in a radial pattern around the mounting frame 114. The three conductive mounting members 101 have identical structures. It will be understood by those skilled in the art that the structures of the conductive mounting members may differ in other embodiments. One end of each conductive mounting member 101 is fixed to the mounting frame 114, and the other end is fixed to the outermost first electrode or the outermost second electrode. The end of the outermost first electrode or the outermost second electrode extends to form an extension portion, and the other end of the conductive mounting member 101 is fixed to the inner wall of the extension portion of the outermost first electrode or the outermost second electrode.
[0064] In one embodiment of this utility model, the fixing frame 114 is a cylinder with at least one end closed, and the one end of the fixing frame is closed to prevent gas from entering the innermost electrode. The innermost electrode is either the first electrode or the second electrode.
[0065] like Figures 1-2 and Figures 4-7 The conductive groove 1120 has a Y-shaped structure and includes a first V-shaped opening 11201 and a first groove channel 11202. The first V-shaped opening 11201 is disposed on the side of the conductive sheet 112 and extends into the interior of the conductive sheet 112 to form the first groove channel 11202. The first electrode 10 or the second electrode 20 is inserted into the first groove channel 11202 through the first V-shaped opening 11201 for electrical connection.
[0066] The bottom of the electrode mounting groove 1110 is provided with a conductive opening 11101, and the inner wall of the conductive groove 1110 contacts the first electrode 10 or the second electrode 20 through the conductive opening 11101.
[0067] The electrode mounting groove 1110 has a Y-shaped structure and includes a second V-shaped opening 11102 and a second groove channel 11103. The second V-shaped opening 11102 is located on the side of the insulating body 111 and extends into the interior of the insulating body 111 to form the second groove channel 11103. The bottom of the second groove channel 11103 is provided with a conductive opening 11101.
[0068] In this embodiment, the gas particulate matter purification device includes two first electrodes 10 and two second electrodes 20. The first electrodes 10 and the second electrodes 20 are both circular tubes with different diameters. The first electrodes 10 and the second electrodes 20 are coaxially mounted and are arranged alternately from the center to the outer periphery. From the inside to the outside, they are named as first electrode 10, second electrode 20, first electrode 10, and second electrode 20. The distance between the second electrode 20 and the first electrode 10 is the same. A gas flow channel is formed between the second electrode 20 and the first electrode 10 to allow the gas to pass through for electric field treatment.
[0069] In another embodiment of this utility model, the first electrode 10 and the second electrode 20 can both be hollow tubes with different diameters and hexagonal or rectangular cross sections.
[0070] In this embodiment, the fixing bracket is disposed at the end of the innermost first electrode or the second electrode to prevent gas from entering the interior of the innermost electrode.
[0071] In this embodiment, refer to Figure 8 The electrode mounting module 1000 includes two electrode mounting assemblies: a first electrode mounting assembly and a second electrode mounting assembly; the first electrode mounting assembly is as follows: Figures 1-2 and Figures 4-7 The electrode mounting assembly 100 shown is disposed at one end of the first electrode 10 and the second electrode 20, and the second electrode mounting assembly 100' is disposed at the other end of the first electrode 10 and the second electrode 20, as shown in the figure. Figure 3 As shown.
[0072] Reference Figures 1-8 The first electrode mounting assembly includes a first conductive mounting component, namely conductive mounting component 101, and the second electrode mounting assembly 100' includes a second conductive mounting component.
[0073] In this embodiment, the first electrode mounting assembly and the first conductive mounting member are used to fix and conduct the first electrode 10. The first electrode 10 is placed in the conductive groove 1120 of the electrode mounting assembly 100 and in contact with the conductive groove 1120. The second electrode 20 is placed in the electrode clearance groove 113 of the electrode mounting assembly 100. The first electrode mounting assembly has two conductive grooves 1120 and one electrode clearance groove 113. Two first electrodes 10 are respectively installed in the two conductive grooves 1120, and one second electrode 20 is installed in the electrode clearance groove 113. The outermost second electrode 20 is fixed to the end of the conductive mounting member. The second electrode mounting assembly 100' and the second conductive mounting member are used to fix and conduct the second electrode 20. The second electrode 20 is placed in the conductive groove and in contact with the conductive groove, and the first electrode 10 is placed in the electrode clearance groove. In this case, at least one conductive mounting element of the first electrode mounting assembly, such as a conductive sheet of the first conductive mounting element, is electrically connected to one pole of the power supply, such as the negative pole, through a port. That is, the conductive sheet is connected to the power supply through the port. In this way, the two first electrodes 10 are equivalent to being simultaneously connected to the power supply, and the two first electrodes 10 carry the same negative potential. At least one conductive mounting element of the second electrode mounting assembly, such as a conductive sheet of the second conductive mounting element, is electrically connected to one pole of the power supply, such as the positive pole, through a port. The two second electrodes 20 are connected to the power supply, and the two second electrodes 20 carry the same positive potential.
[0074] It should be noted that in this utility model, the electrical connection or electrical conduction or electrical connection can be that the conductive sheet is in contact with the first electrode or the second electrode. When the conductive sheet is electrically connected to one pole of the power supply through the port, the conductive sheet conducts electricity with the first electrode or the second electrode, and the potentials of the two are the same, which is equivalent to the first electrode or the second electrode being electrically connected to one pole of the power supply.
[0075] In this invention, conduction includes electrically connecting the first electrode to one pole of the power supply through the electrode mounting module. When there are multiple first electrodes, it also includes electrically connecting multiple first electrodes to one pole of the power supply simultaneously through the electrode mounting module, that is, conducting simultaneously.
[0076] It should be noted that in the embodiments of this utility model, the insulating body and the fixing frame of the conductive mounting component are both made of insulating material.
[0077] In this invention, the gas particulate matter purification device includes multiple first electrodes and multiple second electrodes. The same conductive plate on the conductive mounting component includes multiple conductive grooves, connecting the multiple first electrodes into a single unit. When a power source is connected, the multiple first electrodes have the same potential. Similarly, the same conductive plate connects the multiple second electrodes into a single unit, also ensuring that the multiple second electrodes have the same potential when a power source is connected. This design ensures that multiple first electrodes or multiple second electrodes are energized simultaneously. The circuit connected to the power source is easy to design and install, simplifying the overall product structure, saving costs, and reducing energy consumption.
[0078] Meanwhile, in this utility model, when the gas particulate matter purification device includes multiple first electrodes and multiple second electrodes, and the multiple first electrodes and multiple second electrodes are arranged in parallel and staggered, in this embodiment, the circular first electrodes and second electrodes are coaxially mounted and arranged in a staggered manner from the axis to the outer periphery. Electrode clearance grooves are provided at intervals on the same conductive mounting component. This means that, taking the example of all first electrodes being set in conductive grooves and all second electrodes being set in electrode clearance grooves, since the conductive sheet does not extend into the electrode clearance groove, when the conductive mounting component energizes all first electrodes through the conductive sheet and the power supply, the second electrodes will not be energized, ensuring that all first electrodes in contact with the conductive sheet are energized simultaneously.
[0079] It should be noted that the shape and size of the electrode clearance groove can be the same as the electrode mounting groove. The first electrode or the second electrode is installed in the electrode clearance groove. The inner wall of the electrode clearance groove can be at a certain distance from the first electrode or the second electrode (that is, not in contact), or it can be in contact with the first electrode or the second electrode. In both cases, the electrode clearance groove can play a certain role in fixing the first electrode or the second electrode.
[0080] In this invention, the first electrode can be connected to the positive terminal of the power supply, serving as the adsorption electrode of the electrostatic precipitator electric field, and the second electrode can be connected to the negative terminal of the power supply, serving as the discharge electrode of the electrostatic precipitator electric field. Conversely, the first electrode can be connected to the negative terminal of the power supply, serving as the discharge electrode of the electrostatic precipitator electric field, and the second electrode can be connected to the positive terminal of the power supply, serving as the adsorption electrode of the electrostatic precipitator electric field. Alternatively, the first electrode can be connected to the negative terminal of the power supply, serving as the adsorption electrode of the electrostatic precipitator electric field, and the second electrode can be connected to the positive terminal of the power supply, serving as the discharge electrode of the electrostatic precipitator electric field.
[0081] In this invention, the electric field formed between the second electrode 20 and the first electrode 10 performs electric field adsorption treatment on the flowing gas. Charged particles in the gas are adsorbed on the adsorption electrode. The particles include, but are not limited to, pollutants such as viruses, bacteria, and radiation-containing aerosols. After electric field treatment, particles and aerosols containing viruses, bacteria, and radiation are removed from the gas, resulting in sterile, radiation-free, and virus-free clean gas, thus achieving the effect of purifying the gas.
[0082] The gas particle purification device provided by this utility model can efficiently adsorb nano-sized particles, including viruses and bacteria segments ranging from tens to hundreds of nanometers.
[0083] Example 2
[0084] The second embodiment of this utility model provides another electrode mounting module 2000. Based on the electrode mounting module 1000 provided in embodiment 1, the first electrode mounting assembly further includes a third conductive mounting member, and the second electrode mounting assembly further includes a fourth conductive mounting member. The third conductive mounting member fixes the second electrode, which is placed in the electrode mounting groove of the third conductive mounting member, and the first electrode is placed in the electrode clearance groove of the third conductive mounting member. The fourth conductive mounting member fixes the first electrode, which is placed in the electrode mounting groove of the fourth conductive mounting member, and the second electrode is placed in the electrode clearance groove of the fourth conductive mounting member.
[0085] The electrode mounting module provided in this embodiment further fixes the first electrode and the second electrode, which can further improve the accuracy of the same distance between the two electrodes and further improve the efficiency of the gas particulate matter purification device in adsorbing particulate matter.
[0086] Example 3
[0087] The third embodiment of this utility model provides another electrode mounting module 3000. As shown in 9, based on the electrode mounting module 2000 provided in embodiment 2, the first electrode mounting assembly further includes a fifth conductive mounting component, and the second electrode mounting assembly includes a sixth conductive mounting component.
[0088] In this embodiment, the electrode mounting module and electrode mounting assembly are the same as those described above, and will not be repeated here. This embodiment only describes the differences. (Refer to...) Figures 10-11 In this embodiment, there is a certain distance between the inner wall of the electrode clearance groove 313 and the first electrode or the second electrode. Compared with embodiment 1, the electrode clearance groove 313 in this embodiment extends further into the interior of the insulating body to form a larger gap.
[0089] In this embodiment, Figures 9-11 The conductive sheet mounting grooves on the first conductive mounting component 311 and the second conductive mounting component 322 are shown. The conductive sheet inside the conductive sheet mounting groove is not shown. The structure of the conductive sheet can be referred to in Embodiment 1.
[0090] The electrode mounting module 3000 provided in this embodiment includes two electrode mounting components, namely a first electrode mounting component 301 and a second electrode mounting component 302; the first electrode mounting component 301 is disposed at one end of the first electrode 10 and the second electrode 20, and the second electrode mounting component 302 is disposed at the other end of the first electrode 10 and the second electrode 20.
[0091] The first electrode mounting assembly 301 includes a first conductive mounting component 311, a third conductive mounting component 331, and a fifth conductive mounting component 351, wherein...
[0092] The first conductive mounting component 311 is used to fix and conduct the first electrode 10. The first electrode 10 is placed in the conductive groove of the first conductive mounting component 311 and contacts the inner wall of the conductive groove. The second electrode 20 is placed in the electrode clearance groove of the first conductive mounting component 311.
[0093] The third conductive mounting component 331 is used to fix the second electrode 20. The second electrode 20 is placed in the electrode mounting groove of the third conductive mounting component 331, and the first electrode 10 is placed in the electrode clearance groove of the third conductive mounting component 331. There is no conductive sheet in the electrode mounting groove of the third conductive mounting component 331, which only serves to fix the second electrode.
[0094] The fifth conductive mounting component 351 is used to fix the first electrode 10. The first electrode 10 is placed in the electrode mounting groove of the fifth conductive mounting component 351, and the second electrode 20 is placed in the electrode clearance groove of the fifth conductive mounting component 351. There is no conductive sheet in the electrode mounting groove of the fifth conductive mounting component 351, which only serves to fix the first electrode.
[0095] like Figures 9-11 As shown, the second electrode mounting assembly 302 includes a second conductive mounting member 322, a fourth conductive mounting member 342, and a sixth conductive mounting member 362. The second conductive mounting member 322 fixes and conducts the second electrode 20. The second electrode 20 is placed in the conductive groove of the electrode mounting groove of the second conductive mounting member 322 and contacts the conductive sheet. The first electrode 10 is placed in the electrode clearance groove of the second conductive mounting member 322.
[0096] The fourth conductive mounting component 342 fixes the first electrode 10, which is placed in the electrode mounting groove of the fourth conductive mounting component 342. The second electrode 20 is placed in the electrode clearance groove of the fourth conductive mounting component 342. There is no conductive sheet in the electrode mounting groove of the fourth conductive mounting component 342; it only serves to fix the first electrode.
[0097] The sixth conductive mounting component 362 fixes the second electrode 20, which is placed in the electrode mounting groove of the sixth conductive mounting component 362. The first electrode 10 is placed in the electrode clearance groove of the sixth conductive mounting component 362. There is no conductive sheet in the electrode mounting groove of the sixth conductive mounting component 362; it only serves to fix the second electrode.
[0098] This embodiment also provides a gas particulate matter purification device including the above-mentioned electrode mounting module 3000, and further including a plurality of first electrodes and a plurality of second electrodes. The plurality of first electrodes and the plurality of second electrodes are arranged in parallel and staggered, wherein a gas flow channel is formed between the second electrodes and the first electrodes to allow gas to pass through and to perform electric field treatment, and the distance between adjacent second electrodes and the first electrodes is the same.
[0099] The first conductive mounting member 311 of the first electrode mounting assembly 301 includes an electrode mounting groove and a conductive groove, the same number as the first electrode, and an electrode clearance groove, the same number as the second electrode; the third conductive mounting member 331 includes an electrode mounting groove, the same number as the second electrode, and an electrode clearance groove, the same number as the first electrode; the fifth conductive mounting member 351 includes an electrode mounting groove, the same number as the first electrode, and an electrode clearance groove, the same number as the second electrode.
[0100] The second conductive mounting member 322 of the second electrode mounting assembly 302 includes an electrode mounting groove and a conductive groove in the same number as the second electrode, and an electrode clearance groove in the same number as the first electrode; the fourth conductive mounting member 342 includes an electrode mounting groove in the same number as the first electrode, and an electrode clearance groove in the same number as the second electrode; the sixth conductive mounting member 362 includes an electrode mounting groove in the same number as the second electrode, and an electrode clearance groove in the same number as the first electrode.
[0101] In this embodiment, there are seven first electrodes 10 and seven second electrodes 20.
[0102] In this embodiment, as Figure 10 As shown, on the first electrode mounting assembly 301, the first electrode mounting component 311, the third conductive mounting component 331, the fifth conductive mounting component 351, and the third conductive mounting component 331 are sequentially and spaced around the fixing frame 214. The electrode mounting groove on each electrode mounting component is correspondingly arranged with the electrode clearance groove on its adjacent electrode mounting component. That is, the electrode mounting groove on each electrode mounting component and the electrode clearance groove on its adjacent electrode mounting component are arranged on the same circumference. The electrode clearance groove on each electrode mounting component and the electrode mounting groove on its adjacent electrode mounting component are correspondingly arranged with the electrode mounting groove on its adjacent electrode mounting component. That is, the electrode clearance groove on each electrode mounting component and the electrode mounting groove on its adjacent electrode mounting component are arranged on the same circumference.
[0103] In this embodiment, as Figure 11 As shown, on the second electrode mounting assembly 302, the second conductive mounting member 322, the fourth conductive mounting member 342, the sixth conductive mounting member 362, and the fourth conductive mounting member 342 are sequentially spaced around the fixing frame 214'. The electrode mounting groove on each electrode mounting member corresponds to the electrode clearance groove on its adjacent electrode mounting member, that is, the electrode mounting groove on each electrode mounting member and the electrode clearance groove on its adjacent electrode mounting member are located on the same circumference; the electrode clearance groove on each electrode mounting member corresponds to the electrode mounting groove on its adjacent electrode mounting member, that is, the electrode clearance groove on each electrode mounting member and the electrode mounting groove on its adjacent electrode mounting member are located on the same circumference.
[0104] The electrode mounting module provided in this embodiment further fixes the first electrode and the second electrode, which can further improve the accuracy of the same distance between the two electrodes and further improve the efficiency of the gas particulate matter purification device in adsorbing particulate matter.
[0105] The preferred embodiments of this utility model have been described in detail above. However, it should be understood that after reading the above teachings, those skilled in the art can make various alterations or modifications to this utility model. These equivalent forms also fall within the scope defined by the appended claims.
Claims
1. An electrode mounting module for a gas particulate matter purification device, the gas particulate matter purification device comprising a first electrode and a second electrode, the first electrode and the second electrode forming an electric field for particulate matter adsorption, the first electrode and the second electrode being hollow tubes of different diameters, the first electrode and the second electrode being coaxially mounted and sequentially staggered from the axis outwards, the electrode mounting module for the gas particulate matter purification device being used to fix and / or conduct the first electrode and / or the second electrode, characterized in that, The electrode mounting module includes electrode mounting components, wherein... The electrode mounting assembly includes multiple conductive mounting components. Each conductive mounting component includes an insulating body. The inner side of the insulating body is provided with an electrode mounting groove and an electrode clearance groove for mounting the first electrode or the second electrode. The first electrode is disposed in the electrode mounting groove and the second electrode is disposed in the electrode clearance groove, or the second electrode is disposed in the electrode mounting groove and the first electrode is disposed in the electrode clearance groove. At least one of the conductive mounting components includes a conductive sheet disposed within the insulating body, wherein a conductive groove is formed on the inner side of the conductive sheet, and at least a portion of the conductive groove is disposed within a corresponding electrode mounting groove to contact the first electrode or the second electrode.
2. The electrode mounting module according to claim 1, characterized in that, The electrode mounting module includes a first electrode mounting assembly and a second electrode mounting assembly respectively disposed at both ends of the first electrode and the second electrode. The first electrode mounting assembly includes a first conductive mounting component, and the second electrode mounting assembly includes a second conductive mounting component. The first conductive mounting component fixes and conducts the first electrode. The first electrode is placed in the conductive groove of the electrode mounting groove of the first conductive mounting component and contacts the inner wall of the conductive groove. The second electrode is placed in the electrode clearance groove of the first conductive mounting component. The second conductive mounting component fixes and conducts the second electrode. The second electrode is placed in the conductive groove of the electrode mounting groove of the second conductive mounting component and contacts the inner wall of the conductive groove. The first electrode is placed in the electrode clearance groove of the second conductive mounting component.
3. The electrode mounting module according to claim 2, characterized in that, The first electrode mounting assembly further includes a third conductive mounting member, and the second electrode mounting assembly further includes a fourth conductive mounting member, wherein... The third conductive mounting component fixes the second electrode, the second electrode is placed in the electrode mounting groove of the third conductive mounting component, and the first electrode is placed in the electrode clearance groove of the third conductive mounting component. The fourth conductive mounting component fixes the first electrode, the first electrode is placed in the electrode mounting groove of the fourth conductive mounting component, and the second electrode is placed in the electrode clearance groove of the fourth conductive mounting component.
4. The electrode mounting module according to claim 3, characterized in that, The first electrode mounting assembly further includes a fifth conductive mounting member, and the second electrode mounting assembly further includes a sixth conductive mounting member, wherein... The fifth conductive mounting component fixes the first electrode, the first electrode is placed in the electrode mounting groove of the fifth conductive mounting component, and the second electrode is placed in the electrode clearance groove of the fifth conductive mounting component. The sixth conductive mounting component fixes the second electrode, the second electrode is placed in the electrode mounting groove of the sixth conductive mounting component, and the first electrode is placed in the electrode clearance groove of the sixth conductive mounting component.
5. The electrode mounting module according to claim 4, characterized in that, The first electrode mounting component, the third conductive mounting component, the fifth conductive mounting component, and the third conductive mounting component are arranged sequentially at intervals on the first electrode mounting assembly. The electrode mounting groove on each electrode mounting component is correspondingly arranged with the electrode clearance groove on its adjacent electrode mounting component, and the electrode clearance groove on each electrode mounting component is correspondingly arranged with the electrode mounting groove on its adjacent electrode mounting component.
6. The electrode mounting module according to claim 5, characterized in that, The first electrode mounting assembly further includes a fixing frame, and the first electrode mounting component, the third conductive mounting component, the fifth conductive mounting component, and the third conductive mounting component are arranged circumferentially around the fixing frame in a radial pattern at intervals.
7. The electrode mounting module according to claim 4, characterized in that, The second electrode mounting component, the fourth conductive mounting component, the sixth conductive mounting component, and the fourth conductive mounting component are arranged sequentially at intervals on the second electrode mounting assembly. The electrode mounting groove on each electrode mounting component is correspondingly arranged with the electrode clearance groove on its adjacent electrode mounting component.
8. The electrode mounting module according to claim 7, characterized in that, The second electrode mounting assembly further includes a fixing frame, and the second electrode mounting component, the fourth conductive mounting component, the sixth conductive mounting component, and the fourth conductive mounting component are arranged circumferentially around the fixing frame in a radial pattern at intervals.
9. The electrode mounting module according to claim 1, characterized in that, The electrode mounting module includes a third electrode mounting assembly disposed at one end of the first electrode and the second electrode. The third electrode mounting assembly includes a seventh conductive mounting component and an eighth conductive mounting component. The seventh conductive mounting component is used to fix and conduct the first electrode. The first electrode is placed in the conductive groove of the seventh conductive mounting component and contacts the inner wall of the conductive groove. The second electrode is placed in the electrode clearance groove of the seventh conductive mounting component. The eighth conductive mounting component is used to fix and conduct the second electrode. The second electrode is placed in the conductive groove of the eighth conductive mounting component and contacts the inner wall of the conductive groove. The first electrode is placed in the electrode clearance groove of the eighth conductive mounting component.
10. The electrode mounting module according to claim 1, characterized in that, The conductive groove has a Y-shaped structure, including a first V-shaped opening and a first groove channel. The first V-shaped opening is disposed on the side of the conductive sheet, and the first V-shaped opening extends into the interior of the conductive sheet to form the first groove channel. The first electrode or the second electrode is inserted into the first groove channel through the first V-shaped opening and contacts the inner wall of the first groove channel.
11. The electrode mounting module according to claim 1, characterized in that, The bottom of the electrode mounting groove is provided with a conductive opening, and the conductive groove of the conductive sheet passes through the conductive opening into the electrode mounting groove in at least part.
12. The electrode mounting module according to claim 11, characterized in that, The electrode mounting groove has a Y-shaped structure, including a second V-shaped opening and a second groove channel. The second V-shaped opening is located on the side of the insulating body and extends into the interior of the insulating body to form the second groove channel. The conductive opening is provided at the bottom of the second groove channel.
13. A gas particulate matter purification device, characterized in that, The gas particulate matter purification device includes a first electrode, a second electrode, and an electrode mounting module as described in any one of claims 1 to 12, wherein an electric field for particulate matter adsorption is formed between the first electrode and the second electrode.