Conductive mounting module and gas particulate matter purification device

By employing an electrode structure with interlaced hollow tubes of different diameters and a conductive mounting module, the problems of electrode assembly accuracy and connection complexity were solved, achieving efficient particulate matter purification and synchronous electrode conduction, while reducing costs and energy consumption.

CN120827962APending Publication Date: 2025-10-24SHANGHAI BIXIUFU ENTERPRISE MANAGEMENT CO LTD
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Patent Information

Application Number
CN202510517272.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Priority Date
2024-04-23
Filing Date
2025-04-23
Publication Date
2025-10-24

AI Technical Summary

Technical Problem

In the existing technology, it is difficult to control the assembly precision of the second electrode and the first electrode, resulting in high manufacturing costs, arcing, poor particulate matter removal rate and purification effect. At the same time, the electrodes need to be independently connected to the power supply, which leads to complex wiring and uneven contact resistance.

Method used

Hollow tubes of different diameters are used as the first and second electrodes, which are coaxially mounted and staggered. They are fixed and connected by a conductive mounting module. The conductive mounting parts and the fixing frame are used to realize the synchronous conduction of multiple electrodes, which simplifies the structure and improves the electrode assembly accuracy.

Benefits of technology

This technology enables simultaneous conduction of multiple electrodes, improving the particulate matter removal rate and purification efficiency of the gas particulate matter purification device, simplifying electrode connections, and reducing manufacturing costs and energy consumption.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a conductive installation module and a gas particulate matter purification device.An electrode installation assembly comprises a plurality of conductive installation parts, each conductive installation part comprises an insulation body, at least one conductive installation part further comprises a conductive sheet arranged in the insulation body, and the conductive sheets are arranged in the insulation bodies. The inner side of the insulating body is provided with an electrode mounting groove and an electrode avoiding groove which are used for mounting the first electrode or the second electrode at intervals, and the insulating body is internally provided with a conducting strip mounting groove for mounting the conducting strip; the first electrode is arranged in the electrode mounting groove and the second electrode is arranged in the electrode avoiding groove, or the second electrode is arranged in the electrode mounting groove and the first electrode is arranged in the electrode avoiding groove, a conductive groove is formed in the inner side of the conductive sheet, and the conductive sheet is arranged in the conductive groove. And at least one part of the conductive groove is arranged in the electrode mounting groove of the corresponding conductive mounting piece so as to be in contact with the first electrode or the second electrode.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of electric field, in particular to a conductive installation module and a gas particulate matter purification device. BACKGROUND

[0002] As people's environmental awareness is increasing, the awareness and purification demand of pollutants in the air gas (including but not limited to flue gas, dust, VOCs and engine exhaust) are also increasing. Therefore, more and better purification technologies are gradually installed and used in vehicles, factories and home environments. Among these purification technologies, electrostatic dust adsorption technology has a very popular application. The principle of electrostatic dust adsorption technology is that the gas is ionized when passing through the electric field, and the particulate matter in the gas combines with the charged ions, and then moves to the electrode with opposite polarity to the charged ions and deposits. Therefore, the particulate removal rate is related to the charging efficiency of the particulate matter. The core of the electric field is mostly composed of an adsorption plate and a cathode wire (second electrode) arranged in the adsorption plate. Therefore, the technology of the adsorption plate and the second electrode is the key to improving the particulate removal rate.

[0003] In the prior art, there is still a problem that the assembly precision of the second electrode and the first electrode is difficult to control, not only the manufacturing cost is high, but also there is a technical problem that the sparking phenomenon occurs due to the low assembly precision of the second electrode and the first electrode, and the particulate removal rate and the purification effect are not good.

[0004] In the prior art, there is still a problem that the assembly precision of the second electrode and the first electrode is difficult to control, not only the manufacturing cost is high, but also there is a technical problem that the sparking phenomenon occurs due to the low assembly precision of the second electrode and the first electrode, and the particulate removal rate and the purification effect are not good. At the same time, the electrodes of the existing electric field purification device usually need to be independently connected to the power supply, which leads to complex wiring and uneven contact resistance. There is an urgent need for a scheme to simplify the structure and ensure that all electrodes are synchronously turned on. SUMMARY

[0005] The purpose of the present application is to provide a conductive installation module and a gas particulate matter purification device to solve the above-mentioned problems in the prior art.

[0006] In order to solve the above-mentioned problems, according to the first aspect of the present application, a kind of electrode installation module for gas particulate matter purification device, the gas particulate matter purification device includes first electrode and second electrode, the first electrode and the second electrode form the electric field for particulate adsorption, the first electrode and the second electrode are hollow tubes with different diameters, the first electrode and the second electrode are coaxially sleeved and are staggered in turn from the axial center to the outer periphery, the electrode installation module is used to fix and / or turn on the first electrode and / or the second electrode, the electrode installation module includes electrode installation component, wherein,

[0007] The electrode mounting assembly comprises a plurality of conductive mounting pieces, each of which comprises an insulating body, and at least one of the conductive mounting pieces further comprises a conductive sheet arranged in the insulating body, wherein an inner side of the insulating body is provided with an electrode mounting groove and an electrode avoiding groove for mounting the first electrode or the second electrode, and the insulating body is provided with a conductive sheet mounting groove for mounting the conductive sheet,

[0008] The first electrode is arranged in the electrode mounting groove and the second electrode is arranged in the electrode avoiding groove, or the second electrode is arranged in the electrode mounting groove and the first electrode is arranged in the electrode avoiding groove.

[0009] An inner side of the conductive sheet is provided with a conductive groove, at least a part of the conductive groove is arranged in the electrode mounting groove of the corresponding conductive mounting piece to contact the first electrode or the second electrode.

[0010] Further, the electrode mounting module provided by the present application is provided, wherein an outer side of the conductive sheet is provided with a port for electrically connecting with a power supply.

[0011] Further, the electrode mounting module provided by the present application is provided, wherein the electrode mounting assembly comprises a fixing frame, and a plurality of the conductive mounting pieces are arranged in a radial shape around the periphery of the fixing frame.

[0012] Further, the electrode mounting module provided by the present application is provided, wherein the electrode mounting module comprises two electrode mounting assemblies arranged at two ends of the first electrode and the second electrode respectively, which are a first electrode mounting assembly and a second electrode mounting assembly respectively, the first electrode mounting assembly comprises a first conductive mounting piece, and the second electrode mounting assembly comprises a second conductive mounting piece, wherein

[0013] The first conductive mounting piece fixes and conducts the first electrode, the first electrode is arranged in the conductive groove of the electrode mounting groove of the first conductive mounting piece to contact the inner wall of the conductive groove, and the second electrode is arranged in the electrode avoiding groove of the first conductive mounting piece.

[0014] The second conductive mounting piece fixes and conducts the second electrode, the second electrode is arranged in the conductive groove of the electrode mounting groove of the second conductive mounting piece to contact the inner wall of the conductive groove, and the first electrode is arranged in the electrode avoiding groove of the second conductive mounting piece.

[0015] Furthermore, the present invention provides an electrode mounting module, wherein 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 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 avoidance groove of the third conductive mounting member;

[0016] The fourth conductive mounting member fixes the first electrode, the first electrode is placed in the electrode mounting groove of the fourth conductive mounting member, and the second electrode is placed in the electrode avoiding groove of the fourth conductive mounting member.

[0017] Furthermore, the present invention provides an electrode mounting module, wherein 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

[0018] The fifth conductive mounting member fixes the first electrode, the first electrode is placed in the electrode mounting groove of the fifth conductive mounting member, and the second electrode is placed in the electrode avoidance groove of the fifth conductive mounting member.

[0019] The sixth conductive mounting member fixes the second electrode, the second electrode is placed in the electrode mounting groove of the sixth conductive mounting member, and the first electrode is placed in the electrode avoiding groove of the sixth conductive mounting member.

[0020] Furthermore, the present invention provides an electrode mounting module, wherein the electrode mounting module includes an electrode mounting assembly provided at one end of the first electrode and the second electrode, the electrode mounting assembly includes a seventh conductive mounting member and an eighth conductive mounting member, wherein

[0021] The seventh electrode mounting member is used to fix and conduct the first electrode, the first electrode is placed in the conductive groove of the seventh conductive mounting member and contacts the inner wall of the conductive groove, and the second electrode is placed in the electrode avoidance groove of the seventh conductive mounting member;

[0022] The eighth electrode mounting member is used to fix and conduct the second electrode. The second electrode is placed in the conductive groove of the eighth conductive mounting member and contacts the inner wall of the conductive groove. The first electrode is placed in the electrode avoidance groove of the eighth conductive mounting member.

[0023] Further, the electrode mounting module provided by the present application, wherein the first electrode mounting component, the third electrode mounting component, the fifth electrode mounting component and the third electrode mounting component are sequentially and spacedly arranged around the fixed frame, the electrode mounting slot on each electrode mounting component is correspondingly arranged with the electrode avoiding slot on the adjacent electrode mounting component, that is, the electrode mounting slot on each electrode mounting component and the electrode avoiding slot on the adjacent electrode mounting component are arranged on the same circumference; the electrode avoiding slot on each electrode mounting component is correspondingly arranged with the electrode mounting slot on the adjacent electrode mounting component, that is, the electrode avoiding slot on each electrode mounting component and the electrode mounting slot on the adjacent electrode mounting component are arranged on the same circumference.

[0024] Further, the electrode mounting module provided by the present application, wherein the second electrode mounting component, the fourth electrode mounting component, the sixth electrode mounting component and the fourth electrode mounting component are sequentially and spacedly arranged around the fixed frame, the electrode mounting slot on each electrode mounting component is correspondingly arranged with the electrode avoiding slot on the adjacent electrode mounting component, that is, the electrode mounting slot on each electrode mounting component and the electrode avoiding slot on the adjacent electrode mounting component are arranged on the same circumference; the electrode avoiding slot on each electrode mounting component is correspondingly arranged with the electrode mounting slot on the adjacent electrode mounting component, that is, the electrode avoiding slot on each electrode mounting component and the electrode mounting slot on the adjacent electrode mounting component are arranged on the same circumference.

[0025] Further, the electrode mounting module provided by the present application, wherein the first electrode mounting component, the third electrode mounting component, the fifth electrode mounting component and the third electrode mounting component are sequentially and spacedly arranged, the electrode mounting slot on each electrode mounting component is correspondingly arranged with the electrode avoiding slot on the adjacent electrode mounting component, and the electrode avoiding slot on each electrode mounting component is correspondingly arranged with the electrode mounting slot on the adjacent electrode mounting component.

[0026] Preferably, the first electrode mounting component further comprises a fixed frame, and the first electrode mounting component, the third electrode mounting component, the fifth electrode mounting component and the third electrode mounting component are sequentially and spacedly arranged around the fixed frame in a radial manner.

[0027] Further, the electrode mounting module provided by the present application, wherein the second electrode mounting component, the fourth electrode mounting component, the sixth electrode mounting component and the fourth electrode mounting component are sequentially and spacedly arranged, the electrode mounting slot on each electrode mounting component is correspondingly arranged with the electrode avoiding slot on the adjacent electrode mounting component, and the electrode avoiding slot on each electrode mounting component is correspondingly arranged with the electrode mounting slot on the adjacent electrode mounting component.

[0028] Preferably, the second electrode mounting assembly further comprises a fixing frame, and the second electrode mounting member, the fourth electrode mounting member, the sixth electrode mounting member and the fourth electrode mounting member are arranged in a radial manner around the fixing frame.

[0029] Further, the electrode mounting module provided by the present application has the fixing frame in an open-ended cylindrical structure.

[0030] Further, the electrode mounting module provided by the present application has the conductive groove in a Y-shaped structure and comprising a first V-shaped opening and a first groove channel, the first V-shaped opening is arranged at the side of the conductive sheet, the first V-shaped opening extends to the inside of the conductive sheet to form the first groove channel, and the first electrode or the second electrode is inserted into the first groove channel through the first V-shaped opening to contact the inner wall of the first groove channel.

[0031] Further, the electrode mounting module provided by the present application has the bottom of the electrode mounting groove provided with a conductive opening, and the conductive groove of the conductive sheet at least partially passes through the conductive opening into 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] Further, the electrode mounting module provided by the present application has the electrode mounting groove in a Y-shaped structure and comprising a second V-shaped opening and a second groove channel, the second V-shaped opening is arranged at the side of the insulating body, the second V-shaped opening extends to the inside of the insulating body to form the second groove channel, and the bottom of the second groove channel is provided with a conductive opening.

[0033] In the second aspect, the present application provides a gas particulate purification device, which comprises a first electrode, a second electrode and the electrode mounting module, and an electric field for particulate adsorption is formed between the first electrode and the second electrode.

[0034] Further, the gas particulate purification device comprises at least two first electrodes and at least two second electrodes, and a plurality of the first electrodes and a plurality of the second electrodes are arranged in parallel and staggered, wherein a gas flow channel for the gas to pass through and be subjected to the electric field treatment is formed between the second electrode and the first electrode, and the distance between the adjacent second electrode and the first electrode is the same.

[0035] Further, the first electrode and the second electrode are hollow tubes with different diameters, the first electrode and the second electrode are coaxially sleeved and arranged in a staggered manner from the axis to the outer periphery, the distance between the adjacent first electrode and the second electrode is the same, and a gas flow channel for the gas to pass through and be subjected to the electric field treatment is formed between the first electrode and the second electrode.

[0036] Further, the hollow tube has a circular or polygonal cross section.

[0037] Further, the polygon is a hexagon or a rectangle.

[0038] The present application has the following advantages:

[0039] The electrode mounting module provided by the present application is used for fixing and / or electrically connecting the first electrode and the second electrode of the gas particulate purification device, so that multiple first electrodes or multiple second electrodes can be simultaneously connected to the power supply, the accuracy of the distance between the two electrodes can be improved, and the efficiency of the gas particulate purification device in adsorbing particulate matters can be improved. BRIEF DESCRIPTION OF DRAWINGS

[0040] Figure 1 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0041] Figure 2 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0042] Figure 3 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0043] Figure 4 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0044] Figure 5 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0045] Figure 6 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0046] Figure 7 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0047] Figure 8 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0048] Figure 9 FIG. 1 is an assembly diagram of an electrode mounting module and a first electrode and a second electrode according to an embodiment of the present application;

[0049] Figure 10is an assembly view of another electrode mounting assembly according to Embodiment 3 of the present application.

[0050] Figure 11 is an assembly view of another electrode mounting assembly according to Embodiment 3 of the present application. DETAILED DESCRIPTION

[0051] The preferred embodiments of the present application will be described herein below with reference to the accompanying drawings, in order to explain the objects, features, and advantages of the present application more clearly. It is to be understood that the embodiments illustrated in the drawings are by no means limitative of the scope of the present application but serve only to illustrate the essence of the present application.

[0052] In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the various disclosed embodiments. It will be appreciated, however, that embodiments can be practiced in many different inventive ways without resorting to the details that are presented. In other instances, well-known apparatuses, structures, and techniques have not been shown or described in detail in order to avoid unnecessarily obscuring this description.

[0053] Reference throughout this specification to "one embodiment" or "an embodiment" means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment. Thus, the appearances of the phrase "in one embodiment" or "in an embodiment" in various places throughout this specification are not necessarily all referring to the same embodiment. Furthermore, the particular features, structures, or characteristics can be combined in any suitable manner in one or more embodiments.

[0054] In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the various disclosed embodiments. It will be appreciated, however, that embodiments can be practiced in many different inventive ways without resorting to the details that are presented. In other instances, well-known apparatuses, structures, and techniques have not been shown or described in detail in order to avoid unnecessarily obscuring this description.

[0055] Furthermore, the terms "horizontal," "vertical," "hanging," and the like are not intended to be limiting, but rather are used to facilitate the description of the structure. For example, "horizontal" merely means more horizontal than "vertical," and does not mean that the structure must be perfectly horizontal, but rather can be slightly tilted.

[0056] In the description of the present application, it also needs to be explained that, unless otherwise explicitly specified and limited, the terms "set", "install", "connect", "connect" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium, or it can be the communication inside two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0057] Embodiment 1

[0058] The first embodiment of the present application provides an electrode mounting module, as shown in the figure, the electrode mounting module is used for fixing and / or electrically connecting two electrodes of a gas particulate purification device, the gas particulate 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 adsorption, and the electrode mounting module is used for fixing and / or connecting the first electrode 10 and / or the second electrode 20. Figure 1 As shown in the figure, the electrode mounting module includes an electrode mounting assembly 100, and the electrode mounting assembly 100 includes three conductive mounting pieces 101, the conductive mounting piece 101 includes an insulating body 111, and at least one conductive mounting piece 101 further includes a conductive sheet 112 arranged in the insulating body 111, wherein the inner side of the insulating body 111 is provided with an electrode mounting groove 1110 for mounting the first electrode 10 or the second electrode 20, and the insulating body 111 is provided with a conductive sheet mounting groove 1111 for mounting the conductive sheet 112, and the inner side of the conductive sheet 112 is provided with a conductive groove 1120, at least a part of the conductive groove 1120 is arranged in the electrode mounting groove 1110 to contact and electrically connect or electrically connect with the first electrode 10 or the second electrode 20.

[0059] Figures 1-7 It should be noted that in the present application, the side of the insulating body close 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 close to the first electrode and / or the second electrode is the inner side, and the other side is the outer side.

[0060] Continuing to refer to and

[0061] , the electrode mounting assembly 100 further includes an electrode avoiding groove 113, which is arranged on the inner side of the insulating body 111 and is arranged in a spaced manner with the electrode mounting groove 1110, that is, the electrode avoiding groove 113 is arranged between adjacent electrode mounting grooves 1110; when the first electrode 10 is arranged in the electrode mounting groove 1110, the second electrode 20 is arranged in the electrode avoiding groove 113; when the second electrode 20 is arranged in the electrode mounting groove 1110, the first electrode 10 is arranged in the electrode avoiding groove 113. Figures 1-2 Figures 4-7 It should be noted that in the present application, the side of the insulating body close 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 close to the first electrode and / or the second electrode is the inner side, and the other side is the outer side. ​

[0062] The outer side of the conductive sheet 112 is provided with a port 1121 for electrical connection with a power source.

[0063] The electrode mounting assembly 100 comprises a fixing frame 114, and three conductive mounting pieces 101 are arranged in a radial manner around the periphery of the fixing frame 114. The three conductive mounting pieces 101 are of the same structure. It can be understood by those skilled in the art that the structures of the conductive mounting pieces can also be different in other embodiments. One end of the conductive mounting piece 101 is fixed to the fixing frame 114, and the other end of the conductive mounting piece 101 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, and the other end of the conductive mounting piece 101 is fixed to the inner wall of the extension of the outermost first electrode or the outermost second electrode.

[0064] In an embodiment of the present application, the fixing frame 114 is a cylindrical body with at least one closed end. The closed end of the fixing frame blocks the entry of gas into the innermost electrode. The innermost electrode is the first electrode or the second electrode.

[0065] As shown in Figures 1-2 and Figures 4-7 , the conductive groove 1120 is of Y-shaped structure and comprises a first V-shaped opening 11201 and a first groove channel 11202. The first V-shaped opening 11201 is arranged at the side of the conductive sheet 112, and the first V-shaped opening 11201 extends to the inside 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 is in contact with the first electrode 10 or the second electrode 20 through the conductive opening 11101.

[0067] The electrode mounting groove 1110 is of Y-shaped structure and comprises a second V-shaped opening 11102 and a second groove channel 11103. The second V-shaped opening 11102 is arranged at the side of the insulating body 111, and the second V-shaped opening 11102 extends to the inside 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 the embodiment, the gas particle purification device comprises two first electrodes 10 and two second electrodes 20, the first electrodes 10 and the second electrodes 20 are circular tubes with different diameters, the first electrodes 10 and the second electrodes 20 are coaxially sleeved and are arranged in the order of first electrode 10, second electrode 20, first electrode 10 and second electrode 20 from the inside to the outside, the distance between the second electrodes 20 and the first electrodes 10 is the same, and the second electrodes 20 and the first electrodes 10 form a gas flow channel for the gas to pass through for electric field treatment.

[0069] In another embodiment of the present application, the first electrodes 10 and the second electrodes 20 can be hollow tubes with different diameters and hexagonal or rectangular cross sections.

[0070] In the embodiment, the fixing frame is arranged at the end of the innermost first electrode or second electrode to block the gas from entering the inside of the innermost electrode.

[0071] In the embodiment, referring to Figure 8 , the electrode mounting module 1000 comprises two electrode mounting assemblies, i.e., a first electrode mounting assembly and a second electrode mounting assembly; the first electrode mounting assembly is an electrode mounting assembly 100 as shown in Figures 1-2 and Figures 4-7 , which is arranged at one end of the first electrode 10 and the second electrode 20, and the second electrode mounting assembly 100' is arranged at the other end of the first electrode 10 and the second electrode 20, and the second electrode mounting assembly 100' is as shown in Figure 3 .

[0072] Referring to Figures 1-8 , the first electrode mounting assembly comprises a first conductive mounting member, i.e., a conductive mounting member 101, and the second electrode mounting assembly 100' comprises a second conductive mounting member.

[0073] In the embodiment, the first electrode mounting assembly and the first conductive mounting member are used for fixing and conducting the first electrode 10, the first electrode 10 is placed in the conductive groove 1120 of the electrode mounting assembly 100 and contacts with the conductive groove 1120, and the second electrode 20 is placed in the electrode avoiding groove 113 of the electrode mounting assembly 100; the first electrode mounting assembly has two conductive grooves 1120 and one electrode avoiding groove 113, two first electrodes 10 are respectively mounted in the two conductive grooves 1120, and one second electrode 20 is mounted in the electrode avoiding groove 113; the outermost second electrode 20 is fixed at the end of the conductive mounting member. The second electrode mounting assembly 100' and the second conductive mounting member are used for fixing and conducting the second electrode 20, the second electrode 20 is placed in the conductive groove and contacts with the conductive groove, and the first electrode 10 is placed in the electrode avoiding groove. In this case, at least one conductive mounting member of the first electrode mounting assembly, for example, the conductive sheet of the first conductive mounting member, is electrically connected with one pole of the power supply, for example, the negative pole, through the port, that is, the conductive sheet is connected with the power supply through the port, so that the two first electrodes 10 are simultaneously conducted, and the two first electrodes 10 have the same negative potential; at least one conductive mounting member of the second electrode mounting assembly, for example, the conductive sheet of the second conductive mounting member, is electrically connected with one pole of the power supply, for example, the positive pole, through the port, so that the two second electrodes 20 are conducted, and the two second electrodes 20 have the same positive potential.

[0074] It should be noted that in the present application, the electrical connection or electrical conduction or electrical connection can be that the conductive sheet abuts and contacts with the first electrode or the second electrode, when the conductive sheet is electrically connected with one pole of the power supply through the port, the conductive sheet is in electrical connection with the first electrode or the second electrode, and the two have the same potential, which is equivalent to that the first electrode or the second electrode is electrically connected with one pole of the power supply.

[0075] In the present application, the conduction includes that the first electrode is electrically connected with one pole of the power supply through the electrode mounting module, and when there are multiple first electrodes, the multiple first electrodes are simultaneously electrically connected with one pole of the power supply through the electrode mounting module, that is, the multiple first electrodes are simultaneously conducted.

[0076] It should be noted that in the embodiment of the present application, the insulating body and the fixing frame of the conductive mounting member are insulating materials.

[0077] In the present application, when the gas particulate purification device includes multiple first electrodes and multiple second electrodes, the same conductive sheet on the conductive mounting member includes multiple conductive grooves, the multiple first electrodes are connected in one body through the same conductive sheet, and the multiple first electrodes have the same potential after being connected with the power supply; similarly, the same conductive sheet connects the multiple second electrodes in one body, and the multiple second electrodes have the same potential after being connected with the power supply. In this way, the multiple first electrodes are simultaneously powered on, or the multiple second electrodes are simultaneously powered on, the circuit connected with the power supply is easy to design and install, the overall structure of the product is simplified, the cost is saved, and the energy consumption is reduced.

[0078] Meanwhile, in the present application, when the gas particle purification device comprises 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, in the embodiment, the first electrode and the second electrode are coaxially sleeved and arranged in the direction from the axis to the outer periphery in a staggered manner, and the electrode avoidance grooves are arranged on the same conductive mounting member at the same time, which makes, for example, the first electrode arranged in the conductive groove and the second electrode arranged in the electrode avoidance groove, since the conductive sheet does not extend into the electrode avoidance groove, when the conductive mounting member is powered on by the conductive sheet and the power supply, the second electrode is not powered on, which ensures that all the first electrodes in contact with the conductive sheet are powered on at the same time.

[0079] It should be noted that the shape and size of the electrode avoidance groove can be the same as those of the electrode mounting groove, the first electrode or the second electrode is mounted in the electrode avoidance groove, and the inner wall of the electrode avoidance groove can be a certain distance (that is, not in contact) from the first electrode or the second electrode, or can be in abutting contact with the first electrode or the second electrode. In these two cases, the electrode avoidance groove can fix the first electrode or the second electrode.

[0080] In the present application, the first electrode can be connected to the positive pole of the power supply as the adsorption electrode of the electrostatic dust removal electric field, and the second electrode can be connected to the negative pole of the power supply as the discharge electrode of the electrostatic dust removal electric field. Conversely, the first electrode can be connected to the negative pole of the power supply as the discharge electrode of the electrostatic dust removal electric field, and the second electrode can be connected to the positive pole of the power supply as the adsorption electrode of the electrostatic dust removal electric field. Alternatively, the first electrode can be connected to the negative pole of the power supply as the adsorption electrode of the electrostatic dust removal electric field, and the second electrode can be connected to the positive pole of the power supply as the discharge electrode of the electrostatic dust removal electric field.

[0081] In the present application, the electric field formed between the second electrode 20 and the first electrode 10 performs electric field adsorption treatment on the gas flowing therethrough, and the charged particles in the gas are adsorbed on the adsorption electrode. The particles include but are not limited to viruses, bacteria, aerosols containing radiation and other pollutants. After the electric field treatment, the particles containing viruses, bacteria and radiation in the gas and the aerosols are removed, and a sterile, radiation-free and virus-free clean gas is obtained, which achieves the effect of purifying the gas.

[0082] The gas particle purification device provided by the present application can efficiently adsorb nanoscale particles, and the nanoscale particles include virus and bacteria segments of tens of nanometers to hundreds of nanometers.

[0083] Example 2

[0084] The second embodiment of the present application provides another electrode mounting module 2000, which is based on the electrode mounting module 1000 provided in the first embodiment, and the first electrode mounting assembly further comprises a third conductive mounting member, and the second electrode mounting assembly further comprises a fourth conductive mounting member, wherein the third conductive mounting member fixes the second electrode, the second electrode is arranged in the electrode mounting groove of the third conductive mounting member, and the first electrode is arranged in the electrode avoiding groove of the third conductive mounting member; the fourth conductive mounting member fixes the first electrode, the first electrode is arranged in the electrode mounting groove of the fourth conductive mounting member, and the second electrode is arranged in the electrode avoiding groove of the fourth conductive mounting member.

[0085] The electrode mounting module provided in the embodiment further fixes the first electrode and the second electrode, can further improve the accuracy of the same distance between the two electrodes, and further improves the efficiency of the gas particulate purification device in adsorbing particulate matters.

[0086] Embodiment 3

[0087] The third embodiment of the present application provides another electrode mounting module 3000, as shown in FIG. 9, which is based on the electrode mounting module 2000 provided in the second embodiment, and the first electrode mounting assembly further comprises a fifth conductive mounting member, and the second electrode mounting assembly comprises a sixth conductive mounting member.

[0088] In the embodiment, the electrode mounting module and the electrode mounting assembly are the same as those described above, and the differences are described below. In the embodiment, the electrode avoiding groove 313 has a certain distance between the inner wall of the electrode avoiding groove 313 and the first electrode or the second electrode, and compared with the electrode avoiding groove 313 in the first embodiment, the electrode avoiding groove 313 in the embodiment further extends to the inside of the insulating body to form a larger gap. Figures 10-11

[0089] In the embodiment, Figures 9-11 the conductive sheet mounting grooves on the first conductive mounting member 311 and the second conductive mounting member 322 are given, and the conductive sheets in the conductive sheet mounting grooves are not drawn, and the structure of the conductive sheets can be referred to the first embodiment.

[0090] The electrode mounting module 3000 provided in the embodiment comprises two electrode mounting assemblies, namely a first electrode mounting assembly 301 and a second electrode mounting assembly 302; the first electrode mounting assembly 301 is arranged at one end of the first electrode 10 and the second electrode 20, and the second electrode mounting assembly 302 is arranged at the other end of the first electrode 10 and the second electrode 20.

[0091] The first electrode mounting assembly 301 comprises a first conductive mounting member 311, a third conductive mounting member 331, and a fifth conductive mounting member 351, wherein,

[0092] ​The first conductive mounting member 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 member 311 and contacts the inner wall of the conductive groove. The second electrode 20 is placed in the electrode avoidance groove of the first conductive mounting member 311.

[0093] The third conductive mounting member 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 member 331, and the first electrode 10 is placed in the electrode avoidance groove of the third conductive mounting member 331. There is no conductive sheet in the electrode mounting groove of the third conductive mounting member 331, and it only serves to fix the second electrode.

[0094] The fifth conductive mounting member 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 member 351, and the second electrode 20 is placed in the electrode avoidance groove of the fifth conductive mounting member 351. There is no conductive sheet in the electrode mounting groove of the fifth conductive mounting member 351, and it 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, wherein 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, and the first electrode 10 is placed in the electrode avoidance groove of the second conductive mounting member 322.

[0096] The fourth conductive mounting member 342 secures the first electrode 10. The first electrode 10 is placed in the electrode mounting groove of the fourth conductive mounting member 342, and the second electrode 20 is placed in the electrode avoidance groove of the fourth conductive mounting member 342. The electrode mounting groove of the fourth conductive mounting member 342 does not contain a conductive sheet and only serves to secure the first electrode.

[0097] The sixth conductive mounting member 362 secures the second electrode 20. The second electrode 20 is placed in the electrode mounting groove of the sixth conductive mounting member 362, and the first electrode 10 is placed in the electrode avoidance groove of the sixth conductive mounting member 362. The electrode mounting groove of the sixth conductive mounting member 362 does not contain a conductive sheet and only serves to secure the second electrode.

[0098] This embodiment also provides a gas particulate matter purification device including the above-mentioned electrode installation module 3000, and also including multiple first electrodes and multiple second electrodes, wherein the multiple first electrodes and the multiple second electrodes are arranged in parallel and staggered, wherein a gas flow channel is formed between the second electrode and the first electrode to allow gas to pass through and perform electric field treatment, and the distance between adjacent second electrodes and the first electrode is the same.

[0099] The first conductive mounting member 311 of the first electrode mounting assembly 301 comprises electrode mounting grooves and conductive grooves equal in number to the first electrodes, and electrode avoiding grooves equal in number to the second electrodes; the third conductive mounting member 331 comprises electrode mounting grooves equal in number to the second electrodes, and electrode avoiding grooves equal in number to the first electrodes; the fifth conductive mounting member 351 comprises electrode mounting grooves equal in number to the first electrodes, and electrode avoiding grooves equal in number to the second electrodes.

[0100] The second conductive mounting member 322 of the second electrode mounting assembly 302 comprises electrode mounting grooves and conductive grooves equal in number to the second electrodes, and electrode avoiding grooves equal in number to the first electrodes; the fourth conductive mounting member 342 comprises electrode mounting grooves equal in number to the first electrodes, and electrode avoiding grooves equal in number to the second electrodes; the sixth conductive mounting member 362 comprises electrode mounting grooves equal in number to the second electrodes, and electrode avoiding grooves equal in number to the first electrodes.

[0101] In this embodiment, there are seven first electrodes 10 and seven second electrodes 20.

[0102] In this embodiment, as shown in FIG. 2, the first electrode mounting assembly 301 is arranged around the fixed frame 214, and the first conductive mounting member 311, the third conductive mounting member 331, the fifth conductive mounting member 351, and the third conductive mounting member 331 are sequentially and evenly arranged around the fixed frame 214. Figure 10 As shown in FIG. 2, the electrode mounting grooves on each of the first conductive mounting member 311, the third conductive mounting member 331, the fifth conductive mounting member 351, and the third conductive mounting member 331 are arranged on the same circumference as the electrode avoiding grooves on the adjacent conductive mounting member.

[0103] In this embodiment, as shown in FIG. 2, the second electrode mounting assembly 302 is arranged around the fixed frame 214', and 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 and evenly arranged around the fixed frame 214'. Figure 11 As shown in FIG. 2, the electrode mounting grooves on each of 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 arranged on the same circumference as the electrode avoiding grooves on the adjacent conductive mounting member.

[0104] The electrode installation module provided by the embodiment further fixes the first electrode and the second electrode, and can further improve the accuracy of the same distance between the two electrodes, and further improve the efficiency of the gas particulate purification device in adsorbing particulate matters.

[0105] While the application has been described in detail with reference to the preferred embodiments thereof, it is understood that the application is capable of further modifications or adaptations, and is intended to cover any and all adaptations or modifications of the present application following, in parts or in whole, the scope of the claims.

Claims

1. An electrode mounting module for a gas particulate purification device, the gas particulate purification device comprising a first electrode and a second electrode, the first electrode and the second electrode forming an electric field for particulate adsorption, the first electrode and the second electrode each being a hollow tube of different diameters, the first electrode and the second electrode being coaxially nested and staggered in order from the axial center to the outer periphery, the electrode mounting module being used for fixing and / or conducting the first electrode and / or the second electrode, characterized in that, The electrode mounting module comprises an electrode mounting assembly, wherein, The electrode mounting assembly comprises a plurality of conductive mounting pieces, the conductive mounting pieces comprise an insulating body, an electrode mounting groove and an electrode avoiding groove are arranged on the inner side of the insulating body, the first electrode is arranged in the electrode mounting groove and the second electrode is arranged in the electrode avoiding groove, or the second electrode is arranged in the electrode mounting groove and the first electrode is arranged in the electrode avoiding groove; At least one of the conductive mounting pieces comprises a conductive sheet arranged in the insulating body, a conductive groove is arranged in the inner side of the conductive sheet, and at least a part of the conductive groove is arranged in the corresponding electrode mounting groove to contact the first electrode or the second electrode.

2. The electrode mounting module of claim 1, wherein, The electrode mounting module comprises a first electrode mounting assembly and a second electrode mounting assembly arranged at both ends of the first electrode and the second electrode respectively, the first electrode mounting assembly comprises a first conductive mounting piece, and the second electrode mounting assembly comprises a second conductive mounting piece, wherein, The first conductive mounting piece fixes and conducts the first electrode, the second electrode is arranged in the electrode avoiding groove of the first conductive mounting piece, and the first electrode is arranged in the conductive groove of the electrode mounting groove of the first conductive mounting piece and contacts the inner wall of the conductive groove; The second conductive mounting piece fixes and conducts the second electrode, the first electrode is arranged in the electrode avoiding groove of the second conductive mounting piece, and the second electrode is arranged in the conductive groove of the electrode mounting groove of the second conductive mounting piece and contacts the inner wall of the conductive groove.

3. The electrode mounting module of claim 2, wherein, The first electrode mounting assembly further comprises a third conductive mounting piece, and the second electrode mounting assembly further comprises a fourth conductive mounting piece, wherein, The third conductive mounting piece fixes the second electrode, the second electrode is arranged in the electrode mounting groove of the third conductive mounting piece, and the first electrode is arranged in the electrode avoiding groove of the third conductive mounting piece; The fourth conductive mounting piece fixes the first electrode, the first electrode is arranged in the electrode mounting groove of the fourth conductive mounting piece, and the second electrode is arranged in the electrode avoiding groove of the fourth conductive mounting piece.

4. The electrode mounting module of claim 3, wherein, The first electrode mounting assembly further comprises a fifth conductive mounting piece, and the second electrode mounting assembly further comprises a sixth conductive mounting piece, wherein, The fifth conductive mounting piece fixes the first electrode, the first electrode is arranged in the electrode mounting groove of the fifth conductive mounting piece, and the second electrode is arranged in the electrode avoiding groove of the fifth conductive mounting piece, The sixth conductive mounting piece fixes the second electrode, the second electrode is arranged in the electrode mounting groove of the sixth conductive mounting piece, and the first electrode is arranged in the electrode avoiding groove of the sixth conductive mounting piece.

5. The electrode mounting module according to claim 4, wherein, The first electrode mounting component comprises the first electrode mounting piece, the third electrode mounting piece, the fifth electrode mounting piece and the third electrode mounting piece which are sequentially and spacedly arranged, and the electrode mounting slot on each electrode mounting piece is correspondingly arranged with the electrode avoiding slot on the adjacent electrode mounting piece, and the electrode avoiding slot on each electrode mounting piece is correspondingly arranged with the electrode mounting slot on the adjacent electrode mounting piece. Preferably, the first electrode mounting component further comprises a fixing frame, and the first electrode mounting piece, the third electrode mounting piece, the fifth electrode mounting piece and the third electrode mounting piece are sequentially and spacedly arranged in a radial manner around the periphery of the fixing frame.

6. The electrode mounting module of claim 4, wherein, The second electrode mounting component comprises the second electrode mounting piece, the fourth electrode mounting piece, the sixth electrode mounting piece and the fourth electrode mounting piece which are sequentially and spacedly arranged, and the electrode mounting slot on each electrode mounting piece is correspondingly arranged with the electrode avoiding slot on the adjacent electrode mounting piece, and the electrode avoiding slot on each electrode mounting piece is correspondingly arranged with the electrode mounting slot on the adjacent electrode mounting piece. Preferably, the second electrode mounting component further comprises a fixing frame, and the second electrode mounting piece, the fourth electrode mounting piece, the sixth electrode mounting piece and the fourth electrode mounting piece are sequentially and spacedly arranged in a radial manner around the periphery of the fixing frame.

7. The electrode mounting module of claim 1, wherein, The electrode mounting module comprises a third electrode mounting component arranged at one end of the first electrode and the second electrode, and the third electrode mounting component comprises a seventh conductive mounting piece and an eighth conductive mounting piece. The seventh electrode mounting piece is used for fixing and conducting the first electrode, and the first electrode is arranged in the conductive slot of the seventh conductive mounting piece and in contact with the inner wall of the conductive slot, and the second electrode is arranged in the electrode avoiding slot of the seventh conductive mounting piece. The eighth electrode mounting piece is used for fixing and conducting the second electrode, and the second electrode is arranged in the conductive slot of the eighth conductive mounting piece and in contact with the inner wall of the conductive slot, and the first electrode is arranged in the electrode avoiding slot of the eighth conductive mounting piece.

8. The electrically conductive mounting module of any of claims 1-7, wherein, The conductive slot is in a Y-shaped structure, comprising a first V-shaped opening and a first slot channel, the first V-shaped opening is arranged at the side of the conductive sheet, the first V-shaped opening extends to the inside of the conductive sheet to form the first slot channel, and the first electrode or the second electrode is inserted into the first slot channel through the first V-shaped opening and in contact with the inner wall of the first slot channel.

9. The electrically conductive mounting module of any of claims 1-8, wherein, The bottom of the electrode mounting slot is provided with a conductive opening, and the conductive slot of the conductive sheet at least partially passes through the conductive opening and enters the electrode mounting slot. Optionally, the electrode mounting slot is in a Y-shaped structure, comprising a second V-shaped opening and a second slot channel, the second V-shaped opening is arranged at the side of the insulating body, the second V-shaped opening extends to the inside of the insulating body to form the second slot channel, and the bottom of the second slot channel is provided with the conductive opening.

10. A gas particulate purification device, characterized by, The gas particulate purification device includes a first electrode, a second electrode, and the electrode mounting module according to any one of claims 1 to 9, and an electric field for particulate adsorption is formed between the first electrode and the second electrode.