Ion generator and dust removal apparatus

By designing removable spliced ​​conductive members and conductive wires and covering them with insulating protective parts, the problems of existing ion generators' size fixed and creepage in humid environments are solved, and the variable size and moisture resistance are improved.

WO2025123588A1PCT designated stage expired Publication Date: 2025-06-19SUZHOU BEIANG TECH LTD
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Patent Information

Application Number
PCT/CN2024/094392
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-13
Filing Date
2024-05-21
Publication Date
2025-06-19

AI Technical Summary

Technical Problem

The existing ion generators are fixed in size and cannot meet the requirements of multiple sizes. They are prone to crawling and leakage in humid environments, and the needle tip solution has safety risks during cleaning.

Method used

An ion generator is designed, which includes a removable spliced ​​conductive member and a conductive wire, which can achieve dimensional variable by adjusting the number of splicing units, and uses an insulating protective member to cover the conductive member to avoid creepage and leakage.

Benefits of technology

The ion generator is varied in size in different directions, which improves applicability, avoids the occurrence of creepage, and enhances the equipment's tolerance in humid environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application provides an ion generator and a dust removal apparatus. According to the ion generator provided by the present application, the size can be changed in a first direction and / or a second direction, thereby effectively improving the applicability of the ion generator, and satisfying the requirements of occasions in which different sizes are required. Therefore, the ion generator having customized appearance and size can be quickly implemented.
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Description

Ion generator and dust removal device

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0002] This application claims priority to the Chinese patent application with application number 202311713981.X filed with the Chinese Patent Office on December 13, 2023, and entitled “Ion Generator and Dust Removal Device”. The entire contents of the above application are incorporated by reference into this application. Technical Field

[0003] The present application relates to the technical field of dust removal equipment, and in particular to an ion generator and a dust removal device. Background Art

[0004] Ion generators in related art usually place metal wires in the entire electrostatic dust collecting plate, so that the metal wires discharge towards the metal plate to generate ions. In other solutions, a certain number of needles are placed to discharge towards the air or the metal plate.

[0005] However, the sizes of the ion generators in the above related art solutions are relatively fixed and cannot be applied to occasions with various size requirements.

[0006] Furthermore, because the metal wire is placed throughout the electrostatic dust collector without insulation and moisture-proofing, it can generate creepage when exposed to contaminated and humid environments. In severe cases, this can even cause tracking, leading to ion field failure and malfunction. The needle-tip cleaning method also poses a safety hazard, easily pricking the cleaner's fingers and hindering cleaning.

[0007] Summary of the Invention

[0008] In view of this, the present application provides an ion generator and a dust removal device, the purpose of which includes, for example, solving the above technical problems to a certain extent.

[0009] An embodiment of the present application provides an ion generator, comprising:

[0010] The first electrical mechanism may include a first conductive member and a second conductive member spaced apart from each other along a first direction, wherein the first conductive member and the second conductive member may both extend along a second direction perpendicular to the first direction, and the first electrical mechanism may further include a plurality of conductive rods disposed between the first conductive member and the second conductive member, wherein both ends of each conductive rod in the first direction may be connected to the first conductive member and the second conductive member, respectively;

[0011] The second electrical mechanism may include a third conductive member and a fourth conductive member spaced apart from each other along the first direction, the third conductive member and the fourth conductive member may both extend along the second direction, and the second electrical mechanism may further include a plurality of conductive wires disposed between the third conductive member and the fourth conductive member, the ends of each conductive wire in the first direction being connected to the third conductive member and the fourth conductive member, respectively, and the plurality of conductive rods may be disposed in a one-to-one correspondence with the plurality of conductive wires in the third direction, so that each conductive wire can discharge to the corresponding conductive rod;

[0012] The first and second conductive members may both include a plurality of first splicing units that are sequentially and detachably spliced ​​in the second direction, and the third and fourth conductive members may both include a plurality of second splicing units that are sequentially and detachably spliced ​​in the second direction; and / or

[0013] Each of the conductive rods may include a plurality of third splicing units that are detachably spliced ​​in sequence in the first direction, and each of the conductive wires may include a plurality of fourth splicing units that are detachably spliced ​​in sequence in the first direction.

[0014] Optionally, each of the conductive rods can be detachably connected to the first conductive member and the second conductive member at both ends in the first direction; each of the conductive wires can be detachably connected to the third conductive member and the fourth conductive member at both ends in the first direction.

[0015] Optionally, the first conductive member and the second conductive member may both be formed in a rod shape, the first splicing unit may be a short rod of a predetermined length, and both ends of the short rod may be provided with connection structures.

[0016] Optionally, the third conductive member and the fourth conductive member may both be formed in a rod shape, the second splicing unit may be a short rod of a predetermined length, and both ends of the short rod may be provided with connection structures.

[0017] Optionally, the first splicing unit and the second splicing unit may be equal in length.

[0018] Optionally, the first splicing unit and the second splicing unit may be formed of metal material.

[0019] Optionally, the third splicing unit included in the conductive rod may be a short rod of a predetermined length, the short rod may extend along the first direction, and connection structures may be provided at both ends of the short rod.

[0020] Optionally, the two outermost short rods of the conductive rod may be connected to the first conductive member and the second conductive member by screws or rivets.

[0021] Optionally, both ends of each conductive thread may include a first hanging portion and a second hanging portion, respectively, and the first hanging portion and the second hanging portion may be hung on the third conductive member and the fourth conductive member, respectively.

[0022] Optionally, the first hanging portion may be a ring structure, and the second hanging portion may be a hook.

[0023] Optionally, the fourth splicing unit included in the conductive thread may be a short thread of a predetermined length, the short thread may extend along the first direction, and connection structures may be provided at both ends of the short thread.

[0024] Optionally, the conductive rods and the conductive wires may be arranged in parallel and at equal intervals.

[0025] Optionally, the ion generator may further include:

[0026] a first insulating protector and a second insulating protector, wherein the first insulating protector and the second insulating protector may be elastic and may be respectively covered on the outside of the first conductive member and the second conductive member;

[0027] The third insulating protector and the fourth insulating protector may be elastic and may be respectively covered on the outside of the third conductive member and the fourth conductive member.

[0028] Optionally, the first insulating protector, the second insulating protector, the third insulating protector and the fourth insulating protector may be formed by an extrusion molding process.

[0029] Optionally, the first insulating protector may include a first insulating body and a first open portion opened in the first insulating body, wherein the first open portion may accommodate a portion of each of the conductive rods and may be open toward a side of the first insulating body facing away from the third insulating protector;

[0030] The second insulating protector may include a second insulating body and a second open portion opened in the second insulating body, the second open portion may accommodate a portion of each of the conductive rods and may be open toward a side of the second insulating body facing away from the fourth insulating protector.

[0031] Optionally, the third insulating protector may include a third insulating body and a plurality of third openings formed in the third insulating body, each of the third openings may be open toward a side facing away from the first insulating protector, and the plurality of third openings may be spaced apart in the third insulating body along the second direction.

[0032] The fourth insulating protector may include a fourth insulating body and a plurality of fourth opening portions opened on the fourth insulating body, each of the fourth opening portions may be open toward a side facing away from the second insulating protector, and the plurality of fourth opening portions may be spaced apart on the fourth insulating body along the second direction.

[0033] Optionally, the third insulating body may include a first blocking wall located on a side of the plurality of conductive wires facing away from the first insulating protector, and the plurality of third openings may be formed on the first blocking wall;

[0034] The fourth insulating body may include a second blocking wall located on a side of the plurality of conductive wires facing away from the second insulating protector, and the plurality of fourth openings may be formed on the second blocking wall.

[0035] Optionally, the ion generator may further include a housing, the housing may be formed of plastic, and the first electrical mechanism and the second electrical mechanism may be housed in the housing formed as a frame.

[0036] An embodiment of the present application further provides a dust removal device, which may include the ion generator described above.

[0037] Optionally, the dust removal device may further include a collecting device, which may be used to collect dust, and the collecting device may be provided separately from the ion generator.

[0038] According to the ion generator provided by the present application, when the first conductive member and the second conductive member both include a plurality of first splicing units that are detachably spliced ​​in sequence in the second direction, and when the third conductive member and the fourth conductive member both include a plurality of second splicing units that are detachably spliced ​​in sequence in the second direction, the size of the ion generator in the second direction can be adjusted as a whole by adjusting the number of first splicing units of the first conductive member, the number of first splicing units of the second conductive member, the number of second splicing units of the third conductive member, and the number of second splicing units of the fourth conductive member, thereby achieving variable size of the ion generator in the second direction.

[0039] When each conductive wire includes a plurality of third splicing units that are detachably spliced ​​in sequence in the first direction, and each conductive rod includes a plurality of fourth splicing units that are detachably spliced ​​in sequence in the first direction, the ion generator provided according to the present application can adjust the overall size of the ion generator in the first direction by adjusting the number of third splicing units and the number of fourth splicing units, thereby realizing variable size of the ion generator in the first direction.

[0040] According to the ion generator provided by the present application, the first conductive member and the second conductive member are configured to include a plurality of first splicing units that are sequentially detachably spliced ​​in the second direction, the third conductive member and the fourth conductive member are configured to include a plurality of second splicing units that are sequentially detachably spliced ​​in the second direction, and each conductive rod includes a plurality of third splicing units that are sequentially detachably spliced ​​in the first direction, and each conductive wire includes a plurality of fourth splicing units that are sequentially detachably spliced ​​in the first direction. As a result, the ion generator provided by the present application can achieve variable size in both the first and second directions, thereby effectively improving the applicability of the ion generator and meeting the needs of occasions requiring different sizes. Therefore, an ion generator with customized appearance and size can be quickly realized.

[0041] In order to make the above-mentioned objects, features and advantages of the present application more obvious and easy to understand, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0042] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.

[0043] FIG1 shows a schematic diagram of a first electrical mechanism of an ion generator provided according to an embodiment of the present application;

[0044] FIG2 is a schematic diagram showing a partial structure of a second electrical mechanism of an ion generator provided according to an embodiment of the present application;

[0045] FIG3 shows a schematic diagram of a three-dimensional diagram of a partial structure of an ion generator provided according to an embodiment of the present application;

[0046] FIG4 shows a schematic diagram of an exploded view of a portion of the structure of an ion generator provided according to an embodiment of the present application;

[0047] FIG5 is a schematic diagram showing a partial structure of a first electrical mechanism of an ion generator provided according to an embodiment of the present application;

[0048] FIG6 shows a schematic diagram of another exploded view of the ion generator provided according to an embodiment of the present application.

[0049] Reference numerals:

[0050] 100 - first electrical mechanism; 110 - first conductive member; 120 - second conductive member; 130 - conductive rod; 200 - second electrical mechanism; 210 - third conductive member; 220 - fourth conductive member; 230 - conductive wire;

[0051] 300-housing; 400-second insulating protection member; 420-second open portion; 500-fourth insulating protection member; 510-fourth open portion; 600-high-voltage creepage; 700-circuit control board; 710-connection port; F1-first direction; F2-second direction; F3-third direction. DETAILED DESCRIPTION

[0052] The following will clearly and completely describe the technical solution of this application in conjunction with the accompanying drawings. Obviously, the embodiments described are only part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of this application.

[0053] In the description of this application, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate the description of this application and simplify the description. They are not intended to indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this application. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0054] In the description of this application, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections or electrical connections; direct connections, indirect connections through an intermediate medium, or internal connections between two components. Those skilled in the art will understand the specific meanings of the above terms in this application based on specific circumstances.

[0055] In addition, the technical solutions between the various embodiments can be combined with each other, but they must be based on the ability of ordinary technicians in this field to implement them. When the combination of technical solutions is mutually contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by this application.

[0056] According to an embodiment of the present application, an ion generator is provided. The structure and working principle of the ion generator will be described in detail below with reference to the accompanying drawings.

[0057] An ion generator provided according to an embodiment of the present application includes a first electrical mechanism 100 and a second electrical mechanism 200. In the embodiment, the first electrical mechanism 100 includes a first conductive member 110 and a second conductive member 120 spaced apart from each other along a first direction F1. The first conductive member 110 and the second conductive member 120 both extend along a second direction F2 perpendicular to the first direction F1. The first electrical mechanism 100 also includes a plurality of conductive rods 130 disposed between the first conductive member 110 and the second conductive member 120. Each conductive rod 130 is connected to the first conductive member 110 and the second conductive member 120 at both ends in the first direction F1.

[0058] In the embodiment, the second electrical mechanism 200 includes a third conductive member 210 and a fourth conductive member 220 arranged at intervals from each other along the first direction F1, and the third conductive member 210 and the fourth conductive member 220 both extend along the second direction F2. The second electrical mechanism 200 also includes a plurality of conductive wires 230 arranged between the third conductive member 210 and the fourth conductive member 220, and the two ends of each conductive wire 230 in the first direction F1 are respectively connected to the third conductive member 210 and the fourth conductive member 220. The plurality of conductive wires 230 are arranged in a one-to-one correspondence with the plurality of conductive rods 130 in the third direction F3, so that each conductive rod 130 can discharge to the corresponding conductive wire 230.

[0059] In an embodiment, the first conductive member 110 and the second conductive member 120 both include a plurality of first splicing units that are detachably spliced ​​in sequence in the second direction F2, the third conductive member 210 and the fourth conductive member 220 both include a plurality of second splicing units that are detachably spliced ​​in sequence in the second direction F2; and / or each conductive rod 130 includes a plurality of third splicing units that are detachably spliced ​​in sequence in the first direction F1, and each conductive wire 230 includes a plurality of fourth splicing units that are detachably spliced ​​in sequence in the first direction F1.

[0060] In this way, in the ion generator provided according to an embodiment of the present application, when the first conductive member 110 and the second conductive member 120 both include a plurality of first splicing units that are detachably spliced ​​in sequence in the second direction F2, and the third conductive member 210 and the fourth conductive member 220 both include a plurality of second splicing units that are detachably spliced ​​in sequence in the second direction F2, the size of the ion generator in the second direction F2 can be adjusted as a whole by adjusting the number of first splicing units of the first conductive member 110, the number of first splicing units of the second conductive member 120, the number of second splicing units of the third conductive member 210, and the number of second splicing units of the fourth conductive member 220, thereby achieving variable size of the ion generator in the second direction F2.

[0061] Similarly, when each conductive rod 130 includes a plurality of third splicing units that are detachably spliced ​​in sequence in the first direction F1, and each conductive wire 230 includes a plurality of fourth splicing units that are detachably spliced ​​in sequence in the first direction F1, the ion generator provided according to an embodiment of the present application can adjust the overall size of the ion generator in the first direction F1 by adjusting the number of third splicing units and the number of fourth splicing units, thereby achieving variable size of the ion generator in the first direction F1.

[0062] Thus, the ion generator provided according to the embodiment of the present application is configured such that the first conductive member 110 and the second conductive member 120 each include a plurality of first splicing units that are detachably spliced ​​in sequence in the second direction F2, the third conductive member 210 and the fourth conductive member 220 each include a plurality of second splicing units that are detachably spliced ​​in sequence in the second direction F2, and each conductive rod 130 includes a plurality of third splicing units that are detachably spliced ​​in sequence in the first direction F1, and each conductive wire 230 includes a plurality of fourth splicing units that are detachably spliced ​​in sequence in the first direction F1. Thus, the ion generator provided according to the embodiment of the present application can achieve variable size in both the first direction F1 and the second direction F2, thereby effectively improving the applicability of the ion generator and meeting the needs of occasions requiring different sizes. Therefore, an ion generator with customized appearance and size can be quickly realized.

[0063] In an embodiment, the first conductive member 110 and the second conductive member 120 can both be formed into a rod shape, and the first splicing unit can be a short rod of a predetermined length. The short rod can be provided with a connection structure at both ends of the short rod, for example, a connection protrusion can be provided at one end, and a connection recess can be provided at the other end. In this way, among adjacent short rods, the connection protrusion of one short rod can be inserted into the connection recess of another short rod, so that it is stuck in the recess to achieve the connection between adjacent short rods. This splicing method does not require the provision of additional connectors, which is conducive to simplifying the structure and assembly process of the ion generator. Therefore, the length of the first conductive member 110 and the second conductive member 120 in the second direction F2 can be adjusted by increasing or decreasing the number of short rods.

[0064] Similarly, in an embodiment, the third conductive member 210 and the fourth conductive member 220 may also be formed in a rod shape, and the second splicing unit may also be a short rod of a predetermined length. The short rod may be provided with a connecting structure at both ends of the short rod, for example, similar to the description above, a connecting protrusion may be provided at one end and a connecting recess may be provided at the other end. In this way, among adjacent short rods, the connecting protrusion of one short rod can be inserted into the connecting recess of another short rod, thereby being locked in the recess and connecting the adjacent short rods to each other. Therefore, the length of the third conductive member 210 and the fourth conductive member 220 in the second direction F2 can be adjusted by increasing or decreasing the number of short rods.

[0065] In an embodiment, the lengths of the first splicing unit and the second splicing unit can be equal. In this way, the lengths of the first conductive member 110, the second conductive member 120, the third conductive member 210, and the fourth conductive member 220 in the second direction F2 can be unified by providing the same number of splicing units, thereby facilitating the design of the ion generator's external dimensions and facilitating the assembly of the ion generator. In addition, as an example, the first splicing unit and the second splicing unit can both be formed of a metal material, such as aluminum.

[0066] In an embodiment, changing the number of first splicing units and the number of second splicing units can change the length of the ion generator in the second direction F2. When the number increases, the number of conductive rods 130 and conductive wires 230 can be increased accordingly to adapt to the increase in the length of the first conductive component 110, the second conductive component 120, the third conductive component 210 and the fourth conductive component 220, and vice versa.

[0067] In an embodiment, the third splicing unit included in the conductive rod 130 can be, for example, a short rod of a predetermined length, which can extend, for example, along the first direction F1. In an embodiment, both ends of the short rod can also be provided with relevant connecting structures for connecting with adjacent short rods. For example, one end of the short rod can be provided with a protrusion, and the other end can be provided with a recess. The protrusion of the short rod can be inserted into the recess of the adjacent short rod, thereby connecting the adjacent short rods.

[0068] As an example, the two outermost short rods of the conductive rod 130 can be connected to the first conductive member 110 and the second conductive member 120 by screws or rivets. It should be noted that the screws and rivets are detachable.

[0069] In the ion generator provided according to an embodiment of the present application, each conductive wire 230 may include a first hanging portion and a second hanging portion at both ends, and the first hanging portion and the second hanging portion are respectively hung on the third conductive member 210 and the fourth conductive member 220. Here, as an example, the first hanging portion may be a ring structure, and the second hanging portion may be a hook, which will be described in detail in the following description.

[0070] In an embodiment, the fourth splicing unit included in the conductive thread 230 can be, for example, a short thread of a predetermined length, and the short thread can, for example, extend along the first direction F1. In an embodiment, relevant connection structures can also be provided at both ends of the short thread for connecting with adjacent short threads. As an example, one end of the short thread can be provided with a hook and the other end can be provided with a loop structure, and the hook of the short thread can be hung in the loop structure of the adjacent short thread, thereby achieving connection between adjacent short threads. In this way, by utilizing the cooperation of this hook and loop structure, the processing complexity of the short thread can be reduced, and the conductive thread 230 can be easily assembled.

[0071] In an embodiment, the third conductive member 210 may be provided with a plurality of hooks, for example, along the second direction F2. These hooks are provided in a one-to-one correspondence with the conductive filaments 230, so that each hook can be hung on the loop structure of the short rod of the conductive filament 230 closest to the third conductive member 210. Conversely, the fourth conductive member 220 may be provided with a plurality of loop structures, for example, along the second direction F2. These loop structures are provided in a one-to-one correspondence with the conductive filaments 230, so that each loop structure can be hung on the hook on the short rod of the conductive filament 230 closest to the fourth conductive member 220.

[0072] Furthermore, in this embodiment, the conductive rods 130 and the conductive wires 230 are arranged parallel and evenly spaced. Thus, for example, for the third conductive member 210, each second splicing unit may be provided with an equal number of hooks, with the hooks spaced evenly apart. For the fourth conductive member 220, each second splicing unit may be provided with an equal number of loop structures, with the loop structures spaced evenly apart. That is, in this embodiment, each hook on the third conductive member 210 has an opposing loop structure on the fourth conductive member 220 in the first direction F1.

[0073] Furthermore, in the embodiment, the conductive filament 230 discharges the conductive rod 130, so the conductive filament 230 is essentially the discharge filament, and the conductive rod 130 is the discharge target, so the conductive rod 130 is essentially the discharge rod. The discharge filament discharges the discharge target, thereby generating ionized ions.

[0074] Therefore, as mentioned above, in the ion generator provided according to the embodiment of the present application, the two ends of each conductive rod 130 in the first direction F1 can be detachably connected to the first conductive member 110 and the second conductive member 120, respectively, and the two ends of each conductive wire 230 in the first direction F1 can be detachably connected to the third conductive member 210 and the fourth conductive member 220, respectively. This is more conducive to adjusting the external dimensions of the ion generator.

[0075] The ion generator provided according to an embodiment of the present application may further include a first insulating protective member, a second insulating protective member 400, a third insulating protective member, and a fourth insulating protective member 500. In the embodiment, the first insulating protective member and the second insulating protective member 400 are elastic, so that they can provide a better covering effect on the first conductive member 110 and the second conductive member 120, respectively. It is also convenient to directly connect the first conductive member 110 and the second conductive member 120 to the first insulating protective member and the second insulating protective member 400 respectively by using the elastic covering, without the need for additional connecting components (such as screws).

[0076] In an embodiment, the first and second insulating protectors 400 can respectively cover the outside of the first conductive member 110 and the second conductive member 120. In this way, the first and second insulating protectors 400 can provide insulation protection while also increasing the ion generator's tolerance to contamination and humid environments through the covering effect. In an embodiment, the first insulating protector can cover most of the outside of the first conductive member 110, leaving exposed the portion where the first conductive member 110 connects to the conductive rod 130. Similarly, the second insulating protector 400 can cover most of the outside of the second conductive member 120, leaving exposed the portion where the second conductive member 120 connects to the conductive rod 130.

[0077] Similarly, the third insulating protector and the fourth insulating protector 500 are elastic, so that they can provide better covering effects on the third conductive component 210 and the fourth conductive component 220 respectively, and also facilitate directly utilizing the elastic covering to connect the third conductive component 210 and the fourth conductive component 220 to the first insulating protector and the second insulating protector 400 respectively, without the need for additional connecting components (such as screws, etc.).

[0078] The third and fourth insulating protectors 500 are respectively coated around the outsides of the third and fourth conductive members 210 and 220. In this manner, the third and fourth insulating protectors 500 can provide insulation protection while also increasing the ion generator's tolerance to contamination and humid environments through their coating. In an embodiment, the third insulating protector can cover most of the outside of the third conductive member 210, leaving exposed the portion where the third conductive member 210 connects to the conductive filaments 230. Similarly, the fourth insulating protector 500 can cover most of the outside of the fourth conductive member 220, leaving exposed the portion where the fourth conductive member 220 connects to the conductive filaments 230.

[0079] In the embodiment, due to the covering effect of the first insulating protective member, the second insulating protective member 400, the third insulating protective member and the fourth insulating protective member 500, the first insulating protective member, the second insulating protective member 400, the third insulating protective member and the fourth insulating protective member 500 are formed into substantial insulating boots, which isolate and wrap their respective corresponding conductive components.

[0080] In an embodiment, the first insulating protector, the second insulating protector 400 , the third insulating protector, and the fourth insulating protector 500 may all be formed of, for example, rubber.

[0081] In the ion generator provided according to an embodiment of the present application, the first insulating protector, the second insulating protector 400, the third insulating protector, and the fourth insulating protector 500 are formed by an extrusion molding process. Thus, through the extrusion molding process, a long strip of the protector strip base can be pre-extruded. Then, a corresponding length of the protector strip base is cut from the corresponding protector strip base to form the first insulating protector, according to the desired length of the first insulating protector. The same process is also applied to the second insulating protector 400, the third insulating protector, and the fourth insulating protector 500. These processes will not be further described here.

[0082] In this embodiment, the first and third insulating protectors are spaced apart in the third direction F3, leaving a certain gap between them. This prevents electrical creepage between them. Similarly, the second and fourth insulating protectors 400 and 500 are spaced apart in the third direction F3, leaving a certain gap between them. This prevents electrical creepage between them. In this embodiment, the third direction F3 can be, for example, perpendicular to both the first and second directions F1 and F2.

[0083] In addition, since there is no insulating barrier on the outer side of the second insulating protection member 400 , the first electrical mechanism 100 can be directly removed outwards very conveniently.

[0084] In the ion generator provided according to an embodiment of the present application, similar to the description above, the first insulating protector may further include a first opening formed in the first insulating body. The first opening may accommodate a portion of each conductive rod 130 and be open toward the side facing away from the third insulating protector. This first opening allows moisture in the air to be discharged outward, preventing it from flowing toward the conductive rods 130 and causing creepage. Similarly, the second insulating protector 400 may further include a second opening 420 formed in the second insulating body. Each second opening 420 may accommodate a portion of each conductive rod 130 and be open toward the side facing away from the fourth insulating protector 500. The beneficial effects of this are not further described here. The first and second openings 420 may both be formed as drains, i.e., selectively provided drains allow moisture in the air to be discharged outward, preventing it from flowing toward the conductive rods 130 and causing creepage. Because the first insulating protector lacks an insulating barrier on its exterior, the first electrical mechanism 100 can be easily removed directly outward. The first opening portion and the second opening portion 420 facilitate the discharge of excess moisture, thereby keeping the interior of the ion generator dry and enhancing the pressure resistance, moisture resistance, and stain resistance.

[0085] In an embodiment, as an example, the first opening portion can be a large drain outlet that extends continuously from the first end of the first insulating body to the second end of the first insulating body. This large drain outlet is conducive to replacing the conductive rod through the drain outlet on the one hand, and is conducive to quickly discharging water vapor and possible condensed liquid water on the other hand.

[0086] In the ion generator provided according to an embodiment of the present application, similar to the description above, the third insulating protector may include a third insulating body and multiple third openings formed in the third insulating body, each third opening opening opening facing away from the first insulating protector, and the multiple third openings spaced along the second direction F2 on the third insulating body. The fourth insulating protector 500 may include a fourth insulating body and multiple fourth openings 510 formed in the fourth insulating body, each fourth opening opening opening opening facing away from the second insulating protector 400, and the multiple fourth openings 510 spaced along the second direction F2 on the fourth insulating body. The third and fourth openings 510 facilitate the discharge of moisture from the air, preventing it from flowing toward the conductive rod 130 and causing creepage.

[0087] In an embodiment, the third insulating body may include a first retaining wall located on a side of each conductive filament 230 facing away from the first insulating protector. A plurality of third openings may be defined in the first retaining wall, each of which may be formed as a notch. Similarly, the fourth insulating body may include a second retaining wall located on a side of each conductive filament 230 facing away from the second insulating protector. A plurality of fourth openings may be defined in the second retaining wall, each of which may be formed as a notch.

[0088] In the embodiment, the first opening portion and the third opening portion are opposite to each other, and the second opening portion and the fourth opening portion are opposite to each other, which allows water vapor to be discharged from both sides of the whole formed by the first electrical mechanism and the second electrical mechanism in the third direction.

[0089] In addition, in an embodiment, the ion generator may further include a housing 300, which may be formed of plastic, for example, and the first electrical mechanism 100 and the second electrical mechanism 200 may be installed in the housing 300 formed as a frame. With the accumulation of pollutants on the housing 300 and the conductive components, as well as the negative impact of the humid environment, high-voltage creepage 600 is more likely to be generated between the first electrical mechanism 100 and the second electrical mechanism 200, causing the entire electric field performance to be affected or even fail, directly affecting the purification efficiency of the product. The above-mentioned insulating protective parts are used to implement isolation wrapping, which effectively avoids the generation of high-voltage creepage 600. The insulating boots are made of insulating rubber material and have good insulation, water resistance, and stain resistance. In addition, the housing 300 of the ion generator, i.e., the outer frame, may also be extruded into strips, that is, the left and right upper and lower side frames are cut into different lengths, and they can be cut into the required length, so that an ion generator with customized appearance and size can be quickly realized. In addition, the circuit control board 700 can be placed inside the upper frame of the housing 300 (for example, sealed inside with sealant), and the power supply voltage is provided through the external connection port 710. In addition, a water leakage device can also be provided on the outer frame for drainage.

[0090] In addition, the second electrical mechanism 200 can face outward for direct disassembly and cleaning. In the first electrical mechanism 100, the first and second insulating protective members 400 can be quickly assembled and disassembled with the respective outer frames through dovetail slots (i.e., the inner side of the frame is provided with a dovetail slot, and the outer side of the corresponding insulating protective member is provided with a matching strip-shaped protrusion, and both the dovetail slot and the protrusion extend along the extension direction of the insulating protective member, i.e., the second direction F2). This facilitates the rapid customization of ion generator electrode sizes and rapid cleaning and maintenance.

[0091] In addition, in an embodiment, the gap between the first insulating protector and the third insulating protector and the gap between the second insulating protector and the fourth insulating protector can be connected to the external environment via through holes on the outer frame, thereby facilitating the discharge of water vapor in these gaps.

[0092] According to an embodiment of the present application, a dust removal device is also provided, which includes the above-mentioned ion generator and the above-mentioned beneficial effects, which will not be repeated here.

[0093] The dust removal device provided according to the embodiment of the present application may further include a collection device, which is used to collect dust, and the collection device is separately arranged from the ion generator.

[0094] In an embodiment, the ion generator provides a charged electrode (used to charge pollutants), while the collection device provides a collection electrode (used to adsorb charged pollutants), and the two work together to achieve a purification effect. In other words, the ion generator and the collection device are two separate modules. The advantage of this arrangement is that, since the operating voltage and cleaning method of the ion generator are somewhat different from those of the collection device, this separate arrangement is more conducive to the separate design, manufacture, and assembly of the ion generator and the collection device, compared to an integrated arrangement of the two, and is more conducive to the separate and efficient cleaning of the ion generator and the collection device. In other words, there is no need to consider the creepage problem of the dust collection mechanism integrated into the ion generator and collection device due to the higher operating voltage of the ion generator, nor is there any need to be limited by the adverse effects that may be brought to the ion generator by the water immersion cleaning of the collection device.

[0095] The above are merely optional embodiments of the present application and do not limit the scope of protection of the present application. All equivalent structural transformations made using the contents of the present application specification and drawings under the innovative concept of the present application, or direct / indirect application in other related technical fields are included in the scope of protection of the present application. Industrial Applicability

[0096] The present application provides an ion generator and a dust removal device. The ion generator can achieve variable size in different directions, effectively improve applicability, quickly achieve customized appearance dimensions, and avoid the occurrence of creepage.

[0097] In addition, it can be understood that the ion generator and dust removal device of the present application are reproducible and can be widely used in the field of dust removal.

Claims

1. An ion generator, characterized in that: include: A first electrical mechanism, comprising a first conductive member and a second conductive member spaced apart from each other along a first direction, wherein the first conductive member and the second conductive member both extend along a second direction perpendicular to the first direction, and the first electrical mechanism further comprises a plurality of conductive rods disposed between the first conductive member and the second conductive member, wherein two ends of each conductive rod in the first direction are respectively connected to the first conductive member and the second conductive member; a second electrical mechanism, comprising a third conductive member and a fourth conductive member arranged at intervals from each other along the first direction, wherein the third conductive member and the fourth conductive member both extend along the second direction, and the second electrical mechanism further comprises a plurality of conductive wires arranged between the third conductive member and the fourth conductive member, wherein both ends of each conductive wire in the first direction are respectively connected to the third conductive member and the fourth conductive member, and the plurality of conductive rods are arranged one-to-one with the plurality of conductive wires in the third direction, so that each conductive wire can discharge to the corresponding conductive rod; Wherein, the first conductive member and the second conductive member both include a plurality of first splicing units sequentially detachably spliced ​​in the second direction, and the third conductive member and the fourth conductive member both include a plurality of second splicing units sequentially detachably spliced ​​in the second direction; and / or Each of the conductive rods includes a plurality of third splicing units that are detachably spliced ​​in sequence in the first direction, and each of the conductive wires includes a plurality of fourth splicing units that are detachably spliced ​​in sequence in the first direction.

2. The ion generator according to claim 1, characterized in that: Both ends of each conductive rod in the first direction are detachably connected to the first conductive member and the second conductive member respectively; and both ends of each conductive wire in the first direction are detachably connected to the third conductive member and the fourth conductive member respectively.

3. The ion generator according to claim 1 or 2, characterized in that: The first conductive member and the second conductive member are both formed in a rod shape, the first splicing unit is a short rod of a predetermined length, and connection structures are provided at both ends of the short rod.

4. The ion generator according to any one of claims 1 to 3, characterized in that: The third conductive member and the fourth conductive member are both formed in a rod shape, the second splicing unit is a short rod of a predetermined length, and connection structures are provided at both ends of the short rod.

5. The ion generator according to any one of claims 1 to 4, characterized in that: The first splicing unit and the second splicing unit have the same length.

6. The ion generator according to any one of claims 1 to 5, characterized in that: The first splicing unit and the second splicing unit are formed of metal material.

7. The ion generator according to claim 6, characterized in that The third splicing unit included in the conductive rod is a short rod of a predetermined length, the short rod extends along the first direction, and connection structures are provided at both ends of the short rod.

8. The ion generator according to claim 7, characterized in that The two outermost short rods of the conductive rod are connected to the first conductive component and the second conductive component by screws or rivets.

9. The ion generator according to any one of claims 1 to 8, characterized in that: Both ends of each of the conductive threads include a first hanging portion and a second hanging portion, respectively. The first hanging portion and the second hanging portion are hung on the third conductive component and the fourth conductive component, respectively.

10. The ion generator according to claim 9, characterized in that The first hanging part is a ring structure, and the second hanging part is a hook.

11. The ion generator according to any one of claims 1 to 10, characterized in that: The fourth splicing unit included in the conductive thread is a short thread of a predetermined length, the short thread extends along the first direction, and connection structures are provided at both ends of the short thread.

12. The ion generator according to any one of claims 1 to 11, characterized in that: The conductive rods and the conductive wires are arranged in parallel and at equal intervals.

13. The ion generator according to any one of claims 1 to 12, characterized in that: Also includes: A first insulating protection member and a second insulating protection member, wherein the first insulating protection member and the second insulating protection member are elastic, and the first insulating protection member and the second insulating protection member are respectively coated on the outside of the first conductive member and the second conductive member; The third insulating protector and the fourth insulating protector are elastic and are respectively covered on the outside of the third conductive component and the fourth conductive component.

14. The ion generator according to claim 13, characterized in that The first insulating protection member, the second insulating protection member, the third insulating protection member and the fourth insulating protection member are formed by an extrusion molding process.

15. The ion generator according to claim 13, characterized in that The first insulating protection member comprises a first insulating body and a first open portion provided in the first insulating body, wherein the first open portion accommodates a portion of each of the conductive rods and is open toward a side of the first insulating body facing away from the third insulating protection member; The second insulating protector includes a second insulating body and a second open portion provided in the second insulating body, wherein the second open portion accommodates a portion of each conductive rod and is open toward a side of the second insulating body facing away from the fourth insulating protector.

16. The ion generator according to claim 13, characterized in that The third insulating protection member comprises a third insulating body and a plurality of third opening portions provided on the third insulating body, each of the third opening portions being open toward a side facing away from the first insulating protection member, and the plurality of third opening portions being spaced apart from each other on the third insulating body along the second direction; The fourth insulating protector includes a fourth insulating body and a plurality of fourth openings formed on the fourth insulating body, each of the fourth openings being open toward a side facing away from the second insulating protector, and the plurality of fourth openings being spaced apart on the fourth insulating body along the second direction.

17. The ion generator according to claim 16, characterized in that The third insulating body comprises a first blocking wall located on a side of the plurality of conductive wires facing away from the first insulating protection member, and the plurality of third openings are formed on the first blocking wall; The fourth insulating body includes a second blocking wall located on a side of the plurality of conductive wires facing away from the second insulating protection member, and the plurality of fourth openings are formed on the second blocking wall.

18. The ion generator according to any one of claims 1 to 17, characterized in that: The ion generator further includes a casing formed of plastic, and the first electric mechanism and the second electric mechanism are incorporated into the casing formed as a frame.

19. A dust removal device, characterized in that: The dust removal device includes the ion generator according to any one of claims 1 to 18.

20. The dust removal device according to claim 19, characterized in that: It also includes a collecting device, which is used for collecting dust, and the collecting device is arranged separately from the ion generator.

Citation Information

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