Ion generator and dust remover
The modular ion generating device with adjustable dimensions and insulating protection addresses the limitations of fixed-size devices, ensuring effective operation and safety in diverse conditions.
Patent Information
- Application Number
- JP2024552111
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2023-12-13
- Filing Date
- 2024-05-21
- Publication Date
- 2026-01-19
AI Technical Summary
Existing ion generating devices have fixed dimensions and lack insulation and moisture-proofing, leading to ineffective operation in dirty and humid environments, and pose safety risks during cleaning.
A modular design with removably assembled conductive members and insulating protection members allows for adjustable dimensions and enhanced insulation, preventing creeping discharge and improving safety.
The device achieves customizable dimensions and improved performance in various environments by preventing high-voltage surface discharges and ensuring easy cleaning, enhancing versatility and safety.
Smart Images

Figure 2026501910000001_ABST
Abstract
Description
[Technical Field]
[0001] The present application belongs to the technical field of dust removal equipment, and in particular to an ion generating device and a dust removal device.
[0002] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims priority based on a Chinese application bearing application number 202311713981.X and entitled "Ion generating device and dust removing device" filed with the China Patent Office on December 13, 2023, the entire contents of which are incorporated herein by reference. [Background technology]
[0003] Prior art ion generating devices typically operate by discharging ions into a metal plate by placing a metal wire across the entire electrostatic collection plate, or in some other cases by discharging ions into the air or a metal plate by placing a specific number of needles.
[0004] However, the ion generating devices according to the above-mentioned prior art have relatively fixed dimensions and are unable to meet various size requirements.
[0005] In addition, since there is no insulation and moisture-proofing measures, metal wires are placed on all electrostatic dust collecting plates, which will cause creeping discharge in dirty and humid environments during use, which will eventually cause tracking and cause the ion field to become ineffective and not function properly.In the case of needle-based solutions, there are safety risks during cleaning, and the cleaner's hands are easily injured, which is disadvantageous to cleaning. Summary of the Invention
[0006] In view of this, an object of the present application is to provide an ion generating device and a dust removing device that can solve the above technical problems to some extent.
[0007] An embodiment of the present application provides an ion generating device, the ion generating device including a first electric mechanism and a second electric mechanism, the first electric mechanism including a first conductive member and a second conductive member spaced apart along a first direction, the first conductive member and the second conductive member both extending along a second direction perpendicular to the first direction, the first electric mechanism further including a plurality of conductive rods arranged between the first conductive member and the second conductive member, both ends of each of the conductive rods in the first direction being connected to the first conductive member and the second conductive member, the second electric mechanism including a third conductive member and a fourth conductive member spaced apart along the first direction, the third conductive member and the fourth conductive member both extending along the second direction, the second electric mechanism further including a plurality of conductive wires arranged between the third conductive member and the fourth conductive member, each of the conductive wires each of the first and second conductive members includes a plurality of first assembly units that are removably assembled in sequence in the second direction; each of the third and fourth conductive members includes a plurality of second assembly units that are removably assembled in sequence in the second direction; and / or each of the conductive rods includes a plurality of third assembly units that are removably assembled in sequence in the first direction; and each of the conductive wires includes a plurality of fourth assembly units that are removably assembled in sequence in the first direction.
[0008] Optionally, both ends of each of the conductive rods in the first direction are removably connected to the first conductive member and the second conductive member, respectively, and both ends of each of the conductive wires in the first direction are removably connected to the third conductive member and the fourth conductive member, respectively.
[0009] Optionally, the first conductive member and the second conductive member are both formed as rod-shaped members, the first assembly unit is a short rod of a predetermined length, and a connection structure is provided at each end of the short rod.
[0010] Optionally, the third conductive member and the fourth conductive member are both formed as rod-shaped members, the second assembly unit is a short rod of a predetermined length, and a connection structure is provided at each end of the short rod.
[0011] Optionally, the first assembly unit and the second assembly unit are the same length.
[0012] Optionally, the first assembly unit and the second assembly unit are made of a metal material.
[0013] Optionally, the third assembly unit of the conductive rod is a short rod of a predetermined length, the short rod extends along the first direction, and a connecting structure is provided at each end of the short rod.
[0014] Optionally, the two outermost short rods of said conductive rods are connected to said first conductive member and said second conductive member, respectively, by screws or rivets.
[0015] Optionally, both ends of each of the conductive wires include a first hook portion and a second hook portion, respectively, and the first hook portion and the second hook portion are configured to be hooked onto the third conductive member and the fourth conductive member.
[0016] Optionally, the first barb is a ring structure and the second barb is a hook.
[0017] Optionally, the fourth assembly unit of the conductive wire is a short wire of a predetermined length, the short wire extends along the first direction, and a connecting structure is provided at each end of the short wire.
[0018] Optionally, the conductive rods and the conductive wires are arranged parallel and equally spaced apart.
[0019] Optionally, the ion generating device further includes a first insulating protection member, a second insulating protection member, a third insulating protection member, and a fourth 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 cover the outside of the first conductive member and the second conductive member, respectively, and the third insulating protection member and the fourth insulating protection member are elastic and the third insulating protection member and the fourth insulating protection member cover the outside of the third conductive member and the fourth conductive member, respectively.
[0020] Optionally, the first insulating protective member, the second insulating protective member, the third insulating protective member and the fourth insulating protective member are all formed by an extrusion process.
[0021] Optionally, the first insulating protection member includes a first insulating protection member body and a first opening portion provided in the first insulating protection member body, the first opening portion accommodating a portion of each of the conductive rods and opening toward a side of the first insulating protection member body away from the third insulating protection member; and the second insulating protection member includes a second insulating protection member body and a second opening portion provided in the second insulating protection member body, the second opening portion accommodating a portion of each of the conductive rods and opening toward a side of the second insulating protection member body away from the fourth insulating protection member.
[0022] Optionally, the third insulating protection member includes a third insulating protection member body and a plurality of third openings provided in the third insulating protection member body, each of the third openings being open toward a side away from the first insulating protection member, and the plurality of third openings being provided at intervals in the third insulating protection member body along the second direction; The fourth insulating protection member includes a fourth insulating protection member main body and a plurality of fourth openings provided in the fourth insulating protection member main body, each of the fourth openings opening toward a side away from the second insulating protection member, and the plurality of fourth openings being provided at intervals on the fourth insulating protection member main body along the second direction.
[0023] Optionally, the third insulating protection member body includes a first wall located on a side of each of the plurality of conductive wires that is spaced apart from the first insulating protection member, and the plurality of third openings are provided in the first wall, and the fourth insulating protection member body includes a second wall located on a side of each of the plurality of conductive wires that is spaced apart from the second insulating protection member, and the plurality of fourth openings are provided in the second wall.
[0024] Optionally, the ion generating device further comprises a housing, the housing being made of plastic, and the first electric mechanism and the second electric mechanism being housed within the housing formed as a frame.
[0025] An embodiment of the present application further provides a dust removal device, which includes the above-mentioned ion generating device.
[0026] Optionally, the dust removal device further includes a collection device for collecting dust, the collection device being installed separately from the ion generation device.
[0027] In the ion generating device according to the present application, when the first conductive member and the second conductive member each include a plurality of first assembly units that are removably assembled in sequence in the second direction, and the third conductive member and the fourth conductive member each include a plurality of second assembly units that are removably assembled in sequence in the second direction, the number of first assembly units of the first conductive member, the number of first assembly units of the second conductive member, the number of second assembly units of the third conductive member, and the number of second assembly units of the fourth conductive member can be adjusted to adjust the dimension of the ion generating device in the second direction, thereby making it possible to change the dimension of the ion generating device in the second direction.
[0028] When each of the conductive wires includes a plurality of third assembly units that are removably assembled in sequence in the first direction, and each of the conductive rods includes a plurality of fourth assembly units that are removably assembled in sequence in the first direction, the ion generating device of the present application can adjust the dimension of the ion generating device in the first direction by adjusting the number of third assembly units and the number of fourth assembly units, thereby making it possible to change the dimension of the ion generating device in the first direction.
[0029] The ion generating device according to the present application is configured such that the first and second conductive members each include a plurality of first assembly units removably assembled in sequence in the second direction, the third and fourth conductive members each include a plurality of second assembly units removably assembled in sequence in the second direction, each conductive rod includes a plurality of third assembly units removably assembled in sequence in the first direction, and each conductive wire includes a plurality of fourth assembly units removably assembled in sequence in the first direction. This allows the ion generating device according to the present application to have variable dimensions in both the first and second directions, which effectively improves the versatility of the ion generating device and enables different dimensional requirements to be met, enabling ion generating devices with customized exterior dimensions to be quickly realized.
[0030] In order to make the above-mentioned objects, features and advantages of the present application more apparent, preferred embodiments will be described in detail below with reference to the drawings. [Brief explanation of the drawings]
[0031] In order to more clearly explain the technical solutions of the embodiments of the present application, the drawings used in the embodiments will be briefly described below. The drawings described are only for illustrating some embodiments of the present application and are not intended to limit the scope. Those skilled in the art can obtain other related drawings based on these drawings without using inventive abilities. [Figure 1] 2 is a schematic diagram of a first electrical mechanism of an ion generating device according to an embodiment of the present application. [Figure 2] FIG. 3 is a schematic partial configuration diagram of a second electric mechanism of the ion generating device according to the embodiment of the present application. [Figure 3] 1 is a schematic perspective view of a partial configuration of an ion generating device according to an embodiment of the present application. [Figure 4] FIG. 2 is a schematic exploded view of a partial configuration of the ion generating device according to the embodiment of the present application. [Figure 5] FIG. 2 is a schematic partial configuration diagram of a first electric mechanism of the ion generating device according to the embodiment of the present application. [Figure 6] FIG. 2 is another schematic exploded view of the ion generating device according to the embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION
[0032] The technical solution of the present application will be described clearly and completely below with reference to the drawings. The described embodiments are only some of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without using inventive ability also fall within the scope of protection of the present application.
[0033] In the description of this application, directions or positional relationships expressed by terms such as "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer" are based on the drawings and are intended merely to simplify and explain this application, and do not express or imply that the relevant devices or elements necessarily have a specific orientation or are configured in a specific direction, and therefore are not intended to limit this application. Furthermore, the terms "first," "second," and "third" are intended merely for explanation, and do not express or imply relative importance.
[0034] In the description of this application, unless otherwise specified, the terms "attached," "coupled," and "connected" should be understood in a broad sense. For example, they may refer to a fixed connection, a detachable connection, or an integral connection. They may also refer to a mechanical connection or an electrical connection. They may also refer to a direct connection, an indirect connection via an intermediate, or internal communication between two elements. Those skilled in the art will be able to understand the specific meanings of the above terms in this application according to the specific circumstances.
[0035] Furthermore, if it is feasible for a person skilled in the art, the technical solutions of each embodiment may be combined with each other. If the combination of technical solutions is inconsistent or impractical, such combination of technical solutions does not exist and does not fall within the scope of protection of this application.
[0036] The embodiments of the present application provide an ion generating device, the structure and working principle of which will be specifically described below with reference to the drawings.
[0037] An ion generating device according to an embodiment of the present application includes a first electric mechanism 100 and a second electric mechanism 200. In the embodiment, the first electric mechanism 100 includes a first conductive member 110 and a second conductive member 120 spaced apart along a first direction F1, and 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 electric mechanism 100 further includes a plurality of conductive rods 130 arranged between the first conductive member 110 and the second conductive member 120, and both ends of each conductive rod 130 in the first direction F1 are connected to the first conductive member 110 and the second conductive member 120, respectively.
[0038] In the embodiment, the second electric mechanism 200 includes a third conductive member 210 and a fourth conductive member 220 spaced apart 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 electric mechanism 200 further includes a plurality of conductive wires 230 arranged between the third conductive member 210 and the fourth conductive member 220, and both ends of each conductive wire 230 in the first direction F1 are connected to the third conductive member 210 and the fourth conductive member 220, respectively. The plurality of conductive wires 230 and the plurality of conductive rods 130 are arranged in one-to-one correspondence along the third direction F3, thereby allowing each conductive rod 130 to discharge to its corresponding conductive wire 230.
[0039] In an embodiment, each of the first conductive member 110 and the second conductive member 120 includes a plurality of first assembly units that are removably assembled in sequence in the second direction F2, each of the third conductive member 210 and the fourth conductive member 220 includes a plurality of second assembly units that are removably assembled in sequence in the second direction F2, and / or each of the conductive rods 130 includes a plurality of third assembly units that are removably assembled in sequence in the first direction F1, and each of the conductive wires 230 includes a plurality of fourth assembly units that are removably assembled in sequence in the first direction F1.
[0040] In this way, in the ion generating device according to the embodiments of the present application, when the first conductive member 110 and the second conductive member 120 each include a plurality of first assembly units that are removably assembled in sequence in the second direction F2, and the third conductive member 210 and the fourth conductive member 220 each include a plurality of second assembly units that are removably assembled in sequence in the second direction F2, by adjusting the number of first assembly units of the first conductive member 110, the number of first assembly units of the second conductive member 120, the number of second assembly units of the third conductive member 210, and the number of second assembly units of the fourth conductive member 220, the dimension of the ion generating device in the second direction F2 can be adjusted, and the dimension of the ion generating device in the second direction F2 can be changed.
[0041] Similarly, if each of the conductive rods 130 includes a plurality of third assembly units that are removably assembled in sequence in the first direction F1, and each of the conductive wires 230 includes a plurality of fourth assembly units that are removably assembled in sequence in the first direction F1, the ion generating device according to the embodiments of the present application can adjust the dimensions of the ion generating device in the first direction F1 by adjusting the number of third assembly units and the number of fourth assembly units, thereby making it possible to change the dimensions of the ion generating device in the first direction F1.
[0042] In this manner, the ion generating device 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 assembly units that are removably assembled in sequence in the second direction F2, the third conductive member 210 and the fourth conductive member 220 each include a plurality of second assembly units that are removably assembled in sequence in the second direction F2, each conductive rod 130 includes a plurality of third assembly units that are removably assembled in sequence in the first direction F1, and each conductive wire 230 includes a plurality of fourth assembly units that are removably assembled in sequence in the first direction F1. As a result, the ion generating device according to the embodiment of the present application has variable dimensions in both the first direction F1 and the second direction F2, which effectively improves the versatility of the ion generating device, enables different dimensional requirements to be met, and enables ion generating devices with customized exterior dimensions to be quickly realized.
[0043] In the embodiment, the first conductive member 110 and the second conductive member 120 are each formed as a rod, and the first assembly unit is a short rod of a predetermined length. Each end of the short rod is provided with a connecting structure, e.g., a connecting protrusion on one end and a connecting recess on the other end. In this manner, adjacent short rods are connected to each other by inserting the connecting protrusion of one short rod into the connecting recess of the other short rod and engaging the recess. This assembly method eliminates the need for additional connecting components, simplifying the structure and assembly process of the ion generator. This allows the lengths of the first conductive member 110 and the second conductive member 120 in the second direction F2 to be adjusted by increasing or decreasing the number of short rods.
[0044] Similarly, in the embodiment, the third conductive member 210 and the fourth conductive member 220 are each formed as a rod, and the second assembly unit is a short rod of a predetermined length, with a connection structure provided at each end of the short rod. For example, as described above, one end is provided with a connection protrusion and the other end is provided with a connection recess. In this way, adjacent short rods are connected to each other by inserting the connection protrusion of one short rod into the connection recess of the other short rod and engaging within the recess. This allows the lengths of the third conductive member 210 and the fourth conductive member 220 in the second direction F2 to be adjusted by increasing or decreasing the number of short rods.
[0045] In an embodiment, the first assembly unit and the second assembly unit may have the same length. This allows the first conductive member 110, the second conductive member 120, the third conductive member 210, and the fourth conductive member 220 to have the same length in the second direction F2 by installing the same number of assembly units, which contributes to the design of the exterior dimensions of the ion generator and the assembly of the ion generator. Also, for example, each of the first assembly unit and the second assembly unit is made of a metal material such as aluminum.
[0046] In an embodiment, the length of the ion generating device in the second direction F2 can be changed by changing the number of first assembly units and the number of second assembly units. When the number increases, the number of conductive rods 130 and conductive wires 230 is increased accordingly in accordance with the increase in the length of each of the first conductive member 110, the second conductive member 120, the third conductive member 210 and the fourth conductive member 220. When the number decreases, the number of conductive rods 130 and conductive wires 230 is decreased accordingly in accordance with the decrease in the length of each of the first conductive member 110, the second conductive member 120, the third conductive member 210 and the fourth conductive member 220.
[0047] In the embodiment, the third assembly unit of the conductive rods 130 is, for example, a short rod of a predetermined length, which extends, for example, along the first direction F1. In the embodiment, both ends of the short rod are provided with a connection structure for connecting adjacent short rods. For example, the short rods have a protrusion at one end and a recess at the other end, and the protrusion of one short rod is inserted into the recess of the adjacent short rod to connect the adjacent short rods.
[0048] Illustratively, the two outermost short rods of the conductive rods 130 are connected to the first conductive member 110 and the second conductive member 120, respectively, by, for example, screws or rivets, where both the screws and rivets are removable.
[0049] In the ion generating device according to the embodiment of the present application, both ends of each conductive wire 230 include a first hook portion and a second hook portion, respectively, which are hooked onto the third conductive member 210 and the fourth conductive member 220. Here, exemplarily, the first hook portion has a ring structure, for example, and the second hook portion has a hook, for example, which will be described in detail below.
[0050] In the embodiment, the fourth assembly unit of the conductive wire 230 is, for example, a short wire of a predetermined length, extending, for example, along the first direction F1. In the embodiment, both ends of the short wire are provided with connection structures for connecting adjacent short wires. For example, the short wire has a hook on one end and a loop on the other end, and the hook of the short wire is hooked into the loop of the adjacent short wire, thereby realizing the connection between the adjacent short wires. In this way, using the connection between the hook and the loop structure reduces the difficulty of processing the short wire and contributes to the rapid assembly of the conductive wire 230.
[0051] In the embodiment, for example, a plurality of hooks are provided on the third conductive member 210 along the second direction F2, and these hooks are provided in one-to-one correspondence with the conductive wires 230, so that each hook can be hooked onto the annular structure of the short rod of the conductive wire 230 that is closest to the third conductive member 210. Correspondingly, for example, a plurality of annular structures are provided on the fourth conductive member 220 along the second direction F2, and these annular structures are provided in one-to-one correspondence with the conductive wires 230, so that the hooks of the short rod of each conductive wire 230 that is closest to the fourth conductive member 220 can be hooked onto each annular structure.
[0052] In addition, in the embodiment, the conductive rods 130 and the conductive wires 230 are arranged parallel to each other and at equal intervals. For example, the same number of hooks are provided on each second assembly unit of the third conductive member 210, and these hooks are arranged at equal intervals. The same number of ring structures are provided on each second assembly unit of the fourth conductive member 220, and these ring structures are arranged at equal intervals. That is, in the embodiment, in the first direction F1, there are ring structures on the fourth conductive member 220 that are arranged corresponding to each hook on the third conductive member 210.
[0053] In the embodiment, since the conductive wire 230 discharges to the conductive rod 130, the conductive wire 230 is substantially formed as a discharge wire, and since the conductive rod 130 is a discharge target, the conductive rod 130 is substantially formed as a discharge rod. Ionized ions are generated by discharging from the discharge wire to the discharge target.
[0054] As described above, in the ion generating device according to the embodiment of the present application, both ends in the first direction F1 of each conductive rod 130 are detachably connected to the first conductive member 110 and the second conductive member 120, respectively, and both ends in the first direction F1 of each conductive wire 230 are detachably connected to the third conductive member 210 and the fourth conductive member 220, respectively. This is advantageous for adjusting the external dimensions of the ion generating device.
[0055] The ion generating device according to the embodiment of the present application further includes a first insulating protection member, a second insulating protection member 400, a third insulating protection member, and a fourth insulating protection member 500. In the embodiment, the first insulating protection member and the second insulating protection member 400 are elastic, which can better cover the first conductive member 110 and the second conductive member 120, and the elastic covering allows the first conductive member 110 and the second conductive member 120 to be directly connected to the first insulating protection member and the second insulating protection member 400, respectively, without the need for additional connecting parts (e.g., parts such as screws).
[0056] In the embodiment, the first insulating protection member and the second insulating protection member 400 cover the outside of the first conductive member 110 and the second conductive member 120, respectively. In this way, the first insulating protection member and the second insulating protection member 400 can, on the one hand, provide insulating protection, and, on the other hand, can improve the resistance of the ion generating device to contamination and humid environments by covering them. In the embodiment, the first insulating protection member covers most of the outside of the first conductive member 110, leaving the portion of the first conductive member 110 that connects with the conductive rod 130 exposed. Similarly, the second insulating protection member 400 covers most of the outside of the second conductive member 120, leaving the portion of the second conductive member 120 that connects with the conductive rod 130 exposed.
[0057] Similarly, the third insulating protection member and the fourth insulating protection member 500 are elastic, and thus can better cover the third conductive member 210 and the fourth conductive member 220, respectively, and the elastic covering allows the third conductive member 210 and the fourth conductive member 220 to be directly connected to the first insulating protection member and the second insulating protection member 400, respectively, without the need to install separate connecting parts (e.g., parts such as screws).
[0058] The third insulating protection member and the fourth insulating protection member 500 cover the outside of the third conductive member 210 and the fourth conductive member 220, respectively. In this way, the third insulating protection member and the fourth insulating protection member 500 can, on the one hand, provide insulating protection, and, on the other hand, can improve the resistance of the ion generator to contamination and humid environments by covering them. In this embodiment, the third insulating protection member covers most of the outside of the third conductive member 210, leaving the portion of the third conductive member 210 that connects to the conductive wire 230 exposed. Similarly, the fourth insulating protection member 500 covers most of the outside of the fourth conductive member 220, leaving the portion of the fourth conductive member 220 that connects to the conductive wire 230 exposed.
[0059] In an embodiment, the covering action of the first insulating protection member, the second insulating protection member 400, the third insulating protection member and the fourth insulating protection member 500 causes the first insulating protection member, the second insulating protection member 400, the third insulating protection member and the fourth insulating protection member 500 to essentially form insulating boots, providing isolation coverings for the respective corresponding conductive members.
[0060] In this embodiment, each of the first insulating protective member, the second insulating protective member 400, the third insulating protective member and the fourth insulating protective member 500 is made of, for example, rubber.
[0061] In the ion generating device according to the embodiment of the present application, the first insulating protection member, the second insulating protection member 400, the third insulating protection member, and the fourth insulating protection member 500 are formed by an extrusion molding process. In the extrusion molding process, a long protective member base is first extruded, and then a long protective member base portion of a corresponding length is cut out from the corresponding protective member base based on the required length of the first insulating protection member to form the first insulating protection member. Since the second insulating protection member 400, the third insulating protection member, and the fourth insulating protection member 500 are also formed in this manner, a description thereof will be omitted here.
[0062] In the embodiment, the first insulating protection member and the third insulating protection member are installed at a distance from each other in the third direction F3, so that a certain gap is provided between them, thereby preventing creeping discharge between them. Similarly, the second insulating protection member 400 and the fourth insulating protection member 500 are installed at a distance from each other in the third direction F3, so that a certain gap is provided between them, thereby preventing creeping discharge between them. In the embodiment, the third direction F3 is, for example, perpendicular to both the first direction F1 and the second direction F2.
[0063] Furthermore, since there is no insulating barrier on the outside of the second insulating protection member 400, the first electric mechanism 100 can be easily removed to the outside.
[0064] In the ion generating device according to the embodiment of the present application, similarly to the above, the first insulating protection member further includes a first opening provided in the first insulating protection member body. The first opening accommodates a portion of each conductive rod 130 and opens toward the side away from the third insulating protection member. This allows moisture in the air to be discharged to the outside through the first opening, preventing creeping discharge caused by moisture flowing toward the conductive rods 130. Similarly, the second insulating protection member 400 further includes a second opening 420 provided in the second insulating protection member body. Each second opening 420 accommodates a portion of each conductive rod 130 and opens toward the side away from the fourth insulating protection member 500, the beneficial effects of which will not be described here. Each of the first opening and the second opening 420 may be formed as a drain port. By providing the drain port, moisture in the air can be discharged to the outside and preventing creeping discharge caused by moisture flowing toward the conductive rods 130. Because there is no insulating barrier outside the first insulating protective member, the first electric mechanism 100 can be easily removed to the outside. The first open portion and the second open portion 420 contribute to the discharge of moisture, keeping the inside of the ion generating device dry, and improving pressure resistance, moisture resistance, and dirt resistance.
[0065] In an embodiment, exemplarily, the first opening is, for example, a large drainage hole extending continuously from the first end of the first insulating protection member body to the second end of the first insulating protection member body, which on the one hand facilitates the replacement of the conductive rod through the drainage hole and on the other hand facilitates the rapid discharge of moisture and condensed water.
[0066] In the ion generating device according to the embodiment of the present application, similarly to the above, the third insulating protection member includes a third insulating protection member main body and a plurality of third openings provided in the third insulating protection member main body, each of which opens toward the side away from the first insulating protection member, and the plurality of third openings are provided at intervals on the third insulating protection member main body along the second direction F2. The fourth insulating protection member 500 includes a fourth insulating protection member main body and a plurality of fourth openings 510 provided in the fourth insulating protection member main body, each of which opens toward the side away from the second insulating protection member 400, and the plurality of fourth openings 510 are provided at intervals on the fourth insulating protection member main body along the second direction F2. Here, the third openings and the fourth openings 510 contribute to the discharge of moisture in the air to the outside, thereby preventing creeping discharge caused by moisture flowing toward the conductive rod 130.
[0067] In the embodiment, the third insulating protection member body includes a first wall located on a side of each conductive wire 230 that is away from the first insulating protection member, and a plurality of third openings are provided in the first wall, each of which is formed as a notch. Similarly, the fourth insulating protection member body includes a second wall located on a side of each conductive wire 230 that is away from the second insulating protection member, and a plurality of fourth openings are provided in the second wall, each of which is formed as a notch.
[0068] In the embodiment, the first opening portion and the third opening portion are arranged back to back, and the second opening portion and the fourth opening portion are arranged back to back, thereby enabling moisture to be discharged from both sides in the third direction of the overall structure formed by the first electric mechanism and the second electric mechanism.
[0069] In the embodiment, the ion generating device further includes a housing 300. The housing 300 is made of, for example, plastic, and the first electric mechanism 100 and the second electric mechanism 200 can be housed within the housing 300, which is formed as a frame. Due to the accumulation of dirt on the housing 300 and each conductive member, and the adverse effects of a humid environment, high-voltage surface discharges 600 are likely to occur between the first electric mechanism 100 and the second electric mechanism 200, which can result in the performance of the entire electric field being impaired and even the electric field being rendered ineffective, directly impairing the purification efficiency of the product. By providing an isolation coating using the above-mentioned insulating protective members, the occurrence of high-voltage surface discharges 600 can be effectively prevented. The insulating boots are made of insulating rubber and have excellent insulation, water repellency, and stain resistance. The housing 300, i.e., the outer frame, of the ion generator can also be extruded in a long shape and cut into left, right, upper, and lower frame sections of different lengths to obtain the required length, thereby enabling ion generators with customized dimensions to be quickly realized. A circuit control board 700 is installed inside the upper frame section of the housing 300 (e.g., potted inside with a sealant), and a power supply voltage is provided through an outer interface 710. A drainage means for draining water may also be installed in the outer frame.
[0070] In addition, the second electric mechanism 200 faces outward, allowing it to be directly removed for cleaning. In the first electric mechanism 100, the first insulating protection member and the second insulating protection member 400 and their respective outer frame portions are assembled via dovetail grooves so that they can be quickly inserted and removed (i.e., dovetail grooves are provided on the inside of the frame portions, and long protrusions that fit the dovetail grooves are provided on the outside of the corresponding insulating protection members, with the dovetail grooves and protrusions both extending along the extension direction of the insulating protection members, i.e., the second direction F2). This contributes to the rapid customization of various dimensions of the electrodes of the ion generating device, as well as the rapid cleaning and maintenance.
[0071] In addition, in the embodiment, the gap between the first insulating protective member and the third insulating protective member and the gap between the second insulating protective member and the fourth insulating protective member are both connected to the external environment via through holes in the outer frame, which can contribute to the discharge of moisture in these gaps to the outside.
[0072] An embodiment of the present application further provides a dust removal device, which includes the above-mentioned ion generating device, and its beneficial effects are similar to those of the above-mentioned ion generating device, so that the description thereof will be omitted here.
[0073] The dust removal device according to the embodiment of the present application further includes a collection device for collecting dust, which is installed separately from the ion generation device.
[0074] In one embodiment, the ion generator provides a charging electrode (for charging contaminants), and the collector provides a collecting electrode (for adsorbing the charged contaminants) to perform purification. In other words, the ion generator and the collector are installed separately. The advantage of this installation method is that, since the ion generator and the collector have slightly different operating voltages and cleaning methods, the separate installation method is more advantageous than an integrated installation method in that it allows for easier design, manufacturing, and assembly of the ion generator and the collector, and allows for more efficient cleaning of the ion generator and the collector. Therefore, there is no need to consider the problem of creeping discharge between the integrated ion generator and the dust collection mechanism in the collector, which is caused by the relatively high operating voltage of the ion generator, or the negative impact on the ion generator caused by cleaning the collector by immersing it in water.
[0075] The above are merely optional examples of the present application and do not limit the scope of protection of the present application. Equivalent structural modifications made based on the specification and drawings of the present application, or direct / indirect use in other related technical fields, within the concept of the present application, also fall within the scope of protection of the present application.
[0076] (Industrial Applicability) The present application provides an ion generating device and a dust removing device, which can be sized in different directions, effectively improving versatility, allowing customized dimensions to be quickly achieved, and preventing creeping discharge.
[0077] Moreover, the ion generating device and the dust removing device according to the present application are feasible and can be widely used in the dust removing field. [Explanation of symbols]
[0078] 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 300 Housing 400 Second insulating protective member 420 2nd open section 500 Fourth insulating protective member 510 4th opening 600 High voltage creeping discharge 700 Circuit Control Board 710 Interface F1 1st direction F2 2nd direction F3 3rd direction
Claims
1. a first electric mechanism and a second electric mechanism; the first electrical mechanism includes a first conductive member and a second conductive member spaced apart along a first direction, the first conductive member and the second conductive member both extending along a second direction perpendicular to the first direction, the first electrical mechanism further includes a plurality of conductive rods disposed between the first conductive member and the second conductive member, and both ends of each of the conductive rods in the first direction are connected to the first conductive member and the second conductive member, respectively; the second electric mechanism includes a third conductive member and a fourth conductive member spaced apart along the first direction, the third conductive member and the fourth conductive member both extending along the second direction; the second electric mechanism further includes a plurality of conductive wires arranged between the third conductive member and the fourth conductive member, both ends of each of the conductive wires in the first direction being connected to the third conductive member and the fourth conductive member, respectively; the plurality of conductive rods and the plurality of conductive wires are arranged in a one-to-one correspondence in the third direction, so that each of the conductive wires can discharge to the corresponding conductive rod; each of the first conductive member and the second conductive member includes a plurality of first assembly units that are removably assembled in sequence in the second direction, and each of the third conductive member and the fourth conductive member includes a plurality of second assembly units that are removably assembled in sequence in the second direction; and / or Each of the conductive rods includes a plurality of third assembly units that are removably assembled in sequence in the first direction, and each of the conductive wires includes a plurality of fourth assembly units that are removably assembled in sequence in the first direction. An ion generating device characterized by:
2. Both ends of each of the conductive rods in the first direction are removably connected to the first conductive member and the second conductive member, respectively, and both ends of each of the conductive wires in the first direction are removably connected to the third conductive member and the fourth conductive member, respectively.
2. The ion generating device according to claim 1, wherein the ion generating device is a gas-permeable gas.
3. The first conductive member and the second conductive member are both formed as rod-shaped members, the first assembly unit is a short rod of a predetermined length, and a connection structure is provided at each end of the short rod.
3. The ion generating device according to claim 1 or 2.
4. The third conductive member and the fourth conductive member are both formed as rod-shaped members, the second assembly unit is a short rod of a predetermined length, and a connection structure is provided at each end of the short rod.
4. The ion generating device according to claim 1, wherein the ion generating device is a gas-permeable gas.
5. The first assembly unit and the second assembly unit have the same length.
5. The ion generating device according to claim 1, wherein the ion generating device is a gas-permeable gas.
6. The first assembly unit and the second assembly unit are made of a metal material.
6. The ion generating device according to claim 1, wherein the ion generating device is a gas-permeable gas.
7. The third assembly unit of the conductive rod is a short rod having a predetermined length, the short rod extends along the first direction, and a connecting structure is provided at each end of the short rod.
7. The ion generating device according to claim 6.
8. The two outermost short rods of the conductive rods are connected to the first conductive member and the second conductive member by screws or rivets, respectively.
8. The ion generating device according to claim 7.
9. Both ends of each of the conductive wires include a first hook portion and a second hook portion, respectively, and the first hook portion and the second hook portion are provided so as to be hooked onto the third conductive member and the fourth conductive member.
9. The ion generating device according to claim 1, wherein the ion generating device is a gas-permeable gas.
10. The first hook portion has a ring structure, and the second hook portion has a hook.
10. The ion generating device according to claim 9.
11. The fourth assembly unit of the conductive wire is a short wire having a predetermined length, the short wire extends along the first direction, and a connecting structure is provided at each end of the short wire. The ion generating device according to any one of claims 1 to 10.
12. The conductive rods and the conductive wires are arranged parallel to each other and at equal intervals. The ion generating device according to any one of claims 1 to 11.
13. The device further includes a first insulating protection member, a second insulating protection member, a third insulating protection member, and a fourth insulating protection member, the first insulating protection member and the second insulating protection member have elasticity, and the first insulating protection member and the second insulating protection member cover the outside of the first conductive member and the second conductive member, respectively; The third insulating protection member and the fourth insulating protection member have elasticity, and the third insulating protection member and the fourth insulating protection member cover the outside of the third conductive member and the fourth conductive member, respectively. The ion generating device according to any one of claims 1 to 12.
14. The first insulating protective member, the second insulating protective member, the third insulating protective member, and the fourth insulating protective member are all formed by an extrusion molding process.
14. The ion generating device according to claim 13.
15. the first insulating protection member includes a first insulating protection member body and a first opening portion provided in the first insulating protection member body, the first opening portion accommodating a portion of each of the conductive rods and opening toward a side of the first insulating protection member body away from the third insulating protection member; The second insulating protection member includes a second insulating protection member body and a second opening portion provided in the second insulating protection member body, the second opening portion accommodating a portion of each of the conductive rods and opening toward a side of the second insulating protection member body away from the fourth insulating protection member.
14. The ion generating device according to claim 13.
16. the third insulating protection member includes a third insulating protection member body and a plurality of third open portions provided in the third insulating protection member body, each of the third open portions being open toward a side away from the first insulating protection member, and the plurality of third open portions being provided at intervals in the third insulating protection member body along the second direction; The fourth insulating protection member includes a fourth insulating protection member body and a plurality of fourth openings provided in the fourth insulating protection member body, each of the fourth openings being open toward a side away from the second insulating protection member, and the plurality of fourth openings being provided at intervals in the fourth insulating protection member body along the second direction.
14. The ion generating device according to claim 13.
17. the third insulating protection member body includes a first wall located on a side of each of the plurality of conductive wires that is spaced from the first insulating protection member, and the plurality of third openings are provided in the first wall; The fourth insulating protection member body includes a second wall located on a side of each of the plurality of conductive wires that is spaced from the second insulating protection member, and the plurality of fourth openings are provided in the second wall.
17. The ion generating device according to claim 16.
18. The ion generating device further includes a housing made of plastic, and the first electric mechanism and the second electric mechanism are housed in the housing formed as a frame. The ion generating device according to any one of claims 1 to 17.
19. The ion generating device according to any one of claims 1 to 18 is included. A dust removal device characterized by:
20. The apparatus further includes a collector for collecting dust, the collector being disposed separately from the ion generating apparatus.
20. The dust removal device according to claim 19.
Citation Information
Patent Citations
Electric dust collector
JP1977121870A
Ion generating method, ion generating electrode, and ionizer module
JP2011009235A