Nanometer charged water particle generating device and air conditioner
By building a high-voltage pack and designing a simple assembly structure in the nano charged water particle generation device, the problem of insufficient electricity safety for existing devices is solved, and higher safety and stability are achieved.
Patent Information
- Application Number
- CN202421401435.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-18
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2034-06-18
AI Technical Summary
Existing nano charged water particle generation devices are difficult to effectively protect the safety of electrical components, resulting in potential electricity safety risks.
A nano charged water particle generator is designed, which includes an outer shell, a built-in high-voltage pack and a release needle. By inserting the high-voltage pack into the outer shell, the overall volume is reduced, and the protection of the high-voltage pack and the stability of the device are improved through structures such as removable connection and positioning of the convex strips.
Through the built-in high-voltage pack and simplifying the assembly process, the power safety and performance stability of the device are improved, so that the nano charged water particle generator can operate stably for a long time.
Smart Images

Figure CN222849392U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of air purification, in particular to a nano-charged water particle generating device and an air conditioner. Background Art
[0002] As people's requirements for indoor environment become higher and higher, higher requirements are put forward for the volume and purification efficiency of air purification equipment. Air purifiers are usually composed of negative ion generators, micro fans, air filters, etc. Among them, negative ion generators can only produce negative ions in a short range and small range. At present, negatively charged water ion generators are used to replace negative ion generators, and nano-scale water particles are used as carriers of negative charges, so that the existence time of negative ions is prolonged and the effective range is expanded.
[0003] The inventors have found through research that it is usually difficult to effectively protect the safety of electrical components in the nano-charged water particle generating devices in the prior art, which can easily cause hidden dangers to the user's electrical safety. Utility Model Content
[0004] The purpose of the utility model is to provide a nano-charged water particle generating device and an air conditioner, which can enhance the safety of electricity use, while reducing the overall volume of the device, having greater versatility, being convenient for customers to assemble, and having greater product performance stability.
[0005] The embodiment of the utility model is achieved as follows:
[0006] In a first aspect, the utility model provides a nano-charged water particle generating device, comprising:
[0007] A housing, wherein a receiving cavity is provided inside the housing;
[0008] A built-in high-voltage package, wherein the built-in high-voltage package is arranged in the accommodating cavity;
[0009] At least one release needle is provided on the housing and connected to the built-in high-voltage package.
[0010] In an optional embodiment, the shell includes a shell having a accommodating cavity and a cover plate, an opening is provided on a first side of the shell, and the built-in high-voltage package is arranged in the accommodating cavity through the opening; the cover plate is connected to the shell to cover the first side.
[0011] In an optional embodiment, the shell and the cover plate are detachably connected.
[0012] In an optional embodiment, at least one snap protrusion is provided on the shell, and snap rings corresponding to the number of the snap protrusions are provided on the cover plate, and the snap rings cooperate with the snap protrusions to achieve a detachable connection between the shell and the cover plate.
[0013] In an optional embodiment, at least one first positioning ridge and a plurality of second positioning ridges are provided on the inner wall of the shell, the first positioning ridge is provided on the inner wall of the second side surface of the shell, and the plurality of second positioning ridges are evenly provided on the inner walls of the third side surface and the fourth side surface of the shell;
[0014] The second side surface, the third side surface and the fourth side surface are all adjacent to the first side surface, and the third side surface and the fourth side surface are located on both sides of the second side surface and are opposite to each other.
[0015] In an optional embodiment, a positioning ring is provided on the surface of the cover plate facing the first side surface, and the positioning ring cooperates with the first positioning ridge and the second positioning ridge to lock the position of the built-in high-voltage package in the accommodating cavity.
[0016] In an optional embodiment, the first positioning convex strip and the second positioning convex strip are both provided with notches, and the notches are used to enhance the gas flow in the accommodating cavity.
[0017] In an optional embodiment, the cover plate is provided with sockets corresponding to the number of the release needles, and the release needles are connected to the built-in high-voltage package through the sockets.
[0018] In an optional embodiment, the cover plate is provided with penetrating heat dissipation holes.
[0019] In a second aspect, the utility model provides an air conditioner, comprising a nano-charged water particle generating device as described in any one of the aforementioned embodiments.
[0020] The beneficial effects of the embodiments of the utility model are:
[0021] The utility model provides a nano-charged water particle generating device, which includes a shell, a built-in high-voltage package and at least one release needle. The shell is provided with a receiving cavity inside, the built-in high-voltage package is arranged in the receiving cavity, and the release needle is penetrated on the shell and connected to the built-in high-voltage package. The utility model changes the previous external high-voltage package into a built-in high-voltage package, reduces the overall volume of the nano-charged water particle generating device, and can be more convenient when assembling the air conditioner. At the same time, because the high-voltage package is built-in, the built-in high-voltage package is better protected, which improves the product performance and product stability, so that the nano-charged water particle generating device can work stably for a long time. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] In order to more clearly illustrate the technical solutions of the embodiments of the utility model, the drawings required for use in the embodiments will be briefly introduced below. It should be understood that the following drawings only show certain embodiments of the utility model 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 paying creative work.
[0023] Figure 1 A schematic diagram of a nano-charged water particle generating device provided in an embodiment of the utility model;
[0024] Figure 2 A schematic diagram of the housing structure provided by an embodiment of the utility model;
[0025] Figure 3 A schematic diagram of the cover plate structure provided in an embodiment of the utility model.
[0026] icon:
[0027] 100-housing; 110-shell; 111-accommodating cavity; 112-snapping protrusion; 113-first positioning convex strip; 114-second positioning convex strip; 120-cover plate; 121-snapping ring; 122-positioning ring; 123-heat dissipation hole; 124-jack; 200-release pin. DETAILED DESCRIPTION
[0028] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model clearer, the technical scheme in the embodiments of the utility model will be clearly and completely described below in conjunction with the drawings in the embodiments of the utility model. Obviously, the described embodiments are part of the embodiments of the utility model, not all of the embodiments. Generally, the components of the embodiments of the utility model described and shown in the drawings here can be arranged and designed in various different configurations.
[0029] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the present invention to be protected, but merely represents selected embodiments of the present invention. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0030] It should be noted that similar reference numerals and letters denote similar items in the following drawings, and therefore, once an item is defined in one drawing, further definition and explanation thereof is not required in subsequent drawings.
[0031] In the description of the present utility model, it should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inside", "outside", etc. indicate the orientation or position relationship based on the orientation or position relationship shown in the accompanying drawings, or the orientation or position relationship in which the utility model product is usually placed when in use, which is only for the convenience of describing the utility model and simplifying the description, and does not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present utility model. In addition, the terms "first", "second", "third", etc. are only used to distinguish the description, and cannot be understood as indicating or implying relative importance.
[0032] In addition, the terms "horizontal", "vertical" and the like do not mean that the components are required to be absolutely horizontal or suspended, but can be slightly tilted. For example, "horizontal" only means that its direction is more horizontal than "vertical", and does not mean that the structure must be completely horizontal, but can be slightly tilted.
[0033] In the description of the present invention, it is also necessary to explain that, unless otherwise clearly specified and limited, the terms "set", "install", "connect", and "connect" should be understood in a broad sense, for example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection, or it can be indirectly connected through an intermediate medium, or it can be the internal communication of two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.
[0034] like Figure 1 As shown, it is worth noting that the first side surface, the second side surface, the third side surface and the fourth side surface of the shell 110 in this embodiment correspond to the coordinate axes in the figure, with the center of the shell 110 as the center of the coordinate axis, the first side surface is a surface perpendicular to the positive half axis of the Z axis, the second side surface is a surface perpendicular to the negative half axis of the Y axis, the third side surface is a surface perpendicular to the positive half axis of the X axis, and the fourth side surface is a surface perpendicular to the negative half axis of the X axis.
[0035] like Figure 1 and Figure 2As shown, this embodiment provides a nano-charged water particle generating device, including a housing 100, a built-in high-voltage package (not shown) and at least one release needle 200; the housing 100 is provided with a receiving cavity 111; the built-in high-voltage package is arranged in the receiving cavity 111; the release needle 200 is penetrated on the housing 100 and connected to the built-in high-voltage package. In this embodiment, the high-voltage package is set as a built-in high-voltage package, which reduces the overall volume of the nano-charged water particle generating device, and can be more convenient when assembling the air conditioner. At the same time, because the high-voltage package is built-in, the built-in high-voltage package is better protected, which improves the product performance and product stability, so that the nano-charged water particle generating device can work stably for a long time.
[0036] First, the working principle of the nano-charged water particle generating device is briefly explained. When the nano-charged water particle generating device is working, the release needle 200 can absorb the air water vapor in the accommodating cavity 111 and / or the air water vapor in the external space. After the water molecules in the water vapor are sucked into the release needle 200, they are energized by connecting the built-in high-voltage package. The built-in high-voltage package is used to convert low-voltage electricity into high-voltage electricity and supply it to the release needle 200. The high-voltage electricity shocks the water molecules and divides them into nano-charged water particles. The nano-charged water particles can be emitted from the tip of the release needle 200 into the external air, thereby achieving the effects of removing PM2.5, deodorizing, and sterilizing.
[0037] like Figure 2 and Figure 3 As shown, further, the housing 100 includes a shell 110 having a housing cavity 111 and a cover plate 120, an opening is provided on a first side surface of the shell 110, and the built-in high-voltage package is provided in the housing cavity 111 through the opening; the cover plate 120 is connected to the shell 110 to cover the first side surface. It can be understood that the function of the cover plate 120 is to cover the built-in high-voltage package in the housing cavity 111. Exemplarily, the connection between the shell 110 and the cover plate 120 can be a rotating connection, a detachable connection, a sliding connection, etc., and the specific connection can be determined according to the situation.
[0038] Furthermore, in this embodiment, the connection between the housing 110 and the cover plate 120 is a detachable connection. It is understandable that the detachable connection between the housing 110 and the cover plate 120 can not only facilitate the assembly of the built-in high-voltage package in the accommodating cavity 111, but also facilitate the maintenance personnel to repair and replace the built-in high-voltage package, or detect whether the release needle 200 is firmly connected to the built-in high-voltage package. At the same time, the detachable connection is easier to manufacture than the rotating connection and the sliding connection.
[0039] Specifically, the detachable connection between the column and the cover plate 120 in this embodiment is a matching connection between a snap protrusion 112 and a snap ring 121. The housing 110 is provided with at least one snap protrusion 112, and the cover plate 120 is provided with snap rings 121 corresponding to the number of the snap protrusions 112. The snap rings 121 match the snap protrusions 112 to achieve the detachable connection between the housing 110 and the cover plate 120. In detail, there are two snap protrusions 112 in this embodiment, and the two snap protrusions 112 are respectively arranged on the left and right opposite side surfaces of the housing 110 connected to the first side surface, and two snap rings 121 corresponding to the number of the snap protrusions 112 are respectively arranged at corresponding positions on the cover plate 120; in addition, the surface of the side of the snap protrusion 112 away from the housing 110 is inclined in a direction away from the cover body. Therefore, when the cover body is connected to the shell body 110, the beveled edge of the snap protrusion 112 can guide the installation of the snap ring 121 on the cover body, so that the snap ring 121 can slide more smoothly on the slope on the snap protrusion 112, and then the snap ring 121 can be snapped onto the snap protrusion 112, which can further improve the assembly efficiency.
[0040] In some optional embodiments, at least one first positioning ridge 113 and a plurality of second positioning ridges 114 are provided on the inner wall of the shell 110, the first positioning ridge 113 is provided on the inner wall of the second side surface of the shell 110, and the plurality of second positioning ridges 114 are evenly provided on the inner walls of the third side surface and the fourth side surface of the shell 110; the second side surface, the third side surface and the fourth side surface are all adjacent to the first side surface, and the third side surface and the fourth side surface are located on both sides of the second side surface and are opposite to each other. In detail, in this embodiment, two first positioning ridges 113 are provided, and the two first positioning ridges 113 are provided in parallel on the inner wall of the second side surface, and two second positioning ridges 114 are also provided, and the two second positioning ridges 114 are provided on the inner walls of the third side surface and the fourth side surface, respectively, and the two second positioning ridges 114 are provided in parallel; in addition, the first positioning ridge 113 and the second positioning ridge 114 are both provided perpendicular to the first side surface, so the first positioning ridge 113 and the second positioning ridge 114 are parallel. It can be understood that the purpose of providing the first positioning ridge 113 and the second positioning ridge 114 is to position the built-in high-voltage package. It is well known that when the built-in high-voltage package is placed in the accommodating cavity 111, since the accommodating cavity 111 is generally larger than the built-in high-voltage package, the built-in high-voltage package will move in the accommodating cavity 111. Therefore, in order to limit the movement of the built-in high-voltage package in the accommodating cavity 111, the first positioning ridge 113 and the second positioning ridge 114 are designed;
[0041] In addition, the provision of the first positioning ridge 113 and the second positioning ridge 114 can also contribute to the heat dissipation of the built-in high-voltage package, specifically by effectively reducing the contact area between the built-in high-voltage package and the inside of the shell 110, so that the built-in high-voltage package can fully contact the air, thereby improving the efficiency of heat exchange.
[0042] like Figure 3 As shown, further, a positioning ring 122 is provided on the surface of the cover plate 120 facing the first side surface, and the positioning ring 122 cooperates with the first positioning convex strip 113 and the second positioning convex strip 114 to lock the position of the built-in high-voltage package in the accommodating cavity 111. It can be understood that the functions of the first positioning strip and the second positioning convex strip 114 mentioned above are to position the built-in high-voltage package on the X-axis and the Y-axis respectively, and the function of the positioning ring 122 is to position the built-in high-voltage package on the Z-axis. Therefore, the first positioning convex strip 113, the second positioning convex strip 114 and the positioning ring 122 cooperate to lock the built-in high-voltage package in the accommodating cavity 111.
[0043] Furthermore, notches are provided on the first positioning ridge 113 and the second positioning ridge 114, and the notches are used to enhance the gas circulation in the accommodating cavity 111. It is understandable that the notches provided on the first positioning ridge 113 and the second positioning ridge 114 can accelerate the air circulation inside the accommodating cavity 111, so that the air inside the accommodating cavity 111 and the external air can better exchange heat, improve the heat exchange efficiency, and protect the built-in high-voltage package.
[0044] Specifically, the cover plate 120 is provided with jacks 124 corresponding to the number of the release pins 200, and the release pins 200 are connected to the built-in high-voltage package through the jacks 124. In this embodiment, the number of the release pins 200 is two, so the number of the jacks 124 is two.
[0045] Furthermore, the cover plate 120 is provided with a penetrating heat dissipation hole 123. Specifically, the heat dissipation hole 123 is located close to the first side surface. Since the first positioning ridge 113 is provided on the first side surface, the larger the area of the built-in high-voltage package in contact with the air on this side, the heat dissipation hole 123 is provided at a position close to the first side surface, so that the hot air in the accommodating cavity 111 can be better discharged from the accommodating cavity 111.
[0046] The nano-charged water particle generating device provided in this embodiment includes a housing 100, a built-in high-voltage package and at least one release needle 200. The housing 100 is provided with a receiving cavity 111 inside, the built-in high-voltage package is arranged in the receiving cavity 111, and the release needle 200 is penetrated on the housing 100 and connected to the built-in high-voltage package. This embodiment changes the previous external high-voltage package into a built-in high-voltage package, reduces the overall volume of the nano-charged water particle generating device, and can be more convenient when assembling the air conditioner. At the same time, since the high-voltage package is built-in, the built-in high-voltage package is better protected, which improves the electrical safety of the product while improving the performance and product stability, so that the nano-charged water particle generating device can work stably for a long time.
[0047] This embodiment also provides an air conditioner including the above-mentioned nano charged particle generating device. Compared with the air conditioner in the prior art, the air conditioner provided by this embodiment has better stability and safety.
[0048] The above description is only the preferred embodiment of the utility model, and is not intended to limit the utility model. For those skilled in the art, the utility model can have various modifications and changes. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the utility model shall be included in the protection scope of the utility model.
Claims
1. A nano-charged water particle generating device, characterized in that: include: A housing, wherein a receiving cavity is provided inside the housing; A built-in high-voltage package, wherein the built-in high-voltage package is arranged in the accommodating cavity; At least one release needle is provided on the housing and connected to the built-in high-voltage package.
2. A nanometer charged water particle generating device according to claim 1, characterized in that: The shell includes a shell having the accommodating cavity and a cover plate, an opening is provided on a first side of the shell, and the built-in high-voltage package is arranged in the accommodating cavity through the opening; the cover plate is connected to the shell to cover the first side.
3. A nano-charged water particle generating device according to claim 2, characterized in that: The shell and the cover plate are detachably connected.
4. The nano-charged water particle generating device according to claim 2, characterized in that: The shell is provided with at least one snap protrusion, and the cover plate is provided with snap rings corresponding to the number of the snap protrusions. The snap rings cooperate with the snap protrusions to achieve a detachable connection between the shell and the cover plate.
5. The nano-charged water particle generating device according to claim 2, characterized in that: At least one first positioning ridge and a plurality of second positioning ridges are arranged on the inner wall of the shell, the first positioning ridge is arranged on the inner wall of the second side surface of the shell, and the plurality of second positioning ridges are evenly arranged on the inner walls of the third side surface and the fourth side surface of the shell; The second side surface, the third side surface and the fourth side surface are all adjacent to the first side surface, and the third side surface and the fourth side surface are located on both sides of the second side surface and are opposite to each other.
6. The nano-charged water particle generating device according to claim 5, characterized in that: A positioning ring is provided on the surface of the cover plate facing the first side surface, and the positioning ring cooperates with the first positioning convex strip and the second positioning convex strip to lock the position of the built-in high-voltage package in the accommodating cavity.
7. The nano-charged water particle generating device according to claim 6, characterized in that: The first positioning convex strip and the second positioning convex strip are both provided with notches, and the notches are used to enhance the gas flow in the accommodating cavity.
8. The nano-charged water particle generating device according to claim 6, characterized in that: The cover plate is provided with sockets corresponding to the number of the release needles, and the release needles are connected to the built-in high-voltage package through the sockets.
9. The nano-charged water particle generating device according to claim 6, characterized in that: The cover plate is provided with penetrating heat dissipation holes.
10. An air conditioner, characterized in that: It comprises a nano charged water particle generating device as described in any one of claims 1 to 9.