A salt chlorinator
Patent Information
- Application Number
- CN202510242237.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-03
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2045-03-03
AI Technical Summary
[0002]现在常规的大功率的盐氯机通过加大散热面积或做大面积的散热口,来实现散热,不仅散热效率低,而且通过做大面积的散热口,导致防水防尘防虫困难
[0022]本申请的实施例具有如下优点:通过在箱体的进风端设置进风装置,在箱体的出风端设置出风装置,以通过进风装置和出风装置能够对进入到容纳腔中的气体形成导流作用,以在容纳腔中形成气流,从而对容纳腔形成散热;通过控制第一挡板将第一通风口遮蔽,第二挡板将第二通风口遮蔽,以在出风端和进风端分别形成密封结构,从而能够防止外部的液体通过进风端和出风端进入到容纳腔中,提升防水质量。
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Figure CN119977087B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of water treatment equipment technology, and in particular to a salt chlorinator. Background Technology
[0002] Currently, conventional high-power salt chlorination machines achieve heat dissipation by increasing the heat dissipation area or making large heat dissipation vents. This not only results in low heat dissipation efficiency, but also makes it difficult to waterproof, dustproof, and insect-proof by making large heat dissipation vents. Summary of the Invention
[0003] In view of this, the purpose of this application is to overcome the shortcomings of the prior art and provide a salt chlorination machine.
[0004] This application provides the following technical solution: a salt chlorination machine, comprising:
[0005] The housing defines a receiving cavity, and the housing is provided with an air inlet and an air outlet communicating with the receiving cavity;
[0006] An air intake device is provided at the air intake end. The air intake device includes at least an air intake plate, a first fan, and a first baffle. The air intake plate is provided with a first ventilation opening that communicates with the air intake end. The first baffle is slidably connected to the air intake plate to open or cover the first ventilation opening. The first fan has a first air inlet and a first air outlet. The first air inlet faces the first ventilation opening, and the first air outlet faces the receiving cavity.
[0007] An air outlet device is provided at the air outlet end. The air outlet device includes at least a support frame, a second fan, and a second baffle. The support frame is provided with a second ventilation opening that communicates with the air outlet end. The second baffle is slidably connected to the support frame to open or cover the second ventilation opening. The second fan has a second air inlet and a second air outlet. The second air inlet faces the receiving cavity, and the second air outlet faces the second ventilation opening.
[0008] In some embodiments, the air intake device includes a first drive device, the output end of the first drive device is provided with a first drive wheel, the first baffle is provided with a first rack on the side facing the first drive wheel, and the first drive wheel meshes with the first rack.
[0009] In some embodiments, the air intake device further includes a first base and a condenser, the first base being connected to the air intake plate and defining an installation space between the first base and the air intake plate, the condenser being disposed in the installation space;
[0010] The first fan is connected to the first base and housed in the installation space.
[0011] In some embodiments, the air inlet plate is provided with a first connecting plate and a second connecting plate on the side facing the first base. The first connecting plate is adjacent to the edge of the first vent, so as to divide the installation space into a first cavity and a second cavity through the first connecting plate and the second connecting plate. The first cavity is in communication with the first vent.
[0012] The air inlet plate is provided with a guide hole, which is connected to the second cavity.
[0013] In some embodiments, the air inlet plate has a guide surface on the side facing the second cavity, one end of the guide surface is adjacent to the guide hole, and the distance from the guide surface to the side of the air inlet plate away from the first base gradually decreases from the side away from the guide hole to the side closer to the guide hole.
[0014] In some embodiments, the air inlet plate is provided with a guide groove on the side facing the second cavity, and one end of the guide groove is connected to the guide hole;
[0015] The flow guide groove is disposed between the second connecting plate and the flow guide surface.
[0016] In some embodiments, the air outlet device includes a second drive device, the output end of the second drive device is provided with a second drive wheel, the second baffle is provided with a second rack on the side facing the second drive wheel, and the second drive wheel meshes with the second rack.
[0017] In some embodiments, the housing includes a base plate and a shell, the base plate and the shell being connected to define the receiving cavity;
[0018] A waterproof pad is provided between the support frame and the base plate. The waterproof pad has a through hole, and the air outlet is connected to the second ventilation port through the through hole.
[0019] In some embodiments, a rain shield is provided on the side of the base plate opposite to the housing, and the rain shield covers the air outlet end;
[0020] The rain shield has a clearance groove on the side facing the base plate, and an opening on the side facing the air outlet device.
[0021] In some embodiments, the edge of the rain shield has a groove on the first side facing the base plate, and a waterproof adhesive layer is provided in the groove, with the waterproof adhesive layer abutting against the base plate on the side facing the base plate.
[0022] The embodiments of this application have the following advantages: by setting an air inlet device at the air inlet end of the housing and an air outlet device at the air outlet end of the housing, the air inlet and air outlet devices can guide the gas entering the containment cavity, thereby forming an airflow in the containment cavity and thus dissipating heat from the containment cavity; by controlling the first baffle to cover the first vent and the second baffle to cover the second vent, a sealing structure is formed at the air outlet end and the air inlet end respectively, thereby preventing external liquid from entering the containment cavity through the air inlet end and the air outlet end, thus improving the waterproof quality.
[0023] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0025] Figure 1 This diagram shows a schematic structural view of a salt chlorinator provided by some embodiments of the present invention;
[0026] Figure 2 This diagram illustrates a structural schematic of a salt chlorinator provided by some embodiments of the present invention from another perspective;
[0027] Figure 3 It shows Figure 2 Sectional view of section AA;
[0028] Figure 4 It shows Figure 3 Enlarged view of section B;
[0029] Figure 5 This diagram illustrates a structural schematic of the interior of a salt chlorinator according to some embodiments of the present invention.
[0030] Figure 6 This diagram illustrates a structural schematic of the interior of a salt chlorinator according to some embodiments of the present invention from another perspective;
[0031] Figure 7 This diagram shows a schematic view of the connection between the condenser and the first baffle in a salt chlorinator according to some embodiments of the present invention.
[0032] Figure 8This diagram shows a structural schematic from one perspective of a first embodiment of a second air outlet device in a salt chlorinator provided by some embodiments of the present invention;
[0033] Figure 9 This diagram shows a structural schematic from one perspective of a second embodiment of a second air outlet device in a salt chlorinator provided by some embodiments of the present invention;
[0034] Figure 10 This diagram shows a structural schematic of an air inlet plate in a salt chlorinator according to some embodiments of the present invention;
[0035] Figure 11 This diagram shows a structural schematic of a rain shield in a salt chlorinator according to some embodiments of the present invention;
[0036] Figure 12 This diagram shows a structural schematic of a first base in a salt chlorinator according to some embodiments of the present invention;
[0037] Figure 13 This diagram shows a structural schematic from another perspective of the first base in a salt chlorinator provided by some embodiments of the present invention;
[0038] Figure 14 This diagram shows a structural schematic of a support frame in a salt chlorinator according to some embodiments of the present invention;
[0039] Figure 15 A schematic diagram of the structure of a waterproof pad in a salt chlorinator provided by some embodiments of the present invention is shown from one perspective.
[0040] Explanation of key component symbols:
[0041] 100 - Housing; 110 - Receiving cavity; 120 - Air inlet; 130 - Air outlet; 200 - Air inlet device; 210 - Air inlet plate; 220 - First fan; 230 - First baffle; 211 - First vent; 300 - Air outlet device; 310 - Support frame; 320 - Second fan; 330 - Second baffle; 311 - Second vent; 312 - Second guide hole; 240 - First drive device; 241 - First drive wheel; 231 - First rack; 250 - First base; 251 - First mounting position; 252 - Second mounting position; 253 - Receiving groove; 254 - Slot; 255 - Limiting component; 260 - Condenser; 261 - Condensation box; 2611 - First guide hole Flow outlet; 2612-Second guide outlet; 2613-First guide hole; 262-Cooling chip; 270-Installation space; 400-First connecting plate; 500-Second connecting plate; 271-First cavity; 272-Second cavity; 280-First insect net; 212-Guide hole; 213-Guide surface; 214-Guide groove; 340-Second drive device; 341-Second drive wheel; 331-Second rack; 350-Second insect net; 140-Base plate; 150-Outer shell; 600-Waterproof pad; 610-Through hole; 700-Rainproof plate; 710-Gap groove; 720-Opening; 800-Partition plate; 730-Groove; 1000-Power supply; 1100-Control board. Detailed Implementation
[0042] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0043] It should be noted that when an element is said to be "fixed" to another element, it can be directly on the other element or there may be an intervening element. When an element is said to be "connected" to another element, it can be directly connected to the other element or there may be an intervening element. Conversely, when an element is said to be "directly" on another element, there is no intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0044] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "linking," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0045] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0046] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein in the template description is for the purpose of describing particular embodiments only and is not intended to be limiting of this application. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0047] like Figures 1 to 6 As shown, some embodiments of this application provide a salt chlorinator, which includes a housing 100, an air inlet device 200, and an air outlet device 300.
[0048] The housing 100 defines a receiving cavity 110. The housing 100 is provided with an air inlet 120 and an air outlet 130 that communicate with the receiving cavity 110. It can be understood that external gas can enter the receiving cavity 110 through the air inlet 120 and be discharged from the air outlet 130, thereby forming an airflow channel inside the housing 100.
[0049] The air inlet 120 and the air outlet 130 are spaced apart and disposed on the side wall of the housing 100. In some embodiments, the air inlet 120 and the air outlet 130 are disposed on the same side of the housing 100; in other embodiments, the air inlet 120 is disposed on one side of the housing 100 and the air outlet 130 is disposed on the other side of the housing 100; it can be understood that the air inlet 120 and the air outlet 130 are respectively disposed on two adjacent sides of the housing 100, or the air inlet 120 and the air outlet 130 are respectively disposed on two opposite sides of the housing 100, which can be specifically set according to the actual situation.
[0050] In this embodiment, the air inlet device 200 is housed in the receiving cavity 110 and connected to the housing 100. The air inlet device 200 is disposed at the air inlet end 120 so as to guide, filter or block the gas entering the receiving cavity 110 through the air inlet end 120.
[0051] The air intake device 200 includes at least an air intake plate 210, a first fan 220 and a first baffle 230. The air intake plate 210 is connected to the inner wall of the housing 100. The connection method between the air intake plate 210 and the housing 100 includes any one of bonding, magnetic connection, bolt connection, snap-fit, threaded connection or integral molding, which can be specifically set according to the actual situation.
[0052] In addition, the air inlet plate 210 is provided with a first vent 211 communicating with the air inlet end 120. The first baffle 230 is slidably connected to the air inlet plate 210 so as to open or block the first vent 211. It should be noted that when heat dissipation is required, the first baffle 230 slides relative to the air inlet plate 210 and opens the first vent 211 so that external air can enter the receiving cavity 110 through the air inlet end 120 and the first vent 211 and be discharged from the air outlet end 130, thereby forming an airflow in the receiving cavity 110, thereby dissipating heat from the salt chlorinator in the receiving cavity 110. That is, the airflow carries the heat in the receiving cavity 110 away from the air outlet end 130 to prevent the temperature in the salt receiving cavity 110 from rising, thereby ensuring the stability of the salt chlorinator operation. When heat dissipation is not required, the first baffle 230 slides relative to the air inlet plate 210 and blocks the first vent 211, thus sealing the first vent 211 and preventing external gas or liquid from entering the receiving cavity 110 through the air inlet 120 and the first vent 211. In other words, at this time, the first baffle 230 can block external gas and liquid from entering the receiving cavity 110, thereby forming a waterproof structure at the air inlet 120 of the housing 100.
[0053] In this embodiment, the first fan 220 has a first air inlet (not shown in the figure) and a first air outlet (not shown in the figure). The first air inlet faces the first ventilation port 211, and the first air outlet faces the receiving cavity 110, so that the first fan 220 can guide the gas outside the housing 100 into the receiving cavity 110 during operation, so as to form an airflow in the receiving cavity 110. The gas flowing through the receiving cavity 110 carries away the heat in the receiving cavity 110, thereby achieving the purpose of reducing the temperature of the receiving cavity 110.
[0054] Additionally, the air outlet device 300 is housed in the receiving cavity 110, and is disposed at the air outlet end 130, and is connected to the inner wall of the housing 100. The connection method between the air outlet device 300 and the housing 100 includes any one of the following: snap-fit, adhesive, magnetic connection, bolt connection, threaded connection, or integral molding, which can be specifically set according to the actual situation.
[0055] In this embodiment, the air outlet device 300 and the housing 100 are connected by bolts to ensure the stability of the connection between the air outlet device 300 and the housing 100, while improving the efficiency of installation or disassembly between the air outlet device 300 and the housing 100, so as to facilitate maintenance, replacement or cleaning.
[0056] The air outlet device 300 includes at least a support frame 310, a second fan 320, and a second baffle 330. The support frame 310 has a second vent 311 that communicates with the air outlet 130, so that the gas flowing through the receiving cavity 110 can pass through the second vent 311 and be discharged from the air outlet 130. The second fan 320 has a second air inlet (not shown) and a second air outlet (not shown). The second air inlet faces the receiving cavity 110, and the second air outlet faces the second vent 311, so that during the operation of the second fan 320, the gas outside the receiving cavity 110 can be guided to the outside of the housing 100 to form an airflow in the receiving cavity 110. The gas flowing through the receiving cavity 110 carries away the heat in the receiving cavity 110, thereby achieving the purpose of reducing the temperature of the receiving cavity 110.
[0057] In this embodiment, the air outlet device 300 can provide a guiding and directing function for the gas in the receiving cavity 110. That is, the gas in the receiving cavity 110 can be discharged from the air outlet end 130 under the guiding function of the air outlet device 300. At the same time, external gas can enter the receiving cavity 110 from the air inlet end 120 to form an airflow in the receiving cavity 110, thereby reducing the temperature in the receiving cavity 110 through the airflow.
[0058] In this embodiment, the second baffle 330 is slidably connected to the support frame 310, so that the second baffle 330 opens or blocks the second vent 311 during the sliding process relative to the support frame 310. It should be noted that when heat dissipation is required, the second baffle 330 slides relative to the support frame 310 and opens the second vent 311, so that the gas in the receiving cavity 110 can pass through the second vent 311 and be discharged from the air outlet 130. At the same time, external gas can enter the receiving cavity 110 from the air inlet 120 and the first vent 211, thereby forming an airflow in the receiving cavity 110, thereby dissipating heat from the salt chlorinator in the receiving cavity 110. That is, the heat in the receiving cavity 110 is carried away from the air outlet 130 by the airflow, so as to prevent the temperature in the salt receiving cavity 110 from rising, thereby ensuring the stability of the salt chlorinator operation. When heat dissipation is not required, the second baffle 330 slides relative to the support frame 310 and blocks the second vent 311, thus sealing the second vent 311 and preventing external gas or liquid from entering the receiving cavity 110 through the air outlet 130 and the second vent 311. In other words, at this time, the second baffle 330 can block external gas and liquid from entering the receiving cavity 110, thereby forming a waterproof structure at the air inlet 120 of the housing 100.
[0059] By providing an air inlet device 200 at the air inlet end 120 of the housing 100 and an air outlet device 300 at the air outlet end 130 of the housing 100, the air inlet device 200 and the air outlet device 300 can guide the gas entering the receiving cavity 110, thereby forming an airflow in the receiving cavity 110 and dissipating heat from the receiving cavity 110. By controlling the first baffle 230 to cover the first vent 211 and the second baffle 330 to cover the second vent 311, a sealing structure is formed at the air outlet end 130 and the air inlet end 120, respectively, thereby preventing external liquid from entering the receiving cavity 110 through the air inlet end 120 and the air outlet end 130, thus improving the waterproof quality.
[0060] like Figure 3 and Figure 4 As shown, in some embodiments of this application, the air inlet device 200 includes a first drive device 240, which is housed in the receiving cavity 110 and is disposed on the side of the air inlet plate 210 facing the receiving cavity 110.
[0061] The first drive device 240 has a first drive wheel 241 at its output end. The first drive wheel 241 is coaxially connected to the output end of the first drive device 240 so that the first drive device 240 can drive the first drive wheel 241 to rotate coaxially during operation.
[0062] In addition, the first baffle 230 is provided with a first rack 231 on the side facing the first drive wheel 241. The first drive wheel 241 meshes with the first rack 231 so that the first drive wheel 241 can drive the first rack 231 to move during rotation, thereby driving the first baffle 230 to move through the first rack 231.
[0063] It should be noted that in some embodiments, when the first drive wheel 241 rotates clockwise, it drives the first rack 231 to move closer to the first vent 211, and the first rack 231 drives the first baffle 230 to block the first vent 211, so as to prevent liquid outside the housing 100 from entering the receiving cavity 110; when the first drive wheel 241 rotates counterclockwise, it drives the first rack 231 to move away from the first vent 211, and the first baffle 230 opens the first vent 211, so that gas outside the housing 100 can enter the receiving cavity 110 through the air inlet 120 and the first vent 211, and be discharged from the air outlet 130, so as to form an airflow in the receiving cavity 110, thereby providing heat dissipation for the receiving cavity 110.
[0064] like Figure 4 , Figure 5 and Figure 7 As shown, in some embodiments of this application, the air inlet device 200 further includes a first insect-proof net 280, which covers the air inlet end 120 along the air inlet direction. The edge of the first insect-proof net 280 is connected to the edge of the first vent 211, so as to prevent insects outside the box 100 from entering the receiving cavity 110 through the first vent 211, thereby ensuring the stability and safety of the components inside the receiving cavity 110.
[0065] In some embodiments, the edge of the first vent 211 is provided with a first annular step, and the edge of the first insect-proof net is connected to the first annular step. The connection method between the first insect-proof net and the first annular step includes any one of adhesive bonding, snap-fitting, or bolted connection, which can be specifically set according to the actual situation.
[0066] It is understandable that by setting a first annular step at the edge of the first vent 211 so that the side of the first insect screen facing the receiving cavity 110 is flush with the side of the air inlet plate 210 facing the receiving cavity 110, not only can the space utilization rate be improved, but also the first baffle 230 can completely seal the first vent 211 during the sliding process relative to the air inlet plate 210, ensuring the sealing quality of the first baffle 230 to the first vent 211, thereby improving the waterproof quality of the salt chlorination machine.
[0067] like Figures 4 to 7 As shown, in some embodiments of this application, the air inlet device 200 further includes a first base 250 and a condenser 260. The first base 250 is connected to the air inlet plate 210 and is disposed on the side of the air inlet plate 210 facing the receiving cavity 110. An installation space 270 is defined between the first base 250 and the air inlet plate 210. The first drive device 240, the first baffle 230 and the condenser 260 are respectively disposed in the installation space 270.
[0068] The first fan 220 is connected to the first base 250 and is housed in the installation space 270. The first fan 220 is connected to the first base 250.
[0069] In this embodiment, the base has an installation port that connects to the installation space 270. The first fan 220 is housed in the installation port and connected to the inner wall of the installation port.
[0070] It should be noted that the condenser 260 can cool and condense the gas entering the installation space 270, so that the gas cooled by the condenser 260 can enter the receiving cavity 110 through the first fan 220, so as to further reduce the temperature in the receiving cavity 110 and improve the heat dissipation efficiency and heat dissipation quality of the receiving cavity 110.
[0071] like Figure 4 and Figure 10 As shown, in some embodiments of this application, the air inlet plate 210 is provided with a first connecting plate 400 and a second connecting plate 500 on the side facing the first base 250. The first connecting plate 400 and the second connecting plate 500 are respectively perpendicular to the air inlet plate 210 and are perpendicular to each other. The first connecting plate 400 is adjacent to the edge of the first vent 211 so as to divide the installation space 270 into a connected first cavity 271 and a second cavity 272 through the first connecting plate 400 and the second connecting plate 500. The first cavity 271 is connected to the first vent 211.
[0072] The air inlet plate 210 is provided with a guide hole 212, which penetrates the air inlet plate 210 in a direction perpendicular to the air inlet plate 210 and is located on the side of the first connecting plate 400 opposite to the first baffle 230. The guide hole 212 communicates with the second cavity 272 so that condensate in the second cavity 272 can be discharged through the guide hole 212. It can be understood that the guide hole 212 and the first vent 211 are arranged alternately.
[0073] Specifically, in this embodiment, the condenser 260 is disposed in the second cavity 272. It should be noted that, since the gas entering the installation space 270 will generate condensate in the second cavity 272 after being cooled by the condenser 260, the condensate can be discharged from the second cavity 272 through the guide hole 212.
[0074] It is understandable that the first connecting plate 400 can limit and block the condensate entering the second cavity 272, so as to prevent the condensate in the second cavity 272 from entering the first cavity 271, thereby ensuring the stability and smoothness of the gas outside the box 100 entering the receiving cavity 110 through the air inlet 120 and the first vent 211.
[0075] like Figure 3 , Figure 4 , Figure 5 and Figure 7 As shown, in some embodiments of this application, a condenser 260 is disposed in a first cavity 271. The condenser 260 includes a condensing chamber 261 and cooling plates 262. The cooling plates 262 are disposed on the outer surface of the condensing chamber 261 and are attached to the outer surface of the condensing chamber 261. It should be noted that the cooling plates 262 are electrically connected to a control board 1100, so that the control board 1100 can control the starting, stopping, or adjusting the operating temperature of the cooling plates 262, thereby achieving temperature regulation of the condensing chamber 261. In addition, the number of cooling plates 262 can be specifically set according to actual conditions. In some embodiments, the condenser 260 includes multiple cooling plates 262, which are evenly distributed on the outer surface of the condensing chamber 261 to ensure the uniformity of temperature regulation of the condensing chamber 261.
[0076] The condenser box 261 has a hollow structure. A first guide port 2611 is provided on the side of the condenser box 261 facing the air inlet plate 210, and the first guide port 2611 is connected to the air inlet end 120 of the air inlet plate 210. A second guide port 2612 is provided on the side of the condenser box 261 facing the first fan 220, and the first guide port 2611 and the second guide port 2612 are connected. The second guide port 2612 also connects the first cavity 271 and the second cavity 272, forming a condensation channel in the condenser box 261, allowing external gas to pass through the air inlet. The gas enters the condenser 261 through the end 120 and the first guide port 2611. After being cooled by the condenser 261, it is discharged into the second cavity 272 through the second guide port 2612. The first fan 220 guides the gas in the second cavity 272 to the receiving cavity 110. The condenser 261 can cool the gas flowing through the condensation channel, thereby reducing the temperature of the gas entering the receiving cavity 110. After heat conduction between the gas and the various components in the receiving cavity 110, the gas is discharged from the air outlet, thereby reducing the temperature of the various components in the receiving cavity 110 and achieving the purpose of cooling.
[0077] In addition, the condenser box 261 has first guide holes 2613 on two opposite sides, and a first rack 231 passes through the first guide holes 2613. The first rack 231 and the hole wall of the first guide hole 2613 are smoothly connected, so that the hole wall of the first guide hole 2613 can guide and limit the first rack 231 to ensure the stability of the first rack 231 during movement. Since the first rack 231 is connected to the first baffle 230, the first rack 231 can drive the first baffle 230 to move synchronously, so that the first baffle 230 can cover or open the air inlet end 120 during movement. It should be noted that the first baffle 230 can completely cover the air inlet end 120.
[0078] like Figure 4 , Figure 12 and Figure 13As shown, in some embodiments of this application, a portion of the first base 250 facing the air inlet plate 210 is recessed to the side opposite to the air inlet plate 210, defining a receiving groove 253. The groove wall of the receiving groove 253 is provided with a slot 254, and the edge of the air inlet plate 210 is received in the slot 254 to connect the air inlet plate 210 and the first base 250, while the air inlet plate 210 seals the opening of the receiving groove 253. In addition, a limiting member 255 is provided on the side of the first base 250 adjacent to the opening of the receiving groove 253. The limiting member 255 abuts against the side of the air inlet plate 210 opposite to the first base 250, so that the limiting member 255 and the first base 250 form a limiting effect on the air inlet plate 210, preventing the air inlet plate 210 from falling off the first base 250 and ensuring the stability of the air inlet plate 210 on the first base 250.
[0079] In this embodiment, the first base 250 is provided with a first mounting position 251 and a second mounting position 252. The first fan 220 is disposed in the first mounting position 251, and the first drive device 240 is disposed in the second mounting position 252. The first mounting position 251 is a mounting port, in which the first fan 220 is housed, and the fan 220 is connected to the inner wall of the mounting port to ensure that, during the operation of the first fan 220, gas in the mounting space 270 can enter the cavity through the mounting port, forming an airflow channel. The second mounting position 252 is a mounting groove, in which the first drive device 240 is housed, and the groove wall of the mounting groove provides a limiting effect on the first drive device 240, ensuring its stability within the mounting groove.
[0080] like Figure 3 and Figure 10 As shown, in some embodiments of this application, the air inlet plate 210 is provided with a guide surface 213 on the side facing the second cavity 272, that is, the guide plate is provided on the side of the first connecting plate 400 away from the first vent 211. One end of the guide surface 213 is adjacent to the guide hole 212, so as to provide a guiding effect for the condensate entering the second cavity 272 through the guide surface 213, so that the condensate enters the guide hole 212 under the guiding effect of the guide surface 213 and is discharged from the guide hole 212.
[0081] Specifically, the distance from the guide surface 213 to the side of the air inlet plate 210 away from the first base 250 gradually decreases from the side away from the guide hole 212 to the side closer to the guide hole 212, so as to ensure that the condensate can flow into the guide hole 212 through the guide surface 213, thereby ensuring the smoothness and efficiency of the flow of condensate into the second cavity 272.
[0082] like Figure 3 , Figure 4 and Figure 10 As shown, in some embodiments of this application, the air inlet plate 210 is provided with a guide groove 214 on the side facing the second cavity 272. One end of the guide groove 214 is connected to the guide hole 212 so as to provide a guiding effect for the condensate in the second cavity 272 through the guide groove 214, so as to prevent the condensate from accumulating in the second cavity 272 and further improve the guiding efficiency of the condensate.
[0083] The guide groove 214 is disposed between the second connecting plate 500 and the guide surface 213, and the end of the guide groove 214 away from the guide hole 212 is inclined towards the end close to the guide hole 212, so that the condensate entering the guide groove 214 can flow to the guide hole 212 under the guidance of the guide groove 214, thereby improving the guiding efficiency and guiding quality of the condensate in the second cavity 272 and avoiding water accumulation in the second cavity 272.
[0084] like Figure 6 , Figure 8 , Figure 9 and Figure 14 As shown, in some embodiments of this application, the air outlet device 300 includes a second drive device 340, which is housed in the receiving cavity 110 and is disposed on the support frame 310.
[0085] The output end of the second drive device 340 is provided with a second drive wheel 341, which is coaxially connected to the output end of the second drive device 340 so that the second drive device 340 can drive the second drive wheel 341 to rotate coaxially during operation.
[0086] In addition, the second baffle 330 is provided with a second rack 331 on the side facing the second drive wheel 341. The second drive wheel 341 meshes with the second rack 331 so that the second drive wheel 341 can drive the second rack 331 to move during rotation, thereby driving the second baffle 330 to move through the second rack 331.
[0087] It should be noted that in some embodiments, when the second drive wheel 341 rotates clockwise, it drives the second rack 331 to move closer to the second vent 311, and the second rack 331 drives the second baffle 330 to block the second vent 311. At the same time, the second baffle 330 seals the air outlet 130 to prevent liquid outside the housing 100 from entering the receiving cavity 110. When the second drive wheel 341 rotates counterclockwise, it drives the second rack 331 to move away from the second vent 311, and the second baffle 330 opens the second vent 311 and the air outlet 130, so that the gas in the receiving cavity 110 can be discharged from the housing 100 through the air outlet 130 and the second vent 311 to form an airflow in the receiving cavity 110, thereby providing heat dissipation for the receiving cavity 110.
[0088] Specifically, along the moving direction of the second rack 331, the support frame 310 is provided with a second guide hole 312, the second rack 331 passes through the second guide hole 312, and the outer wall of the second rack 331 is slidably connected to the hole wall of the second guide hole 312, so as to limit the second rack 331 through the hole wall of the second guide hole 312, so as to ensure the stability and smoothness of the second rack 331 sliding relative to the support frame 310 under the drive of the second drive device 340.
[0089] like Figure 1 , Figure 2 , Figure 6 and Figure 15 As shown, in some embodiments of this application, the housing 100 includes a base plate 140 and an outer shell 150, the base plate 140 and the outer shell 150 being connected to define the receiving cavity 110. The connection method between the base plate 140 and the outer shell 150 includes any one of bonding, snap-fitting, bolting, threading, magnetic connection, or integral molding, which can be specifically set according to actual conditions.
[0090] A waterproof pad 600 is provided between the support frame 310 and the base plate 140. The waterproof pad 600 has a through hole 610. The air outlet 130 is connected to the second vent 311 through the through hole 610, so that the gas in the receiving cavity 110 can be discharged from the air outlet 130 through the second vent 311 and the through hole 610. The waterproof pad 600 improves the waterproof quality between the base plate 140 and the support frame 310, preventing external liquid from entering the receiving cavity 110 through the gap between the base plate 140 and the support frame 310, thereby improving the waterproof quality.
[0091] In this embodiment, the waterproof pad 600 is a waterproof silicone pad.
[0092] like Figure 8 As shown, in some embodiments of this application, the air outlet device 300 further includes a second insect-proof net 350, which covers the air outlet 130 along the air outlet direction. The second insect-proof net 350 is connected to the bottom plate 140 to prevent insects outside the box 100 from entering the receiving cavity 110 through the second vent 311, thereby ensuring the stability and safety of the components inside the receiving cavity 110.
[0093] like Figure 2 and Figure 11 As shown, in some embodiments of this application, the bottom plate 140 is provided with a rain shield 700 on the side opposite to the outer shell 150. The rain shield 700 covers the air outlet 130 to form a waterproof structure at the air outlet 130, so as to prevent external liquid from entering the receiving cavity 110 through the air outlet 130.
[0094] The rain shield 700 has a relief groove 710 on the side facing the base plate 140 and an opening 720 on the side facing the air outlet device 300. The relief groove 710 is connected to the air outlet end 130 so that the gas in the receiving cavity 110 can be discharged from the opening 720 through the air outlet end 130 and the relief groove 710 to form an airflow channel.
[0095] It should be noted that, in this embodiment, by setting the opening 720 on the side of the rain shield 700 facing the air inlet device 200 in the vertical direction, external liquid is prevented from entering the relief groove 710 and the air outlet 130 under the action of gravity, so as to improve the waterproof quality of the rain shield 700.
[0096] like Figure 11 As shown, in some embodiments of this application, the bottom of the clearance groove 710 is provided with a plurality of spaced partitions 800, and the plurality of partitions 800 are staggered along the direction of the opening 720.
[0097] It is understandable that the number of partitions 800 can be any number of two or more values, and can be set according to the actual situation.
[0098] In this embodiment, the number of partitions 800 is at least three.
[0099] It should be noted that by staggering the multiple baffles 800, the baffles 800 act as a barrier between the opening 720 and the air outlet 130, preventing external liquid from entering the air outlet 130 through the opening 720 and the clearance groove 710, and then entering the receiving cavity 110 through the second vent 311, thereby further improving the waterproof quality. In addition, by staggering the multiple baffles 800, gas in the receiving cavity 110 can also be discharged through the gaps between adjacent baffles 800, ensuring the smooth discharge of gas from the receiving cavity 110 from the air outlet 130, thus ensuring the stability of heat dissipation.
[0100] It should be noted that the opening 720 is in a vertical direction. By placing the salt chlorinator vertically, gravity is used to achieve a waterproof effect.
[0101] like Figure 2 and Figure 11 As shown in some embodiments of this application, the edge of the rain shield 700 facing the first side of the base plate 140 is provided with a groove 730, and a waterproof adhesive layer is provided in the groove 730. The side of the waterproof adhesive layer facing the base plate 140 abuts against the base plate 140, so as to form a sealed connection structure between the edge of the rain shield 700 and the base plate 140 through the waterproof adhesive layer, so as to prevent liquid outside the housing 100 from entering the relief groove 710 and the air outlet 130 through the gap between the rain shield 700 and the base plate 140, thereby further improving the waterproof quality of the rain shield 700 and the waterproof quality of the salt chlorinator.
[0102] like Figures 4 to 6 As shown, in some embodiments of this application, the receiving cavity 110 is provided with a power supply 1000 and a control board 1100. The control board 1100 is electrically connected to the power supply 1000 so as to provide power to the control board through the power supply 1000. The air inlet device 200 and the air outlet device 300 are respectively electrically connected to the control board 1100 so as to control the air outlet device 300 and the air inlet device 200 respectively through the control board.
[0103] The control board 1100 and the power supply 1000 are respectively installed on the side of the base plate 140 facing the outer casing 150.
[0104] Specifically, the first drive device 240, the second drive device 340, the first fan 220, and the second fan 320 are respectively connected to the control board so as to control the start or stop of the first drive device 240, the second drive device 340, the first fan 220, and the second fan 320 through the control board.
[0105] In all examples shown and described herein, any specific values should be interpreted as merely exemplary and not as limitations; therefore, other examples of exemplary embodiments may have different values.
[0106] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0107] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are specific and detailed, they should not be construed as limiting the scope of this application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these modifications and improvements all fall within the protection scope of this application.
Claims
1. A salt chlorination machine, characterized in that, include: The housing defines a receiving cavity, and the housing is provided with an air inlet and an air outlet communicating with the receiving cavity; An air intake device is provided at the air intake end. The air intake device includes at least an air intake plate, a first fan, and a first baffle. The air intake plate is provided with a first ventilation opening that communicates with the air intake end. The first baffle is slidably connected to the air intake plate to open or cover the first ventilation opening. The first fan has a first air inlet and a first air outlet. The first air inlet faces the first ventilation opening, and the first air outlet faces the receiving cavity. An air outlet device is provided at the air outlet end. The air outlet device includes at least a support frame, a second fan, and a second baffle. The support frame is provided with a second ventilation opening that communicates with the air outlet end. The second baffle is slidably connected to the support frame to open or cover the second ventilation opening. The second fan has a second air inlet and a second air outlet. The second air inlet faces the receiving cavity, and the second air outlet faces the second ventilation opening. The air intake device further includes a first base and a condenser. The first base is connected to the air intake plate and defines an installation space between the first base and the air intake plate. The condenser is disposed in the installation space. The air inlet plate is provided with a first connecting plate and a second connecting plate on the side facing the first base. The first connecting plate is adjacent to the edge of the first vent, so as to divide the installation space into a first cavity and a second cavity through the first connecting plate and the second connecting plate. The first cavity is connected to the first vent. There is a gap between the first connecting plate and the first base. The first cavity and the second cavity are connected through the gap. The first connecting plate can limit and block the condensate entering the second cavity. The air inlet plate is provided with a guide hole, which is connected to the second cavity. The air inlet plate has a guide surface on the side facing the second cavity, and one end of the guide surface is adjacent to the guide hole so that the condensate in the second cavity can be discharged through the guide hole.
2. The salt chlorinator according to claim 1, characterized in that, The air intake device includes a first drive device, the output end of which is provided with a first drive wheel, and the first baffle is provided with a first rack on the side facing the first drive wheel, and the first drive wheel meshes with the first rack.
3. The salt chlorinator according to claim 1, characterized in that, The first fan is connected to the first base and housed in the installation space.
4. The salt chlorinator according to claim 1, characterized in that, The distance from the guide surface to the side of the air inlet plate away from the first base gradually decreases from the side away from the guide hole to the side closer to the guide hole.
5. The salt chlorinator according to claim 1, characterized in that, The air inlet plate is provided with a flow guide groove on the side facing the second cavity, and one end of the flow guide groove is connected to the flow guide hole; The flow guide groove is disposed between the second connecting plate and the flow guide surface.
6. The salt chlorinator according to any one of claims 1 to 5, characterized in that, The air outlet device includes a second drive device, the output end of which is provided with a second drive wheel, and the second baffle is provided with a second rack on the side facing the second drive wheel, and the second drive wheel meshes with the second rack.
7. The salt chlorinator according to any one of claims 1 to 5, characterized in that, The housing includes a base plate and an outer shell, the base plate and the outer shell being connected to define the receiving cavity; A waterproof pad is provided between the support frame and the base plate. The waterproof pad has a through hole, and the air outlet is connected to the second ventilation port through the through hole.
8. The salt chlorinator according to claim 7, characterized in that, The bottom plate is provided with a rain shield on the side opposite to the outer shell, and the rain shield covers the air outlet end; The rain shield has a clearance groove on the side facing the base plate, and an opening on the side facing the air outlet device.
9. The salt chlorinator according to claim 8, characterized in that, The edge of the rain shield has a groove on the first side facing the base plate, and a waterproof adhesive layer is provided in the groove. The side of the waterproof adhesive layer facing the base plate abuts against the base plate.
Citation Information
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