Novel air purifier
By designing small-capacity atomization components and mist guide components in the air purifier, the liquid in the large-capacity water tank is quickly transferred and atomized, and the problem of low atomization efficiency in the prior art is solved, achieving more efficient air purification and energy consumption reduction.
Patent Information
- Application Number
- CN202422031900.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-21
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-08-21
AI Technical Summary
The existing air purifiers have low atomization efficiency when handling liquids in large-capacity water tanks, resulting in the equipment running for a long time, increasing energy consumption and reducing service life.
A new type of air purifier is designed, including large-capacity water tank components and small-capacity atomization components. The liquid in the water tank is transferred to the atomization component through the pipetting assembly, and the atomization device in the small-capacity atomization component is used to perform rapid and uniform atomization, and the mist is guided to the outside world through the mist guide component.
It significantly improves atomization efficiency, reduces equipment operation time, reduces energy consumption, and improves air purification effect.
Smart Images

Figure CN223005090U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of air purification equipment, and particularly relates to a novel air purifier. Background Art
[0002] As an important environmental improvement device in modern life, air purifiers are widely used in various places such as homes, offices, and hospitals. Their main function is to remove pollutants in the air, such as dust, pollen, bacteria, viruses, volatile organic compounds (VOCs), and odors, etc., through a series of purification technologies such as filtration, adsorption, and sterilization. Among them, the principle of the atomization type air purifier is mainly to atomize water mist into steam through an atomization device (such as ultrasonic, heating evaporation, etc.), utilize fine particles in the air as condensation nuclei to undergo a heterogeneous nucleation process, form small droplets, and finally combine into larger droplets through continuous growth and coalescence, ultimately achieving the purification of fine particles in the air, thereby improving the breathing environment and reducing the particulate matter in the air.
[0003] When there is a large amount of liquid in the water tank, the existing atomization technology is significantly insufficient in processing speed. Ultrasonic, heating, or high-frequency vibration devices are difficult to quickly and thoroughly atomize water molecules when facing a large volume of liquid, resulting in a significant reduction in atomization efficiency.
[0004] Due to the low atomization efficiency, in order to achieve the desired humidity effect, the device needs to run for a long time, which not only increases energy consumption, but also accelerates the wear of the device and reduces its service life.
[0005] Traditional atomization technology is prone to uneven atomization when dealing with a large amount of liquid, and some water molecules cannot be fully atomized, affecting the overall humidification effect.
[0006] The present utility model is studied and proposed in view of the deficiencies of the existing technology. Summary of the Utility Model
[0007] Aiming at the above-mentioned technical problem that the existing air purifier needs to atomize a large amount of liquid in a large-capacity water tank, resulting in slow atomization efficiency.
[0008] The technical solution adopted by the present utility model to solve its technical problem is:
[0009] A new type of air purifier, comprising: a purifier main body, the purifier main body is provided with a large-capacity water tank component and a small-capacity atomizing component, both the water tank component and the atomizing component can accommodate air purification liquid, a liquid transfer assembly is provided between the water tank component and the atomizing component, the liquid transfer assembly can transfer the air purification liquid in the water tank component to the atomizing component, the atomizing component is provided with an atomizing device capable of atomizing the air purification liquid, and the purifier main body is further provided with a fog guiding component capable of guiding the evaporated air purification fog to the outside.
[0010] For the new type of air purifier as described above, the fog guiding component includes a fog guiding cavity provided in the purifier main body, a fog guiding device provided in the fog guiding cavity, and an air outlet provided on the purifier main body. The fog guiding cavity is located above the atomizing component, and the fog guiding cavity communicates with the air outlet.
[0011] For the new type of air purifier as described above, an air suction port for the fog guiding device to suck air is provided on the purifier main body. The air suction port is provided on the bottom and / or side wall of the purifier main body, and the air outlet is provided on the top and / or side wall of the purifier main body.
[0012] For the new type of air purifier as described above, the fog guiding component further includes a fog outlet channel located between the fog guiding cavity and the air outlet. The fog outlet channel can guide the fog in the fog guiding cavity to the air outlet for discharge.
[0013] For the new type of air purifier as described above, the fog guiding component further includes a fog guiding housing provided in the purifier main body. The fog guiding cavity is located inside the fog guiding housing.
[0014] For the new type of air purifier as described above, the bottom of the fog guiding housing is provided with an assembly part and a fog inlet. The assembly part is used for assembling the atomizing component. The atomizing component includes an atomizing housing and an opening provided on the atomizing housing. The opening can output the fog in the atomizing housing. The opening is arranged corresponding to the fog inlet. An air suction port for gas to enter the purifier main body is provided on the purifier main body. The assembly part is provided with an air inlet structure. The air inlet structure can supply air for the fog guiding device to suck, so as to drive the fog at the opening to flow into the fog guiding cavity.
[0015] A new type of air purifier as described above, the main body of the purifier includes an upper shell and a lower shell detachably connected to the upper shell. The fog guide chamber is located inside the upper shell. The bottom of the upper shell is provided with an assembly part and a fog inlet. The assembly part is used to assemble the atomization component. The atomization component includes an atomization shell and an opening provided on the atomization shell. The opening can supply the fog inside the atomization shell to output. The opening is correspondingly arranged with the fog inlet. The lower shell is provided with an air inlet through which gas can enter the lower shell. The assembly part is provided with an air inlet structure. The air inlet structure can supply air for the fog guide device to inhale, so as to drive the fog at the opening to flow into the fog guide chamber.
[0016] A new type of air purifier as described above, the assembly part includes a plurality of connecting columns arranged at intervals. The air inlet structure includes the space between each adjacent pair of connecting columns.
[0017] A new type of air purifier as described above, the liquid transfer assembly includes a liquid supply pump, a liquid inlet component and a liquid outlet component. The liquid inlet component is located between the liquid supply pump and the water tank component and can supply the liquid supply pump to extract the liquid in the water tank component. The liquid outlet component is located between the liquid supply pump and the atomization component and can supply the liquid supply pump to transport the liquid into the atomization component.
[0018] A new type of air purifier as described above, the fog guide device includes a centrifugal fan. The centrifugal fan includes a driving motor and an impeller connected to the driving motor.
[0019] The beneficial effects of the present utility model are:
[0020] In a new type of air purifier of the present utility model, by adding a small-capacity atomization component to the main body of the purifier, the air purification liquid is first stored in a large-capacity water tank component. When atomization is required, the liquid transfer assembly transfers an appropriate amount of liquid from the water tank component to the small-capacity atomization component. The air purification liquid in the atomization component is atomized by the atomization device. Since the capacity of the atomization component is small, the liquid can be atomized quickly and evenly. The atomized air purification fog is guided to the outside through the fog guide component. This design significantly improves the atomization efficiency by transferring the large-capacity liquid in batches to the small-capacity atomization component for atomization. Due to the improvement of the atomization efficiency, the operation time of the equipment is reduced, thereby reducing the energy consumption.
[0021] The following will further describe the present utility model in conjunction with the drawings and specific embodiments. Description of the Drawings
[0022] Figure 1 It is a schematic structural diagram of the new type of air purifier in Embodiment 1 of the present utility model;
[0023] Figure 2Top view schematic diagram of the new air purifier according to Embodiment 1 of the present utility model;
[0024] Figure 3 is Figure 2 Cross-sectional schematic diagram along line A-A;
[0025] Figure 4 Exploded schematic diagram of the new air purifier according to Embodiment 1 of the present utility model;
[0026] Figure 5 Structural schematic diagram of the atomization component according to Embodiment 1 of the present utility model;
[0027] Figure 6 Structural schematic diagram of the new air purifier according to Embodiment 2 of the present utility model;
[0028] Figure 7 Exploded schematic diagram of the new air purifier according to Embodiment 2 of the present utility model;
[0029] Figure 8 Top view schematic diagram of the new air purifier according to Embodiment 2 of the present utility model;
[0030] Figure 9 is Figure 8 Cross-sectional schematic diagram along line B-B. Detailed implementation manners
[0031] The following will describe in detail the implementation manners of the present utility model with reference to the accompanying drawings.
[0032] Embodiment 1:
[0033] As Figures 1 to 5 shown, a new air purifier in this embodiment includes: a purifier main body 1, the purifier main body 1 is provided with a large-capacity water tank component 2 and a small-capacity atomization component 3, both the water tank component 2 and the atomization component 3 can accommodate air purification liquid, a liquid transfer assembly 4 is provided between the water tank component 2 and the atomization component 3, the liquid transfer assembly 4 can transfer the air purification liquid in the water tank component 2 to the atomization component 3, the atomization component 3 is provided with an atomization device 5 capable of atomizing the air purification liquid, and the purifier main body 1 is further provided with a fog guiding component 6 capable of guiding the evaporated air purification mist to the outside.
[0034] Specifically, by adding a small-capacity atomization component 3 to the purifier main body 1, the air purification liquid is first stored in the large-capacity water tank component 2. When atomization is required, the liquid transfer assembly 4 transfers an appropriate amount of liquid from the water tank component 2 to the small-capacity atomization component 3. The air purification liquid in the atomization component 3 is atomized by the atomization device 5. Since the capacity of the atomization component 3 is small, the liquid can be atomized quickly and evenly. The atomized air purification mist is guided to the outside through the mist guide component 6. This design significantly improves the atomization efficiency by transferring a large amount of liquid in batches to the small-capacity atomization component for atomization. Due to the improvement of the atomization efficiency, the operation time of the device is reduced, thereby reducing energy consumption.
[0035] Moreover, the small-capacity atomization component ensures that the liquid can be fully and evenly atomized, ensuring that the atomized gas can be evenly diffused into the air, improving the air purification effect. The large-capacity water tank reduces the need for frequent refilling, while the small-capacity atomization component reduces the generation of bacteria and scale, reducing the maintenance difficulty.
[0036] As Figures 1 to 5 shown, the mist guide component 6 of this embodiment includes a mist guide cavity 61 provided in the purifier main body 1, a mist guide device 62 provided in the mist guide cavity 61, and an air outlet 63 provided on the purifier main body 1. The mist guide cavity 61 communicates with the air outlet 63.
[0037] Specifically, the mist guide device 62 is provided in the mist guide cavity 61. The mist guide cavity 61 is located above the atomization component 3. The air inlet end of the mist guide device 62 can extract the atomized mist at the atomization component 3. The mist is collected and temporarily stored in the mist guide cavity 61, and then the air outlet end of the mist guide device 62 can send air to guide the mist in the mist guide cavity 61 to the air outlet 63, and the mist is discharged into the outside air through the air outlet 63 to achieve the effect of air purification.
[0038] As Figures 1 to 5 shown, an air suction port 11 for the mist guide device 62 to suck air is provided on the purifier main body 1 of this embodiment. The air suction port 11 is provided on the bottom and / or side wall of the purifier main body 1, and the air outlet 63 is provided on the top and / or side wall of the purifier main body 1.
[0039] Preferably, in this embodiment, the air suction port 11 is provided on the side wall of the purifier main body 1, and the air outlet 63 is provided on the top of the purifier main body 1, so that the air purifier can achieve the effect of side air intake and top air outlet. The design of side air intake and top air outlet helps to form a more effective air convection. Fresh air is inhaled from the side, and after purification and humidification, it is discharged from the top. This convection method can more evenly distribute the purified air and improve the air quality of the entire space.
[0040] Furthermore, the top air outlet design enables the purified air to quickly spread to the upper space of the room, which can cover the entire room faster and improve the purification efficiency of the air purifier.
[0041] Furthermore, the top air outlet design allows the air purifier to be placed more compactly in the corner or near the wall of the room, without occupying floor space, and is more suitable for the layout requirements of modern homes.
[0042] Furthermore, the top air outlet design avoids the purified air blowing directly at the user. Especially when used at night, it can reduce the interference to the user and improve the use comfort.
[0043] Furthermore, the side air inlet can avoid the direct inhalation of dust and impurities at the bottom, reduce the pollution inside the purifier, thereby reducing the risk of secondary pollution. Moreover, the side air inlet can expand the air inlet area of the purifier to ensure the air inlet effect.
[0044] Preferably, a filter element can also be arranged in the purifier main body 1. The filter element is correspondingly arranged with the air suction port 11. When air enters the purifier, the filter element can preliminarily filter the air, intercept larger particulate matters, dust and impurities, and prevent these pollutants from entering the internal system, thereby improving the overall purification effect.
[0045] Preferably, by arranging a filter element at the air suction port, multi-layer purification can be achieved. The air is first preliminarily filtered through the filter element at the air suction port, and then undergoes internal atomization and further purification treatment to ensure that the output air is cleaner.
[0046] Preferably, the filter element can also be designed in a detachable and washable form, enabling users to conveniently perform regular maintenance and replacement to keep the purifier running efficiently.
[0047] Preferably, according to different usage environments and requirements, the filter element can select different materials and filtration grades, such as HEPA filters, activated carbon filters, etc., to achieve more targeted air purification effects.
[0048] Such as Figures 1 to 5 As shown, the fog guiding component 6 of this embodiment further includes a fog outlet channel 64 located between the fog guiding cavity 61 and the air outlet 63. The fog outlet channel 64 can guide the fog in the fog guiding cavity 61 to the air outlet 63 for discharge.
[0049] Specifically, the fog outlet channel 64 provides a clear fog transmission path, efficiently guiding the fog in the fog guiding cavity 61 to the air outlet 63, ensuring that the fog can be discharged smoothly, reducing the retention and loss of the fog in the fog guiding cavity, and the fog outlet channel 64 can effectively prevent the backflow and retention of the fog in the fog guiding cavity 61, ensuring that the fog can flow unidirectionally, and improving the working efficiency and stability of the air purifier.
[0050] Preferably, through the fog outlet channel 64, the fog can be more evenly distributed and discharged to the outside, avoiding problems such as excessive local humidity or uneven fog discharge caused by fog accumulation.
[0051] Preferably, the inner diameter of the fog outlet channel 64 is smaller than that of the fog guide cavity 61. Such a design helps to enhance the air flow inside the purifier, ensure that the fog in the fog guide cavity 61 can continuously flow and be discharged, accelerate the inflow into the fog outlet channel 64, and effectively improve the overall air circulation effect.
[0052] As Figures 1 to 5 shown, the cross-sectional shape of the air outlet 63 in this embodiment is annular, and the cross-sectional shape of the fog outlet channel 64 is annular.
[0053] With such a design, the annular air outlet and fog outlet channel can make the purified air and fog more evenly distributed in the surrounding environment, optimize the flow path of the air and fog, reduce the resistance and vortex phenomenon of air flow, improve the smoothness and efficiency of air and fog flow, and avoid problems of uneven air quality and humidity in local areas.
[0054] Furthermore, the annular air outlet can achieve 360-degree all-round coverage of air and fog, ensuring that the air quality and humidity in the entire room can be evenly improved and avoiding dead corners.
[0055] Furthermore, the annular structure is more aesthetically pleasing and modern visually, can better integrate into the interior decoration, and enhance the overall appearance design sense of the air purifier.
[0056] As Figures 1 to 5 shown, the fog guide component 6 in this embodiment further includes a fog guide housing 65 disposed inside the purifier main body 1, and the fog guide cavity 61 is located inside the fog guide housing 65.
[0057] Through the design of the fog guide housing 65, it can effectively prevent fog leakage during transmission, ensure that the fog can be effectively guided to the air outlet 63 in the fog guide cavity 61, and improve the use effect.
[0058] Preferably, the design of the fog guide housing 65 can isolate internal noise to a certain extent, reduce the noise generated by air flow and atomization, reduce the noise generated by the air purifier, and enhance the user experience.
[0059] As Figures 1 to 5 shown, the bottom of the fog guide housing 65 in this embodiment is provided with an assembly portion 651 and a fog inlet 652. The assembly portion 651 is used to assemble the atomization component 3, realizing modular design, facilitating users to replace or upgrade the atomization component, and improving the flexibility and maintainability of the device.
[0060] Specifically, the atomizing component 3 includes an atomizing housing 31 and an opening 32 provided on the atomizing housing 31. The opening 32 can output the mist in the atomizing housing 31. The opening 32 is correspondingly arranged with the mist inlet 652 to ensure that the mist guiding device 62 efficiently sucks the mist in the atomizing housing 31, ensuring that the mist in the atomizing housing 31 can be efficiently transmitted to the mist guiding chamber 61, improving the atomizing effect and the air purification efficiency.
[0061] Specifically, an air inlet 11 through which gas can enter the purifier main body 1 is provided on the purifier main body 1. The setting of the air inlet 11 enables external gas to enter the purifier main body 1 and mix with the mist generated by the atomizing component 3. An air inlet structure 653 is provided on the assembling part 651. The air inlet structure 653 can supply air for the mist guiding device 62 to inhale. The design of the air inlet structure 653 can optimize the guiding path of air flow, enabling the mist guiding device 62 to effectively inhale air and drive the mist at the opening 32 to flow into the mist guiding chamber 61. It can restrict the flow direction of the mist at the opening 32, ensuring that the mist guiding device 62 efficiently sucks the mist in the atomizing housing 31, ensuring that the mist in the atomizing housing 31 can be efficiently transmitted to the mist guiding chamber 61, improving the atomizing effect and the air purification efficiency, and further enhancing the air circulation and purification effect.
[0062] As Figures 1 to 5 shown, the assembling part 651 of this embodiment includes a plurality of connecting columns arranged at intervals. The air inlet structure 653 includes the interval spaces between every two adjacent connecting columns.
[0063] Specifically, the plurality of connecting columns arranged at intervals provide a firm structure, ensuring that the atomizing component 3 is stably installed on the assembling part 651, providing good support and fixing effects.
[0064] Specifically, the air inlet structure 653, that is, the interval spaces between adjacent connecting columns, enables the mist guiding device 62 to extract the gas in the purifier main body 1 through these interval spaces, and then generate an air flow to guide the mist in the atomizing housing 31 to uniformly flow into the mist inlet 652, optimizing the flow paths of air and mist and improving the air purification and atomizing effects.
[0065] Preferably, by designing a plurality of spaced connecting columns and interval spaces, the air inlet structure 653 can reduce the air flow resistance, enabling air and mist to flow more smoothly, improving the system efficiency. The design of the plurality of interval spaces allows air to enter from multiple directions, increasing the area and speed of air exchange and further improving the working efficiency of the air purifier.
[0066] Furthermore, such a structural design can reduce the eddy current and noise generated when air flows through, improving the sound insulation effect of the air purifier and providing a quieter use environment.
[0067] Preferably, the design of the connecting columns and the spaced-apart spaces makes the internal structure more open, facilitating cleaning and maintenance by the user and ensuring the long-term good performance of the device.
[0068] Preferably, the design of the connecting columns of the assembly part 651 facilitates the installation and disassembly of the atomizing component 3, enhancing the modular characteristics of the system and making it more convenient to replace and upgrade components.
[0069] As Figures 1 to 5 shown, the pipetting component 4 of this embodiment includes a liquid supply pump 41, a liquid inlet component 42, and a liquid outlet component 43. The liquid inlet component 42 is located between the liquid supply pump 41 and the water tank component 2 and can supply the liquid supply pump 41 to extract the liquid in the water tank component 2. The liquid outlet component 43 is located between the liquid supply pump 41 and the atomizing component 3 and can supply the liquid supply pump 41 to transport the liquid into the atomizing component 3.
[0070] Preferably, the liquid inlet component 42 of this embodiment includes a liquid inlet hose, and the liquid inlet hose is respectively connected to the water tank component 2 and the liquid supply pump 41. The liquid outlet component 43 includes a liquid outlet hose 431 and a liquid outlet nozzle 432. The liquid outlet hose 431 is respectively connected to the liquid supply pump 41 and the liquid outlet nozzle 432. The output end of the liquid outlet nozzle 432 is located above the atomizing housing 31.
[0071] Preferably, the liquid outlet nozzle 432 transports the liquid into the atomizing housing 31 through the opening 32 of the atomizing housing 31.
[0072] Preferably, the liquid outlet nozzle 432 of this embodiment is provided on one of the connecting columns. In some other embodiments, the liquid outlet nozzle 432 is provided on the atomizing housing 31 or on the fog guiding housing 65, and a suitable design can be selected according to actual requirements.
[0073] Preferably, the water tank component 2 of this embodiment includes a water tank body 21 and a water tank connection part 22. The water tank connection part 22 is provided on the purifier main body 1, and the water tank body 21 is detachably connected to the water tank connection part 22, facilitating the user to replace or clean the water tank body 21 and facilitating the addition of liquid into the water tank body 21, improving the flexibility and maintainability of the device.
[0074] Preferably, the water tank connection part 22 is a connecting groove recessed inward on the purifier main body 1, and the water tank body 21 can be hidden into the connecting groove to make the appearance of the purifier main body 1 more beautiful.
[0075] As Figures 1 to 5As shown, the mist guiding device 62 of this embodiment includes a centrifugal fan, which includes a drive motor 621 and an impeller 622 connected to the drive motor 621. The design of the centrifugal fan can generate a strong airflow, which can effectively atomize the liquid into fine particles, ensuring that the mist generated by the atomizing component 3 can be effectively guided out and diffused, thereby improving the atomization efficiency of the air purifier, enhancing the atomization effect, and increasing the humidity and comfort in the air.
[0076] Preferably, an assembly hole is provided in the impeller 622, and the drive motor 621 is located in the assembly hole. With such a design, the flat design of the centrifugal fan will not occupy too much vertical space in the device. The compact design of the centrifugal fan enables it to effectively utilize the internal space of the device, helping to maintain the overall design beauty and compactness of the air purifier.
[0077] In other embodiments, the mist guiding device 62 may also be configured as an axial flow fan or the like. The axial flow fan can generate a linear airflow, which is suitable for long-distance transportation and helps to effectively spread and diffuse the mist.
[0078] Furthermore, the design of axial flow fans is usually simpler, making installation and maintenance more convenient and reducing maintenance costs.
[0079] Furthermore, axial flow fans are usually smaller in size and are suitable for installation in space-constrained devices, which contributes to the compact design of the overall structure of the air purifier.
[0080] You can choose the appropriate design according to actual needs.
[0081] like Figures 1 to 5 As shown, the atomizing device 5 of this embodiment is a heating plate arranged in the atomizing shell 31. When the device is started, the current passes through the heating plate, quickly heating it to the set temperature, and the liquid in the atomizing shell 31 contacts the surface of the heating plate and quickly absorbs heat. The heated liquid reaches the boiling point and generates steam or mist, thereby achieving an atomization effect. The mist guide device 62 guides the generated mist out through the airflow and diffuses it into the air, thereby increasing the air humidity or achieving other expected effects.
[0082] Specifically, the heating plate can heat up quickly and heat the liquid to boiling point, thereby generating a large amount of water vapor or mist, thereby improving the atomization efficiency.
[0083] Preferably, by controlling the temperature of the heating plate, uniform heating and evaporation of the liquid can be achieved, producing fine and uniform droplets, thereby improving the uniformity of air humidity.
[0084] Preferably, the temperature of the heating plate can be accurately adjusted by an electronic controller, thereby achieving precise control of atomization intensity and speed to meet usage requirements in different scenarios.
[0085] Preferably, the structure of the heating plate is relatively simple, facilitating cleaning and maintenance, and reducing the maintenance cost and complexity of the equipment.
[0086] Embodiment 2
[0087] As Figures 6 to 9 shown, the difference between this embodiment and Embodiment 1 is that
[0088] The purifier main body 1 of this embodiment includes an upper shell 12 and a lower shell 13 detachably connected to the upper shell 12. The fog guiding cavity 61 is located inside the upper shell 12. An assembly part 651 and a fog inlet 652 are provided at the bottom of the upper shell 12. The assembly part 651 is used to assemble the atomizing component 3. The atomizing component 3 includes an atomizing housing 31 and an opening 32 provided on the atomizing housing 31. The opening 32 can allow the fog in the atomizing housing 31 to output. The opening 32 is arranged corresponding to the fog inlet 652. An air suction port 11 through which gas can enter the lower shell 13 is provided on the lower shell 13. An air inlet structure 653 is provided on the assembly part 651. The air inlet structure 653 can allow the fog guiding device 62 to suck air, so as to drive the fog at the opening 32 to flow into the fog guiding cavity 61.
[0089] Preferably, the detachable design of the upper shell 12 and the lower shell 13 facilitates the user to replace or clean the internal components, improves the maintenance convenience, ensures the sealing performance after the upper shell 12 and the lower shell 13 are connected, and prevents fog leakage.
[0090] Preferably, the water tank component 2 in this embodiment includes a water tank body 21 provided in the lower shell 13. A liquid adding port is provided on the water tank body 21. When the user detaches the upper shell 12 from the lower shell 13, the water tank body 21 can be filled with liquid through the liquid adding port, which has the advantages of simple structure and convenient operation.
[0091] Preferably, the liquid inlet member 42 in this embodiment includes a liquid inlet hose. One end of the liquid inlet hose is connected to the liquid supply pump 41, and the other end extends into the water tank body 21 through the liquid adding port. The liquid outlet member 43 includes the output end of the liquid supply pump 41. The liquid supply pump 41 is provided above the atomizing housing 31. The output end of the liquid supply pump 41 is located above the atomizing housing 31. The liquid outlet nozzle 432 transports the liquid into the atomizing housing 31 through the opening 32 of the atomizing housing 31.
[0092] Preferably, the liquid supply pump 41 can be assembled on the atomizing housing 31 or the bottom of the upper shell 12, and a suitable design can be selected according to actual needs.
[0093] Preferably, a limiting channel 33 is further provided on the atomizing housing 31. The liquid inlet hose extends through the limiting channel 33 into the water tank body 21. The limiting channel 33 can position and assemble the liquid inlet hose, avoiding the deviation of the liquid inlet hose and ensuring that the liquid supply pump 41 can normally extract the liquid in the water tank body 21 through the liquid inlet hose.
[0094] Preferably, a limiting member 421 is provided on the liquid inlet hose. The limiting member 421 can prevent the liquid inlet hose from being bent due to the buoyancy of the liquid in the water tank body.
[0095] Preferably, the limiting member 421 includes a spring member sleeved on the outer side of the liquid inlet hose and a limiting member provided at the end of the liquid inlet hose located in the water tank body. The outer diameter of the limiting member is larger than the outer diameter of the liquid inlet hose. One end of the spring member abuts against the top of the limiting member, and the other end abuts against the bottom of the limiting channel 33 to form a stable support structure. Through the cooperation of the spring member with the limiting member and the limiting channel 33, the fixed position of the liquid inlet hose in the water tank is ensured, avoiding the bending or displacement of the liquid inlet hose due to the buoyancy of the liquid.
[0096] Preferably, the water tank body 21 is provided at the bottom of the lower housing 13 and extends outward. In addition to increasing the capacity of the water tank body 21, it can also support the lower housing 13, which is suitable for the design with the air suction port 11 provided at the bottom of the lower housing 13, ensuring that the outside air can enter the lower housing 13 through the air suction port 11.
Claims
1. A new type of air purifier, characterized by: include: A purifier body (1), the purifier body (1) being provided with a large-capacity water tank component (2) and a small-capacity atomizing component (3), the water tank component (2) and the atomizing component (3) both being capable of containing air-purifying liquid, a liquid transfer component (4) being provided between the water tank component (2) and the atomizing component (3), the liquid transfer component (4) being capable of transferring the air-purifying liquid in the water tank component (2) to the atomizing component (3), the atomizing component (3) being provided with an atomizing device (5) capable of atomizing the air-purifying liquid, and the purifier body (1) being further provided with a mist guide component (6) capable of guiding evaporated air-purifying mist to the outside.
2. A novel air purifier according to claim 1, characterized in that: The mist guiding component (6) comprises a mist guiding chamber (61) provided in the purifier body (1), a mist guiding device (62) provided in the mist guiding chamber (61), and an air outlet (63) provided on the purifier body (1); the mist guiding chamber (61) is located above the atomizing component (3); and the mist guiding chamber (61) is in communication with the air outlet (63).
3. A novel air purifier according to claim 2, characterized in that: The purifier body (1) is provided with an air suction port (11) for the mist guide device (62) to suck air; the air suction port (11) is arranged on the bottom and / or the side wall of the purifier body (1); and the air outlet (63) is arranged on the top and / or the side wall of the purifier body (1).
4. A novel air purifier according to claim 2, characterized in that: The mist guide component (6) further comprises a mist outlet channel (64) located between the mist guide chamber (61) and the air outlet (63), wherein the mist outlet channel (64) is capable of guiding the mist in the mist guide chamber (61) to the air outlet (63) for discharge.
5. A novel air purifier according to claim 2, characterized in that: The mist guiding component (6) further comprises a mist guiding housing (65) arranged in the purifier body (1), and the mist guiding chamber (61) is located in the mist guiding housing (65).
6. A novel air purifier according to claim 5, characterized in that: The bottom of the mist guide housing (65) is provided with an assembly portion (651) and a mist inlet (652); the assembly portion (651) is used to assemble an atomizing component (3); the atomizing component (3) comprises an atomizing housing (31) and an opening (32) provided on the atomizing housing (31); the opening (32) is capable of allowing mist in the atomizing housing (31) to be output; the opening (32) and the mist inlet (652) are arranged correspondingly; the purifier body (1) is provided with an air suction port (11) capable of allowing gas to enter the purifier body (1); the assembly portion (651) is provided with an air inlet structure (653); the air inlet structure (653) is capable of allowing the mist guide device (62) to inhale air, so as to drive the mist at the opening (32) to flow into the mist guide chamber (61).
7. The novel air purifier according to claim 5 is characterized in that: The purifier body (1) comprises an upper shell (12) and a lower shell (13) detachably connected to the upper shell (12); the mist guide chamber (61) is located in the upper shell (12); a mounting portion (651) and a mist inlet (652) are provided at the bottom of the upper shell (12); the mounting portion (651) is used to mount an atomizing component (3); the atomizing component (3) comprises an atomizing shell (31) and an opening (32) provided on the atomizing shell (31); the opening (32) is capable of allowing mist in the atomizing shell (31) to be output; the opening (32) and the mist inlet (652) are arranged correspondingly; an air suction port (11) is provided on the lower shell (13) for allowing gas to enter the lower shell (13); an air inlet structure (653) is provided on the mounting portion (651); the air inlet structure (653) is capable of allowing the mist guide device (62) to inhale air, so as to drive the mist at the opening (32) to flow into the mist guide chamber (61).
8. A novel air purifier according to any one of claims 6 or 7, characterized in that: The assembly portion (651) comprises a plurality of spaced-apart connecting columns, and the air inlet structure (653) comprises a space between each adjacent connecting column.
9. The novel air purifier according to claim 1 is characterized in that: The liquid transfer assembly (4) comprises a liquid supply pump (41), a liquid inlet component (42) and a liquid outlet component (43); the liquid inlet component (42) is located between the liquid supply pump (41) and the water tank component (2), and is capable of allowing the liquid supply pump (41) to extract liquid from the water tank component (2); the liquid outlet component (43) is located between the liquid supply pump (41) and the atomization component (3), and is capable of allowing the liquid supply pump (41) to transport liquid to the atomization component (3).
10. A novel air purifier according to claim 2, characterized in that: The mist guide device (62) comprises a centrifugal fan, and the centrifugal fan comprises a drive motor (621) and an impeller (622) connected to the drive motor (621).