Smart home clothing care cabinet with molecular sieve low-temperature drying function
By employing a molecular sieve structure and annular channel design with multiple zeolites rotating alternately in the home garment care cabinet, the problem of zeolite aging is solved, the lifespan of zeolite is extended, and the water vapor treatment efficiency is improved, achieving efficient low-temperature drying and environmentally friendly water vapor treatment.
Patent Information
- Application Number
- CN202510980621.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-16
- Publication Date
- 2025-11-11
AI Technical Summary
In existing home garment care cabinets, zeolite adsorption structures are simple and prone to aging with prolonged use, affecting their lifespan.
A molecular sieve structure employing multiple zeolites rotating alternately is used, forming an annular channel through a reflux pipe to ensure multiple contacts between the zeolite and water vapor. Combined with a drying mechanism and a condensation system, this achieves the alternating use of zeolite and effective recovery of water vapor.
It extends the service life of zeolite, improves the efficiency of water vapor adsorption, reduces aging time, and achieves efficient low-temperature drying and environmentally friendly water vapor treatment.
Smart Images

Figure CN120925262A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the technical field of clothing care cabinets, specifically relating to a smart home clothing care cabinet with a molecular sieve low-temperature drying function. Background Technology
[0002] Low-temperature drying home garment care cabinets are intelligent care devices designed specifically for delicate fabrics. They achieve efficient dehumidification and gentle drying through molecular sieve adsorption technology and a precise temperature control system. The core principle is to utilize the microporous structure of zeolite molecular sieves to adsorb moisture from the air, then circulate and dry the air at a low temperature (40-60℃), avoiding high-temperature damage to sensitive fabrics such as wool and silk. The cabinet has built-in intelligent sensors that monitor humidity in real time and automatically adjust the operating mode to ensure clothes are heated evenly and remain fluffy and soft. Compared to traditional dryers, it saves over 30% on energy and operates at less than 45 decibels, making it suitable for bedrooms or walk-in closets. The multi-functional design integrates drying, deodorization, and sterilization. UV ultraviolet light or ozone technology eliminates bacteria and odors, while the hot air circulation system easily removes stubborn smells such as hot pot odors and smoke. It supports remote control via an app, allowing users to customize care programs such as cool air dehumidification and steam ironing to meet the needs of different fabric materials. The compact vertical structure saves space, with capacities ranging from 50L to 150L, suitable for single individuals and families. In terms of maintenance, the molecular sieve module is removable for cleaning, and some models are equipped with a self-cleaning function, ensuring stable and reliable long-term use. These products are especially suitable for humid southern regions, families with infants and young children, or high-end clothing care needs, using technology to achieve a convenient "ready to use" experience while extending the life of clothing.
[0003] In existing technologies, home clothing care cabinets use zeolite to adsorb water molecules to achieve the purpose of drying clothes. However, the zeolite adsorption structure is simple and lacks a replacement structure. Long-term use of a single zeolite structure can easily accelerate its aging and affect the service life of the zeolite structure. Summary of the Invention
[0004] The purpose of this invention is to provide a smart home clothing care cabinet with a molecular sieve low-temperature drying function. This invention aims to solve the problem that existing home clothing care cabinets use zeolite to adsorb water molecules to achieve the purpose of drying clothes. However, the zeolite adsorption structure is simple and lacks a replacement structure. Long-term use of a single zeolite structure can easily accelerate its aging and affect the service life of the zeolite structure.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A smart home clothing care cabinet with molecular sieve low-temperature drying function includes:
[0007] The main body of the nursing cabinet has a hollow cavity structure.
[0008] A rotating groove is formed inside the main body of the nursing cabinet;
[0009] A molecular sieve mechanism includes a first rotating shaft, a rotating frame, ceramic ring plates, zeolites, evaporation holes, and a rotating assembly. Multiple ceramic ring plates, zeolites, and evaporation holes are provided. The first rotating shaft is rotatably connected to a rotating groove. The rotating frame is fixedly connected to the circumferential surface of the first rotating shaft and rotatably connected to the rotating groove. Multiple ceramic ring plates are fixedly connected to the rotating frame. Multiple zeolites are respectively fixedly connected to multiple ceramic ring plates. Multiple evaporation holes are respectively opened on the circumferential surface of multiple ceramic ring plates. The rotating assembly is located inside the main body of the nursing cabinet and is connected to the first rotating shaft to control its rotation.
[0010] A channel assembly, wherein the channel assembly is disposed within the main body of the nursing cabinet;
[0011] A drying mechanism is located inside the main body of the nursing cabinet. The drying mechanism is connected to the molecular sieving mechanism to achieve the drying of the molecular sieving mechanism.
[0012] In a preferred embodiment of the present invention, the drying mechanism includes a steam channel, a rotating groove, a second rotating shaft, a rotating block, a heater, and a drive assembly. Two rotating grooves, two second rotating shafts, two rotating blocks, and two heaters are provided. The two rotating grooves are each located within the main body of the nursing cabinet and the sealing ring plate. The two second rotating shafts are rotatably connected to the two rotating grooves respectively. The two rotating blocks are respectively fixedly connected to the circumferential surfaces of the two second rotating shafts. The two heaters are respectively fixedly connected to the surfaces of the two rotating blocks. The steam channel is located within the main body of the nursing cabinet and the sealing ring plate. The drive assembly is located within the main body of the nursing cabinet and is connected to the two second rotating shafts to control their rotation.
[0013] As a preferred embodiment of the present invention, the channel assembly includes an air inlet channel and a condensation channel, both of which are located inside the main body of the nursing cabinet. One end of the air inlet channel is connected to a rotating groove, and the other end of the air inlet channel is connected to a cavity inside the main body of the nursing cabinet. One end of the condensation channel is connected to a steam channel.
[0014] In a preferred embodiment of the present invention, the drive assembly includes a first mounting slot, a first gear, a first motor, and a second gear. Two second gears are provided. The first mounting slot is opened inside the main body of the nursing cabinet. One end of each of the two second rotating shafts movably passes through the first mounting slot and extends therefrom. The two second gears are respectively fixedly connected to the circumferential surfaces of the two second rotating shafts. The two second gears mesh with each other. Both of the two second gears are located inside the first mounting slot. The first motor is fixedly connected to one inner wall of the first mounting slot. The first gear is fixedly connected to the output end of the first motor. The first gear meshes with one of the second gears.
[0015] In a preferred embodiment of the present invention, the rotating assembly includes a second mounting slot, a third gear, a fourth gear, and a second motor. The second mounting slot is formed inside the main body of the nursing cabinet. One end of the first rotating shaft extends through one side of the inner wall of the second mounting slot. The third gear is fixedly connected to the circumferential surface of the first rotating shaft and is located inside the second mounting slot. The second motor is fixedly connected to one side of the inner wall of the second mounting slot. The fourth gear is fixedly connected to the output end of the second motor and meshes with the third gear.
[0016] As a preferred embodiment of the present invention, a second fan body is fixedly connected inside the main body of the nursing cabinet. The second fan body is connected to the air inlet channel. The pump body and the condenser are both fixedly connected inside the main body of the nursing cabinet and are both connected to the condensation channel.
[0017] As a preferred embodiment of the present invention, the nursing cabinet body is provided with a recycling component, which includes a control valve, a water tank, and a collection box. The water tank is opened on the surface of the nursing cabinet body and is connected to the condensation channel. The collection box is slidably connected in the water tank and is connected to the condensation channel. The control valve is located in the nursing cabinet body and is connected to the condensation channel.
[0018] In a preferred embodiment of the present invention, a first fan body is fixedly connected inside the main body of the nursing cabinet, a first filter plate is fixedly connected to the surface of the main body of the nursing cabinet, and a second filter plate is fixedly connected to the cavity inside the main body of the nursing cabinet.
[0019] In a preferred embodiment of the present invention, a PLC control module is fixedly connected inside the main body of the nursing cabinet. The PLC control module is signal-connected to the first fan body, the second fan body, the heater, the first motor, the second motor, the condenser, and the control valve. A touch panel module is fixedly connected to the surface of the main body of the nursing cabinet, and the touch panel module is electrically connected to the PLC control module.
[0020] As a preferred embodiment of the present invention, pulleys are fixedly connected to the four corners of the lower end of the main body of the nursing cabinet, and glass door frames are movably hinged to both sides of the surface of the main body of the nursing cabinet via hinges.
[0021] Compared with the prior art, the beneficial effects of the present invention are:
[0022] 1. In this invention, the molecular sieve mechanism is provided with multiple zeolites, which rotate periodically and are used alternately to avoid overuse of a single zeolite, reduce the aging time of the zeolite, and improve the service life of the zeolite.
[0023] 2. In this invention, a return pipe is fixedly connected inside the main body of the nursing cabinet. The return pipe is connected to the rotating groove and to the other end of the zeolite located on the lower side. The other end of the return pipe is connected to the air inlet channel. The return pipe, the air inlet channel and the zeolite form an annular channel. Water vapor continuously contacts the zeolite in the annular channel, allowing the zeolite to come into contact with water vapor in the air multiple times, thus improving the zeolite's ability to adsorb water vapor.
[0024] 3. In this invention, when the second fan body is running, it inputs water vapor in the cavity inside the nursing cabinet body into the ceramic ring plate through the air inlet channel. The pump body is used to pump the water vapor on the upper side of the condensation channel into the lower side of the condensation channel. The ground water vapor accumulates in the steam channel. The condenser is used to quickly cool the condensation channel connected to it, so that the water vapor condenses into water droplets. The water droplets converge into a water flow and are finally recovered by the recovery component. Attached Figure Description
[0025] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:
[0026] Figure 1 This is a first-view perspective perspective view of the present invention;
[0027] Figure 2 This is a second-view perspective perspective view of the present invention;
[0028] Figure 3 This is a first sectional view of the present invention;
[0029] Figure 4 For the present invention Figure 3 A magnified view of a section at point A in the middle;
[0030] Figure 5 This is a second sectional view of the present invention;
[0031] Figure 6 For the present invention Figure 5 A magnified view of a section at point B in the middle;
[0032] Figure 7This is a third cross-sectional view of the present invention;
[0033] Figure 8 This is a three-dimensional structural diagram of the molecular sieve assembly described in this invention.
[0034] In the diagram: 1. Main body of the nursing cabinet; 101. Touch panel module; 102. Pulley; 103. Glass door frame; 2. Water tank; 201. Collection box; 3. First filter plate; 301. First fan body; 4. Second filter plate; 401. Air inlet channel; 402. Second fan body; 5. First rotating shaft; 501. Rotating frame; 502. Ceramic ring plate; 503. Zeolite; 504. Evaporation hole; 505. Sealing ring plate; 6. 601. Rotating slot; 602. Second rotating shaft; 603. Rotating block; 604. Heater; 605. Steam passage; 606. First mounting slot; 607. First gear; 608. First gear; 709. Second mounting slot; 700. Third gear; 701. Fourth gear; 702. Second motor; 8. Condensation passage; 801. Pump body; 802. Condenser; 803. Control valve; 9. Return pipe. Detailed Implementation
[0035] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0036] Example 1
[0037] Please see Figures 1-8 The present invention provides the following technical solutions:
[0038] A smart home clothing care cabinet with molecular sieve low-temperature drying function includes:
[0039] Nursing cabinet body 1, the nursing cabinet body 1 has a hollow cavity structure;
[0040] A rotating groove is formed inside the main body 1 of the nursing cabinet;
[0041] The molecular sieve mechanism includes a first rotating shaft 5, a rotating frame 501, ceramic ring plates 502, zeolites 503, evaporation holes 504, and a rotating assembly. Multiple ceramic ring plates 502, zeolites 503, and evaporation holes 504 are provided. The first rotating shaft 5 is rotatably connected to a rotating groove, and the rotating frame 501 is fixedly connected to the circumferential surface of the first rotating shaft 5. Multiple ceramic ring plates 502 are fixedly connected to the rotating frame 501, multiple zeolites 503 are respectively fixedly connected to the multiple ceramic ring plates 502, and multiple evaporation holes 504 are respectively opened on the circumferential surface of the multiple ceramic ring plates 502. The rotating assembly is located inside the main body 1 of the nursing cabinet and is connected to the first rotating shaft 5 to control the rotation of the first rotating shaft 5.
[0042] The passageway assembly is located inside the main body 1 of the nursing cabinet;
[0043] The drying mechanism is located inside the main body 1 of the nursing cabinet. The drying mechanism is connected to the molecular sieving mechanism to achieve the drying of the molecular sieving mechanism.
[0044] In a specific embodiment of the present invention, the cavity structure inside the nursing cabinet body 1 is used to place clothing. A rotating slot is opened on the left side of the nursing cabinet body 1. The rotating slot is equipped with a molecular sieve structure. When the rotating assembly is running, it drives the first rotating shaft 5 connected to it to rotate. A rotating frame 501 is fixed on the circumferential surface of the first rotating shaft 5. Four ceramic ring plates 502 are evenly fixed inside the rotating frame 501. A zeolite 503 is fixedly connected inside each ceramic ring plate 502. An evaporation hole 504 is opened on the surface of each ceramic ring plate 502. The four evaporation holes 504 face four directions respectively. When one of the ceramic ring plates 502 rotates to the lower position, the ceramic ring plate 502 is connected to the air inlet channel 401. The humid air in the cavity inside the nursing cabinet body 1 is introduced into the ceramic ring plate 502 through the air inlet channel 401. The zeolite 503 inside the ceramic ring plate 502 has a honeycomb-shaped cylindrical structure. After the humid air is introduced, it is evaporated by the zeolite. The zeolite 503 adsorption and rotation components operate periodically, driving the first rotating shaft 5 to rotate periodically. The first rotating shaft 5 drives the ceramic ring plate 502 to rotate via the rotating frame 501. The ceramic ring plate 502 drives the zeolite 503 to rotate. The first rotating shaft 5 rotates clockwise, and the adjacent ceramic ring plate 502 rotates to the position where it connects with the air inlet channel 401. When the zeolite 503 adsorbing water vapor rotates to the upper position, the drying mechanism connects with the zeolite 503 on the surface of the ceramic ring plate 502. Through the operation of the drying component, the water vapor in the zeolite 503 in the ceramic ring plate 502 evaporates at low temperature. The water vapor passes through the steam channel 604 and the channel component, and after condensation, it condenses into water droplets for recovery. By using this device, the molecular sieve mechanism is equipped with multiple zeolites 503. Multiple zeolites 503 rotate periodically and are used alternately, avoiding overuse of a single zeolite 503, reducing the aging time of the zeolite 503, and improving the service life of the zeolite 503.
[0045] Please refer to the details. Figures 1-8 The drying mechanism includes a steam channel 604, a rotating groove 6, a second rotating shaft 601, a rotating block 602, a heater 603, and a drive assembly. Two rotating grooves 6, two second rotating shafts 601, two rotating blocks 602, and two heaters 603 are provided. The two rotating grooves 6 are both located within the nursing cabinet body 1 and the sealing ring plate 505. The two second rotating shafts 601 are rotatably connected to the two rotating grooves 6 respectively. The two rotating blocks 602 are fixedly connected to the circumferential surfaces of the two second rotating shafts 601 respectively. The two heaters 603 are fixedly connected to the surfaces of the two rotating blocks 602 respectively. The steam channel 604 is located within the nursing cabinet body 1 and the sealing ring plate 505. The drive assembly is located within the nursing cabinet body 1 and is connected to the two second rotating shafts 601 to control their rotation.
[0046] In this embodiment: When the drive component in the drying mechanism is running, it drives the two second rotating shafts 601 to rotate. The two second rotating shafts 601 drive the two rotating blocks 602 to rotate, and the rotating blocks 602 drive the heaters 603 to rotate. The heaters 603 rotate in the rotating groove 6. When the two heaters 603 rotate to the circumferential surface of the upper ceramic ring plate 502, the heaters 603 generate heat of 35-60 degrees. The heat is transferred to the zeolite 503 through the ceramic ring plate 502, heating the zeolite 503. The water vapor in the zeolite 503 evaporates after heating. The evaporated water vapor enters the condensation channel 8 through the steam channel 604. When the ceramic ring plate 502 rotates, the heaters 603 rotate into the rotating groove 6.
[0047] Please refer to the details. Figures 1-8 The channel assembly includes an air inlet channel 401 and a condensation channel 8. Both the air inlet channel 401 and the condensation channel 8 are located inside the main body 1 of the nursing cabinet. One end of the air inlet channel 401 is connected to the rotating groove, and the other end of the air inlet channel 401 is connected to the cavity inside the main body 1 of the nursing cabinet. One end of the condensation channel 8 is connected to the steam channel 604.
[0048] In this embodiment: the air inlet channel 401 in the channel assembly is connected to the inner cavity of the nursing cabinet body 1. Water vapor inside the nursing cabinet body 1 enters the zeolite 503 located on the lower side through the air inlet channel 401. A return pipe 9 is fixedly connected inside the nursing cabinet body 1. The return pipe 9 is connected to the rotating groove and to the other end of the zeolite 503 located on the lower side. The other end of the return pipe 9 is connected to the air inlet channel 401. The return pipe 9, the air inlet channel 401, and the zeolite 503 form an annular channel. Water vapor continuously interacts with the zeolite 503 within the annular channel. 3. Contact allows zeolite 503 to come into contact with water vapor in the air multiple times, improving the adsorption effect of zeolite 503 on water vapor. The main body 1 of the nursing cabinet also has a branch channel of return pipe 9, which connects return pipe 9 to the external environment of the main body 1 of the nursing cabinet. The channel is equipped with a valve body, which controls the connection status between the channel and the outside. After water vapor is circulated in the return pipe 9 for a certain period of time, when the first rotating shaft 5 rotates and drives the ceramic ring plate 502 to exchange, the connection status between the branch channel and the outside is opened, and the circulated adsorbed water vapor is output to the external environment.
[0049] Please refer to the details. Figures 1-8 The drive assembly includes a first mounting slot 605, a first gear 606, a first motor 607, and a second gear 608. There are two second gears 608. The first mounting slot 605 is opened inside the main body 1 of the nursing cabinet. One end of each of the two second rotating shafts 601 movably passes through the first mounting slot 605 and extends therefrom. The two second gears 608 are respectively fixedly connected to the circumferential surfaces of the two second rotating shafts 601. The two second gears 608 mesh with each other. Both of the two second gears 608 are located inside the first mounting slot 605. The first motor 607 is fixedly connected to the inner wall of one side of the first mounting slot 605. The first gear 606 is fixedly connected to the output end of the first motor 607. The first gear 606 meshes with one of the second gears 608.
[0050] In this embodiment: When the first motor 607 in the drive assembly is running, it drives the first gear 606 connected to its output end to rotate. The first gear 606 drives the second gear 608 to rotate. The two second gears 608 mesh with each other and rotate in opposite directions. The second gear 608 drives the second rotating shaft 601 to drive the rotating block 602 to rotate. Then, the rotating block 602 drives the heater 603 to rotate, so as to achieve the contact state between the heater 603 and the ceramic ring plate 502.
[0051] Please refer to the details. Figures 1-8The rotating assembly includes a second mounting slot 7, a third gear 701, a fourth gear 702, and a second motor 703. The second mounting slot 7 is located inside the main body 1 of the nursing cabinet. One end of the first rotating shaft 5 extends through one side of the inner wall of the second mounting slot 7. The third gear 701 is fixedly connected to the circumferential surface of the first rotating shaft 5 and is located inside the second mounting slot 7. The second motor 703 is fixedly connected to one side of the inner wall of the second mounting slot 7. The fourth gear 702 is fixedly connected to the output end of the second motor 703 and meshes with the third gear 701.
[0052] In this embodiment: When the second motor 703 in the rotating assembly is running, it drives the fourth gear 702 connected to its output end to rotate. The fourth gear 702 meshes with the third gear 701. The rotation of the fourth gear 702 drives the third gear 701 to rotate, and the third gear 701 drives the first rotating shaft 5 to rotate.
[0053] Please refer to the details. Figures 1-8 A second fan body 402 is fixedly connected inside the main body 1 of the nursing cabinet. The second fan body 402 is connected to the air inlet channel 401. The pump body 801 and the condenser 802 are both fixedly connected inside the main body 1 of the nursing cabinet. The pump body 801 and the condenser 802 are both connected to the condensation channel 8.
[0054] In this embodiment: When the second fan body 402 is running, it inputs water vapor in the cavity inside the nursing cabinet body 1 into the ceramic ring plate 502 through the air inlet channel 401. The pump body 801 is used to pump the water vapor on the upper side of the condensation channel 8 into the lower side of the condensation channel 8. The ground water vapor accumulates in the steam channel 604. The condenser 802 is used to quickly cool the condensation channel 8 connected to it, so that the water vapor condenses into water droplets. The water droplets converge into a water flow and are finally recovered by the recovery component.
[0055] Please refer to the details. Figures 1-8 The nursing cabinet body 1 is equipped with a recycling component, which includes a control valve 803, a water tank 2, and a collection box 201. The water tank 2 is located on the surface of the nursing cabinet body 1 and is connected to the condensation channel 8. The collection box 201 is slidably connected inside the water tank 2 and is connected to the condensation channel 8. The control valve 803 is located inside the nursing cabinet body 1 and is connected to the condensation channel 8.
[0056] In this embodiment, the collection box 201 is slidably connected to the water tank 2. The sliding connection facilitates the treatment of the water recovered in the collection box 201. Before the collection box 201 is removed from the water tank 2, the control valve 803 closes the channel connecting the condensation channel 8 and the collection box 201. Then the water in the collection box 201 is treated. This design facilitates the treatment of water stains and avoids water stains being discharged into the external environment, which would cause environmental pollution.
[0057] Please refer to the details. Figures 1-8 The nursing cabinet body 1 is fixedly connected to the first fan body 301, the surface of the nursing cabinet body 1 is fixedly connected to the first filter plate 3, and the cavity inside the nursing cabinet body 1 is fixedly connected to the second filter plate 4.
[0058] In this embodiment: the first fan body 301 and the second fan body 402 cooperate to make the water vapor in the cavity inside the nursing cabinet body 1 flow. The first filter plate 3 is used to filter the external ambient air to prevent impurities from entering the first fan body 301. The second filter plate 4 prevents lint from entering the air inlet channel 401.
[0059] Please refer to the details. Figures 1-8 A PLC control module is fixedly connected inside the main body 1 of the nursing cabinet. The PLC control module is connected to the valve body, the first fan body 301, the second fan body 402, the heater 603, the first motor 607, the second motor 703, the condenser 802 and the control valve 803. A touch panel module 101 is fixedly connected to the surface of the main body 1 of the nursing cabinet. The touch panel module 101 is electrically connected to the PLC control module.
[0060] In this embodiment, the PLC control module intelligently controls the operation of the valve body, the first fan body 301, the second fan body 402, the heater 603, the first motor 607, the second motor 703, the condenser 802, and the control valve 803. The operation of the valve body, the first fan body 301, the second fan body 402, the heater 603, the first motor 607, the second motor 703, the condenser 802, and the control valve 803 can be directly controlled through the touch panel module 101.
[0061] Please refer to the details. Figures 1-8 Each of the four corners of the lower end of the nursing cabinet body 1 is fixedly connected with a pulley 102, and both sides of the surface of the nursing cabinet body 1 are hinged to a glass door frame 103 via a hinge.
[0062] In this embodiment: the multiple pulleys 102 facilitate the movement of the device and improve its flexibility. The glass door frame 103 has glass fixed inside to protect the clothes placed in the cavity inside the main body 1 of the care cabinet.
[0063] It should be noted that the PLC control module, valve body, first fan body 301, second fan body 402, heater 603, first motor 607, second motor 703, condenser 802, touch panel module 101, and control valve 803 used in this device are all existing technologies. The specific models of PLC control module, valve body, first fan body 301, second fan body 402, heater 603, first motor 607, second motor 703, condenser 802, touch panel module 101, and control valve 803 used can be selected according to actual needs, and will not be elaborated further here.
[0064] The working principle and usage process of this invention are as follows: When using this device, firstly, a clothes drying rod is installed inside the cavity of the nursing cabinet body 1, and clothes are hung on the surface of the clothes drying rod. Then, the glass door frame 103 is closed to the nursing cabinet body 1. The second fan body 402 and the first fan body 301 are controlled to operate, causing water vapor to flow inside the nursing cabinet body 1. The water vapor enters the molecular sieve mechanism through the air inlet channel 401, where water molecules are adsorbed by zeolite 503. After adsorption for a certain period, the rotating component is controlled to operate, driving the rotating frame 501 to rotate. Adjacent zeolite 503s alternate. When the zeolite 503 that adsorbed water vapor rotates to the upper position, the drive component is controlled to operate. The drive component operates via the second rotating shaft 601. The rotating block 602 rotates, causing the heater 603 to contact the surface of the ceramic ring plate 502. The heater 603 generates temperature, which is then transferred to the zeolite 503 through the ceramic ring plate 502. Water vapor evaporates after heating and enters the condensation channel 8 through the steam channel 604. The condenser 802 condenses the water vapor, and the condensed water flows to the collection box 201 for collection. By using this device, the molecular sieve mechanism contains multiple zeolites 503. These multiple zeolites 503 rotate periodically and are used alternately, avoiding overuse of a single zeolite 503, reducing the aging time of the zeolite 503, and improving its service life.
[0065] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A smart home clothing care cabinet with molecular sieve low-temperature drying function, characterized in that, include: The nursing cabinet body (1) has a hollow structure inside; A rotating groove is formed inside the main body (1) of the nursing cabinet; A molecular sieve mechanism, comprising a first rotating shaft (5), a rotating frame (501), ceramic ring plates (502), zeolite (503), evaporation holes (504), and a rotating assembly. Multiple ceramic ring plates (502), zeolite (503), and evaporation holes (504) are provided. The first rotating shaft (5) is rotatably connected to a rotating groove. The rotating frame (501) is fixedly connected to the circumferential surface of the first rotating shaft (5). Multiple ceramic ring plates (502) are fixedly connected to the rotating frame (501). Multiple zeolite (503) are respectively fixedly connected to multiple ceramic ring plates (502). Multiple evaporation holes (504) are respectively opened on the circumferential surface of multiple ceramic ring plates (502). The rotating assembly is located inside the main body (1) of the nursing cabinet and is connected to the first rotating shaft (5) to control the rotation of the first rotating shaft (5). A channel assembly is disposed within the main body (1) of the nursing cabinet; The drying mechanism is located inside the main body (1) of the nursing cabinet. The drying mechanism is connected to the molecular sieve mechanism to realize the drying of the molecular sieve mechanism.
2. The smart home clothing care cabinet with molecular sieve low-temperature drying function according to claim 1, characterized in that: The drying mechanism includes a steam channel (604), a rotating groove (6), a second rotating shaft (601), a rotating block (602), a heater (603), and a drive assembly. Two rotating grooves (6), two rotating shafts (601), two rotating blocks (602), and two heaters (603) are provided. The two rotating grooves (6) are located within the main body (1) of the nursing cabinet and the sealing ring plate (505). The two second rotating shafts (601) are rotatably connected to the two rotating grooves (6). The two rotating blocks (602) are fixedly connected to the circumferential surfaces of the two second rotating shafts (601). The two heaters (603) are fixedly connected to the surfaces of the two rotating blocks (602). The steam channel (604) is located within the main body (1) of the nursing cabinet and the sealing ring plate (505). The drive assembly is located within the main body (1) of the nursing cabinet and is connected to the two second rotating shafts (601) to control their rotation.
3. The intelligent home clothing care cabinet with molecular sieve low-temperature drying function according to claim 2, characterized in that: The channel assembly includes an air inlet channel (401) and a condensation channel (8). Both the air inlet channel (401) and the condensation channel (8) are located inside the main body (1) of the nursing cabinet. One end of the air inlet channel (401) is connected to the rotating groove, and the other end of the air inlet channel (401) is connected to the cavity inside the main body (1) of the nursing cabinet. One end of the condensation channel (8) is connected to the steam channel (604).
4. The intelligent home clothing care cabinet with molecular sieve low-temperature drying function according to claim 3, characterized in that: The drive assembly includes a first mounting slot (605), a first gear (606), a first motor (607), and a second gear (608). There are two second gears (608). The first mounting slot (605) is located inside the main body (1) of the nursing cabinet. One end of each of the two second rotating shafts (601) extends through the first mounting slot (605). The two second gears (608) are fixedly connected to the circumferential surfaces of the two second rotating shafts (601) respectively. The two second gears (608) mesh with each other. Both of the two second gears (608) are located inside the first mounting slot (605). The first motor (607) is fixedly connected to the inner wall of one side of the first mounting slot (605). The first gear (606) is fixedly connected to the output end of the first motor (607). The first gear (606) meshes with one of the second gears (608).
5. A smart home clothing care cabinet with molecular sieve low-temperature drying function according to claim 4, characterized in that: The rotating assembly includes a second mounting slot (7), a third gear (701), a fourth gear (702), and a second motor (703). The second mounting slot (7) is located inside the main body (1) of the nursing cabinet. One end of the first rotating shaft (5) extends through one side of the inner wall of the second mounting slot (7). The third gear (701) is fixedly connected to the circumferential surface of the first rotating shaft (5). The third gear (701) is located inside the second mounting slot (7). The second motor (703) is fixedly connected to one side of the inner wall of the second mounting slot (7). The fourth gear (702) is fixedly connected to the output end of the second motor (703). The fourth gear (702) meshes with the third gear (701).
6. The intelligent home clothing care cabinet with molecular sieve low-temperature drying function according to claim 5, characterized in that: The nursing cabinet body (1) is fixedly connected to a second fan body (402), which is connected to the air inlet channel (401). The pump body (801) and the condenser (802) are both fixedly connected to the nursing cabinet body (1), and the pump body (801) and the condenser (802) are both connected to the condensation channel (8).
7. A smart home clothing care cabinet with molecular sieve low-temperature drying function according to claim 6, characterized in that: The nursing cabinet body (1) is equipped with a recycling component, which includes a control valve (803), a water tank (2) and a collection box (201). The water tank (2) is located on the surface of the nursing cabinet body (1) and is connected to the condensation channel (8). The collection box (201) is slidably connected to the water tank (2) and is connected to the condensation channel (8). The control valve (803) is located inside the nursing cabinet body (1) and is connected to the condensation channel (8).
8. A smart home clothing care cabinet with molecular sieve low-temperature drying function according to claim 7, characterized in that: The nursing cabinet body (1) is fixedly connected to a first fan body (301), the surface of the nursing cabinet body (1) is fixedly connected to a first filter plate (3), and the cavity inside the nursing cabinet body (1) is fixedly connected to a second filter plate (4).
9. A smart home clothing care cabinet with molecular sieve low-temperature drying function according to claim 8, characterized in that: A PLC control module is fixedly connected inside the main body (1) of the nursing cabinet. The PLC control module is connected to the first fan body (301), the second fan body (402), the heater (603), the first motor (607), the second motor (703), the condenser (802), and the control valve (803). A touch panel module (101) is fixedly connected to the surface of the main body (1) of the nursing cabinet. The touch panel module (101) is electrically connected to the PLC control module.
10. A smart home clothing care cabinet with molecular sieve low-temperature drying function according to claim 9, characterized in that: The lower four corners of the main body (1) of the nursing cabinet are fixedly connected with pulleys (102), and glass door frames (103) are movably hinged to both sides of the surface of the main body (1) of the nursing cabinet.