A moisture-proof intelligent mirror structure
By designing a moisture-proof smart mirror structure, and using sealed boxes and drying boxes to protect the electronic components of the smart mirror, the problem of the electronic components of the smart mirror is easily affected by moisture, and the maintenance of a long-term drying environment and convenient maintenance operations are achieved.
Patent Information
- Application Number
- CN202210715677.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-06-23
- Publication Date
- 2025-06-03
- Estimated Expiration
- 2042-06-23
AI Technical Summary
The electronic components of the smart mirror are prone to moisture, resulting in damage to the equipment and failure of functions. The protective structure is not convenient for disassembly or replacement, making it difficult to maintain a dry environment for a long time.
A moisture-proof smart mirror structure is designed, including the mirror body, sealing box, power supply, drying box and feeding structure. The sealed box covers the smart device and the power supply, and plugs the drying box at the outlet. A desiccant is placed in the drying box to prevent water vapor from invading. The feeding structure is convenient for replacement and addition of desiccant.
It realizes moisture-proof protection for electronic components, facilitates disassembly and replaces drying boxes and desiccants, reduces the cost of use, ensures that the electronic equipment is in a dry environment for a long time, and ensures the continuous operation of electronic functions.
Smart Images

Figure CN115296074B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of mirrors, and in particular to a moisture-proof intelligent mirror structure. Background Art
[0002] An intelligent mirror refers to a mirror that supports touch operations and enables users to view various information such as news and weather by touching the screen when washing hands or faces, or a mirror with functions such as defogging and intelligent lighting. Usually, intelligent devices that support these functions are provided on the back of the mirror. Among them, intelligent mirrors used in bathrooms and other humid environments often need to protect the electronic components and power supply lines of the intelligent devices to prevent electronic devices such as lines and electronic components from getting damp.
[0003] China Patent Authorization Publication No.: CN210611697U, Authorization Publication Date: May 26, 2020. The present invention discloses a multifunctional bathroom mirror, which includes a mirror surface layer, functional elements, an outer frame, and a rear cover plate. A light-transmitting glass ring is provided on the outer periphery of the mirror surface layer, and a touch switch and a display screen are provided on the front; the functional elements are arranged on the back of the mirror surface layer, including a switch element, a heating and defogging element, a display element, and a lamp body. The lamp body is placed inside the light-transmitting glass ring, and the positions of the switch element, the display element, the touch switch, and the display screen correspond; the front of the outer frame is adhesively fixed to the mirror surface layer through a sealant; the rear cover plate buckles the functional elements inside and is connected and fixed to the back of the outer frame. The disadvantage of this technical solution is that there is no targeted moisture-proof and drying treatment for the power holes for accessing the power supply line in the rear cover plate, so that water mist and moisture invade the rear cover plate through the power holes, causing the functional elements of the intelligent device to get damp, and the electronic components are damaged, resulting in the failure of the functions of the intelligent mirror. In addition, after getting damp, the entire rear cover plate needs to be disassembled for dehumidification. Therefore, the protection structure is not easy to disassemble, which is not conducive to maintaining a dry environment for a long time and protecting the device, and lacks a structure for forming a sustainable dry environment.
[0004] In summary, the electronic components of the intelligent mirror are prone to getting damp, resulting in device damage, function failure, inconvenient disassembly and replacement of the protection structure, and difficulty in maintaining a long-term dry environment. Summary of the Invention
[0005] The present invention aims to overcome the deficiencies in the prior art that the electronic components of the intelligent mirror are easily damp, resulting in device damage, function failure, inconvenient disassembly and replacement of the protection structure, and difficulty in maintaining a long-term sustainable dry environment. The present invention provides a moisture-proof intelligent mirror structure that can protect the electronic components from moisture, is convenient for disassembly and replacement, achieves the effect of keeping the electronic device in a sustainable dry environment for a long time, and thus ensures the electronic functions.
[0006] To achieve the above object, the present invention adopts the following technical solutions:
[0007] A moisture-proof intelligent mirror structure includes a mirror body. A mirror hanging piece is provided on the mirror body. A sealing box is provided below the mirror hanging piece. The sealing box is connected to the back surface of the mirror body. A power supply is provided inside the sealing box. A power cord is connected to the power supply. An outlet is provided on the sealing box. The power cord extends out of the outlet. A drying box is plugged into the outlet. A feeding structure is provided on the sealing box.
[0008] The front surface of the mirror body of the intelligent mirror is the used mirror surface. A mirror hanging piece is provided on the back surface of the mirror body for hanging the intelligent mirror and leaving a placement space for the intelligent devices and the power supply on the back surface. The sealing box is connected to the back surface of the mirror body. The power supply provides power for the intelligent devices. The power cord is used to connect the power supply to the socket to provide electrical energy for the intelligent devices. The sealing box covers the intelligent devices and the power supply inside the box. An outlet is provided on the sealing box for the power cord to extend out. A drying box is plugged at the outlet. The drying box is used to place desiccant. The desiccant is used to dry the water vapor near the outlet to prevent the water vapor from invading the sealing box through the outlet, thereby ensuring that the electronic components and the power supply in the intelligent devices are in a relatively dry environment. Thus, the intelligent mirror has the moisture-proof function to continuously operate. At the same time, the drying box is plugged into the sealing box, making the drying box convenient to disassemble and replace, easy to use and reducing the economic cost. At the same time, a feeding structure is installed on the sealing box to conveniently provide new desiccant for the drying box, so that the electronic components are in a long-term sustainable dry environmental protection.
[0009] Preferably, a through hole is provided at the center of the drying box. A first sealing ring is plugged into the through hole. An inlet slit is provided on the side surface of the first sealing ring. The power cord is sleeved with the first sealing ring. An open slot is provided on the side surface of the drying box. The open slot communicates with the through hole. The structure of the drying box is a circular ring structure with a cavity. The through hole is the annular cavity part at the center of the drying box. The first sealing ring is connected to the through hole. The first sealing ring is made of rubber material. The structural shape of the first sealing ring is an annular structure. The outer surface of the first sealing ring is connected to the hole wall of the through hole. At the same time, an inlet slit is provided on the side surface of the first sealing ring, making the first sealing ring a structure where the two side surfaces are in contact but the first sealing ring is not closed. At the same time, the rubber material enables the first sealing ring to deform and recover. Thus, the power cord can conveniently enter the first sealing ring from the inlet slit through the open slot. The power cord is in contact with the inner ring wall of the first sealing ring, and the outer surface of the first sealing ring is in contact with the inner ring wall of the drying box, further isolating the water vapor from entering the sealing box through the gap at the power cord, improving the drying effect of the sealing box.
[0010] Preferably, an opening 1 is provided on the drying box. The opening 1 communicates with the open slot. A slider is provided at the opening 1. The slider is slidably connected to the drying box. The size of the slider is adapted to the open slot. The open slot is located on the arc surface of the drying box. The opening 1 communicates with the open slot. The slider is of a cavity structure and is sleeved inside the drying box. The structural shape of the slider is the same as that of the drying box. By the entry and exit of the slider at the opening 1 on the drying box, the notch of the open slot is blocked by the slider, and thus the open slot is closed, which facilitates the entry of the power cord through the open slot while preventing water vapor from entering the sealed box through the open slot.
[0011] Preferably, a slide rail is provided on the drying box. A plug rod is provided on the slider. One end of the plug rod is connected to the slider, and the other end of the plug rod extends out of the slide rail and is slidably connected to the slide rail. The slide rail is arranged on the surface of the drying box. The slide rail communicates with the inner and outer surfaces of the drying box. The plug rod is connected to the outer surface of the slider. The plug rod extends out of the outer surface of the drying box through the slide rail, which facilitates the sliding of the slider through the plug rod, enabling the slider to enter and exit the drying box conveniently, and further facilitating the placement of the power cord and the opening and closing of the open slot on the drying box, making the structure operation convenient and smooth.
[0012] Preferably, a material passing port is provided on the slider, and a baffle is embedded at the material passing port. The material passing port is arranged on the slider for the entry and exit of the desiccant. At the same time, the baffle is inserted at the material passing port to prevent the desiccant from falling out. Without replacing the entire drying box, and since the drying box and the wire outlet are connected by plugging, the desiccant can be poured out and replaced by rotation, reducing the economic cost. Thus, the long-term drying function of the drying box is maintained with convenient operation and low cost to protect the electronic components.
[0013] Preferably, the feeding structure includes a material passing pipe and a guiding box. The guiding box is provided with a feeding port and a discharging port. The upper end of the material passing pipe is provided with a feeding opening, and the lower end of the material passing pipe is provided with a feeding inlet. The material passing pipe is connected to the feeding inlet, and the feeding inlet is communicated with the feeding port. The discharging port is opposite to the position of the material passing port. The material passing pipe is placed above the guiding box and is connected to the guiding box. The feeding port of the guiding box is used for adding and putting the desiccant. The discharging port is connected and communicated with the feeding opening of the material passing pipe, enabling the desiccant to enter the guiding box. The discharging port and the material passing port are opposite in the up and down positions, enabling the desiccant passing through the discharging port to enter the material passing port, which facilitates the quick addition of the desiccant, the long-term continuous use of the drying box, improves the sustainability of feeding, and further ensures the long-term maintenance of the drying environment to protect the electronic components.
[0014] Preferably, a material receiving box is provided on the sealing box. The material receiving box is connected to the outer surface of the sealing box. A material receiving port is provided at the upper end of the material receiving box. A jack is provided on one side of the material receiving box. A blocking block is inserted into the jack. A slot is provided on the material receiving box. An insertion block is connected to the blocking block. The insertion block is inserted into the slot. A material guiding plate is provided in the material receiving box. The material guiding plate is an inclined panel. The horizontal height of one end of the material guiding plate close to the blocking block is lower than that of the other end. The material receiving box is placed below the drying box. The upper end and one side of the material receiving box are open ports. The open port above the material receiving box is set as the material receiving port, so that the ineffective desiccant enters the material receiving port through the material passing port, which is convenient for quickly pouring out the ineffective desiccant. At the same time, an inclined material guiding plate is arranged on the inner bottom of the material receiving box. The material guiding plate is inclined towards the open port on one side of the material receiving box. This open port is set as the jack. The blocking block is inserted into the slot through the jack so that the blocking block is embedded in the jack. Then the waste can be stacked along the material guiding plate at the jack for convenient centralized collection, improving the convenience and speed of replacing materials in the drying box, improving the sustainability of material replacement, and further preventing water vapor from entering the sealing box through the gap after the desiccant fails.
[0015] Preferably, an opening two is provided on the drying box. A fixing plate is connected at the opening two. A clamping groove is provided on the fixing plate. The sliding block is embedded in the clamping groove. The opening two is arranged opposite to the opening one. A fixing plate is connected at the opening two. The fixing plate and the opening two are integrated. The placing groove and the cavity of the drying box are isolated through the fixing plate. The position of the fixing plate is opposite to that of the sliding block. A clamping groove is provided on the fixing plate. The position and size of the clamping groove are adapted to the sliding block, so that the sliding block is clamped and embedded in the clamping groove when closing the placing groove, preventing the sliding block from being accidentally touched or opened under gravity during use, and further preventing water vapor from entering the sealing box from the placing groove, improving the drying effect of the environment inside the sealing box.
[0016] Preferably, a sealing ring two is provided at the wire outlet. The outer surface of the sealing ring two is connected to the inner wall of the wire outlet. The drying box is sleeved with the sealing ring two. The outer surface of the drying box is attached to the inner wall of the sealing ring two. The wire outlet is in a circular hole shape. The wire outlet is connected with the sealing ring two. The sealing ring two is made of rubber material. The structural shape of the sealing ring two is an annular structure. The outer surface of the sealing ring two is connected to the inner wall of the wire outlet. At the same time, the rubber material enables the sealing ring two to deform and recover, facilitating the inner wall of the sealing ring two to completely adhere to the outer surface of the drying box including the sliding block when the drying box is embedded in the sealing ring two, so as to prevent water vapor from entering the sealing box between the drying box and the sealing ring two, further ensuring the dry environment inside the sealing box.
[0017] Preferably, a fixing block is connected to the material passing pipe. The fixing block is connected with a spring. The other end of the shown spring is connected to the sealing box. The material passing pipe is elastically connected to the sealing box. The fixing block is connected to the side of the material passing pipe. One end of the spring is connected to the fixing block. The other end of the spring is connected to the sealing box, so that the material passing pipe including the material guiding box is elastically connected to the sealing box, thus preventing the material guiding box from covering and blocking the wire outlet and interfering with the removal of the inserted drying box and the sealing ring two, ensuring the convenience of use.
[0018] The beneficial effects of the present invention are as follows: The electronic components are protected from moisture. The moisture-proof structure is convenient for disassembly, replacement, and refueling, reducing the use cost while improving the portability. The electronic device is kept in a continuous dry environment for a long time and can be maintained continuously. At the same time, the structure is stable and the operation is convenient and smooth. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a perspective view of the present invention;
[0020] Figure 2 is Figure 1 the rear view of
[0021] Figure 3 is Figure 2 the side view of
[0022] Figure 4 is Figure 3 the sectional view of
[0023] Figure 5 is Figure 1 the enlarged view of part A in
[0024] Figure 6 is the structural schematic diagram of the drying box in the closed state of the open slot;
[0025] Figure 7 is Figure 6 the enlarged view of part B in
[0026] Figure 8 is the structural schematic diagram of the drying box in the open state of the open slot;
[0027] Figure 9 is the structural schematic diagram of the drying box in the open state of the material passing port;
[0028] Figure 10 is the schematic diagram of the feeding state;
[0029] Figure 11 is Figure 10 the sectional view of
[0030] Figure 12 is the sectional view of the material receiving box.
[0031] In the figure: 1. Mirror body, 2. Mirror hanging piece, 3. Sealing box, 4. Power supply, 5. Power cord, 6. Wire outlet, 7. Drying box, 8. Through hole, 9. Sealing ring 1, 10. Wire inlet slot, 11. Open slot, 12. Opening 1, 13. Slide block, 14. Slide rail, 15. Insert rod, 16. Material passing port, 17. Material blocking plate, 18. Material passing pipe, 19. Material guiding box, 20. Feeding port, 21. Discharging port, 22. Feeding opening, 23. Inlet port, 24. Material receiving box, 25. Material receiving port, 26. Jack, 27. Block, 28. Slot, 29. Insert block, 30. Material guiding plate, 31. Opening 2, 32. Fixed plate, 33. Card slot, 34. Sealing ring 2, 35. Fixed block, 36. Spring, 37. Guide bar. Detailed implementation manners
[0032] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The following description of at least one exemplary embodiment is actually only illustrative and in no way restrictive of the present application and its application or use. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present application.
[0033] Embodiment 1:
[0034] As Figure 1 shown, a moisture-proof intelligent mirror structure includes a mirror body 1, a mirror hanging piece 2 is connected to the mirror body 1, and a sealing box 3 is provided below the mirror hanging piece 2. The sealing box 3 is connected to the back of the mirror body 1.
[0035] As Figure 3 , 4 shown, a power supply 4 is provided in the sealing box 3, and a power cord 5 is connected to the power supply 4.
[0036] As Figure 2 shown, a wire outlet 6 is provided on the sealing box 3, the power cord 5 extends out of the wire outlet 6, and a drying box 7 is plugged on the wire outlet 6.
[0037] As Figure 5 shown, a through hole 8 is provided at the center of the drying box 7, a sealing ring 1 9 is plugged in the through hole 8, a wire inlet slot 10 is provided on the side of the sealing ring 1 9, the power cord 5 is sleeved with the sealing ring 1 9, an open slot 11 is provided on the side of the drying box 7, and the open slot 11 communicates with the through hole 8. A sealing ring 2 34 is provided at the wire outlet 6, the outer surface of the sealing ring 2 34 is connected to the inner wall of the wire outlet 6, the drying box 7 is sleeved with the sealing ring 2 34, and the outer surface of the drying box 7 is in contact with the inner wall of the sealing ring 2 34.
[0038] As Figure 6As shown, an opening 12 is provided on the drying box 7. The opening 12 communicates with the open slot 11. A slider 13 is provided at the opening 12. The slider 13 is slidably connected to the drying box 7. The size of the slider 13 is adapted to the open slot 11. A slide rail 14 is provided on the drying box 7. A plug rod 15 is provided on the slider 13. One end of the plug rod 15 is connected to the slider 13, and the other end of the plug rod 15 extends out of the slide rail 14 and is slidably connected to the slide rail 14.
[0039] As Figure 9 shown, a material passing port 16 is provided on the slider 13. A baffle plate 17 is embedded at the material passing port 16.
[0040] As Figure 1 、 10 shown in FIGS. 11, a feeding structure is provided on the sealing box 3. The feeding structure includes a material passing pipe 18 and a guiding box 19. An inlet 20 and an outlet 21 are provided on the guiding box 19. A feeding port 22 is provided at the upper end of the material passing pipe 18. A feeding inlet 23 is provided at the lower end of the material passing pipe 18. The material passing pipe 18 is connected to the guiding box 19. The feeding inlet 23 communicates with the inlet 20. The position of the outlet 21 is opposite to that of the material passing port 16.
[0041] As Figure 2 、 12 shown, a receiving box 24 is provided on the sealing box 3. The receiving box 24 is connected to the outer surface of the sealing box 3. A receiving port 25 is provided at the upper end of the receiving box 24. A jack 26 is provided on one side of the receiving box 24. A blocking block 27 is inserted into the jack 26. A slot 28 is provided on the receiving box 24. An inserting block 29 is connected to the blocking block 27. The inserting block 29 is inserted into the slot 28. A guiding plate 30 is provided in the receiving box 24. The guiding plate 30 is an inclined panel. The horizontal height of one end of the guiding plate 30 close to the blocking block 27 is lower than that of the other end.
[0042] As Figure 8 shown, an opening 31 is provided on the drying box 7. A fixing plate 32 is connected at the opening 31. A clamping slot 33 is provided on the fixing plate 32. The slider 13 is embedded in the clamping slot 33.
[0043] As Figure 2 、 4 shown, a fixing block 35 is connected to the material passing pipe 18. A spring 36 is connected to the fixing block 35. The other end of the spring 36 is connected to the sealing box 3. The material passing pipe 16 is elastically connected to the sealing box 3.
[0044] As Figure 1-12As shown: The front of the mirror body 1 of the smart mirror is the mirror surface for use. A mirror hanging piece 2 is provided on the back of the mirror body for hanging the smart mirror. The back is for installing smart devices and a power supply. The sealing box 3 is connected to the back of the mirror body, and the connection part is fixed and the gap at the connection part is filled with sealant. The power supply 4 provides power for the smart device, and the power cord 5 is used to connect the power supply 4 to the socket to provide electrical energy for the smart device. The sealing box 3 covers the smart device and the power supply 4 inside the box, and an outlet 6 is provided on the sealing box 3 for the power cord 5 to extend out. A drying box 7 is plugged into the outlet 6. After the drying box 7 is plugged into the outlet, its surface is higher than the outer surface of the sealing box 3, which is convenient for taking out and replacing the drying box 7.
[0045] The cavity inside the drying box 7 is for placing desiccant. The drying box 7 is a cylindrical ring structure. The surface of the drying box 7 has a notch which is set as an open slot 11. The open slot 11 communicates with the through hole 8 at the center of the drying box 7, which is convenient for the power cord 5 to extend in. A first rubber sealing ring 9 is connected inside the through hole 8 (the connection part is sealed with sealant). At the same time, the first sealing ring 9 is a cylindrical ring structure, which is convenient for the power cord 5 to extend into the wire inlet slot 10 from the side seam of the first sealing ring 9 and be clamped tightly by the first sealing ring 9 to prevent water vapor from entering.
[0046] The open slot 11 makes the arc surface of the drying box 7 have two side openings: opening one 12 and opening two 20. Among them, a slider 13 is provided at the opening one 12. The structural shape of the slider 13 is the same as that of the drying box 7 and is sleeved inside the drying box 7, so that the slider 13 can slide on the drying box 7 through the plug rod 15, and then the open slot 12 can be in a closed state (as shown in Figure 8 shown) and an open state (as shown in Figure 6 shown), achieving the effect of being convenient for the power cord 5 to be put in and having a switchable effect to prevent water vapor from entering the sealing box 3. A fixing plate 32 is integrally embedded on the opening two 31, and a clamping groove 33 is provided on the fixing plate 32 for embedding the slider 13 to prevent the slider 13 from moving easily after closing the open slot 11, so as to strengthen the structural stability.
[0047] One side of the slider 13 that is embedded with the fixing plate 32 is a closed surface, and the opposite side is an open surface, that is, the open port of the slider 13 is placed in the cavity of the sealing box 3. The desiccant is put into the material through port 16 so that it can directly enter the cavity of the drying box 7. The slide rail 14 communicates with the cavity inside the drying box 7, so that the water vapor around the drying box 7 enters the drying box 7 and is absorbed after the open slot 11 is closed.
[0048] A second sealing ring 23 is connected to the outlet 6 (the connection part is sealed with sealant). When the drying box 7 is plugged into the outlet 6, it is in contact with the inner surface of the second sealing ring 34. The second sealing ring 34 is also made of rubber material, so that the outer surface of the drying box 7 and the outer surface of the slider 13 are both in close contact with the inner surface of the second sealing ring 34 to prevent water vapor from entering through the gap.
[0049] The material baffle 17 is fitted into the material passing opening 16. As Figure 7 shown, the end face of the material baffle 17 and the port of the material passing opening 16 are both beveled openings, and they are both inclined in the direction of tightening towards the cavity, preventing the material baffle 17 from falling into the cavity when fitted onto the material passing opening 16, and facilitating the quick operation of the material baffle 17 on the material passing opening 16.
[0050] The size of the upper feeding opening 22 of the material passing pipe 18 is larger than that of the material passing opening 16, facilitating large-diameter feeding at the feeding opening 22, accelerating the feeding efficiency, shortening the feeding time, and improving the usage experience at the same time, achieving convenient feeding. The inner wall of the material guiding box 19 is a beveled wall, so that the size of the discharge opening 21 is the same as that of the material passing opening 16, thereby preventing new desiccants from accumulating at the discharge opening 21 and inside the material guiding box 19, resulting in waste of desiccants and increased protection cost for electronic components.
[0051] The distance between the material guiding box 19 and the drying box 7 is equal to the height of the material passing pipe 18 extending out of the mirror body 1. At the same time, the distance between the material guiding box 19 and the drying box 7 is the thickness of the second sealing ring 34, facilitating the replacement of the second sealing ring 34 during later aging and the insertion and extraction of the drying box 7. Additionally, while reminding the feeding operation method at the upper end where the material passing pipe 18 extends out of the mirror body 1, it can prevent the material passing pipe 18 from extending out of the mirror body 1 excessively and affecting the aesthetics of the smart mirror.
[0052] The thickness of the mirror hanging piece 2 is greater than the sum of the thickness of the sealing box 3, the thickness of the drying box 7, and the thickness of the insertion rod 15, preventing the smart mirror from tilting after the mirror hanging piece 2 is hung and the mirror body 1 cannot be used flatly. Additionally, the fixing block 35 is connected to the part of the material passing pipe 18 that extends beyond the sealing box 3. One side of the fixing block 35 is connected to the material passing pipe 18, and the other side is in contact with the back surface of the mirror body 1. The upper end of the spring 36 is connected to the lower end of the fixing block 35, and the lower end of the spring 36 is connected to the upper end surface of the sealing box 3. By blocking the rear fixing block 35 and the spring 36 by the material passing pipe 18, the aesthetics of the smart mirror is increased. A guiding strip 37 is connected to the back surface of the mirror body 1. There are a pair of guiding strips 37. The two guiding strips 37 are respectively placed on both sides of the material passing pipe 18 and are in contact with the side surfaces of the material passing pipe 18, preventing the material passing pipe 18 from shifting during up and down displacement and thus unable to be docked with the material passing opening 16. Additionally, the positions of the two guiding strips 37 are respectively on both sides of the fixing block 35 and the spring 36, achieving the occlusion of both sides of the fixing block 35 and the spring 36 to increase the aesthetics of the smart mirror.
[0053] During installation: Install the sealing box 3 so that after the sealing box 3 covers the smart device, it covers the electronic components and the power supply 4, and the connection is sealed with sealant. During this period, extend the power cord 5 out of the sealing box 3 from the wire outlet 6. The power cord 5 is embedded in the first sealing ring 9 through the open slot 11 and the wire inlet seam 10. Clamp the power cord 5 with the drying box 7. Slide the insertion rod 15 on the slide rail 14 so that one side of the slider 13 is inserted into the card slot 33, and insert the drying box 7 into the wire outlet 6 so that the drying box 7 is embedded with the second sealing ring 34, then the moisture-proof effect of the smart mirror can be achieved.
[0054] Disassembly and replacement of the drying box 7: Take out the aged or damaged drying box 7 from the wire outlet 6, and reset the slider 13: Slide the insertion rod 15 counterclockwise so that the insertion rod 15 slides on the slide rail 14 and brings the slider 13 into the cavity of the drying box 7. Pull out the power cord 5 reversely through the wire inlet seam 10 and the open slot 11 on the first sealing ring 9, then the power cord 5 and the old drying box 7 can be separated. According to the method of installing the drying box 7 above, connect the power cord 5 with the new drying box 7, and insert the new drying box 7 into the wire outlet 6, then the replacement of the new drying box 7 is completed.
[0055] Replacing the desiccant, pouring out the old desiccant: Pull out the drying box 7 from the wire inlet 6, rotate the drying box 7 so that the material passing port 16 faces downwards, and pull out the baffle plate 17 (as Figure 9 shown). The used desiccant falls out of the drying box 7 under the action of gravity, and the old desiccant falls into the receiving box 24 directly below through the receiving port 25 under the action of gravity. After pouring out, reset the drying box 7 so that the material passing port 16 faces upwards. The old desiccant is guided by the inclined guide plate 30 and continuously rolls and accumulates at the jack 26. After all are poured out, pull out the stopper 27 from the jack 26. During this period, the insertion block 29 is pulled out from the slot 28, then the old desiccant can be quickly collected; in addition, when adding materials, to prevent the desiccant from falling to the floor when adding too much material, which causes trouble in cleaning, it can also be collected and accumulated by the receiving box 24.
[0056] Pouring in the new desiccant: Press down the material passing tube 18 so that the lower end surface of the guide box 19 is in contact with the drying box 7 ((as Figure 10 、 11 shown)), that is, the discharge port 21 is in contact with and communicates with the material passing port 16. Add new desiccant from the feeding port 22 at the upper port of the material passing tube 18. The new desiccant enters the guide box 19 through the feeding port 20 and the feeding port 23, and then enters the cavity of the slider 13 from the discharge port 21 and the material passing port 16. Since the cavity of the slider 13 is connected to the cavity of the drying box 7, the inside of the drying box 7 and the slider 13 can be filled with new desiccant. Re-cover the baffle plate 17 to seal the slider 13, and re-insert the drying box 7 along the second sealing ring 34 into the wire inlet 6. During this period, the power cord 5 is always clamped in the first sealing ring 9. After re-replacing the new desiccant, the dry environment near the wire outlet 6 can be continuously maintained, achieving a long-term and convenient drying effect.
[0057] The above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A moisture-proof intelligent mirror structure, Characterized in that, It includes a mirror body (1), a mirror hanging piece (2) is connected to the mirror body (1), a sealing box (3) is provided below the mirror hanging piece (2), the sealing box (3) is connected to the back of the mirror body (1), a power supply (4) is provided in the sealing box (3), a power cord (5) is connected to the power supply (4), an outlet (6) is provided on the sealing box (3), the power cord (5) extends out of the outlet (6), a drying box (7) is plugged into the outlet (6), a feeding structure is provided on the sealing box (3), a through hole (8) is provided at the center of the drying box (7), a first sealing ring (9) is plugged into the through hole (8), an inlet slot (10) is provided on the side of the first sealing ring (9), the power cord (5) is sleeved with the first sealing ring (9), an open slot (11) is provided on the side of the drying box (7), the open slot (11) communicates with the through hole (8), an opening (12) is provided on the drying box (7), the opening (12) communicates with the open slot (11), a slider (13) is provided at the opening (12), the slider (13) is slidably connected to the drying box (7), the size of the slider (13) is adapted to the open slot (11), a slide rail (14) is provided on the drying box (7), a plug rod (15) is provided on the slider (13), one end of the plug rod (15) is connected to the slider (13), the other end of the plug rod (15) extends out of the slide rail (14) and is slidably connected to the slide rail (14), a material passing port (16) is provided on the slider (13), and a material blocking plate (17) is embedded at the material passing port (16).
2. A moisture-proof intelligent mirror structure according to claim 1, Characterized in that, The feeding structure includes a material passing pipe (18) and a material guiding box (19), a feeding port (20) and a discharging port (21) are provided on the material guiding box (19), a feeding port (22) is provided at the upper end of the material passing pipe (18), a material inlet (23) is provided at the lower end of the material passing pipe (18), the material passing pipe (18) is connected to the material guiding box (19), the material inlet (23) is communicated with the feeding port (20), and the discharging port (21) is opposite to the position of the material passing port (16).
3. A moisture-proof intelligent mirror structure according to claim 2, Characterized in that, A receiving box (24) is provided on the sealing box (3), the receiving box (24) is connected to the outer surface of the sealing box (3), a receiving port (25) is provided at the upper end of the receiving box (24), a jack (26) is provided on one side of the receiving box (24), a blocking block (27) is plugged into the jack (26), a slot (28) is provided on the receiving box (24), a plug block (29) is connected to the blocking block (27), the plug block (29) is plugged into the slot (28), a material guiding plate (30) is provided in the receiving box (24), the material guiding plate (30) is an inclined panel, and the horizontal height of one end of the material guiding plate (30) close to the blocking block (27) is lower than the other end.
4. A moisture-proof intelligent mirror structure according to claim 1, characterized in that, the drying box (7) is provided with an opening two (31), a fixing plate (32) is connected to the opening two (31), a clamping groove (33) is provided on the fixing plate (32), and the slider (13) is fitted into the clamping groove (33).
5. A moisture-proof intelligent mirror structure according to claim 1, characterized in that, a second sealing ring (34) is provided at the wire outlet (6), the outer surface of the second sealing ring (34) is connected to the inner wall of the wire outlet (6), the drying box (7) is sleeved with the second sealing ring (34), and the outer surface of the drying box (7) is in contact with the inner wall of the second sealing ring (34).
6. A moisture-proof intelligent mirror structure according to claim 3, characterized in that, a fixing block (35) is connected to the material conveying pipe (18), the fixing block (35) is connected with a spring (36), the other end of the spring (36) is connected to the sealing box (3), and the material conveying pipe (18) is elastically connected to the sealing box (3).
Citation Information
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