Micro-current AI intelligent mask instrument and intelligent control method thereof

By designing the structure of the head-mounted ring and plug limit frame on the current AI intelligent facial mask instrument, the problems of poor stability and low versatility of the facial mask instrument are solved, and higher usage stability and versatility are achieved.

CN120168869AActive Publication Date: 2025-06-20DELI BEAUTY EQUIP (GUANGZHOU) CO LTD
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Patent Information

Application Number
CN202510339241.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-21
Publication Date
2025-06-20
Estimated Expiration
2045-03-21

AI Technical Summary

Technical Problem

The existing current AI smart mask instruments have poor stability and are prone to drop when used, and can only be used in conjunction with masks printed with electrode circuits, which are less versatile.

Method used

A micro-current AI intelligent facial mask instrument is designed, which adopts the structure of a head-mounted ring and a block limit frame. The drive component drives the push rod downward to realize the insertion of the trapezoidal limit block and limit frame in the block, ensuring the stable wear of the mask instrument. At the same time, the storage compartment on both sides of the mask instrument can be opened, allowing the use of micro current wires and micro electrode sheets with any mask.

Benefits of technology

It improves the stability and comfort of the mask instrument and greatly improves its versatility, so that ordinary masks can also be used in conjunction with micro-current AI smart mask instruments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of intelligent mask instruments, particularly discloses a micro-current AI intelligent mask instrument and an intelligent control method thereof, and solves the problems that an existing current AI intelligent mask instrument can only be applied to a mask printed with an electrode circuit, is single in use and poor in stability. The device comprises a head-mounted ring, a micro-current AI mask instrument, an insertion block, a limiting frame, a through hole, a trapezoidal limiting block, a clamping groove, a push rod, a driving assembly, a storage bin, a bin door, a winding drum, a micro-current line and a micro-electrode plate, the bin door is connected with a clamping ring, a clamping column inserted in cooperation with the clamping ring is slidably connected in the micro-current AI mask instrument, and a linkage assembly is further arranged in the micro-current AI mask instrument. The linkage assembly is used for controlling the clamping column and the clamping ring to cancel insertion limiting when the push rod moves downwards, and a third power connection terminal is arranged on the rear side of the micro-current AI mask instrument. The device can be applied to a mask without a printed electrode circuit, and is good in universality and stable in use.
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Description

Technical Field

[0001] The present invention relates to the field of intelligent facial mask devices, in particular to an intelligent facial mask device with microcurrent AI and its intelligent control method. Background Art

[0002] The current AI intelligent facial mask device is an innovative product that combines high-tech skin care technologies such as artificial intelligence and microcurrent. It detects data such as skin moisture, oiliness, temperature, and resistance through intelligent sensors, and then uses AI algorithms to analyze these data to accurately understand the skin condition. According to the analysis results, it automatically adjusts the skin care mode and provides a personalized care plan. Its specific principle is to utilize the microcurrent pulse wave principle to generate a weak current. This microcurrent can stimulate skin cells and tissues, promote cell metabolism, increase cell energy supply, accelerate the cell renewal and repair process; it can also promote local blood circulation in the skin, enhance the permeability of cell membranes, promote the generation of collagen and elastic fibers, reduce inflammatory reactions, stimulate lymphatic circulation, and help drain excess water and toxins from the skin. Some facial mask devices have a temperature sensing and control function, and the warm import technology can accelerate skin circulation and enhance the absorption of anti-aging ingredients by the skin.

[0003] However, when the existing current AI intelligent facial mask device is in use, it is adsorbed on the user's forehead through magnetic attraction to supply power and control the specially printed electrode circuit facial mask. As a result, the stability during use is poor and it is easy to fall off. At the same time, it can only be used in conjunction with the facial mask printed with the electrode circuit, resulting in the inability to achieve the current AI intelligent control function for ordinary facial masks, and the versatility is poor. Therefore, a microcurrent AI intelligent facial mask device and its intelligent control method are proposed. Summary of the Invention

[0004] In order to overcome the deficiencies of the prior art, the present invention proposes a microcurrent AI intelligent facial mask device and its intelligent control method, which can be flexibly worn on the head for the existing current AI intelligent facial mask device, increasing the stability and comfort during use. At the same time, it can also be applied to facial masks without printed electrode circuits, greatly improving the versatility.

[0005] To solve the above technical problems, the basic technical solution proposed by the present invention is as follows:

[0006] A micro-current AI intelligent facial mask device, comprising a headband, a micro-current AI facial mask device. An insertion block is connected to the headband, and a limit frame that cooperates with and inserts the insertion block is connected to the micro-current AI facial mask device. A perforation is penetratingly formed in the insertion block. Trapezoidal limit blocks that penetrate the perforation and extend to the outside thereof are slidably connected to both sides of the insertion block. A card slot that cooperates with and inserts the trapezoidal limit blocks is formed in the inner wall of the limit frame. A push rod is slidably connected in the perforation. A driving component is arranged on the insertion block. The driving component is used to push the push rod to slide in the perforation, so as to push the trapezoidal limit blocks on both sides to slide away from each other and extend to the two outer sides of the insertion block;

[0007] Receiving bins are arranged on both sides of the micro-current AI facial mask device. A bin door is installed on each receiving bin. A reel is rotatably installed in the receiving bin. A micro-current wire is wound on the surface of the reel. A plurality of micro-electrode sheets are connected to the micro-current wire. A clamping ring is connected to the bin door. A clamping post that cooperates with and inserts the clamping ring is slidably connected in the micro-current AI facial mask device. A linkage component is further arranged in the micro-current AI facial mask device. The linkage component is used to control the insertion limit between the clamping post and the clamping ring to be cancelled when the push rod moves downward. A power connection terminal three is arranged at the rear side of the micro-current AI facial mask device.

[0008] Preferably, a universal bending rod is connected to the headband, and a clamping seat is connected through the universal bending rod. The insertion block is connected to the clamping seat.

[0009] Preferably, the driving component includes a motor and a lead screw. The motor is installed on the inner wall of the clamping seat. The lead screw is connected to the output end of the motor and is sleeved with the push rod in a threaded manner. The cross sections of the perforation and the push rod are square and are slidably sleeved with each other in a fitting manner. Electric connection terminals one are installed on the trapezoidal limit blocks on the side where the two insertion blocks are close to each other. Electric connection terminals two that are electrically connected to the electric connection terminals one are installed on the inner wall of the card slot on the side where the two limit frames are close to each other.

[0010] Preferably, first limit sliding grooves are symmetrically formed on both sides of the perforation of the insertion block. The first limit sliding grooves penetrate through the surface of the perforation and the insertion block respectively. The trapezoidal ends of the trapezoidal limit blocks extend into the perforation along the first limit sliding grooves and are slidably fitted with the lower end of the push rod, and the other ends slide through the surface of the insertion block. Spring one is connected between the side where the two trapezoidal limit blocks are away from each other and the inner wall of their respective first limit sliding grooves.

[0011] Preferably, the linkage component includes a sliding frame, an inclined block, and a sliding plate. The sliding plate slides up and down in the micro-current AI facial mask device and is in contact with and abuts against the lower end of the push rod. The sliding frames are symmetrically and slidably arranged on both sides of the micro-current AI facial mask device. The inclined blocks are symmetrically connected to the side surfaces where the two sliding frames are close to each other and are in sliding contact with and abutted against the side edges of the sliding plate. A rotating rod is rotatably connected between each sliding frame and the clamping post on its respective side.

[0012] Preferably, the inner wall of the micro-current AI facial mask instrument is connected with a slide rail, the slide rail is connected with a slider, the clamping column is connected to the slider, the inner wall of the micro-current AI facial mask instrument is connected with a guide rod 1 and a guide rod 4, the slide frame is slidably sleeved on the outside of the guide rod 1 and the guide rod 4, and a spring 4 sleeved on the outside of the guide rod 4 is further connected between the slide frame and the inner wall of the micro-current AI facial mask instrument, the slider and the slide frame are both connected with a spring hinge seat, and the two ends of the rotating rod are rotatably connected with the slider and the slide frame respectively through the spring hinge seat;

[0013] The inner wall of the microcurrent AI facial mask instrument is connected to a second guide rod, the slide plate is slidably sleeved on the outside of the second guide rod, and a second spring sleeved on the outside of the second guide rod is also connected between the slide plate and the inner wall of the microcurrent AI facial mask instrument, and the second guide rod is located between the inclined block and the push rod.

[0014] Preferably, a limiting slide hole is provided on the rear side of the microcurrent AI facial mask instrument, a conical cylinder is provided in the sliding sleeve of the limiting slide hole, the power terminal three is connected to the side of the conical cylinder away from the sliding frame, and slides through the inside and outside of the limiting slide hole, a spring three is connected between the conical cylinder and the inner wall of the limiting slide hole, a resist plate is connected to the sliding frame, and the sliding frame and the resist plate both fit and slide against the extended end of the conical cylinder in the microcurrent AI facial mask instrument.

[0015] Preferably, the microcurrent AI facial mask instrument is rotatably sleeved with a threaded barrel, the threaded barrel penetrates the microcurrent AI facial mask instrument and extends therein, a screw is threadedly sleeved in the threaded barrel, the lower end of the screw extends below the threaded barrel, and a concave plate that cooperates with the slide plate is connected to the extended end, the inner wall of the microcurrent AI facial mask instrument is connected to a guide rod three, and the two ends of the concave plate are slidably sleeved on the outside of the guide rod three.

[0016] Preferably, Bluetooth headsets are installed on both sides of the head ring, a microcurrent AI control module is installed in the microcurrent AI facial mask instrument, a display screen and control keys are installed on the microcurrent AI facial mask instrument, an electric motor is installed on the inner wall of the storage bin, the reel is connected to the output end of the electric motor, a threading hole is opened on the bin door, and a pull block is connected to the lower end of the holder, and a resistance switch that cooperates with the upper end of the microcurrent AI facial mask instrument is connected, and the resistance switch is electrically connected to the motor.

[0017] An intelligent control method for a micro-current AI intelligent facial mask instrument comprises the following steps:

[0018] Step 1: Before using the mask, first insert the plug into the limit frame, then control the drive assembly to move the push rod downward, so that the two trapezoidal limit blocks in each plug are away from each other, so as to be inserted and limited with the card slot in the limit frame, so that the micro-current AI mask device can be mounted on the headband;

[0019] Step 2: Continue to control the driving component to drive the push rod to move downward. The lower end of the push rod gradually passes through the perforation and moves downward to the lower side of the insertion block, and cooperates with the linkage component. Then, the linkage component drives the clamping post and the clamping ring to cancel the insertion limit. At this time, the bin door has no limit and is convenient to open. Then, the microcurrent wire wound by the reel in the storage bin is pulled out;

[0020] Step 3: Arrange multiple microelectrode patches connected to the microcurrent wire on the facial acupoints or paste them on the face according to custom, and perform short-term electrotherapy. Then, remove the microelectrode patches, rewind the microcurrent wire on the outside of the reel, and take off the headband;

[0021] Step 4: Apply the facial mask printed with the electrode circuit on the face. Then, put on the headband again. Supply power by contacting the power connection terminal three at the rear of the microcurrent AI facial mask device with the electrode circuit on the facial mask, and perform the application of the facial mask in the intelligent state of microcurrent AI, or only apply an ordinary facial mask without a printed electrode circuit.

[0022] The beneficial effects of the present invention are as follows:

[0023] 1. The technical solution of the present invention drives the push rod to move downward through the driving component, so that the trapezoidal limit blocks on both sides in the insertion block can move away from each other and are inserted and cooperated with the card slots in the corresponding card frames for limiting. This facilitates the clamping of the microcurrent AI facial mask device on the headband. When in use, the headband can be directly worn on the head, greatly improving the stability of the existing microcurrent AI facial mask device during use, ensuring that it will not fall off. At the same time, it can also be disassembled to meet the needs of some direct use scenarios, with good flexibility in use;

[0024] 2. The technical solution of the present invention drives the push rod to continue to move downward through the driving component, which can act on the linkage component, so that the insertion of the clamping post and the clamping ring on the bin doors on both sides of the microcurrent AI facial mask device is separated, facilitating the opening of the bin doors. Then, the microcurrent wire wound on the reel in the storage bin is pulled out, and the microelectrode patches on the microcurrent wire are pasted on various facial acupoints or any position to achieve electrotherapy massage of the face. Then, an ordinary facial mask or a facial mask printed with an electrode circuit is applied. This enables the ordinary facial mask to also be used in cooperation with the microcurrent AI facial mask device. At the same time, it is also possible to directly apply the facial mask printed with an electrode circuit without prior electrotherapy massage, and supply power and detect it through the power connection terminal three at the rear of the microcurrent AI facial mask device, thereby realizing the intelligent application control of the microcurrent AI facial mask;

[0025] 3. Through the setting of the threaded cylinder in the technical solution of the present invention, when the micro-current AI facial mask device is used alone, the skateboard can be controlled by rotating the threaded cylinder to realize the insertion and separation of the clamping column and the clamping ring, providing multiple usage schemes and increasing the usage flexibility. At the same time, the opening of the limit sliding hole enables the third power connection terminal to slide therein. Then, when the skateboard is driven, the sliding frames on both sides move away from each other, and the third power connection terminal can be controlled to slide out from the limit sliding hole to the rear side of the micro-current AI facial mask device for convenient power-on use, and the third power connection terminal can be stored and protected when not in use. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 is a structural schematic diagram of the present invention;

[0027] Figure 2 is a structural schematic diagram of the micro-current AI facial mask device and the card seat of the present invention;

[0028] Figure 3 is a cross-sectional view of the side view structure of the micro-current AI facial mask device and the card seat of the present invention;

[0029] Figure 4 is Figure 3 the cross-sectional view at A-A in

[0030] Figure 5 is Figure 3 the cross-sectional view at B-B in

[0031] Figure 6 is Figure 4 the enlarged view at C in

[0032] Figure 7 is Figure 5 the enlarged view at D in

[0033] Figure 8 is a structural schematic diagram of the structure on the card seat of the present invention;

[0034] Figure 9 is a structural schematic diagram of the internal structure of the card seat of the present invention;

[0035] Figure 10 is a structural schematic diagram of the internal structure of the micro-current AI facial mask device of the present invention;

[0036] Figure 11 is a structural schematic diagram of the internal structure of the micro-current AI facial mask device and the storage groove of the present invention;

[0037] Figure 12 is a structural schematic diagram of the linkage assembly of the present invention;

[0038] Figure 13 is a structural schematic diagram of the rear view of the linkage assembly of the present invention;

[0039] Figure 14 This is a schematic structural diagram of the microcurrent wire and the microelectrode sheet of the present invention.

[0040] Explanation of reference numerals:

[0041] 1. Headband; 2. Microcurrent AI facial mask instrument; 3. Universal bending rod; 4. Card seat; 5. Insert block; 6. Perforation; 7. First limiting chute; 8. Trapezoidal limiting block; 9. First spring; 10. Limiting frame; 11. Card slot; 12. Push rod; 13. Motor; 14. Lead screw; 15. First power connection terminal; 16. Second power connection terminal; 17. Storage bin; 18. Bin door; 19. Electric motor; 20. Reel; 21. Microcurrent wire; 22. Microelectrode sheet; 23. Snap ring; 24. Slide rail; 25. Slide block; 26. Card post; 27. First guide rod; 28. Spring hinge seat; 29. Rotating rod; 30. Slide frame; 31. Inclined block; 32. Second guide rod; 33. Slide plate; 34. Second spring; 35. Threading hole; 36. Pulling block; 37. Threaded cylinder; 38. Screw; 39. Concave plate; 40. Third guide rod; 41. Limiting slide hole; 42. Tapered cylinder; 43. Third power connection terminal; 44. Third spring; 45. Resisting plate; 46. Bluetooth headset; 47. Microcurrent AI control module; 48. Display screen; 49. Control button; 50. Contact switch; 51. Fourth guide rod; 52. Fourth spring. Specific embodiments

[0042] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the attached Figure 1 to the attached Figure 14 The technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present invention.

[0043] Embodiment 1:

[0044] As shown in Figures 1 - 6 and 12, the present invention discloses a microcurrent AI intelligent facial mask instrument, including a headband 1 and a microcurrent AI facial mask instrument 2. An insert block 5 is connected to the headband 1, and a limiting frame 10 that cooperates with the insert block 5 for insertion is connected to the microcurrent AI facial mask instrument 2. A perforation 6 is formed through the insert block 5. Trapezoidal limiting blocks 8 that penetrate through the perforation 6 and extend to the outside are slidably connected to both sides of the insert block 5. Card slots 11 that cooperate with the trapezoidal limiting blocks 8 for insertion are formed on the inner wall of the limiting frame 10. A push rod 12 is slidably connected in the perforation 6. A driving assembly is provided on the insert block 5, and the driving assembly is used to push the push rod 12 to slide in the perforation 6 to push the trapezoidal limiting blocks 8 on both sides to slide away from each other and extend to the outside of the insert block 5. As can be seen from the figure, two insert blocks 5 are provided, so that a more stable effect can be obtained when they cooperate with two limiting frames 10 for insertion;

[0045] On both sides of the micro-current AI mask device 2, there are storage bins 17. On each storage bin 17, there is a bin door 18 installed. Inside the storage bin 17, a winding drum 20 is rotatably installed. A micro-current wire 21 is wound on the surface of the winding drum 20. A plurality of micro-electrode sheets 22 are connected to the micro-current wire 21. A snap ring 23 is connected to the bin door 18. A snap post 26 that is slidably connected to the micro-current AI mask device 2 and is inserted in cooperation with the snap ring 23 is provided. A linkage assembly is also provided inside the micro-current AI mask device 2. The linkage assembly is used to control the snap post 26 and the snap ring 23 to cancel the insertion limit when the push rod 12 moves downward. A power connection terminal three 43 is provided at the rear side of the micro-current AI mask device 2.

[0046] A battery pack is provided inside the headband 1.

[0047] On both sides of the insertion hole 6 of the insertion block 5, first limiting chutes 7 are symmetrically provided. The first limiting chutes 7 respectively penetrate through the surfaces of the insertion hole 6 and the insertion block 5. The trapezoidal end of the trapezoidal limiting block 8 extends into the insertion hole 6 in the first limiting chute 7 and is in sliding fit with the lower end of the push rod 12. The other end slides through the surface of the insertion block 5. A first spring 9 is connected between the mutually remote sides of the two trapezoidal limiting blocks 8 and the inner walls of their respective first limiting chutes 7. As Figure 6 shown, the inclined surface of the trapezoidal limiting block 8 can be in fit with the inclined surfaces on both sides of the lower end of the push rod 12. When the push rod 12 is driven to move downward, it can push the inclined surface end of the trapezoidal limiting block 8 extending into the insertion hole 6 to slide outward of the insertion block 5, and then insert into the card slot 11 of the limiting frame 10, so as to install the micro-current AI mask device 2 on the headband 1. In specific use, the micro-current AI mask device 2 can be stably worn on the head, avoiding the problem of poor stability caused only by magnetic attraction, and at the same time, it also has the ability to be used independently.

[0048] Moreover, through the setting of the micro-current wire 21 and the micro-electrode sheet 22, it is possible to first perform electrotherapy massage on the face for a mask without a printed electrode circuit, then naturally apply the mask, and after application, it is also possible to choose whether to perform electrotherapy massage again to improve the absorption of the nutritional components in the mask;

[0049] For a mask with a printed electrode circuit, it is not necessary to perform electrotherapy massage first, but directly supply power by contacting the electrode circuit of the mask through the power connection terminal three 43.

[0050] Embodiment 2:

[0051] As Figure 1 、 8 、9 shows, the present invention discloses a micro-current AI intelligent mask device and its intelligent control method. Compared with Embodiment 1, the structure of the driving assembly is disclosed in this embodiment.

[0052] The universal bending rod 3 is connected to the headband 1, and the clamping seat 4 is connected through the universal bending rod 3. The insertion block 5 is connected to the clamping seat 4. The universal bending rod 3 is made of metal, so that the angle of the clamping seat 4 and the micro-current AI facial mask device 2 installed thereon can be adjusted by bending the universal bending rod 3, so as to be worn on the head more comfortably.

[0053] The driving assembly includes a motor 13 and a lead screw 14. The motor 13 is installed on the inner wall of the clamping seat 4. The lead screw 14 is connected to the output end of the motor 13 and is threadedly sleeved with the push rod 12. The cross section of the through hole 6 and the push rod 12 is a square that fits and slides with each other. On the trapezoidal limit blocks 8 on the side where the two insertion blocks 5 are close to each other, power connection terminals one 15 are installed. On the inner wall of the card slot 11 on the side where the two limit frames 10 are close to each other, power connection terminals two 16 electrically connected to the power connection terminals one 15 are installed.

[0054] In this way, through the operation of the motor 13, the push rod 12 can be driven to slide up and down in the through hole 6 to cooperate with the trapezoidal limit block 8 to control the clamping or splitting of the clamping seat 4 and the micro-current AI facial mask device 2. The setting of the power connection terminal one 15 and the power connection terminal two 16 enables the power connection terminal one 15 and the power connection terminal two 16 to be in contact when the trapezoidal limit blocks 8 on the side where the two insertion blocks 5 are close to each other are inserted into the card slot 11 while being in contact with the inner wall of the card slot 11, realizing the conduction of the cable. When the headband 1 and the micro-current AI facial mask device 2 are used in combination, it is convenient to directly supply power to the micro-current AI facial mask device 2 through the battery pack arranged in the headband 1.

[0055] Bluetooth earphones 46 are installed on both sides of the headband 1. A micro-current AI control module 47 is installed in the micro-current AI facial mask device 2. A display screen 48 and control keys 49 are installed on the micro-current AI facial mask device 2. An electric motor 19 is installed on the inner wall of the storage bin 17. The winding drum 20 is connected to the output end of the electric motor 19. A wire passing hole 35 is opened on the bin door 18 and is connected with a pulling block 36. The lower end of the clamping seat 4 is also connected with a contact switch 50 that cooperates with and abuts against the upper end of the micro-current AI facial mask device 2. The contact switch 50 is electrically connected to the motor 13.

[0056] The setting of the Bluetooth headset 46 allows the user to listen to music through the headband 1 worn during the mask application process, thereby increasing the comfort of use. The setting of the display screen 48 and the control key 49 facilitates control. The setting of the electric motor 19 facilitates the electrically controlled reeling and unreeling of the microcurrent wire 21 and the microelectrode sheet 22 wound on the reel 20. At the same time, there is a certain damping effect between the compartment door 18 and the storage compartment 17, so that when the clamping column 26 and the clamping ring 23 are unplugged, the compartment door 18 can be opened by gently flicking the set pull block 36. At the same time, the setting of the threading hole 35 facilitates the microcurrent wire 21 and the microelectrode sheet 22 to pass through it after unwinding and pulling out, so as to close the compartment door 18 and avoid the influence of the expansion of the compartment door 18. The setting of the resistance switch 50 can make the upper end of the microcurrent AI facial mask instrument 2 conflict with the resistance switch 50 when the microcurrent AI facial mask instrument 2 is clamped on the holder 4, and the automatic control motor 13 starts to run.

[0057] Embodiment three:

[0058] like Figures 1 - 14 As shown, the present invention discloses a micro-current AI intelligent facial mask instrument and an intelligent control method thereof. Compared with the second embodiment, this embodiment discloses the structure of a linkage component.

[0059] The linkage assembly includes a sliding frame 30, an inclined block 31, and a slide plate 33. The slide plate 33 slides up and down in the microcurrent AI mask instrument 2 and cooperates with the lower end of the push rod 12. The sliding frame 30 is symmetrically slidably arranged on both sides of the microcurrent AI mask instrument 2. The inclined block 31 is symmetrically connected to the sliding frames 30 on both sides close to one side, and slides and fits with the side of the slide plate 33. A rotating rod 29 is rotatably connected between each sliding frame 30 and the clamping column 26 on each side. In this way, when the trapezoidal limit block 8 is inserted into the clamping groove 11, if the motor 13 continues to control the push rod 12 to move downward, the push rod 12 will gradually push the slide plate 33 downward, and push the sliding frames 30 on both sides away from each other through sliding fit and conflict with the inclined block 31, thereby driving the rotating rod 29 to rotate, pushing the upper and lower clamping columns 26 away from each other, canceling the insertion with the clamping ring 23, and facilitating the opening and closing of the compartment door 18 to use the microcurrent line 21 and the microelectrode sheet 22.

[0060] The inner wall of the micro-current AI facial mask instrument 2 is connected to a slide rail 24, a slider 25 is connected to the slide rail 24, a clamping column 26 is connected to the slider 25, a guide rod 27 and a guide rod 4 51 are connected to the inner wall of the micro-current AI facial mask instrument 2, a slide frame 30 is slidably sleeved on the outer side of the guide rod 27 and the guide rod 4 51, and a spring 4 52 sleeved on the outer side of the guide rod 4 51 is also connected between the slide frame 30 and the inner wall of the micro-current AI facial mask instrument 2, the slider 25 and the slide frame 30 are both connected to a spring hinge seat 28, and the two ends of the rotating rod 29 are rotatably connected to the slider 25 and the slide frame 30 respectively through the spring hinge seat 28, as shown in FIG. Figure 12As shown, the setting of the slide rail 24 and the slider 25 can ensure the stable sliding of the clamping post 26 to stably control its insertion and separation from the snap ring 23. The setting of the first guide rod 27 and the fourth guide rod 51 can stably slide the sliding frame 30. At the same time, the setting of the fourth spring 52 ensures that without external force, the two sliding frames 30 can return to the initial state of approaching each other under the action of the fourth spring 52;

[0061] The inner wall of the microcurrent AI facial mask device 2 is connected with a second guide rod 32. The sliding plate 33 is slidably sleeved on the outside of the second guide rod 32. And a second spring 34 sleeved on the outside of the second guide rod 32 is also connected between the sliding plate 33 and the inner wall of the microcurrent AI facial mask device 2. The second guide rod 32 is located between the inclined block 31 and the push rod 12. The setting of the second guide rod 32 can stabilize the sliding of the sliding plate 33. And the second spring 34 can also provide an elastic force for the sliding plate 33 to return to the initial state without external force, which is convenient for driving the clamping post 26 in a linkage manner to ensure that the door 18 can be opened and closed flexibly or closed stably.

[0062] A limiting slide hole 41 is opened at the rear side of the microcurrent AI facial mask device 2. A tapered cylinder 42 is slidably sleeved in the limiting slide hole 41. The third electrical connection terminal 43 is connected to the side of the tapered cylinder 42 away from the sliding frame 30 and penetrates and slides inside and outside the limiting slide hole 41. A third spring 44 is connected between the tapered cylinder 42 and the inner wall of the limiting slide hole 41. A pressing plate 45 is connected to the sliding frame 30. Both the sliding frame 30 and the pressing plate 45 are in sliding contact with the extended end of the tapered cylinder 42 inside the microcurrent AI facial mask device 2. As Figure 7 and 12 shown, when the two sliding frames 30 are pushed away from each other, the rear sides of the two sliding frames 30 and the pressing plate 45 will contact the inclined surface of the extended end of the tapered cylinder 42 inside the microcurrent AI facial mask device 2, and push the tapered cylinder 42 to drive the third electrical connection terminal 43 to move towards the outer rear side of the microcurrent AI facial mask device 2 to facilitate contact and power-on control with the facial mask printed with the electrode circuit. When not in use, since the sliding frame 30 is reset, the contact with the tapered cylinder 42 will be cancelled. Under the action of the third spring 44, the third electrical connection terminal 43 will be received in the limiting slide hole 41 for protection, avoiding the problem that the third electrical connection terminal 43 is easily damaged due to long-term exposure.

[0063] Embodiment 4:

[0064] As Figures 1 - 14 shown, the present invention discloses a microcurrent AI intelligent facial mask device and its intelligent control method. Compared with Embodiment 3, this embodiment discloses another structure for pushing and controlling the sliding plate 33.

[0065] The micro-current AI facial mask instrument 2 is rotatably mounted with a threaded barrel 37, which passes through the micro-current AI facial mask instrument 2 and extends therein. A screw 38 is threadedly sleeved in the threaded barrel 37, and the lower end of the screw 38 extends below the threaded barrel 37, and is connected to a concave plate 39 that cooperates with the slide plate 33 at the extended end. The inner wall of the micro-current AI facial mask instrument 2 is connected to a guide rod three 40, and the two ends of the concave plate 39 are slidably sleeved on the outside of the guide rod three 40.

[0066] like Figure 10 and 11 As shown, through the threaded sleeve of the threaded barrel 37 and the screw rod 38, and the sliding sleeve of the concave plate 39 and the guide rod 40, when the microcurrent AI mask device 2 is used alone, it can also drive the screw rod 38 and the concave plate 39 to move downward by rotating the threaded barrel 37, and resist the downward movement of the slide plate 33, thereby realizing the insertion and separation control of the clamping column 26 and the clamping ring 23, increasing the application scenarios, and can be used in multiple states and multiple scenarios.

[0067] Embodiment five:

[0068] like Figures 1 - 14 As shown, the present invention discloses an intelligent control method for a micro-current AI intelligent facial mask instrument, comprising the following steps:

[0069] Step 1: Before using the mask, first insert the insert block 5 into the limit frame 10, then control the driving assembly to operate, drive the push rod 12 to move downward, so that the two trapezoidal limit blocks 8 in each insert block 5 are away from each other, so as to be inserted and limited with the card slot 11 in the limit frame 10, so as to realize the card installation of the micro-current AI mask instrument 2 on the head ring 1;

[0070] Step 2: Continue to control the driving assembly to drive the push rod 12 to move downward, and the lower end of the push rod 12 gradually passes through the through hole 6 and moves downward to the bottom of the plug block 5, and cooperates with the linkage assembly, and the linkage assembly drives the clamping column 26 and the clamping ring 23 to cancel the insertion limit. At this time, the bin door 18 has no limit and is easy to open, and then the micro-current wire 21 wound by the reel 20 in the storage bin 17 is pulled out;

[0071] Step 3: Apply multiple micro-electrode sheets 22 connected to the micro-current wire 21 to the facial acupuncture points or to the face according to the customized method for short-term electrotherapy, then remove the micro-electrode sheets 22, and rewind the micro-current wire 21 on the outside of the reel 20, and remove the headband 1;

[0072] Step 4: Apply a regular mask without printed electrode circuits.

[0073] Embodiment six:

[0074] like Figures 1 - 14 As shown, the present invention discloses an intelligent control method for a micro-current AI intelligent facial mask instrument, comprising the following steps:

[0075] Step 1: Before using the facial mask, first insert the insertion block 5 into cooperation with the limit frame 10, and then control the driving component to operate, driving the push rod 12 to move downward, so that the two trapezoidal limit blocks 8 in each insertion block 5 move away from each other to be inserted and limited with the card slots 11 in the limit frame 10, realizing the clamping of the micro-current AI facial mask instrument 2 on the headband 1;

[0076] Step 2: Apply the facial mask printed with the electrode circuit on the face, and then put on the headband 1. Supply power through the power connection terminal three 43 at the rear of the micro-current AI facial mask instrument 2 in contact with the electrode circuit on the facial mask, and perform facial mask application in the micro-current AI intelligent state, or only apply an ordinary facial mask without a printed electrode circuit.

[0077] According to the disclosure and teachings of the above specification, those skilled in the art to which the present invention pertains can also make changes and modifications to the above embodiments. Therefore, the present invention is not limited to the specific embodiments disclosed and described above, and some modifications and changes to the present invention should also fall within the protection scope of the claims of the present invention. In addition, although some specific terms are used in this specification, these terms are only for convenience of description and do not constitute any limitation to the present invention.

Claims

1. A micro-current AI intelligent facial mask instrument, comprising a head-mounted ring (1) and a micro-current AI facial mask instrument (2), wherein the head-mounted ring (1) is connected to an insert block (5), and the micro-current AI facial mask instrument (2) is connected to a limit frame (10) that is inserted in cooperation with the insert block (5), characterized in that: The insert block (5) is provided with a through hole (6), and the insert block (5) is slidably connected with trapezoidal limit blocks (8) passing through the through hole (6) and outside thereof on both sides, and the inner wall of the limit frame (10) is provided with a slot (11) for being inserted in cooperation with the trapezoidal limit block (8), and a push rod (12) is slidably connected in the through hole (6). The insert block (5) is provided with a driving component, and the driving component is used to push the push rod (12) to slide in the through hole (6) so as to contact the trapezoidal limit blocks (8) on both sides and slide away from each other to the two outsides of the insert block (5); The micro-current AI facial mask device (2) is provided with storage bins (17) on both sides, and the storage bins (17) are both provided with bin doors (18). A reel (20) is rotatably provided in the storage bin (17), and a micro-current wire (21) is wound on the surface of the reel (20), and a plurality of micro-electrode sheets (22) are connected to the micro-current wire (21). A clamping ring (23) is connected to the bin door (18). A clamping column (26) which is inserted in cooperation with the clamping ring (23) is slidably connected in the micro-current AI facial mask device (2). A linkage component is also provided in the micro-current AI facial mask device (2), and the linkage component is used to control the clamping column (26) and the clamping ring (23) to cancel the insertion limit when the push rod (12) moves downward. A power terminal three (43) is provided on the rear side of the micro-current AI facial mask device (2).

2. A micro-current AI intelligent facial mask instrument according to claim 1, characterized in that: The headband ring (1) is connected to a universal bending rod (3), and is connected to a clamping seat (4) via the universal bending rod (3); the inserting block (5) is connected to the clamping seat (4).

3. A micro-current AI intelligent facial mask instrument according to claim 2, characterized in that: The driving assembly comprises a motor (13) and a screw rod (14); the motor (13) is mounted on the inner wall of the card seat (4); the screw rod (14) is connected to the output end of the motor (13) and is threadedly sleeved with the push rod (12); the cross-sections of the through hole (6) and the push rod (12) are square and fit in a sliding manner with each other; the trapezoidal limit blocks (8) on the sides of the plug blocks (5) close to each other are both installed with power connection terminals (15); the inner walls of the card slots (11) on the sides of the limit frames (10) close to each other are installed with power connection terminals (16) electrically connected to the power connection terminals (15).

4. The micro-current AI intelligent facial mask instrument according to claim 1, characterized in that: The insert block (5) is symmetrically provided with a limiting groove (7) on both sides of the through hole (6), and the limiting groove (7) passes through the surface of the through hole (6) and the insert block (5) respectively. The trapezoidal end limiting groove (7) of the trapezoidal limiting block (8) extends in the through hole (6) and slides in contact with the lower end of the push rod (12), and the other end slides through the surface of the insert block (5). The trapezoidal limiting blocks (8) on both sides are away from each other and are connected with a spring (9) between the inner wall of the respective limiting groove (7).

5. The micro-current AI intelligent facial mask instrument according to claim 1, characterized in that: The linkage assembly comprises a sliding frame (30), an inclined block (31), and a sliding plate (33). The sliding plate (33) slides up and down in the micro-current AI facial mask device (2) and cooperates with the lower end of the push rod (12). The sliding frame (30) is symmetrically arranged for sliding on both sides of the micro-current AI facial mask device (2). The inclined block (31) is symmetrically connected to the sliding frames (30) on both sides so as to be close to one side and to slide and fit with the side of the sliding plate (33). A rotating rod (29) is rotatably connected between each sliding frame (30) and the clamping column (26) on one side thereof.

6. The micro-current AI intelligent facial mask instrument according to claim 5, characterized in that: The inner wall of the micro-current AI facial mask device (2) is connected to a slide rail (24), a slider (25) is connected to the slide rail (24), the clamping column (26) is connected to the slider (25), the inner wall of the micro-current AI facial mask device (2) is connected to a guide rod 1 (27) and a guide rod 4 (51), the slide frame (30) is slidably sleeved on the outer sides of the guide rod 1 (27) and the guide rod 4 (51), and a spring 4 (52) sleeved on the outer side of the guide rod 4 (51) is also connected between the slide frame (30) and the inner wall of the micro-current AI facial mask device (2), the slider (25) and the slide frame (30) are both connected to a spring hinge seat (28), and the two ends of the rotating rod (29) are rotatably connected to the slider (25) and the slide frame (30) through the spring hinge seat (28); The inner wall of the micro-current AI facial mask device (2) is connected to a second guide rod (32), the slide plate (33) is slidably mounted on the outer side of the second guide rod (32), and a second spring (34) mounted on the outer side of the second guide rod (32) is also connected between the slide plate (33) and the inner wall of the micro-current AI facial mask device (2), and the second guide rod (32) is located between the inclined block (31) and the push rod (12).

7. The micro-current AI intelligent facial mask instrument according to claim 5, characterized in that: A limit sliding hole (41) is provided at the rear side of the micro-current AI facial mask instrument (2), a conical cylinder (42) is slidably sleeved in the limit sliding hole (41), the power connection terminal (43) is connected to the side of the conical cylinder (42) away from the sliding frame (30), and slides through the inside and outside of the limit sliding hole (41), a spring (44) is connected between the conical cylinder (42) and the inner wall of the limit sliding hole (41), a resisting plate (45) is connected to the sliding frame (30), and the sliding frame (30) and the resisting plate (45) are both in sliding contact with the extended end of the conical cylinder (42) in the micro-current AI facial mask instrument (2).

8. The micro-current AI intelligent facial mask instrument according to claim 1, characterized in that: The micro-current AI facial mask device (2) is rotatably sleeved with a threaded barrel (37), the threaded barrel (37) passes through the micro-current AI facial mask device (2) and extends inside the threaded barrel (37), the threaded sleeve inside the threaded barrel (37) is provided with a screw rod (38), the lower end of the screw rod (38) extends below the threaded barrel (37), and a concave plate (39) that cooperates with the slide plate (33) is connected to the extended end, the inner wall of the micro-current AI facial mask device (2) is connected with a guide rod three (40), and the two ends of the concave plate (39) are slidably sleeved on the outer side of the guide rod three (40).

9. The micro-current AI intelligent facial mask instrument according to claim 3, characterized in that: Bluetooth earphones (46) are installed on both sides of the headband (1); a microcurrent AI control module (47) is installed in the microcurrent AI mask instrument (2); a display screen (48) and a control key (49) are installed on the microcurrent AI mask instrument (2); an electric motor (19) is installed on the inner wall of the storage bin (17); the reel (20) is connected to the output end of the electric motor (19); a threading hole (35) is opened on the bin door (18) and is connected to a pull block (36); the lower end of the holder (4) is also connected to a resistance switch (50) that cooperates with the upper end of the microcurrent AI mask instrument (2); and the resistance switch (50) is electrically connected to the motor (13).

10. An intelligent control method for a micro-current AI intelligent facial mask instrument according to any one of claims 1 to 9, characterized in that: The following steps are involved: Step 1: Before using the mask, first insert the insert block (5) and the limit frame (10) together, then control the driving assembly to operate, drive the push rod (12) to move downward, so that the two trapezoidal limit blocks (8) in each insert block (5) are separated from each other, so as to be inserted and limited with the card slot (11) in the limit frame (10), so as to realize the card installation of the micro-current AI mask device (2) on the head ring (1); Step 2: Continue to control the driving assembly to drive the push rod (12) to move downward, the lower end of the push rod (12) gradually passes through the through hole (6) and moves downward to the bottom of the plug block (5), and cooperates with the linkage assembly, and the linkage assembly drives the clamping column (26) and the clamping ring (23) to cancel the insertion limit. At this time, the bin door (18) has no limit and is easy to open, and then the micro-current wire (21) wound by the reel (20) in the storage bin (17) is pulled out; Step 3: Apply a plurality of micro-electrode sheets (22) connected to the micro-current wire (21) to the facial acupuncture points or to the face as customized, and then remove the micro-electrode sheets (22), and rewind the micro-current wire (21) on the outside of the reel (20), and then remove the headband (1); Step 4: Apply the mask printed with the electrode circuit on the face, then put on the headband (1) again, and power the mask through the power terminal 3 (43) on the back side of the micro-current AI mask instrument (2) in contact with the electrode circuit on the mask, and apply the mask in the micro-current AI intelligent state, or just apply a normal mask without printed electrode circuits.

Citation Information

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