Massage instrument
By designing multiple cavities and setting multiple phototherapy components in the massager, the problem of small phototherapy area in existing massagers is solved, achieving a wider range of phototherapy effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GODOX PHOTO EQUIPMENT CO LTD
- Filing Date
- 2025-07-25
- Publication Date
- 2026-07-24
Smart Images

Figure CN224540810U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of massage equipment, specifically to a massage device. Background Technology
[0002] A massager is a product that can relieve muscle pain and improve blood circulation. Through vibration and massage, it promotes muscle relaxation, relieves muscle tension, soothes pain caused by stress, stimulates acupoints, enhances the vitality of meridians, and improves blood circulation.
[0003] In related technologies, massage devices generally have massage and phototherapy functions, but due to the limited size of massage devices, the effective phototherapy area of the massage device is small. Utility Model Content
[0004] This application provides a massage device to solve the technical problem that the limited size of existing massage devices results in a small effective area for phototherapy.
[0005] To address the aforementioned technical problems, a massage device is provided, comprising: a main body having a first accommodating cavity, a second accommodating cavity, and a third accommodating cavity, wherein the second accommodating cavity is disposed between the first accommodating cavity and the third accommodating cavity, and wherein the opening area of the second accommodating cavity is larger than the opening area of the first accommodating cavity and the opening area of the third accommodating cavity; a massage component disposed within the first accommodating cavity and the third accommodating cavity; a first phototherapy component disposed within the second accommodating cavity; and a second phototherapy component disposed within the first accommodating cavity and the third accommodating cavity and surrounding the massage component.
[0006] In one embodiment, the first phototherapy component is used to emit at least one light beam with a wavelength different from that emitted by the second phototherapy component.
[0007] In one embodiment, the wavelength of the light beam emitted by the first phototherapy component includes at least one of 630nm-660nm, 405nm-420nm, 520nm-550nm, 570nm-590nm, and 700nm-1200nm; the wavelength of the light beam emitted by the second phototherapy component includes at least one of 630nm-660nm, 405nm-420nm, 520nm-550nm, 570nm-590nm, and 700nm-1200nm.
[0008] In one embodiment, the first phototherapy component includes a monochromatic light-emitting unit or a multicolor composite light-emitting unit.
[0009] In one embodiment, the main body has a plurality of light-transmitting holes at a position corresponding to the first phototherapy component, through which the light beam emitted by the first phototherapy component exits; the main body has a light-transmitting ring at a position corresponding to the second phototherapy component, through which the light beam emitted by the second phototherapy component exits; or the main body has an opening at a position corresponding to the first phototherapy component, and the massager further includes a light-transmitting plate covering the opening, through which the light beam emitted by the first phototherapy component exits.
[0010] In one embodiment, the second phototherapy component includes a first flexible circuit board and LED beads. The first flexible circuit board includes an annular portion and a first flexible connector. The annular portion surrounds the massage component and is electrically connected to the massage component. One end of the first flexible connector is used to connect to the annular portion, and the other end of the first flexible connector is used to connect to the control motherboard. The LED beads are mounted on the annular portion.
[0011] In one embodiment, the massager further includes a composite functional component disposed between the main body and the massage component. The composite functional component includes a second flexible circuit board, a heating unit, a radio frequency unit, and a microcurrent unit. The heating unit, radio frequency unit, and microcurrent unit are respectively disposed on the second flexible circuit board. The heating unit is disposed around the radio frequency unit and the microcurrent unit, and the radio frequency unit and the microcurrent unit are disposed at intervals from each other.
[0012] In one embodiment, the first flexible circuit board and the second flexible circuit board are spaced apart, and the composite functional component further includes a second flexible connector, one end of which is used to connect to the second flexible circuit board, and the other end of which is used to connect to the control motherboard; or the first flexible circuit board and the second flexible circuit board are integrally formed.
[0013] In one embodiment, the massager further includes a skin tone detection element and a light shield, the skin tone detection element and the light shield being disposed in the first accommodating cavity, the second accommodating cavity or the third accommodating cavity, the light shield surrounding the skin tone detection element to block the light beam emitted by the first phototherapy component or the second phototherapy component from entering the skin tone detection element;
[0014] And / or, the massager further includes a skin condition detection device disposed in the first accommodating cavity, the second accommodating cavity or the third accommodating cavity, the skin condition detection device being used to detect skin moisture content and / or skin texture;
[0015] And / or, the massager further includes a wear detection element disposed in the first accommodating cavity, the second accommodating cavity, or the third accommodating cavity, the wear detection element being used to detect the wear status of the massager.
[0016] In one embodiment, the massager further includes a power supply component and a control component electrically connected to the power supply component. The power supply component and the control component are respectively installed on the main body, and the control component is electrically connected to the massage component, the first phototherapy component, and the second phototherapy component.
[0017] The beneficial effects of this application are: the massager provided by this application makes full use of the space on the massager by setting a first phototherapy component in the second accommodating cavity and setting a second phototherapy component in the first accommodating cavity and the third accommodating cavity, thereby increasing the phototherapy area of the massager and improving the phototherapy effect of the massager. Attached Figure Description
[0018] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0019] Figure 1 This is a schematic diagram of the exploded structure of the massager according to one embodiment of this application;
[0020] Figure 2 This is a cross-sectional view of the massage device according to one embodiment of this application;
[0021] Figure 3 for Figure 2 Enlarged view of point A in the middle;
[0022] Figure 4 This is a schematic diagram of the exploded structure of the massager according to another embodiment of this application;
[0023] Figure 5A This is a cross-sectional structural diagram of a light-focusing plate installed inside a massager according to one embodiment of this application;
[0024] Figure 5B This is a schematic diagram of the upper surface of a light-concentrating plate disposed inside a massager according to one embodiment of this application;
[0025] Figure 6 This is a three-dimensional structural diagram of a composite functional component in one embodiment of this application;
[0026] Figure 7 This is a three-dimensional structural diagram of the second phototherapy component in one embodiment of this application. Detailed Implementation
[0027] The present application will now be described in further detail with reference to the accompanying drawings and embodiments. It should be noted that the following embodiments are for illustrative purposes only and do not limit the scope of the application. Similarly, the following embodiments are only some, not all, embodiments of the present application, and all other embodiments obtained by those skilled in the art without inventive effort are within the scope of protection of this application.
[0028] The terms "first," "second," and "third" in this application are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationships and movements between components in a specific orientation (as shown in the figures). If the specific orientation changes, the directional indications also change accordingly. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. A process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.
[0029] In this document, the term "implementation" means that a specific feature, structure, or characteristic described in connection with an implementation may be included in at least one implementation of this application. The appearance of this phrase in various places in the specification does not necessarily refer to the same implementation, nor is it a separate or alternative implementation mutually exclusive with other implementations. It will be explicitly and implicitly understood by those skilled in the art that the implementations described herein can be combined with other implementations.
[0030] This application provides a massage device 10, which can be applied to the waist and abdomen of the human body, such as... Figures 1 to 4As shown, the massager 10 includes a main body 100, a massage component 200, a first phototherapy component 300, and a second phototherapy component 400. The main body 100 forms a first receiving cavity 160, a second receiving cavity 170, and a third receiving cavity 180. The second receiving cavity 170 is disposed between the first receiving cavity 160 and the third receiving cavity 180. The opening area of the second receiving cavity 170 is larger than the opening areas of the first receiving cavity 160 and the third receiving cavity 180, respectively. The massage component 200 is disposed in the first receiving cavity 160 and the third receiving cavity 180. The first phototherapy component 300 is disposed in the second receiving cavity 170. The second phototherapy component 400 is disposed in the first receiving cavity 160 and the third receiving cavity 180 and surrounds the massage component 200. Compared with related technologies, the massager 10 provided in this application provides a first phototherapy component 300 in the second accommodating cavity 170 and a second phototherapy component 400 in the first accommodating cavity 160 and the third accommodating cavity 180, and the opening area of the second accommodating cavity 170 is larger than the opening areas of the first accommodating cavity 160 and the third accommodating cavity 180, so as to make full use of the space on the massager 10, thereby increasing the phototherapy area of the massager 10 and improving the phototherapy effect of the massager 10.
[0031] For example, such as Figure 1 and Figure 2 As shown, the main body 100 includes a back skin layer 110 and a proximal skin layer 120. The edge areas of the back skin layer 110 and the proximal skin layer 120 can be fixed to each other by means of heat pressing, bonding, sewing, or snap-fitting. When the back skin layer 110 and the proximal skin layer 120 are detachably connected, the proximal skin layer 120 can be removed from the back skin layer 110 to facilitate cleaning of the proximal skin layer 120.
[0032] Optionally, the back layer 110 and the proximal layer 120 can be made of soft rubber or leather, so that the proximal layer 120 and the back layer 110 have a certain structural strength while also having deformability, so as to ensure that when using the massager 10, the proximal layer 120 and the back layer 110 can bend and deform according to the user's body shape and posture, thereby ensuring the fit between the proximal layer 120 and the user's body and improving the massage quality and phototherapy quality of the massager 10.
[0033] Furthermore, a first receiving groove 111, a second receiving groove 112, and a third receiving groove 113 are formed on the side of the back skin layer 110 facing the proximal skin layer 120, with the second receiving groove 112 disposed between the first receiving groove 111 and the third receiving groove 113. The proximal skin layer 120 includes a first massage portion 121, a phototherapy portion 122, and a second massage portion 123. The first massage portion 121 covers the first receiving groove 111, thereby forming a first receiving cavity 160 between the back skin layer 110 and the proximal skin layer 120; the phototherapy portion 122 covers the second receiving groove 112, thereby forming a second receiving cavity 170 between the back skin layer 110 and the proximal skin layer 120; and the second massage portion 123 covers the third receiving groove 113, thereby forming a third receiving cavity 180 between the back skin layer 110 and the proximal skin layer 120.
[0034] The first massage section 121 and the second massage section 123 are respectively formed with massage heads 125 protruding in the direction away from the back skin layer 110. The massage heads 125 are used to massage the human body under the drive of the massage component 200, thereby promoting muscle relaxation in the massage area, relieving muscle tension, relieving pain caused by pressure, stimulating acupoints, enhancing the vitality of meridians, and improving blood circulation.
[0035] Furthermore, the massage head 125 includes a pleated portion 1251 and a metal sheet 1252. The pleated portion 1251 surrounds and is connected to the outer edge of the metal sheet 1252, thereby allowing the metal sheet 1252 to move away from or towards the human body to massage the body. In other embodiments, the pleated portion 1251 may be replaced by an elastic element. It is understood that the number of massage heads 125 can be set according to actual needs.
[0036] Furthermore, waist belt mounting holes 150 are formed at both ends of the back skin layer 110 and the near skin layer 120, respectively. The waist belt mounting holes 150 are used to install a waist belt, so that the massager 10 can be tied to the waist and abdomen during use.
[0037] Optionally, the massage component 200 includes a motor 210 and an eccentric member 220. Multiple motors 210 and eccentric members 220 are present. The motors 210 are disposed within the first receiving groove 111 and the third receiving groove 113 and are installed on the back skin layer 110 or the proximal skin layer 120. The eccentric members 220 are mounted on the output shaft of the motors 210 and abut against the metal plate 1252. During rotation, the motors 210 can drive the metal plate 1252 to massage the human body via the eccentric members 220.
[0038] Optional, such as Figure 1As shown, the first phototherapy component 300 includes a lamp plate 310 and a plurality of light-emitting units 320 electrically connected to the lamp plate 310. Both the lamp plate 310 and the light-emitting units 320 are disposed within the second receiving groove 112. The phototherapy section 122 has a plurality of light-transmitting holes 1221 formed at positions corresponding to the light-emitting units 320. The light beam emitted by the light-emitting units 320 exits through the light-transmitting holes 1221 onto the human skin for phototherapy. The shape of the light-transmitting holes 1221 can be circular, square, petal-shaped, rhomboid, pentagonal, or star-shaped. The sizes of the plurality of light-transmitting holes 1221 can be the same or different. For example, the diameter of the circular light-transmitting hole 1221 in the central region of the skin layer 120 may be larger than that in the edge region, or vice versa. The distribution density of the light-transmitting holes 1221 can also be set to be the same or different. In some embodiments, a light guide (not shown) can be embedded within the plurality of light-transmitting holes 1221 for adjusting the light emission direction, light field distribution, intensity, etc. The light guide can be flush with or protrude from the surface of the skin layer 120. In some embodiments, each light-emitting unit 320 may also be covered with a condensing lens (not shown). The condensing lens can be fixed to the light-emitting unit during the packaging stage, or it can be installed on the light panel 310 and then covered after the light-emitting unit 320 is installed on the lamp panel 310. The condensing lens and the light guide can be made of materials such as transparent silicone or PMMA. In some embodiments, multiple reflectors (not shown) can also be fixed on the lamp panel 310. The reflectors correspond one-to-one with the light-emitting units and are arranged around the light-emitting units 320 to improve the light emission efficiency of the light-emitting units 320.
[0039] It should be noted that in other embodiments, such as Figure 4 As shown, the phototherapy unit 122 forms an opening 1225 corresponding to the position of the lamp panel 310. The massager 10 also includes a light-transmitting plate 1226, which covers the opening 1225. The light beam emitted by the light-emitting unit 320 passes through the light-transmitting plate 1226 and is projected onto the human skin for phototherapy. The light-transmitting plate 1226 can be a flat, fully transparent piece, or it can be a piece with a light-shielding coating in a localized area. In some embodiments, the light-transmitting plate 1226 also has a light-concentrating ring structure, or a light-concentrating plate can be further disposed between the light-transmitting plate 1226 and the lamp panel 310. Please refer to... Figure 5A and Figure 5BThis is a schematic diagram of an exemplary light-concentrating plate 330. In this example, the light-transmitting plate 1226 is a fully transparent light-transmitting component. The upper surface 3300 of the light-concentrating plate 330 (facing the light-transmitting plate 1226) has a light-shielding area 3301 and a light-transmitting area 3302, wherein the light-shielding area 3301 can be formed by coating a light-shielding material. As shown in the figure, multiple light-transmitting areas 3302 are petal-shaped and are spaced apart by the light-shielding areas. Multiple protruding light-concentrating rings 3303 are provided on the side opposite to the upper surface 3300. The light-concentrating rings 3303 are correspondingly arranged with the light-transmitting areas 3302, and the tail end of the light-concentrating rings 3303 is provided with an opening 3304 for accommodating the light-emitting unit 320. Since the light-concentrating rings 3303 are arranged corresponding to the light-emitting unit 320, the light emitted by the light-emitting unit 320 can be concentrated and emitted from the light-transmitting area 3302.
[0040] Furthermore, the wavelength of the light emitted by the light-emitting unit 320 includes at least one of 630nm-660nm, 405nm-420nm, 520nm-550nm, 570nm-590nm and 700nm-1200nm, so that the massager 10 can have different phototherapy functions.
[0041] The light-emitting unit 320 emits a beam with a wavelength of 633nm or 660nm, in which case the beam is red light. This light can penetrate to the dermis and primarily acts on cytochrome c oxidase in the mitochondria, increasing ATP production and activating intracellular signaling pathways. The main effects of this beam include: stimulating fibroblast activity, promoting collagen and elastin synthesis, improving skin elasticity, firming the skin, and smoothing fine lines; promoting cell metabolism and regeneration, accelerating wound healing, reducing inflammation, and improving the appearance of scars (especially early red scars); promoting blood circulation, increasing cellular energy (ATP), improving overall skin texture, and making the skin tone more even and radiant; and reducing inflammatory responses, providing some auxiliary benefits for inflammatory skin problems such as rosacea.
[0042] The light-emitting unit 320 can also emit a beam with a wavelength of 415nm, in which case the beam is blue light. This light primarily targets the human epidermis, and its main effects include: absorption by endogenous porphyrins produced by Propionibacterium acnes, triggering a photochemical reaction that generates reactive oxygen species such as singlet oxygen, effectively killing Propionibacterium acnes, inhibiting inflammation, and treating mild to moderate inflammatory acne (red and swollen pimples). It is important to note that prolonged exposure to high-energy blue light may pose a potential risk of retinal damage and pigmentation (especially in people with darker skin tones); therefore, attention should be paid to the duration of use and protective measures.
[0043] The light-emitting unit 320 can also emit a light beam with a wavelength of 535nm, in which case the beam is green light. This light primarily acts between the epidermis and superficial dermis, and its main effects include: absorption by melanin, potentially affecting melanocyte activity or promoting melanin metabolism, thus helping to lighten pigmentation such as age spots and sunspots, brightening skin tone, and making the skin more even; it has a certain calming effect, helping to soothe sensitive skin and reduce mild redness and flushing; and it has a certain effect on capillaries, improving microcirculation. Green light is often used in combination with other light sources (such as red and yellow light) as part of a comprehensive phototherapy program to target uneven skin tone and pigmentation problems.
[0044] The light-emitting unit 320 can also emit a beam with a wavelength of 580nm or 590nm. In this case, the beam is yellow light, which mainly acts on the superficial dermis and blood vessels to target hemoglobin and the lymphatic system, producing a mild thermal effect and photobiological modulation. The main functions of this beam are: it is well absorbed by hemoglobin, helping to reduce inflammation, redness, and vasodilation. It is particularly effective for rosacea, facial flushing, telangiectasia (redness), sensitive skin, and post-sun exposure repair; it stimulates microcirculation, helps eliminate edema, and promotes the excretion of metabolic waste; it promotes cell repair and tissue regeneration; and by improving microcirculation and reducing inflammation, it makes the skin look healthier and more radiant.
[0045] The wavelength of the light emitted by the light-emitting unit 320 can also be 830nm, 850nm, or 940nm. In these cases, the light beam is infrared light, which mainly acts on subcutaneous tissue and even the muscle layer to produce a photothermal effect (generating gentle heat) and photobiological regulatory effects (acting on cytochrome C oxidase, etc.). The main effects of this light beam are: strong penetrating power, able to deeply act on tissues, significantly reducing deep inflammation and pain (such as muscle soreness and joint discomfort), and accelerating deep tissue repair; by stimulating deep fibroblasts, promoting the synthesis of collagen and elastin, improving skin firmness and contour; generating a warming effect, dilating blood vessels, significantly improving local blood and lymphatic circulation, accelerating the removal of metabolic waste, and bringing more oxygen and nutrients to the tissues; the warming effect helps relax muscles and relieve muscle tension and pain.
[0046] The light-emitting unit 320 can be a monochromatic light-emitting unit. For example, there can be multiple groups of light-emitting units 320, spaced apart. One group emits red light, another blue light, another green light, another yellow light, and yet another infrared light, allowing the first phototherapy component to emit multiple wavelengths of light, thus enabling the massager 10 to have different phototherapy functions. Each group of light-emitting units 320 can be controlled individually. For example, it can be controlled to operate according to a preset mode (whitening mode, wrinkle removal mode, skin rejuvenation mode, and fat burning mode); or it can be automatically controlled based on skin detection results (skin color, moisture content, and texture); or the intensity or level of the light emitted by each group of light-emitting units 320 can be manually or intelligently controlled.
[0047] The light-emitting unit 320 can also be a multi-color composite light-emitting unit. The multi-color composite light-emitting unit can be an RGB light-emitting unit, and the three RGB channels can be controlled separately. This allows the light-emitting unit 320 to emit light beams of different wavelengths according to the above-mentioned predetermined mode or skin detection results, so as to meet the different needs of users.
[0048] Optional, such as Figure 1 and Figure 2 As shown, there are two second phototherapy components 400: one second phototherapy component 400 is disposed in the first accommodating cavity 160, and the other second phototherapy component 400 is disposed in the third accommodating cavity 180. Each second phototherapy component 400 includes a first flexible circuit board 410 and multiple LED beads 420. The first flexible circuit board 410 includes multiple annular portions 411 and a first flexible connector 412. Each annular portion 411 surrounds the corresponding motor 210 and is electrically connected to the motor 210. One end of the first flexible connector 412 is used to connect to the multiple annular portions 411, and the other end is used to connect to the control board, thereby facilitating product assembly. Multiple LED beads 420 are installed at intervals on each annular portion 411, thereby forming another phototherapy area around the motor 210 to perform phototherapy on human skin, further improving the therapeutic effect of the massager 10.
[0049] Furthermore, such as Figure 7 As shown, each annular portion 411 is provided with a motor terminal 411a, which is used to electrically connect to the motor 210, further facilitating product assembly.
[0050] The wavelength of the light beam emitted by the LED chip 420 includes at least one of the following: 630nm-660nm, 405nm-420nm, 520nm-550nm, 570nm-590nm, and 700nm-1200nm. The LED chip 420 can be a single-color LED chip or a multi-color composite LED chip. However, the light-emitting unit 320 can emit at least one light beam with a wavelength different from that emitted by the LED chip 420. For example, if the wavelength of the light beam emitted by the LED chip 420 is 630nm-660nm, then the wavelength of the light-emitting unit 320 can be 405nm-420nm, 630nm-660nm, or 520nm-550nm. This allows the phototherapy effect of the light-emitting unit 320 on human skin to differ from that of the LED chip 420. The light-emitting unit 320 can be an LED chip or an LED LED chip.
[0051] Furthermore, such as Figure 1 As shown, a light-transmitting ring 1255 is provided at the position of the massage head 125 corresponding to the position of the lamp bead 420. The light beam emitted by the lamp bead 420 passes through the light-transmitting ring 1255 and is then projected onto the human skin for phototherapy. It should be noted that in other embodiments, the light-transmitting ring 1255 may not be provided. Instead, a light-transmitting hole may be formed at the position of the massage head 125 corresponding to the position of the lamp bead 420, through which the light beam emitted by the lamp bead 420 can be projected onto the human skin.
[0052] Optional, such as Figure 1 and Figure 3 As shown, the massager 10 also includes a skin tone detection element 500 and a light shield (not shown). The skin tone detection element 500 and the light shield are disposed in the first receiving cavity 160 and respectively mounted on an annular portion 411. The skin tone detection element 500 is used to detect the user's skin tone. The light shield surrounds the skin tone detection element 500 to block the light beam emitted by the lamp bead 420 from entering the skin tone detection element 500, thereby preventing the light beam emitted by the lamp bead 420 from affecting the detection result of the skin tone detection element 500. It should be noted that in other embodiments, the skin tone detection element 500 and the light shield can also be disposed in the second receiving cavity 170 or the third receiving cavity 180. When the skin tone detection element 500 and the light shield can also be disposed in the second receiving cavity 170, the light shield is used to block the light beam emitted by the light-emitting unit 320 from entering the skin tone detection element 500.
[0053] The skin color detection device 500 can use spectrophotometers, tristimulus colorimeters, or multispectral imaging technologies to detect the user's skin color. The light-emitting unit 320 and the LED bead 420 can emit light beams of corresponding intensity and wavelength according to the skin color detection results, thereby improving the user experience. For example, when the skin color detection device 500 detects that the user's skin color is dark, the light-emitting unit 320 and the LED bead 420 can emit light beams with whitening function to meet the user's needs.
[0054] Optional, such as Figure 1 and Figure 6 As shown, the massager 10 also includes multiple composite functional components 600. Each composite functional component 600 is disposed between the corresponding motor 210 and the metal sheet 1252. Each composite functional component 600 includes a second flexible circuit board 610, a heating unit 620, a radio frequency unit 630, a microcurrent unit 640, and a temperature detection unit 650. The second flexible circuit board 610 can be attached to the metal sheet 1252 by pressing, adhesive, or other methods. The heating unit 620, radio frequency unit 630, microcurrent unit 640, and temperature detection unit 650 are respectively mounted on the side of the second flexible circuit board 610 facing the metal sheet 1252. The heating unit 620 is arranged around the radio frequency unit 630, microcurrent unit 640, and temperature detection unit 650, which are spaced apart from each other.
[0055] The heating unit 620 is used to heat the metal sheet 1252 to improve the massage effect of the metal sheet 1252 on human muscles.
[0056] The radio frequency unit 630 is used to emit high-frequency electromagnetic wave energy into the human body to heat the deep tissues of the skin. Through the thermal effect, it stimulates the regeneration and reorganization of collagen, thereby achieving non-invasive anti-aging effects such as skin tightening, fat reduction, wrinkle removal, and contour lifting.
[0057] The microcurrent unit 640 delivers a microcurrent to the body to stimulate muscle contraction, which can temporarily lift the skin's contours, making the skin appear firmer and reducing sagging. Effects typically begin to appear after several treatments and are immediately visible after the course of treatment.
[0058] The temperature detection unit 650 is used to monitor human skin temperature in real time to prevent the temperature of the human epidermis (generally preset to 40-45℃) and the temperature of the deep dermis (generally preset to 55-65℃) from exceeding the preset range.
[0059] Furthermore, the composite functional component 600 also includes an ultrasonic unit (not shown), which is mounted on the side of the second flexible circuit board 610 facing the metal sheet 1252. The ultrasonic unit is used to emit ultrasonic waves into the human body, so that the energy of the ultrasonic waves acts on the skin or subcutaneous tissue to achieve cosmetic effects such as tightening the skin, lifting the contours, reducing fat (lipolysis), improving wrinkles, and promoting the absorption of skin care products.
[0060] Furthermore, the second flexible circuit board 610 is spaced apart from the first flexible circuit board 410. The composite functional component 600 also includes a second flexible connector 660, one end of which is used to connect to the second flexible circuit board 610, and the other end is used to connect to the control motherboard. It should be noted that in other embodiments, the second flexible circuit board 610 can be integrally formed with the first flexible circuit board 410, allowing the second flexible circuit board 610 to connect to the control motherboard via the first flexible connector 412, thus eliminating the need for the second flexible connector 660. This facilitates product assembly and reduces production costs.
[0061] Optionally, the massager 10 also includes a skin condition detection component (not shown). This component can be disposed within the second receiving slot 112 and mounted on the lamp plate 310, or disposed within the first receiving cavity 160 or the third receiving cavity 180 and mounted on the annular portion 411. The skin condition detection component includes a skin dryness detection unit and a skin texture detection unit. The skin dryness detection unit can detect the moisture content of human skin using capacitance, conductivity, infrared spectroscopy, or confocal Raman spectroscopy. The skin texture detection unit can detect human skin texture (stretch marks, fine lines, pores, and pigmentation, etc.) using ultrasound imaging, cross-polarized light, UV light, and a high-definition camera with magnification. The first phototherapy component 300, the second phototherapy component 400, and the composite function component 600 can adjust their operating modes according to the detection results of the skin condition detection component.
[0062] Optionally, the massager 10 also includes a wear detection element (not shown). The wear detection element can be disposed in the second receiving slot 112 and mounted on the lamp plate 310, or disposed in the first receiving cavity 160 or the third receiving cavity 180 and mounted on the annular portion 411. The wear detection element can detect the wearing status of the massager 10 using a capacitance detection method. If the massager 10 is detected to be in an unworn state, the massager 10 can automatically turn off after a predetermined time to save energy. If the massager 10 is detected to be in a worn state but not in contact with the skin, the first phototherapy component 300, the second phototherapy component 400, and / or the radio frequency unit 630 can be intelligently turned off to save energy.
[0063] Optional, such as Figure 1 and Figure 2As shown, the massager 10 also includes a power supply component 700 and a control component 800. The power supply component 700 and the control component 800 are disposed in the second receiving slot 112 and installed on the back skin layer 110. The power supply component 700 is a rechargeable battery and is electrically connected to the control component 800. The control component 800 is electrically connected to the motor 210, the light-emitting unit 320, the LED bead 420, the skin color detection element 500, the heating unit 620, the radio frequency unit 630, the microcurrent unit 640, the temperature detection unit 650, the ultrasonic unit, the skin dryness detection unit, the skin texture detection unit, and the wearing detection element through the first flexible connector 412 or the second flexible connector 660, respectively. This allows the control component 800 to control the motor 210, the light-emitting unit 320, the LED bead 420, the heating unit 620, the radio frequency unit 630, the microcurrent unit 640, and the ultrasonic unit based on the detection results of the skin color detection element 500, the temperature detection unit 650, the skin dryness detection unit, the skin texture detection unit, and the wearing detection element. It should be noted that in other embodiments, a battery compartment and a battery compartment cover may be provided on the side of the back layer 110 away from the near layer 120, and the power supply component 700 may be provided inside the battery compartment. Alternatively, a power supply interface may be provided on the side of the back layer 110 away from the near layer 120, and the power supply interface may be connected to an external adapter via a cable to supply power to the massager 10.
[0064] Furthermore, the control component 800 is provided with multiple terminal blocks 810. One end of the terminal block 810 is electrically connected to the control component 800, and the other end is electrically connected to the motor 210, the light-emitting unit 320, the lamp bead 420, the skin color detection element 500, the heating unit 620, the radio frequency unit 630, the microcurrent unit 640, the temperature detection unit 650, the ultrasonic unit, the skin dryness detection unit, the skin texture detection unit, and the wear detection element through the first flexible connector 412 or the second flexible connector 660.
[0065] Furthermore, the control component 800 is also provided with a charging interface 820, the end of which protrudes outside the back skin layer 110, allowing the user to charge the power supply component 700 using a charger.
[0066] Understandably, multiple buttons can also be installed on the back layer 110. These multiple buttons can issue control commands to the control component 800, enabling the control component 800 to control the operation of the motor 210, the light-emitting unit 320, the lamp bead 420, the heating unit 620, the radio frequency unit 630, the microcurrent unit 640, and the ultrasonic unit.
[0067] Optional, such as Figure 1As shown, the massager 10 also includes a wireless module 910, which is installed on the control component 800 and electrically connected to the control component 800. The wireless module 910 can be a Bluetooth, Wi-Fi, or infrared receiver, so that the control component 800 can connect to a mobile APP or remote control through the wireless module 910.
[0068] Optional, such as Figure 1 As shown, the massager 10 also includes a voice module 920, which includes a voice receiving and recognition unit 921 and a voice playback unit 922. The voice receiving and recognition unit 921 and the voice playback unit 922 are respectively installed in and electrically connected to the control component 800. The voice receiving and recognition unit 921 can receive and recognize user voice control commands and transmit them to the control component 800. The control component 800 controls the voice playback unit 922 to play feedback voice commands and controls the operation of corresponding modules (motor 210, light-emitting unit 320, LED bead 420, heating unit 620, radio frequency unit 630, microcurrent unit 640, and ultrasonic unit) according to the voice control commands. The voice playback unit 922 can also be used as a music player, allowing the user to play music while using the massager 10.
[0069] Optionally, the massager 10 also includes an aromatherapy module and a spray module, which are installed on the back skin layer 110 or the near skin layer 120 to further enhance the user experience.
[0070] The above description is only a partial embodiment of this application and does not limit the scope of protection of this application. Any equivalent device or equivalent process transformation made based on the content of this application specification and drawings, or directly or indirectly applied to other related technical fields, are similarly included within the scope of patent protection of this application.
Claims
1. A massager, characterized in that, include: The main body has a first accommodating cavity, a second accommodating cavity and a third accommodating cavity, wherein the second accommodating cavity is disposed between the first accommodating cavity and the third accommodating cavity, and wherein the opening area of the second accommodating cavity is larger than the opening area of the first accommodating cavity and the opening area of the third accommodating cavity, respectively. A massage component is disposed in the first accommodating cavity and the third accommodating cavity; A first phototherapy component is disposed in the second accommodating cavity; The second phototherapy component is disposed in the first accommodating cavity and the third accommodating cavity and surrounds the massage component.
2. The massager as described in claim 1, characterized in that, The first phototherapy component is used to emit at least one light beam with a wavelength different from that emitted by the second phototherapy component.
3. The massager as described in claim 1, characterized in that, The wavelength of the light beam emitted by the first phototherapy component includes at least one of the following: 630nm-660nm, 405nm-420nm, 520nm-550nm, 570nm-590nm, and 700nm-1200nm; the wavelength of the light beam emitted by the second phototherapy component includes at least one of the following: 630nm-660nm, 405nm-420nm, 520nm-550nm, 570nm-590nm, and 700nm-1200nm.
4. The massager as described in claim 1, characterized in that, The first phototherapy component includes a monochromatic light-emitting unit or a multicolor composite light-emitting unit.
5. The massager as described in claim 1, characterized in that, The main body has multiple light-transmitting holes at positions corresponding to the first phototherapy component, through which the light beam emitted by the first phototherapy component exits; the main body has a light-transmitting ring at positions corresponding to the second phototherapy component, through which the light beam emitted by the second phototherapy component exits; or the main body has an opening at positions corresponding to the first phototherapy component, and the massager further includes a light-transmitting plate covering the opening, through which the light beam emitted by the first phototherapy component exits.
6. The massager as described in claim 1, characterized in that, The second phototherapy component includes a first flexible circuit board and LED beads. The first flexible circuit board includes an annular portion and a first flexible connector. The annular portion surrounds the massage component and is electrically connected to the massage component. One end of the first flexible connector is used to connect to the annular portion, and the other end of the first flexible connector is used to connect to the control motherboard. The LED beads are mounted on the annular portion.
7. The massager as described in claim 6, characterized in that, The massager also includes a composite functional component, which is disposed between the main body and the massage component. The composite functional component includes a second flexible circuit board, a heating unit, a radio frequency unit, and a microcurrent unit. The heating unit, radio frequency unit, and microcurrent unit are respectively disposed on the second flexible circuit board. The heating unit is disposed around the radio frequency unit and the microcurrent unit, and the radio frequency unit and the microcurrent unit are disposed at intervals.
8. The massager as described in claim 7, characterized in that, The first flexible circuit board and the second flexible circuit board are spaced apart. The composite functional component also includes a second flexible connector, one end of which is used to connect to the second flexible circuit board, and the other end of which is used to connect to the control motherboard. Alternatively, the first flexible circuit board and the second flexible circuit board may be integrally formed.
9. The massager as described in claim 1, characterized in that, The massager also includes a skin tone detection element and a light shield, which are disposed in the first accommodating cavity, the second accommodating cavity, or the third accommodating cavity. The light shield surrounds the skin tone detection element to block the light beam emitted by the first phototherapy component or the second phototherapy component from entering the skin tone detection element. And / or, the massager further includes a skin condition detection device, which is disposed in the first accommodating cavity, the second accommodating cavity, or the third accommodating cavity, and is used to detect skin moisture content and skin texture; And / or, the massager further includes a wear detection element disposed in the first accommodating cavity, the second accommodating cavity, or the third accommodating cavity, the wear detection element being used to detect the wear status of the massager.
10. The massager as described in claim 1, characterized in that, The massager also includes a power supply component and a control component electrically connected to the power supply component. The power supply component and the control component are respectively installed on the main body, and the control component is electrically connected to the massage component, the first phototherapy component and the second phototherapy component.