MASSAGER
20240407970 ยท 2024-12-12
Assignee
Inventors
Cpc classification
A61H2023/002
HUMAN NECESSITIES
A61H2201/1654
HUMAN NECESSITIES
International classification
Abstract
The present invention discloses an improved massager, comprising a massage device with a massage chamber that can undergo elastic deformation, and a shell that accommodates and fixes the massage device; further comprising a deformation support frame and a vibration motor that are respectively compatibly installed in the massage device; The deformation support frame is provided with a first deformation portion that is enlarged forward, and the massage device is provided with a second deformation portion corresponding to the shape of the first deformation portion; A massage reinforcement block protrudes on the side wall of the massage device, and the massage reinforcement block can correspondingly move towards the centerline of the massage chamber as the second deformation portion is stretched backwards and deformed.
Claims
1. An improved massager, comprising a massage device with a massage chamber that can undergo elastic deformation and a shell that accommodates and fixes the massage device, characterized in that: further comprising a deformation support frame and a vibration motor that are respectively compatibly installed in the massage device; the deformation support frame is provided with a first deformation portion that is enlarged forward, and the massage device is provided with a second deformation portion corresponding to the shape of the first deformation portion: a massage reinforcement block protrudes on the side wall of the massage device, and the massage reinforcement block can correspondingly move towards the centerline of the massage chamber as the second deformation portion is stretched backwards and deformed.
2. The improved massager of claim 1, characterized in that: the improved massager also comprises a vibration adjustment mechanism set in the shell and corresponding to the vibration motor: when the vibration adjustment mechanism senses the corresponding backward stretching deformation or forward restoration of the second deformation portion, the vibration adjustment mechanism correspondingly controls the vibration motor to increase or decrease the vibration intensity.
3. The improved massager of claim 2, characterized in that: the vibration adjustment mechanism comprises a fixed inductor and an induction block that is matched with the inductor and connected to the rear end of the massage device.
4. The improved massager of claim 3, characterized in that: the induction block passes through a guide rod, a spring, and a slider: the guide rod extends in a forward and backward direction and is fixedly set; the slider, the spring, and the induction block are sequentially connected to the guide rod from front to back, and the slider is connected to the rear end of the massage device; the induction block is cooperatively located in front of the inductor.
5. The improved massager of claim 4, characterized in that: the slider is connected to the rear end of the massage device through a positioning plate: the positioning plate is clamped on the rear end and a sliding groove for embedding the slider is provided on the side edge of the positioning plate.
6. The improved massager in claim 3, characterized in that: the inductor is a pressure inductor or an infrared inductor.
7. The improved massager of claim 2, characterized in that: the vibration adjustment mechanism comprises an electrodeless encoder, gears, and racks; the electrodeless encoder is connected to the rear end the gear is connected to the electrodeless encoder, and the rack is extended in forward and backward directions and fixed in the shell and engages with the gear.
8. The improved massager of claim 7, characterized in that: the improved massager also comprises a guide rod, a spring, and a slider; the guide rod extends in a forward and backward direction and is fixedly set; the slider and the spring are sequentially sleeved on the guide rod from front to back, and the slider is connected to the rear end and the rear end of the spring is fixed.
9. The improved massager of claim 1, characterized in that: the first deformation portion comprises two curved plates symmetrically distributed above and below and spread forward, and a positioning ring for connecting the rear ends of the two curved plates.
10. The improved massager of claim 1, characterized in that: the massage reinforcement block moving correspondingly towards the centerline of the massage chamber with the second deformation portion stretching backwards, the vibration motor vibrates and causes the massage device to vibrate.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
REFERENCE NUMERAL
[0029] 1. Massage chamber; 2. Massage device; 21. Second deformation portion: 211. Massage reinforcement block: 22. Head: 23. Mounting portion: 24. Folded edge: 3. Shell: 4. Deformation support frame: 41. First deformation portion: 411. Curved plate: 412. Positioning ring: 413. Mounting rack: 414. Insert: 5. Vibration motor: 6. Vibration adjustment mechanism: 61. Inductor; 62. Induction block; 63. Guide rod: 64. Spring: 65. Slider: 66. Positioning plate: 67. Sliding groove: 68. Electrodeless encoder: 69. Gear; 70. Rack.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0030] Embodiments in accordance with the present disclosure are described below in conjunction with the individual figures.
Embodiment 1
[0031] As shown in
[0032] Preferably, the massage reinforcement block 211 is provided with two blocks set symmetrically above and below.
[0033] As shown in
[0034] As shown in
[0035] As shown in
[0036] As shown in
[0037] For ease of use, the inductor 61 can be either a pressure inductor or an infrared inductor. The pressure inductor can be used to sense the magnitude of the pressure applied to the induction block 62 during movement to achieve signal changes. For example, when the pressure on the inductor 61 increases, the vibration intensity of the vibration motor 5 gradually increases, and vice versa, the vibration intensity of the vibration motor 5 gradually decreases: The infrared inductor is used to sense the variation of the distance between the induction block 62 during its movement to achieve signal changes. For example, as the induction block 62 approaches the inductor 61, the vibration intensity of the vibration motor 5 gradually increases, and vice versa, the vibration intensity of the vibration motor 5 gradually decreases. Therefore, both signal changes mentioned above can be used to control the vibration intensity of vibration motor 5.
[0038] As shown in
[0039] As shown in
[0040] As shown in
[0041] As shown in
[0042] Deservedly, there will also be a circuit board as the control center and a battery for providing power inside the shell 3, and there will be switch buttons for controlling the massager switch on the outer wall of the shell 3. As the above settings are all prior art, they will not be specifically described here.
[0043] As shown in
[0044] As a consequence, the description of the above usage method indicates that a good massage effect can be achieved by the entry and exit of the massaged area of the human body in the massage chamber 1. For example, the massage reinforcement block 211 can compress the massaged area of the human body to enhance the massage effect. Then, combined with the control method of increasing or decreasing the vibration intensity of the vibration motor 5, the massager can achieve a good massage effect on the massaged area of the human body, and the use effect is good.
[0045] The massaged area of the human body can be fingers, but not limited to fingers. It can also be other areas of the human body that need to be massaged, and there is no specific limit here.
Embodiment 2
[0046] As shown in
[0047] In this embodiment, similarly, in order to improve the deformation stability of the second deformation portion 21, it also comprises a guide rod 63, a spring 64, and a slider 65; The guide rod 63 extends along the front and rear directions and is fixedly set: The slider 65 and spring 64 are sequentially sleeved on the guide rod 63 from front to back. The slider 65 is connected to the rear end of the massage device 2 and the rear end of the spring 64 is fixedly set, so that the spring 64 can be used to assist in the reset of the massage device 2. Since its usage is similar to that in Embodiment 1, it will not be further elaborated herein.
[0048] Deservedly, both the slider 65 and the electrodeless encoder 68 can be connected to the massage device 2 through a positioning plate 66. The guide rod 63, spring 64, and slider 65 can also be set in two separate groups, which will not be described here.
[0049] In this embodiment, when the massaged area of the human body is moved backwards and the second deformation portion 21 is pulled backwards to stretch and deform, the electrodeless encoder 68 and gear 69 are synchronously driven to move backwards, and the gear 69 will rotate on the rack 70. When the electrodeless encoder 68 senses that the distance for gear 69 to rotate backwards is increasing, the vibration motor 5 is controlled by the control center to vibrate and the vibration intensity gradually increases; Similarly, when the massaged area of the human body is moved outwards, that is, when the second deformation portion 21 gradually returns to its original state forward, the electrodeless encoder 68 senses that the forward rotation distance of the gear 69 is getting longer and longer, the vibration motor 5 is controlled by the control center to vibrate and the vibration intensity gradually decreases; When the deformation support frame 4 and the massage device 2 are restored to their original state, the vibration motor 5 stops vibrating.
[0050] The scope of the present disclosure is not defined by the embodiments described above, but by the appended claims and their equivalent scope.