Massage device
By incorporating a pleated structure in the cushioning section of the massage device to absorb vibrations, the problem of resonance between the control mechanism and the area to be massaged is solved, thus improving the massage experience while maintaining the device's portability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGDONG SKG INTELLIGENT TECH CO LTD
- Filing Date
- 2025-03-03
- Publication Date
- 2026-04-21
AI Technical Summary
Existing massage devices are prone to resonance between the control mechanism and the area being massaged during the massage process, resulting in a poor massage experience. Furthermore, the addition of sponges and other features reduces the portability of the devices.
A buffer section is set between the control mechanism and the massage mechanism. A pleated structure is used to absorb vibrations to avoid resonance. The buffer section includes a pleated structure, which absorbs the vibrations of the massage mechanism through deformation and reduces the transmission of vibrations to the control mechanism.
It effectively avoids resonance between the control mechanism and the area to be massaged, enhances the massage experience of the massage device, and maintains the portability and quietness of the device.
Smart Images

Figure CN224141191U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of massage equipment technology, and more particularly to a massage device. Background Technology
[0002] As people's demands for quality of life increase, their expectations for the massage experience from massage devices also rise. However, when using massage devices with relevant technologies, people find the massage experience unsatisfactory and fails to meet their requirements. Utility Model Content
[0003] This application discloses a massage device that provides a better massage experience and can meet the user's requirements.
[0004] To achieve the above objectives, this application discloses a massage device, comprising:
[0005] A wearing case, the wearing case being worn on the area to be massaged;
[0006] A massage mechanism, wherein the massage mechanism is disposed in the wearing shell; and,
[0007] A control mechanism is disposed in the wearable shell and spaced apart from the massage mechanism. The control mechanism is electrically connected to the massage mechanism and is used to control the movement of the massage mechanism.
[0008] A cushioning section is formed in the wearing housing between the control mechanism and the massage mechanism.
[0009] By creating a buffer within the wearing shell between the control mechanism and the massage mechanism, the buffer can absorb all or part of the vibration of the massage mechanism when it is transmitted to the control mechanism through the wearing shell. This makes it difficult for the vibration of the massage mechanism to be transmitted to the control mechanism, thus preventing resonance between the control mechanism and the area to be massaged. On the one hand, this prevents the control mechanism from being damaged by resonance, and on the other hand, it also improves the massage experience of the massage device.
[0010] Optionally, the buffer section includes a pleated structure.
[0011] Because the pleated structure can absorb the vibration of the massage mechanism through a series of deformations such as contraction or expansion, the vibration of the massage mechanism cannot be transmitted to the control mechanism, thereby avoiding resonance between the control mechanism and the area to be massaged.
[0012] When the buffer includes a pleated structure, the pleated structure is simple and the inventors have found that the pleated structure has a good vibration absorption effect. Therefore, the cost of the buffer can be reduced while better avoiding resonance between the control mechanism and the area to be massaged.
[0013] Optionally, the wearing shell includes a shell and the pleated structure. The shell is worn on the area to be massaged, the control mechanism is disposed in the shell, and the pleated structure is connected between the shell and the massage mechanism.
[0014] Because the control mechanism is located in the housing and the pleated structure is connected between the housing and the massage mechanism, the massage mechanism can be directly connected to the pleated structure. As a result, the vibration of the massage mechanism is absorbed by the pleated structure as soon as it is emitted, so that the vibration of the massage mechanism will not be transmitted to the control mechanism or the housing, thus making the entire massage device quieter and more stable during use.
[0015] Optional:
[0016] The maximum thickness of the pleated structure along the thickness direction of the shell is H, where 3mm ≤ H ≤ 9mm;
[0017] And / or,
[0018] The maximum width of the pleated structure located between the housing and the massage mechanism along the direction of extension of the housing surface is K, where 8mm≤K≤16mm.
[0019] The inventors discovered that when the maximum thickness H of the pleated structure along the shell thickness direction is less than 3mm, the deformation capacity of the pleated structure is weak, resulting in limited vibration absorption. When H > 9mm, the overall volume of the pleated structure is large, leading to a less compact and less portable massage device. However, when 3mm ≤ H ≤ 9mm, the vibration absorption capacity of the pleated structure can be ensured while maintaining a relatively small size and good portability of the massage device.
[0020] The inventors discovered that when K < 8mm, the deformation capacity of the pleated structure is weak, resulting in limited vibration absorption. When K > 16mm, the overall volume of the pleated structure is large, leading to a less compact and portable massage device. However, when 8mm ≤ K ≤ 16mm, the vibration absorption capacity of the pleated structure can be ensured while maintaining a relatively small and portable massage device.
[0021] Optionally, the massage mechanism includes a maximum massage point and a minimum massage point along the thickness direction of the housing, and the pleated structure includes a maximum pleated point and a minimum pleated point along the thickness direction of the housing. The maximum pleated point is located between the maximum massage point and the minimum massage point along the thickness direction of the housing, and the minimum pleated point protrudes from the minimum massage point along the thickness direction of the housing and faces the area to be massaged.
[0022] The inventors discovered that when the highest point of the fold is located between the highest and lowest points of the massage mechanism along the thickness direction of the shell, and the lowest point of the fold protrudes beyond the lowest point of the massage mechanism along the thickness direction of the shell, the fold structure can better absorb the vibration of the massage mechanism.
[0023] Optionally, the distance between the lowest end of the fold and the lowest end of the massage along the thickness direction of the housing is L, where 0 < L ≤ 5 mm.
[0024] By ensuring that 0 < L ≤ 5 mm, the pleated structure can effectively absorb the vibrations of the massage mechanism while also making the massage device more portable.
[0025] Optionally, the fold structure includes:
[0026] The first vertical wall is configured to fit against the outer peripheral wall of the massage mechanism;
[0027] A first transverse wall, the first transverse wall being connected to the first vertical wall and extending in a direction away from the first vertical wall; and...
[0028] The second vertical wall is connected to the first horizontal wall and forms a first buffer gap with the first vertical wall at a distance from it. The shell is connected to the second vertical wall.
[0029] Since the second vertical wall and the first vertical wall are spaced apart to form a first buffer gap, and the first vertical wall is set to fit the outer peripheral wall of the massage mechanism, when the vibration of the massage mechanism is transmitted to the second vertical wall through the first vertical wall, the second vertical wall can shake and deform along the width direction of the first buffer gap to absorb the vibration of the massage mechanism, so that the vibration of the massage mechanism will not be transmitted to the housing or will be transmitted to less extent.
[0030] By creating a first buffer gap between the second vertical wall and the first vertical wall, the first buffer gap provides space for the deformation of the second vertical wall along the width of the first buffer gap, thus making the folded structure better able to absorb vibrations.
[0031] Optionally, the first buffer seam has a first opening along the vertical direction of the first vertical wall opposite to the first horizontal wall, the first opening facing the side of the wearing housing away from the part to be massaged.
[0032] Since the first opening faces the side of the wearing shell away from the area to be massaged, it can prevent the area to be massaged or clothing on the area to be massaged from entering the first buffer seam through the first opening, which could cause the pleated structure to fail, thus making the operation of the pleated structure more reliable.
[0033] Optionally, the fold structure further includes:
[0034] The second transverse wall, which is connected to the second vertical wall; and,
[0035] The third vertical wall is connected to the second horizontal wall and is spaced apart from the second vertical wall to form a second buffer gap, and the shell is connected to the third vertical wall.
[0036] Since the third vertical wall is connected to the second horizontal wall and forms a second buffer gap with the second vertical wall at intervals, the folded structure can absorb vibration by deformation at the first buffer gap and also absorb vibration by deformation at the second buffer gap, which further enhances the vibration absorption capacity of the folded structure.
[0037] Optionally, the first vertical wall is parallel to the second vertical wall, and / or the third vertical wall is parallel to the second vertical wall.
[0038] Optionally, the width of the second buffer gap is equal to the width of the first buffer gap, or the width of the second buffer gap is less than the width of the first buffer gap.
[0039] By making the width of the second buffer gap equal to the width of the first buffer gap, the structural layout of the pleated structure can be made more regular. On the one hand, this can improve the appearance of the pleated structure, and on the other hand, it can make the pleated structure more stable during deformation, thereby better preventing the vibration of the massage mechanism from being transmitted to the shell.
[0040] Because the second buffer seam is farther from the massage mechanism than the first buffer seam, the vibration at the first buffer seam will be stronger than that at the second buffer seam. Therefore, by making the width of the second buffer seam smaller than that of the first buffer seam, the first buffer seam can have enough space for the pleated structure to deform and absorb stronger vibrations, while the second buffer seam can be set relatively smaller to absorb weaker vibrations. This makes the width layout of the first and second buffer seams more reasonable. In this way, the volume of the pleated structure can be reduced while ensuring that the pleated structure has a good vibration absorption capacity.
[0041] Optionally, the second buffer gap has a second opening along the vertical direction of the first vertical wall opposite to the second horizontal wall, and the orientation of the second opening is opposite to that of the first opening.
[0042] By making the orientation of the second opening opposite to that of the first opening, on the one hand, the movement of the pleated structure is more stable when it deforms at the second buffer seam and the second buffer seam; on the other hand, it will not tilt to one side (towards or away from the area to be massaged).
[0043] Optionally, the second transverse wall protrudes from the housing.
[0044] By making the second transverse wall protrude from the shell, on the one hand, the second transverse wall will form a raised ridge on the shell, which serves to decorate the shell and make the massage device more aesthetically pleasing and designed. On the other hand, when the second transverse wall protrudes from the shell, a height difference will be formed between the second transverse wall and the shell, making it more difficult for vibrations to be transmitted to the shell through the pleated structure.
[0045] Optionally, the cross-section of the first transverse wall is an arc-shaped surface, and / or the cross-section of the second transverse wall is an arc-shaped surface.
[0046] By making the cross-section of the first transverse wall curved, and / or the cross-section of the second transverse wall curved, the first and second transverse walls can be made smoother. On the one hand, this can improve the appearance of the massage device, and on the other hand, it can reduce the possibility of scratching the user.
[0047] Optionally, the buffer portion is disposed at least partially around the massage mechanism.
[0048] By arranging the buffer portion at least partially around the massage mechanism, at least a portion of the structure of the massage mechanism can be surrounded by the buffer portion, which can effectively separate the massage mechanism from the control mechanism, thereby making it less likely for the vibration of the massage mechanism to be transmitted to the control mechanism.
[0049] Optionally, the buffer portion is annular and arranged around the massage mechanism.
[0050] By making the buffer part circular and surrounding the massage mechanism, the massage mechanism can be completely surrounded by the buffer part, making it more difficult for the vibration of the massage mechanism to be transmitted to the control mechanism.
[0051] Optionally, the buffer section is positioned closer to the massage mechanism than the control mechanism.
[0052] By placing the buffer section closer to the massage mechanism than the control mechanism, the vibrations of the massage mechanism can be absorbed by the buffer section as soon as they are emitted, instead of being transmitted through the housing. This effectively avoids resonance between the housing and the area to be massaged, thereby improving the massage experience.
[0053] Optionally, the buffer portion is a silicone buffer portion.
[0054] Because silicone cushioning is inexpensive and durable, it can reduce the cost of massage equipment while increasing its durability.
[0055] Compared with the prior art, the beneficial effects of this application are as follows:
[0056] In this application, since both the massage mechanism and the control mechanism are housed within the wearing shell, when the massage mechanism begins to move, in addition to transmitting motion to the area to be massaged, it may also transmit vibrations to the control mechanism through the wearing shell, causing the control mechanism to vibrate. When the control mechanism vibrates, it can cause damage, and its vibrations may also be transmitted through the wearing shell to the area to be massaged, resulting in resonance between the control mechanism and the area. This severely impacts the massage experience, making it poor and failing to meet user expectations.
[0057] In view of this, in order to avoid resonance between the control mechanism and the area to be massaged, related technologies usually prevent the control mechanism from transmitting vibrations to the area to be massaged by adding a sponge or other means to the wearing shell between the control mechanism and the area to be massaged. However, this method results in a thicker wearing shell, which in turn makes the massage device less portable.
[0058] This application takes a different approach by creating a buffer within the wearing shell between the control mechanism and the massage mechanism. In this way, when the vibration of the massage mechanism is transmitted to the control mechanism through the wearing shell, the buffer can absorb all or part of the vibration, making it difficult for the vibration of the massage mechanism to be transmitted to the control mechanism. This prevents resonance between the control mechanism and the area to be massaged, thus preventing damage to the control mechanism from resonance and improving the massage experience of the massage device. Attached Figure Description
[0059] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0060] Figure 1 This is a schematic diagram of the structure of a massage device provided in one embodiment of this application;
[0061] Figure 2 yes Figure 1 A schematic diagram of the structure of a massage device when worn on the area to be massaged;
[0062] Figure 3 yes Figure 1 A schematic diagram of the massage device from another perspective;
[0063] Figure 4 yes Figure 3 Cross-sectional view of the massage device at position AA;
[0064] Figure 5 yes Figure 1 Exploded view of a massage device;
[0065] Figure 6 yes Figure 5 A schematic diagram of the structure of the casing worn in the middle;
[0066] Figure 7 yes Figure 6 A schematic diagram of the structure of the wearing shell from another perspective.
[0067] Explanation of main figure symbols
[0068] 1-Wearing casing; 11-Casing;
[0069] 2-Massage establishment; 21-High-end massage; 22-Low-end massage;
[0070] 3-Control mechanism;
[0071] 4-Buffer section; 41-Fold structure; 411-Highest point of the fold; 412-Lowest point of the fold; 413-First vertical wall; 414-First horizontal wall; 415-Second vertical wall; 416-First buffer seam; 4161-First opening; 417-Second horizontal wall; 418-Third vertical wall; 419-Second buffer seam; 4191-Second opening;
[0072] M - The area to be massaged;
[0073] 100-Massage equipment. Detailed Implementation
[0074] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0075] In this application, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this application and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.
[0076] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.
[0077] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.
[0078] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.
[0079] Before explaining the technical solution of this application, the background technology of this application shall be explained first.
[0080] As people's demands for quality of life increase, their expectations for the massage experience from massage devices also rise. However, when using massage devices in the existing technology, people find the massage experience unsatisfactory and fails to meet their requirements. Therefore, this application provides a new massage device to solve the aforementioned problems.
[0081] The technical solution of this application will be described below with reference to specific embodiments and accompanying drawings.
[0082] Figure 1 This is a schematic diagram of the structure of a massage device 100 provided in one embodiment of this application. Figure 2 yes Figure 1 A schematic diagram of the structure of the massage device 100 when worn on the area M to be massaged, see [link / reference]. Figure 1 and Figure 2 The massage device 100 includes a wearing shell 1, a massage mechanism 2, and a control mechanism 3. The wearing shell 1 is worn on the part M to be massaged, and the massage mechanism 2 is disposed on the wearing shell 1.
[0083] The control mechanism 3 is disposed on the wearing shell 1 and spaced apart from the massage mechanism 2. The control mechanism 3 is electrically connected to the massage mechanism 2 and is used to control the movement of the massage mechanism 2. A buffer part 4 is formed in the wearing shell 1 between the control mechanism 3 and the massage mechanism 2.
[0084] In this embodiment, when performing massage using the massage device 100, firstly, the wearing shell 1 can be worn on the area M to be massaged. Then, since the control mechanism 3 is electrically connected to the massage mechanism 2, the massage mechanism 2 can be controlled to move. When the massage mechanism 2 moves, it can transmit force to the area M to be massaged, causing the area M to feel massage actions such as kneading or pressing, thereby achieving the purpose of massaging the area M.
[0085] Since both the massage mechanism 2 and the control mechanism 3 are located within the wearing shell 1, when the massage mechanism 2 begins to move, in addition to transmitting motion to the area M to be massaged, it may also transmit vibrations to the control mechanism 3 through the wearing shell 1, causing the control mechanism 3 to vibrate. When the control mechanism 3 vibrates, it can cause damage, and its vibrations may also be transmitted through the wearing shell 1 to the area M to be massaged, resulting in resonance between the control mechanism 3 and the area M. This severely affects the massage experience of the massage device 100, making it poor and failing to meet user expectations.
[0086] In view of this, in order to avoid resonance between the control mechanism 3 and the massage area M, related technologies usually prevent the control mechanism 3 from transmitting vibration to the massage area M by adding a sponge or other means to the wearing shell 1 between the control mechanism 3 and the massage area M. However, this method will result in a thicker wearing shell 1, which in turn will result in poor portability of the massage device 100.
[0087] This application takes a different approach by forming a buffer 4 in the wearing shell 1 between the control mechanism 3 and the massage mechanism 2. In this way, when the vibration of the massage mechanism 2 is transmitted to the control mechanism 3 through the wearing shell 1, the buffer 4 can absorb all or part of the vibration of the massage mechanism 2, making it difficult for the vibration of the massage mechanism 2 to be transmitted to the control mechanism 3. As a result, the control mechanism 3 and the massaged part M will not resonate. On the one hand, the control mechanism 3 will not be damaged by resonance, and on the other hand, the massage experience of the massage device 100 will be better.
[0088] It should be noted that the massage device 100 mentioned above can be a shoulder massager, a joint massager, or a knee massager, etc., and this embodiment does not limit it.
[0089] When the massage device 100 is a knee massager, the area M to be massaged can be understood as the knee joint.
[0090] There are multiple ways to implement the aforementioned buffer section 4. In one possible implementation, the buffer section 4 can be a foam structure, etc. In another possible implementation, see [link to relevant documentation]. Figure 1 , Figure 3 and Figure 4 , Figure 3 yes Figure 1 A schematic diagram of the massage device 100 from another perspective. Figure 4 yes Figure 3 A cross-sectional view of the massage device 100 at position AA, wherein the buffer part 4 includes a pleated structure 41.
[0091] Since the pleated structure 41 can absorb the vibration of the massage mechanism 2 through a series of deformations such as contraction or expansion, the vibration of the massage mechanism 2 cannot be transmitted to the control mechanism 3, thereby avoiding the resonance between the control mechanism 3 and the massage area M.
[0092] When the buffer part 4 includes the pleated structure 41, since the pleated structure 41 has a simple structure and the inventors have found that the pleated structure 41 has a good vibration absorption effect, the cost of the buffer part 4 can be reduced while better avoiding resonance between the control mechanism 3 and the massage area M.
[0093] In some embodiments, see Figure 2 The wearing shell 1 includes a shell 11 and a pleated structure 41. The shell 11 is worn on the part M to be massaged. The control mechanism 3 is disposed on the shell 11. The pleated structure 41 is connected between the shell 11 and the massage mechanism 2.
[0094] Since the control mechanism 3 is located in the housing 11 and the pleated structure 41 is connected between the housing 11 and the massage mechanism 2, the massage mechanism 2 can be directly connected to the pleated structure 41. As a result, the vibration of the massage mechanism 2 will be largely absorbed by the pleated structure 41 as soon as it is emitted, so that the vibration of the massage mechanism 2 will not be transmitted to the control mechanism 3 or to the housing 11, thus making the entire massage device 100 quieter and more stable during use.
[0095] In some embodiments, see Figure 4 The pleated structure 41 is along the thickness direction of the shell 11 ( Figure 4 The maximum thickness (in the X-axis direction) is H, where 3mm ≤ H ≤ 9mm.
[0096] The inventors discovered that when the maximum thickness H of the pleated structure 41 along the thickness direction of the shell 11 is less than 3mm, the deformation capability of the pleated structure 41 is weak, resulting in limited vibration absorption capacity. When H > 9mm, the overall volume of the pleated structure 41 is large, leading to a less compact size and poor portability of the massage device 100. However, when 3mm ≤ H ≤ 9mm, the vibration absorption capacity of the pleated structure 41 can be ensured while maintaining a relatively small size and good portability of the massage device 100.
[0097] Specifically, H can be 3mm, 4mm, 5mm or 9mm, as long as 3mm≤H≤9mm. This embodiment does not limit the specific value of H.
[0098] In some embodiments, see Figure 4 The pleated structure 41 located between the housing 11 and the massage mechanism 2 extends along the surface of the housing 11. Figure 4 The maximum width (in the Z-axis direction) is K, where 8mm ≤ K ≤ 16mm.
[0099] The inventors discovered that when K < 8 mm, the deformation capacity of the pleated structure 41 is weak, resulting in limited vibration absorption capacity. When K > 16 mm, the overall volume of the pleated structure 41 is large, leading to a less compact size and poor portability of the massage device 100. However, when 8 mm ≤ K ≤ 16 mm, the vibration absorption capacity of the pleated structure 41 can be ensured while maintaining a relatively small size and good portability of the massage device 100.
[0100] Specifically, K can be 8mm, 9mm, 10mm or 16mm, etc., as long as 8mm≤K≤16mm. This embodiment does not limit the specific value of K.
[0101] In some embodiments, see Figure 4 The massage mechanism 2 is along the thickness direction of the housing 11 ( Figure 4 The X-axis direction includes a highest massage point 21 and a lowest massage point 22. The pleated structure 41, along the thickness direction of the housing 11, includes a highest pleated point 411 and a lowest pleated point 412. The highest pleated point 411 is located between the highest massage point 21 and the lowest massage point 22 along the thickness direction of the housing 11. The lowest pleated point 412 protrudes from the lowest massage point 22 along the thickness direction of the housing 11 and faces the area to be massaged M. Figure 4 (Center facing right).
[0102] The inventors discovered that when the highest point 411 of the fold is located between the highest point 21 and the lowest point 22 of the massage along the thickness direction of the shell 11, and the lowest point 412 of the fold protrudes from the lowest point 22 of the massage along the thickness direction of the shell 11, the fold structure 41 can better absorb the vibration of the massage mechanism 2.
[0103] Specifically, the distance between the lowest end 412 of the fold and the lowest end 22 of the massage along the thickness direction of the shell 11 is L, where 0 < L ≤ 5 mm.
[0104] When L > 5mm, the overall thickness of the pleated structure 41 and the massage mechanism 2 formed by them will be too large along the thickness direction of the shell 11, which will result in the overall size of the massage device 100 being too large and its portability being poor.
[0105] Based on this, by ensuring that 0 < L ≤ 5 mm, it is possible to ensure that the pleated structure 41 has a strong ability to absorb the vibration of the massage mechanism 2, while also making the massage device 100 more portable.
[0106] There are multiple ways to implement the aforementioned fold structure 41. In one possible implementation, see [link to relevant documentation]. Figure 5 and Figure 6 , Figure 5 yes Figure 1 Exploded view of massage device 100. Figure 6 yes Figure 5 The schematic diagram of the structure of the housing 1 is shown. The pleated structure 41 includes a first vertical wall 413, a first horizontal wall 414 and a second vertical wall 415. The first vertical wall 413 is disposed in close contact with the outer peripheral wall of the massage mechanism 2. The first horizontal wall 414 is connected to the first vertical wall 413 and extends in a direction away from the first vertical wall 413. The second vertical wall 415 is connected to the first horizontal wall 414 and forms a first buffer gap 416 with the first vertical wall 413 at intervals. The housing 11 is connected to the second vertical wall 415.
[0107] Since the second vertical wall 415 and the first vertical wall 413 are spaced apart to form a first buffer gap 416, and the first vertical wall 413 is set to fit the outer peripheral wall of the massage mechanism 2, when the vibration of the massage mechanism 2 is transmitted to the second vertical wall 415 through the first vertical wall 413, the second vertical wall 415 can shake, deform, etc. along the width direction of the first buffer gap 416 to absorb the vibration of the massage mechanism 2, so that the vibration of the massage mechanism 2 will not be transmitted to the housing 11 or less.
[0108] By creating a first buffer gap 416 between the second vertical wall 415 and the first vertical wall 413, the first buffer gap 416 provides space for the deformation of the second vertical wall 415 along the width direction of the first buffer gap 416, thus making the pleated structure 41 better able to absorb vibration.
[0109] In some embodiments, see Figure 6 The first buffer slit 416 has a first opening 4161 along the vertical direction of the first vertical wall 413, which is opposite to the first horizontal wall 414. The first opening 4161 faces the side of the wearing housing 1 that is away from the part M to be massaged. Figure 6 (The direction is to the right).
[0110] Since the first opening 4161 faces the side of the wearing shell 1 away from the part M to be massaged, it can prevent the part M to be massaged or the clothing on the part M from entering the first buffer gap 416 through the first opening 4161, which would cause the pleated structure 41 to fail, thus making the operation of the pleated structure 41 more reliable.
[0111] In some embodiments, see Figure 6 and Figure 7 , Figure 7 yes Figure 6 The structural schematic diagram of the wearing shell 1 from another perspective shows that the pleated structure 41 also includes a second horizontal wall 417 and a third vertical wall 418. The second horizontal wall 417 is connected to the second vertical wall 415, and the third vertical wall 418 is connected to the second horizontal wall 417 and is spaced apart from the second vertical wall 415 to form a second buffer gap 419. The shell 11 is connected to the third vertical wall 418.
[0112] Since the third vertical wall 418 is connected to the second horizontal wall 417 and forms a second buffer gap 419 with the second vertical wall 415 at intervals, the pleated structure 41 can not only absorb vibration by deformation at the first buffer gap 416, but also absorb vibration by deformation at the second buffer gap 419, which further enhances the vibration absorption capacity of the pleated structure 41.
[0113] In some embodiments, see Figure 6 The first vertical wall 413 is parallel to the second vertical wall 415, and / or the third vertical wall 418 is parallel to the second vertical wall 415.
[0114] By making the first vertical wall 413 parallel to the second vertical wall 415, and / or the third vertical wall 418 parallel to the second vertical wall 415, on the one hand, the structural layout of the pleated structure 41 can be made more regular, and on the other hand, the pleated structure 41 can be made more stable during deformation, thereby better preventing the vibration of the massage mechanism 2 from being transmitted to the housing 11.
[0115] In some embodiments, see Figure 6 and Figure 7 The width of the second buffer gap 419 is equal to the width of the first buffer gap 416.
[0116] By making the width of the second buffer gap 419 equal to the width of the first buffer gap 416, the structural layout of the pleated structure 41 can be made more regular. On the one hand, this can improve the appearance of the pleated structure 41. On the other hand, it can also make the pleated structure 41 more stable during deformation, thereby better preventing the vibration of the massage mechanism 2 from being transmitted to the housing 11.
[0117] In some embodiments, see Figure 6 and Figure 7 The width of the second buffer gap 419 is smaller than the width of the first buffer gap 416.
[0118] Since the second buffer slit 419 is farther from the massage mechanism 2 than the first buffer slit 416, the vibration at the first buffer slit 416 will be stronger than the vibration at the second buffer slit 419. Based on this, by making the width of the second buffer slit 419 smaller than the width of the first buffer slit 416, the first buffer slit 416 can have enough space for the pleated structure 41 to deform and absorb stronger vibrations, while the second buffer slit 419 can be set relatively smaller to absorb weaker vibrations. This makes the width layout of the first buffer slit 416 and the second buffer slit 419 more reasonable. In this way, the volume of the pleated structure 41 can be reduced while ensuring that the pleated structure 41 has a good vibration absorption capacity.
[0119] In some embodiments, see Figure 6 and Figure 7 The second buffer gap 419 has a second opening 4191 that is vertically opposite to the second transverse wall 417 along the first vertical wall 413, and the orientation of the second opening 4191 is opposite to the orientation of the first opening 4161.
[0120] By making the orientation of the second opening 4191 opposite to that of the first opening 4161, on the one hand, the movement of the pleated structure 41 is more stable when it deforms at the second buffer seam 419 and the second buffer seam 419; on the other hand, it will not tilt to one side (towards the massage area M or away from the massage area M).
[0121] In some embodiments, see Figure 6 The second transverse wall 417 protrudes from the shell 11.
[0122] By making the second transverse wall 417 protrude from the housing 11, on the one hand, the second transverse wall 417 will form a convex ridge on the housing 11, which will serve to decorate the housing 11 and make the massage device 100 more aesthetically pleasing and designed. On the other hand, when the second transverse wall 417 protrudes from the housing 11, a height difference will be formed between the second transverse wall 417 and the housing 11, making it more difficult for vibrations to be transmitted to the housing 11 through the pleated structure 41.
[0123] Of course, in other embodiments, the second transverse wall 417 may also be flush with or recessed into the housing 11, etc., and this embodiment does not limit this.
[0124] In some embodiments, see Figure 6 and Figure 7 The cross-section of the first transverse wall 414 is an arc-shaped surface, and / or the cross-section of the second transverse wall 417 is an arc-shaped surface.
[0125] By making the cross-section of the first transverse wall 414 an arc-shaped surface, and / or the cross-section of the second transverse wall 417 an arc-shaped surface, the first transverse wall 414 and the second transverse wall 417 can be made relatively smooth. On the one hand, this can improve the appearance of the massage device 100, and on the other hand, it can reduce the possibility of scratching the user.
[0126] Specifically, the first transverse wall 414 may include a convex surface and a concave surface, and the convex surface of the first transverse wall 414 may face the area M to be massaged. The second transverse wall 417 may also include a convex surface and a concave surface, and the convex surface of the second transverse wall 417 may face the side away from the area M to be massaged.
[0127] In some embodiments, see Figure 2 and Figure 3 The buffer section 4 is arranged to at least partially surround the massage mechanism 2.
[0128] By arranging the buffer part 4 to at least partially surround the massage mechanism 2, at least a portion of the structure of the massage mechanism 2 can be enclosed by the buffer part 4. The buffer part 4 can effectively separate the massage mechanism 2 from the control mechanism 3, thereby making it less likely for the vibration of the massage mechanism 2 to be transmitted to the control mechanism 3.
[0129] There are various ways in which the buffer part 4 can at least partially surround the massage mechanism 2. For example, in one possible implementation, the shape of the buffer part 4 can be C-shaped, with the massage mechanism 2 located in the C-shape, thus achieving the purpose of at least partially surrounding the massage mechanism 2.
[0130] Furthermore, in order to better separate the massage mechanism 2 from the control mechanism 3, in some embodiments, see [reference needed]. Figure 2 and Figure 3The buffer part 4 is circular and surrounds the massage mechanism 2.
[0131] By making the buffer part 4 annular and surrounding the massage mechanism 2, the massage mechanism 2 can be completely surrounded by the buffer part 4, making it more difficult for the vibration of the massage mechanism 2 to be transmitted to the control mechanism 3.
[0132] In some embodiments, see Figure 2 and Figure 3 The buffer section 4 is positioned closer to the massage mechanism 2 than the control mechanism 3.
[0133] By positioning the buffer 4 closer to the massage mechanism 2 than the control mechanism 3, the vibrations of the massage mechanism 2 can be absorbed by the buffer 4 as soon as they are emitted, instead of being transmitted through the housing 11. This effectively prevents resonance between the housing 11 and the massaged area M, thereby enhancing the massage experience of the massage device 100.
[0134] In some embodiments, the buffer portion 4 described above is a silicone buffer portion. Since silicone buffer portions are inexpensive and highly durable, the cost of the massage device 100 can be reduced while its durability can be improved.
[0135] Of course, the buffer part 4 can also be a sponge buffer part, a rubber buffer part, or a latex buffer part, etc., and this embodiment does not limit it.
[0136] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
Claims
1. A massage device (100), characterized in that, include: Wearing shell (1), the wearing shell (1) is used to be worn on the part (M) to be massaged; Massage mechanism (2), said massage mechanism (2) being disposed on the wearing shell (1); and, A control mechanism (3) is disposed on the wearing shell (1) and spaced apart from the massage mechanism (2). The control mechanism (3) is electrically connected to the massage mechanism (2) and is used to control the movement of the massage mechanism (2). A buffer portion (4) is formed in the wearing shell (1) between the control mechanism (3) and the massage mechanism (2).
2. The massage device (100) according to claim 1, characterized in that The buffer section (4) includes a pleated structure (41).
3. The massage device (100) according to claim 2, characterized in that The wearing shell (1) includes a shell (11) and the pleated structure (41). The shell (11) is worn on the part to be massaged (M). The control mechanism (3) is disposed on the shell (11). The pleated structure (41) is connected between the shell (11) and the massage mechanism (2).
4. The massage device (100) according to claim 3, characterized in that: The maximum thickness of the pleated structure (41) along the thickness direction of the shell (11) is H, 3mm≤H≤9mm; And / or, The maximum width of the pleated structure (41) located between the housing (11) and the massage mechanism (2) along the direction of extension of the surface of the housing (11) is K, where 8mm≤K≤16mm.
5. The massage device (100) according to claim 3, characterized in that The massage mechanism (2) includes a maximum massage point (21) and a minimum massage point (22) along the thickness direction of the housing (11). The pleated structure (41) includes a maximum pleated point (411) and a minimum pleated point (412) along the thickness direction of the housing (11). The maximum pleated point (411) is located between the maximum massage point (21) and the minimum massage point (22) along the thickness direction of the housing (11). The minimum pleated point (412) protrudes from the minimum massage point (22) along the thickness direction of the housing (11) and faces the part to be massaged (M).
6. The massage device (100) according to claim 5, characterized in that The distance between the lowest end of the fold (412) along the thickness direction of the shell (11) and the lowest end of the massage (22) is L, where 0 < L ≤ 5 mm.
7. The massage device (100) according to any one of claims 3-6, characterized in that, The fold structure (41) includes: The first vertical wall (413) is disposed in accordance with the outer peripheral wall of the massage mechanism (2); A first transverse wall (414), the first transverse wall (414) being connected to the first vertical wall (413) and extending in a direction away from the first vertical wall (413); and, The second vertical wall (415) is connected to the first horizontal wall (414) and forms a first buffer gap (416) with the first vertical wall (413) at a distance. The shell (11) is connected to the second vertical wall (415).
8. The massage device (100) according to claim 7, characterized in that, The first buffer slit (416) has a first opening (4161) that is vertically opposite to the first transverse wall (414) along the first vertical wall (413), and the first opening (4161) faces the side of the wearing housing (1) away from the massage area (M).
9. The massage device (100) according to claim 8, characterized in that The folded structure (41) also includes: The second transverse wall (417) is connected to the second vertical wall (415); and, The third vertical wall (418) is connected to the second horizontal wall (417) and is spaced apart from the second vertical wall (415) to form a second buffer gap (419), and the housing (11) is connected to the third vertical wall (418).
10. The massage device (100) according to claim 9, characterized in that The first vertical wall (413) is parallel to the second vertical wall (415), and / or the third vertical wall (418) is parallel to the second vertical wall (415).
11. The massage device (100) according to claim 9, characterized in that The width of the second buffer gap (419) is equal to the width of the first buffer gap (416), or the width of the second buffer gap (419) is less than the width of the first buffer gap (416).
12. The massage apparatus (100) according to claim 9, characterized in that, The second buffer gap (419) has a second opening (4191) that is vertically opposite to the second transverse wall (417) along the first vertical wall (413), and the orientation of the second opening (4191) is opposite to the orientation of the first opening (4161).
13. The massage apparatus (100) according to claim 9, characterized in that, The second transverse wall (417) protrudes from the housing (11).
14. The massage apparatus (100) according to claim 9, characterized in that, The first transverse wall (414) has an arc-shaped cross-section, and / or the second transverse wall (417) has an arc-shaped cross-section.
15. The massage device (100) according to any one of claims 1-6 or 8-14, characterized in that, The buffer (4) is arranged at least partially around the massage mechanism (2).
16. The massage device (100) according to claim 15, characterized in that The buffer part (4) is circular and surrounds the massage mechanism (2).
17. The massage device (100) according to any one of claims 1-6 or 8-14, characterized in that, The buffer section (4) is positioned closer to the massage mechanism (2) than the control mechanism (3).
18. The massage device (100) according to any one of claims 1-6 or 8-14, characterized in that, The buffer part (4) is a silicone buffer part.