Wearable assembly and wearable device
By using insulating components in smartwatches or fitness trackers to create channels through skin contact, the poor breathability of silicone or fluoroelastomer straps is solved, resulting in better sweat wicking and user experience.
Patent Information
- Application Number
- CN202520046849.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-08
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-01-08
AI Technical Summary
Existing smartwatches or smart bands use silicone or fluoropolymer straps that come into close contact with the skin, making it difficult to wick away sweat, affecting breathability, and easily causing bacterial growth, skin itching, and allergies, thus reducing the user experience.
The device uses an isolation component that comes into contact with human skin to form a channel for airflow exchange, reducing the direct contact area with the skin. It also improves airflow through multiple channels and pores, and designs a biomimetic plush structure to enhance breathability.
It improves the speed and ability of sweat wicking, enhances the user's wearing experience, reduces the risk of skin itching and allergies, and improves the aesthetics and comfort of wearable components.
Smart Images

Figure CN223799396U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] Embodiments of the present application relate to the field of wearable devices, and particularly relate to a wearable assembly and a wearable device. BACKGROUND
[0002] With the development of Internet technology and intelligent products, various intelligent wearable products have appeared on the market, such as smart watches, smart bracelets, smart glasses, smart rings, etc., and the wearing comfort and air permeability of the wearable products directly affect the user's experience.
[0003] Taking a smart watch or a smart bracelet as an example, the smart watch or the smart bracelet as a common intelligent wearable product brings convenience to users. In the related art, the smart watch or the smart bracelet is made of silicone or fluorine glue material to form a watchband for users to wear.
[0004] However, the watchband made of silicone or fluorine glue material is easy to be in close contact with the user's skin, affecting the perspiration effect, causing the user's skin to be unable to exchange air with the outside world, and the sweat on the surface being unable to be discharged, resulting in bacterial breeding, and further causing the user to feel uncomfortable and even skin itching and allergy, seriously affecting the user's wearing experience. CONTENT OF THE UTILITY MODEL
[0005] The present application provides a wearable assembly and a wearable device, which can reduce the contact area between the wearable assembly and the user's skin when the user wears it, improve the convection of the skin and the outside air, and improve the perspiration effect.
[0006] To achieve the above-mentioned purpose, the present application adopts the following technical solutions:
[0007] In a first aspect, the present application provides a wearable assembly, which comprises a first band body and an isolation assembly, the first band body has a first inner surface, and the isolation assembly is arranged on the first inner surface. The isolation assembly is used to contact the human skin to form a channel between the first inner surface and the human skin, and the channel can exchange air with the outside air.
[0008] The wearable assembly of the embodiments of the present application, when the user wears the wearable assembly, the first inner surface cannot directly adhere to the human skin, but directly adheres to the human skin through the protruding isolation assembly, that is, the isolation between the first inner surface and the human skin is realized through the isolation assembly, avoiding the difficulty of air permeation and perspiration caused by the close adhesion of the first inner surface to the human skin. The air exchange between the skin and the outside air is realized through the channel formed between the isolation assembly and the human skin. Compared with the traditional wearable assembly made of silicone or fluorine glue, the contact area between the wearable assembly and the human skin is greatly reduced when wearing, the convection of the skin and the outside air is fully sufficient, the perspiration speed and capacity are greatly improved, and thus the consumer wearing experience is improved.
[0009] In a possible implementation manner of the first aspect, the first band body includes a first outer surface opposite to the first inner surface. Since the wearing assembly of the embodiment of the present application is provided with the isolation assembly on one side of the first inner surface, the formation of the first outer surface is not affected, that is, after the isolation assembly is connected and fixed with the first inner surface, a series of post-processing can be performed on the first outer surface, such as activation treatment, hand feel oil spraying and the like on the surface of the first outer surface, or a personalized appearance surface forming the first outer surface is set according to the user demand, pattern silk printing and pad printing and the like are performed, and the overall aesthetic appearance of the wearing assembly is improved. The user experience is further improved.
[0010] In a possible implementation manner of the first aspect, the channel includes a plurality of channels, and the plurality of channels extend along at least two different directions. In this way, after the wearing assembly is worn on the human body, the plurality of channels can be in convection with the external air along a plurality of different directions, and the perspiration rate of the skin is further improved.
[0011] In a possible implementation manner of the first aspect, the first band body has a through hole penetratingly opened along the thickness direction of the first band body, and the channel is in communication with the through hole. The air in the channel can also exchange air flow with the external air through the through hole. In this way, after the wearing assembly is worn on the human body, the external air can not only flow and exchange air flow along the direction parallel to the thickness direction of the first band body, but also exchange air flow with the air in the channel along the thickness direction of the first band body through the through hole, so that the smoothness of the skin and the external air convection is further improved.
[0012] In a possible implementation manner of the first aspect, the first inner surface includes a first region and a second region, the first region is recessed toward the first outer surface relative to the second region, and the isolation assembly is arranged in the first region and protrudes from the second region. In this way, the first region and the second region are not arranged in the same plane, the first region is arranged at the bottom wall of the groove, and the opening of the groove is coplanar with the second region. In this way, after the wearing assembly is worn on the human body, the first region and the second region do not contact the human skin, and at the same time, the formation of the groove of the first region can also provide a certain ventilation and perspiration space, so as to further improve the perspiration speed and capacity.
[0013] In a possible implementation manner of the first aspect, the second region is arranged around the outer periphery of the first region. In this way, the second region is also arranged around the outer periphery of the isolation assembly, and the external air can flow through the second region, the first region into the channel, and then flow through the channel and the second region to be discharged to the outside. In this way, the external air can exchange air flow with a large area of the first inner surface, and the situation that the local perspiration effect is poor due to the poor local convection effect is avoided.
[0014] In a possible implementation manner of the first aspect, the isolation component includes a plurality of spaced-apart isolation bodies, and two adjacent isolation bodies are spaced apart, so that the plurality of isolation bodies are spaced apart. In this way, a plurality of fluffs protruding relative to the first belt body are formed by the plurality of isolation bodies, and the first belt body and the plurality of isolation bodies form a biomimetic fluff design, so as to increase the air permeation effect between the human skin and the external air after the wearing component is worn.
[0015] Further, the channels are formed between the spaced-apart isolation bodies, and each channel is formed by at least two spaced-apart isolation bodies, that is, the gap between each two isolation bodies can be the channel itself or a part of the channel. In this way, the external airflow flows through the outer peripheral wall of each isolation body and can spread in all directions and quickly flow out from the first belt body to the external environment between the human skin and the external air, so that the human skin and the external air are in sufficient convection, to improve the perspiration speed.
[0016] In a possible implementation manner of the first aspect, the density of the isolation bodies per unit area is equal, where the density of the isolation bodies per unit area is equal refers to that the size, quantity, dimension, and spacing between adjacent isolation bodies and the like parameters per unit area are equal, that is, the isolation component includes only one type of isolation body and the isolation bodies are uniformly arranged on the first inner surface. In this way, when the user wears the wearing component, the contact area of the isolation bodies per unit area with the human skin is equal, and the abutting force between the isolation bodies in different regions and the human skin is balanced, so that the abutting force in different regions of the isolation component is not different, and the situation that the local deformation of the isolation bodies is too large to affect the convection and air permeation effect of the channel does not occur.
[0017] In a possible implementation manner of the first aspect, the plurality of isolation bodies are arranged in a matrix. In this case, the plurality of isolation bodies can be uniformly and regularly arranged along two mutually perpendicular directions, such as a first direction and a second direction perpendicular to the first direction. In this way, the channels can extend linearly along the first direction or the second direction, or the channels can extend in a zigzag manner along the first direction and the second direction, and the uniform arrangement of the isolation bodies per unit area is formed.
[0018] In a possible implementation manner of the first aspect, the isolation body has a contact surface on the side away from the first inner surface. That is, the top end of the isolation body is not provided in a pointed manner, and the isolation body is not provided in a conical manner. In this way, the contact surface is in contact with the human skin, the face contact between the isolation body and the human skin is formed, the stress pressure of the contact surface is reduced, the situation that the top end of the isolation body is easily deformed is avoided, and the comfort of the user after wearing the wearing component is ensured.
[0019] In a possible implementation manner of the first aspect, the spacer includes a connecting end and a free end opposite to each other in the axial direction, and an area of the connecting end in the orthogonal projection on the reference plane is greater than or equal to an area of the free end in the orthogonal projection on the reference plane, the reference plane being perpendicular to the axial direction of the spacer. In this way, the spacer is arranged in a manner that the cross-sectional area of the connecting end is greater than the cross-sectional area of the free end, so that the root of the spacer has a relatively large size and a relatively stable structure, and the tip has a relatively small size, thereby increasing the flow space in the channel.
[0020] In a possible implementation manner of the first aspect, the area of the connecting end in the orthogonal projection on the reference plane gradually decreases from the connecting end to the free end in the axial direction of the spacer. In this way, the free end forms the minimum cross-sectional area of the spacer, and the connecting end forms the maximum cross-sectional area of the spacer, so that the spacer can be in a frustoconical shape or a truncated pyramid shape, and the structure of the spacer is uniformly distributed, the stress is uniformly distributed, and local deformation is less likely to occur.
[0021] In a possible implementation manner of the first aspect, the spacer includes a first portion and a second portion arranged in the axial direction, a stepped surface is formed between the first portion and the second portion, the connecting end is formed on a side of the first portion away from the second portion, the free end is formed on a side of the second portion away from the first portion, and an area of the first portion in the orthogonal projection on the reference plane is greater than an area of the second portion in the orthogonal projection on the reference plane. In this way, the spacer is arranged in a manner that the first portion and the second portion are connected, and the size of the spacer changes at the stepped surface, so that the root of the spacer has a relatively large size and a relatively stable structure, and the tip has a relatively small size, thereby increasing the flow space in the channel.
[0022] In a possible implementation manner of the first aspect, the area of the connecting end in the orthogonal projection on the reference plane is greater than or equal to 0.07 mm2 and less than or equal to 3.14 mm2, so as to ensure that the root strength of the spacer is sufficient and the overall size of the spacer is not excessively large.
[0023] In a possible implementation manner of the first aspect, a spacing between each two adjacent spacers is greater than or equal to 0.2 mm and less than or equal to 1.5 mm. The spacing between the two spacers refers to the minimum distance of a connecting line between the outer edges of the two spacers. In this way, the arrangement density of the plurality of spacers is ensured to be neither excessively sparse nor excessively dense, and the ventilation and sweat removal effect is improved.
[0024] In a possible implementation manner of the first aspect, a size of the spacer in the axial direction is greater than or equal to 0.3 mm and less than or equal to 2 mm. In this way, the channel can have sufficient space for air exchange, and the deformation of the spacer in the axial direction is avoided.
[0025] In a possible implementation manner of the first aspect, the first band and the isolation component can be an integral structure, so as to improve the structural strength of the wearable component and reduce the molding difficulty. For example, the plurality of isolation bodies and the first band can be formed by high-temperature vulcanization molding using a solid silicone, a fluorine glue, or a rubber-based elastomer such as ethylene propylene dene monomer (EPDM). The mold used in the high-temperature vulcanization molding is simple and has a low cost, and the low-cost batch production can be realized. Alternatively, the plurality of isolation bodies and the first band can be formed by injection vulcanization molding using a liquid silicone, a thermoplastic urethane (TPU), or a high-flow elastomer. The injection vulcanization molding has high molding size precision, can realize integral molding of some complex structures, and can realize rapid batch production. Alternatively, the plurality of isolation bodies and the first band can be formed by 3D printing using a solid silicone, a fluorine glue, or the like. The 3D printing does not need to open a mold, and can realize rapid trial production.
[0026] In a second aspect, the present application provides a wearable device including the wearable component in any of the above embodiments.
[0027] In a possible implementation manner of the second aspect, the wearable device further includes a device main body, and the device main body is connected with the wearable component. When the wearable device is a smart watch, the device main body is a watch device. When the wearable device is another device, for example, when the wearable device is a smart glasses, the device main body can include a frame and a lens. The device main body is connected with the wearable component, the wearable component is used to wear the device main body on a human body, and the device main body is used to realize the main function of the wearable device.
[0028] In a possible implementation manner of the second aspect, the wearable device further includes a second band, the device main body is located between the first band and the second band, and the second band is detachably connected with the first band.
[0029] In a possible implementation manner of the second aspect, the second band has a second inner surface and a second outer surface oppositely arranged in a thickness direction of the second band. The second inner surface is located on the same side as the first inner surface, and the second inner surface and the first inner surface are both attached to the skin of the human body when the user wears the wearable device. At this time, the isolation component can also be arranged on the second inner surface, so that the air permeability and sweat discharge effect between the first band and the skin of the human body and between the second band and the skin of the human body are both enhanced.
[0030] The technical effects brought by any design manner of the second aspect can be referred to the technical effects brought by different design manners of the first aspect, which will not be repeated here. BRIEF DESCRIPTION OF DRAWINGS
[0031] Figure 1 Structure diagram of wearable device provided for some embodiments of the present application;
[0032] Figure 2 Structure diagram of wearable device provided for some embodiments of the present application; Figure 1 Structure diagram of wearable device provided for some embodiments of the present application;
[0033] Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0034] Figure 4 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0035] Figure 5 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0036] Figure 6 Structure diagram of wearable device provided for some embodiments of the present application; Figure 5 Structure diagram of wearable device provided for some embodiments of the present application;
[0037] Figure 7 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0038] Figure 8 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0039] Figure 9 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0040] Figure 10 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0041] Figure 11 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0042] Figure 12 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0043] Figure 13 Structure diagram of wearable device provided for some embodiments of the present application; Figure 3 Structure diagram of wearable device provided for some embodiments of the present application;
[0044] Figure 14 Structure diagram of wearable device provided for some embodiments of the present application;
[0045] Figure 15 For Figure 14 A second strap of the wearable device is shown in a plan view.
[0046] Reference signs:
[0047] 100, wearable device;
[0048] 10, wearing assembly;
[0049] 11, first strap; 111, first locking portion;
[0050] 112, first inner surface; 112a, first area; 112b, second area; 113, first outer surface; 114, through hole;
[0051] 12, second strap; 121, second locking portion; 122, second inner surface; 123, second outer surface;
[0052] 13, isolation assembly; 131, isolation body; 1311, connecting end; 131a, connecting face; 1312, free end; 131b, contact face; 1313, first portion; 1314, second portion; 1315, step face; 14, channel; 14a, top wall; 14b, first side wall; 14c, second side wall; 14d, first opening;
[0053] 20, device body; 21, body shell;
[0054] L1, first direction; L2, second direction; L3, thickness direction. DETAILED DESCRIPTION
[0055] The technical solutions in the embodiments of the present application will be described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all the embodiments.
[0056] In the embodiments of the present application, the term "exemplary" or "for example" is used to indicate an example, illustration or description. Any embodiment or design scheme described as "exemplary" or "for example" in the embodiments of the present application should not be interpreted as more preferred or more advantageous than other embodiments or design schemes. Rather, the term "exemplary" or "for example" is intended to present the relevant concept in a specific manner.
[0057] In the embodiments of the present application, the terms "first", "second" are used for description purposes only, and should not be interpreted or implied to indicate or imply relative importance or implicitly indicate the number of the indicated technical features. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features.
[0058] In the description of the embodiments of the present application, "and / or" is only a description of the association relationship of the associated objects, which means that there can be three relationships, for example, A and / or B can represent: A exists alone, A and B exist together, and B exists alone. In addition, the character " / " in the present application generally represents that the front and rear associated objects are in an "or" relationship.
[0059] In the embodiments of the present application, the orientation terms such as "outside" can include but are not limited to the orientation defined by the relative position of the components shown in the drawings. It should be understood that these directional terms can be relative concepts, which are used for relative description and clarification, and can be changed accordingly according to the change of the position of the components shown in the drawings.
[0060] In the description of the embodiments of the present application, it should be noted that, unless otherwise explicitly specified and limited, the terms "mounting", "connecting", "connection" should be understood in a broad sense, for example, "connection" can be detachable connection, or can be non-detachable connection; can be direct connection, or can be indirect connection through intermediate medium. Among them, "fixed connection" means that the relative position relationship after connection is unchanged.
[0061] In the description of the embodiments of the present application, the terms "vertical", "parallel" include the described cases and the cases similar to the described cases, which are within the acceptable deviation range, wherein the acceptable deviation range is determined by the ordinary skilled in the art considering the measurement being discussed and the error related to the measurement of the specific quantity (i.e. the limitation of the measurement system). For example, "parallel" includes absolute parallel and approximate parallel, wherein the acceptable deviation range of approximate parallel can be within 5°, 8° or 10°, for example; "vertical" includes absolute vertical and approximate vertical, wherein the acceptable deviation range of approximate vertical can also be within 5°, 8° or 10°, for example.
[0062] The present application provides a wearable device, which can be a watch, a smart watch, a bracelet, a smart bracelet, a ring, a smart ring, augmented reality (AR) glasses, an AR helmet, virtual reality (VR) glasses, a VR helmet, or a medical electronic health detection device for detecting health indicators (such as heart rate, blood pressure, blood oxygen, blood sugar, etc.). Wearable electronic products, such as wearable devices, adopt wearing components to realize fixation with the human body. For example, smart watches, bracelets, smart bracelets, etc. are fixed on the arm through wearing components, smart rings are fixed on the fingers through wearing components, etc., to realize the wearable function of wearable devices.
[0063] The wearable assembly and the wearable device provided in the embodiments of the present application can not only provide the wearing function of a conventional wearable device, but also can form a channel for air exchange with the outside air between the wearable assembly and the human skin after the user wears the wearable device, so as to improve the poor perspiration effect of the user after wearing the wearable device and improve the user experience.
[0064] Please refer to Figure 1 , Figure 1 The structural schematic diagram of the wearable device 100 provided in some embodiments of the present application is shown. In the present embodiment and the following embodiments, the wearable device 100 is exemplarily described as a watch, which cannot be considered as a special limitation to the structure of the wearable device 100. Alternatively, the watch is a smart watch.
[0065] Please refer to Figure 1 The wearable device 100 includes a wearable assembly 10 and a device main body 20. In the smart watch of the present embodiment, the device main body 20 is a watch device. In other embodiments, when the wearable device 100 is other devices, such as when the wearable device 100 is smart glasses, the device main body 20 can be composed of a rim and a lens. In some other embodiments, the wearable device 100 can also not include the device main body 20, which is not limited in the present application.
[0066] Please continue to refer to Figure 1 The device main body 20 is connected with the wearable assembly 10. The wearable assembly 10 is used to wear the device main body 20 on the human body, and the device main body 20 is used to realize the main function of the wearable device 100. The device main body 20 can include a main body shell 21, a main board and a battery. When the user wears the wearable device 100, the bottom of the main body shell 21 can face or contact the human skin. The battery and the main board can be arranged in the main body shell 21.
[0067] The wearable assembly 10 and the device main body 20 can form a detachable connection, so that the device main body 20 can be conveniently detached from the wearable assembly 10 for maintenance, replacement of the wearable assembly 10 and other operations. In some embodiments, please refer to Figure 1 and Figure 2 , Figure 2 The structural schematic diagram of the wearable device 100 in the wearing state is shown in Figure 1 The wearable assembly 10 includes a first band body 11 and a second band body 12. One end of the first band body 11 and one end of the second band body 12 are respectively connected to the opposite ends of the device main body 20. The first band body 11 can be provided with a first locking part 111, and the second band body 12 can be provided with a second locking part 121. The first locking part 111 and the second locking part 121 are detachably locked with each other, such as Figure 2, and the second band 12 and the first band 11 are detachably connected to form a detachable connection of the device body 20 and the wearable assembly 10.
[0068] The cooperating structure formed by the first locking part 111 and the second locking part 121 can be a hook, a snap, a butterfly buckle, a belt buckle, a folding safety buckle, a folding buckle, or a needle buckle, and the present application does not make a specific limitation thereon. It can be understood that in other embodiments, the first band 11 and the second band 12 can also be an integral structure.
[0069] In order to meet the needs of users to replace the wearable assembly 10 based on different use scenarios, in some embodiments, the wearable assembly 10 is detachably connected with the device body 20. Specifically, at least one of the first band 11 and the second band 12 is detachably connected with the device body 20. That is, one of the first band 11 and the second band 12 can be detachably connected with the device body 20. Alternatively, both the first band 11 and the second band 12 can be detachably connected with the device body 20. In this way, the user can replace the wearable assembly 10 with a specific appearance effect according to different seasons, different outfits, and different moods, and the user can also replace the wearable assembly 10 that is more comfortable according to different use scenarios. For example, the user can replace the wearable assembly 10 with good waterproof performance when swimming, and replace the wearable assembly 10 made of nylon material to improve the air permeability when exercising. If the wearable assembly 10 also carries the detection function of health indicators, the user can also replace the wearable assembly 10 with the corresponding detection function according to specific detection needs.
[0070] In other embodiments, the wearable assembly 10 can also include a third band (not shown in the drawings) connected between the first band 11 and the second band 12 and forming a mounting cavity, and the device body 20 is detachably arranged in the mounting cavity and detachably connected with the third band, so that the device body 20 and the wearable assembly 10 are also detachably connected. Figure 1 and Figure 2 In other embodiments, the wearable assembly 10 can also include a third band (not shown in the drawings) connected between the first band 11 and the second band 12 and forming a mounting cavity, and the device body 20 is detachably arranged in the mounting cavity and detachably connected with the third band, so that the device body 20 and the wearable assembly 10 are also detachably connected.
[0071] In some embodiments, the wearable assembly 10 is made of silicone or fluorine glue. The wearable assembly 10 formed by silicone or fluorine glue has good wear resistance, waterproofness, and elasticity, can tightly fit the human skin, and provides a stable wearing experience. However, the wearable assembly 10 formed by silicone or fluorine glue has poor air permeability, and the user may feel not breathable or have red marks after wearing for a long time. The sweat on the surface of the skin cannot be discharged in time, and bacteria breeding can cause more serious symptoms such as skin itching and allergy, which seriously affects the wearing experience of the user.
[0072] Based on this, this application provides a wearable device 100 that can reduce the contact area between the wearable component 10 and the user's skin when worn, improve the convection between the skin and the outside air, and enhance the perspiration effect. Please refer to [link to relevant documentation]. Figure 3 , Figure 3 This is a schematic diagram of the structure of a wearable component 10 provided in some embodiments of this application. The wearable component 10 includes a first strap 11 and an isolation component 13. In this embodiment, the first strap 11 may be... Figure 1 and Figure 2 The first belt 11 in the illustrated embodiment can also be the second belt 12, or it can be an integrated structural component formed by the first belt 11 and the second belt 12. This application does not impose any limitations here; for ease of explanation, it is used as... Figure 3 The first belt 11 in the illustrated embodiment is Figure 1 The first strip 11 in the illustrated embodiment is used as an example for explanation, but this should not be construed as a limitation of this application.
[0073] Understandable, Figure 3 The wearable component 10 is shown only schematically; the actual shape, size, location, and construction of these components are not subject to change. Figure 3 Restrictions.
[0074] For details, please refer to the following: Figure 3 and Figure 4 , Figure 4 for Figure 3 The schematic diagram of the side structure of the wearable component 10 shows that the first strap 11 has a first inner surface 112 and a first outer surface 113 arranged opposite to each other. When the wearable component 10 is worn on the human body, the first inner surface 112 faces the skin of the wearer, and the first outer surface 113 faces away from the skin of the wearer. An isolation component 13 is disposed on the first inner surface 112, and the isolation component 13 protrudes from the first inner surface 112 away from the first outer surface 113 and is used to contact the human skin. In this way, when the user wears the wearable component 10, the first inner surface 112 cannot directly adhere to the human skin, but directly adheres to the human skin through the protruding isolation component 13. That is, the isolation component 13 achieves isolation between the first inner surface 112 and the human skin, avoiding the difficulty of breathability and perspiration caused by the first inner surface 112 being tightly attached to the human skin.
[0075] Please refer to the following: Figure 3 and Figure 5 , Figure 5 for Figure 3 The enlarged structural diagram at point A shows that the isolation component 13 contacts human skin and forms a channel 14 between the first inner surface 112 and the human skin. This channel 14 communicates with the outside air to facilitate airflow exchange between the human skin and the outside air.Figure 5 The dashed lines in the diagram schematically delineate the two sides of channel 14; however, these dashed lines do not actually exist within the wearable component 10. The same interpretation applies to dashed lines on other components described later, and will not be elaborated upon further.
[0076] Specifically, the isolation component 13 and the first inner surface 112 at least surround the two sidewalls forming the channel 14. For example, please refer to [reference needed]. Figure 5 and Figure 6 , Figure 6 for Figure 5 The diagram shows the enclosure structure of the channel 14 of the wearable component 10. Based on the first inner surface 112 as the top wall 14a, the isolation component 13 can form a first side wall 14b and a second side wall 14c. The first side wall 14b and the second side wall 14c are connected to the top wall 14a and are spaced apart. At this time, the top wall 14a, the first side wall 14b, and the second side wall 14c form a three-sided enclosure, and the channel 14 is enclosed inside. Furthermore, a first opening 14d is formed on the opposite side of the top wall 14a, and second openings are formed at both ends of the channel 14 in the longitudinal extension direction. Figure 6 (not shown in the image) and the third opening ( Figure 6 (Not shown in the image).
[0077] When the wearable component 10 is not worn on the human body, the channel 14 can communicate with the outside air at least through the first opening 14d, the second opening, and the third opening. When the wearable component 10 is worn on the human body, the sides of the first sidewall 14b and the second sidewall 14c away from the top wall 14a are in contact with the human skin. That is, the human skin closes the first opening 14d and faces the top wall 14a. At this time, the channel 14 is located between the first inner surface 112 (that is, the top wall 14a) and the human skin. The channel 14 can communicate with the outside air at least through the second opening and the third opening. That is, the airflow in the air can exchange airflow with the channel 14 to achieve functions such as breathability and perspiration of the human skin.
[0078] In this way, when the consumer wears the wearable component 10, the first inner surface 112 of the first band 11 does not come into contact with the human skin, but comes into contact with the human skin through the isolation component 13, and air exchange between the skin and the outside air is achieved through the channel 14 formed between the isolation component 13 and the human skin. Compared with Figure 1 or Figure 2 The wearable component 10 formed from conventional silicone or fluoropolymer in the illustrated embodiment significantly reduces the contact area between the wearable component 10 and the human skin when worn, allowing for sufficient air circulation between the skin and the outside environment, and greatly improving the speed and capacity of sweating, thereby improving the consumer's wearing experience.
[0079] And, the wearing assembly 10 of the embodiment of the present application is provided with the isolation assembly 13 on one side of the first inner surface 112, which does not affect the formation of the first outer surface 113, that is, after the isolation assembly 13 is connected and fixed with the first inner surface 112, a series of post-processing can be performed on the first outer surface 113, such as activation treatment (UV modification) on the surface of the first outer surface 113, hand feel oil spraying, etc., or setting up a personalized appearance surface of the first outer surface 113 according to the user's needs, silk printing and pad printing, etc., to improve the overall aesthetics of the wearing assembly 10 and further improve the user experience.
[0080] In some embodiments, please refer to Figure 5 , the plurality of channels 14 extend in at least two different directions, so that after the wearing assembly 10 is worn on the human body, the plurality of channels 14 can be in convection with the external air in multiple different directions, further improving the perspiration rate of the skin.
[0081] The longitudinal extension direction of the first belt body 11 is the first direction L1, the first belt body 11 also has a second direction L2 intersecting with the first direction L1, and the first direction L1 and the second direction L2 are both perpendicular to the thickness direction L3 of the first belt body 11. The plurality of channels 14 can extend in multiple directions along the first direction L1 and multiple different second directions L2 to realize multi-directional air convection and perspiration. It can be understood that the second direction L2 is not a single direction, but a general term for all directions intersecting with the first direction L1. For example, as shown in Figure 5 , the second direction L2 can be perpendicular to the first direction L1, and at this time the first direction L1 is parallel to the width direction of the first belt body 11.
[0082] In some embodiments, please refer to Figure 4 and Figure 5 , the first belt body 11 has a through hole 114 opened through the thickness direction L3 thereof, and the channel 14 communicates with the through hole 114. It can be understood that the thickness direction L3 of the first belt body 11 penetrates the first inner surface 112 and the first outer surface 113, and the air in the channel 14 can also exchange air flow with the external air through the through hole 114. In this way, after the wearing assembly 10 is worn on the human body, the external air can not only flow and exchange air flow in the direction parallel to the thickness direction L3 of the first belt body 11, but also exchange air flow with the air in the channel 14 through the through hole 114 along the thickness direction L3 of the first belt body 11, which further improves the smoothness of the skin and the external air convection.
[0083] In some embodiments, the through hole 114 can include a plurality of through holes 114, and the plurality of through holes 114 can be arranged at intervals along the first direction L1, so that the skin and the external air are ventilated and ventilated from different positions of the first band 11. In addition, the through hole 114 can also form Figure 1 and Figure 2 The first locking part 111 and / or the second locking part 121 in the embodiment shown in the figure. For example, when the first band 11 is Figure 1 and Figure 2 The first band 11 in the embodiment shown in the figure, the through hole 114 forms the first locking part 111, and when wearing the wearable assembly 10, different through holes 114 are used according to the size of the wearing position of the human body, such as the thickness of the wrist, so as to realize the locking of the wearable assembly 10 and the human body.
[0084] In some embodiments, please refer to Figure 4 and Figure 7 , Figure 7 The planar structure schematic diagram of the wearable assembly 10 shown in Figure 3 The first inner surface 112 includes a first area 112a and a second area 112b, and the first area 112a is recessed towards the first outer surface 113 relative to the second area 112b. In this way, the first area 112a and the second area 112b are not coplanar, the first area 112a forms a groove, and the bottom wall of the groove is the first area 112a, and the opening of the groove is coplanar with the second area 112b.
[0085] The first area 112a and the second area 112b can both be flat surfaces, or both be uneven surfaces, or one be a flat surface and the other be an uneven surface. For example, as shown in Figure 3 The first area 112a has a certain curvature in part and is a flat surface in part, and the isolation assembly 13 is arranged in the first area 112a and protrudes from the first area 112a and the second area 112b. In this way, after the wearable assembly 10 is worn on the human body, the first area 112a and the second area 112b do not contact the human skin, and at the same time, the formation of the groove of the first area 112a can also provide a certain ventilation and perspiration space, thereby further improving the perspiration speed and capacity.
[0086] In some embodiments, the second area 112b can be arranged around the outer periphery of the first area 112a, so that the second area 112b is also arranged around the outer periphery of the isolation assembly 13. The external air can flow through the second area 112b, the first area 112a into the channel 14, and then flow through the channel 14, the second area 112b to the outside. In this way, the external air can exchange air flow with a large area of the first inner surface 112, avoiding the case that the local perspiration effect is poor due to the poor local convection effect.
[0087] In some embodiments, please refer to Figure 8 , Figure 8 for Figure 3 The diagram shows a partial structural representation of the isolation component 13 of the wearable component 10. The isolation component 13 includes multiple spaced-apart isolation bodies 131, with adjacent isolation bodies 131 spaced apart, thus ensuring that the multiple isolation bodies 131 are spaced apart from each other. In this way, the multiple isolation bodies 131 form multiple 3D fibers protruding relative to the first band 11. The first band 11 and the multiple isolation bodies 131 form a biomimetic fiber design to increase the breathability between the wearer's skin and the outside air after the wearable component is worn.
[0088] Channels 14 are formed between spaced-apart insulators 131. Each channel 14 is formed by at least two spaced-apart insulators 131. That is, the gap between any two insulators 131 can be the channel 14 itself or a part of the channel 14. In this way, external airflow flows through the outer peripheral wall of each insulator 131 and can diffuse in all directions, quickly flowing out from between the first strip 11 and the human skin to the outside, allowing sufficient convection between the human skin and the outside air to improve the perspiration rate.
[0089] Understandably, in some embodiments, the multiple channels 14 can be independent of each other, meaning that the multiple channels 14 do not share any parts, allowing each channel 14 to independently exchange air with the outside environment. In other embodiments, the multiple channels 14 may have overlapping parts, meaning that the multiple channels 14 may share some parts, such as... Figure 8 In the illustrated embodiment, the gap between any two adjacent insulators 131 can form a plurality of channels 14. This allows airflow to diffuse freely between the first strip 11 and the skin, enabling rapid and sufficient convection between the skin and the outside air to increase perspiration rate.
[0090] In other embodiments, the isolation component 13 may also be an integral structural component with multiple grooves formed on it to create channels 14, so as to realize air exchange with the outside. The specific structural form of the isolation component 13 is not limited here.
[0091] In some embodiments, the density of the isolators 131 per unit area is equal. Equal density means that the size, quantity, dimensions, and spacing between adjacent isolators 131 are all equal. That is, the isolation component 13 includes only one type of isolator 131, and the isolators 131 are evenly distributed on the first inner surface 112. Thus, when the user wears the wearable component 10, the contact area between the isolators 131 per unit area and the human skin is equal, and the contact force between the isolators 131 and the human skin in different areas is balanced. This prevents the isolation component 13 from having different contact forces in different areas due to local sparseness or uneven distribution of the isolators 131, thus avoiding excessive local deformation of the isolators 131 that could affect the convection and breathability of the channel 14.
[0092] In some embodiments, a large portion of the first inner surface 112 may form a first region 112a, for example, the area of the first region 112a may be more than 90% of the total area of the first inner surface 112. Multiple isolators 131 may be uniformly distributed over a large area within the first region 112a; for example, a large-area distribution of multiple isolators 131 may also mean that at least 90% of the area of the first region 112a is provided with isolators. This not only ensures the uniform distribution of the isolators 131 but also allows for a large-area coverage of the isolators 131 on the first inner surface 112, improving breathability while maintaining the aesthetics of the wearable component 10, avoiding the abrupt appearance caused by small areas of the isolators 131, and further enhancing the user experience.
[0093] For example, such as Figure 8 As shown, multiple isolators 131 are arranged in a matrix. These isolators 131 can be uniformly and regularly arranged along two mutually perpendicular directions, such as a first direction L1 and a second direction L2 perpendicular to the first direction L1. Thus, the channel 14 can extend linearly along either the first direction L1 or the second direction L2, or it can extend in a zigzag pattern along both directions, resulting in a uniform arrangement of isolators 131 per unit area.
[0094] In other embodiments, such as Figure 9 , Figure 9 for Figure 3The diagram shows an arrangement of the isolation components 13 in the wearable component 10. Multiple isolation bodies 131 can also be arranged in a staggered manner, forming a first type row and a second type row. The first type row may include multiple isolation bodies 131 spaced apart along a first direction L1, and the second type row may also include multiple isolation bodies 131 spaced apart along the first direction L1. The first and second type rows are arranged sequentially along a second direction L2, and the isolation bodies 131 in the first and second type rows are staggered along the second direction L2, thus forming a staggered arrangement of the multiple isolation bodies 131. Similarly, the channel 14 can extend linearly along the first direction L1 or the second direction L2, or it can extend in a zigzag pattern along the first direction L1 and the second direction L2, forming a uniform arrangement of the isolation bodies 131 per unit area.
[0095] In some embodiments, please refer to Figure 8 and Figure 9 The spacing d between any two adjacent isolators 131 can be greater than or equal to 0.2 mm and less than or equal to 1.5 mm. The spacing between two isolators 131 refers to the minimum linear distance between the outer edges of the two isolators 131. For example, d can be 0.2 mm, 0.3 mm, 1.4 mm, 0.5 mm, 0.6 mm, 0.7 mm, 0.8 mm, 0.9 mm, 1.0 mm, 1.1 mm, 1.2 mm, 1.3 mm, 1.4 mm, 1.5 mm, etc. This ensures that the arrangement density of multiple isolators 131 is neither too sparse nor too dense, thereby improving the ventilation and perspiration effect.
[0096] In other embodiments, the multiple isolation bodies 131 can also be deployed in other ways, and this application does not impose any restrictions on them.
[0097] Please refer to the following: Figure 7 and Figure 10 , Figure 10 for Figure 3 The diagram shows a schematic of the structure of an isolator 131 in the isolation component 13 of the wearable assembly 10. In some embodiments, the isolator 131 includes a connecting end 1311 and a free end 1312 opposite to each other in its axial direction. The isolator 131 is connected to a first inner surface 112 through one side of the connecting end 1311 and protrudes away from the first inner surface 112, forming the free end 1312 at its farthest end on its own axis. The free end 1312 is used to contact human skin.
[0098] In some embodiments, the axial direction of the isolator 131 may be perpendicular to the first inner surface 112 connected thereto; in other words, the axial direction of the isolator 131 may be perpendicular to the first region 112a connected thereto, such that the axial direction of the isolator 131 may be nearly parallel to the thickness direction L3 of the first belt 11. Thus, when a user wears the wearable component 10, the isolator 131 can contact the human skin at an angle nearly perpendicular to the human skin, avoiding an excessively large tilt angle relative to the human skin that would cause significant tilting under force, thereby ensuring the formation of the channel 14 and the air convection effect.
[0099] In some embodiments, the orthographic projection area of the connecting end 1311 on the reference plane is greater than or equal to the orthographic projection area of the free end 1312 on the reference plane. The reference plane is perpendicular to the axial direction of the isolator 131. It can be understood that when the axial direction of the isolator 131 is perpendicular to the first inner surface 112 connected to it, the first inner surface 112 is parallel to the reference plane. The orthographic projection areas of the connecting end 1311 and the free end 1312 on the reference plane determine the size of the cross-sectional area of the connecting end 1311 and the free end 1312, where the cross-section refers to the section of the isolator 131 perpendicular to its own axial direction. Thus, the configuration that the cross-sectional area of the connecting end 1311 is larger than the cross-sectional area of the free end 1312 results in a larger root dimension of the isolator 131, making the structure more stable, while the tip dimension is smaller, thereby increasing the flow space within the channel 14.
[0100] Please see Figure 10 and Figure 11 , Figure 11 for Figure 3 The schematic diagram of another isolator 131 in the isolation component 13 of the wearable component 10 is shown. Along the axial direction of the isolator 131, the connecting end 1311 includes a connecting surface 131a facing away from the free end 1312, and the free end 1312 includes a contact surface 131b facing away from the connecting end 1311. The isolator 131 can abut against the human skin through the contact surface 131b. The contact surface 131b can be a plane, a curved surface or other arbitrary shape. This application does not impose any restrictions, but it should be noted that the comfort of human touch needs to be considered when the contact surface 131b abuts against the human skin.
[0101] In some embodiments, the projected area on the reference plane from the connecting end 1311 to the free end 1312 gradually decreases. Thus, the free end 1312 forms the smallest cross-section of the isolator 131, and the connecting section forms the largest cross-sectional dimension of the isolator 131. At this time, the isolator 131 can be formed as follows: Figure 10 The frustum shape shown can also be formed as... Figure 11 The frustum shape shown makes the structure of the isolator 131 more uniform, the stress distribution more uniform, and less prone to local deformation.
[0102] Please refer to Figure 12 , Figure 12 For Figure 3 the structure diagram of another isolation body 131 in the isolation assembly 13 of the wearable assembly 10 shown in FIG. 13B, in some embodiments, the isolation body 131 includes a first portion 1313 and a second portion 1314 arranged in the axial direction thereof, a stepped surface 1315 is formed between the first portion 1313 and the second portion 1314, the connecting end 1311 is formed on the side of the first portion 1313 away from the second portion 1314, the free end 1312 is formed on the side of the second portion 1314 away from the first portion 1313, and the area of the orthographic projection of the first portion 1313 on the reference surface is greater than the area of the orthographic projection of the second portion 1314 on the reference surface. In this way, the isolation body 131 forms a dimensional mutation at the position of the stepped surface 1315 through the connection of the first portion 1313 and the second portion 1314. For example, the first portion 1313 can be a whole cylinder, the second portion 1314 can also be a whole cylinder, and the diameter of the first portion 1313 is greater than the diameter of the second portion 1314.
[0103] In other embodiments, the first portion 1313 and / or the second portion 1314 can also be a circular truncated cone or a prismatic truncated cone, which is not limited in the present application. In other embodiments, the first portion 1313 and the second portion 1314 can also not form a stepped surface 1315, please refer to Figure 13 , Figure 13 For Figure 3 the structure diagram of another isolation body 131 in the isolation assembly 13 of the wearable assembly 10 shown in FIG. 13B, in some embodiments, the isolation body 131 includes a first portion 1313 and a second portion 1314 arranged in the axial direction thereof, a stepped surface 1315 is formed between the first portion 1313 and the second portion 1314, the connecting end 1311 is formed on the side of the first portion 1313 away from the second portion 1314, the free end 1312 is formed on the side of the second portion 1314 away from the first portion 1313, and the area of the orthographic projection of the first portion 1313 on the reference surface is greater than the area of the orthographic projection of the second portion 1314 on the reference surface. In this way, the isolation body 131 forms a dimensional mutation at the position of the stepped surface 1315 through the connection of the first portion 1313 and the second portion 1314. For example, the first portion 1313 can be a whole cylinder, the second portion 1314 can also be a whole cylinder, and the diameter of the first portion 1313 is greater than the diameter of the second portion 1314.
[0104] In some embodiments, the area of the orthographic projection of the connecting end 1311 on the reference surface is greater than or equal to 0.07 mm2 and less than or equal to 3.14 mm2, that is, the area of the orthographic projection of the connecting surface 131a on the reference surface is greater than or equal to 0.07 mm2 and less than or equal to 3.14 mm2. For example, the area of the orthographic projection of the connecting end 1311 on the reference surface can be 0.07065 mm2, 0.1 mm2, 0.5 mm2, 1 mm2, 1.5 mm2, 2 mm2, 2.5 mm2, 3 mm2, etc.
[0105] In some embodiments, the connecting surface 131a can be circular, and the diameter of the connecting surface 131a is greater than or equal to 0.3 mm and less than or equal to 1 mm, for example, the diameter of the connecting surface 131a can be 0.3 mm, 0.4 mm, 0.5 mm, 0.6 mm, 0.7 mm, 0.8 mm, 0.9 mm, 1.0 mm, etc., so as to ensure that the root strength of the isolator 131 is sufficient while the overall size of the isolator 131 is not too large.
[0106] In addition, in some embodiments, the contact surface 131b of the isolator 131 away from the first inner surface 112 has an area greater than 0 in the normal projection on the reference surface, that is, the top end of the isolator 131 is not provided in a pointed manner, and the isolator 131 is not provided in a conical manner. In this way, by contacting the contact surface 131b with the human skin, a surface contact can be formed between the isolator 131 and the human skin, reducing the stress intensity of the contact surface 131b, avoiding the deformation of the top end of the isolator 131, and ensuring the comfort of the user after wearing the wearable assembly 10.
[0107] In some embodiments, referring to Figure 10 to Figure 13 In any of the embodiments, the size H of the isolator 131 in the axial direction is greater than or equal to 0.3 mm and less than or equal to 2 mm, that is, the vertical distance H between the contact surface 131b and the connecting surface 131a is greater than or equal to 0.3 mm and less than or equal to 2 mm. For example, H can be 0.3 mm, 0.5 mm, 1.0 mm, 1.5 mm, 2.0 mm, etc. In this way, it can not only ensure that the channel 14 has sufficient space to form and exchange air flow, but also avoid the deformation of the isolator 131 in the axial direction due to the excessive size.
[0108] In some embodiments, the first band 11 and the isolating assembly 13 can be an integral structure to improve the structural strength of the wearable assembly 10 and reduce the molding difficulty. For example, the plurality of isolators 131 and the first band 11 can be formed by high-temperature vulcanization molding using solid silicone, fluorine glue, or three-ethylene-propylene rubber, etc. The mold used in high-temperature vulcanization molding is simple and has low cost, and can realize low-cost mass production. Alternatively, the plurality of isolators 131 and the first band 11 can be formed by injection vulcanization using liquid silicone, thermoplastic polyurethane rubber, etc. This process has high molding size precision, can realize the one-piece molding of some complex structures, and can realize rapid mass production. Alternatively, the plurality of isolators 131 and the first band 11 can be formed by 3D printing using solid silicone, fluorine glue, etc. This process does not require mold opening and can realize rapid trial production.
[0109] It can be understood that when the first band body 11 and the isolation assembly 13 are an integral structure, the connecting surface 131a of the isolation body 131 does not exist in the actual structure, which is a virtual plane made at the connecting position of the isolation body 131 and the first band body 11.
[0110] The wearable assembly 10 of the embodiments of the present application can be applied to the wearable device 100 of any of the embodiments above. In some embodiments, please refer to Figure 14 , Figure 14 The partial structural schematic diagram of the wearable device 100 provided by some embodiments of the present application, the wearable device 100 further comprises a second band body 12, at this time, the first band body 11 is also the first band body 11 in the embodiment shown in Figure 1 , and the second band body 12 is also the second band body 12 in the embodiment shown in Figure 1 .
[0111] Please refer to Figure 14 and Figure 15 , Figure 15 for the planar structural schematic diagram of the second band body 12 of the wearable device 100 shown in Figure 14 , the second band body 12 has a second inner surface 122 and a second outer surface 123 oppositely arranged in the thickness direction L3 of the second band body 12, wherein the second inner surface 122 and the first inner surface 112 are towards the same side, and the second outer surface 123 and the first outer surface 113 are towards the same side. When the user wears the wearable device 100, the second inner surface 122 and the first inner surface 112 are both attached to the human skin, at this time, the isolation assembly 13 can also be arranged on the second inner surface 122, so that the air permeability and sweat discharge effect between the first band body 11 and the human skin, and between the second band body 12 and the human skin are both enhanced.
[0112] For the specific arrangement structure of the isolation assembly 13 on the second inner surface 122, please refer to the specific arrangement structure of the isolation assembly 13 on the first inner surface 112 above, which will not be described in detail here.
[0113] The wearable assembly 10 and the wearable device 100 of the embodiments of the present application are provided with the isolation assembly 13 on the side of the first inner surface 112 of the first band 11 facing the human skin, and the channel 14 capable of air flow exchange with the external air for ventilation and sweat removal is formed between the isolation assembly 13 and the first inner surface 112. In this way, when the consumer wears, the first inner surface 112 of the first band 11 does not contact the skin, and the skin is in partial contact with the skin through the isolation assembly 13, and the air exchange between the skin and the external air is realized through the channel 14 formed between the isolation assembly 13 and the first inner surface 112. Compared with the conventional wearable assembly 10 formed by silicone or fluorine rubber, the contact area between the wearable assembly 10 and the human skin is greatly reduced when worn, the skin external air convection is smooth and sufficient, and the sweat removal speed and capacity are greatly improved, thereby improving the wearing experience of the consumer.
[0114] In the description of the present specification, specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.
[0115] Finally, it should be pointed out that: the above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that: it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement for part of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A wearable assembly comprising: The wearable device comprises: a first band body having a first inner surface; an isolation assembly arranged on the first inner surface and protruding from the first inner surface, the isolation assembly being configured to contact the skin of a human body to form a channel between the first inner surface and the skin of the human body, the channel being capable of air exchange with the outside air.
2. The wearable assembly of claim 1, wherein, The channel comprises a plurality of channels extending in at least two different directions.
3. The wearing assembly according to claim 1 or 2, characterized in that, The first band body comprises a first outer surface opposite to the first inner surface, the first inner surface comprises a first region and a second region, the first region is recessed towards the first outer surface relative to the second region, and the isolation assembly is arranged on the first region and protrudes from the second region.
4. The wearing assembly according to any one of claims 1-3, characterized in that, The first band body has a through hole formed through the thickness of the first band body, and the channel is in communication with the through hole.
5. The wearing assembly according to any one of claims 1-4, characterized in that, The isolation assembly comprises a plurality of isolation bodies, and adjacent two isolation bodies are arranged at intervals.
6. The wearable assembly of claim 5, wherein, The density of the isolation bodies per unit area is equal.
7. The wearing assembly according to claim 5 or 6, characterized in that, The plurality of isolation bodies are arranged in a matrix.
8. The wearing assembly according to any one of claims 5-7, characterized in that, The side of the isolation body away from the first inner surface has a contact surface.
9. The wearing assembly according to any of claims 5-7, characterized in that, The isolation body comprises a connecting end and a free end opposite to each other in the axial direction of the isolation body, the area of the connecting end projected on a reference surface is greater than or equal to the area of the free end projected on the reference surface, and the reference surface is perpendicular to the axial direction of the isolation body.
10. The wearable assembly of claim 9, wherein, The area of the connecting end projected on the reference surface gradually decreases from the connecting end to the free end in the axial direction of the isolation body.
11. The wearable assembly of claim 9, wherein, The isolation body comprises a first portion and a second portion arranged in the axial direction of the isolation body, a stepped surface is formed between the first portion and the second portion, the connecting end is formed on the side of the first portion away from the second portion, and the free end is formed on the side of the second portion away from the first portion. The area of the first portion projected on the reference surface is greater than the area of the second portion projected on the reference surface.
12. The wearing assembly according to any one of claims 9-11, characterized in that, The area of the connecting end projected on the reference surface is greater than or equal to 0.07 mm2 and less than or equal to 3.14 mm2.
13. The wearing assembly according to any of claims 5-12, characterized in that, The distance between each adjacent two isolation bodies is greater than or equal to 0.2 mm and less than or equal to 1.5 mm.
14. The wearable assembly of any of claims 5-13, wherein, The size of the isolation body in the axial direction thereof is greater than or equal to 0.3 mm and less than or equal to 2 mm.
15. The wearable assembly of any one of claims 1-14, wherein, The first band body and the isolation assembly are an integral structure.
16. A wearable device, comprising: The wearable device comprises a wearing assembly, and the wearing assembly is the wearing assembly according to any one of claims 1-15.
17. The wearable device of claim 16, wherein, The wearable device further comprises a device body connected with the wearing assembly.
18. The wearable device of claim 17, wherein, The wearable device further comprises a second band body, the device body is located between the first band body and the second band body, and the second band body is detachably connected with the first band body.