Wearable component and wearable device

By designing a detachable covering layer on ear-hook headphones or hearing aids, the problem of dust accumulation and bacteria growth on the ear-hook surface is solved, the user experience and device aesthetics are improved, and the cleaning and maintenance process is simplified.

CN223428568UActive Publication Date: 2025-10-10IFLYTEK CO LTD
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Patent Information

Application Number
CN202422635678.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-10-10
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

After long-term wearing of existing ear-hook headphones or hearing aids, the ear hook surface is prone to dust accumulation and bacterial growth, and is difficult to clean, which affects the user experience.

Method used

A detachable covering layer is designed to cover the outer periphery of the wearable structure and is connected through notches or adsorption/snaps to facilitate cleaning or replacement, avoiding affecting the normal use of the audio output components and the main body components.

Benefits of technology

The ear hook surface can be easily cleaned, which improves the user experience and the aesthetics of the device, extends the service life and reduces maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electronic equipment, in particular to a wearable component and wearable equipment, and the wearable component comprises a wearable structure; the wearable device further comprises a wrapping layer, the wrapping layer can wrap at least part of the periphery of the wearable structure so that the wearable structure can be combined with the wrapping layer, and the wrapping layer can be detached relative to the wearable structure so that the wearable structure can be separated from the wrapping layer. The supporting strength is provided through the wearable structure, the wearable part is worn on the ear of the user, the coating layer makes contact with the ear of the user, the coating layer is detachable relative to the wearable structure, and the coating layer is not limited by the wearable structure and other parts connected to the wearable structure in the cleaning process by separating the coating layer from the wearable structure; the coating layer can be cleaned conveniently and thoroughly, the surface of the coating layer can be kept clean and tidy by replacing the coating layer, and the use experience of a user is improved.
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Description

Technical Field

[0001] The present application discloses the technical field of electronic equipment, and in particular, relates to a wearable component and a wearable device. Background Art

[0002] Currently, headphones or hearing aids are often worn by fixing them to the auricle using ear hooks. The ear hook structure can improve the wearing firmness of the sound amplifier or connect different components.

[0003] However, after being worn for a long time, the current ear hooks may accumulate dust, breed bacteria, and age on the surface. The surface of the ear hooks is difficult to clean, resulting in an unhygienic and unsightly surface, which affects the user experience. Utility Model Content

[0004] In view of this, the present application provides a wearable component and a wearable device, which can facilitate the replacement and cleaning of the covering layer, making the surface of the covering layer clean and tidy, and improving the user experience.

[0005] In order to achieve the above objectives, this application provides the following technical solutions:

[0006] In a first aspect, a wearable component is provided, comprising:

[0007] Wearing structure;

[0008] The covering layer can be covered on at least a portion of the outer circumference of the wearable structure so that the wearable structure and the covering layer are combined. The covering layer can be detached relative to the wearable structure so that the wearable structure and the covering layer are separated.

[0009] In a feasible implementation, the covering layer is an elastic structure and is provided with a notch, and the covering layer can be combined with or separated from the wearable structure through the notch.

[0010] In a feasible implementation, the wearable structure includes: a first connecting portion for connecting to an audio output component;

[0011] A second connecting portion, used for connecting to the main body component;

[0012] Wherein, the audio output component is electrically connected to the main body component.

[0013] In a feasible implementation, a wire is connected between the audio output component and the main body component, and the wearable structure can limit the wire and make the wire follow the movement of the wearable structure.

[0014] In a possible implementation, the wire is housed in the wearable structure.

[0015] In a feasible implementation, the covering layer is connected to the wearable structure by adsorption; and / or the covering layer is connected to the wearable structure by snap-fit ​​connection.

[0016] In a feasible implementation, the wearable structure is a memory skeleton; and / or the coating layer is liquid silicone.

[0017] In a second aspect, a wearable device is provided, comprising at least an audio output component, wherein the audio output component is connected to the above-mentioned wearable component.

[0018] In a feasible implementation, the audio output component includes: a lower shell of the ear sinus;

[0019] an in-ear detection unit, disposed in the lower shell of the ear sinus;

[0020] a sound amplifier, disposed in the lower shell of the auricular sinus;

[0021] The first rubber sleeve is sleeved on the sound amplifier and fixed to the lower shell of the auricular sinus. The first rubber sleeve is used to separate the sound amplifier from the lower shell of the auricular sinus.

[0022] In a feasible implementation, it further includes a second rubber sleeve, wherein the sound outlet of the second rubber sleeve extends into the sound outlet of the lower shell of the ear sinus.

[0023] The wearable component provided in this application provides supporting strength through the wearable structure, so that the wearable component can be worn on the user's ear, and the covering layer contacts the user's ear. The covering layer is detachable relative to the wearable structure. By disassembling and cleaning the covering layer or disassembling and replacing the covering layer, the surface of the covering layer is kept clean and tidy, thereby improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are merely embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on the provided drawings without any creative work.

[0025] Figure 1 Schematic diagram of the positional relationship between the wearing structure and the covering layer;

[0026] Figure 2 A schematic diagram showing the connection between the audio output component and the main body component;

[0027] Figure 3 Schematic diagram of the positional relationship between the main body upper shell and the cladding layer;

[0028] Figure 4Schematic diagram of the positional relationship between the main body lower shell and the cladding layer;

[0029] Figure 5 Schematic diagram of the positional relationship between the soft magnetic layer and the cladding layer;

[0030] Figure 6 This is a schematic diagram of the internal structure of the inferior shell of the auricular sinus;

[0031] Reference numerals:

[0032] 1. Wearable structure; 2. Covering layer; 3. Notch; 4. Soft magnetic layer; 5. Audio output component; 501. Lower ear sinus shell; 502. Upper ear sinus shell; 503. First fixed shell; 504. Magnet; 505. In-ear detection unit; 506. Sound amplifier; 507. First rubber sleeve; 508. Second rubber sleeve; 6. Earplug; 7. Main body component; 701. Battery protection shell; 702. Battery; 703. Upper main body shell; 704. Lower main body shell; 705. Second fixed shell; 706. Main board; 707. Charging PIN; 708. Volume button; 8. Wire. DETAILED DESCRIPTION

[0033] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0034] Currently, ear-hook devices such as hearing aids and headphones use ear hooks to attach the audio output component 5 to the user's ear. The ear hook not only enhances the tightness of the connection between the audio output component 5 and the user, preventing it from detaching from the user's ear, but also includes a wire 8 inside some ear hooks, which connects the audio output component 5 to the main body component 7 for signal transmission. Taking ear-hook hearing aids as an example, conventional ear-hook hearing aids connect the audio output component 5 to the main body component 7 via a wire, which is wrapped with insulating material and then attached directly to the user's ear. After long-term wear of ear-hook devices, the outer surface of the insulating material can accumulate dust, breed bacteria, and age, making the ear hook surface unhygienic and unsightly, affecting the user experience.

[0035] The insulating material is usually made of a flexible material and is fixed to the wire and cannot be removed. When cleaning the surface of the insulating material, it is necessary to consider the connection between the audio output component 5 and the main body component 7. During the cleaning process, it is necessary to avoid the audio output component 5 and the main body component 7 to avoid accidentally touching the audio output component 5 and the main body component 7, which may affect the normal use of the audio output component 5 or even damage the audio output component 5. Therefore, it is impossible to directly soak the insulating material in cleaning liquid or directly rinse it with cleaning liquid. The surface of the insulating material is difficult to clean and the cleaning effect is poor. If the ear hook is replaced, the wire and the insulating material are fixed, and the overall cost of replacing the wire and the insulating material is high. Moreover, when there is a wire 8 connecting the audio output component 5 and the main body component 7, when replacing the wire and the insulating material, it is necessary to consider whether the replacement will affect the normal operation of the wire 8, making the wire and the insulating material as a whole more difficult to replace.

[0036] Regarding the above issues, refer to Figures 1-6 The embodiment of the present application provides a wearable component, including: a wearable structure 1 for connecting to the human body. The wearable structure 1 is a support structure for the ear hook, and the wearable structure 1 provides support strength, and the audio output component 5 is worn on the user's ear. It also includes a covering layer 2, which can cover at least part of the outer periphery of the wearable structure 1. The wearable structure 1 has a first surface close to the user's skin and having a tendency to contact the user's skin, and a second surface that has no tendency to contact the user's skin. Preferably, the covering layer 2 at least covers the first surface, ensuring that the user's skin and the wearable structure 1 are separated by the covering layer 2, and the outer surface of the covering layer 2 fits the user's skin, thereby improving wearing comfort. Furthermore, in addition to covering the first surface, the covering layer 2 also extends to cover the second surface, so that the covering layer 2 covers most of the surface area of ​​the wearable structure 1, reducing the exposed area of ​​the wearable structure 1, protecting the wearable structure 1, preventing the wearable structure 1 from dust accumulation and aging, and improving the service life of the wearable structure 1 while improving the overall aesthetics of the ear hook.

[0037] The covering layer 2 is covered on at least part of the outer periphery of the wearable structure 1, so that the wearable structure 1 and the covering layer 2 are combined to form a wearable component. At the same time, the covering layer 2 can be removed relative to the wearable structure 1 to separate the wearable structure 1 and the covering layer 2. When the wearable device needs to be maintained after a long period of use, the wearable component, i.e., the ear hook, only needs to be separated from the covering layer 2 and the wearable structure 1, and the removed covering layer 2 is cleaned and sterilized separately. During the cleaning and sterilization process of the covering layer 2, it is not limited to the audio output component 5 and the main body component 7. The covering layer 2 can be soaked in a cleaning solution or rinsed with a cleaning solution for comprehensive cleaning and sterilization, making cleaning of the covering layer 2 simple and thorough. Alternatively, after separating the covering layer 2 from the wearable structure 1, the covering layer 2 can be directly replaced as a consumable. When replacing an aged covering layer 2, there is no need to clean the aged covering layer 2, further improving the simplicity of maintaining the ear hook.

[0038] In an alternative embodiment, referring to Figure 1 、 Figure 5 In order to further facilitate the separation of the covering layer 2 from the wearable structure 1, the covering layer 2 is an elastic structure and is provided with a notch 3. After the covering layer 2 is covered on the wearable structure 1, in addition to the two first end faces formed at both ends of the wearable structure 1, the covering layer 2 is also formed with two second end faces along the circumferential direction of the wearable structure 1. A notch 3 is formed between the two second end faces. The covering layer 2 is an elastic structure, and the covering layer 2 can be combined with or separated from the wearable structure 1 through the notch 3. When removing the covering layer 2, the covering layer 2 is deformed so that the two second end faces move away from each other, and the size of the notch 3 is enlarged to be no less than the maximum cross-sectional diameter of the wearable structure 1, so that the covering layer 2 and the wearable structure 1 can be separated. When assembling the covering layer 2, the covering layer 2 is similarly deformed so that the two second end faces move away from each other, and the size of the notch 3 is enlarged to be no less than the maximum cross-sectional diameter of the wearable structure 1, so that the covering layer 2 can be sleeved on the wearable structure 1. Since the covering layer 2 is an elastic structure, after the covering layer 2 is sleeved, the covering layer 2 returns to its original shape, the two second end faces move closer to each other, and the size of the notch 3 is reduced to be smaller than the maximum cross-sectional diameter of the wearable structure 1, so that the covering layer 2 cannot be separated from the wearable structure 1.

[0039] Preferably, when the covering layer 2 is combined with the wearable structure 1, the notch 3 only needs to be kept small, or even the two second end surfaces are aligned, so that the wearable structure 1 is completely covered by the covering layer 2, preventing exposure of the wearable structure 1. The covering layer 2 protects the wearable structure 1 and improves the overall aesthetics. The notch 3 is preferably located at the farthest point from the user's skin, preventing direct contact with the user's skin. This maintains the smoothness of the contact area between the covering layer 2 and the user's skin, thereby improving the user's wearing experience.

[0040] The above-mentioned covering layer 2 is provided with a notch 3. Especially when the wearable device has an audio output component 5 and a main body component 7, since the two ends of the wearing structure 1 are respectively blocked by the audio output component 5 and the main body component 7, the covering layer 2 cannot be separated and combined with the wearing structure 1 at the two ends of the wearing structure 1. Therefore, the presence of the notch 3 enables the covering layer 2 to be separated and combined with the wearing structure 1 without passing through the two ends of the wearing structure 1. The separation and combination operation is simple and convenient, and is not affected by the audio output component 5 and the main body component 7.

[0041] In another embodiment, when the wearable device only has an audio output component 5, the audio output component 5 is connected to one end of the wearable structure 1, and the other end of the wearable structure 1 is not provided with a main body component 7. In addition to adopting the above-mentioned notch 3 structure, the covering layer 2 has openings at the ends of the covering layer 2 near and away from the audio output component 5. When removing the covering layer 2 from the wearable structure 1, the user drives the covering layer 2 along the extension direction of the wearable structure 1, and the covering layer 2 is separated from the end of the wearable structure 1 away from the audio output component 5 in a sliding manner. After cleaning or replacing the covering layer 2, the covering layer 2 is inserted into the end of the wearable structure 1 away from the audio output component 5. In this configuration, the covering layer 2 is an elastic sleeve structure. Furthermore, the notch 3 is provided in the elastic sleeve structure. The presence of the notch 3 causes the covering layer 2 to deform during the process of assembly and separation of the covering layer 2 from the wearable structure 1, causing the notch 3 to change in size, making it easier for the covering layer 2 to deform, and making the process of sliding the covering layer 2 off or assembly easier.

[0042] Alternatively, if the covering layer 2 does not adopt an elastic structure but a hard, non-deformable structure, the above-mentioned covering layer 2 is covered on at least a portion of the outer periphery of the wearable structure 1, and the size of the notch 3 is not less than the maximum cross-sectional diameter of the wearable structure 1. When assembling and disassembling the covering layer 2, the covering layer 2 does not need to be deformed and can still be assembled and separated from the wearable structure 1.

[0043] In an alternative embodiment, referring to Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 Taking a hearing aid as an example, when the wearable structure 1 is connected to the audio output component 5 and the main body component 7, the audio output component 5 includes a lower auricular shell 501 and an upper auricular shell 502. A first fixed shell 503 is fixed on or within the upper auricular shell 502. The main body component 7 includes a battery protection shell 701, which houses a battery 702 for powering the hearing aid. The upper and lower main body shells 703 and 704 are fixed to the battery protection shell 701. The upper and lower main body shells 703 and 704 are joined and fixed together to protect the internal components of the hearing aid. A second fixed shell 705 is fixed to the lower main body shell 704. A main board 706 is fixed within the lower main body shell 704 for arranging signal processing components. A charging pin 707 is soldered to the main board 706 for charging the battery 702. A volume button 708 for adjusting the volume is provided on the outside of the lower main body shell 704.

[0044] The wearable structure 1 includes a first connecting portion and a second connecting portion, which serve as two ends of the wearable structure 1. The first connecting portion is used to connect to the first fixing housing 503 of the audio output component 5, and the second connecting portion is used to connect to the second fixing housing 705 of the main body component 7. The audio output component 5 and the main body component 7 are electrically connected, typically using a wire 8. Wire 8 transmits signals between the audio output component 5 and the main body component 7, connecting the in-ear position signal to the motherboard 706. The two ends of wire 8 extend through the first fixing housing 503 and the second fixing housing 705, respectively, into the audio output component 5 and the main body component 7. The first fixing housing 503 and the second fixing housing 705 cooperate to secure the two ends of the wearable structure 1, thereby securing the two ends of wire 8.

[0045] In an optional embodiment, the wearable structure 1 can restrain the wire 8 and make it follow the movement of the wearable structure 1. When the user bends or flexes the wearable structure 1, the wire 8 bends synchronously with the wearable structure 1, preventing the wire 8 from generating significant resistance to the wearable structure 1 during bending and recovery. This reduces physical damage to the wire 8, reduces the risk of internal fracture or damage caused by rigid bending of the wire 8, and increases the service life of the wire 8.

[0046] In one embodiment, the wire 8 is arranged on the outer surface of the wearable structure 1 by embedding, bonding, or other means. The wire 8 is not easily separated from the wearable structure 1. When the assembled coating 2 is removed, the movement of the coating 2 does not directly cause relative displacement between the wire 8 and the wearable structure 1. The wire 8 remains in position, preventing the wire 8 from folding, stretching, or misalignment during the assembly and disassembly of the coating 2, thereby preventing damage to the wire 8 caused by the assembly and disassembly of the coating 2. Furthermore, since the wire 8 is arranged on the outer surface of the wearable structure 1, if the wire 8 is damaged, it only needs to be separated from the outer surface of the wearable structure 1 and replaced, without disassembling the wearable structure 1. This makes replacement simple and convenient. When the wearable structure 1 is deformed by an external force, the coating 2 and the wire 8 also deform accordingly. At the same time, the wire 8 is contained within the coating 2. The coating 2 covers the wire 8. On the one hand, the coating 2 assists in driving the deformation of the wire 8 during the deformation process, and on the other hand, the coating 2 protects the wire 8, preventing the wire 8 from being exposed and thus vulnerable and unsightly.

[0047] Preferably, refer to Figure 1In addition to being fixed to the outer surface of the wearable structure 1, the wire 8 can also be accommodated within the wearable structure 1. Under this structural setting, the wearable structure 1 is a deformable and bendable tubular structure, and there is a space inside the wearable structure 1 for the wire 8 to pass through. By accommodating the wire 8 within the wearable structure 1, the wearable structure 1 not only restricts the wire 8 so that it follows the movement, but also further protects the wire 8. During the disassembly and assembly of the covering layer 2, the covering layer 2 does not come into contact with the wire 8 under the isolation of the wearable structure 1. Cleaning and replacement of the covering layer 2 does not cause damage to the wire 8, thereby extending the service life of the wire 8. It also makes the outer surface of the wearable structure 1 smooth, thereby improving the combined effect of the wearable structure 1 and the covering layer 2.

[0048] In order to further improve the connection firmness between the covering layer 2 and the wearable structure 1 and avoid separation or relative slippage of the covering layer 2 and the wearable structure 1 during use of the wearable component, the covering layer 2 and the wearable structure 1 are connected by adsorption; and / or the covering layer 2 and the wearable structure 1 are connected by snaps.

[0049] In one embodiment, referring to Figure 5 The coating layer 2 has a soft magnetic layer 4 applied to the inner surface of the wearable structure 1, adjacent to the inner surface of the wearable structure 1. The wearable structure 1 is made of metal, and the soft magnetic layer 4 is adsorbed onto the surface of the wearable structure 1. After the coating layer 2 is coated on the wearable structure 1 due to its inherent properties, the soft magnetic layer 4 is adsorbed and fixed to the wearable structure 1, further enhancing the connection between the coating layer 2 and the wearable structure 1. Alternatively, the outer surface of the wearable structure 1 is coated with a metal coating that adsorbs to the soft magnetic layer 4. Even if the wearable structure 1 is made of a non-metallic material, the soft magnetic layer 4 can still be adsorbed and fixed to the wearable structure 1. The soft magnetic layer 4 can be applied to the entire inner surface of the wearable structure 1 as needed, enhancing the adsorption and connection strength between the coating layer 2 and the wearable structure 1. Alternatively, multiple soft magnetic layers 4 can be provided on the inner surface of the wearable structure 1, with the multiple soft magnetic layers 4 spaced apart, reducing the amount of soft magnetic layer 4 used while ensuring the adsorption and connection between the coating layer 2 and the wearable structure 1. With this magnetic connection method, the soft magnetic layer 4 occupies less space, and the overall size of the wearable component is reasonable, meeting user requirements.

[0050] In another specific embodiment, in addition to being adsorbed and connected to the wearable structure 1 via the soft magnetic layer 4, the coating layer 2 may also have a clamp structure fixed to the inner wall surface of the coating layer 2 near the wearable structure 1. The clamp structure has an opening and deformable properties. By deforming the clamp structure, the wearable structure 1 is accommodated within the clamp structure through the opening or separated from the clamp structure, thereby further securing the coating layer 2 to the wearable structure 1. Alternatively, the inner wall surface of the coating layer 2 and the outer surface of the wearable structure 1 are provided with a snap structure that can be interlocked, fixed, and separated, or a connection structure that facilitates the assembly or disassembly of the coating layer 2 and the wearable structure 1. The above-mentioned clamp connection method has a higher connection strength between the coating layer 2 and the wearable structure 1. Moreover, when the coating layer 2 is a hard, non-deformable structure, even if the size of the notch 3 is not smaller than the maximum diameter of the wearable structure 1, the snap structure and / or magnetic attraction structure can still ensure the assembly and separation of the coating layer 2 and the wearable structure 1.

[0051] Furthermore, the soft magnetic layer 4 and the snap-fit ​​structure are both present on the covering layer 2, so that when the covering layer 2 is combined with the wearable structure 1, not only an adsorption connection is achieved, but also a snap-fit ​​connection is achieved, further enhancing the connection strength between the covering layer 2 and the wearable structure 1.

[0052] In an alternative embodiment, referring to Figure 1 , the wearing structure 1 is a memory skeleton; and / or, the coating layer 2 is liquid silicone. The memory skeleton has memory properties and can recover after being bent by external force. Compared with the existing ear hook wire that is easy to deform and affects the wearing effect, the memory skeleton is used as a supporting connection structure, which is convenient for wearing and bending back and forth to restore the shape, avoiding the problem of poor wearing effect caused by deformation of the ear hook wire. Among them, the memory skeleton is preferably a memory metal wire or tubular structure such as spring steel, titanium-nickel alloy, titanium alloy, etc., so that the memory skeleton has the same or different deformation capabilities in all directions. The user can apply force to bend or bend the memory skeleton during the wearing process according to actual needs, so that the ear hook and the audio output component 5 produce relative movement. After the audio output component 5 is placed in the user's ear, the user releases the force on the memory skeleton, and the memory skeleton recovers under its own action. Generally, the cross-section of the memory skeleton is circular or ring-shaped. The memory skeleton can be formed into an arc shape or other shapes that fit the contour of the user's ear through processes such as stamping and pre-bending.

[0053] The coating layer 2 is preferably made of liquid silicone. Liquid silicone has excellent flexibility and elasticity, can return to its original shape after deformation, and is non-toxic, odorless, pollution-free, and highly breathable, making it suitable for coating the wearable structure 1. Liquid silicone is soft and elastic to the touch, and its contact with the user's ear improves skin fit and comfort, solving the problem of ear hook discomfort. Liquid silicone is also easy to disassemble, replace, and maintain compared to the wearable structure 1.

[0054] Secondly, refer to Figure 6A wearable device at least includes an audio output component 5, which is connected to the above-mentioned wearable component. The audio output component 5 is used to output audio. When the wearable device is an earhook headset, some existing earhook headsets include an audio output component 5 and a wearable component, and the audio output component 5 is worn using the wearable component. The remaining earhook headsets or hearing aids include an audio output component 5, a main body component 7, and a wearable component. The wearable component connects the audio output component 5 and the main body component 7 so that the audio output component 5 and the main body component 7 are worn on the user's ear. At the same time, a wire 8 is provided in the wearable component to achieve signal connection between the audio output component 5 and the main body component 7. The main body component 7 is used to control the opening and closing, volume adjustment and other functions of the audio output component 5.

[0055] In an alternative embodiment, referring to Figure 6 The audio output component 5 also includes a lower ear sinus shell 501, on which an earplug 6 is assembled. The earplug 6 is used to seal the audio output component 5 when it is worn on the user's ear to reduce sound leakage. A magnet 504 is fixed in the lower ear sinus shell 501 for charging and attraction. An in-ear detection unit 505 is provided in the lower ear sinus shell 501. The in-ear detection unit 505 preferably adopts an in-ear detection FPC. The in-ear detection copper foil of the in-ear detection unit 505 is fixed on the lower ear sinus shell 501. The wire 8 is used to connect the in-ear position signal to the main board 706. When the audio output component 5 is worn in the user's ear, it contacts the inside of the ear to form a capacitive bridge, turning on the hearing aid. When the hearing aid is removed, the hearing aid is turned off. The in-ear detection unit 505 is used for in-ear detection of the hearing aid to prevent the audio output component 5 from being removed from the user's ear and generating whistling after it stops working.

[0056] The audio output component 5 also includes a sound amplifier 506, which is arranged in the lower ear sinus shell 501. A first rubber sleeve 507 is arranged on the outside of the sound amplifier 506. The first rubber sleeve 507 is sleeved on the sound amplifier 506. Positioning posts are provided on both sides of the first rubber sleeve 507 at the rear cavity of the sound amplifier 506. The first rubber sleeve 507 is positioned by the positioning posts and fixed to the lower ear sinus shell 501 by hot melting. The sound amplifier 506 is suspended and separated from the lower ear sinus shell 501 to prevent the vibration of the sound amplifier 506 during operation from driving the lower ear sinus shell 501 to vibrate, which is transmitted to the receiver and causes howling.

[0057] Furthermore, a second rubber sleeve 508 is included, the sound outlet of which extends into the sound outlet of the lower ear sinus shell 501. The front chamber of the receiver is assembled to the sound outlet of the lower ear sinus shell 501 through the second rubber sleeve 508, thereby sealing the sound output. This not only reduces the problem of howling caused by the vibration of the housing driven by the sound amplifier 506, but also improves the sealing and isolation of the front chamber.

[0058] Preferably, the first rubber sleeve 507 is made soft at 30 degrees, and the periphery is kept away from the lower shell 501 of the sinus, and the hot melt column is fixed. In order to avoid the vibration of the sound amplifier 506 from contacting the periphery shell, the second rubber sleeve 508 is made soft at 60 degrees at the lower end, and is tightly sealed with the ear nozzle to avoid periphery sound leakage and weaken the vibration transmission.

[0059] Under the above settings, the first rubber sleeve 507 and the second rubber sleeve 508 can be an integrated structure, and the silica gel part composed of the lower shell 501 of the sinus, the first rubber sleeve 507 and the second rubber sleeve 508 can be produced by a conventional manufacturer, thereby reducing the mold opening cost and process complexity of the sound amplifier protective shell, and thus reducing the overall cost.

[0060] Finally, it should be noted that in this document, the terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between the entities or operations. Moreover, the terms "include", "contain" or any other variants thereof are intended to cover non-exclusive inclusion, so that the process, method, article or equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or equipment. Without more limitations, the element defined by the statement "including a" does not exclude the presence of other identical elements in the process, method, article or equipment including the element.

[0061] The above description of the disclosed embodiments enables a person skilled in the art to implement or use the present application. Various modifications to the embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to the embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A wearable component, characterized in that: include: Wearing structure; The covering layer can be covered on at least a portion of the outer circumference of the wearable structure so that the wearable structure and the covering layer are combined. The covering layer can be detached relative to the wearable structure so that the wearable structure and the covering layer are separated.

2. The wearable component according to claim 1, wherein The covering layer is an elastic structure and is provided with a notch, and the covering layer can be combined with or separated from the wearing structure through the notch.

3. The wearable component according to claim 1, wherein The wearable structure includes: a first connecting portion for connecting to an audio output component; A second connecting portion, used for connecting to the main body component; Wherein, the audio output component is electrically connected to the main body component.

4. The wearable component according to claim 3, wherein: A wire is connected between the audio output component and the main body component, and the wearing structure can limit the wire and make the wire follow the movement of the wearing structure.

5. The wearing component according to claim 4, characterized in that The lead wire is housed within the wearable structure.

6. The wearable component according to any one of claims 1 to 5, characterized in that: The covering layer is connected to the wearable structure by adsorption; and / or, the covering layer is connected to the wearable structure by snap-fitting.

7. The wearable component according to any one of claims 1 to 5, characterized in that: The wearable structure is a memory skeleton; and / or the coating layer is liquid silicone.

8. A wearable device, characterized in that: The device comprises at least an audio output component, and the audio output component is connected to the wearable component according to any one of claims 1 to 7.

9. The wearable device according to claim 8, wherein: The audio output component includes: a lower shell of the ear sinus; an in-ear detection unit, disposed in the lower shell of the ear sinus; a sound amplifier, disposed in the lower shell of the auricular sinus; The first rubber sleeve is sleeved on the sound amplifier and fixed to the lower shell of the auricular sinus. The first rubber sleeve is used to separate the sound amplifier from the lower shell of the auricular sinus.

10. The wearable device according to claim 9, wherein: It also includes a second rubber sleeve, and the sound outlet of the second rubber sleeve extends into the sound outlet of the lower shell of the ear sinus.