Intelligent host and intelligent wearable device

By setting an insulating part or gap between the fastening and unlocking components of the smart wearable device, the antenna signal interference problem caused by the locking structure is solved, the radio frequency environment of the antenna is optimized, wear and detachment are prevented, and the stability and service life of the device are improved.

CN122085633APending Publication Date: 2026-05-26GUANGDONG XIAOTIANCAI TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GUANGDONG XIAOTIANCAI TECH CO LTD
Filing Date
2024-11-25
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

The locking structure of existing smart wearable devices causes antenna signal interference, affecting the normal operation of the antenna, especially when it is inactive or at rest. Due to inertia, the smart host moves and causes unnecessary wear or detachment.

Method used

A smart host is designed, comprising a bottom bracket, a host body, first and second fastening parts, and an unlocking component. By setting an insulating part or insulating gap between the fastening part and the unlocking component, an open circuit is formed, avoiding the formation of a conductive plane and reducing electromagnetic wave absorption and reflection interference.

Benefits of technology

It effectively reduces interference to the antenna, optimizes the radio frequency environment, ensures the normal operation of the antenna, prevents wear and detachment, and improves the stability and service life of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of intelligent wearable devices, and particularly discloses an intelligent host and an intelligent wearable device. The intelligent host comprises a bottom support, a host body, a first buckling piece, a second buckling piece and an unlocking part, the bottom support is provided with a buckling structure, the host body is connected to the bottom support, and the first buckling piece and the second buckling piece are rotatably connected to the host body and located on the two sides of the host body respectively. The first buckling piece and the second buckling piece are used for being connected with the buckling structure in a buckling mode, the unlocking part is connected between the first buckling piece and the second buckling piece, when the unlocking part is pressed, the first buckling piece and the second buckling piece can be separated from the buckling structure, and the unlocking part comprises an insulating part; and the insulating part enables an open circuit to be formed between the first buckling piece and the second buckling piece. By adopting the design of the application, the open circuit is formed between the first buckling piece and the second buckling piece, so that a conductive plane is not formed, the interference to the antenna is reduced, and the radio frequency environment of the antenna is optimized.
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Description

Technical Field

[0001] This application relates to the field of smart wearable device technology, and in particular to a smart host and a smart wearable device. Background Technology

[0002] As the functions of smart wearable devices become more diversified, the main unit of these devices is equipped with functions such as taking photos, playing music, and making calls.

[0003] To adapt to the multifunctional needs of different scenarios, smart hosts are often designed with the flexibility to rotate relative to the wearable components in order to better serve the realization of specific functions. However, when the user is inactive or at rest, due to the inertia of moving the arm, these smart hosts are still activated and make unnecessary movements, sometimes even completely detaching from the wearable design structure, resulting in wear and tear on the hardware components or physical damage.

[0004] Currently, smart wearable devices use a locking structure to prevent the smart host from being fixed when it does not need to be rotated. However, this locking structure is quite wide, almost the same width as the smart host, and spans both sides of the smart host. The complete plane formed by this locking structure can conduct current, which causes the electromagnetic waves of the antenna to be absorbed, reflected, or re-radiated at the locking structure. The conductive plane will shield the antenna signal, thereby interfering with the normal operation of the antenna, affecting the radio frequency environment of the smart host's antenna, and resulting in poor performance of the smart host's antenna. Summary of the Invention

[0005] This application discloses a smart host and a smart wearable device, which can reduce the interference of the first fastening component, the second fastening component and the unlocking component on the antenna, ensure the normal operation of the antenna and optimize the radio frequency environment of the antenna.

[0006] To achieve the above objectives, in a first aspect, embodiments of this application disclose a smart host, comprising:

[0007] A bottom bracket, wherein the bottom bracket is provided with a snap-fit ​​structure;

[0008] The main unit is connected to the bottom bracket;

[0009] The first fastening member and the second fastening member are rotatably connected to the main body, and the first fastening member and the second fastening member are respectively located on both sides of the main body. The first fastening member and the second fastening member are used to fasten and connect with the snap-fit ​​structure.

[0010] An unlocking component is connected between the first fastening member and the second fastening member. When the unlocking component is pressed, the first fastening member and the second fastening member can be separated from the buckle structure under the action of the unlocking component. The unlocking component includes an insulating part, which creates an open circuit between the first fastening member and the second fastening member.

[0011] As an optional implementation, the unlocking component includes a metal connector, which includes a first sub-connector and a second sub-connector. The first sub-connector is connected to the first fastening member, and the second sub-connector is connected to the second fastening member. Along the arrangement direction of the first and second fastening members, there is a preset gap between the first and second sub-connectors. The gap is the insulating part, and the gap creates an open circuit between the first and second sub-connectors.

[0012] As an optional implementation, the unlocking component further includes an insulating connector connected between the first sub-connector and the second sub-connector.

[0013] As an optional implementation, the insulating connector at least covers a portion of the first sub-connector and the second sub-connector.

[0014] As an optional implementation, the insulating connector is connected to the first sub-connector via a heat-fusion structure, and / or the insulating connector is connected to the second sub-connector via a heat-fusion structure.

[0015] As an optional implementation, the preset gap is greater than or equal to 1 mm and less than or equal to 15 mm along the arrangement direction of the first fastening member and the second fastening member.

[0016] As an optional implementation, both the first fastening member and the second fastening member are metal parts, and the unlocking component includes a metal connector. The first end of the metal connector is connected to the first fastening member, and the second end of the metal connector is connected to the second fastening member. The first end and the first fastening member are separated by an insulating spacer, and / or the second end and the second fastening member are separated by an insulating spacer.

[0017] As an optional implementation, the insulating spacer includes insulating adhesive.

[0018] As an optional implementation, the insulating spacer includes an insulating layer formed on the outer surface of the first end of the metal connector, and / or the insulating layer is formed on the outer surface of the second end of the metal connector.

[0019] As an alternative implementation, the insulating layer is formed on the outer surface of the metal connector.

[0020] As an optional implementation, the main body of the host protrudes outward toward the unlocking component to form a protrusion. The smart host also includes a housing, which covers the protrusion and forms the first accommodating space between the housing and the protrusion. The first fastening member, the second fastening member, and the unlocking component are all disposed within the first accommodating space.

[0021] As an optional implementation, the first fastening member and the second fastening member are connected to the protrusion. The unlocking component includes a metal connector and a pressing member. The metal connector is connected between the first fastening member and the second fastening member. The pressing member is connected to the metal connector. The housing has a first through hole that communicates with the first accommodating space. The pressing member is disposed corresponding to the first through hole and is at least partially located within the first through hole. The housing has through holes corresponding to the first fastening member and the second fastening member. The first fastening member and the second fastening member pass through the corresponding through holes and are connected to the buckle structure.

[0022] As an optional implementation, the pressing component includes a pressing body and a first engaging portion, the first engaging portion being disposed on the outer periphery of the pressing body and engaging with the inner wall of the housing.

[0023] As an optional implementation, the pressing component further includes a first foolproof structure located on the outer periphery of the pressing body, and the housing is provided with a second foolproof structure corresponding to the first foolproof structure.

[0024] As an optional implementation, the pressing body has a pressing surface on the side opposite to the main body, and the pressing surface is provided with an anti-slip structure.

[0025] As an optional implementation, the smart host includes a reset member connected to the first fastening member, the reset member being used to provide a force for the first fastening member to reset toward the unlocking component, and / or, the reset member is connected to the second fastening member, the reset member being used to provide a force for the second fastening member to reset toward the unlocking component.

[0026] As an optional implementation, the smart host further includes a fixed bracket connected to the host body. The first fastening member and the second fastening member are rotatably connected to the fixed bracket. The fixed bracket includes a plurality of positioning parts configured to perform positioning when the fixed bracket is installed on the smart host.

[0027] The second aspect of this application discloses a smart wearable device, including a wearable component and a smart host as described in the first aspect above, wherein the wearable component is connected to the bottom support of the smart host.

[0028] Compared with the prior art, the beneficial effects of this application are at least as follows:

[0029] The present invention provides a smart host and a smart wearable device. The smart host includes a bottom bracket, a host body, a first fastening member, a second fastening member, and an unlocking component. The bottom bracket is provided with a buckle structure. The host body is connected to the bottom bracket. The first fastening member and the second fastening member are rotatably connected to the host body and are located on both sides of the host body, respectively. The first fastening member and the second fastening member are used to fasten with the buckle structure. The unlocking component is connected between the first fastening member and the second fastening member. When the unlocking component is pressed, the first fastening member and the second fastening member can be separated from the buckle structure. The unlocking component includes an insulating part, which creates an open circuit between the first fastening member and the second fastening member. In this way, since the unlocking component includes an insulating part, the insulating part creates an open circuit between the first and second fastening parts. That is, the first fastening part, the second fastening part, and the unlocking component do not form a complete conductive plane, so the left and right sides of the unlocking component are not conductive. Therefore, the electromagnetic waves of the antenna will not be affected by the first fastening part, the second fastening part, and the unlocking component during transmission. They will not be absorbed, reflected, or re-radiated due to the formation of a complete conductive plane, thus preventing interference with the normal operation of the antenna. Its ability to absorb, reflect, and re-radiate electromagnetic waves emitted by the antenna is weakened, thereby reducing its interference with the antenna and optimizing the antenna's radio frequency environment. Attached Figure Description

[0030] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0031] Figure 1 This is a schematic diagram of the structure of the intelligent host disclosed in an embodiment of this application;

[0032] Figure 2 This is an exploded structural diagram of the intelligent host disclosed in an embodiment of this application;

[0033] Figure 3 for Figure 2 A magnified view of a section at point A in the middle;

[0034] Figure 4This is a schematic diagram of a portion of the structure of the smart host disclosed in an embodiment of this application;

[0035] Figure 5 This is an exploded view of a portion of the structure of the smart host disclosed in the embodiments of this application;

[0036] Figure 6 This is a schematic diagram of a portion of the structure of the smart host disclosed in an embodiment of this application;

[0037] Figure 7 This is another structural schematic diagram of the intelligent host disclosed in the embodiments of this application;

[0038] Figure 8 for Figure 7 A schematic diagram of part of the structure of the intelligent host;

[0039] Figure 9 for Figure 7 A schematic diagram of the exploded structure of the intelligent host;

[0040] Figure 10 for Figure 7 An exploded view of part of the structure of the intelligent host;

[0041] Figure 11 This is a schematic diagram of the housing and pressing component of the smart host disclosed in the embodiments of this application;

[0042] Figure 12 This is a schematic diagram of the structure of the smart wearable device disclosed in the embodiments of this application.

[0043] Explanation of reference numerals in the attached figures:

[0044] 100 - Intelligent host; 101 - Host body; 101a - Protrusion; 102 - Bottom bracket; 103 - Snap-fit ​​structure; 104 - Housing; 1041 - Second foolproof structure; 104a - First accommodating space; 104b - First through hole; 104c - Through hole;

[0045] 1-First fastening component; 2-Second fastening component; 3-Unlocking component; 3a-Insulating part; 31-Metal connector; 311-First sub-connector; 312-Second sub-connector; 32-Insulating connector; 33-Pressing component; 331-Pressing body; 331a-Pressing surface; 332-First snap-fit ​​part; 333-First anti-foolproof structure; 34-Insulating interval part; 4-Reset component; 5-Fixing bracket; 5a-Positioning part;

[0046] M - Preset gap;

[0047] 300 - Smart wearable devices; 310 - Wearable components. Detailed Implementation

[0048] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0049] In this invention, the terms "upper," "lower," "left," "right," "inner," "outer," and "horizontal," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing the invention and its embodiments, and are not intended to limit the indicated device, element, or component to having a specific orientation, or to be constructed and operated in a specific orientation.

[0050] Furthermore, in addition to indicating direction or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in certain situations to indicate a dependency or connection. Those skilled in the art can understand the specific meaning of these terms in this invention based on the specific circumstances.

[0051] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this invention based on the specific circumstances.

[0052] Unless otherwise stated, "multiple" means two or more.

[0053] The technical solution of the present invention will be further described below with reference to the embodiments and accompanying drawings.

[0054] Please see Figures 1 to 3 This application discloses an embodiment of a smart host 100, which includes a bottom bracket 102, a host body 101, a first fastening member 1, a second fastening member 2, and an unlocking component 3. The host body 101 is connected to the bottom bracket 102, and the bottom bracket 102 is provided with a latching structure 103. The first fastening member 1 and the second fastening member 2 are rotatably connected to the host body 101, and the first fastening member 1 and the second fastening member 2 are respectively located on both sides of the host body 101. The first fastening member 1 and the second fastening member 2 are used to fasten with the latching structure 103. The unlocking component 3 is connected between the first fastening member 1 and the second fastening member 2. When the unlocking component 3 is pressed, the first fastening member 1 and the second fastening member 2 can be separated from the latching structure 103 under the action of the unlocking component 3. Figure 4 As shown, the unlocking component 3 includes an insulating part 3a, which creates an open circuit between the first fastening member 1 and the second fastening member 2.

[0055] Because a conductive plane is formed between the first fastening member 1, the second fastening member 2, and the unlocking member 3, and because the width of the main body 101 of the smart host 100 is relatively large, and the first fastening member 1, the second fastening member 2, and the unlocking member 3 span both sides of the main body 101, resulting in a length similar to the width of the main body 101, the area of ​​the conductive plane formed between the first fastening member 1, the second fastening member 2, and the unlocking member 3 is relatively large. An antenna is located near the first fastening member 1, the second fastening member 2, and the unlocking member 3 on the main body 101. The relatively large conductive plane formed between the first fastening member 1, the second fastening member 2, and the unlocking member 3 will affect the antenna. The electromagnetic waves emitted by the antenna will be absorbed, reflected, or re-radiated due to the influence of this conductive plane, which will interfere with the normal operation of the antenna and result in a poor radio frequency environment for the antenna.

[0056] Therefore, the insulating part 3a of the unlocking component 3 in this embodiment creates an open circuit between the first fastening member 1 and the second fastening member 2. This results in the first fastening member 1, the second fastening member 2, and the unlocking component 3 not forming a complete conductive plane, so that the left and right sides of the unlocking component 3 are not conductive. Therefore, the electromagnetic waves of the antenna will not be affected by the first fastening member 1, the second fastening member 2, and the unlocking component 3 during transmission. They will not absorb, reflect, or re-radiate electromagnetic waves because they form a complete conductive plane, thereby preventing interference with the normal operation of the antenna. Its ability to absorb, reflect, and re-radiate electromagnetic waves emitted by the antenna is weakened, thereby reducing its interference with the antenna, optimizing the radio frequency environment of the antenna, and making the antenna perform better at low frequencies.

[0057] In some embodiments, such as Figure 4 As shown, the unlocking component 3 includes a metal connector 31, which includes a first sub-connector 311 and a second sub-connector 312. The first sub-connector 311 is connected to the first fastening member 1, and the second sub-connector 312 is connected to the second fastening member 2. Along the arrangement direction of the first fastening member 1 and the second fastening member 2, there is a preset gap M between the first sub-connector 311 and the second sub-connector 312. The preset gap M is an insulating part 3a, and the preset gap M forms an open circuit between the first sub-connector 311 and the second sub-connector 312.

[0058] The arrangement direction of the first fastening member 1 and the second fastening member 2 refers to the width direction of the main body 101, that is... Figure 4 The direction shown in the inner X direction.

[0059] Thus, the metal connector 31 is composed of a first sub-connector 311 and a second sub-connector 312 with a preset interval M. This indicates that the first sub-connector 311 and the second sub-connector 312 are disconnected, which also means that the first fastening member 1, the second fastening member 2, and the metal connector 31 are disconnected and do not form a conductive plane through connection. Therefore, the electromagnetic waves emitted by the antenna can propagate through the preset interval M between the first sub-connector 311 and the second sub-connector 312. The metal connector 31 will not cause electromagnetic interference to the antenna's electromagnetic waves due to the connection between the first sub-connector 311 and the second sub-connector 312, ensuring the normal operation of the antenna and preventing the antenna's radio frequency environment from being affected by electromagnetic interference.

[0060] It is worth noting that the metal connector 31 in this embodiment is manufactured by stamping, while the first fastening part 1 and the second fastening part 2 are manufactured by metal injection molding. Metal injection molding of the first fastening part 1 and the second fastening part 2 allows them to have a more detailed appearance, while metal connector 31 is manufactured by stamping, which reduces manufacturing costs. If the first fastening part 1, the second fastening part 2 and the metal connector 31 are all manufactured by metal injection molding, because the span between the three is large, ceramic sheets are needed to support them at the bottom during metal injection molding, which would increase manufacturing costs and would also make it impossible to guarantee that the first fastening part 1, the second fastening part 2 and the metal connector 31 can achieve the required precision.

[0061] Optionally, combined Figure 2 , Figure 4 and Figure 5 The unlocking component 3 also includes an insulating connector 32, which is connected between the first sub-connector 311 and the second sub-connector 312. By placing the insulating connector 32 between the first sub-connector 311 and the second sub-connector 312, the electrical isolation between them is further enhanced, ensuring that an open circuit is not formed between them and preventing the formation of a conductive plane. This, in turn, ensures the normal operation of the antenna, reduces interference from the first sub-connector 311 and the second sub-connector 312, and optimizes the antenna's radio frequency environment.

[0062] Optionally, combined Figure 2 and Figure 5 The insulating connector 32 at least covers a portion of the first sub-connector 311 and the second sub-connector 312. That is to say, the insulating connector 32 covers a portion of the first sub-connector 311 and the second sub-connector 312, or the insulating connector 32 covers all of the first sub-connector 311 and the second sub-connector 312.

[0063] In this way, by covering the first sub-connector 311 and the second sub-connector 312 with the insulating connector 32, the direct electrical connection between them is effectively blocked, thereby significantly improving the insulation performance of the entire unlocking component 3. Furthermore, the electrical isolation between the first sub-connector 311 and the second sub-connector 312 is further strengthened, ensuring that an open circuit is formed between them, preventing the formation of a conductive plane. This ensures the normal operation of the antenna, reduces interference from the first sub-connector 311 and the second sub-connector 312 to the antenna, and further optimizes the antenna's radio frequency environment.

[0064] Furthermore, such as Figures 4 to 6 As shown, the insulating connector 32 and the first sub-connector 311 are connected by a heat-fusion structure. The heat-fusion structure refers to a structure where the first sub-connector 311 has mounting holes, and a heat-fusion column is formed on the side of the insulating connector 32 facing the first sub-connector 311 through a heat-fusion process. This heat-fusion column passes through the mounting holes of the first sub-connector 311 to achieve the connection between the insulating connector 32 and the first sub-connector 311.

[0065] It should be noted that the insulating connector 32 and the second sub-connector 312 are also connected by a heat-fusion structure, or the insulating connector 32 is simultaneously connected to the first sub-connector 311 and the second sub-connector 312 by a heat-fusion structure. This embodiment does not make specific limitations on this.

[0066] In this way, the insulating connector 32 is connected to the first sub-connector 311 and the second sub-connector 312 via a thermofusion structure. This connection method creates a high-strength connection point capable of withstanding significant tensile and compressive forces, significantly enhancing the connection's robustness and ensuring its stability and reliability. Furthermore, the thermofusion connection between the first sub-connector 311, the second sub-connector 312, and the insulating connector 32 is simpler; it only requires heating the first sub-connector 311, the second sub-connector 312, or the insulating connector 32 to melt and fuse the materials together, significantly simplifying the installation process and improving efficiency. In addition, the thermofusion connection creates a strong and stable connection point, less prone to loosening or detachment.

[0067] Furthermore, along the arrangement direction of the first fastening member 1 and the second fastening member 2, the preset gap M is greater than or equal to 1mm and less than or equal to 15mm. That is to say, when the preset gap M is greater than or equal to 1mm and less than or equal to 15mm, the influence of the metal connector 31 on the antenna can be effectively reduced.

[0068] When the preset gap M is less than 1mm, it means that the distance between the first sub-connector 311 and the second sub-connector 312 is less than 1mm. If the distance between the first sub-connector 311 and the second sub-connector 312 is too small, it may be impossible to form an open circuit between the first sub-connector 311 and the second sub-connector 312. When the distance is less than 1mm, electrons may still be transmitted between the first sub-connector 311 and the second sub-connector 312, so that a conductive plane is formed between the first sub-connector 311 and the second sub-connector 312. This cannot ensure the normal operation of the antenna and may still affect the antenna, causing the radio frequency environment of the antenna to deteriorate.

[0069] When the preset gap M between the first sub-connector 311 and the second sub-connector 312 is greater than 15mm, although the excessively large preset gap M is beneficial for providing electrical insulation, the first sub-connector 311 and the second sub-connector 312 are connected to the first fastening member 1 and the second fastening member 2. The distance between the first fastening member 1 and the second fastening member 2 is constant. Therefore, when the preset gap M is too large, the first sub-connector 311 and the second sub-connector 312 may only have the part connected to the fastening member. In this way, it will be more difficult to separate the fastening member from the buckle structure 103 by pressing the first sub-connector 311 and the second sub-connector 312, resulting in the inability to unlock effectively.

[0070] Therefore, when the preset interval between the first sub-connector 311 and the second sub-connector 312 is 1mm-15mm, the interval between the first sub-connector 311 and the second sub-connector 312 can effectively form an open circuit, ensuring that the metal connector 31 will not affect the operation of the antenna, thereby ensuring that the antenna is in a good radio frequency environment. Furthermore, it ensures that the fastener and the latching structure 103 can be separated by pressing the first sub-connector 311 and the second sub-connector 312, preventing situations where unlocking by pressing would be impossible due to excessive gaps.

[0071] In some embodiments, see Figures 7 to 10 Both the first fastening member 1 and the second fastening member 2 are metal parts. The unlocking component 3 includes a metal connector 31. The first end of the metal connector 31 is connected to the first fastening member 1, and the second end of the metal connector 31 is connected to the second fastening member 2. The first end of the metal connector 31 is separated from the first fastening member 1 by an insulating spacer 34, and the second end of the metal connector 31 is separated from the second fastening member 2 by an insulating spacer 34.

[0072] That is to say, the first fastening member 1 and the second fastening member 2 are metal parts, which are connected to the metal connector 31. An insulating spacer 34 is provided between the metal connector 31 and the first fastening member 1, and an insulating spacer 34 is provided between the metal connector 31 and the second fastening member 2.

[0073] Thus, by providing an insulating spacer 34 between the metal connector 31 and the first fastening member 1, and between the metal connector 31 and the second fastening member 2, an open circuit is formed between the first fastening member 1 and the second fastening member 2 (made of metal) and the metal connector 31 through the insulating spacer 34. In other words, a non-conductive plane is formed between the first fastening member 1, the second fastening member 2, and the metal connector 31. This ensures that the electromagnetic waves of the antenna are not affected by the first fastening member 1, the second fastening member 2, and the metal connector 31 during transmission. The antenna will not absorb, reflect, or re-radiate electromagnetic waves because it forms a complete conductive plane, thereby preventing interference with the normal operation of the antenna. The antenna's ability to absorb, reflect, and re-radiate electromagnetic waves is weakened, thus reducing interference with the antenna and optimizing the antenna's radio frequency environment.

[0074] It is worth noting that providing an insulating spacer 34 between the first end of the metal connector 31 and the first fastening member 1, and between the second end of the metal connector 31 and the second fastening member 2, can effectively optimize the radio frequency environment of the antenna. Of course, providing an insulating spacer 34 only between the first end of the metal connector 31 and the first fastening member 1, or only between the second end of the metal connector 31 and the second fastening member 2, can also optimize the radio frequency environment of the antenna. This embodiment does not specifically limit this.

[0075] The metal connector 31 is made by stamping, and the first fastener 1 and the second fastener 2 are made by metal injection molding.

[0076] Optionally, the insulating gap 34 includes insulating adhesive. That is, insulating adhesive is filled between the first end of the metal connector 31 and the first fastening member 1, and between the second end of the metal connector 31 and the second fastening member 2. By filling with insulating adhesive, it is ensured that there is no electrical continuity between the metal connector 31 and the first fastening member 1 and the second fastening member 2, thereby ensuring the normal operation of the antenna and improving its performance in the low-frequency band. Furthermore, by filling with insulating adhesive, on the one hand, the connection between the metal connector 31 and the first fastening member 1 and the second fastening member 2 is made more secure and stable; on the other hand, the insulating adhesive fills the tiny gaps between the metal connector and the fastening members, preventing the ingress of moisture, dust, and other contaminants.

[0077] Optionally, the insulating spacer 34 includes an insulating layer formed on the outer surface of the first end of the metal connector 31 and the outer surface of the second end of the metal connector 31. Thus, an insulating layer is formed on the outer surface of the first end of the metal connector 31, creating an open circuit between the metal connector 31 and the first fastening member 1. An insulating layer is also formed on the outer surface of the second end of the metal connector 31, creating an open circuit between the metal connector 31 and the second fastening member 2. By forming insulating layers on the outer surfaces of the first and second ends of the metal connector 31, electromagnetic interference between the metal connector 31 and the first fastening member 1 and the second fastening member 2 can be reduced. This ensures that the electromagnetic waves of the antenna are not affected by the first fastening member 1, the second fastening member 2, and the metal connector 31 during transmission. The antenna will not absorb, reflect, or re-radiate electromagnetic waves because it forms a complete conductive plane, thus preventing interference with the normal operation of the antenna. The absorption, reflection, and re-radiation capabilities of the electromagnetic waves emitted by the antenna are weakened, thereby reducing interference with the antenna and optimizing the radio frequency environment of the antenna. Furthermore, the strength of the metal connector 31 can be enhanced to a certain extent, improving the overall mechanical stability.

[0078] It is worth noting that the insulating layer is not limited to the first and second ends of the metal connector 31 as described in the above embodiments. It can also be formed only at the first end of the metal connector 31 or only at the second end of the metal connector 31. This embodiment does not make specific limitations on this.

[0079] Optionally, the insulating layer is formed on the outer surface of the metal connector 31. That is, the insulating layer is formed on the entire outer surface of the metal connector 31. In this way, the insulating layer completely covers the outer surface of the metal connector 31, which can further ensure that an open circuit is formed between the metal connector 31 and the first fastening member 1 and the second fastening member 2, thereby ensuring that the metal connector 31 and the first fastening member 1 and the second fastening member 2 will not affect the antenna.

[0080] In some embodiments, such as Figure 1 and Figure 2As shown, the main body 101 protrudes outward toward the unlocking component 3 to form a protrusion 101a. The first fastening component 1 and the second fastening component 2 are connected to the protrusion 101a. The smart host 100 also includes a housing 104, which covers the protrusion 101a and forms a first accommodating space 104a between the housing 104 and the protrusion 101a. The first fastening component 1, the second fastening component 2 and the unlocking component 3 are all disposed in the first accommodating space 104a. The antenna of the smart host 100 is arranged in the protrusion 101a and covered by the housing 104. The first fastening member 1, the second fastening member 2 and the unlocking member 3 are arranged in the first accommodating space 104a formed by the housing 104 and the protrusion 101a, which can play a good protective role for the protrusion 101a, the first fastening member 1, the second fastening member 2 and the unlocking member 3. Furthermore, the arrangement of the first accommodating space 104a provides a dedicated installation space for the first fastening member 1, the second fastening member 2 and the unlocking member 3, avoiding the random arrangement of these components inside the host, thereby improving the space utilization rate.

[0081] Furthermore, combined Figure 2 and Figure 9 The unlocking component 3 includes a metal connector 31 and a pressing component 33. The metal connector 31 is connected between the first fastening component 1 and the second fastening component 2. The pressing component 33 is connected to the metal connector 31. The housing 104 has a first through hole 104b, which communicates with the first accommodating space 104a. The pressing component 33 is positioned corresponding to the first through hole 104b and is at least partially located within it. The housing 104 has through holes 104c corresponding to the first fastening component 1 and the second fastening component 2, respectively. The first fastening component 1 and the second fastening component 2 pass through the corresponding through holes 104c and are connected to the buckle structure 103. In this way, the pressing component 33 is at least partially inserted through the first through hole 104b, which allows for a limiting connection of the pressing component 33. Furthermore, to facilitate the user's pressing operation of the pressing component 33, the pressing component 33 can protrude from the housing 104.

[0082] Furthermore, combined Figure 2 and Figure 10 The pressing component 33 includes a pressing body 331 and a first engaging portion 332. The first engaging portion 332 is disposed on the outer periphery of the pressing body 331 and engages with the inner wall of the housing 104. This facilitates the limiting connection of the pressing component 33 to the first through hole 104b, and the pressing component 33 is movably connected to the first through hole 104b through the first engaging portion 332 to prevent the pressing component 33 from falling out of the first through hole 104b.

[0083] For example, the first engaging portion 332 may be disposed around the outer periphery of the pressing body 331 to achieve omnidirectional engaging and limiting of the pressing body 331; or, in order to achieve miniaturization of the unlocking component 3, when the pressing body 331 is a rectangular block, the first engaging portion 332 may also be disposed on opposite sides of the pressing body 331, and may be disposed in the height direction of the pressing body 331 (e.g., Figure 2 On both sides of the Z-direction in the middle, the height of the first fastening member 1 and the second fastening member 2 can be reduced (e.g., in the Z-direction). Figure 2 The dimension in the Z direction; in addition, the first snap-fit ​​portion 332 may also be provided in the length direction of the pressing body 331 (e.g., the Z direction); Figure 2 On both sides of the X direction in the middle, the length direction of the first fastening member 1 and the second fastening member 2 can be reduced (e.g., in the X direction). Figure 2 The dimension in the X direction.

[0084] In some embodiments, such as Figure 10 and Figure 11 As shown, to prevent incorrect installation between the pressing component 33 and the housing 104, a first anti-misfit structure 333 is provided on the pressing component 33, and a second anti-misfit structure 1041 is provided on the housing 104 corresponding to the first anti-misfit structure 333. These anti-misfit structures provide guidance for the installation of the pressing component 33, thereby improving assembly efficiency. Specifically, the first anti-misfit structure 333 is located on the outer periphery of the pressing body 331, meaning it can be located at a position on the pressing body 331 where the first latching portion 332 is not provided, or an additional anti-misfit structure can be provided at the position of the first latching portion 332.

[0085] Optionally, the first anti-mistake structure 333 and the second anti-mistake structure 1041 can be either a groove or a protrusion, thereby effectively preventing incorrect installation of the pressing component 33 and the housing 104. It is understood that the first anti-mistake structure 333 and the second anti-mistake structure 1041 can also be patterns, chamfers, or other structures with anti-mistake effects. In this embodiment, no specific limitation is made.

[0086] In some embodiments, such as Figure 10 As shown, since the user needs to press the pressing component 33, an anti-slip structure can be provided on the pressing surface 331a of the pressing body 331 to prevent slippage during the pressing process. Specifically, the anti-slip structure can be a protrusion, groove, or the like provided on the pressing surface 331a, or it can be an anti-slip coating or the like. In this embodiment, the anti-slip structure is not specifically limited.

[0087] In some embodiments, combined with Figure 5 and Figure 10When the user applies a pressing force to the pressing component 33, causing the first fastening component 1 and the second fastening component 2 to separate from the latching component, the first fastening component 1 and the second fastening component 2 can be reset under the action of the reset component 4. Since both the first fastening component 1 and the second fastening component 2 are connected to the metal connector 31, they can move simultaneously. Furthermore, to facilitate the reset component 4 applying force directly to the first fastening component 1 and the second fastening component 2, the reset component 4 can be provided on the first fastening component 1, or on the second fastening component 2. Alternatively, to achieve force balance between the first fastening component 1 and the second fastening component 2, the reset component 4 can be provided on both the first fastening component 1 and the second fastening component 2 simultaneously.

[0088] It is understandable that when the reset element 4 is provided on both the first fastening element 1 and the second fastening element 2, the reset element 4 can be a single element, that is, it can be connected to both the first fastening element 1 and the second fastening element 2 by a single reset element 4. In this case, the reset element 4 can be an elastic component such as a spring, rubber pad, or silicone pad with elastic deformation capability. Alternatively, there can be multiple reset elements 4, that is, multiple reset elements 4 can apply a reset force to the first fastening element 1 and the second fastening element 2 respectively. In this case, the reset element 4 can be an elastic component such as a spring or spring.

[0089] In some embodiments, combined with Figure 5 , Figure 6 and Figure 10 To achieve modular design of the first fastening component 1 and the second fastening component 2, thereby improving the manufacturability of the first fastening component 1, the second fastening component 2, and the unlocking component 3, and reducing assembly difficulty, thus simplifying the structural design of smart wearable devices that require the installation of the first fastening component 1, the second fastening component 2, and the unlocking component 3, the smart host may also include a fixing bracket 5 to connect the first fastening component 1, the second fastening component 2, and the smart host 100. Specifically, the fixing bracket 5 can be connected to the smart host 100 by bolt connection, snap connection, or adhesive bonding. The fixing bracket 5 also includes multiple positioning parts 5a, which can be positioning holes. When the fixing bracket 5 is installed on the smart host 100, the positioning parts 5a can quickly position the installation position of the fixing bracket 5, thereby achieving rapid installation.

[0090] Please see Figure 12 The second aspect of this embodiment provides a smart wearable device 300, which includes a wearable component 310 and a smart host 100 as described in the first aspect above. The wearable component 310 is connected to a bottom bracket 102. The smart host 100 can be flipped or detached relative to the wearable component 310, or it can remain relatively fixed relative to the wearable component 310.

[0091] Specifically, the smart host 100 may have functions such as calling, shooting, and NFC, while the wearable component 310 is a structure worn on a part of the user's body. That is, the smart wearable device 300 may include, but is not limited to, smartwatches, smart bracelets, smart glasses, etc. Taking a smartwatch as an example, the smart host 100 can serve as the host of the smartwatch, while the wearable component 310 can serve as the watch strap of the smartwatch.

[0092] It is understandable that, since the first fastening member 1, the second fastening member 2, and the unlocking member 3 of the smart host 100 can switch between a relatively fixed state and a relatively moving state between the smart host 100 and the wearable member 310, the aforementioned relative movement can be that the smart host 100 flips relative to the wearable member 310. In this case, the first fastening member 1, the second fastening member 2, the unlocking member 3, and the buckle structure 103 can all be provided on the smart host 100, or the first fastening member 1, the second fastening member 2, the unlocking member 3, and the buckle structure 103 can be provided on the smart host 100 and the wearable member 310 respectively; or, the aforementioned relative movement can be that the smart host 100 is detachable from the wearable member 310. In this case, the first fastening member 1, the second fastening member 2, the unlocking member 3, and the buckle structure 103 can be provided on the smart host 100 and the wearable member 310 respectively. In this embodiment, the specific positions of the first fastening component 1, the second fastening component 2, the unlocking component 3, and the buckle structure 103 can be adjusted according to the functions that the smart wearable device 300 wants to achieve, and are not limited in this embodiment.

[0093] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. A smart host, characterized in that, include: A bottom bracket, wherein the bottom bracket is provided with a snap-fit ​​structure; The main unit is connected to the bottom bracket; The first fastening member and the second fastening member are rotatably connected to the main body, and the first fastening member and the second fastening member are respectively located on both sides of the main body. The first fastening member and the second fastening member are used to fasten and connect with the snap-fit ​​structure. An unlocking component is connected between the first fastening member and the second fastening member. When the unlocking component is pressed, the first fastening member and the second fastening member can be separated from the buckle structure under the action of the unlocking component. The unlocking component includes an insulating part, which creates an open circuit between the first fastening member and the second fastening member.

2. The intelligent host according to claim 1, characterized in that, The unlocking component includes a metal connector, which includes a first sub-connector and a second sub-connector. The first sub-connector is connected to the first fastening member, and the second sub-connector is connected to the second fastening member. Along the arrangement direction of the first fastening member and the second fastening member, there is a preset gap between the first sub-connector and the second sub-connector. The preset gap is the insulating part, and the preset gap creates an open circuit between the first sub-connector and the second sub-connector.

3. The intelligent host according to claim 2, characterized in that, The unlocking component also includes an insulating connector, which is connected between the first sub-connector and the second sub-connector.

4. The intelligent host according to claim 3, characterized in that, The insulating connector at least partially covers the first sub-connector and the second sub-connector.

5. The intelligent host according to claim 3, characterized in that, The insulating connector is connected to the first sub-connector via a heat-fusion structure, and / or the insulating connector is connected to the second sub-connector via a heat-fusion structure.

6. The intelligent host according to claim 2, characterized in that, Along the arrangement direction of the first fastening member and the second fastening member, the preset gap is greater than or equal to 1 mm and less than or equal to 15 mm.

7. The intelligent host according to claim 1, characterized in that, Both the first and second fastening components are metal parts. The unlocking component includes a metal connector. The first end of the metal connector is connected to the first fastening component, and the second end of the metal connector is connected to the second fastening component. The first end and the first fastening component are separated by an insulating spacer, and / or the second end and the second fastening component are separated by an insulating spacer.

8. The intelligent host according to claim 7, characterized in that, The insulating spacer includes insulating adhesive.

9. The intelligent host according to claim 7, characterized in that, The insulating spacer includes an insulating layer formed on the outer surface of the first end of the metal connector, and / or the insulating layer formed on the outer surface of the second end of the metal connector.

10. The intelligent host according to claim 9, characterized in that, The insulating layer is formed on the outer surface of the metal connector.

11. The intelligent host according to claim 1, characterized in that, The main body of the host protrudes outward toward the unlocking component to form a protrusion. The first fastening component and the second fastening component are connected to the protrusion. The smart host also includes a housing. The housing covers the protrusion and forms a first accommodating space between the housing and the protrusion. The first fastening component, the second fastening component and the unlocking component are all disposed within the first accommodating space.

12. The intelligent host according to claim 11, characterized in that, The unlocking component includes a metal connector and a pressing component. The metal connector is connected between the first fastening component and the second fastening component. The pressing component is connected to the metal connector. The housing has a first through hole that communicates with the first accommodating space. The pressing component is disposed corresponding to the first through hole and is at least partially located within the first through hole. The housing has through holes corresponding to the first fastening component and the second fastening component. The first fastening component and the second fastening component pass through the corresponding through holes and are connected to the buckle structure.

13. The intelligent host according to claim 12, characterized in that, The pressing component includes a pressing body and a first snap-fit ​​part. The first snap-fit ​​part is disposed on the outer periphery of the pressing body and snaps into the inner wall of the housing.

14. The intelligent host according to claim 13, characterized in that, The pressing component further includes a first anti-mistake structure, which is located on the outer periphery of the pressing body, and the housing is provided with a second anti-mistake structure corresponding to the first anti-mistake structure.

15. The intelligent host according to claim 13, characterized in that, The pressing body has a pressing surface on the side opposite to the main body, and the pressing surface is provided with an anti-slip structure.

16. The intelligent host according to any one of claims 1-15, characterized in that, The smart host includes a reset component connected to the first fastening component, the reset component being used to provide a force for the first fastening component to reset toward the unlocking component, and / or, the reset component connected to the second fastening component, the reset component being used to provide a force for the second fastening component to reset toward the unlocking component.

17. The intelligent host according to claim 1, characterized in that, The smart host also includes a fixed bracket connected to the host body. The first fastening member and the second fastening member are rotatably connected to the fixed bracket. The fixed bracket includes a plurality of positioning parts configured to perform positioning when the fixed bracket is installed on the smart host.

18. A smart wearable device, characterized in that, The smart wearable device includes a wearable component and a smart host as described in claims 1-17, wherein the wearable component is connected to the bottom support of the smart host.