Intelligent host and intelligent wearable device
By stacking the control chip, power connector, and vibration motor along the thickness direction in the intelligent host, the space of the accommodating cavity is rationally utilized, solving the problem of excessive device space occupation and realizing compact device layout and lightweight design.
Patent Information
- Application Number
- CN202521487699.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-15
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-07-15
AI Technical Summary
How to make reasonable use of the internal space of smartwatches and smart bracelets, and reduce the space occupied by internal components to achieve a thinner and lighter design.
By stacking the control chip, power connector, and vibration motor along the thickness direction of the intelligent host, the space of the accommodating cavity is rationally utilized, the device arrangement is compact, and the space occupied by the internal devices is reduced.
This achieves a compact arrangement of internal components in the intelligent host, reducing the space occupied by the components and contributing to a thinner and lighter design.
Smart Images

Figure CN224682556U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of smart wearable device technology, and in particular to a smart host and a smart wearable device. Background Technology
[0002] Smart wearable electronic products are increasingly favored by consumers, with smartwatches and smart bracelets receiving particular attention. Compared to other wearable electronic products, smartwatches and smart bracelets are not only small and portable, but also maximize the fulfillment of consumers' functional needs, such as calls, voice communication, and video calls. To accommodate these growing functions, smartwatches and smart bracelets are also acquiring more and more internal components, leading to a corresponding increase in their size.
[0003] Therefore, how to make reasonable use of internal space to arrange the internal components of smartwatches and smart bracelets and reduce the space occupied by the internal components has become an urgent problem to be solved. Utility Model Content
[0004] This utility model discloses a smart host and a smart wearable device. By stacking the control chip, the power connection part and the vibration motor along the thickness direction of the smart host, the space of the accommodating cavity is reasonably utilized. The internal components of the smart host are arranged compactly, which can reduce the space occupied by the internal components.
[0005] In a first aspect, this utility model discloses a smart host, including a housing, a motherboard, a battery, a vibration motor, and a display module. The housing has a receiving cavity and an opening communicating with the receiving cavity. The motherboard is disposed in the receiving cavity. The battery includes a main body and a power receiving part. The main body is disposed on the side of the motherboard facing the opening. The power receiving part is disposed on the periphery of the main body. Along the thickness direction of the smart host, the side of the power receiving part facing the motherboard is spaced apart from the motherboard. The side of the power receiving part facing the opening is disposed away from the opening relative to the side of the main body facing the opening. The power receiving part is electrically connected to the motherboard. The vibration motor is disposed in the receiving cavity and located in the gap between the power receiving part and the motherboard. The vibration motor is electrically connected to the motherboard. The display module includes a display screen and a control chip. The display screen covers the opening and is connected to the motherboard. Along the thickness direction of the smart host, the display screen and the side of the power receiving part facing the opening are spaced apart. The control chip is electrically connected to the display screen and located in the gap between the display screen and the power receiving part.
[0006] As an optional implementation, in this embodiment of the present invention, the smart host further includes a protective structure and a first electrical connector. The protective structure is wrapped around the power receiving part and has a notch. One end of the first electrical connector is electrically connected to the power receiving part, and the other end of the first electrical connector passes through the notch and is electrically connected to the motherboard.
[0007] As an optional implementation, in this embodiment of the present invention, the protective structure includes a protective plate, which is configured in a wound shape to form a first internal space and a second internal space separated along the thickness direction. The protective plate has a notch communicating with the second internal space. The power receiving part is located in the first internal space. The first electrical connector includes a first connector, a second connector, and a flexible circuit board. The first connector is located in the second internal space and is electrically connected to the power receiving part. The second connector is electrically connected to the main board. One end of the flexible circuit board is electrically connected to the first connector, and the other end of the flexible circuit board passes through the notch and is electrically connected to the second connector.
[0008] As an optional implementation, in this embodiment of the present invention, the power receiving part is disposed on the first side of the main body, and the display module further includes a second electrical connector, one end of which is electrically connected to the display screen, and the other end of which extends along the second side of the main body toward the motherboard and is electrically connected to the motherboard. The second side is the side of the main body adjacent to the first side.
[0009] As an optional implementation, in this embodiment of the present invention, the smart host further includes a mounting bracket, which is disposed on the side of the motherboard facing the power receiving part, and the vibration motor is disposed on the mounting bracket, with the width direction of the vibration motor being arranged in the same direction as the thickness direction.
[0010] As an optional implementation, in this embodiment of the present invention, the mounting bracket includes a first plate, a second plate, and a third plate connected in sequence, with the first plate and the third plate spaced apart along the height direction of the vibration motor. The side of the first plate away from the second plate is connected to the main board, and the side of the third plate away from the second plate is connected to the main board. The vibration motor is located between the first plate and the third plate.
[0011] As an optional implementation, in this embodiment of the present invention, the power receiving part is disposed on the first side of the main body, and the smart host further includes an antenna structure, the antenna structure being electrically connected to the motherboard, and the antenna structure extending from the motherboard along the third side of the main body toward the opening, the third side being the side of the main body adjacent to the first side.
[0012] As an optional implementation, in this embodiment of the present invention, the housing is constructed as an annular portion and a central portion, the central portion being connected to the inner side of the annular portion, the opening and the accommodating cavity being disposed in the central portion, and along the thickness direction, a portion of the antenna structure protrudes upward from the annular portion.
[0013] As an optional implementation, in this embodiment of the present invention, the housing is provided with a receiving groove and a through hole. The receiving groove is used for detachable fitting of the earphone. The through hole connects the receiving cavity and the receiving groove. The smart host includes a power connector. One end of the power connector is electrically connected to the motherboard, and the other end of the power connector protrudes through the through hole to the receiving groove for electrically connecting with the earphone to supply power to the earphone when the earphone is located in the receiving groove. The projection of the power connector on the bottom of the receiving cavity is located at the corner of the projection of the motherboard on the bottom of the receiving cavity.
[0014] As an optional implementation, in this embodiment of the present invention, the display screen includes a circuit board, a plurality of LED beads, a light-shielding bracket, and a glass cover plate. The circuit board is electrically connected to the motherboard. The plurality of LED beads are arranged in an array on the circuit board and are electrically connected to the circuit board. The light-shielding bracket is stacked on the circuit board and has a plurality of through slots, each of which accommodates a plurality of LED beads. The glass cover plate is stacked on the side of the light-shielding bracket away from the circuit board.
[0015] As an optional implementation, in this embodiment of the present invention, the through slot includes a circular slot and a square slot that are interconnected. The square slot extends through to the side of the light-shielding bracket facing the circuit board, and the circular slot extends through to the side of the light-shielding bracket facing the glass cover. Each of the LED beads is configured to match the shape of the square slot, and multiple LED beads are respectively accommodated in multiple square slots.
[0016] Secondly, this utility model discloses a smart wearable device, including a wearable component and a smart host, wherein the wearable component is connected to the smart host.
[0017] Compared with the prior art, the embodiments of this utility model have at least the following beneficial effects:
[0018] In this embodiment of the invention, a housing is formed with a cavity and an opening communicating with the cavity. The motherboard is housed within the cavity, and the main body of the battery is located on the side of the motherboard facing the opening. A power connection is located around the periphery of the main body. Along the thickness direction of the smart host, the side of the power connection facing the motherboard is spaced apart from the motherboard. This space allows for the placement of a vibration motor, which is located within the cavity and between the power connection and the motherboard. Simultaneously, along the thickness direction, the side of the power connection facing the opening is positioned further away from the opening than the side of the main body facing the opening. Thus, when the display screen of the display module is covered by the opening, a gap is formed between the display screen and the power connection. This gap allows for the placement of the control chip of the display module, which is electrically connected to the display screen and located between the display screen and the power connection. Therefore, by stacking the control chip, the power connection, and the vibration motor along the thickness direction of the smart host, the space of the cavity is utilized efficiently, resulting in a compact arrangement of the internal components and reducing the space occupied by the internal components. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0020] Figure 1 This is a schematic diagram of the structure of an intelligent host disclosed in Embodiment 1 of this utility model;
[0021] Figure 2 This is a schematic diagram of the structure of a smart host (display module separated) disclosed in Embodiment 1 of this utility model;
[0022] Figure 3 This is an exploded structural diagram of an intelligent host disclosed in Embodiment 1 of this utility model;
[0023] Figure 4 This is another exploded structural diagram of a smart host disclosed in Embodiment 1 of this utility model;
[0024] Figure 5 This is a schematic diagram of a battery and protection structure disclosed in Embodiment 1 of this utility model;
[0025] Figure 6 This is a schematic diagram of the structure of a drive motor and mounting bracket disclosed in Embodiment 1 of this utility model;
[0026] Figure 7 This is an exploded structural diagram of a display module disclosed in Embodiment 1 of this utility model;
[0027] Figure 8 This is a schematic diagram of the structure of a light-shielding bracket disclosed in Embodiment 1 of this utility model;
[0028] Figure 9 This is a schematic diagram of the structure of the smart wearable device disclosed in Embodiment 2 of this utility model.
[0029] Explanation of main figure symbols
[0030] 100. Smart host; 10. Housing; 10a. Receiving cavity; 10b. Opening; 10c. Receiving groove; 11. Annular part; 12. Central part; 20. Main board; 30. Battery; 31. Main body; 31a. First side; 31b. Second side; 31c. Third side; 32. Power connection part; 40. Vibration motor; 50. Display module; 51. Display screen; 511. Circuit board; 512. Lamp bead; 513. Light shield bracket; 5131. Through groove; 5131a. Square groove; 5131b. Circular groove; 514. 515 Glass cover plate; 52 Light-diffusing film; 53 Control chip; 60 Second electrical connector; 60 Protective structure; 60a Notch; 61 First internal space; 62 Second internal space; 70 First electrical connector; 71 First connector; 72 Second connector; 73 Flexible circuit board; 80 Mounting bracket; 81 First board; 82 Second board; 83 Third board; 90 Antenna structure; a. Earphone; b. Electrical connector; 200 Smart wearable device; 201 Wearable component; x, Thickness direction. Detailed Implementation
[0031] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0032] In this invention, the terms "upper," "lower," "left," "right," "front," "rear," "top," "bottom," "inner," "outer," "middle," "vertical," "horizontal," "lateral," and "longitudinal" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. These terms are primarily for the purpose of better describing this 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.
[0033] 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 some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this utility model according to the specific circumstances.
[0034] 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 utility model based on the specific circumstances.
[0035] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.
[0036] This utility model discloses a smart host and a smart wearable device. By stacking the control chip, the power connection part and the vibration motor along the thickness direction of the smart host, the space of the accommodating cavity is rationally utilized. The internal components of the smart host are arranged compactly, which can reduce the space occupied by the internal components.
[0037] Example 1
[0038] Please see Figures 1 to 4This is a schematic diagram of the structure of a smart host 100 according to Embodiment 1 of the present invention. The smart host 100 includes a housing 10, a motherboard 20, a battery 30, a vibration motor 40, and a display module 50. The housing 10 has a receiving cavity 10a and an opening 10b communicating with the receiving cavity 10a. The motherboard 20 is disposed in the receiving cavity 10a. The battery 30 includes a main body 31 and a power receiving part 32. The main body 31 is disposed on the side of the motherboard 20 facing the opening 10b, and the power receiving part 32 is disposed on the periphery of the main body 31. Along the thickness direction x of the smart host 100, the side of the power receiving part 32 facing the motherboard 20 is spaced apart from the motherboard 20, and the side of the power receiving part 32 facing the opening is also spaced apart. One side of 10b is disposed away from the opening 10b on the side of the main body 31 facing the opening 10b. The power receiving part 32 is electrically connected to the main board 20. The vibration motor 40 is disposed in the accommodating cavity 10a and is located in the gap between the power receiving part 32 and the main board 20. The vibration motor 40 is electrically connected to the main board 20. The display module 50 includes a display screen 51 and a control chip 52. The display screen 51 covers the opening 10b and is connected to the main board 20. Along the thickness direction x of the smart host 100, the display screen 51 and the power receiving part 32 are spaced apart on the side facing the opening 10b. The control chip 52 is electrically connected to the display screen 51 and is located in the gap between the display screen 51 and the power receiving part 32.
[0039] In this embodiment, a housing 10 forms a receiving cavity 10a and an opening 10b communicating with the receiving cavity 10a. The main board 20 is arranged in the receiving cavity 10a. The main body 31 of the battery 30 is located on the side of the main board 20 facing the opening 10b. The power receiving part 32 is located on the periphery of the main body 31. Along the thickness direction x of the smart host 100, the side of the power receiving part 32 facing the main board 20 is spaced apart from the main board 20. In this way, the vibration motor 40 can be arranged in this space. The vibration motor 40 is located in the receiving cavity 10a and is located in the space between the power receiving part 32 and the main board 20. Meanwhile, along the thickness direction x, the side of the power receiving part 32 facing the opening 10b is positioned away from the side of the main body part 31 facing the opening 10b. Thus, when the display screen 51 of the display module 50 covers the opening 10b, a gap is formed between the display screen 51 and the power receiving part 32. This gap allows the control chip 52 of the display module 50 to be placed, and the control chip 52 is electrically connected to the display screen 51, located in the gap between the display screen 51 and the power receiving part 32. Therefore, by stacking the control chip 52, the power receiving part 32, and the vibration motor 40 along the thickness direction x of the smart host 100, the space of the accommodating cavity 10a is utilized efficiently, resulting in a compact arrangement of internal components in the smart host 100 and reducing the space occupied by the internal components.
[0040] The vibration motor 40 is used to generate vibration under the control of the circuit board 511 under specific conditions or scenarios, thereby enabling the smart host 100 to provide vibration feedback or vibration reminders to the user. For example, vibration feedback upon receiving a call or upon touch.
[0041] In some embodiments, such as Figure 4 and Figure 5 As shown, the smart host 100 also includes a protective structure 60 and a first electrical connector 70. The protective structure 60 covers the power receiving part 32 and has a notch 60a. One end of the first electrical connector 70 is electrically connected to the power receiving part 32, and the other end of the first electrical connector 70 passes through the notch 60a and is electrically connected to the motherboard 20. In this way, by using the protective structure 60 to cover the power receiving part 32, the power receiving part 32 can be protected, preventing the power receiving part 32 from being damaged by collisions or scratches from other internal components of the smart host 100, and ensuring that the battery 30 can continue to be electrically connected to the motherboard 20 through the power receiving part 32. On the other hand, by providing a notch 60a in the protective structure 60, one end of the first electrical connector 70 is electrically connected to the power receiving part 32, and the other end of the first electrical connector 70 passes through the notch 60a and is electrically connected to the motherboard 20. This achieves electrical connection between the battery 30 and the motherboard 20, while the notch 60a avoids interference caused by the protective structure 60 to the wiring of the first electrical connector 70.
[0042] For example, the protective structure 60 includes a protective plate configured in a rolled shape to form a first internal space 61 and a second internal space 62 separated along the thickness direction x. The protective plate has a notch 60a communicating with the second internal space 62. The electrical contact portion 32 is located in the first internal space 61. The first electrical connector 70 includes a first connector 71, a second connector 72, and a flexible circuit board 73. The first connector 71 is located in the second internal space 62 and is electrically connected to the electrical contact portion 32. The second connector 72 is electrically connected to the main board 20. One end of the flexible circuit board 73 is electrically connected to the first connector 71, and the other end of the flexible circuit board 73 passes through the notch 60a and is electrically connected to the second connector 72. In this way, on the one hand, by designing the protective structure 60 as a rolled protective plate, the thickness of the protective structure 60 is small, and the overall volume is small, which can reduce the space occupied by the protective structure 60. On the other hand, the first internal space 61 and the second internal space 62 formed by the protective plate respectively accommodate the electrical contact portion 32 and the first connector 71, and the protective structure 60 can protect the electrical contact portion 32 and the first connector 71 simultaneously. Meanwhile, the second internal space 62 is connected by the notch 60a. One end of the flexible circuit board 73 is electrically connected to the first connector 71, while the other end can pass through the notch 60a and be electrically connected to the second connector 72. The second connector 72 is then electrically connected to the motherboard 20, thus realizing the electrical connection between the battery 30 and the motherboard 20.
[0043] In some embodiments, the power receiving part 32 is located on the first side 31a of the main body 31. The display module 50 also includes a second electrical connector 53. One end of the second electrical connector 53 is electrically connected to the display screen 51, and the other end of the second electrical connector 53 extends along the second side 31b of the main body 31 towards the motherboard 20 and is electrically connected to the motherboard 20. The second side 31b is the side of the main body 31 adjacent to the first side 31a. In this way, by electrically connecting one end of the second electrical connector 53 to the display screen 51 and the other end to the motherboard 20, an electrical connection between the display screen 51 and the motherboard 20 can be achieved. On the other hand, the power receiving part 32 is located on the first side 31a of the main body part 31, and the other end of the second electrical connector 53 extends along the second side 31b of the main body part 31. Since the second side 31b is adjacent to the first side 31a, the power receiving part 32 and the second electrical connector 53 are located on different sides of the main body part 31. This allows for the reasonable use of the peripheral space of the battery 30 for the electrical connection wiring between the display screen 51 and the motherboard 20, improving the compactness of the internal components of the smart host 100. The overall size of the smart host 100 is smaller, which is conducive to achieving a thin and light design.
[0044] For example, such as Figure 4 and Figure 6 As shown, the smart host 100 also includes a mounting bracket 80, which is located on the side of the motherboard 20 facing the power connection part 32. The vibration motor 40 is located on the mounting bracket 80, and the width direction of the vibration motor 40 is aligned with the thickness direction x. In this way, by aligning the width direction of the vibration motor 40 with the thickness direction x, the vibration motor 40 is installed vertically, saving horizontal space in the housing 10 compared to a horizontal installation (i.e., the height direction of the vibration motor 40 is aligned with the thickness direction x). Especially when a magnetic element is provided in the accommodating cavity 10a to magnetically fix the earphone a to the smart host 100, the vibration motor 40 and the magnetic element can maintain a large distance, avoiding interference between them. On the other hand, since the vibration motor 40 is installed vertically, the pins of the vibration motor 40 cannot be oriented toward the motherboard 20 (the pin orientation is perpendicular to the orientation of the motherboard 20), which means that the vibration motor 40 cannot be mounted on the motherboard 20. Therefore, in this embodiment, the vibration motor 40 is installed using the mounting bracket 80.
[0045] In some embodiments, the mounting bracket 80 includes a first plate 81, a second plate 82, and a third plate 83 connected in sequence. The first plate 81 and the third plate 83 are spaced apart along the height direction of the vibration motor 40. The side of the first plate 81 away from the second plate 82 is connected to the main board 20, and the side of the third plate 83 away from the second plate 82 is connected to the main board 20. The vibration motor 40 is located between the first plate 81 and the third plate 83. Thus, by connecting the first plate 81, the second plate 82, and the third plate 83 in sequence to form a semi-enclosed structure, the vibration motor 40 is protected when located between the first plate 81 and the third plate 83. Simultaneously, by connecting the side of the first plate 81 away from the second plate 82 to the main board 20, and the side of the third plate 83 away from the second plate 82 to the main board 20, the vibration motor 40 is mounted on the side of the main board 20 facing the ground, and the installation stability of the vibration motor 40 is high.
[0046] In some embodiments, such as Figure 4 and Figure 5 As shown, the power receiving part 32 is located on the first side 31a of the main body 31. The smart host 100 also includes an antenna structure 90, which is electrically connected to the motherboard 20. The antenna structure 90 extends from the motherboard 20 along the third side 31c of the main body 31 toward the opening 10b. The third side 31c is the side of the main body 31 adjacent to the first side 31a. In this way, by electrically connecting the antenna structure 90 to the motherboard 20, the smart host 100 can use the antenna structure 90 to communicate and realize functions such as Bluetooth, GPS, WIFI, and NFC. On the other hand, the power receiving part 32 is located on the first side 31a of the main body part 31, and the antenna structure 90 extends along the third side 31c of the main body part 31. Since the third side 31c is adjacent to the first side 31a, the power receiving part 32 and the antenna structure 90 are located on different sides of the main body part 31. This allows for the reasonable use of the peripheral space of the battery 30 to arrange the antenna structure 90, improving the compactness of the internal components of the smart host 100. The overall size of the smart host 100 is small, which is conducive to achieving a lightweight and thin design.
[0047] Furthermore, the antenna structure 90 is located on the third side 31c, while the second electrical connector 53 is located on the second side 31b. Thus, the antenna structure 90 and the second electrical connector 53 are located on opposite sides of the main body 31, and the two are further separated by the main body 31. This avoids affecting the communication of the antenna structure 90 while making full use of the peripheral space of the battery 30.
[0048] In some embodiments, combined with Figure 2As shown, the housing 10 is constructed with an annular portion 11 and a central portion 12. The central portion 12 is connected to the inner side of the annular portion 11. An opening 10b and a receiving cavity 10a are located in the central portion 12. Along the thickness direction x, a portion of the antenna structure 90 protrudes upward from the annular portion 11. Thus, by constructing the housing 10 with an annular portion 11 and a central portion 12, and with the receiving cavity 10a located in the central portion 12, the motherboard 20 is positioned at the center of the housing 10, facilitating electrical connection between the motherboard 20 and the internal components of the smart host 100 (e.g., the display screen 51, the battery 30, the antenna structure 90, etc.). Furthermore, the upward protrusion of the antenna structure 90 along the thickness direction x minimizes the obstruction of the antenna structure 90 by the annular portion 11, improving the performance of the antenna structure 90.
[0049] For example, the housing 10 is provided with a receiving groove 10c and a through hole. The receiving groove 10c is used for detachable fitting of the earphone a. The through hole connects the receiving cavity 10a and the receiving groove 10c. The smart host 100 includes a power connector b. One end of the power connector b is electrically connected to the motherboard 20, and the other end of the power connector b protrudes through the through hole to the receiving groove 10c, so as to electrically connect with the earphone a to supply power to the earphone a when the earphone a is located in the receiving groove 10c. The projection of the power connector b on the bottom of the receiving cavity 10a is located at the corner of the projection of the motherboard 20 on the bottom of the receiving cavity 10a. In this way, on the one hand, the receiving groove 10c allows the earphone a to be detachably fitted, and the power connector b passes through the through hole. One end of the power connector b is electrically connected to the motherboard 20, and the other end protrudes to the receiving groove 10c. Then, when the earphone a is placed in the receiving groove 10c, the power connector b can be used to electrically connect with the earphone a to supply power to the earphone a. On the other hand, by using the corner space of the housing 10 to distribute the power connector b, the projection of the power connector b on the bottom of the housing 10a is located at the corner of the projection of the motherboard 20 on the bottom of the housing 10a, thus avoiding occupying the space in the housing 10a used to house the motherboard 20.
[0050] In some embodiments, such as Figure 7 and Figure 8As shown, the display screen 51 includes a circuit board 511, multiple LED beads 512, a light-shielding bracket 513, and a glass cover plate 514. The circuit board 511 is electrically connected to the main board 20. The multiple LED beads 512 are arranged in an array on the circuit board 511 and are electrically connected to the circuit board 511. The light-shielding bracket 513 is stacked on the circuit board 511 and has multiple through slots 5131, each of which accommodates a multiple LED bead 512. The glass cover plate 514 is stacked on the side of the light-shielding bracket 513 facing away from the circuit board 511. In this way, by having multiple LED beads 512 arranged in an array on the circuit board 511, the circuit board 511 drives the multiple LED beads 512 to emit light, which can then pass through the glass cover plate 514, allowing the user to view the content displayed on the display screen 51. Furthermore, the multiple slots 5131 of the light-shielding bracket 513 respectively accommodate multiple LED beads 512, thereby shielding the multiple LED beads 512 from light crosstalk between them and improving the display effect of the display screen 51.
[0051] For example, the through slot 5131 includes interconnected circular slots 5131b and square slots 5131a. The square slot 5131a extends to the side of the light-shielding bracket 513 facing the circuit board 511, and the circular slot 5131b extends to the side of the light-shielding bracket 513 facing the glass cover plate 514. Each LED bead 512 is configured to match the shape of the square slot 5131a, and multiple LED beads 512 are respectively accommodated in multiple square slots 5131a. In this way, on the one hand, by configuring each LED bead 512 to match the shape of the square slot 5131a, and using multiple square slots 5131a to accommodate multiple LED beads 512, multiple LED beads 512 can be positioned and assembled. On the other hand, by using the circular slot 5131b to transmit light from the LED beads 512, the light is circular in shape and the light edge is relatively clear, which can improve the display effect of the display screen 51.
[0052] Optionally, the display screen 51 also includes a light-diffusing film 515, which is disposed on the side of the light-shielding bracket 513 facing the circuit board 511. In this way, the light-diffusing film 515 is used to perform light-diffusing processing on the light emitted by the multiple LED beads 512, so that the light displayed on the display screen 51 is more uniform and the user's viewing experience is improved.
[0053] This utility model provides a smart host 100, which has a housing 10 forming a cavity 10a and an opening 10b communicating with the cavity 10a. A motherboard 20 is disposed in the cavity 10a. The main body 31 of the battery 30 is disposed on the side of the motherboard 20 facing the opening 10b. A power connection part 32 is disposed on the periphery of the main body 31. Along the thickness direction x of the smart host 100, the side of the power connection part 32 facing the motherboard 20 is spaced apart from the motherboard 20. In this way, a vibration motor 40 can be disposed in this space. The vibration motor 40 is disposed in the cavity 10a and located in the space between the power connection part 32 and the motherboard 20. Meanwhile, along the thickness direction x, the side of the power receiving part 32 facing the opening 10b is positioned away from the side of the main body part 31 facing the opening 10b. Thus, when the display screen 51 of the display module 50 covers the opening 10b, a gap is formed between the display screen 51 and the power receiving part 32. This gap allows the control chip 52 of the display module 50 to be placed, and the control chip 52 is electrically connected to the display screen 51, located in the gap between the display screen 51 and the power receiving part 32. Therefore, by stacking the control chip 52, the power receiving part 32, and the vibration motor 40 along the thickness direction x of the smart host 100, the space of the accommodating cavity 10a is utilized efficiently, resulting in a compact arrangement of internal components in the smart host 100 and reducing the space occupied by the internal components.
[0054] Example 2
[0055] Please see Figure 9 This is a schematic diagram of the structure of a smart wearable device 200 provided in Embodiment 2 of the present invention. The smart wearable device 200 includes a wearable component 201 and a smart host 100. The wearable component 201 is connected to the smart host 100.
[0056] This utility model embodiment 2 provides a smart wearable device 200. The internal components of the smart host 100 are arranged in a compact manner, which can reduce the space occupied by the internal components and is conducive to the thin and light design of the smart host 100.
[0057] The above provides a detailed description of a smart host and a smart wearable device disclosed in the embodiments of this utility model. This article uses specific examples to illustrate the principles and implementation methods of this utility model. The description of the above embodiments is only for the purpose of helping to understand the smart host and smart wearable device of this utility model and its core ideas. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this utility model. Therefore, the content of this specification should not be construed as a limitation of this utility model.
Claims
1. A smart host, characterized in that, include: A housing having a receiving cavity and an opening communicating with the receiving cavity; A motherboard, wherein the motherboard is disposed in the accommodating cavity; The battery includes a main body and a power receiving part. The main body is disposed on the side of the motherboard facing the opening. The power receiving part is disposed on the periphery of the main body along the thickness direction of the smart host. The side of the power receiving part facing the motherboard is spaced apart from the motherboard. The side of the power receiving part facing the opening is disposed away from the opening relative to the side of the main body facing the opening. The power receiving part is electrically connected to the motherboard. A vibration motor is disposed in the accommodating cavity and located in the gap between the power receiving part and the main board, and the vibration motor is electrically connected to the main board; as well as The display module includes a display screen and a control chip. The display screen covers the opening and is connected to the motherboard. Along the thickness direction of the smart host, the display screen and the power receiving part are spaced apart on the side facing the opening. The control chip is electrically connected to the display screen and is located in the gap between the display screen and the power receiving part.
2. The intelligent host according to claim 1, characterized in that, The intelligent host also includes a protective structure and a first electrical connector. The protective structure is wrapped around the power receiving part and has a notch. One end of the first electrical connector is electrically connected to the power receiving part, and the other end of the first electrical connector passes through the notch and is electrically connected to the motherboard.
3. The intelligent host according to claim 2, characterized in that, The protective structure includes a protective plate configured in a wound shape to form a first internal space and a second internal space separated along the thickness direction. The protective plate has a notch communicating with the second internal space. The power receiving portion is located in the first internal space. The first electrical connector includes a first connector, a second connector, and a flexible circuit board. The first connector is located in the second internal space and is electrically connected to the power receiving portion. The second connector is electrically connected to the main board. One end of the flexible circuit board is electrically connected to the first connector, and the other end of the flexible circuit board passes through the notch and is electrically connected to the second connector.
4. The intelligent host according to claim 1, characterized in that, The power receiving part is located on the first side of the main body. The display module also includes a second electrical connector. One end of the second electrical connector is electrically connected to the display screen, and the other end of the second electrical connector extends along the second side of the main body towards the motherboard and is electrically connected to the motherboard. The second side is the side of the main body adjacent to the first side.
5. The intelligent host according to any one of claims 1 to 4, characterized in that, The intelligent host also includes a mounting bracket, which is located on the side of the motherboard facing the power receiving part. The vibration motor is located on the mounting bracket, and the width direction of the vibration motor is arranged in the same direction as the thickness direction.
6. The intelligent host according to claim 5, characterized in that, The mounting bracket includes a first plate, a second plate, and a third plate connected in sequence, with the first plate and the third plate spaced apart along the height direction of the vibration motor. The side of the first plate away from the second plate is connected to the main board, and the side of the third plate away from the second plate is connected to the main board. The vibration motor is located between the first plate and the third plate.
7. The intelligent host according to any one of claims 1 to 3, characterized in that, The power receiving part is located on the first side of the main body. The smart host also includes an antenna structure, which is electrically connected to the motherboard. The antenna structure extends from the motherboard along the third side of the main body toward the opening. The third side is the side of the main body adjacent to the first side.
8. The intelligent host according to claim 7, characterized in that, The housing is configured as an annular portion and a central portion, the central portion being connected to the inner side of the annular portion, the opening and the accommodating cavity being located in the central portion, and along the thickness direction, a portion of the antenna structure protrudes upward from the annular portion.
9. The intelligent host according to any one of claims 1 to 4, characterized in that, The housing has a receiving groove and a through hole. The receiving groove is used for detachable fitting of the earphone. The through hole connects the receiving cavity and the receiving groove. The smart host includes a power connector. One end of the power connector is electrically connected to the motherboard. The other end of the power connector protrudes through the through hole to the receiving groove for electrically connecting to the earphone to supply power when the earphone is located in the receiving groove. The projection of the power connector on the bottom of the receiving cavity is located at the corner of the projection of the motherboard on the bottom of the receiving cavity.
10. The intelligent host according to any one of claims 1 to 4, characterized in that, The display screen includes a circuit board, multiple LED beads, a light-shielding bracket, and a glass cover. The circuit board is electrically connected to the motherboard. The multiple LED beads are arranged in an array on the circuit board and are electrically connected to the circuit board. The light-shielding bracket is stacked on the circuit board and has multiple through slots, each of which accommodates multiple LED beads. The glass cover is stacked on the side of the light-shielding bracket opposite to the circuit board.
11. The intelligent host according to claim 10, characterized in that, The through slot includes a circular slot and a square slot that are interconnected. The square slot extends through to the side of the light-shielding bracket facing the circuit board, and the circular slot extends through to the side of the light-shielding bracket facing the glass cover. Each of the LED beads is configured to match the shape of the square slot, and multiple LED beads are respectively accommodated in multiple square slots.
12. A smart wearable device, characterized in that, It includes a wearable component and a smart host as described in any one of claims 1 to 11, wherein the wearable component is connected to the smart host.