Intelligent sound box

By replacing the traditional mechanical structure with a power component and telescopic assembly in the speaker enclosure, the microphone can be automatically stored and retrieved, solving the noise problem of the mechanical reciprocating structure and improving the user experience and sense of technology.

CN223553419UActive Publication Date: 2025-11-14JIANGXI TAIDE INTELLIGENCE TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422645482.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-31
Publication Date
2025-11-14
Estimated Expiration
2034-10-31

AI Technical Summary

Technical Problem

Traditional speaker devices rely on mechanical reciprocating structures for microphone storage and retrieval, which generates noise, affects user experience, and lacks a sense of technology.

Method used

The traditional mechanical pressing structure is replaced by a power component and a telescopic assembly, which realizes the automatic storage and retrieval of the microphone. The telescopic assembly is driven by the power component to extend and retract within the guide, avoiding physical impact and mechanical friction noise.

Benefits of technology

It significantly reduces noise levels during microphone storage and retrieval, improving the user experience and enhancing the product's modern, technological feel.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an intelligent sound box, comprising a sound box main body, the sound box main body is provided with a mounting groove, the mounting groove is internally provided with a storage device, the storage device comprises a guide member, the guide member is located in the sound box main body, and the guide member is located in the sound box main body; the telescopic assembly is located in the guide piece, and the telescopic assembly stretches out and draws back along the guide piece; and the power piece is arranged on the guide piece, the power piece is in transmission connection with the telescopic assembly, and the power piece drives the telescopic assembly to stretch out and draw back. The power piece and the telescopic assembly are used for replacing traditional mechanical reciprocating motion, the power piece is used for controlling the telescopic assembly to stretch out and draw back in the guiding piece, storage and taking-out of the microphone are achieved, noise generated by physical impact and mechanical friction is avoided, and the microphone can be stored and taken out conveniently. Therefore, the noise level is obviously reduced in the microphone storage and taking-out process.
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Description

Technical Field

[0001] This utility model belongs to the field of speaker equipment technology and relates to a smart speaker. Background Technology

[0002] In current speaker device technology, microphone storage and retrieval typically rely on a mechanical reciprocating structure. This structure primarily uses torsion springs, locking mechanisms, and guide slots to lock and release the microphone. Specifically, when the microphone needs to be stored, the user presses the microphone, triggering the torsion spring in the reciprocating structure to cause the locking mechanism to strike the guide slot, thereby locking the microphone in place. Similarly, when the microphone needs to be removed, the user presses the microphone again to release the locking state.

[0003] However, this traditional storage method has some significant problems. First, the impact of the fasteners against the guide groove under the action of the torsion spring easily generates noise, which not only affects the user experience but may also cause interference in quiet environments. Second, from a technological perspective, the previous purely mechanical reciprocating storage structure lacks the sophistication and advancement of modern technological products, which to some extent limits the product's market appeal. Utility Model Content

[0004] The present invention provides a smart speaker that replaces the traditional mechanical pressing structure with a power component and a telescopic component to achieve automatic microphone storage and retrieval, aiming to solve the problem of noise generated during microphone storage.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A smart speaker includes a speaker body with a mounting slot. A storage device is installed in the mounting slot. The storage device includes: a guide member located inside the speaker body; a telescopic component located inside the guide member and extending and retracting along the guide member; and a power member disposed on the guide member and drivingly connected to the telescopic component, driving the telescopic component to extend and retract.

[0007] Furthermore, the power component includes a rotary drive mechanism; the telescopic assembly includes a lifting component and a rotating component, the rotating component and the drive end of the rotary drive mechanism being connected by a transmission connection; the lifting component and the rotating component are connected by a transmission structure, the transmission structure being used to convert the rotational motion of the rotating component into the lifting motion of the lifting component.

[0008] Furthermore, the transmission structure includes a first thread on the lifting member and a second thread on the rotating member, the first thread and the second thread being adapted to each other.

[0009] Furthermore, the rotating component includes a rotating cylinder, and the second thread is disposed inside the rotating cylinder;

[0010] The lifting component includes a lifting cylinder, and the first thread is disposed on the outside of the lifting cylinder.

[0011] Furthermore, the guide member is provided with a guide portion, and the telescopic assembly is provided with a limiting portion that matches the guide portion. The telescopic assembly extends and retracts along the guide portion through the limiting portion.

[0012] Furthermore, the guide portion includes a guide protrusion, and the limiting portion includes a limiting groove.

[0013] Furthermore, a magnetic suction layer is provided inside the lifting component.

[0014] Furthermore, the opening of the guide member is provided with a sensing component.

[0015] Furthermore, a placement layer is formed hollow between the bottom of the rotating component and the bottom of the guide component, the placement layer being used to place electronic components.

[0016] Furthermore, the rotating component is provided with reinforcing ribs.

[0017] The beneficial effects of this utility model are as follows: This utility model uses a power component and a telescopic assembly to replace the traditional mechanical reciprocating motion. The power component controls the telescopic assembly to extend and retract within the guide, thereby realizing the storage and retrieval of the microphone. This design avoids noise generated by physical impact and mechanical friction, thus significantly reducing the noise level during the storage and retrieval of the microphone. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the main structure of the speaker of this utility model.

[0019] Figure 2 This is an exploded view of the structure of the storage device of this utility model.

[0020] Figure 3 This is a cross-sectional view of the structure of the storage device of this utility model.

[0021] Figure 4 This is a cross-sectional view of the storage device of this utility model in its stored state.

[0022] Figure 5 This is a cross-sectional view of the storage device of this utility model in its unstored state.

[0023] Figure 6 This is a schematic diagram of the guide component structure of this utility model.

[0024] Figure 7This is a schematic diagram of the rotating component structure of this utility model.

[0025] Figure 8 This is a schematic diagram of the lifting component structure of this utility model.

[0026] The reference numerals in the attached drawings are explained as follows: 1-Guide component; 2-Power component; 3-Telescopic assembly; 4-Storage device; 5-Lifting component; 6-Rotating component; 7-Magnetic layer; 8-First thread; 9-Second thread; 10-Guide part; 11-Limiting part; 12-Microphone; 13-Placement layer; 14-Speaker body; 15-Mounting groove; 16-Reinforcing rib. Detailed Implementation

[0027] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. It should be understood that this application is not limited to the exemplary embodiments disclosed herein. All other embodiments obtained by those skilled in the art based on the embodiments of this application without creative effort are within the scope of protection of this application.

[0028] In the description of this utility model, it should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0029] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this utility model, "a plurality of" means two or more, unless otherwise explicitly specified.

[0030] In the embodiments of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; 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; they can refer to the internal communication of two components or the interaction between two components. For those skilled in the art, the specific meaning of the above terms in this utility model can be understood according to the specific circumstances.

[0031] This utility model provides an appendix. Figures 1-8 In this embodiment of the present invention, a smart speaker includes a speaker body 14, a mounting groove 15, and a storage device 4 installed in the mounting groove 15. The storage device 4 includes: a guide 1 located inside the speaker body 14; a telescopic component 3 located inside the guide 1 and extending and retracting along the guide 1; and a power component 2 mounted on the guide 1 and connected to the telescopic component 3 via a transmission connection, wherein the power component 2 drives the telescopic component 3 to extend and retract.

[0032] Furthermore, the speaker body 14 is provided with a storage device 4 for storing the microphone 12. The storage structure of the guide member 1 can be a cavity for accommodating the microphone 12. The cavity depth is greater than or equal to the length of the microphone 12. The cavity includes an opening through which the microphone 12 can be inserted vertically or horizontally into the cavity along its length to achieve insertion-type storage. A microphone fixing structure can be provided inside or outside the opening to fix the microphone 12 after storage. The opening can be set at any position on the speaker body, including the top, side, and bottom surfaces of the speaker body 14.

[0033] Specifically, the guide member 1 is located inside the speaker body 14, providing a precise movement path for the telescopic assembly 3. This ensures that the telescopic assembly 3 can move smoothly and accurately along the predetermined path, thereby avoiding deviation or swaying and reducing wear and noise. The telescopic assembly 3, located inside the guide member 1, is directly responsible for storing and retrieving the microphone 12. When the microphone 12 is needed, the telescopic assembly 3 rises from the mounting slot 15 to extend the microphone 12. When it is not needed, the telescopic assembly 3 retracts into the mounting slot 15 to safely store the microphone 12. The power unit 2 is the core drive mechanism of the entire storage device 4. It is connected to the telescopic assembly 3 and can drive the telescopic assembly 3 to extend and retract by receiving signals from the control system. For example, when the user issues the command "use microphone", the power unit 2 will drive the telescopic assembly 3 to rise and extend the microphone 12. When the user issues the command "store microphone", the power unit 2 will drive the telescopic assembly 3 to retract and safely store the microphone 12 into the mounting slot 15. More specifically, in a smart speaker, the user issues commands to the smart speaker via voice commands or other control methods. After receiving the command, the speaker's control system parses and converts it into a corresponding control signal. The control signal is sent to the power component 2, triggering it to start working. The power component 2 drives the telescopic component 3 to perform corresponding telescopic actions according to the command. The telescopic component 3 moves smoothly along the guide component 1 to complete the removal or storage of the microphone 12. After the entire process is completed, the system returns to standby mode, waiting for the next command.

[0034] Specifically, the telescopic component 3 can be a spiral lifting structure, using a spiral thread to achieve vertical movement; it can also be a gear and rack structure, where the meshing of the gear and rack can convert rotational motion into linear motion to achieve telescopic function; it can also be a slider guide rail structure, where telescopic function is achieved by a slider sliding on a fixed guide rail, usually used in conjunction with guide component 1 to ensure linearity of movement; or it can be a ball screw structure, where the ball screw converts rotational motion into linear motion, and the precise displacement of telescopic movement is achieved by the rotation of the ball screw driven by power component 2.

[0035] The power component 2 includes a rotary drive mechanism; the telescopic assembly 3 includes a lifting component 5 and a rotating component 6, with the rotating component 6 connected to the drive end of the rotary drive mechanism via a transmission structure. The lifting component 5 and the rotating component 6 are connected through a transmission structure, which converts the rotational motion of the rotating component 6 into the lifting motion of the lifting component 5. Specifically, the rotary drive structure is the core of the power component 2, typically a motor, which provides rotational power. The motor's rotation can be output through its shaft. The rotating component 6 is directly connected to the drive end of the rotary drive mechanism, and rotates when the motor rotates. The lifting component 5 is part of the telescopic assembly 3 and is responsible for the actual lifting motion. It is connected to the rotating component 6 through a transmission structure, which converts the rotational motion of the rotating component 6 into the linear lifting motion of the lifting component 5. The transmission structure includes threads, gears, belts, etc. More specifically, when an operation command is received (such as a user request to use microphone 12), the control system activates the rotary drive mechanism (motor). The drive end of the motor begins to rotate, and this rotational motion is transmitted to the rotating part 6 through the connection with the rotating part 6. The rotational motion of the rotating part 6 is converted into the linear motion of the lifting part 5 through the transmission structure. If a thread is used, the rotation of the rotating part 6 will cause the thread to push the lifting part 5 up or down. As the lifting part 5 rises or falls, the microphone 12 connected to it is pushed out or stored back inside the speaker body 14. Once the microphone 12 reaches the predetermined position, the control system will stop the operation of the motor to ensure that the microphone 12 is in the correct position.

[0036] Furthermore, the rotating component 6 can be a threaded screw or lead screw, and the lifting component 5 includes a nut that matches the screw. This nut is fixed to the lifting cylinder or other lifting components. When the screw rotates, the nut moves up and down along the screw, thereby driving the lifting component 5 to rise or fall. The rotating component 6 can be a rotating shaft with gears, and the lifting component 5 includes a rack that meshes with the gears. This rack is fixed to the lifting cylinder or other lifting components. When the gears rotate, the rack is driven to move up and down, thereby driving the lifting component 5 to rise or fall. The rotating component 6 can be a crankshaft, one end of which is connected to the rotating shaft of the power component 2. The lifting component 5 includes a connecting rod connected to the other end of the crankshaft. The other end of the connecting rod is connected to the lifting cylinder. When the crankshaft rotates, the slider is driven to move up and down through the movement of the connecting rod, and the lifting cylinder also moves accordingly.

[0037] In this embodiment, the transmission structure includes a first thread 8 on the lifting member 5 and a second thread 9 on the rotating member 6, the first thread 8 and the second thread 9 being mutually adapted and connected. A guide portion 10 is provided inside the guide member 1, and a limiting portion 11 matching the guide portion 10 is provided on the lifting member 5. The cooperation between the guide portion 10 and the limiting portion 11 ensures that the lifting member 5 rises or falls smoothly along a predetermined path, such as when the lifting cylinder or other moving parts move. This design prevents deviation or swaying, thereby reducing wear, noise, and operational errors. The cooperation between the limiting portion 11 and the guide portion 10 also defines the starting and ending points of the lifting member 5's movement, ensuring that it moves only within the permissible range, helping to protect the equipment from damage caused by excessive stretching or compression.

[0038] Furthermore, the guide part 10 can be a slide rail, and the limiting part 11 can be a slider that is slidably connected to the slide rail; the guide part 10 can also be a protrusion, and the limiting part 11 can also be a groove that matches the protrusion; the guide part 10 can also be a baffle, and the limiting part 11 can also be a protrusion, with the baffle pressing against the protrusion to limit its displacement.

[0039] Specifically, when the power component 2 drives the rotating component 6 to rotate, due to the matching between the two threads, the rotational motion of the rotating component 6 is converted into the linear motion of the lifting cylinder through thread engagement. The threaded connection allows for very precise control of the position of the lifting component 5, because for every certain angle of rotation, the lifting component 5 will rise or fall by a fixed pitch distance. Thread engagement provides a smooth transmission mechanism, reducing vibration and noise, especially in slow or fine motion control, where the effect is significant. Moreover, the thread can also be a trapezoidal thread, which has a self-locking characteristic, meaning that the thread will not loosen on its own without the action of external force, thus maintaining the stability of the lifting component 5. In summary, the design of the first thread 8 and the second thread 9 enables the intelligent microphone 12 storage device 4 to achieve automatic storage and retrieval of the microphone 12 in a simple, efficient, and precise manner.

[0040] Furthermore, the first thread 8 can be located inside or outside the lifting member 5. When the first thread 8 is located outside the lifting member 5, a worm gear transmission method can be adopted. The rotating member 6 includes a worm wheel and a worm. The motor drives the worm wheel, which in turn drives the worm to rotate. The worm is then connected to the lifting member 5 through the thread on the outside of the lifting member 5, driving the lifting member 5 to rise or fall. The rotating member 6 can also be cylindrical, with a thread inside. The lifting member 5 is placed inside the rotating member 6, and the thread on the outside of the lifting member 5 is connected to the thread inside the rotating member 6. The lifting member 5 is driven to rise or fall by rotating the rotating member 6.

[0041] The rotating component 6 includes a rotating cylinder, and the second thread 9 is disposed inside the rotating cylinder. The lifting component 5 includes a lifting cylinder, and the first thread 8 is disposed outside the lifting cylinder.

[0042] Specifically, the rotating component 6 is cylindrical, and the lifting component 5 is also cylindrical. The lifting cylinder is placed inside the rotating cylinder, and the lifting cylinder and the rotating cylinder are connected by threads. Through the precise fit of the internal and external threads, the rotation of the rotating cylinder can be directly converted into the vertical movement of the lifting cylinder. This conversion mechanism reduces additional moving parts, thereby reducing the risk of mechanical failure, while ensuring the continuity and smoothness of movement. Furthermore, since both the rotating component 6 and the lifting component 5 are cylindrical, and the lifting cylinder can be completely placed inside the rotating cylinder, the entire device occupies a small space, making it easy to integrate into space-constrained environments. Further, the upper sides of the rotating cylinder and the lifting cylinder are provided with outwardly extending support plates. The diameter of the rotating plate is adapted to the inner diameter of the guide component 1, preventing the rotating component 6 from shifting or swaying due to external forces during extension and retraction, thus reducing wear and noise.

[0043] The guide part 10 includes a guide protrusion, and the limiting part 11 includes a limiting groove. Through the cooperation of the guide protrusion and the limiting groove, precise positioning of the telescopic component 3 (such as a lifting cylinder) can be achieved. The guide protrusion is embedded in the limiting groove and slidably connected thereto. Specifically, the guide protrusion can be elongated or similar in shape. This design ensures that the telescopic component 3 can accurately reach the predetermined position during movement, i.e., the lifting component 5 rises and falls along the direction of the guide protrusion, thereby ensuring the correct placement or removal of the microphone 12. Simultaneously, the structure of the guide protrusion and the limiting groove provides additional support points, increasing the contact area and enhancing the overall system stability. This helps reduce offset or vibration caused by vibration or other external forces, thereby improving the reliability of the equipment.

[0044] For further information, please refer to... Figure 6 The guide post has an inclined surface near the opening of the guide member 1. The closer the inclined surface is to the opening, the closer it is to the inner wall of the guide member 1. This guide shape ensures that the microphone 12 will not be bumped or knocked when it is placed in the storage device 4 due to sharp edges.

[0045] The lifting component 5 is equipped with a magnetic layer 7. Specifically, the lifting component 5 can be equipped with a magnetic layer 7 on its bottom or side. The magnetic layer 7 can provide additional magnetic force to help the microphone 12 remain stable during lifting and lowering, reducing microphone 12 shaking or noise caused by vibration or movement. Moreover, when placing the microphone 12, the user does not need to precisely align it with the placement slot, as the magnetic layer 7 can automatically attach the microphone 12 to the correct position.

[0046] Specifically, the magnetic layer 7 can be a neodymium iron boron magnet, an alnico magnet, or a flexible magnetic material, forming a soft magnetic adsorption layer on the surface of the lifting component 5. This layer can provide adsorption force and adapt to microphones 12 of different shapes. Alternatively, a thin magnetic adsorption layer can be formed on the surface of the lifting component 5 through a special process, which can provide adsorption force while maintaining the lightweight nature of the lifting component 5.

[0047] When the microphone 12 is connected to the speaker body 14, it will cause feedback if it is too close to the speaker body 14. The speaker will emit a piercing feedback sound, which will greatly affect the user experience. Especially when the speaker body 14 houses the microphone 12, the probability of feedback is even higher due to the impact and friction sound between the microphone 12 and the speaker body 14 during the housing process.

[0048] Based on this, the microphone 12 can be automatically turned off when it is close to the speaker body 14, preventing feedback from occurring when the microphone 12 is close to the speaker body 14 or when the speaker body 14 houses the microphone 12.

[0049] Specifically, a sensing component is provided inside the guide member 1. Specifically, the sensing component is provided inside the guide member 1, which allows the sensor component to transmit a signal to control the microphone 12 to turn off as soon as the microphone 12 is inserted into the guide member 1, so as to prevent the friction and impact sounds of the microphone 12 being amplified and generating huge noise.

[0050] More specifically, the sensing component of the guide 1 can be located at the opening or bottom of the guide 1. If the sensing component is located at the opening of the guide 1, when the microphone 12 is inserted into the guide 1, the sensing component can generate a corresponding sensing signal to turn off the microphone 12 immediately after insertion. Alternatively, the sensing component can be located at the end of the guide 1 away from the opening, which can also generate a corresponding sensing signal to turn off the microphone 12 when it is inserted near the sensing component. This also prevents the sensing component from being exposed due to the opening facing outwards, thus preventing component aging.

[0051] In some embodiments, the speaker body 14 may be provided with a screen, and may also be provided with a movable structure and a screen storage slot. The screen can be closed by the movable structure and stored in the screen storage slot. The storage device 4 may be located below the screen. After the screen is closed, the microphone 12 is completely covered by the screen and completely stored inside the speaker body 14.

[0052] In some embodiments, to prevent feedback when the microphone 12 approaches the speaker body 14 or when the speaker body 14 houses the microphone 12, the microphone 12 can be automatically powered off when it approaches the speaker body 14. Specifically, a sensing component can be provided on the microphone 12 and / or the speaker body 14. The sensing component can be used to sense the distance between the speaker body 14 and the microphone 12, and generate a corresponding sensing signal when the distance between the speaker body 14 and the microphone 12 is less than or equal to a preset distance. This sensing signal is then sent to the control device of the microphone 12, or the sensing signal is sent to the control device of the microphone 12 through the speaker body 14, so that the control device controls the microphone 12 to power off. More specifically, the sensing component can be one or more, and can be a Hall element, a distance sensor, an infrared sensor, or any other single electronic component that can sense the distance between the speaker and the microphone 12, or any combination of electronic components.

[0053] In some more specific embodiments, the sensing elements are Hall effect sensors and magnetic elements, respectively disposed at corresponding positions on the speaker and microphone 12. For example, a magnetic element is disposed at the corresponding position on the microphone 12 and a Hall effect sensor is disposed at the corresponding position on the speaker body 14, or a Hall effect sensor is disposed at the corresponding position on the microphone 12 and a magnetic element is disposed at the corresponding position on the speaker body 14. The trigger condition for the Hall effect sensor can be that the detected magnetic field strength reaches a preset value. When the detected magnetic field strength is greater than or equal to the preset value, it means that the distance between the speaker and the microphone 12 meets the requirement to trigger feedback, at which point the microphone 12 needs to be turned off.

[0054] In some preferred embodiments, a magnetic element is provided at the corresponding position of the microphone 12 and a Hall element is provided at the corresponding position of the speaker. Since users carry the microphone 12 around when singing karaoke, they may move to places with strong magnetic fields. If the Hall element is located on the microphone 12, it may cause the microphone 12 to shut down incorrectly, thus affecting the experience. When the microphone 12 is housed in a cavity, that is, when the microphone 12 is inserted into the cavity, the Hall element can be located at the opening of the speaker cavity or at the end away from the opening.

[0055] In some more specific embodiments, the sensing components are Hall elements and charging elements, with the charging element including a charging structure and a receiving structure. The speaker body 14 is provided with a charging structure, and the microphone 12 is provided with a receiving structure. It is important to understand that a magnetic field change occurs the instant the charging structure comes into contact with the receiving structure. Based on this, the trigger condition for the Hall element can be set to detect a change in the magnetic field. When the Hall element detects a change in the magnetic field, it means that the speaker's charging structure is in contact with the microphone 12's receiving structure. At this time, the distance between the speaker and the microphone 12 is sufficient to trigger a feedback sound, requiring the microphone 12 to be turned off. Specifically, the charging structure can be located on the speaker surface or corresponding to the storage structure. When the microphone 12 storage device is a cavity, i.e., the microphone 12 is inserted into the cavity, the charging structure is located at the end of the speaker cavity away from the opening, and the receiving structure is correspondingly located on the bottom or end face of the microphone 12. The Hall element can be located near the charging structure, allowing the Hall element to sense the magnetic field change caused by the instant of power-on.

[0056] In some more specific embodiments, the sensing element is a Hall element and a charging element. The charging element includes a charging structure and a receiving structure. The speaker body 14 is provided with a charging structure, and the microphone 12 is provided with a receiving structure. In addition, magnetic elements may be provided on the speaker body 14 and the microphone 12. The magnetic elements are located outside the sensing trigger range of the Hall element. The magnetic elements are used to fix the microphone 12 rather than trigger the Hall element.

[0057] A placement layer 13 is hollowly formed between the bottom of the rotating component 6 and the bottom of the guide component 1, and the placement layer 13 is used to place electronic components. A first wireless charging component is laid inside the placement layer 13, and a second wireless charging component matching the first wireless charging component is provided at the bottom of the microphone 12. By laying the first wireless charging component in the placement layer 13 formed between the bottom of the rotating component 6 and the bottom of the guide component 1, and matching it with the second wireless charging component at the bottom of the microphone 12, the wireless charging function of the microphone 12 is realized. This design allows the microphone 12 to automatically charge when stored, without the need for the user to manually connect the charging cable, providing great convenience. Since the microphone 12 can be charged while stored, the user does not need to worry about the microphone 12 running out of power. It is guaranteed to have sufficient power every time the microphone 12 is taken out, and it is always ready to use, thereby improving the ease of use. Furthermore, integrating the wireless charging component into the smart microphone 12 storage device 4 makes the design of the entire smart speaker more compact and integrated, improving the overall aesthetics of the product and the user experience.

[0058] The rotating component 6 is provided with reinforcing ribs 16. (Reference) Figure 7The rotating component 6 is provided with elongated reinforcing ribs 16. When the motor drives the rotating component 6, it generates torque on the rotating component 6. For example, the motor applies a clockwise torque to the lower end of the rotating component 6, while the lifting component 5 applies a counterclockwise torque to the upper end of the rotating component 6. Under the combined action of these two torques, if the rotating component 6 is not strong enough, it is prone to damage. The design of the reinforcing ribs 16 can significantly improve the overall strength and rigidity of the rotating component 6. By adding additional textures or uneven structures to the material surface, the torque generated by the motor can be effectively dispersed and absorbed, thereby reducing the risk of damage caused by stress concentration. Specifically, the reinforcing ribs 16 can also be spiral, mesh, or wavy, etc.

[0059] It should also be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes said element.

[0060] The above description of the disclosed embodiments enables those skilled in the art to make or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A smart speaker, comprising a speaker body, wherein the speaker body is provided with a mounting slot, characterized in that, A storage device is installed in the mounting slot, and the storage device includes: Guide component, the guide component being located within the speaker body; A telescopic assembly, located within the guide member, extends and retracts along the guide member; A power component is mounted on the guide component and is connected to the telescopic assembly via a transmission connection. The power component drives the telescopic assembly to extend and retract.

2. The smart speaker according to claim 1, characterized in that, The power component includes a rotary drive mechanism; The telescopic assembly includes a lifting component and a rotating component, and the rotating component is connected to the drive end of the rotation drive mechanism. The lifting component and the rotating component are connected by a transmission structure, which is used to convert the rotational motion of the rotating component into the lifting motion of the lifting component.

3. A smart speaker according to claim 2, characterized in that, The transmission structure includes a first thread on the lifting component and a second thread on the rotating component, wherein the first thread and the second thread are adapted to be connected to each other. The guide member has a guide portion inside, and the lifting member has a limiting portion that matches the guide portion. The lifting member extends and retracts along the guide portion through the limiting portion.

4. A smart speaker according to claim 3, characterized in that, The rotating component includes a rotating cylinder, and the second thread is disposed inside the rotating cylinder; The lifting component includes a lifting cylinder, and the first thread is disposed on the outside of the lifting cylinder.

5. A smart speaker according to claim 3, characterized in that, The guide portion includes a guide protrusion, and the limiting portion includes a limiting groove.

6. A smart speaker according to claim 2, characterized in that, The lifting component is equipped with a magnetic suction layer.

7. A smart speaker according to claim 1, characterized in that, The guide component is equipped with a sensing element.

8. A smart speaker according to claim 2, characterized in that, A placement layer is formed in the hollow space between the bottom of the rotating component and the bottom of the guide component, the placement layer being used to place electronic components.

9. A smart speaker according to claim 2, characterized in that, The rotating component is provided with reinforcing ribs.