Clock with dynamic suspension display form

By designing a clock with a dynamic floating display, the floating control device and rotation device are used to realize the dynamic movement of the floating element within the floating area. Combined with lighting effects and display components, the problem of the clock's monotonous display form is solved, and the visual effect and sense of technology are enhanced.

CN223926769UActive Publication Date: 2026-02-17GRAVITY (NANJING) TECH CO LTD
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Patent Information

Application Number
CN202520706583.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2026-02-17
Estimated Expiration
2035-04-14

AI Technical Summary

Technical Problem

Existing clocks have a limited range of forms, lack decorative function and visual appeal, and fail to meet people's pursuit of quality of life and lifestyle.

Method used

A clock with a dynamic levitation display is designed, including a levitation base, a levitation control device, and a rotation device. The levitation control device forms a levitation area on the levitation base, and magnetic materials are used to realize the dynamic movement of the levitation element within the levitation area. Combined with lighting effects and display components, the visual performance is enhanced.

Benefits of technology

It achieves rich dynamic expression, enhances the visual effect and technological feel of the clock, creates a futuristic and mysterious atmosphere, and meets the demand for high quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a clock with a dynamic suspension display form. The clock comprises a suspension base, a suspension control device, a rotating device and a suspender, the suspension control device is arranged in the suspension base so as to form a suspension area used for jacking the suspender on the suspension base; the rotating device is in transmission connection with the suspension control device and used for driving the suspension control device to move so as to change the position of the suspension area on the suspension base and drive the suspender to rotate around the suspension base. The utility model provides the clock with the dynamic suspension display form, the clock has abundant dynamic display forms, a good visual effect is achieved, and the requirement of people for high quality is met.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of non-contact technology, in particular to a clock with dynamic floating display form. BACKGROUND

[0002] Clocks are mainly used to display time and measure time intervals, usually having a display part indicating time and a mechanism keeping time in some way; clocks have various forms, such as mechanical clocks, electronic clocks, and atomic clocks.

[0003] In the prior art, the basic functions of mechanical clocks, electronic clocks, and atomic clocks are only to show time changes, so the display forms are relatively single, often cannot provide more personalized or multifunctional display modes, lack of decoration function and visual appeal, and cannot meet people's pursuit of quality life and life style.

[0004] Therefore, there is currently a need for a solution to at least one of the above problems. CONTENT OF THE INVENTION

[0005] In view of at least one of the defects in the prior art, the present application proposes a clock with dynamic floating display form.

[0006] The technical solution adopted by the present application to solve at least one of the above technical problems is:

[0007] A clock with dynamic floating display form, comprising: a floating base, a floating control device, a rotating device, and a floating body;

[0008] The floating control device is arranged in the floating base to form a floating area above the floating base for supporting the floating body;

[0009] The rotating device is drivingly connected to the floating control device for driving the floating control device to move to change the position of the floating area on the floating base and drive the floating body to rotate around the floating base.

[0010] In one specific embodiment, the floating control device is provided with a position detection module, an outer ring fixing member, an electromagnetic coil, and an inner ring magnet;

[0011] The position detection module is located in the central region of the floating control device, the electromagnetic coil and the inner ring magnet are arranged along the circumferential direction of the position detection module, one inner ring magnet is arranged between two adjacent electromagnetic coils, and the outer ring fixing member is sleeved on the outer peripheral region of the electromagnetic coil and the inner ring magnet.

[0012] In one specific embodiment, the outer ring fixing member is provided with a plurality of outer ring magnets, all of which are arranged in sequence along the circumferential direction of the outer ring fixing member, and the end of the outer ring magnet away from the rotating device is arranged opposite in polarity to the end of the inner ring magnet away from the rotating device.

[0013] In one specific embodiment, the central region of each of the inner ring magnets is a first center, and the shape of the region formed by the connecting line of all the first centers comprises an equilateral triangle.

[0014] And / or, the central region of each of the electromagnetic coils is a second center, and the shape of the region formed by the connecting line of all the second centers comprises an equilateral triangle.

[0015] In one specific embodiment, the suspension base is further provided with a transmission bracket and a counterweight;

[0016] The transmission bracket is arranged on the output end of the rotating device, the rotating device is connected to the suspension control device at one end of the transmission bracket through a transmission assembly, and the counterweight is arranged at the end of the transmission bracket away from the suspension control device.

[0017] In one specific embodiment, the suspension base is further provided with a soft light cover and a lamp ring assembly;

[0018] The lamp ring assembly is arranged on the inner wall of the suspension base, the soft light cover is arranged on the lamp ring assembly, and the soft light cover comprises a transparent part for transmitting light of the lamp ring assembly.

[0019] In one specific embodiment, the suspension base is further provided with a shell;

[0020] The shell comprises an upper shell and a bottom shell, one of the two is provided with a clamping groove, and the other is provided with a clamping block, the clamping block is embedded in the clamping groove, and the detachable connection of the upper shell and the bottom shell is realized.

[0021] In one specific embodiment, the shell is further provided with a mainboard, the bottom of the bottom shell is provided with a through hole matched with the interface of the mainboard, and the through hole is further communicated with a guide groove.

[0022] In one specific embodiment, the bottom shell is further provided with a support for supporting the mainboard.

[0023] In one specific embodiment, the suspension base is further provided with a display assembly for displaying time, and the inner wall of the upper shell is provided with a clamping groove for connecting the display assembly.

[0024] Advantages:

[0025] The application provides a clock with a dynamic suspension display form, which has rich dynamic display forms and achieves good visual effects to meet the demand of people for high quality; specifically, the mutual cooperation of the suspension control device, the rotating device and the suspension enhances the dynamic display form of the clock and creates an atmosphere full of future and mysterious colors. BRIEF DESCRIPTION OF DRAWINGS

[0026] In order to more clearly illustrate the technical solutions of the embodiments of the application, the drawings needed to be used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some of the embodiments of the application, and therefore should not be regarded as a limitation to the scope. For those skilled in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.

[0027] Figure 1 It is a structure explosion drawing of the clock with a dynamic suspension display form of the embodiment.

[0028] Figure 2 It is a perspective view of the clock with a dynamic suspension display form of the embodiment.

[0029] Figure 3 It is a connection diagram of the internal structure of the upper shell of the embodiment.

[0030] Figure 4 It is a connection diagram of the internal structure of the bottom shell of the embodiment.

[0031] Figure 5 It is a structure drawing of the bottom surface of the suspension base of the embodiment.

[0032] Figure 6 It is the internal structure of the suspension control device of the embodiment. Figure 1 ;

[0033] Figure 7 It is the internal structure of the suspension control device of the embodiment. Figure 2 .

[0034] LIST OF REFERENCES:

[0035] 1-Suspension base; 11-Suspension area; 12-Transmission bracket; 13-Counterweight; 14-Softbox; 15-Lamp ring assembly; 16-Housing; 161-Upper shell; 1611-Clamping groove; 162-Bottom shell; 163-Clamping block; 164-Clamping slot; 17-Main board; 171-Interface; 172-Through hole; 173-Guide groove; 18-Support component; 19-Display assembly; 2-Suspension control device; 21-Position detection module; 22-Outer ring fixing component; 23-Electromagnetic coil; 24-Inner ring magnet; 25-Outer ring magnet; 26-First center; 27-Second center; 3-Rotation device; 31-Transmission assembly; 4-Suspension element. Detailed Implementation

[0036] Various embodiments of this disclosure will be described more fully below. This disclosure may have various embodiments, and adjustments and changes may be made therein. However, it should be understood that there is no intention to limit the various embodiments of this disclosure to the specific embodiments disclosed herein, but rather this disclosure should be understood to cover all adjustments, equivalents, and / or alternatives falling within the spirit and scope of the various embodiments of this disclosure.

[0037] In the following, the terms “comprising” or “may include”, which may be used in various embodiments of this disclosure, indicate the presence of the disclosed functions, operations, or elements, and do not limit the addition of one or more functions, operations, or elements. Furthermore, as used in various embodiments of this disclosure, the terms “comprising,” “having,” and their cognates are intended only to indicate a particular feature, number, step, operation, element, component, or combination of the foregoing, and should not be construed as primarily excluding the presence of one or more other features, numbers, steps, operations, elements, components, or combinations of the foregoing, or the possibility of adding one or more combinations of the foregoing.

[0038] In various embodiments of this disclosure, the expression "or" or "at least one of A and / or B" includes any combination or all combinations of the words listed simultaneously. For example, the expression "A or B" or "at least one of A and / or B" may include A, may include B, or may include both A and B.

[0039] The terms used in the various embodiments of this disclosure (such as "first," "second," etc.) may modify various components in the various embodiments, but do not limit the corresponding components. For example, the above terms do not limit the order and / or importance of the components. The above terms are only used for the purpose of distinguishing one component from others. For example, a first user device and a second user device refer to different user devices, although both are user devices. For example, a first component may be referred to as a second component without departing from the scope of the various embodiments of this disclosure, and similarly, a second component may also be referred to as a first component.

[0040] It should be noted that if a description is made of "connecting" one component to another, then the first component can be directly connected to the second component, and a third component can be "connected" between the first and second components. Conversely, when a component is "directly connected" to another component, it can be understood that there is no third component between the first and second components.

[0041] The term "user" as used in various embodiments of this disclosure may refer to a person using an electronic device or a device using an electronic device (e.g., an artificial intelligence electronic device).

[0042] The terminology used in the various embodiments of this disclosure is for the purpose of describing particular embodiments only and is not intended to limit the various embodiments of this disclosure. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by one of ordinary skill in the art to which the various embodiments of this disclosure pertain. Terms (such as those defined in a generally used dictionary) are to be interpreted as having the same meaning as in the context of the relevant technical field and are not to be interpreted as having an idealized or overly formal meaning, unless clearly defined in the various embodiments of this disclosure.

[0043] Example

[0044] This application provides a clock with a dynamically floating display format, combined with... Figure 1 and Figure 2 As shown, it includes: a suspension base 1, a suspension control device 2, a rotation device 3, and a suspension element 4;

[0045] The levitation control device 2 is disposed in the levitation base 1 to form a levitation region 11 on the levitation base 1 for supporting the levitation element 4. The levitation force of the levitation region 11 can be generated by itself or by the combined effect of the levitation element 4 placed above the levitation region 11. Figure 2 and Figure 4 As shown in the figure, the area enclosed by the dashed box is the example range of the floating region 11;

[0046] Specifically, in some embodiments of this application, the suspension control device 2 is provided with magnetic material to generate a constant magnetic field force, and the suspension element 4 is also made of magnetic material so that the visual effect of the suspension element 4 suspending on the suspension base 1 can be achieved through the mutual repulsion between the magnetic material of the suspension element 4 and the magnetic material of the suspension base 1.

[0047] Of course, there are no restrictions on the nature of the levitation force, the way the levitation region 11 supports the levitation element 4, or the specific materials of the levitation element 4 and the levitation base 1, as long as the function of the levitation region 11 supporting the levitation element 4 is satisfied.

[0048] The rotating device 3 is connected to the suspension control device 2 and is used to drive the suspension control device 2 to move, thereby changing the position of the suspension area 11 on the suspension base 1 and causing the suspension element 4 to rotate around the suspension base 1.

[0049] Specifically, in some embodiments of this application, the rotating device 3 can be a motor. By driving the suspension control device 2 through the rotating device 3, the position of the suspension control device 2 on the suspension base 1 is changed, thereby changing the position of the suspension area 11 on the suspension base 1. During the movement of the suspension area 11, it continuously supports the suspension element 4, thereby realizing the accompanying movement of the suspension element 4.

[0050] Of course, no restrictions are placed on the specific structure of the rotating device 3.

[0051] Understandably, the Dynamic Suspension 4 can float and move dynamically on the clock using magnetic levitation technology, enhancing the clock's dynamic aesthetics and technological feel, and enriching the clock's presentation or expression. Moreover, the dynamic movement of the Suspension 4 can break the traditional form of static clocks, attract users' attention, and enhance the technological atmosphere of the space.

[0052] More specifically, in some embodiments of this application, the movement of the levitation element 4 is controlled by the movement of the rotating device 3. For example, the time it takes for the levitation element 4 to circle once above the upper shell 161 can be one minute, one hour, or one day, thereby representing the passage of time and enhancing the sense of hierarchy in the clock's time representation.

[0053] Furthermore, such as Figure 6 and Figure 7 As shown, the suspension control device 2 is equipped with a position detection module 21, an outer ring fixing component 22, an electromagnetic coil 23, and an inner ring magnet 24;

[0054] The position detection module 21 is located in the central area of ​​the suspension control device 2. The electromagnetic coil 23 and the inner magnet 24 are spaced apart along the circumferential direction of the position detection module 21. An inner magnet 24 is provided between two adjacent electromagnetic coils 23. The outer ring fixing member 22 is sleeved on the outer area of ​​the electromagnetic coil 23 and the inner magnet 24.

[0055] Understandably, by controlling the action of the electromagnetic coil 23, the magnitude and direction of the magnetic force within the levitation region 11 can be adjusted, thereby enabling the levitation element 4 to rise, fall, or shift left and right. The position detection module 21 is located in the central region of the levitation control device 2, which facilitates the acquisition of the magnetic field state of the levitation region 11 generated by the levitation control device 2. It can also more accurately detect the position of the levitation element 4, thereby adjusting the electromagnetic force to keep the levitation element 4 in the ideal position. Furthermore, since the position detection module 21 is located in the central region, the signal transmission path is shorter and the response speed is relatively faster, which helps to accurately adjust the working state of the electromagnetic coil 23, making the dynamic movement of the levitation element 4 more stable.

[0056] Furthermore, the electromagnetic coil 23 and the inner magnet 24 are evenly spaced along the circumferential direction, which can also obtain a relatively uniform and stable magnetic field to a certain extent. The electromagnetic force acts evenly on the levitation 4, which reduces the possibility of the levitation 4 shifting or becoming unstable due to force imbalance to a certain extent, thereby maintaining the stability of the levitation 4 in a suspended state.

[0057] The outer ring fixing component 22 is sleeved on the outer area of ​​the electromagnetic coil 23 and the inner ring magnet 24, which can play a role in isolation and stabilization, enhance the stability of the relative position of the electromagnetic coil 23 and the inner ring magnet 24, and thus enhance the stability of the magnetic field in the levitation area 11.

[0058] Specifically, in some embodiments of this application, the inner ring magnets 24 are arranged with three inner ring magnets 24 and three electromagnetic coils 23 staggered in position, so that the overall magnetic force distribution is more uniform. The three inner ring magnets 24 and three electromagnetic coils 23 cooperate with each other and work together to support and suspend the levitation element 4, which is beneficial to improving the overall suspension control stability.

[0059] Furthermore, the outer ring fixing member 22 is provided with a plurality of outer ring magnets 25, all of which are arranged sequentially along the circumferential direction of the outer ring fixing member 22, and the polarity of the end of the outer ring magnet 25 facing away from the rotating device 3 is opposite to that of the end of the inner ring magnet 24 facing away from the rotating device 3.

[0060] In some embodiments of this application, both the inner magnet 24 and the outer magnet 25 are permanent magnets.

[0061] Specifically, in some embodiments of this application, the position detection module 21 is a Hall element or a laser ranging element, used to detect and collect the levitation state of the levitation 4, the electromagnetic coil 23 is used to generate a controllable electromagnetic field force through electrical signal control, and the inner magnet 24 is used to generate a constant magnetic field force.

[0062] The outer magnet 25 and the inner magnet 24 are arranged with opposite polarities on the same side, which can generate a stable equilibrium state under the action of magnetic force. The inner magnet 24 and the electromagnetic coil 23 are used to generate a levitation force that repels the levitation element 4, while the outer magnet 25 generates an attractive force that attracts the levitation element 4. Through the arrangement of the inner magnet 24, the electromagnetic coil 23 and the outer magnet 25, a dynamic balance is achieved between the levitation force and the attractive force. The attractive force of the outer magnet 25 can attract and bind the levitation element 4, thereby better maintaining the stability of the levitation element 4, suppressing vibration or displacement caused by rotation or external disturbances, and enhancing the overall stability of the levitation region 11.

[0063] Furthermore, such as Figure 7 As shown, the central region of each inner ring magnet 24 is the first center 26, and the shape of the region formed by the lines connecting all the first centers 26 includes an equilateral triangle.

[0064] And / or, the central region of each electromagnetic coil 23 is a second center 27, and the shape of the region formed by the lines connecting all the second centers 27 includes an equilateral triangle; the two triangles framed in the figure are the shapes of the regions formed by the first center 26 and the second center 27.

[0065] Understandably, two adjacent magnets with the same polarity facing upwards placed on a relatively horizontal plane will exert a stable attractive force on a permanent magnet with the same polarity on its lower surface at their center. Equal repulsive forces exist on both sides, preventing the upper magnet from rotating. Building upon this, if a third magnet is added to the two lower magnets, forming a surface, and these three magnets are arranged in an equilateral triangle, then each pair of magnets will exert the same force on the upper magnet. By placing a permanent magnet with the same polarity on its lower surface between each pair of magnets, the position of this combined structure in a relatively horizontal direction can be locked.

[0066] Using an equilateral triangle shape to configure the center of the inner magnet 24 and / or electromagnetic coil 23 helps to achieve a uniform distribution of the magnetic field throughout the entire levitation region 11, balances the magnetic force of the inner magnet 24 and / or electromagnetic coil 23, improves the stability of the levitation system, and reduces offset or fluctuations caused by uneven magnetic field. In addition, it helps to improve the control accuracy of electromagnetic coil 23. The symmetry of electromagnetic coil 23 allows the control signal to act more evenly on the entire system. For example, it helps to enhance the stability of the magnetic force when controlling the levitation 4 to rise or fall through electromagnetic coil 23, and also helps to enhance the flexibility of the offset direction control of levitation 4.

[0067] Furthermore, such as Figure 1 and Figure 4 As shown, the suspension base 1 is also equipped with a transmission bracket 12 and a counterweight 13;

[0068] The transmission bracket 12 is installed on the output end of the rotating device 3. The rotating device 3 is connected to the suspension control device 2 located at one end of the transmission bracket 12 through the transmission assembly 31. The counterweight 13 is located at the end of the transmission bracket 12 away from the suspension control device 2.

[0069] Specifically, in some embodiments of this application, the transmission component 31 can be a gear transmission structure. Of course, there are no restrictions on the specific implementation structure of the transmission component 31.

[0070] Understandably, the counterweight 13 helps to improve the stability of the suspension control device 2 during movement, thereby enhancing the stability of the generated suspension force. On the other hand, the counterweight 13 helps to balance the inertia of the suspension base 1, reducing the impact of the suspension control device 2 on the suspension base 1 during movement, balancing the weight distribution inside the suspension base 1, and to a certain extent preventing the suspension base 1 from shifting or becoming unstable during the movement of the suspension control device 2, thus maintaining the balance of the suspension base 1 to a certain extent.

[0071] Furthermore, such as Figure 1 As shown, the suspended base 1 is also provided with a diffuser 14 and a light ring assembly 15;

[0072] The light ring assembly 15 is disposed on the inner wall of the suspension base 1, and the diffuser 14 is disposed on the light ring assembly 15. The diffuser 14 includes a transparent portion for transmitting light from the light ring assembly 15.

[0073] Specifically, in some embodiments of this application, the transparent part may be made of transparent or translucent plastic material, and the middle part of the lamp ring assembly 15 is hollow.

[0074] Of course, there are no restrictions on the setting of transparent parts; the diffuser 14 can be made entirely of translucent plastic material.

[0075] The placement of the diffuser 14 and the light ring assembly 15 further enhances the visual appeal of the clock and optimizes its appearance. Furthermore, the dynamic lighting effects, in conjunction with the movement of the levitation element 4, enrich the clock's expressive forms and enhance its captivating effect.

[0076] Furthermore, combined Figure 1 , Figure 3 and Figure 4 As shown, the suspended base 1 is also provided with a housing 16;

[0077] The housing 16 includes an upper housing 161 and a bottom housing 162. One of the upper housing 161 and the bottom housing 162 is provided with a slot 164, and the other is provided with a block 163. The block 163 is used to be embedded in the slot 164 to realize the detachable connection between the upper housing 161 and the bottom housing 162.

[0078] Specifically, in some embodiments of this application, the upper shell 161 is provided with a card block 163, and the lower shell 162 is provided with a corresponding card slot 164, and the positions and shapes of the card block 163 and the card slot 164 are matched.

[0079] Of course, there are no restrictions on the position of the card block 163 on the upper shell 161 and the bottom shell 162.

[0080] The design of the slot 164 and the block 163 allows for easy connection and disassembly of the upper shell 161 and the bottom shell 162, greatly improving production efficiency or maintenance efficiency.

[0081] Furthermore, combined Figure 4 and Figure 5 As shown, a motherboard 17 is also provided in the housing 16, and a through hole 172 matching the interface 171 of the motherboard 17 is provided at the bottom of the bottom shell 162, and the through hole 172 is also connected to a guide groove 173.

[0082] The guide groove 173 makes it easier for the external charging cable to connect to the charging interface 171, making the insertion of the charging cable more convenient. When plugging or unplugging the charging cable, the cable can be guided to the correct position more intuitively, thus avoiding incorrect or unstable insertion.

[0083] Furthermore, the guide groove 173 also helps to ensure a tight connection between the charging cable and the interface 171, reducing loosening of the charging cable due to movement or pulling, thereby ensuring stability during the charging process.

[0084] Furthermore, such as Figure 1 As shown, a support member 18 for supporting the motherboard 17 is also provided on the bottom shell 162.

[0085] The motherboard 17 is relatively thin and fragile. The support component 18 can keep the motherboard 17 stable during use and prevent it from shifting or shaking. This avoids damage to the internal components of the motherboard 17 due to vibration. In addition, the support component 18 can effectively distribute the pressure on the motherboard 17 and reduce the risk of bending and deformation of the motherboard 17.

[0086] The support component 18 creates a large gap between the motherboard 17 and the inner wall of the bottom case 162, which helps to enhance air circulation and thus improve the heat dissipation of the motherboard 17.

[0087] Furthermore, such as Figure 3As shown, the floating base 1 is also provided with a display assembly 19 for displaying the time, and the inner wall of the upper shell 161 is provided with a snap-fit ​​groove 1611 for connecting the display assembly 19.

[0088] The display component 19 can clearly and in real time display the time, improving the convenience of checking the current time.

[0089] By combining the display assembly 19 with the base's locking slot 1611, a simple design and concentrated functions are achieved, the internal space layout is optimized, a compact design is realized, and the product's integration is improved. The locking slot 1611 helps to stabilize the connection of the display assembly 19 and, to some extent, helps to prevent the display assembly 19 from loosening or falling off due to external force or vibration.

[0090] The embodiments of this application have at least the following beneficial effects:

[0091] This application provides a clock with a dynamic floating display, which has rich dynamic expression and achieves good visual effect to meet people's demand for high quality. Specifically, the cooperation of the floating control device 2, the rotating device 3 and the levitation element 4 controls the dynamic floating movement of the levitation element 4, which enhances the dynamic expression of the clock and creates an atmosphere full of futuristic and mysterious colors.

[0092] Those skilled in the art will understand that the accompanying drawings are merely schematic diagrams of a preferred embodiment, and the modules or processes shown in the drawings are not necessarily essential for implementing this application.

[0093] Those skilled in the art will understand that the modules in the apparatus of the implementation scenario can be distributed within the apparatus of the implementation scenario as described, or they can be located in one or more apparatuses different from this implementation scenario, with corresponding changes. The modules of the above-described implementation scenario can be combined into one module, or they can be further divided into multiple sub-modules.

[0094] The serial numbers in this application are for descriptive purposes only and do not represent the superiority or inferiority of the implementation scenario.

[0095] The above disclosures are only a few specific implementation scenarios of this application. However, this application is not limited to these. Any variations that can be conceived by those skilled in the art should fall within the protection scope of this application.

Claims

1. A clock with a dynamic floating display, characterized in that, include: Suspension base, suspension control device, rotation device, and suspension element; The suspension control device is disposed in the suspension base to form a suspension area on the suspension base for supporting the levitated element; The rotating device is connected to the suspension control device and is used to drive the suspension control device to move, thereby changing the position of the suspension area on the suspension base and causing the suspension element to rotate around the suspension base.

2. A clock with a dynamic floating display according to claim 1, characterized in that, The levitation control device is equipped with a position detection module, an outer ring fixing component, an electromagnetic coil, and an inner ring magnet. The position detection module is located in the central area of ​​the levitation control device. The electromagnetic coil and the inner ring magnet are spaced apart along the circumferential direction of the position detection module. An inner ring magnet is provided between two adjacent electromagnetic coils. The outer ring fixing member is sleeved on the outer area of ​​the electromagnetic coil and the inner ring magnet.

3. A clock with a dynamic floating display according to claim 2, characterized in that, The outer ring fixing member is provided with a plurality of outer ring magnets, all of which are arranged sequentially along the circumferential direction of the outer ring fixing member. The end of the outer ring magnet facing away from the rotating device is arranged with opposite polarity to the end of the inner ring magnet facing away from the rotating device.

4. A clock with a dynamic floating display according to claim 2 or 3, characterized in that, The central region of each inner ring magnet is a first center, and the shape of the region formed by the lines connecting all the first centers includes an equilateral triangle. And / or, the central region of each of the electromagnetic coils is a second center, and the shape of the region formed by the lines connecting all the second centers includes an equilateral triangle.

5. A clock with a dynamic floating display according to claim 1, characterized in that, The suspension base is also equipped with a transmission support and a counterweight. The transmission bracket is mounted on the output end of the rotating device, and the rotating device is connected to the suspension control device located at one end of the transmission bracket via a transmission assembly. The counterweight is located at the end of the transmission bracket away from the suspension control device.

6. A clock with a dynamic floating display according to claim 1, characterized in that, The suspended base is also equipped with a diffuser and a light ring assembly; The light ring assembly is disposed on the inner wall of the suspended base, and the diffuser is disposed on the light ring assembly. The diffuser includes a transparent portion for transmitting light from the light ring assembly.

7. A clock with a dynamic floating display according to claim 1, characterized in that, The suspended base is also provided with a shell; The housing includes an upper shell and a lower shell. One of the upper shell and the lower shell has a slot, and the other shell has a locking block. The locking block is used to be embedded in the slot to achieve a detachable connection between the upper shell and the lower shell.

8. A clock with a dynamic floating display according to claim 7, characterized in that, The housing also includes a motherboard, and the bottom of the bottom shell has a through hole that matches the interface of the motherboard, and the through hole is also connected to a guide groove.

9. A clock with a dynamic floating display according to claim 8, characterized in that, The bottom shell is also provided with a support member for supporting the motherboard.

10. A clock with a dynamic floating display according to claim 7, characterized in that, The suspended base is also provided with a display component for displaying the time, and the inner wall of the upper shell has a locking groove for connecting the display component.

Citation Information

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