Artificial intelligence dining table capable of controlling rotation and stop
Through intelligent control systems and mechanical structures, the smart dining table achieves automatic food stopping and rotation functions, solving the limitations of traditional dining tables and meeting diverse dining needs and seating arrangements.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-03-02
- Publication Date
- 2026-04-07
AI Technical Summary
Existing smart dining tables have limitations in their use because they cannot adjust the position of the food according to the user's needs from different angles.
It adopts components such as a preset base, a support tabletop component, a movable tabletop component, a stepper motor, a reduction gear set, an angle sensor, and a microcontroller. Through the control panel and sensor signal transmission, it realizes the rotation and angle positioning of the movable tabletop component, allowing the dishes to stay in equally divided positions to meet the dining needs of users in different positions.
It enables automatic stopping and picking up of dishes, meets diverse operation needs, prevents pranks, respects the user's manual stopping, provides rotation and angle positioning to ensure that dishes do not fall off the table, and adapts to changes in the number of seats.
Smart Images

Figure CN121795699A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dining table technology, specifically to an artificial intelligence dining table with controllable rotation and stopping. Background Technology
[0002] As living standards improve, people are paying more attention to healthy eating, and smart dining tables are developing towards multifunctionality to meet the needs of different dining cultures. For example, patent CN108968369A describes a circular smart dining table, which includes a circular tabletop, a column supporting the tabletop, and a rotating disk mounted on the tabletop. The tabletop has a transmission mechanism with a driven shaft for power output and a driven shaft for power input. The driven shaft is connected to a motor, and the rotating disk is mounted on the driven shaft. The motor transmits power to the transmission mechanism, which in turn transmits power to the rotating disk. The rotating disk rotates rhythmically, causing the dishes on it to rotate rhythmically and arrive in front of each diner in sequence, achieving orderly dining and effectively avoiding the chaotic dining situation caused by manually rotating the disk. For example, patent CN114903285B discloses a smart dining table, which includes a central disc; a rotating shaft connected to the bottom of the central disc; a motor connected to the rotating shaft; a support base connected to the bottom of the motor; a tray fixedly fitted onto the support base; a rotating disc in the shape of a ring, fitted around the central disc, with its bottom fixedly connected to the surface of the tray; and multiple setters arranged at intervals on the surface of the fixed ring, the setters being connected to the ring. For example, the patent with publication number CN210747945U describes a smart dining table, which belongs to the field of smart home technology. It includes a dining table body and a smart terminal. The dining table body includes table legs and a tabletop. Its key technical feature is that the smart terminal is set in the center of the dining table body. A connecting shaft is provided between the smart terminal and the dining table body. The connecting shaft is fixedly set on the side of the smart terminal away from its screen. The connecting shaft is movably connected to the dining table body, so as to set the smart terminal on the dining table body, thereby restricting the movement of the smart terminal and avoiding the occurrence of loss or confusion of the smart terminal. Most of the aforementioned existing technologies improve the overall structure, while existing smart dining tables mostly operate in a traditional, continuous rotating manner. They cannot adjust the position of the food according to the needs of users at different angles, thus limiting their usability. Summary of the Invention
[0003] The purpose of this invention is to provide an AI-powered dining table with controllable rotation and stopping, in order to solve the problem that most of the aforementioned background technologies are traditional, continuously rotating types of dining, which cannot adjust the position of the dishes according to the needs of users at different angles, thus having certain limitations in use.
[0004] To achieve the above objectives, the present invention provides the following technical solution: an AI-powered dining table with controllable rotation and stopping, comprising a preset base, wherein a tabletop support component is fixedly connected to the upper end of the preset base; a movable tabletop component is nested inside the preset base, a stepper motor is installed inside the preset base, and the output end of the stepper motor is connected to a reduction gear set, and the output end of the reduction gear set is connected to the movable tabletop component; 12 sets of scale lines are provided on the outer side of the movable tabletop component, and the movable tabletop component forms a rotating structure along the upper end of the tabletop support component; a guide limiting structure is provided on the outer side of the movable tabletop component, which adaptively gathers objects on the surface of the movable tabletop component inward.
[0005] Furthermore, an angle sensor is installed on the upper end of the supporting tabletop component, and 12 preset control panels are set at equal angles on the outer side of the supporting tabletop component. The movable tabletop component rotates at equal angles along the inner side of the supporting tabletop component through a stepper motor and a reduction gear set. The entire surface of the movable tabletop component is divided into 12 equal parts. A preset control panel is set at the position where a person sits on the supporting tabletop component. Through the signal transmission of the preset control panel and the angle sensor, and in conjunction with the signal conversion of the preset microcontroller, the transmission state of the stepper motor and the reduction gear set can be controlled. Any equal part on the movable tabletop component can be called to stay at the position where a person sits for a few seconds, thereby realizing the automatic stopping and picking up of dishes at the equal parts of the surface of the movable tabletop component by users in different positions.
[0006] Furthermore, the signal output terminal of the preset control panel is electrically connected to the microcontroller preset in the preset base, and the signal output terminal of the microcontroller is electrically connected to the reduction gear set, the reduction gear set and the angle sensor. When multiple people call at the same time, they are queued in order of time. Calling the nearest position at the same time can allow them to cut in line and stop, satisfying their diverse operation needs. At the same time, the position of the movable desktop component can be set to not stop in any direction to prevent intentional pranks and respect the effect of manual interception by the user. The movable desktop component can realize the rotation and angle positioning of the movable desktop component. The movable desktop component is set with multiple equal bisectors and marked with serial numbers to facilitate accurate target locking.
[0007] Furthermore, the guide limiting structure is provided with a docking fastener, which is fixedly docked to the upper end of the supporting desktop component. A docking abutment is nested on the lower end face of the movable desktop component, and the outer side of the docking abutment has a beveled structure. The upper ends of the docking abutment and the docking fastener correspond to each other.
[0008] Furthermore, a nested pre-reserved part is fixedly connected to the outer side of the docking contact member, and the nested pre-reserved part is nested and docked along the inner side of the movable desktop component. A reset spring assembly is fixedly connected to the outer side of the docking contact member, and the reset spring assembly is fixedly connected to the lower end of the movable desktop component.
[0009] Furthermore, the outer side of the nested reserved component is connected to a built-in reserved liquid bladder component, and the built-in reserved liquid bladder component is located on the inner side of the movable tabletop component. The upper end of the nested reserved component is connected to a connecting transverse corrugated liquid bladder component, and a supply hose is connected through the inner side of the connecting transverse corrugated liquid bladder component. The supply hose passes through the inner side of the nested reserved component, and the end of the supply hose is connected to the built-in reserved liquid bladder component.
[0010] Furthermore, when the movable desktop component moves the docking contact member to contact the docking fixing member at the corresponding position, the docking contact member is forced to move the nested reserved member outward along the inner side of the movable desktop component. At this time, the nested reserved member and the built-in reserved liquid bladder component are in a state of disengagement from compression.
[0011] Furthermore, when the docking contact is moved to the state of being disengaged from the docking fixing member, the docking contact is driven by the reset force of the reset spring assembly to reset and press the nested reserved member inward along the inner side of the movable tabletop component.
[0012] Furthermore, during the pressurization process, the built-in reserved liquid bladder component supplies liquid to the interior of the docking transverse corrugated liquid bladder component via a supply hose. The docking transverse corrugated liquid bladder component expands and deforms laterally along the upper end of the nested reserved component. The nested reserved component and the built-in reserved liquid bladder component are in a state of disengagement from compression. When the docking contact component moves to a state of disengagement from the docking fixing component, the docking contact component, through the reset force of the reset spring assembly, drives the nested reserved component to reset and press inward along the inner side of the movable tabletop component. This allows the pressurized built-in reserved liquid bladder component to supply liquid to the interior of the docking transverse corrugated liquid bladder component via the supply hose, thereby causing the docking transverse corrugated liquid bladder component to expand and deform laterally along the upper end of the nested reserved component, thus guiding the contacting plate inward to the center.
[0013] Compared with the prior art, the beneficial effects of the present invention are: This controllable AI dining table can move dishes to the desired positions according to the needs of users at different angles. The entire movable tabletop is divided into 12 equal parts. A preset control panel is set at the position where the user sits on the tabletop. Through the signal transmission of the preset control panel and angle sensor, and in conjunction with the signal conversion of the preset microcontroller, the transmission state of the stepper motor and reduction gear set can be controlled. It can call any equal part on the movable tabletop to stop at the user's seat position for a few seconds, thereby realizing the automatic stopping and picking up of dishes at the equal parts of the movable tabletop surface by users in different positions, meeting the dining needs of users in different positions. Furthermore, the movable tabletop component continuously rotates along the upper part of the supporting tabletop component via a stepper motor. When multiple people call simultaneously, they queue up in order of time. Simultaneous calls to the nearest location can allow for queue-jumping, satisfying diverse operational needs. The position of the movable tabletop component can be set to not stop in any direction to prevent intentional pranks and respect the effect of manual interception by the user. The movable tabletop component has multiple equal bisectors and is marked with serial numbers to facilitate accurate target locking. The supporting tabletop component does not have equal bisectors, making it easy to increase or decrease the number of seats. After completing a task, it continues to the next task; when there is no task, it automatically rotates. Furthermore, a guide and limiting structure is provided on the outer side of the movable tabletop component. This structure adaptively gathers objects on the surface of the movable tabletop component inward. When the docking contact member at the corresponding position at the lower end of the movable tabletop component moves to contact the docking fixing member at the corresponding position, the docking contact member will be forced to move the nested pre-reserved member outward along the inner side of the movable tabletop component. At this time, the nested pre-reserved member and the built-in pre-reserved liquid bladder component are in a state of disengagement from compression. When the docking contact member moves to a state of disengagement from the docking fixing member, the docking contact member, through the reset force of the reset spring assembly, drives the nested pre-reserved member to reset and press inward along the inner side of the movable tabletop component. This causes the pressed built-in pre-reserved liquid bladder component to supply the interior of the docking transverse corrugated liquid bladder component through the supply hose. This causes the docking transverse corrugated liquid bladder component to expand and deform laterally along the upper end of the nested pre-reserved member, thereby guiding the contacting plate inward and centering it, preventing it from detaching from the tabletop during continuous rotation, achieving the effect of automatic plate placement and protection, and ensuring the practicality of the device. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a schematic diagram of the half-section three-dimensional structure of the present invention; Figure 3 This is a schematic diagram of the three-dimensional structure of the pre-set base of the present invention; Figure 4 For the present invention Figure 2 A magnified schematic diagram of the central part of the structure; Figure 5 This is a half-section three-dimensional structural diagram of the active desktop component of the present invention; Figure 6 This is a three-dimensional structural diagram of the docking fastener of the present invention; Figure 7 This is a half-section three-dimensional structural diagram of the docking transverse corrugated liquid bladder component of the present invention; Figure 8 This is a three-dimensional structural diagram of the reset spring assembly of the present invention.
[0015] In the diagram: 1. Preset base; 2. Supporting desktop component; 3. Movable desktop component; 4. Stepper motor; 5. Reduction gear set; 6. Angle sensor; 7. Connecting fastener; 8. Connecting contact component; 9. Nested reserved component; 10. Return spring assembly; 11. Built-in reserved liquid bladder component; 12. Supply hose; 13. Connecting transverse corrugated liquid bladder component; 14. Preset control panel. Detailed Implementation
[0016] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0017] Example 1: Please refer to Figures 1-8This invention provides the following technical solution: an AI-powered dining table with controllable rotation and stopping. To address the problem that most traditional continuous rotating dining methods cannot adjust the position of dishes according to the user's needs from different angles, thus limiting their usability, this invention discloses a system comprising: a preset base 1 with a support tabletop component 2 fixedly connected to its upper end; a movable tabletop component 3 nested inside the preset base 1; a stepper motor 4 installed inside the preset base 1; and a reduction gear set 5 connected to the output end of the stepper motor 4. The output end of the reduction gear set 5 is also connected to the movable tabletop component 3. The movable desktop component 3 is interconnected, with 12 sets of scale lines on its outer side. The movable desktop component 3 forms a rotating structure along the upper end of the supporting desktop component 2. An angle sensor 6 is installed on the upper end of the supporting desktop component 2, and 12 preset control panels 14 are equally spaced on its outer side. The movable desktop component 3 rotates equally spaced along the inner side of the supporting desktop component 2 via a stepper motor 4 and a reduction gear set 5. The signal output terminal of the preset control panel 14 is electrically connected to a microcontroller preset in the preset base 1, and the signal output terminal of the microcontroller is connected to the reduction gear set 5, the reduction gear set 5, and the angle sensor. The components are electrically connected at points 6. The surface of the movable tabletop component 3 is divided into 12 equal parts. A preset control panel 14 is set at the seating position of the tabletop component 2. Through the signal transmission of the preset control panel 14 and the angle sensor 6, and in conjunction with the signal conversion of the preset microcontroller, the transmission state of the stepper motor 4 and the reduction gear set 5 can be controlled. It can arbitrarily call any equal part on the movable tabletop component 3 to stop at the seating position for a few seconds, thereby realizing the automatic stopping and picking up of food at the equal parts of the surface of the movable tabletop component 3 by users in different positions, meeting the dining needs of users in different positions. The movable tabletop component 3 moves along the stepper motor 4. The upper part of the supporting desktop component 2 rotates continuously. When multiple people call simultaneously, they queue up in order of time. Simultaneous calls to the nearest location can be made to skip the queue, satisfying diverse operational needs. At the same time, the position of the movable desktop component 3 can be set to not stop in any direction to prevent intentional pranks and respect the effect of manual interception by the user. The movable desktop component 3 achieves rotation and angle positioning. The movable desktop component 3 is set with multiple equal bisectors and is marked with serial numbers, making it easy for people to accurately lock onto the target. The supporting desktop component 2 does not have equal bisectors, making it easy to increase or decrease the number of seats. After the task is completed, the next task continues. When there is no task, it rotates automatically.
[0018] Example 2: Based on Example 1, a guide limiting structure is also disclosed, the specific structure of which is as follows: The outer side of the movable desktop component 3 is provided with a guide limiting structure, which adaptively gathers objects on the surface of the movable desktop component 3 inward. The guide limiting structure is equipped with a docking fixing member 7, which is fixedly docked to the upper end of the supporting desktop component 2. A docking abutment member 8 is nested on the lower end face of the movable desktop component 3, and the outer side of the docking abutment member 8 has a beveled structure. The upper end positions of the docking abutment member 8 and the docking fixing member 7 correspond to each other. A nested reserved member 9 is fixedly connected to the outer side of the docking abutment member 8, and the nested reserved member 9 is nested and docked along the inner side of the movable desktop component 3. A return spring assembly 10 is fixedly connected to the outer side of the docking abutment member 8, and the return spring assembly 10 is fixedly connected to the lower end of the movable desktop component 3. An internal reserved liquid bladder component 11 is docked to the outer side of the nested reserved member 9, and the internal reserved liquid bladder component 11 is located on the inner side of the movable desktop component 3. A docking transverse corrugated liquid bladder component 13 is docked to the upper end of the nested reserved member 9, and a supply hose 12 is inserted through the inner side of the docking transverse corrugated liquid bladder component 13, and the supply hose 12 is inserted through the inner side of the nested reserved member 9. When the end of the supply hose 12 is connected to the built-in reserved liquid bladder component 11, the docking contact 8 at the corresponding position at the lower end of the movable tabletop component 3 moves to contact the docking fixing component 7 at the corresponding position. The docking contact 8 will be forced to drive the nested reserved component 9 to move outward along the inner side of the movable tabletop component 3. At this time, the nested reserved component 9 and the built-in reserved liquid bladder component 11 are in a state of disengagement. When the docking contact 8 moves to a state of disengagement from the docking fixing component 7, the docking contact 8 will drive the nested reserved component 9 to reset and press inward along the inner side of the movable tabletop component 3 through the reset force of the reset spring assembly 10. This will allow the pressed built-in reserved liquid bladder component 11 to supply the interior of the docking transverse corrugated liquid bladder component 13 through the supply hose 12. This will cause the docking transverse corrugated liquid bladder component 13 to expand and deform laterally along the upper end of the nested reserved component 9, thereby guiding the contacting plate inward to the center and preventing it from detaching from the tabletop during continuous rotation, thus achieving automatic plate placement protection.
[0019] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "connected" and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; 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. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0020] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An AI-powered dining table with controllable rotation and stopping, comprising a preset base (1), wherein a tabletop support component (2) is fixedly connected to the upper end of the preset base (1). Its features are: The inner side of the preset base (1) is insulated with a movable desktop component (3), the inner side of the preset base (1) is insulated with a stepper motor (4), and the output end of the stepper motor (4) is connected to a reduction gear set (5), and the output end of the reduction gear set (5) is connected to the movable desktop component (3). The outer side of the movable desktop component (3) is provided with 12 sets of scale lines, and the movable desktop component (3) forms a rotating structure along the upper end of the supporting desktop component (2). The outer side of the active desktop component (3) is provided with a guide limiting structure, which adaptively gathers objects on the surface of the active desktop component (3) inward.
2. The AI-powered dining table with controllable rotation and stopping according to claim 1, characterized in that: An angle sensor (6) is installed on the upper end of the desktop support component (2), and 12 preset control panels (14) are set at equal angles on the outer side of the desktop support component (2). The movable desktop component (3) rotates at equal angles along the inner side of the desktop support component (2) through a stepper motor (4) and a reduction gear set (5).
3. The AI-powered dining table with controllable rotation and stopping according to claim 2, characterized in that: The signal output terminal of the preset control panel (14) is electrically connected to the microcontroller preset in the preset base (1), and the signal output terminal of the microcontroller is electrically connected to the reduction gear set (5), the reduction gear set (5) and the angle sensor (6).
4. The AI-powered dining table with controllable rotation and stopping according to claim 3, characterized in that: The guide limiting structure is provided with a docking fastener (7), and the docking fastener (7) is fixedly docked to the upper end of the carrying desktop component (2). The lower end face of the movable desktop component (3) is nested with a docking abutment (8), and the outer side of the docking abutment (8) is a sloping structure. The upper end positions of the docking abutment (8) and the docking fastener (7) correspond to each other.
5. The AI-powered dining table with controllable rotation and stopping according to claim 4, characterized in that: The outer side of the docking contact (8) is fixedly connected to a nested reserved part (9), and the nested reserved part (9) is nested and docked along the inner side of the movable desktop part (3). The outer side of the docking contact (8) is fixedly connected to a reset spring assembly (10), and the reset spring assembly (10) is fixedly connected to the lower end of the movable desktop part (3).
6. The AI-powered dining table with controllable rotation and stopping according to claim 5, characterized in that: The outer side of the nested reserved part (9) is connected to the built-in reserved liquid bladder component (11), and the built-in reserved liquid bladder component (11) is located on the inner side of the movable tabletop component (3). The upper end of the nested reserved part (9) is connected to the docking transverse corrugated liquid bladder component (13), and the inner side of the docking transverse corrugated liquid bladder component (13) is connected to the supply hose (12). The supply hose (12) passes through the inner side of the nested reserved part (9), and the end of the supply hose (12) is connected to the built-in reserved liquid bladder component (11).
7. The AI-powered dining table with controllable rotation and stopping according to claim 6, characterized in that: When the movable desktop component (3) drives the docking contact component (8) to move to contact the docking fixing component (7) at the corresponding position, the docking contact component (8) is forced to drive the nested reserved component (9) to move outward along the inner side of the movable desktop component (3). At this time, the nested reserved component (9) and the built-in reserved liquid bladder component (11) are in a state of being disengaged from the compression.
8. The AI-powered dining table with controllable rotation and stopping according to claim 7, characterized in that: When the docking contact (8) moves to the state of being disengaged from the docking fixing member (7), the docking contact (8) drives the nested reserved member (9) to reset and press inward along the inner side of the movable desktop member (3) by the reset force of the reset spring assembly (10).
9. The AI-powered dining table with controllable rotation and stopping according to claim 8, characterized in that: During the process of being compressed, the built-in reserved liquid bladder component (11) supplies the contents of the docking transverse corrugated liquid bladder component (13) through the supply hose (12), and the docking transverse corrugated liquid bladder component (13) expands and deforms laterally along the upper end of the nested reserved component (9).
Citation Information
Patent Citations
Round smart dining table
CN108968369A
Smart dining table
CN114903285B
Intelligent dining table
CN210747945U