Intelligent sound bowl
The intelligent sound bowl structure driven by an electromagnetic clutch and a motor solves the problem that traditional sound bowls cannot control volume and frequency in real time, enabling controllable striking volume and adjustable frequency, adapting to various usage scenarios and improving the user experience.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- BEIJING ZHIRUN TECHNOLOGY CO LTD
- Filing Date
- 2025-08-08
- Publication Date
- 2026-07-21
AI Technical Summary
Traditional sound bowls require manual striking or mechanical operation, making it impossible to achieve real-time control of volume and frequency, and thus unsuitable for various usage scenarios.
The intelligent sound bowl structure adopts an electromagnetic clutch and a motor drive. The electromagnetic clutch engages the rotating shaft and connects it to the striking element. The motor drives the rotating shaft to rotate, and combined with the gravity striking mechanism, the striking volume and frequency can be controlled and adjusted.
It enables controllable adjustment of tapping volume and frequency, adapts to various usage scenarios, simplifies operation, and improves the user experience.
Smart Images

Figure CN224536683U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of sound bowl technology, and in particular to a sound bowl that can output striking sounds of different volumes and frequencies. Background Technology
[0002] A sounding bowl is a traditional percussion instrument widely used in meditation, yoga, music therapy, and religious ceremonies. Traditional sounding bowls produce a long, ethereal resonant tone through striking or rubbing, which can relax the mind and body, regulate emotions, and enhance concentration.
[0003] Currently, the most common method is to manually strike the sound bowl to produce sound. However, this requires experienced personnel with a good sense of rhythm, which cannot meet the needs of most people in real time. In addition, there are devices on the market that use mechanical devices to strike the bowl to produce sound. However, these mechanical devices can only produce sound at a fixed frequency and volume, and users need to manually turn the device on and off. Users cannot control the frequency, volume, and duration of the sound produced by the mechanical sound bowl device itself, making it unsuitable for various usage scenarios.
[0004] Therefore, this utility model provides an intelligent sound bowl that can effectively solve the above problems. It has a simple structure and is easy to operate, realizing an intelligent sound bowl with controllable striking volume and adjustable frequency. Utility Model Content
[0005] In order to overcome the shortcomings of the existing technology, this utility model provides an intelligent sound bowl with simple structure and good sealing effect.
[0006] The technical solution adopted by this utility model to solve its technical problem is:
[0007] A smart sounding bowl, comprising:
[0008] Base;
[0009] A sound-generating element, wherein the sound-generating element is connected to the upper surface of the base;
[0010] A support element, which is connected to the base and extends upward from the base;
[0011] A striking element, the bottom end of which is located on one side of the sound-generating element;
[0012] A driving element is located inside the support element. The driving element includes a rotating shaft, an electromagnetic clutch, and a motor. The top end of the striking element is rotatably connected to the middle of the rotating shaft. When the electromagnetic clutch is opened, it engages or releases the rotating shaft. When the electromagnetic clutch engages the rotating shaft, it fixes the rotating shaft to the striking element. The motor drives the rotating shaft to rotate, so that the rotating shaft drives the striking element to rotate synchronously.
[0013] As an improvement to this invention, a control element is also included, which controls the rotation angle and rotation frequency of the striking element.
[0014] As an improvement of this utility model, the electromagnetic clutch includes an electromagnetic component connected to the striking element. When the electromagnetic clutch is engaged, the electromagnetic component attracts at least a portion of the rotating shaft, so that the rotating shaft drives the electromagnetic component to rotate synchronously.
[0015] As an improvement of this utility model, the electromagnetic clutch further includes a first gear connected to the striking element. The first gear is fixedly connected to the electromagnetic assembly, and the electromagnetic assembly is connected to the striking element through the first gear, so that the rotating shaft drives the striking element to rotate synchronously.
[0016] As an improvement of this utility model, the driving element further includes a transmission component connected to the striking element. The rotating shaft is located inside the transmission component. One end of the transmission component is provided with a second gear that meshes with the first gear. The top end of the striking element is provided with a connecting protrusion. The connecting protrusion is connected to the outer wall of the transmission component. The first gear is connected to the striking element through the transmission component. The transmission component is connected to the striking element through the connecting protrusion, so that the rotating shaft drives the striking element to rotate synchronously.
[0017] As an improvement of this utility model, the motor is provided with an output end near the rotating shaft, the rotating shaft is provided with an output channel to accommodate the output end, and the output end is interference-fitted into the output channel so that the motor drives the rotating shaft to rotate synchronously through the output end.
[0018] As an improvement of this utility model, the electromagnetic clutch is provided with a shaft channel, and at least part of the shaft is inserted into the shaft channel.
[0019] As an improvement of this utility model, the driving element further includes a stop and a stop block disposed opposite to it. The stop is disposed adjacent to the motor and is sleeved on the outer surface of the output end to restrict the movement of the output end. The stop block is sleeved on the outer wall of the rotating shaft and the outer wall of the stop block abuts against the inner wall of the transmission member to restrict the movement of the rotating shaft.
[0020] As an improvement to this utility model, it also includes a switch button, at least one control button, a display screen, a charging port, and a battery. After the switch button generates a signal, the control element receives the signal to control the opening or closing of the intelligent sound bowl. The control button and the display screen are electrically connected to the control element. The control button is used to adjust the rotation angle, rotation frequency, and running time of the striking element. The display screen displays the rotation angle, rotation frequency, and running time of the striking element in real time. The battery is located inside the base, and the charging port is used to connect to an external power source to power the battery.
[0021] As an improvement of this utility model, the base is provided with a mounting groove, and the bottom end of the sound-generating element is movably connected to the mounting groove; at least part of the bottom surface of the base is a planar structure for abutting against the support surface, and the bottom surface of the base is provided with anti-slip parts; the support element is provided with a swing channel that allows the striking element to swing, and the support element and the base are an integral structure.
[0022] The beneficial effects of this invention are as follows: With the above-described structure, during use, the electromagnetic clutch is energized and engages the rotating shaft, fixing the shaft to the striking element. At this time, the motor drives the rotating shaft to rotate, causing the striking element to swing away from the sound-producing element to a preset angle. After the striking element swings to the preset angle, the electromagnetic clutch and motor close, and the shaft and striking element are no longer connected. The striking element then swings back under gravity, striking the sound-producing element and producing sound. By repeatedly controlling the on / off frequency of the electromagnetic clutch and motor, the striking frequency of the striking element can be controlled. The volume of the sound bowl depends on the swing angle of the striking element: the larger the angle, the greater the potential energy, the stronger the striking force, and the higher the volume. By combining motor drive, electromagnetic clutch control, and gravity striking mechanism, an intelligent sound bowl with controllable striking volume and adjustable frequency is achieved. Attached Figure Description
[0023] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the following description of the embodiments will be briefly introduced. The drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0025] Figure 1 This is a schematic diagram of the overall structure of the sound bowl of this utility model from one angle;
[0026] Figure 2 This is a schematic diagram of the overall structure of the sound bowl of this utility model from another angle;
[0027] Figure 3 This is an exploded view of the sound bowl of this utility model from one angle;
[0028] Figure 4 This is a schematic diagram of the exploded structure of the sound bowl of this utility model from another angle;
[0029] Figure 5 This is a schematic diagram of the driving element and striking element of the sound bowl of this utility model;
[0030] Figure 6 This is a cross-sectional structural diagram of the driving element and striking element of the sound bowl of this utility model;
[0031] Figure 7 This is a cross-sectional structural schematic diagram showing the operating state of the driving element and striking element of the sound bowl of this utility model;
[0032] Figure 8 This is a partial exploded view of the sound bowl of this utility model at one angle;
[0033] Figure 9 This is a partial exploded structural diagram of the sound bowl of this utility model from another angle.
[0034] Explanation of reference numerals in the attached figures:
[0035] 100. Base; 110. Mounting slot; 120. Anti-slip component; 200. Sound-generating element; 300. Support element; 310. Swinging channel; 400. Striking element; 410. Connecting protrusion; 500. Drive element; 510. Rotating shaft; 512. Output channel; 520. Electromagnetic clutch; 521. Electromagnetic assembly; 522. First gear; 523. Rotating shaft channel; 530. Motor; 531. Output end; 540. Transmission component; 541. Second gear; 550. Stop; 560. Stop block; 600. Control element; 610. Switch button; 620. Control button; 630. Display screen; 640. Charging port; 650. Battery. Detailed Implementation
[0036] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.
[0037] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application 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, and therefore should not be construed as a limitation of this application.
[0038] Furthermore, where the terms "first" and "second" appear, these terms are 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 with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.
[0039] In this application, unless otherwise expressly 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, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.
[0040] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.
[0041] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.
[0042] Reference Figures 1 to 9 A smart sounding bowl, comprising:
[0043] Base 100;
[0044] A sound-generating element 200 is connected to the upper surface of the base 100;
[0045] A support element 300 is connected to the base 100 and extends upward from the base 100;
[0046] A striking element 400, the bottom end of which is located on one side of the sound-generating element 200;
[0047] A driving element 500 is located inside the support element 300. The driving element 500 includes a rotating shaft 510, an electromagnetic clutch 520, and a motor 530. The top end of the striking element 400 is rotatably connected to the middle of the rotating shaft 510. The electromagnetic clutch 520 and the motor 530 are respectively connected to the two ends of the rotating shaft 510. When the electromagnetic clutch 520 is engaged, it engages or releases the rotating shaft 510. When the electromagnetic clutch 520 engages the rotating shaft 510, it fixes the rotating shaft 510 to the striking element 400. The motor 530 drives the rotating shaft 510 to rotate, so that the rotating shaft 510 drives the striking element 400 to rotate synchronously.
[0048] With the above structure, the base 100 serves as a basic support structure, providing a stable support platform for the entire sound bowl; the sound-producing element 200 is fixed on the upper surface of the base 100 and is the core component for sound production of the sound bowl; the support element 300 extends upward from the base 100, providing installation and movement space for the drive element 500 and the striking element 400, while also playing a certain supporting and guiding role; the bottom of the striking element 400 is close to the side of the sound-producing element 200, and the top is rotatably connected through the rotating shaft 510, so that it can swing to a preset angle under the drive of the motor 530 and the drive element 500 and then fall back by gravity, thereby striking the sound-producing element 200 to produce sound. In use, the electromagnetic clutch 520 is energized to engage the rotating shaft 510, fixing the shaft 510 to the striking element 400. At this time, the motor 530 drives the rotating shaft 510 to rotate, causing the striking element 400 to swing away from the sound-producing element 200 to a preset angle. After the striking element 400 swings to the preset angle, the electromagnetic clutch 520 and the motor 530 close, and the rotating shaft 510 is no longer connected to the striking element 400. The striking element 400 then swings back under gravity, striking the sound-producing element 200 and producing sound. By repeatedly controlling the on / off frequency of the electromagnetic clutch 520 and the motor 530, the striking frequency of the striking element 400 can be controlled. The volume of the sound bowl depends on the swing angle of the striking element 400: the larger the angle, the greater the potential energy, the stronger the striking force, and the higher the volume. By combining the motor 530 drive, the electromagnetic clutch 520 control, and the gravity striking mechanism, a smart sound bowl with controllable striking volume and adjustable frequency is achieved.
[0049] In this embodiment, a control element 600 is also included, which controls the rotation angle and rotation frequency of the striking element 400. Through the above structural configuration, the control element 600 can send corresponding control signals to the motor 530 and the electromagnetic clutch 520 according to a preset program, thereby achieving precise control over the rotation angle and operating frequency of the striking element 400.
[0050] In this embodiment, the electromagnetic clutch 520 includes an electromagnetic component 521 connected to the striking element 400. When the electromagnetic clutch 520 is engaged, the electromagnetic component 521 attracts at least a portion of the rotating shaft 510, causing the rotating shaft 510 to drive the striking element 400 to rotate synchronously. Through this structural arrangement, the electromagnetic component 521 is a key component for the electromagnetic clutch 520 to generate magnetic force for power engagement. When the electromagnetic clutch 520 is energized and engaged, the electromagnetic component 521 generates a magnetic field that attracts the rotating shaft 510 and magnetically connects it to the electromagnetic component 521. Simultaneously, as the motor 530 drives the rotating shaft 510 to rotate, the magnetic connection causes the rotating shaft 510 to also drive the electromagnetic component 521 to rotate synchronously. When the electromagnetic clutch 520 is closed, the electromagnetic component 521 no longer generates a magnetic field, and the rotating shaft 510 cannot magnetically connect to the electromagnetic component 521; therefore, there is no connection between them.
[0051] In this embodiment, the electromagnetic clutch 520 further includes a first gear 522 connected to the striking element 400. The first gear 522 is fixedly connected to the electromagnetic component 521, and the electromagnetic component 521 is connected to the striking element 400 through the first gear 522, so that the rotating shaft 510 drives the striking element 400 to rotate synchronously. With the above structure, the first gear 522 is fixedly connected to the electromagnetic component 521. After the electromagnetic clutch 520 is opened, the rotating shaft 510 and the electromagnetic component 521 are attracted and connected. When the motor 530 drives the rotating shaft 510 to rotate, due to the connection relationship between the first gear 522 and the electromagnetic component 521, the rotating shaft 510 will drive the electromagnetic component 521 to drive the first gear 522 to rotate synchronously.
[0052] In this embodiment, the driving element 500 further includes a transmission component 540 connected to the striking element 400. One end of the transmission component 540 is provided with a second gear 541 that meshes with the first gear 522. The first gear 522 is connected to the striking element 400 through the transmission component 540, so that the rotating shaft 510 drives the striking element 400 to rotate synchronously. With the above structural arrangement, the second gear 541 and the first gear 522 are meshed, meaning that the rotation of the first gear 522 will drive the second gear 541, i.e., the transmission component 540, to rotate synchronously. This meshing relationship makes the connection between the electromagnetic clutch 520 and the transmission component 540 tighter, ensuring more reliable operation of the intelligent sound bowl.
[0053] In this embodiment, the rotating shaft 510 is located inside the transmission component 540. The top of the striking element 400 is provided with a connecting protrusion 410, which is connected to the outer wall of the transmission component 540. The transmission component 540 is connected to the striking element 400 via the connecting protrusion 410, so that the rotating shaft 510 drives the striking element 400 to rotate synchronously. With the above structure, when the gong is powered on, according to a preset program, the motor 530 and the electromagnetic clutch 520 start running. The electromagnetic component 521 generates a magnetic field, attracting the rotating shaft 510 to form a magnetic connection with the electromagnetic component 521. The motor 530 rotates to a certain angle according to the preset program, driving the rotating shaft 510 to rotate. Due to the magnetic connection, the rotating shaft 510 drives the electromagnetic clutch 520 to rotate synchronously. Due to the meshing of the second gear 541 and the first gear 522, the electromagnetic clutch 520 rotates synchronously. When the transmission component 540 rotates, the connecting protrusion 410 at the top of the striking element 400 is connected to the outer wall of the transmission component 540. At this time, the transmission component 540 drives the striking element 400 to rotate to a preset angle away from the sound-generating element 200. After the striking element 400 reaches the preset angle, the motor 530 stops rotating and the electromagnetic clutch 520 disengages. At this time, the electromagnetic clutch 520 and the rotating shaft 510 no longer have a magnetic connection. The striking element 400 swings back to strike the sound-generating element 200 under the action of gravity, producing a sound.
[0054] In this embodiment, the motor 530 has an output end 531 near the rotating shaft 510. The rotating shaft 510 has an output channel 512 to accommodate the output end 531. The output end 531 is interference-fitted into the output channel 512 so that the motor 530 drives the rotating shaft 510 to rotate synchronously through the output end 531. With this structure, the output end 531, as a connecting component between the motor 530 and the rotating shaft 510, can efficiently and stably transmit the rotational power output by the motor 530 to the rotating shaft 510. The tight fit between the output end 531 and the rotating shaft 510 ensures stable transmission between them, preventing abnormal operation of the sound bowl due to power interruption or instability. The interference fit of the output end 531 into the output channel 512 ensures a stable connection between the output end 531 and the rotating shaft 510 even if the rotating shaft 510 shakes.
[0055] In this embodiment, the electromagnetic clutch 520 is provided with a shaft channel 523, and at least a portion of the shaft 510 is inserted into the shaft channel 523. This structure allows the shaft channel 523 to accommodate the shaft 510, facilitating the electromagnetic assembly 521 to engage the shaft 510 and making the magnetic connection between them more reliable. Preferably, the transmission member 540 is hollow inside to accommodate the shaft 510, and the transmission member 540 and the shaft channel 523 are correspondingly arranged.
[0056] In this embodiment, the driving element 500 further includes a stop 550, which is disposed adjacent to the motor 530 and sleeved on the outer surface of the output end 531 to restrict the movement of the output end 531. With this structure, the output end 531 may experience some radial movement during rotation; the stop 550 prevents excessive movement of the output end 531 and provides a certain positioning function for the motor 530. Preferably, one end of the rotating shaft 510 abuts against the stop 550, also preventing axial movement of the rotating shaft 510.
[0057] In this embodiment, the driving element 500 further includes opposing stop blocks 560. The stop blocks 560 are sleeved on the outer wall of the rotating shaft 510, and the outer wall of the stop blocks 560 abuts against the inner wall of the transmission member 540 to restrict the movement of the rotating shaft 510. With the above structure, the opposing stop blocks 560 are located near the end of the rotating shaft 510. Specifically, one stop block 560 is located on the side of the rotating shaft 510 near the first gear 522, and the other stop block 560 is located on the side of the rotating shaft 510 near the stop 550. The stop blocks 560 are used to restrict the radial movement of the rotating shaft 510 during the rotation of the striking element 400, and can also cooperate with the stop 550 to jointly restrict the movement of the rotating shaft 510. A stop block 560 is fitted onto the outer wall of the rotating shaft 510, and the outer wall of the stop block 560 abuts against the inner wall of the transmission member 540. This arrangement of the stop block 560 is for cooperation with the transmission member 540, and the tight connection between the stop block 560 and the rotating shaft 510 maximizes the function of the stop block 560. Preferably, a similar structure to the stop block 560 is also provided on the outer wall of the transmission member 540 to limit the movement of the transmission member 540 and prevent excessive shaking of the transmission member 540 during use. Preferably, the rotating shaft 510 is also provided with a component to prevent axial movement of the rotating shaft 510, which can be used in conjunction with the stop 550.
[0058] In this embodiment, the support element 300 is provided with a swing channel 310 that allows the striking element 400 to swing. Through the above-described structure, the support element 300 defines the swing channel 310, constrains the swing direction of the striking element 400, and enables it to accurately align with the sound-generating element 200 and strike it, preventing deviation, shaking or excessive swinging during the swinging process, and also reducing mechanical wear and failure rate.
[0059] In this embodiment, a switch button 610 is also included. After the switch button 610 generates a signal, the control element 600 receives the signal and controls the opening or closing of the intelligent sound bowl. With the above structural configuration, clicking the switch button 610 will cause the corresponding control element 600 to send a signal, enabling the control element 600 to control the opening or closing of the intelligent sound bowl, thereby controlling whether the striking element 400 can strike the sound-producing element 200. The control element 600, as the overall control system of the sound bowl device, is responsible for receiving and processing input signals from various operating components, and for coordinating and controlling the execution components such as the electromagnetic clutch 520, motor 530, and striking element 400 according to preset logic.
[0060] In this embodiment, at least one control button 620 is also included. The control button 620 is electrically connected to the control element 600. The control button 620 is used to adjust the rotation angle, rotation frequency, and running time of the striking element 400. With the above structural configuration, the rotation angle refers to the rotation angle of the striking element 400, that is, the angle at which the striking element 400 rotates away from the sound-producing element 200. The larger the rotation angle, the louder the volume produced by the striking element 400 striking the sound-producing element 200 under the influence of gravity. The rotation frequency refers to the speed at which the striking element 400 rotates per unit time, that is, the number of times the striking element 400 strikes the sound-producing element 200 to produce sound. In addition, the control button 620 can also adjust the running time of the sound bowl. The running time of the intelligent sound bowl is the total working time of the sound bowl after the switch button 610 is turned on. Preferably, the control buttons 620 have three functions: "up", "down", and "setting". A long press of the "setting" button switches between adjustable parameters. When the selected parameter is frequency, the default frequency is 30 seconds per cycle, and the "up" and "down" buttons can adjust the frequency within a range of 15 seconds to 1 hour per cycle. When the selected parameter is rotation angle, the default rotation angle is 45°, and the "up" and "down" buttons can adjust the angle within a range of 15° to 90°. When the selected parameter is running time, the default frequency is 1 hour, and the "up" and "down" buttons can adjust the time within a range of 0 to 15 hours. For example, if the striking frequency of the striking element 400 is 30 times, the electromagnetic clutch 520 and the motor 530 are turned on. After the striking element 400 rotates to the preset angle, the electromagnetic clutch 520 and the motor 530 are turned off. At this time, the preset program inside the control element 600 counts down for 30 seconds. After the countdown ends, the electromagnetic clutch 520 and the motor 530 are turned on again. This process is repeated until the total running time is completed. In this sound bowl device, the speed of motor 530 is constant. In preset program one, the angle of rise of striking element 400 is set to 30°. In preset program two, the angle of rise of striking element 400 is set to 60°. At this time, the time required for motor 530 to drive striking element 400 to rotate 60° is twice the time required to rotate 30°. The striking frequency is calculated based on the time it takes for motor 530 and electromagnetic clutch 520 to disengage after motor 530 drives striking element 400 to rotate to the corresponding angle. Based on this time, the preset program inside control element 600 starts the countdown for the corresponding frequency time.
[0061] It should be noted that the striking element 400 consists of two housing parts, an upper housing and a lower housing, which are detachably connected by screws. This design allows users to replace different lower housings. The upper housing of the striking element 400 is connected to the rotating shaft 510, and the connecting protrusion 410 is also located on the upper housing. This design ensures that the connection between the striking element 400 and the driving element 500 is not changed when the user replaces the lower housing. In addition, the hammer part at the bottom of the lower housing of the sound-generating element 200 is covered with adhesive. Applying adhesive of different thicknesses will allow the striking element 400 to produce different timbres when striking the sound-generating element 200. Correspondingly, at the same rotation angle, the volume of the striking element 400 when striking the sound-generating element 200 after applying adhesive will also be different. Users can replace the lower housing of the striking element 400 with different thicknesses of adhesive or with adhesive according to their personal preferences.
[0062] In this embodiment, a display screen 630 is also included. The display screen 630 is electrically connected to the control element 600, and the display screen 630 displays the rotation angle, rotation frequency, and running time of the striking element 400 in real time. With the above structural configuration, when the user adjusts the rotation angle, rotation frequency, and running time of the striking element 400, the display screen 630 can display the currently adjusted values in real time. The display screen 630 allows for intuitive access to the current setting parameters and operating status, improving the visualization and ease of use of the operation, and enabling the user to make adaptive adjustments based on the current parameters. Preferably, the display screen 630 is located on the upper end of the support element 300, close to the sound-generating element 200. This arrangement facilitates user operation, and correspondingly, the control buttons 620 are located close to the display screen 630.
[0063] In this embodiment, a charging port 640 is also included, through which the smart sound bowl is charged. By configuring the above structure, the charging port 640 provides an external power source for charging the smart sound bowl, improving its battery life and enhancing its ease of use and applicability, especially suitable for mobile applications. Preferably, the charging port 640 is electrically connected to the control element 600 to achieve intelligent monitoring and charging protection of the sound bowl's battery status. Preferably, the charging port 640 is located at the bottom of the support element 300, which has corresponding through holes. Users can connect a Type-C or Micro USB data cable to the charging port 640 by inserting it into the corresponding through hole, thereby charging the sound bowl. In addition, the outer wall of the support element 300 corresponding to the through hole of the charging port 640 is recessed. When viewed from the side, the support element 300 still has a smooth curved outline. This design takes into account both the aesthetics and functionality of the sound bowl, ensuring the overall harmony of the appearance and making it easy for the user to operate. Furthermore, the switch button 610 is located close to the charging port 640 for easy operation by the user.
[0064] In this embodiment, a battery 650 is also included. The battery 650 is located within the base 100, and the charging port 640 is used to connect to an external power source to power the battery 650. Through the above structural configuration, the battery 650 is a rechargeable battery used to provide operating power to the sound bowl. The battery 650 enables the smart sound bowl to have independent power supply capabilities. When the battery 650 has sufficient power, the sound bowl can be used in a portable manner without an external power cord. When the battery 650 is low on power, it can be charged by connecting to an external power source through the charging port 640 to ensure normal use of the sound bowl. Preferably, the battery 650 is located within the base 100 and is electrically connected to the control element 600. During daily use, the battery 650 intelligently distributes power through the control element 600. Preferably, the display screen 630 can also display the current battery level of the sound bowl. When the battery level is below 5%, the battery 650 icon and indicator light on the display screen 630 flash; the indicator light is yellow when charging is on, green when charging is off, and yellow again when fully charged. Preferably, there are two control elements 600, one of which is electrically connected to the switch button 610, the battery 650 and the charging port 640 and is located inside the base 100; the other is electrically connected to the control button 620 and the display screen 630 and is located inside the support element 300.
[0065] In this embodiment, the base 100 is provided with a mounting groove 110, and the bottom end of the sound-generating element 200 is movably connected to the mounting groove 110. Through the above structural design, the mounting groove 110 ensures that the sound-generating element 200 is securely fixed to the base 100 during use. The mounting groove 110 matches the size of the bottom end of the sound-generating element 200. Even when the striking element 400 strikes the sound-generating element 200 without external force or other fasteners, the sound-generating element 200 can still be reliably fixed within the mounting groove 110. Furthermore, this detachable fit makes it easier to replace the sound-generating element 200. Preferably, the mounting groove 110 is formed by combining two matching grooves. The diameter of the mounting groove 110 gradually decreases from the base 100 to the position where the sound-generating element 200 is installed, matching the size of the bottom end of the sound-generating element 200. The combination of the two matching grooves is to accommodate sound-generating elements 200 of different sizes. The two grooves are designed to be detachable for easy replacement by the user.
[0066] In this embodiment, at least a portion of the bottom surface of the base 100 is a planar structure, which abuts against the supporting surface. The bottom surface of the base 100 is provided with an anti-slip element 120. By setting the above structure, at least a portion of the base surface of the base 100 is made planar. This planar structure allows the sound bowl to better abut against the supporting surface, increasing the contact stability between the base 100 and the supporting surface. This helps improve the overall balance of the sound bowl device, especially during repeated striking of the sound-producing element 200 by the striking element 400. It effectively prevents displacement of the sound bowl due to vibration of the sound-producing element 200, thus improving the reliability and safety of the sound bowl to a certain extent. The anti-slip element 120 is used to enhance the friction between the bottom of the sound bowl and the supporting surface, thereby effectively preventing the sound bowl from sliding or shifting during use. Preferably, the bottom is a planar structure, and the anti-slip element 120 is arranged diagonally on the bottom surface. This arrangement allows the intelligent sound bowl to better abut against the supporting surface, improving the overall stability of the placement and preventing displacement of the sound bowl due to vibration during striking.
[0067] In this embodiment, the support element 300 and the base 100 are an integral structure. This integral design offers advantages such as structural stability, high strength, and a simple appearance, while also enhancing the aesthetics of the sound bowl. Preferably, the integral structure includes an upper shell and a lower shell, connected by snap-fits or screws. The upper and lower shells define a receiving space for accommodating components such as the drive element 500 and the control element 600.
[0068] In this embodiment, the motor 530 is a stepper motor, and the electromagnetic clutch 520 is a gear electromagnetic clutch. With this structure, the stepper motor can achieve precise control of its rotation angle and frequency based on the input signal. Due to the inherent stepping characteristics of the stepper motor, it rotates a fixed step angle for each input pulse signal. Therefore, by controlling the number and frequency of pulses, high-precision control of the rotation angle and speed can be achieved, offering advantages such as rapid response, high control accuracy, and simple structure. The gear electromagnetic clutch combines the advantages of gear transmission and electromagnetic clutches. The energization and de-energization of the electromagnetic component 521 can quickly and accurately control the engagement and disengagement of the rotating shaft 510. Specifically, when energized, the electromagnetic component 521 generates magnetic force, driving the rotating shaft 510 to engage with the electromagnetic component 521, thereby transmitting the precise movement of the stepper motor through the rotating shaft 510; when de-energized, the magnetic force disappears, the rotating shaft 510 disconnects from the electromagnetic component 521, and power transmission is interrupted. This design not only inherits the fast response and convenient control characteristics of the electromagnetic clutch 520, but also combines the advantages of stepper motors to further improve the control accuracy and reliability of the system.
[0069] The above description provides one or more embodiments in conjunction with specific content, and does not imply that the specific implementation of this utility model is limited to these descriptions. Any methods or structures that are similar to or identical to those of this utility model, or any technical deductions or substitutions made based on the concept of this utility model, should be considered within the protection scope of this utility model.
Claims
1. A smart sounding bowl, characterized in that, include: Base (100); A sound-generating element (200) is connected to the upper surface of the base (100); A support element (300) is connected to the base (100) and extends upward from the base (100); A striking element (400), the bottom end of which is located on one side of the sound-generating element (200); A driving element (500) is located inside the support element (300). The driving element (500) includes a rotating shaft (510), an electromagnetic clutch (520), and a motor (530). The top end of the striking element (400) is rotatably connected to the middle of the rotating shaft (510). The electromagnetic clutch (520) and the motor (530) are respectively connected to the two ends of the rotating shaft (510). The electromagnetic clutch (520) engages or releases the rotating shaft (510). When the electromagnetic clutch (520) engages the rotating shaft (510), the rotating shaft (510) is fixedly connected to the striking element (400). The motor (530) drives the rotating shaft (510) to rotate, so that the rotating shaft (510) drives the striking element (400) to rotate synchronously.
2. The intelligent sounding bowl according to claim 1, characterized in that, It also includes a control element (600) that controls the rotation angle and rotation frequency of the striking element (400).
3. The intelligent sounding bowl according to claim 1, characterized in that, The electromagnetic clutch (520) includes an electromagnetic component (521) connected to the striking element (400). When the electromagnetic clutch (520) is opened, the electromagnetic component (521) attracts at least a portion of the rotating shaft (510) so that the rotating shaft (510) drives the striking element (400) to rotate synchronously.
4. The intelligent sounding bowl according to claim 3, characterized in that, The electromagnetic clutch (520) further includes a first gear (522) connected to the striking element (400). The first gear (522) is fixedly connected to the electromagnetic assembly (521). The electromagnetic assembly (521) is connected to the striking element (400) through the first gear (522) so that the rotating shaft (510) drives the striking element (400) to rotate synchronously.
5. The intelligent sounding bowl according to claim 4, characterized in that, The driving element (500) further includes a transmission component (540) connected to the striking element (400). The rotating shaft (510) is located inside the transmission component (540). One end of the transmission component (540) is provided with a second gear (541) that meshes with the first gear (522). The top end of the striking element (400) is provided with a connecting protrusion (410). The connecting protrusion (410) is connected to the outer wall of the transmission component (540). The first gear (522) is connected to the striking element (400) through the transmission component (540). The transmission component (540) is connected to the striking element (400) through the connecting protrusion (410), so that the rotating shaft (510) drives the striking element (400) to rotate synchronously.
6. The intelligent sounding bowl according to claim 5, characterized in that, The motor (530) has an output end (531) near the shaft (510). The shaft (510) has an output channel (512) for accommodating the output end (531). The output end (531) is interference-fitted into the output channel (512) so that the motor (530) drives the shaft (510) to rotate synchronously through the output end (531).
7. The intelligent sounding bowl according to claim 1, characterized in that, The electromagnetic clutch (520) is provided with a shaft channel (523), and at least a portion of the shaft (510) is inserted into the shaft channel (523).
8. The intelligent sounding bowl according to claim 6, characterized in that, The drive element (500) further includes a stop (550) and a stop block (560) disposed opposite to it. The stop (550) is disposed adjacent to the motor (530) and the stop (550) is sleeved on the outer surface of the output end (531) to restrict the movement of the output end (531). The stop block (560) is sleeved on the outer wall of the rotating shaft (510) and the outer wall of the stop block (560) abuts against the inner wall of the transmission member (540) to restrict the movement of the rotating shaft (510).
9. The intelligent sounding bowl according to claim 2, characterized in that, It also includes a switch button (610), at least one control button (620), a display screen (630), a charging port (640), and a battery (650). After the switch button (610) generates a signal, the control element (600) receives the signal to control the opening or closing of the smart bowl. The control button (620) and the display screen (630) are electrically connected to the control element (600). The control button (620) is used to adjust the rotation angle, rotation frequency, and running time of the striking element (400). The display screen (630) displays the rotation angle, rotation frequency, and running time of the striking element (400) in real time. The battery (650) is located inside the base (100), and the charging port (640) is used to connect to an external power source to power the battery (650).
10. The intelligent sounding bowl according to claim 1, characterized in that, The base (100) is provided with a mounting groove (110), and the bottom end of the sound-generating element (200) is movably connected to the mounting groove (110); at least part of the bottom surface of the base (100) is a planar structure for abutting against the support surface, and the bottom surface of the base (100) is provided with an anti-slip member (120); the support element (300) is provided with a swing channel (310) that allows the striking element (400) to swing, and the support element (300) and the base (100) are an integral structure.