Electronic drum cymbal with uniform knocking signals
By using a unique vibrating plate design and simplifying the circuit structure, the problems of uneven vibration and unstable signal of electronic drum cymbals are solved, resulting in more realistic and stable sound effects and reduced maintenance difficulty, meeting the high-quality needs of professional drummers and music lovers.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHANGHAI HUAXIN MUSICAL INSTR
- Filing Date
- 2025-03-25
- Publication Date
- 2026-05-12
AI Technical Summary
Existing electronic drum cymbals suffer from uneven vibration, uneven sound, unstable signal output, and high circuit complexity, resulting in unrealistic sound effects, high costs, and difficult repairs.
By employing a unique vibratory plate design and reverse trigger bonding method, combined with a reasonable PCB board and EV buffer, the circuit structure is simplified, achieving uniform striking signal, wide vibration area, and stable output.
It improves the realism and stability of sound effects, reduces the difficulty and cost of maintenance, extends product lifespan, and enhances the playing experience and cost-effectiveness.
Smart Images

Figure CN224232345U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of electronic musical instrument technology, specifically relating to an electronic drum cymbal with uniform striking signal. Background Technology
[0002] With the continuous expansion of electronic technology applications in the field of musical instruments, the digitalization of traditional instruments has become a trend. In particular, cymbals are an important component of percussion instruments. For electronic drum cymbals, electronic components are needed to simulate and reproduce the sound and playing effect of real cymbals. Ordinary electronic drum cymbals mainly rely on the vibration generated by striking during the sound production process. The propagation range and uniformity of the sound are limited to a certain extent by the structure and material of the cymbal itself. There may be problems such as uneven vibration and small vibration area, resulting in an unrealistic and full sound effect. Some electronic drum cymbals may also have insufficient signal output stability, and are easily affected by external interference, resulting in noise or signal loss.
[0003] Furthermore, current electronic drum cymbals on the market use multiple buzzers connected in series or parallel inside the cymbal to expand the buzzer's conduction range. This method has significant drawbacks. First, the selection of the mounting position is extremely demanding. This process requires highly precise operation and extensive experience, because even the slightest deviation can lead to a serious imbalance in the acoustic performance of the entire electronic drum cymbal. For example, if the mounting position is slightly off, it may cause excessive concentration or poor conduction of local vibrations, resulting in uneven sound when the cymbal is struck. Some areas may be too loud while others are too quiet, severely damaging the overall sound integrity and harmony, greatly affecting the performer's auditory experience and control over the performance. Moreover, once the mounting position is determined, any subsequent adjustments or repairs are extremely difficult, as repositioning and mounting are involved, which is almost equivalent to redesigning and rebuilding the entire buzzer layout, resulting in high costs and time-consuming labor.
[0004] Secondly, the internal multiple buzzers are connected in series or parallel to expand the conduction range. While this theoretically has some effect, it significantly increases circuit complexity. This complex circuit structure presents numerous challenges to the manufacturing process of the cymbals. In the production stage, the complex circuit connections increase the difficulty and time cost of assembly, requiring more specialized technicians and more precise assembly equipment to ensure that each buzzer is correctly connected and works properly. Otherwise, circuit failures or poor connections can easily occur, leading to an increased product defect rate. From a maintenance perspective, once a circuit problem occurs in the cymbals, repair personnel need to spend a lot of time troubleshooting the complex circuit connections and identifying the fault point. This not only increases repair time costs but also, due to the specialization and complexity of the circuit, requires repair personnel to have a higher level of technical expertise, further increasing repair costs. Moreover, the complex circuit structure can also affect the stability and reliability of the cymbals to some extent. For example, under prolonged use or when subjected to external environmental interference, abnormal circuit signal transmission and unstable buzzer operation are more likely to occur, reducing the overall performance and lifespan of the product.
[0005] Therefore, it is necessary to develop a new type of electronic cymbal structure to improve these conditions. Utility Model Content
[0006] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide an electronic drum cymbal with uniform striking signal, which has the characteristics of uniform striking, wide vibration area and stable output.
[0007] To achieve the above objectives, the solution adopted by this utility model is as follows:
[0008] This utility model provides an electronic cymbal with uniform striking signal, comprising:
[0009] Cymbal loading plate assembly, including the upper cymbal;
[0010] Cymbal lower plate assembly, including lower cymbals;
[0011] A vibrating disc is disposed between the upper cymbal disc assembly and the lower cymbal disc assembly, and is attached to the back of the upper cymbal. The vibrating disc is in the shape of a ring-shaped disc, and a trigger is provided on the front of the vibrating disc; and
[0012] The cymbal clutch is fixed on the lower cymbal disc assembly and includes a telescopic part that can extend and retract vertically. The top of the telescopic part abuts against the bottom of the upper cymbal disc assembly.
[0013] Preferably, the cymbal upper disc assembly further includes an upper cymbal fixing seat located below the upper cymbal, a fastening threaded member passing through the upper cymbal, and an upper cymbal fixing member located above the upper cymbal and threadedly connected to the fastening threaded member. A groove matching the shape of the upper cymbal fixing seat is provided at the center of the upper cymbal, and the upper cymbal fixing seat is located in the groove.
[0014] Preferably, the upper cymbal fixing seat is provided with an upward-facing limiting groove, and a limiting block matching the shape of the limiting groove is also provided between the upper cymbal fixing seat and the fastening threaded part, the limiting block being located within the limiting groove; preferably, a first felt is also provided at the bottom of the limiting block.
[0015] Preferably, the fastening threaded component includes a threaded rod extending upward through the upper cymbal and a screw portion located at the bottom of the threaded rod, the screw portion fitting against the bottom of the groove of the upper cymbal; the upper cymbal fixing component includes a fixing head threadedly connected to the threaded rod of the fastening threaded component and a large set screw located at the upper part of the fixing head and perpendicular to the rotation axis of the fixing head; preferably, a rubber sealing gasket is also provided between the screw portion of the fastening threaded component and the bottom of the groove of the upper cymbal.
[0016] Preferably, the cymbal upper plate assembly further includes a rubber sleeve located above the upper cymbal, similar in shape to the upper cymbal, but slightly larger in diameter, with a top bright plate at the center top of the rubber sleeve, and the fixing head of the upper cymbal fixing member placed on the top bright plate; preferably, a second felt is also provided between the top bright plate and the fixing head of the upper cymbal fixing member.
[0017] Preferably, a first PCB board is provided on the back of the upper cymbal, and the trigger is pasted upside down on the front of the vibratory plate and electrically connected to the first PCB board.
[0018] Preferably, the cymbal lower disc assembly further includes a lower cymbal fixing seat fixed at the center of the lower cymbal and a positioning sleeve for fixing the cymbal clutch on the lower cymbal fixing seat. The positioning sleeve is fitted onto the lower part of the cymbal clutch. The positioning sleeve includes a positioning sleeve body having a central positioning hole that matches the shape of the lower part of the cymbal clutch and a buckle disposed on the side of the positioning sleeve body for fixing the positioning sleeve on the lower cymbal fixing seat.
[0019] Preferably, the cymbal clutch includes a cymbal clutch body and a fixed part located below the cymbal clutch body. The telescopic part is located above the cymbal clutch body, and its top abuts against the bottom of the upper cymbal fixing seat of the upper cymbal disc assembly. The cymbal clutch body passes through and is clamped in the central hole of the lower cymbal fixing seat. The positioning sleeve is fitted on the fixed part of the cymbal clutch. The bottom of the fixed part is provided with threads, and the cymbal clutch is fastened to the positioning sleeve by a fastening nut that engages with the threads. Preferably, a second PCB board is provided on the lower cymbal fixing seat, and the cymbal clutch is electrically connected to the second PCB board.
[0020] Preferably, it further includes a lower cymbal counterweight, which is annular and fixed on the circumference of the lower cymbal; preferably, it includes 2-6 lower cymbal counterweights.
[0021] Preferably, a ring-shaped cymbal EV buffer is attached to the top of the cymbal counterweight, and a ring-shaped vibratory plate pressure strip is fixed to the bottom of the vibratory plate, with the cymbal EV buffer and the vibratory plate pressure strip being in contact.
[0022] Beneficial effects
[0023] This invention provides an electronic drum cymbal with uniform striking signal. It adopts a unique vibrating disc design as the vibrating component, which makes the vibration more uniform when struck and can produce a stable and consistent vibration response over a large area. The introduction of the cymbal clutch enables the cymbal to open and close, providing drummers with richer performance expression and creative space. Through reasonable PCB board design, application of EV buffer, and reasonable component connection structure, the stability of signal output is effectively improved, ensuring the purity and continuity of sound during performance. It has significantly improved performance compared with existing technologies and can meet the needs of professional drummers and music lovers for high-quality electronic drum cymbals. Attached Figure Description
[0024] Figure 1 This is a three-dimensional exploded view of the electronic cymbal that relates to this utility model.
[0025] Figure 2 This is a schematic diagram of the installation position of the trigger of the electronic cymbal in the vibrating plate according to this utility model. Detailed Implementation
[0026] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. The components of the embodiments of this utility model described and shown in the accompanying drawings can generally be arranged and designed in various different configurations.
[0027] Therefore, the following detailed description of the embodiments of the present invention provided in the accompanying drawings is not intended to limit the scope of the claimed invention, but merely to illustrate selected embodiments of the invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort are within the scope of protection of the present invention.
[0028] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.
[0029] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, or the orientation or positional relationship commonly used when the product of this utility model is in use. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model. In addition, the terms "first," "second," and "third," etc., are only used to distinguish descriptions and should not be construed as indicating or implying relative importance.
[0030] Furthermore, terms such as "horizontal" and "vertical" do not imply that components must be absolutely horizontal or suspended, but rather that they can be slightly tilted. For example, "horizontal" simply means that its direction is more horizontal than "vertical," not that the structure must be completely horizontal, but can be slightly tilted.
[0031] In the description of this utility model, it should also be noted that, unless otherwise explicitly specified and limited, the terms "set," "install," "connect," and "link" 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; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.
[0032] Therefore, the following solutions are proposed:
[0033] See Figure 1 As shown, this utility model provides an electronic drum cymbal with uniform striking signal, including an upper cymbal disc assembly 100, a lower cymbal disc assembly 200, a vibrating disk 300 disposed between the upper cymbal disc assembly 100 and the lower cymbal disc assembly 200, and a cymbal clutch 400 fixed on the lower cymbal disc assembly 200.
[0034] Specifically, in the electronic cymbal provided by this utility model, the cymbal upper disc assembly 100 includes an upper cymbal 110, an upper cymbal fixing seat 120 located below the upper cymbal 110, a fastening threaded member 130 passing through the upper cymbal 110, and an upper cymbal fixing member 140 located above the upper cymbal 110 and threadedly connected to the fastening threaded member 130.
[0035] Furthermore, in the cymbal upper disc assembly 100 of the electronic drum cymbal provided by this utility model, the upper cymbal 110 serves as the upper half of the electronic drum cymbal structure and provides a mounting base for other components of the cymbal upper disc assembly 100. A groove 111 matching the shape of the upper cymbal fixing seat 120 is provided at the center of the upper cymbal 110, and the upper cymbal fixing seat 120 is located in the groove 111. In this utility model, the upper cymbal fixing seat 120 is installed and fixed in the groove 111 of the upper cymbal 110, which serves to protect other components of the cymbal upper disc assembly 100 and also strengthens the structural integrity of the entire cymbal upper disc assembly 100. It is fixedly connected to the upper cymbal 110 by fastening screws. Its structural shape matches the shape of the groove 111 of the upper cymbal 110 and needs to have a certain degree of sealing to prevent dust and other impurities from entering the interior and affecting the performance of the components.
[0036] Furthermore, in the cymbal upper disc assembly 100 of the electronic cymbal provided by this utility model, an upward-opening limiting groove 121 is provided on the upper cymbal fixing seat 120, and a limiting block 150 matching the shape of the limiting groove 121 is also provided between the upper cymbal fixing seat 120 and the fastening threaded member 130. The limiting block 150 is located in the limiting groove 121. In some specific embodiments, the shape of the limiting block 150 can be an irregular structure.
[0037] In some embodiments, a first felt 150a is provided at the bottom of the limiting block 150 for attaching and fixing the limiting block 150 in the limiting groove 121 of the upper cymbal fixing seat 120.
[0038] Furthermore, in the cymbal upper disc assembly 100 of the electronic drum cymbal provided by this utility model, the fastening threaded member 130 includes a threaded rod 131 passing upward through the upper cymbal 110 and a screw portion 132 located at the bottom of the threaded rod 131. The screw portion 132 is in contact with the bottom of the groove 111 of the upper cymbal 110. The upper cymbal fixing member 140 includes a fixing head 141 threadedly connected to the threaded rod 131 of the fastening threaded member 130. The large set screw 142, located on the upper part of the fixed head 141 and perpendicular to the rotation axis of the fixed head 141, is screwed onto the fixed head 141 by the operator's hand, and the fixed head 141 is threaded onto the threaded rod 131 of the fastening threaded component 130 by pushing the large set screw 142. This secures the upper cymbal fixing seat 120, the limiting block 150, the upper cymbal 110 and the fastening threaded component 130 in sequence from bottom to top.
[0039] In some preferred embodiments, a rubber sealing gasket 160 is provided between the screw portion 132 of the fastening threaded member 130 and the bottom of the groove 111 of the upper cymbal 110 for sealing the screw portion 132 of the fastening threaded member 130 and the groove 111 of the upper cymbal 110.
[0040] According to the present invention, in the electronic drum cymbal provided by the present invention, the cymbal upper disc assembly 100 further includes a rubber sleeve 170 located above the upper cymbal 110, similar in shape to the upper cymbal 110, but with a slightly larger diameter. The rubber sleeve 170 is the striking surface of the electronic drum cymbal, and the striking force is transmitted to the upper cymbal 110 located below the rubber sleeve 170 through the rubber sleeve 170. A top surface bright plate 180 is provided at the center top of the rubber sleeve 170. The fixing head 141 of the upper cymbal fixing member 140 is placed on the top surface bright plate 180. The threaded rod 131 of the fastening threaded member 130 passes upward sequentially through the rubber sealing gasket 160, the upper cymbal 110, the rubber sleeve 170, and the top surface bright plate 180, and is threadedly fastened to the fixing head 141 of the upper cymbal fixing member 140, ensuring the structural stability of the cymbal during use.
[0041] In some preferred embodiments, a second felt 141a is provided between the top surface bright sheet 180 and the fixing head 141 of the upper cymbal fixing member 140, for attaching and fixing the fixing head 141 of the upper cymbal fixing member 140 to the top surface bright sheet 180.
[0042] Specifically, in the electronic drum cymbal provided by this utility model, the cymbal lower disc assembly 200 includes a lower cymbal 210, a lower cymbal fixing seat 220 fixed at the center of the lower cymbal 210, and a positioning sleeve 230 for fixing the cymbal clutch 400 on the lower cymbal fixing seat 220. The positioning sleeve 230 is fitted on the lower part of the cymbal clutch 400 and includes a positioning sleeve body 231 and a buckle 232 provided on the side of the positioning sleeve body 231. The positioning sleeve body 231 has a central positioning hole 231a that matches the shape of the lower part of the cymbal clutch 400. The positioning sleeve body 231 is connected and fixed to the lower part of the cymbal clutch 400 through the central positioning hole 231a, and the positioning sleeve 230 is fixed on the lower cymbal fixing seat 220 by the buckle 232 provided on the side of the positioning sleeve body 231.
[0043] In the electronic drum cymbals provided by this utility model, the lower cymbal 210 serves as the lower half of the electronic drum cymbal structure. Together with the upper cymbal 110, it constitutes an important component of the electronic drum cymbal. Structurally, it has the characteristics of fitting together with the upper cymbal 110 and stably supporting the entire cymbal structure. It also provides an installation base for other components of the lower cymbal disc assembly 200.
[0044] Specifically, in the electronic cymbal tweezers provided by this utility model, such as Figure 2 As shown, the vibratory plate 300 is in the shape of an annular disc and has a central circular hole 301. The diameter of the central circular hole 301 should be larger than the size of the upper cymbal fixing seat 120 of the cymbal upper disc assembly 100. Several fixing holes 302 are evenly distributed around the circumference of the vibratory plate 300. During installation, the vibratory plate 300 is fixed to the back of the upper cymbal 110 by screws passing through the fixing holes 302. The upper cymbal fixing seat 120 of the cymbal upper disc assembly 100 passes downward through the central circular hole 301 of the vibratory plate 300 and protrudes from the outside of the upper cymbal fixing seat 120.
[0045] According to the present invention, in the electronic drum cymbal provided by the present invention, the vibrating plate 300 is the key component for generating the vibration effect of the electronic drum cymbal of the present invention, and it is also an innovative design component that distinguishes the structure of the electronic drum cymbal of the present invention from the existing electronic drum cymbals. The setting of the vibrating plate 300 enables it to generate a more uniform vibration with a wide vibration area when struck, thereby simulating the sound vibration effect of a real cymbal. At the same time, the vibrating plate 300 is preferably made of ABS material to ensure that it can perform a more excellent vibration sound production performance.
[0046] According to the present invention, in the electronic cymbal provided by the present invention, a trigger 500 is provided on the front side of the vibrating plate 300. Figure 2A schematic diagram of the installation position of the trigger 500 on the vibrating plate 300 is given, that is, it is located on one side of the central circular hole 301 of the vibrating plate 300. The trigger 500 is a known piezoelectric ceramic buzzer, which is used to convert the physical vibration of the vibrating plate 300 into an electrical signal. It usually needs to have the characteristics of high sensitivity and fast response. In this utility model, it is innovatively pasted on the front of the vibrating plate 300 in reverse, so that the trigger 500 can more accurately capture the small vibration changes of the vibrating plate 300, and can build a more efficient, stable and uniform vibration transmission and sound generation link.
[0047] This invention employs a vibrating plate 300 and a trigger 500 reverse-attached to the front of the vibrating plate 300. When the performer is playing, regardless of whether they strike the edge of the electronic cymbal or its surface, the impact force generated is captured and absorbed by the vibrating plate 300 with extreme sensitivity and uniformity. Subsequently, the vibrating plate 300 transmits the vibrational energy to the trigger 500 in a highly stable and balanced manner, thereby causing the trigger 500 to generate a stable and high-quality audio signal. Ultimately, this ensures that the sound output from the electronic cymbal remains uniform and consistent, avoiding the undesirable phenomena of traditional electronic cymbals where the sound fluctuates in volume and timbre varies due to different striking positions, which seriously affect the performance effect and auditory experience. This creates a more excellent, smooth, and precise performance environment for the performer to express musical emotions and creativity.
[0048] According to the present invention, in the electronic cymbal provided by the present invention, a first PCB board (not shown in the figure) is provided on the back of the upper cymbal 110. A trigger 500, which is reversed and pasted on the front of the vibrating plate 300, is electrically connected to the first PCB board and is used to receive signals from the trigger 500. The physical vibration of the vibrating plate 300 is transmitted to the trigger 500 and converted into an electrical signal by the first PCB board for processing and output. Then, the first PCB board outputs the processed electrical signal to an external device through the socket on the signal output socket connected to it.
[0049] According to the present invention, in the electronic cymbal provided by the present invention, the trigger 500 usually has the characteristics of high sensitivity and fast response, which can accurately capture the minute vibration changes of the vibrating plate 300. Its structural design needs to be closely attached to the surface of the vibrating plate 300 to ensure the accuracy of signal acquisition.
[0050] Specifically, in the electronic drum cymbal provided by this utility model, the cymbal clutch 400 includes a cymbal clutch body 410, a telescopic part 420 that can extend and retract vertically above the cymbal clutch body 410, and a fixing part 430 located below the cymbal clutch body 410. The top of the telescopic part 420 abuts against the bottom of the cymbal upper disc assembly 100. Specifically, the top of the telescopic part 420 abuts against the bottom of the upper cymbal fixing seat 120 of the cymbal upper disc assembly 100.
[0051] The positioning sleeve 230 is fitted onto the fixing part 430 of the cymbal clutch 400. The bottom of the fixing part 430 of the cymbal clutch 400 is threaded. During installation, the cymbal clutch body 410 passes through the center hole of the lower cymbal fixing seat 220 and is clamped in the center hole of the lower cymbal fixing seat 220. Then, the positioning sleeve 230 is fitted onto the fixing part 430 of the cymbal clutch 400. The cymbal clutch 400 is fastened to the positioning sleeve 230 by the fastening nut 240 which is threaded with the bottom of the fixing part 430 of the cymbal clutch 400. At the same time, the cymbal clutch 400 is fixed to the lower cymbal 210 by the cooperation with the clamp of the lower cymbal fixing seat 220. In this utility model, the positioning sleeve 230 is used to assist the positioning and installation of the cymbal clutch 400 on the lower cymbal 210, ensuring the accuracy and stability of the installation position of the cymbal clutch 400. The structure and shape of its central positioning hole are adapted to the fixing part 430 of the cymbal clutch 400 so as to maintain good positioning and fixing performance during long-term use.
[0052] According to the present invention, in the electronic drum cymbal provided by the present invention, the cymbal clutch 400 plays a control and adjustment role in the electronic drum cymbal. A second PCB board (not shown in the figure) is provided on the lower cymbal fixing seat 220. The cymbal clutch 400 is electrically connected to the second PCB board. Through signal interaction with the second PCB board and its own mechanical structure characteristics (abutting against the telescopic part 420 at the bottom of the upper cymbal fixing seat 120 of the upper cymbal assembly 100), the control of the cymbal opening and closing signal is realized. In the present invention, the second PCB board installed on the lower cymbal fixing seat 220 is electrically connected to the cymbal clutch 400 to realize the control of the cymbal-related functions and the relay of signal transmission. Its circuit design is customized according to the overall functional requirements of the cymbal and has functional modules such as signal amplification, filtering, and encoding.
[0053] Specifically, in the electronic cymbal provided by this utility model, the electronic cymbal structure further includes a lower cymbal counterweight 600. The lower cymbal counterweight 600 is annular and fixed on the circumferential ring of the lower cymbal 210. In this utility model, there may be 2-6 lower cymbal counterweights 600, such as 3, 4 or 5 lower cymbal counterweights 600.
[0054] According to the present invention, in the electronic drum cymbal provided by the present invention, the lower cymbal counterweight 600 can be used to adjust the overall weight distribution of the cymbal in order to optimize the feel and dynamic response of the cymbal when it is struck, and ensure stable performance under different striking forces. Its structure is usually customized according to the overall mechanical design requirements of the cymbal, and its weight and shape need to be precisely calculated and adjusted.
[0055] Furthermore, in the electronic cymbal provided by this utility model, a circular cymbal EV buffer 700 is attached to the top of the lower cymbal counterweight 600, and a circular vibratory plate pressure strip 800 is fixed to the bottom of the vibratory plate 300. The lower cymbal EV buffer 700 and the vibratory plate pressure strip 800 are in contact. In this utility model, the main function of the lower cymbal EV buffer 700 is to buffer vibration, reduce unnecessary resonance and noise, and make the output signal purer and more stable. Its structure is made of a material with good elasticity and damping characteristics. It is installed on the lower cymbal counterweight 600 in the electronic cymbal structure and works in conjunction with other components to ensure the sound quality of the cymbal during the striking process.
[0056] This invention effectively improves the stability of signal output and ensures the purity and continuity of sound during performance through a reasonable PCB board design, the application of EV buffer components, and other component connection structures. Regarding control functions, traditional cymbals may have relatively limited functionality. The addition of a cymbal clutch in this invention enables the cymbals to open and close, providing drummers with richer performance expressiveness and creative space.
[0057] This invention employs a unique vibrating disc design as the vibrating component, offering several significant advantages. Its unique design ensures extremely uniform vibration during striking, generating a stable and consistent vibration response over a large area. This uniform and wide-area vibration characteristic, compared to existing technologies, significantly enhances the richness and realism of the sound, simulating a more natural sound effect closer to traditional acoustic cymbals, allowing performers to obtain more delicate and precise sound feedback during performance. Simultaneously, stable vibration helps the trigger more accurately capture the vibration signal, thereby ensuring the accuracy of subsequent electrical signal conversion and transmission. This makes the signal processing and output of the entire electronic drum dual-cymbal system more stable and reliable, effectively reducing signal fluctuations or distortion caused by unstable vibration, and significantly improving product performance and the playing experience.
[0058] In the later maintenance phase of the product, this utility model simplifies the circuit structure through a reasonable PCB board design. When a circuit fault occurs during the use of the electric drum cymbals, maintenance personnel no longer need to face the complex circuit network of traditional products for difficult troubleshooting and repair. The clear and concise circuit layout allows maintenance personnel to quickly and accurately locate the fault point and complete the repair task with relatively simple repair tools and techniques. This not only greatly reduces the difficulty and workload of maintenance, but also effectively shortens maintenance time and reduces downtime caused by product repair, maximizing the protection of users' normal usage rights. At the same time, due to the reduction in maintenance difficulty and cost, it also saves users a lot of maintenance expenses, further improving the product's cost-effectiveness and user satisfaction. From the perspective of the overall product life cycle, this simplified circuit structure and the series of positive effects it brings effectively extend the product's service life. During long-term use, the enhanced stability of the circuit system of the electric drum cymbals can better resist interference and corrosion from external environmental factors, thereby reducing the risk of product scrapping due to circuit faults, allowing the product to maintain good performance for a longer period of time and continuously provide users with stable and reliable service.
[0059] In summary, the innovative electronic drum cymbal structure proposed in this utility model, through bold innovations in the bonding method of the vibrating plate structure and the trigger buzzer, as well as the optimization and simplification of the circuit structure, comprehensively improves the product performance of electronic drum cymbals from multiple dimensions. The high-performance electronic drum dual-composite cymbal of this utility model, through its unique component composition, reasonable connection relationship, and optimized working process, has significantly improved performance compared with the existing technology, and can meet the needs of professional drummers and music lovers for high-quality electronic drum cymbals.
[0060] The above description is only a preferred embodiment of the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. An electronic cymbal with uniform striking signal, characterized in that, include: Cymbal loading plate assembly, including the upper cymbal; Cymbal lower plate assembly, including lower cymbals; A vibrating disc is disposed between the upper cymbal disc assembly and the lower cymbal disc assembly, and is attached to the back of the upper cymbal. The vibrating disc is in the shape of a ring-shaped disc, and a trigger is provided on the front of the vibrating disc; and The cymbal clutch is fixed on the lower cymbal disc assembly and includes a telescopic part that can extend and retract vertically. The top of the telescopic part abuts against the bottom of the upper cymbal disc assembly.
2. The electronic cymbal with uniform striking signal according to claim 1, characterized in that, The cymbal upper disc assembly further includes an upper cymbal fixing seat located below the upper cymbal, a fastening threaded member passing through the upper cymbal, and an upper cymbal fixing member located above the upper cymbal and threadedly connected to the fastening threaded member. A groove matching the shape of the upper cymbal fixing seat is provided at the center of the upper cymbal, and the upper cymbal fixing seat is located in the groove.
3. The electronic cymbal with uniform striking signal according to claim 2, characterized in that, The upper cymbal fixing seat is provided with an upward-facing limiting groove, and a limiting block matching the shape of the limiting groove is also provided between the upper cymbal fixing seat and the fastening threaded part. The limiting block is located in the limiting groove; preferably, a first felt is also provided at the bottom of the limiting block.
4. The electronic cymbal with uniform striking signal according to claim 2, characterized in that, The fastening threaded component includes a threaded rod that passes upward through the upper cymbal and a screw portion located at the bottom of the threaded rod. The screw portion fits against the bottom of the groove of the upper cymbal. The upper cymbal fixing component includes a fixing head that is threadedly connected to the threaded rod of the fastening threaded component and a large set screw located on the upper part of the fixing head and perpendicular to the rotation axis of the fixing head. Preferably, a rubber sealing gasket is also provided between the screw portion of the fastening threaded component and the bottom of the groove of the upper cymbal.
5. The electronic cymbal with uniform striking signal according to claim 4, characterized in that, The cymbal upper plate assembly also includes a rubber sleeve located above the upper cymbal, similar in shape to the upper cymbal but slightly larger in diameter, with a top bright plate at the center top of the rubber sleeve, and the fixing head of the upper cymbal fixing member placed on the top bright plate; preferably, a second felt is provided between the top bright plate and the fixing head of the upper cymbal fixing member.
6. The electronic cymbal with uniform striking signal according to claim 1, characterized in that, A first PCB board is provided on the back of the upper cymbal, and the trigger is attached to the front of the vibratory plate in reverse and is electrically connected to the first PCB board.
7. An electronic cymbal with uniform striking signal according to claim 1 or 2, characterized in that, The cymbal lower disc assembly further includes a lower cymbal fixing seat fixed at the center of the lower cymbal and a positioning sleeve for fixing the cymbal clutch on the lower cymbal fixing seat. The positioning sleeve is fitted onto the lower part of the cymbal clutch. The positioning sleeve includes a positioning sleeve body having a central positioning hole that matches the shape of the lower part of the cymbal clutch and a buckle provided on the side of the positioning sleeve body for fixing the positioning sleeve on the lower cymbal fixing seat.
8. The electronic cymbal with uniform striking signal according to claim 7, characterized in that, The cymbal clutch includes a cymbal clutch body and a fixed part located below the cymbal clutch body. The telescopic part is located above the cymbal clutch body, and its top abuts against the bottom of the upper cymbal fixing seat of the upper cymbal disc assembly. The cymbal clutch body passes through and is clamped in the center hole of the lower cymbal fixing seat. The positioning sleeve is fitted on the fixed part of the cymbal clutch. The bottom of the fixing part is provided with threads. The cymbal clutch is fastened to the positioning sleeve by a fastening nut that engages with the threads. Preferably, a second PCB board is provided on the lower cymbal fixing seat, and the cymbal clutch is electrically connected to the second PCB board.
9. The electronic cymbal with uniform striking signal according to claim 1, characterized in that, It also includes a cymbal counterweight, which is ring-shaped and fixed on the circumference of the cymbal; preferably, it includes 2-6 cymbal counterweights.
10. An electronic cymbal with uniform striking signal according to claim 9, characterized in that, A circular cymbal EV buffer is attached to the top of the cymbal counterweight, and a circular vibratory plate pressure strip is fixed to the bottom of the vibratory plate. The cymbal EV buffer and the vibratory plate pressure strip are in contact.