Concrete vibration integrated device
By designing an integrated high-frequency vibration and compaction device, the problem of low vibration frequency in traditional vibration equipment has been solved, achieving efficient compaction of concrete, improving construction quality and efficiency, and reducing potential building hazards.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 宋文龙
- Filing Date
- 2025-04-18
- Publication Date
- 2026-05-19
AI Technical Summary
Traditional concrete vibrating equipment has a low vibration frequency and significant attenuation, making it difficult to remove air bubbles. Furthermore, it lacks scientific testing methods, resulting in insufficient internal density of the concrete, which affects its strength and durability, and increases potential risks to building quality.
An integrated concrete vibration and compaction device was designed, comprising a high-frequency vibration power structure and a compaction structure. The device works in concert through a transmission structure to achieve high-frequency vibration and compaction. It is equipped with wheels for easy movement, is flexible in operation, and can be adapted to various construction scenarios.
It improves the density of concrete, enhances its compressive strength and impermeability, shortens the construction cycle, reduces potential quality problems, extends the building's lifespan, and improves construction efficiency.
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Figure CN224259906U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of building construction equipment technology, specifically to an integrated concrete vibration device. Background Technology
[0002] As one of the most critical materials in modern construction engineering, the vibration effect of concrete directly affects the strength, durability, and overall quality of the building structure. The vibration process is indispensable in the concrete construction process. It can fully mix the aggregate and cement paste inside the concrete, remove the air, reduce the porosity, and make the concrete more compact, ensuring that it has good compressive strength, impermeability and other properties, and guaranteeing the safety and stability of the building project in the long-term use process.
[0003] Traditional concrete vibration technology has many drawbacks. On the one hand, the performance of vibration equipment is limited. For example, the low-frequency vibrators and flexible shaft vibrators commonly used in China have low vibration frequencies and significant attenuation in concrete, making it difficult to fully expel air bubbles inside the concrete. This results in insufficient internal density of the concrete, affecting its strength and durability. On the other hand, the formwork design is disconnected from the vibration process parameters, making it impossible to design reasonably based on the characteristics of concrete and vibration requirements. This leads to poor vibration results and a lack of scientific and effective means of vibration quality testing, making it difficult to accurately control the vibration process. This increases the risk of quality problems in construction projects to some extent, which may lead to cracks, leaks and other issues during the use of buildings, shortening their service life. To address these issues, we propose an integrated concrete vibration device. Utility Model Content
[0004] (a) Technical problems to be solved
[0005] To address the shortcomings of existing technologies, this utility model provides an integrated concrete vibration device, which solves the aforementioned problems.
[0006] (II) Technical Solution
[0007] To achieve the above-mentioned objectives, this utility model provides the following technical solution: an integrated concrete vibration and compaction device, comprising a fixed plate, wheel frames fixedly installed on the outer walls of both sides of the fixed plate, a set of parallel and vertical support seats fixedly installed on the top two sides of the fixed plate, an installation platform fixedly installed in the middle of the support seats, a rotating motor seat fixedly installed in the center of the top of the installation platform, a transmission structure provided on the rotating motor seat, fixed seats fixedly installed on the top two sides of the installation platform corresponding to the transmission structure, a handle fixedly installed on the top of the fixed seats, a vibration power structure provided on the top two sides of the installation platform, and a compaction structure provided below the installation platform.
[0008] Preferably, the transmission structure includes a connecting crankshaft, a rotating motor base, a double-headed rotating motor, pulleys, and a transmission belt. The connecting crankshaft is rotatably mounted on the top of the two inner sides of the support base facing each other. The rotating motor base is fixedly mounted on the top center of the mounting platform. The double-headed rotating motor is fixedly mounted inside the rotating motor base. A set of pulleys is fixedly mounted on the output shafts on both sides of the double-headed rotating motor and on the connecting crankshaft. The transmission belt is connected to the pulleys. A connecting structure is provided at the bottom of the connecting crankshaft.
[0009] Preferably, the vibration power structure includes a concrete vibrating motor base, a concrete vibrating motor, and a connecting plate. The concrete vibrating motor base is fixedly installed on the top of the mounting platform, and a concrete vibrating motor is fixedly installed on the concrete vibrating motor base. A connecting plate is fixedly installed on the outer side of the concrete vibrating motor base, and a vibration structure is provided on the outer side of the connecting plate.
[0010] Preferably, the vibration structure includes a connecting pipe, a guide plate, and a vibrating rod. The connecting pipe is fixedly installed on the outside of the connecting plate, the guide plate is fixedly installed on the outside of the fixed plate, the connecting pipe is movably installed inside the guide plate, and the vibrating rod is fixedly connected to the bottom of the connecting pipe.
[0011] Preferably, the connection structure includes a connecting rod, a connecting head, and a second connecting rod. The connecting rod is rotatably mounted on the bottom of the connecting crankshaft, the connecting head is rotatably mounted on the bottom of the connecting rod, and the second connecting rod is fixedly mounted on the bottom of the connecting head.
[0012] Preferably, the tamping structure includes a guide sleeve, a buffer spring, and a concrete tamping plate. The guide sleeve is fixedly installed on the fixed plate, and multiple sets of buffer springs are fixedly installed at the bottom of the fixed plate. The concrete tamping plate is fixedly installed at the bottom of the buffer springs, and the top of the concrete tamping plate is fixedly connected to the bottom of the connecting rod.
[0013] (III) Beneficial Effects
[0014] Compared with the prior art, this utility model provides an integrated concrete vibration device, which has the following beneficial effects:
[0015] 1. This integrated concrete vibration device, through a specially designed vibration power structure, can generate stable and high-frequency vibrations. Its vibration components are in full contact with the concrete, penetrating deep into the interior to completely expel air bubbles, effectively reducing porosity and making the concrete more compact. This significantly improves the concrete's compressive strength and impermeability, greatly ensuring the safety and stability of the building project for long-term use, effectively preventing cracks and leaks in the building during subsequent use, and extending the building's service life.
[0016] 2. This integrated concrete vibration and compaction device features a transmission structure that enables the compaction and vibration power structures to work in tandem. During operation, vibration and compaction occur simultaneously, reducing repetitive construction procedures and waiting time. Furthermore, operators can flexibly control the device's movement using handles, allowing for rapid adjustments to the work position and method based on actual site conditions. This ensures precise completion of the vibration work, significantly shortening the construction cycle and substantially improving construction efficiency compared to traditional construction methods.
[0017] 3. This integrated concrete vibration and compaction device features wheels at the bottom for easy movement on the construction site, allowing for quick access to different work areas. Furthermore, the design of the vibration and compaction structures can be adjusted to meet various construction needs, adapting to diverse construction scenarios. In terms of maintenance, each component is installed independently, facilitating disassembly and replacement, thus reducing maintenance difficulty. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the dual-head rotating motor of this utility model;
[0020] Figure 3 This is a schematic diagram of the buffer spring of this utility model;
[0021] Figure 4 This is a schematic diagram of the concrete vibrating motor of this utility model.
[0022] In the diagram: 1. Fixed plate; 2. Support base; 3. Connecting crankshaft; 4. Mounting platform; 5. Rotating motor base; 6. Double-headed rotating motor; 7. Pulley; 8. Drive belt; 9. Fixed base; 10. Handle; 11. Concrete vibrator motor base; 12. Concrete vibrator motor; 13. Connecting plate; 14. Connecting pipe one; 15. Guide plate; 16. Vibrator rod; 17. Connecting rod; 18. Connecting head; 19. Connecting rod two; 20. Guide sleeve; 21. Buffer spring; 22. Concrete compaction plate; 23. Wheel frame. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1-4A concrete vibration compaction integrated device includes a fixed plate 1, wheel frames 23 fixedly installed on the outer walls of both sides of the fixed plate 1, a set of parallel and vertical support seats 2 fixedly installed on the top two sides of the fixed plate 1, an installation platform 4 fixedly installed in the middle of the support seats 2, a rotating motor seat 5 fixedly installed in the center of the top of the installation platform 4, a transmission structure provided on the rotating motor seat 5, fixed seats 9 fixedly installed on the top two sides of the installation platform 4 corresponding to the transmission structure, a handle 10 fixedly installed on the top of the fixed seats 9, a vibration power structure provided on the top two sides of the installation platform 4, and a compaction structure provided below the installation platform 4.
[0025] Furthermore, the transmission structure includes a connecting crankshaft 3, a rotating motor mount 5, a double-headed rotating motor 6, pulleys 7, and a transmission belt 8. The connecting crankshaft 3 is rotatably mounted on the top of the two opposing inner sides of the support base 2. The rotating motor mount 5 is fixedly mounted on the top center of the mounting platform 4. The double-headed rotating motor 6 is fixedly mounted inside the rotating motor mount 5. A set of pulleys 7 is fixedly mounted on both sides of the output shaft of the double-headed rotating motor 6 and on the connecting crankshaft 3. The transmission belt 8 is connected to the pulleys 7. A connecting structure is provided at the bottom of the connecting crankshaft 3. The rotating motor mount 5 not only provides a stable mounting position for the double-headed rotating motor 6, but also... Furthermore, it can effectively reduce the impact of vibration generated during motor operation on other components. Compared with ordinary motors, the dual-head rotating motor 6 can simultaneously drive pulleys 7 on both sides of its output shaft, ensuring the symmetry and stability of power output and making the rotation of the crankshaft 3 smoother. The fit between pulley 7 and transmission belt 8 adopts a specific tooth profile design. This design increases the friction between the belt and pulley, reduces slippage, and ensures the high efficiency and accuracy of power transmission. Even under long-term high-load working conditions, it can stably transmit the power of the dual-head rotating motor 6 to the crankshaft 3.
[0026] Furthermore, the vibration power structure includes a concrete vibrating motor base 11, a concrete vibrating motor 12, and a connecting plate 13. The concrete vibrating motor base 11 is fixedly installed on the top of the mounting platform 4, and the concrete vibrating motor 12 is fixedly installed on the concrete vibrating motor base 11. The connecting plate 13 is fixedly installed on the outer side of the concrete vibrating motor base 11, and the outer side of the connecting plate 13 is provided with a vibration structure. The concrete vibrating motor base 11 is made of a high-strength material with good shock absorption performance. While firmly installing the concrete vibrating motor 12, it can effectively absorb some of the vibration generated when the motor is working, prevent the vibration from being transmitted to the mounting platform 4 and other components, and ensure the stability of the entire device. The connecting plate 13 has sufficient strength and rigidity, and can evenly transmit the vibration generated by the concrete vibrating motor 12 to the connecting pipe 14. Moreover, it will not affect the vibration effect due to its own deformation during the transmission process, ensuring that the vibrating rod 16 can obtain stable and efficient vibration power.
[0027] Furthermore, the vibration structure includes a connecting pipe 14, a guide plate 15, and a vibrator 16. The connecting pipe 14 is fixedly installed on the outside of the connecting plate 13, and the guide plate 15 is fixedly installed on the outer side of the fixed plate 1. The connecting pipe 14 is movably installed inside the guide plate 15, and the vibrator 16 is fixedly connected to the bottom of the connecting pipe 14. The inside of the connecting pipe 14 is smooth, which can reduce energy loss during vibration transmission and enable the vibrator 16 to obtain more stable high-frequency vibration. The guide plate 15 is provided with scale markings, and the operator can accurately adjust the insertion depth of the connecting pipe 14 in the guide plate 15 according to the pouring thickness of the concrete and the actual vibration requirements, thereby controlling the vibration depth of the vibrator 16 and ensuring that all parts of the concrete are fully vibrated. The head of the vibrator 16 adopts a conical design, which helps the vibrator 16 to be inserted into the concrete more easily, and allows air bubbles in the concrete to accumulate and be expelled more easily during vibration, improving the vibration effect.
[0028] Furthermore, the connecting structure includes a connecting rod 17, a connector 18, and a second connecting rod 19. The connecting rod 17 is rotatably mounted on the bottom of the connecting crankshaft 3, the connector 18 is rotatably mounted on the bottom of the connecting rod 17, and the second connecting rod 19 is fixedly mounted on the bottom of the connector 18. Adjustable fastening devices are provided at the connection points of the connecting rod 17 and the second connecting rod 19. When the device is working in different construction environments, the operator can adjust the relative angle and connection tightness between the connecting rod 17 and the second connecting rod 19 according to actual needs to adapt to different vibration and compaction strength requirements. The connector 18 adopts a ball joint design, which allows the circular motion of the connecting rod 17 to be more flexibly converted into the up-and-down reciprocating motion of the second connecting rod 19. In addition, it can automatically compensate for angle changes caused by component manufacturing errors or installation deviations during the movement, ensuring the stability and accuracy of the concrete compaction slab 22 movement.
[0029] Furthermore, the tamping structure includes a guide sleeve 20, a buffer spring 21, and a concrete tamping plate 22. The guide sleeve 20 is fixedly installed on the fixed plate 1, and multiple sets of buffer springs 21 are fixedly installed at the bottom of the fixed plate 1. The concrete tamping plate 22 is fixedly installed at the bottom of the buffer springs 21. The top of the concrete tamping plate 22 is fixedly connected to the bottom of the connecting rod 19. The guide sleeve 20 has a lubricating oil channel inside. By periodically injecting lubricating oil, the friction of the concrete tamping plate 22 during its up-and-down movement can be further reduced, making the tamping action smoother. At the same time, it can also reduce the wear of components and extend the service life of the guide sleeve 20 and the concrete tamping plate 22. The buffer spring 21 ensures that the concrete tamping plate 22 has sufficient tamping force on the concrete and avoids damage to the concrete structure due to excessive impact force. The bottom surface of the concrete tamping plate 22 is provided with raised textures. These textures can increase the friction with the concrete during the tamping process, making the tamping effect more uniform and preventing localized looseness on the concrete surface.
[0030] Structural Description:
[0031] Fixed plate 1: Fixed plate 1 is the basic support structure of the device. Wheel frames 23 are installed on both sides to enable flexible movement. Fixed support base 2 is fixed on the top to provide a stable installation foundation for the entire device and ensure that all components work together.
[0032] Support base 2: Support base 2 is fixed parallel and vertically on both sides of the top of the fixed plate 1. Its function is to support the mounting platform 4, ensure that the components on the mounting platform 4 are in the right position, and maintain the overall stability of the device.
[0033] Connecting crankshaft 3: Connecting crankshaft 3 is rotatably mounted on the top of the inner side of support base 2, and is connected to double-head rotating motor 6 through pulley 7 and transmission belt 8, converting the motor power into its own rotation, driving the bottom structure to move, and realizing power transmission;
[0034] Mounting platform 4: Mounting platform 4 is fixed in the middle of support base 2 and is the main mounting platform for various components. Components such as rotating motor base 5 and fixed base 9 are installed on its top, so that the components can be arranged in an orderly manner and work together.
[0035] Rotary motor base 5: The rotary motor base 5 is installed at the top center of the mounting platform 4 to securely install the double-headed rotary motor 6, while reducing the impact of motor vibration on other components and ensuring stable motor operation and power output.
[0036] Dual-head rotary motor 6: The dual-head rotary motor 6 is installed in the rotary motor base 5. Its output shafts on both sides drive the pulleys 7. Compared with ordinary motors, the power output is symmetrical and stable, providing sufficient power for the rotation of the crankshaft 3.
[0037] Pulley 7: Pulley 7 is installed on the output shaft of the double-head rotating motor 6 and the connecting crankshaft 3 respectively, and cooperates with the transmission belt 8 to transmit power efficiently and accurately, ensuring the smooth rotation of the connecting crankshaft 3;
[0038] Transmission belt 8: Transmission belt 8 connects each pulley 7 and transmits power through friction, ensuring that the power of the dual-head rotating motor 6 is stably transmitted to the connected crankshaft 3 and maintaining the normal operation of the transmission structure;
[0039] Fixed base 9: Fixed base 9 is installed on both sides of the top of the mounting platform 4 to fix the handle 10, making it convenient for the operator to hold and facilitate the movement and operation of the control device;
[0040] Handle 10: Handle 10 is installed on the top of the fixed base 9 and is the part for the operator to control the device, making it easy to move the device on the construction site and adjust the working position;
[0041] Concrete vibrator motor base 11: The concrete vibrator motor base 11 is fixed on the top of the mounting platform 4 and is used to install the concrete vibrator motor 12. Its high-strength, shock-absorbing material can absorb the motor vibration and ensure the stability of the device.
[0042] Concrete vibrating motor 12: The concrete vibrating motor 12 is installed on the concrete vibrating motor base 11. After being powered on, it generates high-frequency vibration, which provides power to the vibrating rod 16 and removes air bubbles from the concrete.
[0043] Connecting plate 13: The connecting plate 13 is fixed on the outer side of the concrete vibrating motor base 11, and transmits the vibration of the concrete vibrating motor 12 to the connecting pipe 14 to ensure that the vibrating rod 16 obtains stable vibration power.
[0044] Connecting pipe 14: Connecting pipe 14 is fixed to the outside of connecting plate 13. The inside is smooth to reduce vibration loss. The bottom is connected to vibrator 16 to transmit vibration.
[0045] Guide plate 15: The guide plate 15 is fixed on the outer side of the fixed plate 1, and the connecting pipe 14 is movably installed to restrict its movement direction. It is equipped with a scale to adjust the vibration depth.
[0046] Vibrator 16: Vibrator 16 is connected to the bottom of connecting pipe 14. It has a conical head design that penetrates deep into the concrete and removes air bubbles through high-frequency vibration.
[0047] Connecting rod 17: Connecting rod 17 is rotatably mounted at the bottom of connecting crankshaft 3 and rotates in a circular motion with connecting crankshaft 3, driving connecting rod 19 to move through connecting head 18;
[0048] Connector 18: Connector 18 connects connecting rod 17 and connecting rod 19. The ball joint design allows the connecting rod 17 to move flexibly and compensate for angular deviations.
[0049] Connecting rod 2 19: The top of connecting rod 2 19 is connected to connector 18, and the bottom is fixed to concrete compaction plate 22, which drives the compaction plate to move up and down to carry out compaction work;
[0050] Guide sleeve 20: The guide sleeve 20 is fixed on the fixed plate 1 and has a lubricating oil channel inside to guide the concrete compaction plate 22 to move vertically and reduce friction and wear;
[0051] Buffer spring 21: Buffer spring 21 is installed at the bottom of fixed plate 1 to buffer the impact force of tamping plate, ensure tamping strength, and protect concrete structure;
[0052] Concrete compaction slab 22: The top of the concrete compaction slab 22 is connected to the connecting rod 2 19, and the bottom is connected to the buffer spring 21. The bottom surface has texture to compact the concrete.
[0053] Wheel frame 23: The wheel frame 23 is fixed to the outer walls of both sides of the fixed plate 1, and wheels are installed at the bottom, which facilitates the flexible movement of the device on the construction site to reach different work areas;
[0054] Working principle: Upon starting the device, the dual-head rotating motor 6 begins operation. Its two output shafts drive the pulleys 7 on the shaft to rotate at high speed. The pulleys 7 cooperate with the transmission belt 8 to transmit power to the pulleys 7 on the connecting crankshaft 3, thereby driving the connecting crankshaft 3 to rotate on the inner top of the support seat 2. This transmission method stably and efficiently converts the motor power into the rotational power of the connecting crankshaft 3, providing a continuous power source for subsequent compaction and vibration work, ensuring stable operation of the device. During the rotation of the connecting crankshaft 3, the connecting rod 17 at its bottom performs a circular motion. The bottom of the connecting rod 17 is connected to the second connecting rod 19 via a connector 18. The circular motion of the connecting rod 17 drives the second connecting rod 19 to reciprocate up and down. The bottom of the second connecting rod 19 contacts the concrete compaction slab. 22 is fixed, allowing the concrete compaction slab 22 to move up and down under the action of the guide sleeve 20 and the buffer spring 21. The guide sleeve 20 ensures the vertical movement of the concrete compaction slab 22 and avoids deviation. The buffer spring 21 reduces the impact force when the compaction slab descends and rises, protecting the equipment and making the compaction process gentler. The concrete compaction slab 22 continuously strikes the concrete surface, making the concrete initially dense, reducing internal voids, and laying the foundation for subsequent vibration. While the compaction operation is underway, the vibration power structure starts to operate. The concrete vibration motor 12 is installed on the concrete vibration motor base 11. After being powered on, it generates high-frequency vibration. The vibration is transmitted to the connecting pipe 14 through the connecting plate 13. The bottom of the connecting pipe 14 is connected to the vibrating rod 16. Because the connecting pipe 14 is on the guide plate The vibrating rod 16 is installed within the concrete 15, with the guide plate 15 restricting its movement direction, allowing it to stably perform high-frequency vertical vibration. The vibrating rod 16 penetrates deep into the concrete, using high-frequency vibration to fully expel air from the concrete, further improving its density and enhancing its compressive and impermeability. The operator holds the handle 10 on top of the fixed base 9 to move the device. The wheel frames 23 on both sides of the fixed plate 1 allow the device to move flexibly on the construction site, quickly reaching different work areas. The operator can flexibly adjust the device position according to the concrete pouring conditions, such as thickness and flatness. Simultaneously, the operating parameters of the dual-head rotating motor 6 and the concrete vibrating motor 12, such as speed and vibration frequency, can be adjusted according to actual needs to achieve precise vibration and compaction. In practical operation, through the coordinated work of its components, the device achieves efficient concrete vibration and compaction. The vibrator 16 removes air bubbles from the concrete, reducing porosity and making the concrete particles more compact. The concrete compaction slab 22 compacts the concrete, improving overall density. The combination of these two processes significantly enhances the compressive strength and impermeability of the concrete, ensuring the strength and durability of the building structure, reducing the possibility of cracks and leaks in the later stages of the building, and extending the building's service life. In addition, the integrated design allows the vibration and compaction processes to be carried out simultaneously, shortening the construction cycle and improving construction efficiency. The device is flexible in operation and adaptable to various construction scenarios. The independent installation of each component facilitates disassembly and replacement, reducing maintenance difficulty and cost, and providing strong support for high-quality construction of building projects.
[0055] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A concrete vibration integrated device, comprising a fixing plate (1), characterized in that: Wheel frames (23) are fixedly installed on both outer walls of the fixed plate (1). A set of parallel and vertical support seats (2) are fixedly installed on both sides of the top of the fixed plate (1). An installation platform (4) is fixedly installed in the middle of the support seat (2). A rotating motor seat (5) is fixedly installed in the center of the top of the installation platform (4). A transmission structure is provided on the rotating motor seat (5). Fixed seats (9) are fixedly installed on both sides of the top of the installation platform (4) corresponding to the transmission structure. A handle (10) is fixedly installed on the top of the fixed seat (9). A vibration power structure is provided on both sides of the top of the installation platform (4). A tamping structure is provided below the installation platform (4).
2. The integrated concrete vibration device according to claim 1, characterized in that: The transmission structure includes a connecting crankshaft (3), a rotating motor base (5), a double-headed rotating motor (6), a pulley (7), and a transmission belt (8). The connecting crankshaft (3) is rotatably mounted on the top of the two inner sides of the support base (2). The rotating motor base (5) is fixedly mounted on the center of the top of the mounting platform (4). The double-headed rotating motor (6) is fixedly mounted inside the rotating motor base (5). A set of pulleys (7) is fixedly mounted on the output shafts on both sides of the double-headed rotating motor (6) and on the connecting crankshaft (3). The transmission belt (8) is connected to the pulleys (7). A connecting structure is provided at the bottom of the connecting crankshaft (3).
3. The integrated concrete vibration device according to claim 1, characterized in that: The vibration power structure includes a concrete vibrating motor base (11), a concrete vibrating motor (12), and a connecting plate (13). The concrete vibrating motor base (11) is fixedly installed on the top of the mounting platform (4). The concrete vibrating motor (12) is fixedly installed on the concrete vibrating motor base (11). The connecting plate (13) is fixedly installed on the outer side of the concrete vibrating motor base (11). The outer side of the connecting plate (13) is provided with a vibration structure.
4. The integrated concrete vibration device according to claim 3, characterized in that: The vibration structure includes a connecting pipe (14), a guide plate (15), and a vibrating rod (16). The connecting pipe (14) is fixedly installed on the outside of the connecting plate (13), and the guide plate (15) is fixedly installed on the outer side of the fixed plate (1). The connecting pipe (14) is movably installed inside the guide plate (15), and the vibrating rod (16) is fixedly connected to the bottom of the connecting pipe (14).
5. The integrated concrete vibration device according to claim 2, characterized in that: The connection structure includes a connecting rod (17), a connecting head (18), and a second connecting rod (19). The connecting rod (17) is rotatably mounted on the bottom of the connecting crankshaft (3). The connecting head (18) is rotatably mounted on the bottom of the connecting rod (17). The second connecting rod (19) is fixedly mounted on the bottom of the connecting head (18).
6. The integrated concrete vibration device according to claim 5, characterized in that: The tamping structure includes a guide sleeve (20), a buffer spring (21), and a concrete tamping plate (22). The guide sleeve (20) is fixedly installed on the fixed plate (1). Multiple sets of buffer springs (21) are fixedly installed at the bottom of the fixed plate (1). The concrete tamping plate (22) is fixedly installed at the bottom of the buffer springs (21). The top of the concrete tamping plate (22) is fixedly connected to the bottom of the connecting rod (19).