Concrete member vibrating equipment for construction
By designing a construction concrete component vibration device with multi-dimensional adjustment functions and composite vibration modes, the problems of insufficient spatial adaptability, positioning accuracy and integration of existing equipment have been solved, achieving efficient and uniform concrete vibration effect, and improving construction quality and efficiency.
Patent Information
- Application Number
- CN202512004519.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-29
- Publication Date
- 2026-02-10
Smart Images

Figure CN121497100A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of concrete vibration technology, and in particular to a concrete component vibration device for construction. Background Technology
[0002] Concrete vibration is a crucial process for ensuring the quality of concrete component casting. Its purpose is to remove air bubbles and voids from the mixture through external force, achieving a dense and uniform state, thereby guaranteeing the final strength, durability, and appearance quality of the component. Efficient and high-quality vibration operations are essential in the production of precast concrete components, building construction, and the casting of special structures.
[0003] Currently, the vibratory compaction equipment widely used on construction sites mainly falls into two categories: handheld vibrators and fixed / rail-mounted vibrators. Handheld vibrators offer advantages such as flexible operation and lower cost, but their effectiveness is highly dependent on the worker's experience and physical strength. They suffer from problems such as difficulty in precisely controlling vibration depth and time, and the potential for under-vibration or over-vibration, leading to uneven component quality. Furthermore, when dealing with large-volume, complex, or densely reinforced components, a single person using a handheld device struggles to achieve comprehensive and uniform vibration, resulting in low efficiency and safety hazards.
[0004] To improve automation levels, some fixed-installation or track-moving vibratory compaction equipment has been developed and applied. These devices typically possess basic movement or positioning capabilities, but significant limitations remain in practical applications:
[0005] First, the spatial adaptability and positioning accuracy are insufficient. Most equipment can only move in one direction, making it difficult to follow and vibrate complex contour components; the angle and depth adjustment range of its vibrating head is limited or inconvenient to adjust, making it impossible to accurately cover all parts of the component, especially forming vibration "dead zones" in areas such as corners and slopes.
[0006] Secondly, the vibration mode is singular and the effective range is limited. Traditional equipment mostly uses rigid vibratory rods, whose vibration range is concentrated around the perimeter of the rod, which is a "point" or "line" vibration. In order to cover a large area, it is necessary to move the equipment frequently or configure a large number of vibratory heads, which leads to system complexity, increased energy consumption, and difficulty in achieving synchronous and uniform vibration within the area, affecting the overall density.
[0007] Third, the equipment suffers from poor integration and maintainability. Many automated vibratory compaction devices have independent drive, power supply, and vibration systems, resulting in complex pipeline layouts. Continuous power supply to moving parts is often achieved through cable dragging, which poses risks of entanglement and wear. Replacing a damaged vibratory compaction module is cumbersome, requiring the disconnection of multiple connections, leading to prolonged downtime and disrupting construction continuity.
[0008] The present invention aims to solve the technical problems existing in the prior art. To this end, a concrete component vibration device for construction is proposed. Summary of the Invention
[0009] The purpose of this invention is to provide a concrete component vibration device for construction, so as to solve the technical problems existing in the prior art.
[0010] By adopting the above technical solution, the present invention has the following beneficial effects:
[0011] This invention provides a concrete component vibration device for construction, comprising a horizontally arranged movable guide column, with fixed mounting frames symmetrically arranged at both ends of the movable guide column, and the fixed mounting frames having a plurality of fixed mounting holes, and further comprising:
[0012] Multiple adjustment mechanisms, including a movable adjustment module and a steering and lifting module mounted thereon;
[0013] The synchronous adjustment vibration mechanism is set on the steering and lifting module, including several sets of vibration modules set on the lower side of the steering and lifting module.
[0014] As a further aspect of the present invention: the movable adjustment module includes a movable mounting frame that is movably configured to cooperate with the movable guide column. Two synchronous drive winding devices are symmetrically arranged on each of the fixed mounting frames. Each synchronous drive winding device has a traction rope extending out, and the outer end of the traction rope is fixed on the movable mounting frame.
[0015] As a further embodiment of the present invention: the movable guide post is symmetrically provided with limiting guide grooves on its front and rear sides, and two sets of conductive slide rails are provided on the lower side of the movable guide post. The inner side of the movable mounting frame is symmetrically provided with limiting guide posts in conjunction with the limiting guide grooves, and conductive sliders are provided on the inner side of the movable mounting frame in conjunction with the conductive slide rails.
[0016] As a further embodiment of the present invention: the steering lifting module includes a limiting steering mounting column provided on the lower side of the movable mounting frame, a limiting steering mounting sleeve rotatably sleeved on the limiting steering mounting column, a rotating mounting plate horizontally provided at the lower end of the limiting steering mounting sleeve, a lifting mounting plate directly below the rotating mounting plate, the rotating mounting plate and the lifting mounting plate being connected at the middle position by a driving lifting column, and a telescopic wire connecting the rotating mounting plate and the lifting mounting plate.
[0017] As a further embodiment of the present invention: a bevel gear ring is provided at the upper end of the limiting steering mounting sleeve, and a plurality of driving bevel gears are provided at equal angles on the lower side of the movable mounting bracket in coordination with the bevel gear ring, and all the driving bevel gears mesh with the bevel gear ring.
[0018] As a further aspect of the present invention: the lower end of the limiting steering mounting column is provided with two rotating conductive rings, and the inner side of the limiting steering mounting sleeve is provided with an annular conductive groove in cooperation with the rotating conductive rings.
[0019] As a further aspect of the present invention: several directional telescopic columns are provided at equal intervals on both sides of the driving lifting column, and the two ends of the directional telescopic columns are respectively connected to the rotating mounting plate and the lifting mounting plate.
[0020] As a further aspect of the present invention: a rubber interlayer is provided in the middle of the lifting mounting plate, and an air storage chamber and a pressure regulating chamber are respectively embedded in the lifting mounting plate on the upper and lower sides of the rubber interlayer. A connecting pipe is symmetrically arranged on the front and rear sides of the lifting mounting plate, and the two ends of the connecting pipe are respectively connected to the air storage chamber and the pressure regulating chamber, and a pressure regulating pump is connected in series on the connecting pipe.
[0021] As a further embodiment of the present invention: the vibration module includes an internally threaded cylinder disposed on the lower side of the lifting mounting plate, a combined mounting cylinder disposed opposite the internally threaded cylinder, an externally threaded cylinder disposed at one end of the combined mounting cylinder in conjunction with the internally threaded cylinder, a guide cylinder disposed on the lifting mounting plate opposite the internally threaded cylinder, one end of the guide cylinder communicating with the pressure regulating chamber, a plurality of sealing rubber rings disposed on the outer side of the other end of the guide cylinder, two sets of conductive retaining rings disposed between the sealing rubber rings, a plurality of sealing rubber rings disposed on the inner wall of the externally threaded cylinder in conjunction with the sealing rubber rings, and two sets of conductive retaining rings disposed on the inner wall of the externally threaded cylinder in conjunction with the two sets of conductive retaining rings.
[0022] As a further embodiment of the present invention: the other end of the combined installation cylinder is connected to a vibrating installation cylinder through an annular vibration generator. A number of receiving grooves are evenly arranged at equal angles on the outer side of the vibrating installation cylinder. The upper end of the receiving groove is provided with a swinging vibrating airbag column through a reset arc panel. One end of the swinging vibrating airbag column is connected to the vibrating installation cylinder through a connecting conduit.
[0023] As a further embodiment of the present invention: a transmission mounting column is provided at the middle position of the vibratory mounting cylinder. One end of the transmission mounting column is connected to the annular vibration generator through a guide transmission column set at equal angles. The other end of the transmission mounting column is connected to the end of the vibratory mounting cylinder through a spring connecting column set at equal angles. Each of the swing vibratory airbag columns is provided with a transmission spring column inside. One end of the transmission spring column is connected to the outer end of the swing vibratory airbag column. The other end of the transmission spring column is connected to the transmission mounting column through a steel wire rope passing through a connecting conduit.
[0024] Compared with the prior art, the beneficial effects of the present invention are:
[0025] 1. Excellent spatial adaptability and versatility
[0026] Flexible installation: With fixed mounting brackets and mounting holes at both ends, it can be easily installed on external frames or mobile equipment, adapting to the layout of different construction sites and the operational needs of concrete components of different sizes.
[0027] Precise positioning with multiple degrees of freedom: The equipment integrates three core adjustment functions: horizontal movement, 360-degree rotation and vertical lifting.
[0028] Horizontal movement: By synchronously driving the winding device and the traction rope, the moving mounting frame is driven to move smoothly and synchronously along the guide column, covering the length direction of the component.
[0029] Rotation adjustment: The stepless rotation of the vibratory module is achieved through the meshing transmission of the drive bevel gear and bevel gear ring, which can adapt to the contours of complex shaped components.
[0030] Height adjustment: By driving the lifting column and the directional telescopic column, the vibration depth can be precisely controlled to meet different pouring thickness requirements.
[0031] Continuous and stable power supply: Horizontal movement is powered by a conductive slide rail coupled with a slider, while rotational movement is powered by a rotating conductive ring coupled with an annular conductive groove. This ensures uninterrupted power supply during the entire stroke and all-angle operation, guaranteeing the reliability of long-term continuous operation.
[0032] 2. Highly efficient and innovative composite vibration mode
[0033] Core vibration generation: A ring-shaped vibration generator is used as a stable vibration source. The vibration is transmitted to the vibratory installation cylinder through the flow guide column to realize high-frequency vibration of the foundation.
[0034] Deployable vibratory arm: It features an innovative design with a swinging vibratory airbag column that can be deployed and retracted by air pressure.
[0035] During operation: By increasing the system air pressure through the pressure regulating pump, the airbag column expands, straightens, and unfolds horizontally, which greatly increases the vibration radius and realizes the upgrade from "point" or "line" vibration to "surface" vibration.
[0036] Dynamic assisted vibration: The deployed airbag column is linked with the vibration system through the internal transmission spring column and steel wire rope. Under the transmission of the main vibration, it produces regular contraction and oscillation, forming a composite vibration effect of "main vibrator + oscillating vibrating arm", which significantly improves the uniformity and density of vibration and effectively eliminates dead corners.
[0037] Intelligent telescopic and retractable design: After operation, the air pressure is reduced to retract the airbag column, which then automatically returns to the storage slot with the assistance of the reset arc panel. The compact structure facilitates equipment movement and transfer in narrow spaces, while protecting the fragile airbag column structure.
[0038] 3. Optimized system integration and ease of maintenance
[0039] Modular and quick assembly / disassembly: The vibratory module achieves mechanical connection through the screwing of the inner and outer threaded cylinders. At the same time, the air circuit and electrical circuit are connected in one go through the insertion of the guide cylinder, sealing ring and conductive retaining ring, realizing the quick replacement and maintenance of the vibratory unit, which greatly improves the equipment utilization rate and on-site operation efficiency.
[0040] Effective vibration isolation: A rubber interlayer is installed in the lifting mounting plate to effectively block the high-frequency vibration generated by the vibration below from being transmitted upstream, protecting the precision moving, steering and lifting adjustment mechanisms, extending the overall service life of the equipment and ensuring positioning accuracy.
[0041] Centralized pneumatic control: The system utilizes an integrated air storage chamber, pressure regulating chamber, and pressure regulating pump to provide power for the expansion and contraction of the vibrating module. It eliminates the need for complex external air circuits, resulting in a highly integrated, responsive, and precise system.
[0042] 4. Overall performance improvement
[0043] High-quality operation: The composite vibration mode, combined with multi-dimensional precise positioning, can penetrate into all parts of the component, ensuring that the concrete is uniform and dense, and that air bubbles are fully expelled, which greatly improves the forming quality and strength of the component.
[0044] High operational efficiency: The wide vibration coverage and adjustable operating modes reduce the number of equipment movements and repeated vibrations, thus shortening the construction cycle. Attached Figure Description
[0045] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0046] Figure 1 This is a top-view three-dimensional structural diagram of a concrete component vibrating device for construction.
[0047] Figure 2 This is a side view of a three-dimensional structure of a concrete component vibrating device for construction.
[0048] Figure 3 This is a partial cross-sectional schematic diagram of a concrete component vibrating device for construction, showing the removal of a movable guide column.
[0049] Figure 4 for Figure 3 An enlarged schematic diagram of point a in the middle.
[0050] Figure 5 This is a partial cross-sectional schematic diagram of a lifting and mounting plate in a concrete component vibrating device for construction.
[0051] Figure 6 for Figure 3 Enlarged schematic diagram of point b in the middle.
[0052] Figure 7 This is a three-dimensional structural diagram of a vibration module in a concrete component vibration device for construction.
[0053] Figure 8 for Figure 7 A partial sectional view.
[0054] Figure 9 for Figure 3 Enlarged diagram of point c in the middle.
[0055] Figure 10 This is a partial cross-sectional schematic diagram of the vibrating installation cylinder and the swinging vibrating airbag column in a concrete component vibrating device for construction.
[0056] Figure 11 for Figure 3 A magnified view of point d in the middle.
[0057] 1-Moving guide column, 2-Fixed mounting bracket, 3-Fixed mounting hole, 4-Synchronous drive winder, 5-Traction rope, 6-Moving mounting bracket, 7-Limiting and steering mounting sleeve, 8-Rotating mounting plate, 9-Lifting mounting plate, 10-Combined mounting cylinder, 11-Vibrating mounting cylinder, 12-Drive lifting column, 13-Annular vibration generator, 14-Limiting guide groove, 15-Conductive slide rail, 16-Limiting guide column, 17-Conductive slider, 18-Connecting pipe, 19-Directional telescopic column, 20-Telescopic wire, 21-Rubber interlayer, 22- 23-Drive bevel gear, 24-Rotating conductive ring, 25-Annular conductive groove, 26-Limiting and steering mounting post, 27-Air storage chamber, 28-Internal threaded cylinder, 29-Pressure regulating chamber, 30-Guide cylinder, 31-Sealing rubber ring, 32-External threaded cylinder, 33-Swinging vibrating airbag column, 34-Conductive retaining ring, 35-Transmission mounting post, 36-Spring connecting post, 37-Transmission spring post, 38-Guide transmission post, 39-Wire rope, 40-Connecting conduit, 41-Reset arc panel, 42-Pressure regulating pump, 43-Receiving groove. Detailed Implementation
[0058] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.
[0059] The following disclosure provides numerous different embodiments or examples for implementing various structures of the invention. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of the invention. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.
[0060] Example 1, please refer to Figures 1-2 In this embodiment of the invention, a concrete component vibration device for construction includes a horizontally arranged movable guide column 1, with fixed mounting frames 2 symmetrically arranged at both ends of the movable guide column 1. The fixed mounting frames 2 are provided with a plurality of fixed mounting holes 3. The device also includes:
[0061] Multiple adjustment mechanisms, including a movable adjustment module and a steering and lifting module mounted thereon;
[0062] The synchronous adjustment vibration mechanism is set on the steering and lifting module, including several sets of vibration modules set on the lower side of the steering and lifting module.
[0063] The fixed mounting bracket 2 is installed on an externally set frame or an externally set mobile device through the fixed mounting hole 3 to meet the vibration needs of concrete components of different sizes;
[0064] The moving adjustment module causes the steering and lifting module and its vibrating module to move along the moving guide column 1. At the same time, the steering and lifting module allows the vibrating module to adjust its angle and height to adapt to the vibration requirements of concrete components of different sizes and shapes. The vibrating module performs vibration operation while moving and changing position.
[0065] Example 2, based on Example 1, please refer to... Figures 1-4 In this embodiment of the invention, the movable adjustment module includes a movable mounting frame 6 that is movably configured to cooperate with the movable guide column 1. Two synchronous drive windings 4 are symmetrically arranged on the fixed mounting frame 2. Each synchronous drive winding 4 has a traction rope 5 extending out. The outer ends of the traction ropes 5 are fixed on the movable mounting frame 6. Limiting guide grooves 14 are symmetrically arranged on the front and rear sides of the movable guide column 1. Two sets of conductive slide rails 15 are arranged on the lower side of the movable guide column 1. Limiting guide columns 16 are symmetrically arranged on the inner side of the movable mounting frame 6 in cooperation with the limiting guide grooves 14. Conductive sliders 17 are arranged on the inner side of the movable mounting frame 6 in cooperation with the conductive slide rails 15.
[0066] The steering and lifting module includes a limiting steering mounting column 26 set on the lower side of the movable mounting frame 6, and a limiting steering mounting sleeve 7 is rotatably sleeved on the limiting steering mounting column 26. A rotating mounting plate 8 is horizontally set at the lower end of the limiting steering mounting sleeve 7. A lifting mounting plate 9 is set directly below the rotating mounting plate 8. The rotating mounting plate 8 and the lifting mounting plate 9 are connected at the middle position by a driving lifting column 12. Several directional telescopic columns 19 are set at equal intervals on both sides of the driving lifting column 12. The two ends of the directional telescopic columns 19 are respectively connected to the rotating mounting plate 8 and the lifting mounting plate 9. A telescopic wire 20 is connected between the rotating mounting plate 8 and the lifting mounting plate 9.
[0067] The upper end of the limiting steering mounting sleeve 7 is provided with a bevel ring 22, and the lower side of the movable mounting frame 6 is provided with a plurality of driving bevel gears 23 at equal angles to the bevel ring 22. The driving bevel gears 23 all mesh with the bevel ring 22. The lower end of the limiting steering mounting column 26 is provided with two rotating conductive rings 24, and the inner side of the limiting steering mounting sleeve 7 is provided with an annular conductive groove 25 to cooperate with the rotating conductive rings 24.
[0068] The traction rope 5 is driven to be wound and released by the synchronous drive winding device 4 on the two fixed mounting brackets 2. At the same time, with the cooperation of the limit guide post 16 and the limit guide groove 14, the mobile mounting bracket 6, together with the steering lifting module and the vibration module on it, can move and change position stably. During this process, the conductive slider 17 and the conductive slide rail 15 cooperate to realize sliding coupling power supply, ensuring the stable power supply of the mobile mounting bracket 6.
[0069] By driving the bevel gear 23 to mesh with the bevel gear ring 22, the limiting steering mounting sleeve 7 and the limiting steering mounting column 26 rotate, so that the angle of the rotating mounting plate 8, the lifting mounting plate 9 and the vibration module on it can be adjusted. At this time, the rotating conductive ring 24 and the annular conductive groove 25 realize the rotational coupling power supply, ensuring the stable power supply of the limiting steering mounting sleeve 7.
[0070] The height of the vibration module can be adjusted by driving the lifting column 12 to adjust the distance between the lifting mounting plate 9 and the rotating mounting plate 8, thereby changing the vibration depth.
[0071] Example 3, based on Example 2, please refer to... Figures 5 to 11 In this embodiment of the invention, a rubber interlayer 21 is provided in the middle of the lifting mounting plate 9. The rubber interlayer 21 can block the upward transmission of vibration and protect the stable operation of the upper components. An air storage chamber 27 and a pressure regulating chamber 29 are respectively embedded in the lifting mounting plate 9 on the upper and lower sides of the rubber interlayer 21. A connecting pipe 18 is symmetrically arranged on the front and rear sides of the lifting mounting plate 9. The two ends of the connecting pipe 18 are respectively connected to the air storage chamber 27 and the pressure regulating chamber 29, and a pressure regulating pump 42 is connected in series on each connecting pipe 18.
[0072] The vibration module includes an internally threaded cylinder 28 disposed on the lower side of the lifting mounting plate 9. A combined mounting cylinder 10 is disposed opposite the internally threaded cylinder 28. An externally threaded cylinder 32 is disposed at one end of the combined mounting cylinder 10 in conjunction with the internally threaded cylinder 28. A guide cylinder 30 is disposed on the lifting mounting plate 9 opposite the internally threaded cylinder 28. One end of the guide cylinder 30 is connected to the pressure regulating chamber 29. Several sealing rubber rings 31 are disposed on the outer side of the other end of the guide cylinder 30. Two sets of conductive retaining rings 34 are disposed between the sealing rubber rings 31. Several sealing rubber rings 31 are also disposed on the inner wall of the externally threaded cylinder 32 in conjunction with the sealing rubber rings 31. Two sets of conductive retaining rings 34 are also disposed on the inner wall of the externally threaded cylinder 32 in conjunction with the two sets of conductive retaining rings 34.
[0073] The other end of the combined installation cylinder 10 is connected to a vibrating installation cylinder 11 via an annular vibration generator 13. A plurality of receiving slots 43 are evenly arranged at equal angles on the outer side of the vibrating installation cylinder 11. A swinging vibrating airbag column 33 is provided at the upper end of the receiving slot 43 via a reset arc panel 41. One end of the swinging vibrating airbag column 33 is connected to the vibrating installation cylinder 11 via a connecting conduit 40. A transmission installation column 35 is provided in the middle of the vibrating installation cylinder 11. One end of the transmission installation column 35 is connected to the annular vibration generator 13 via a flow-guiding transmission column 38 arranged at equal angles. The other end of the transmission installation column 35 is connected to the end of the vibrating installation cylinder 11 via a spring connecting column 36 arranged at equal angles. A transmission spring column 37 is provided inside each swinging vibrating airbag column 33. One end of the transmission spring column 37 is connected to the outer end of the swinging vibrating airbag column 33, and the other end of the transmission spring column 37 is connected to the transmission installation column 35 via a steel wire rope 39 passing through the connecting conduit 40.
[0074] The combination of the internal threaded cylinder 28 and the external threaded cylinder 32 enables the quick disassembly of the combined installation cylinder 10. After the internal threaded cylinder 28 and the external threaded cylinder 32 are screwed and installed, the guide cylinder 30 is inserted into the external threaded cylinder 32, causing the sealing rubber ring 31 on the outside of the guide cylinder 30 to be misaligned and locked into the sealing rubber ring 31 on the inside of the external threaded cylinder 32. At the same time, the conductive retaining ring 34 on the outside of the guide cylinder 30 is misaligned and locked into the conductive retaining ring 34 on the inside of the external threaded cylinder 32, thus completing the power supply of the combined installation cylinder 10.
[0075] Since the guide tube 30, external threaded tube 32, combined installation tube 10, annular vibration generator 13, vibrating installation tube 11, connecting conduit 40, and swing vibrating airbag column 33 form a sealed space, the gas in the air storage chamber 27 is drawn into the pressure regulating chamber 29 by the pressure regulating pump 42, which increases the air pressure in the sealed space. The swing vibrating airbag column 33 expands as the air pressure increases, rotates around the reset arc panel 41 and disengages from the receiving groove 43, and rotates to a horizontal state as the pressure increases, expanding and elongating. At this time, the transmission spring column 37 inside the swing vibrating airbag column 33 is... The traction is extended, and finally the transmission mounting column 35 is straightened by the steel wire rope 39. The ring vibration generator 13 is activated to generate vibration. The vibration is transmitted to the vibrating mounting cylinder 11 and the transmission mounting column 35 through the guide transmission column 38. The transmission mounting column 35 oscillates within a certain range through the spring connecting column 36. The inflated swing vibrating airbag column 33 performs contraction and vibration operations within a certain range through the steel wire rope 39 and the transmission spring column 37. Combined with the vibrating mounting cylinder 11, a compound vibration operation is achieved. With the addition of multiple adjustment mechanisms, the range and effect of the vibration operation are significantly improved.
[0076] After the vibration operation is completed, the gas in the sealed space is drawn into the gas storage chamber 27 by the pressure regulating pump 42. At this time, the swing vibration airbag column 33 contracts and moves away from the vibration operation area. Under the action of the reset arc panel 41, it is put back into the storage tank 43.
[0077] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0078] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A concrete component vibration device for construction, comprising a horizontally arranged movable guide column, wherein fixed mounting frames are symmetrically arranged at both ends of the movable guide column, and the fixed mounting frames are provided with a plurality of fixed mounting holes, characterized in that, Also includes: Multiple adjustment mechanisms, including a movable adjustment module and a steering and lifting module mounted thereon; The synchronous adjustment vibration mechanism is set on the steering and lifting module, including several sets of vibration modules set on the lower side of the steering and lifting module.
2. The concrete component vibration device for construction according to claim 1, characterized in that, The movable adjustment module includes a movable mounting frame that is movably set in conjunction with the movable guide column. Two synchronous drive winding devices are symmetrically arranged on each of the fixed mounting frames. Each synchronous drive winding device has a traction rope extending out, and the outer end of the traction rope is fixed on the movable mounting frame.
3. The concrete component vibration device for construction according to claim 2, characterized in that, The movable guide column is symmetrically provided with limiting guide grooves on its front and rear sides. Two sets of conductive slide rails are provided on the lower side of the movable guide column. The inner side of the movable mounting frame is symmetrically provided with limiting guide columns in conjunction with the limiting guide grooves. The inner side of the movable mounting frame is provided with conductive sliders in conjunction with the conductive slide rails.
4. A concrete component vibration device for construction according to claim 3, characterized in that, The steering and lifting module includes a limiting steering mounting column set on the lower side of the movable mounting frame, and a limiting steering mounting sleeve is rotatably fitted on the limiting steering mounting column. A rotating mounting plate is horizontally set at the lower end of the limiting steering mounting sleeve, and a lifting mounting plate is set directly below the rotating mounting plate. The rotating mounting plate and the lifting mounting plate are connected at the middle position by a driving lifting column, and a telescopic wire is connected between the rotating mounting plate and the lifting mounting plate.
5. A concrete component vibration device for construction according to claim 4, characterized in that, The upper end of the limiting steering mounting sleeve is provided with a bevel gear ring, and the lower side of the movable mounting frame is provided with a number of driving bevel gears at equal angles to the bevel gear ring. All the driving bevel gears mesh with the bevel gear ring. The lower end of the limiting steering mounting column is provided with two rotating conductive rings, and the inner side of the limiting steering mounting sleeve is provided with an annular conductive groove to cooperate with the rotating conductive rings.
6. A concrete component vibration device for construction according to claim 4, characterized in that, Several directional telescopic columns are evenly spaced on both sides of the drive lifting column, and the two ends of the directional telescopic columns are connected to the rotating mounting plate and the lifting mounting plate, respectively.
7. A concrete component vibration device for construction according to claim 4, characterized in that, A rubber interlayer is provided in the middle of the lifting mounting plate. An air storage chamber and a pressure regulating chamber are respectively embedded in the lifting mounting plate on the upper and lower sides of the rubber interlayer. A connecting pipe is symmetrically arranged on the front and rear sides of the lifting mounting plate. The two ends of the connecting pipe are connected to the air storage chamber and the pressure regulating chamber respectively, and a pressure regulating pump is connected in series on each connecting pipe.
8. A concrete component vibration device for construction according to claim 7, characterized in that, The vibrating module includes an internally threaded cylinder disposed on the lower side of the lifting mounting plate, a combined mounting cylinder disposed opposite the internally threaded cylinder, an externally threaded cylinder disposed at one end of the combined mounting cylinder in conjunction with the internally threaded cylinder, a guide cylinder disposed on the lifting mounting plate opposite the internally threaded cylinder, one end of the guide cylinder communicating with the pressure regulating chamber, and several sealing rubber rings disposed on the outer side of the other end of the guide cylinder, with two sets of conductive retaining rings disposed between the sealing rubber rings, several sealing rubber rings also disposed on the inner wall of the externally threaded cylinder in conjunction with the sealing rubber rings, and two sets of conductive retaining rings also disposed on the inner wall of the externally threaded cylinder in conjunction with the two sets of conductive retaining rings.
9. A concrete component vibration device for construction according to claim 8, characterized in that, The other end of the combined installation cylinder is connected to a vibrating installation cylinder via an annular vibration generator. Several storage slots are evenly arranged at equal angles on the outer side of the vibrating installation cylinder. The upper end of the storage slot is provided with a swinging vibrating airbag column via a reset arc panel. One end of the swinging vibrating airbag column is connected to the vibrating installation cylinder via a connecting conduit.
10. A concrete component vibration device for construction according to claim 9, characterized in that, A transmission mounting column is provided in the middle of the vibratory mounting cylinder. One end of the transmission mounting column is connected to the annular vibration generator through a guide transmission column set at equal angles. The other end of the transmission mounting column is connected to the end of the vibratory mounting cylinder through a spring connecting column set at equal angles. Each of the swing vibratory airbag columns is provided with a transmission spring column inside. One end of the transmission spring column is connected to the outer end of the swing vibratory airbag column. The other end of the transmission spring column is connected to the transmission mounting column through a steel wire rope passing through a connecting conduit.