A concrete layering and vibrating device for pouring concrete into a frame column
By using connecting rods and extension pipe structures within the frame columns, combined with the clamping of hydraulic telescopic rods and transmission claws, the horizontal adjustment of the vibratory sleeve is achieved, solving the safety and efficiency problems of existing equipment when pouring in layers at high altitudes, and improving construction safety and efficiency.
Patent Information
- Application Number
- CN202411528627.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-30
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2044-10-30
AI Technical Summary
Existing concrete pouring equipment for frame columns has poor safety during vibration, especially when pouring in layers at high altitudes, requiring operators to enter the frame column vertically, which poses safety hazards and results in low construction efficiency.
The structure uses connecting rods and extension tubes. The vibratory sleeve is driven by a motor to adjust its position horizontally within the frame column. Combined with the clamping of hydraulic telescopic rods and transmission claws, it achieves layered vibration of the vibratory sleeve, avoiding manual vertical entry and improving safety and efficiency.
It improves the construction safety and efficiency of concrete pouring for frame columns, reduces the risks of manual operation, and adapts to the vibration requirements at different depths.
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Figure CN119083729B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of frame column concrete pouring, in particular to a frame column concrete pouring concrete layering and vibrating equipment. BACKGROUND
[0002] The frame column concrete pouring vibrating device is a device for ensuring uniform distribution of concrete in the frame column and eliminating air bubbles. In order to enhance the compactness and strength of the concrete, it needs to be vibrated during pouring. The vibrating device can effectively rearrange the particles in the concrete, fill the voids and reduce the air bubbles, so as to make the concrete more uniform and compact.
[0003] The Chinese patent with publication number CN219993159U discloses a building concrete vibrating equipment, which comprises a tracked mobile base, a circular plate is rotatably installed on the top of the tracked mobile base, a horizontal plate is arranged on the top of the circular plate, two groups of vertical strips are arranged on the front side of the horizontal plate and are distributed left and right, a sliding plate is arranged on the vertical strip. The equipment is convenient to walk on the reinforcement mesh and automatically vibrates the concrete. It does not need manual operation by inserting the vibrating pipe into the concrete. It not only saves labor, but also avoids the discomfort caused by the vibration of the vibrating pipe to the user, and enhances the use convenience of the equipment.
[0004] The building concrete vibrating equipment of the above-mentioned patent needs a short distance and a fixed distance between the vibrating end and the equipment shell during vibrating. When pouring the concrete layer by layer in the frame column with a high horizontal position, the operator, the vibrating end and the connected equipment need to be lowered into the frame column and hung at the same time, so as to realize the vibration of the corresponding pouring layer. The overall safety is poor, and an additional vertical lifting structure needs to be set up, which is not conducive to the pouring of the frame column with a high horizontal height. SUMMARY
[0005] The purpose of the present application is to provide a frame column concrete pouring concrete layering and vibrating equipment. After the connecting rod is pre-installed on one side of the transmission plate, the upper transmission claw and the lower transmission claw alternately clamp. The horizontal position of the vibrating sleeve can be adjusted step by step through the extension and retraction of the second hydraulic telescopic rod. The vibrating sleeve can be gradually connected to the extension pipe while continuously adjusting the horizontal position longitudinally. The vibrating sleeve can fall to the concrete at different depths, which solves the problems in the above-mentioned background technology.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a layered concrete vibration device for pouring concrete for frame columns, comprising a support base for support and a vibration sleeve for vibration, wherein the upper end of the vibration sleeve is provided with a connecting rod for support and connection, the support base is provided with a motor for output on the side facing the connecting rod, the output shaft of the motor is provided with a second wrapping frame for transmission, an extension tube for extension is arranged longitudinally between the second wrapping frame and the connecting rod, a second transmission rod is provided through the inside of the extension tube, and a first connecting end for transmission is welded to the upper end of both the second transmission rod and the first transmission rod.
[0007] Preferably, the lower end of the second transmission rod is welded with a first wrapping frame that can be wrapped around the outside of the first connecting end, and the first connecting end corresponding to the uppermost extension tube is connected to the internal slot of the second wrapping frame.
[0008] Preferably, connecting rings are provided at both ends and one side of the upper outer end of the extension tube, and extension blocks are provided at both ends and one side of the lower outer end of the extension tube. A first support bar is provided at the lower end of the extension block, and a second support bar is provided at both ends and one side of the motor output shaft. The outer sides of the first and second support bars are respectively connected to the internal sliding grooves of the connecting rings.
[0009] Preferably, the support base has an upper transmission claw at the middle position facing the motor, and a lower transmission claw at the lower end of the upper transmission claw. The outer side of the upper transmission claw is welded and fixed to the outer wall of the motor by a transmission plate. The lower end of the transmission plate is provided with a second hydraulic telescopic rod for extension and retraction, and the second hydraulic telescopic rod is welded and fixed to the lower transmission claw.
[0010] Preferably, a fourth hydraulic telescopic rod is provided on one side of the upper and lower transmission claws, and a third hydraulic telescopic rod is provided on the other side of the upper and lower transmission claws. Sliding rails are provided on both sides of the extension tube and the connecting rod. Transmission wheels for clamping and rotation are provided on the outer ends of the two sliding rails facing the extension tube and the connecting rod, respectively.
[0011] Preferably, the lower transmission claw and the upper transmission claw are provided with reserved cavities at both ends and one side, and the reserved cavities are located corresponding to the protruding extension block and the first support bar.
[0012] Preferably, connecting brackets are provided on both sides between the vibrating sleeve and the connecting rod, connecting plates for connection are provided on both sides of the upper end of the vibrating sleeve, and a shock absorber for vibration reduction is provided between the connecting plate and the connecting bracket.
[0013] Preferably, a first hydraulic telescopic rod for position adjustment is provided between one side of the support base and the transmission plate. Both ends of the first hydraulic telescopic rod are provided with telescopic support rods, and the two ends of the support rods are welded and fixed to the support base and the transmission plate, respectively.
[0014] Preferably, the transmission plate has a through mounting hole, the position of which overlaps with the second wrapping frame.
[0015] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0016] This invention addresses the pouring depth of concrete within frame columns. Multiple extension pipes are sequentially connected end-to-end between a motor and a connecting rod. This sequential connection of extension pipes allows the lowest vibrating sleeve to be embedded into the pouring position within the frame column. Once the external support structure of the frame column is erected, the support base can be connected to the top of the frame column. Extension pipes can then be connected sequentially according to the desired depth. This avoids the need for manual entry of the vibrating equipment vertically into the frame column during subsequent layered pouring. After layered pouring, the motor can still be mounted on the top of the frame column via the support base. As the poured concrete solidifies and is ready for re-pouring, the horizontal position of the vibrating sleeve can be adjusted by gradually reducing the number of extension pipes. The extension pipes, connecting rod, and vibrating sleeve are sequentially connected via a second and first transmission rod, allowing the fixed rod to rotate and vibrate. This enables the equipment to handle the layered vibration required for layered cement pouring, improving the construction efficiency of frame column pouring, reducing the construction difficulty of frame column pouring, and avoiding the dangers of manual entry into the frame column pouring position.
[0017] The present invention has an upper transmission claw located in the middle of one side of the support base and a lower transmission claw located at the lower end of one side of the support base. When the user stands inside the support base and disassembles and assembles the extension tube, the disassembly and assembly can be assisted by the sequential clamping of the upper and lower transmission claws. This reduces the amount of work required for the operator to stand on the upper part of the frame column and improves the safety of the operator during construction. By using the clamping of the upper and lower transmission claws in conjunction with the rotation of the internal transmission wheel on the sliding track, the clamping position can be finely adjusted. At the same time, the extension and retraction of the second hydraulic telescopic rod can replace the clamping position of the upper and lower transmission claws to realize the installation and disassembly of the excess extension tube, making the adjustment of the position of the vibratory sleeve more convenient. Attached Figure Description
[0018] Figure 1 This is a perspective view of the overall external structure of the present invention;
[0019] Figure 2 This is a cross-sectional view of the internal structure of the connecting rod of the present invention;
[0020] Figure 3 For the present inventionFigure 2 Enlarged view of a portion of region A in the middle;
[0021] Figure 4 This is a cross-sectional view of the connection structure between two adjacent extension tubes of the present invention;
[0022] Figure 5 This is an exploded view of the connection structure between the extension tube and the motor of the present invention;
[0023] Figure 6 This is a cross-sectional view of the internal structure of the upper and lower transmission claws of the present invention;
[0024] Figure 7 For the present invention Figure 6 Enlarged view of a portion of region B in the middle;
[0025] Figure 8 This is a schematic diagram of the steps for gradually connecting the extension tube after the connecting rod is erected according to the present invention.
[0026] In the diagram: 1. Support base; 2. First hydraulic telescopic rod; 3. Support telescopic rod; 4. Transmission plate; 5. Motor; 6. Vibrating sleeve; 7. Connecting rod; 8. Extension tube; 9. First transmission rod; 10. Connecting shaft; 11. First connecting end; 12. Connecting bracket; 13. Fixing rod; 14. Shock absorber; 15. Connecting plate; 16. Sliding rail; 17. Extension block; 18. First support bar; 19. Connecting ring; 20. Second transmission rod; 21. First wrapping frame; 22. Second wrapping frame; 23. Mounting hole; 24. Upper transmission claw; 25. Lower transmission claw; 26. Second hydraulic telescopic rod; 27. Third hydraulic telescopic rod; 28. Transmission wheel; 29. Fourth hydraulic telescopic rod; 30. Reserved cavity; 31. Second support bar. Detailed Implementation
[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0028] To address the issue that existing concrete vibrating equipment requires a short and fixed distance between the vibrating end and the equipment casing during vibration, and that when pouring concrete in layers for high-level frame columns, the operator, vibrating end, and connected equipment often need to be simultaneously lowered and suspended inside the frame column to achieve vibration of the corresponding pouring layer, resulting in poor overall safety and the need for additional vertical lifting structures, which is unfavorable for pouring concrete for high-level frame columns, this embodiment provides the following technical solution:
[0029] A layered concrete vibration device for pouring concrete for frame columns includes a support base 1 for support and a vibration sleeve 6 for vibration, such as... Figure 1 As shown, the upper end of the vibrating sleeve 6 is provided with a connecting rod 7 for support and connection. A first transmission rod 9 for transmission and vibration is provided through the inside of the connecting rod 7. The first transmission rod 9 passes through the connecting rod 7 and extends into the inside of the vibrating sleeve 6. A fixing rod 13 is provided on one side of the center position of the vibrating sleeve 6, and the fixing rod 13 is welded and fixed to the first transmission rod 9. The fixed rod 13 can be driven to rotate by the first connecting end 11 through the output of the upper motor 5. The rotation of the fixing rod 13 can realize the vibration of the vibrating sleeve 6.
[0030] In this embodiment, connecting brackets 12 are provided on both sides between the vibrating sleeve 6 and the connecting rod 7. One end of the connecting bracket 12 is welded and fixed to the outer wall of the connecting rod 7, such as... Figure 1 , Figure 2 and Figure 3 As shown, connecting plates 15 are respectively provided on both sides of the upper end of the vibrating sleeve 6 for connection. A shock absorber 14 is provided between the connecting plate 15 and the connecting bracket 12 for shock absorption. The shock absorber 14 can prevent the vibrating sleeve 6 from shaking too much and continuously, which could damage the connection between the support base 1 and the frame column. It can also prevent the frame column from being damaged by shaking after the equipment is erected on the upper end of the frame column. Furthermore, the connection of the vibrating sleeve 6 to the connecting bracket 12 ensures that the clamping structure does not need to contact the vibrating sleeve 6 during subsequent adjustment and disassembly. During the process of embedding in cement and vibrating, the cement does not need to contact the first transmission rod 9 used for transmission and the connecting rod 7 used for support. This prevents the third hydraulic telescopic rod 27, the fourth hydraulic telescopic rod 29 and the transmission wheel 28 used for clamping and transmission from contacting the concrete and causing solidification if the concrete is not cleaned in time. This prevents solidification from affecting subsequent layered vibration and the clamping and transmission of the extension pipe 8.
[0031] In this embodiment, a motor 5 for output is provided on the side of the support base 1 facing the connecting rod 7, and the output shaft of the motor 5 is provided with a second enclosure 22 for transmission, such as... Figure 1 and Figure 5As shown, an extension tube 8 for extension is arranged longitudinally between the second wrapping frame 22 and the connecting rod 7. After being driven by the output of the motor 5 and the extension tube 8, the fixed rod 13 can be rotated. The position of the vibrating sleeve 6 can be adjusted by connecting multiple extension tubes end to end in sequence to adapt to different concrete vibration requirements. The position of the motor 5 is fixed at the upper end of one side of the transmission plate 4. The motor 5 will be fixed at the uppermost end of the frame column together with the transmission plate 4 and the support base 1. There is no need to adjust the horizontal position of the motor 5 during the adjustment of the horizontal position of the vibrating sleeve 6, so as to avoid the heavy motor 5 moving longitudinally downward with the vibrating sleeve 6. The motor 5 is fixed at the upper end of the outside of the frame column to prevent concrete from splashing onto the outer wall of the motor 5, thereby improving the service life of the motor 5 and the safety during use.
[0032] In this embodiment, a second transmission rod 20 is provided through the interior of the extension tube 8. The upper ends of both the second transmission rod 20 and the first transmission rod 9 are welded with a first connecting end 11 for transmission. The lower end of the second transmission rod 20 is welded with a first enclosure frame 21 that can be wrapped around the first connecting end 11. Figure 1 , Figure 2 and Figure 4 As shown, when two adjacent extension tubes 8 are connected, the two second transmission rods 20 are connected by the slot of the first connecting end 11 and the first wrapping frame 21 to achieve transmission connection. When the extension tube 8 is connected to the upper end of the connecting rod 7, the first connecting end 11 at the upper end of the first transmission rod 9 will be inserted into the outside of the first wrapping frame 21 at the lower end of the extension tube 8. The slot connection between the first wrapping frame 21 and the first connecting end 11 allows the second transmission rods 20 inside the two adjacent extension tubes 8 to be transmitted synchronously, so that the motor 5 can stably transmit the fixed rod 13 inside the vibrating sleeve 6.
[0033] In this embodiment, the first connecting end 11 corresponding to the uppermost extension tube 8 is connected to the internal slot of the second wrapping frame 22. The longitudinal connection via the slots from top to bottom enables the motor 5 to drive the fixed rod 13 to rotate. Figure 1 , Figure 2 , Figure 5 and Figure 6As shown, connecting rings 19 are provided at both ends and one side of the upper outer side of the extension tube 8, and extension blocks 17 are provided at both ends and one side of the lower outer side of the extension tube 8. A first support bar 18 is provided at the lower end of the extension block 17, and the lower end of the extension block 17 is welded and fixed to one end of the first support bar 18. A second support bar 31 is provided at both ends and one side of the output shaft of the motor 5, and the outer sides of the first support bar 18 and the second support bar 31 are respectively connected to the internal sliding groove of the connecting ring 19. The two extension tubes 8 are connected end to end in sequence, and the extension tube 8 is connected to the connecting rod 7. The first support bar 18 and the second support bar 31 will be embedded inside the connecting ring 19. Subsequently, the first support bar 18 and the second support bar 31 can be fixed by rotating the nuts on the outside of the first support bar 18 and the second support bar 31. When the two adjacent extension tubes 8 are connected to the first wrapping frame 21 and the first connecting end 11 through the slot, the first support bar 18 will slide into the connecting ring 19. Inserting into the connecting ring 19 can improve the stability of the connection between the two adjacent extension tubes 8 and facilitate the support of the lower vibrating sleeve 6, so that the vibrating sleeve 6 can be continuously adjusted to adjust the horizontal position and adapt to the position required for vibration.
[0034] In this embodiment, an upper transmission claw 24 is provided at the middle position of the support base 1 facing the motor 5, and a lower transmission claw 25 is provided at the lower end of the upper transmission claw 24, such as... Figure 6 , Figure 7 and Figure 8 As shown, the outer side of the upper transmission claw 24 is welded and fixed to the outer wall of the motor 5 by the transmission plate 4. The lower end of the transmission plate 4 is provided with a second hydraulic telescopic rod 26 for telescopic movement. The second hydraulic telescopic rod 26 is welded and fixed to the lower transmission claw 25. The horizontal position of the lower transmission claw 25 can be adjusted by the telescopic movement of the second hydraulic telescopic rod 26. The adjustment of the horizontal position of the lower transmission claw 25 can realize the subsequent assembly and disassembly of the extension tube 8.
[0035] In this embodiment, a fourth hydraulic telescopic rod 29 is provided on one side of both the upper transmission claw 24 and the lower transmission claw 25, such as... Figure 6 and Figure 7As shown, a third hydraulic telescopic rod 27 is provided on the other side inside the upper transmission claw 24 and the lower transmission claw 25. Sliding rails 16 are provided on both sides inside the extension tube 8 and the connecting rod 7. A transmission wheel 28 for clamping and rotating is provided at one end of the two sliding rails 16 facing the extension tube 8 and the connecting rod 7, respectively. The recessed sliding rail 16 is connected to the external slot of the transmission wheel 28. The transmission wheel 28 is embedded in the sliding rail 16 through the slot connection, which can improve the stability of clamping during the clamping process and prevent the corresponding extension tube 8 and connecting rod 7 clamped in the upper transmission claw 24 and the lower transmission claw 25 from falling off due to the vibration of the lower vibrating sleeve 6. The extension and retraction of the fourth hydraulic telescopic rod 29 and the third hydraulic telescopic rod 27 can be used to clamp the items by the two transmission wheels 28. The output of the motor to the transmission wheel 28 can make the transmission wheel 28 rotate. The clamping and rotation can adjust the horizontal position of the extension tube 8 and the connecting rod 7.
[0036] In this embodiment, as Figure 7 As shown, the lower transmission claw 25 and the upper transmission claw 24 are provided with reserved cavities 30 at both ends and one side. The reserved cavity 30 corresponds to the protruding extension block 17 and the first support bar 18. The reserved cavity 30 facilitates the rotation of the transmission wheel 28 to drive the extension tube 8 and the connecting rod 7 to adjust their horizontal positions, avoiding collisions between the extension block 17 and the first support bar 18 and the upper transmission claw 24 and the lower transmission claw 25. The rotation of the transmission wheel 28 can directly drive the extension tube 8 and the connecting rod 7 clamped in the upper transmission claw 24 and the lower transmission claw 25 to adjust their horizontal positions, avoiding the impact caused by the collision between the upper transmission claw 24 and the lower transmission claw 25.
[0037] In this embodiment, a mounting hole 23 is provided through the interior of the transmission plate 4, and the mounting hole 23 extends through and to both ends of the transmission plate 4, such as... Figure 5 As shown, the position of the mounting hole 23 overlaps with the second wrapping frame 22, which facilitates the installation and removal of the bolts passing through the second wrapping frame 22. The user can connect and remove the bolts at the connection position of the motor 5 by standing inside the support base 1.
[0038] In this embodiment, as Figure 2 , Figure 3 , Figure 4 , Figure 6 and Figure 7As shown, a rotatable connecting shaft 10 is provided between the outer side of the second transmission rod 20 and the inner wall of the extension tube 8. The rotation and support of the connecting shaft 10 can keep the second transmission rod 20 in the middle position of the extension tube 8. A rotatable connecting shaft 10 is provided between the outer side of the first transmission rod 9 and the inner side of the connecting rod 7. The connecting shaft 10 can support the first transmission rod 9. The support of the connecting shaft 10 can improve the stability of the motor 5 output and avoid large shaking after transmitting to the fixed rod 13 which is far away.
[0039] In this embodiment, a first hydraulic telescopic rod 2 for position adjustment is provided between one side of the support base 1 and the transmission plate 4, such as... Figure 1 As shown, the lateral position of the vibrating sleeve 6 can be adjusted by extending and retracting the first hydraulic telescopic rod 2. The adjustment of the lateral position of the vibrating sleeve 6 can cope with the vibration of concrete with a large lateral area. Both the upper and lower ends of the first hydraulic telescopic rod 2 are provided with telescopic support telescopic rods 3, and the two ends of the support telescopic rods 3 are welded and fixed to the support base 1 and the transmission plate 4 respectively. The stability of the extension and retraction of the first hydraulic telescopic rod 2 can be improved by the support telescopic rods 3.
[0040] Working principle: During the installation of the device, it is fixed to the upper end of the frame column by the support base 1. During the fixing process, the side of the motor 5 is fixed facing the inside of the frame column. When adjusting the horizontal longitudinal position of the vibrating sleeve 6 and moving the vibrating sleeve 6 into the frame column, the structure of the connecting rod 7 and the vibrating sleeve 6 as a whole is first inserted from one side of the lower transmission claw 25. The third hydraulic telescopic rod 27 and the fourth hydraulic telescopic rod 29 inside the lower transmission claw 25 extend and retract, so that the transmission wheel 28 is inserted into the sliding rail 16 to complete the clamping. After the extension and retraction of the second hydraulic telescopic rod 26, it can push the clamped and fixed connecting rod 7 and vibrating sleeve 6 to the horizontal longitudinal position. Position adjustment: Place the extension tube 8 to be connected onto the upper end of the connecting rod 7. Simultaneously, the first support bar 18 at one end of the extension tube 8 is embedded into the outside of the connecting ring 19. At the same time, the second transmission rod 20 inside the extension tube 8 drives the first wrapping frame 21 at one end to wrap around the first connecting end 11 at the upper end of the first transmission rod 9. The first wrapping frame 21 and the first connecting end 11 are fixed together with bolts. The lower end of the first support bar 18 is rotated and fitted into the connecting ring 19 to complete the fixation. Once the extension tube 8 is fixed, it will be located inside the upper transmission claw 24. The upper transmission claw 24 connects with the lower transmission claw 25. The upper transmission claw 24 stops clamping the extension tubes 28. If the number of extension tubes 8 installed at this time is sufficient to make the vibrating sleeve 6 reach the required position, the upper transmission claw 24 stops clamping. The retraction of the second hydraulic telescopic rod 26, combined with the clamping position of the lower transmission claw 25, allows the uppermost extension tube 8 to move towards the motor 5. At the same time, the second support bar 31 fixed to the outer shell of the motor 5 will be embedded inside the connecting ring 19. Similarly, the first enclosure frame 21 fixed to the output shaft of the motor 5 will be wrapped around the outside of the first connecting end 11 at the upper end of the second transmission rod 20, and the connection position will be fixed in sequence. After fixing, the upper transmission claw 24 will stop clamping the extension tube 8. The transmission wheel 28 achieves final clamping. If an additional extension tube 8 needs to be installed, the lower transmission claw 25 stops clamping and the second hydraulic telescopic rod 26 retracts to reset the lower transmission claw 25. After resetting, clamping is performed again. The clamping at the upper transmission claw 24 position is stopped, and the motor corresponding to the transmission wheel 28 inside the lower transmission claw 25 is started, so that the transmission wheel 28 drives the clamping and connecting structure to adjust the longitudinal horizontal position. The extension tube 8 is adjusted to the horizontal position of the previously fixed connecting rod 7, and this process is repeated to connect the extension tubes 8 end to end in sequence until the vibrating sleeve 6 reaches the required position. Then, the uppermost extension tube 8 is connected to the motor 5.
[0041] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0042] Although embodiments of the 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 invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A layered concrete vibration device for pouring concrete for frame columns, comprising a support base (1) for support and a vibration sleeve (6) for vibration, characterized in that, The upper end of the vibrating sleeve (6) is provided with a connecting rod (7) for support and connection. The support base (1) is provided with a motor (5) for output on the side facing the connecting rod (7). The output shaft of the motor (5) is provided with a second wrapping frame (22) for transmission. An extension tube (8) for extension is arranged longitudinally between the second wrapping frame (22) and the connecting rod (7). A second transmission rod (20) is provided through the inside of the extension tube (8). A first transmission rod (9) for transmission and vibration is provided through the inside of the connecting rod (7). The first transmission rod (9) passes through the connecting rod (7) and extends into the vibrating sleeve (6). A side of the center position of the vibrating sleeve (6) is provided with A fixed rod (13) is welded to the first transmission rod (9). The upper ends of the second transmission rod (20) and the first transmission rod (9) are both welded with a first connecting end (11) for transmission. The lower end of the second transmission rod (20) is welded with a first wrapping frame (21) that can be wrapped around the first connecting end (11). The first connecting end (11) corresponding to the uppermost extension tube (8) is connected to the internal slot of the second wrapping frame (22). The front and rear ends and one side of the upper outer end of the extension tube (8) are provided with connecting rings (19). The front and rear ends and one side of the lower outer end of the extension tube (8) are provided with extension blocks (17). The lower end of the extension block (17) is provided with a first connecting end (11). A support bar (18) is provided. The front and rear ends and one side of the output shaft of the motor (5) are provided with a second support bar (31). The outer sides of the first support bar (18) and the second support bar (31) are respectively connected to the inner sliding groove of the connecting ring (19). The middle position of the support base (1) facing the motor (5) is provided with an upper transmission claw (24). The lower end of the upper transmission claw (24) is provided with a lower transmission claw (25). The outer side of the upper transmission claw (24) is welded and fixed to the outer wall of the motor (5) by a transmission plate (4). The lower end of the transmission plate (4) is provided with a second hydraulic telescopic rod (26) for telescopic extension. The second hydraulic telescopic rod (26) is welded and fixed to the lower transmission claw (25). The upper transmission claw (24) and the lower transmission claw (25) are each provided with a fourth hydraulic telescopic rod (29) on one side inside, and a third hydraulic telescopic rod (27) is provided on the other side inside. The extension tube (8) and the connecting rod (7) are each provided with a sliding rail (16) on both sides inside. The two sliding rails (16) are respectively provided with a transmission wheel (28) for clamping and rotating at one end facing the extension tube (8) and the connecting rod (7) outside. The lower transmission claw (25) and the upper transmission claw (24) are each provided with a reserved cavity (30) at both ends and one side inside. The reserved cavity (30) is located corresponding to the protruding extension block (17) and the first support bar (18).
2. The concrete layer vibration equipment for frame column concrete pouring according to claim 1, characterized in that: Connecting brackets (12) are provided on both sides between the vibrating sleeve (6) and the connecting rod (7). Connecting plates (15) for connection are provided on both sides of the upper end of the vibrating sleeve (6). A shock absorber (14) for vibration reduction is provided between the connecting plate (15) and the connecting bracket (12).
3. The concrete layer vibration equipment for frame column concrete pouring according to claim 2, characterized in that: A first hydraulic telescopic rod (2) for position adjustment is provided between one side of the support base (1) and the transmission plate (4). Both ends of the first hydraulic telescopic rod (2) are provided with telescopic support telescopic rods (3), and the two ends of the support telescopic rods (3) are welded and fixed to the support base (1) and the transmission plate (4) respectively.
4. The concrete layer vibration equipment for frame column concrete pouring according to claim 3, characterized in that: The transmission plate (4) has a through mounting hole (23) inside, and the position of the mounting hole (23) overlaps with the second wrapping frame (22).
Citation Information
Patent Citations
Building concrete vibrating equipment
CN219993159U
Integrally-poured building house construction structure and method
CN116427716A
Pouring process for non-orthogonal frame fan-shaped plane bare concrete structure
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