Stretching type numerical control vibrating equipment
By designing an extension-type CNC vibratory compaction device, using casters and hydraulic rods to drive the adjusting arm to fit the mold, and combining a vibratory motor and hydraulic rod for compaction, the problem of poor adaptability of existing equipment is solved, achieving convenient movement and efficient concrete compaction.
Patent Information
- Application Number
- CN202422970354.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-03
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-03
AI Technical Summary
Existing vibration equipment is not suitable for concrete columns of different diameters, has poor operability, and is large in size and inconvenient to move.
An extendable CNC vibratory compaction device was designed. It can be easily moved by casters, and uses hydraulic rods and motors to drive the adjusting arm and side plate to fit the mold. Combined with the vibration motor and hydraulic rods, it realizes the vibration and compaction of concrete and is adaptable to different types of molds.
It enables convenient movement and operation, is compatible with different mold models, improves the density and strength of concrete, and reduces the difficulty of operation.
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Figure CN223643894U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to numerical control equipment technical field, concretely is a stretch formula numerical control vibrating equipment. BACKGROUND
[0002] The vibrating equipment mainly refers to a kind of equipment capable of generating vibration, and its main function is to vibrate and compact material such as concrete to improve its compactness and strength and ensure the quality of concrete components.
[0003] When pouring concrete beams and columns, in order to ensure the strength of concrete, the mold needs to be vibrated by the vibrating equipment to expel the air bubbles inside the concrete, and then compacted by ramming to ensure its quality. The existing vibrating equipment is not convenient for processing concrete columns of different diameters, and the operability is poor. Moreover, the existing equipment is large in size and inconvenient to move, making it difficult to use. UTILITY MODEL CONTENT
[0004] The utility model aims at providing a stretch formula numerical control vibrating equipment, which has the advantages of convenient movement, reduced operation difficulty, strong adaptability and convenient operation for different models of products, and solves the problems in the above background technology.
[0005] To achieve the above object, the utility model provides the following technical scheme: a stretch formula numerical control vibrating equipment, comprising a top disc, a side plate and an assembly seat, the middle of the upper end face of the top disc is fixed with the assembly seat, and the upper end of the assembly seat is embedded with a hydraulic rod, the front and rear end faces of the assembly seat are both fixed with an adjusting box, and the two ends of the adjusting box are both slidingly installed with an adjusting arm, the side plate is provided with two, and the two side plates are respectively located at the lower ends of the two sides of the top disc, the upper end of the side plate is fixed with a connecting rod, and the upper end of the connecting rod is connected with the outer end of the corresponding adjusting arm through a connecting arm, the two sides of the side plate are both provided with a storage groove, and the storage groove is rotatably installed with a pressing block through a rotating shaft, and the outer side of the side plate is embedded with a vibrating motor.
[0006] When using the extension-type CNC vibratory compaction equipment in this technical solution, the device is manually pushed, and the displacement of the device is achieved by the rotation of the universal wheels. The device is pushed to the outside of the concrete column mold, so that the mold is located between the two side plates, and the pressure plate corresponds to the upper opening of the mold. The bidirectional telescopic rod built into the adjustment box is activated. The bidirectional telescopic rod drives the two adjustment arms to move relative to each other, so that the adjustment arms drive the side plates to move synchronously through the connecting arms and connecting rods. The two side plates move closer to each other and fit against the outside of the mold. Then, the motor built into the drive box is activated to drive the pressure block to rotate. After the pressure block deflects from the receiving slot, the outer end of the pressure block presses against the side of the mold. The four pressure blocks complete symmetrical compression and limiting to prevent the mold from falling apart during vibration. The vibration motor is activated to drive the side plates to vibrate. The side plates drive the mold to vibrate. At this time, the concrete in the mold is vibrated and the internal air bubbles are discharged. Then, the hydraulic rod is activated to drive the pressure plate to rise and fall. The pressure plate tamps the upper end of the concrete, so that the concrete is compacted.
[0007] Preferably, a pressure plate is provided at the middle of the lower end face of the top plate, and the lower end of the hydraulic rod is fixed to the pressure plate. The pressure plate is raised and lowered by the hydraulic rod, and the pressure plate performs tamping and compaction work on the upper side of the concrete.
[0008] Preferably, both sides of the top plate are provided with mating grooves, and the mating grooves correspond to the connecting rods. The mating grooves provide storage space for the connecting rods, increasing the range of motion of the connecting rods.
[0009] Preferably, a bidirectional telescopic rod is fixed in the middle of the interior of the adjusting box, and both ends of the bidirectional telescopic rod are respectively fixed to the inner ends of the corresponding adjusting arms. The bidirectional telescopic rod drives the two adjusting arms to move relative to each other.
[0010] Preferably, the connecting arm has a Y-shaped design, with its two outer ends fixed to two adjusting arms on the same side, and its lower end fixed to a connecting rod. The connecting arm enables the adjusting arm and the connecting rod to move in tandem.
[0011] Preferably, a drive box is fixed to both ends of the upper surface of the side plate, and the output shaft of the motor in the drive box is connected to the rotating shaft of the pressure block. The motor in the drive box drives the pressure block to rotate, and the rotating shaft of the pressure block is located on one side, thus achieving deflection.
[0012] Preferably, both ends of the lower surface of the side panel are rotatably mounted with casters, and the casters are equipped with wheel stops. The casters allow the side panel to move, and the wheel stops act as brakes.
[0013] Preferably, the side plate is located below the top plate, and the pressure block is adapted to the storage slot. The pressure block is stored in the storage slot.
[0014] Compared with the prior art, the beneficial effects of this utility model are as follows: Powered by an external power supply, the operator starts the device through an external control device and manually pushes it. The rotation of the casters displaces the device, pushing it to the outside of the concrete column mold, positioning the mold between the two side plates, with the pressure plate corresponding to the upper opening of the mold. The built-in bidirectional telescopic rod in the adjustment box is activated, causing the two adjustment arms to move relative to each other. This causes the adjustment arms to synchronously move the side plates through the connecting arms and rods, bringing the two side plates closer together to fit against the outside of the mold. Then, the built-in motor in the drive box is activated to drive the pressure plate... As the blocks rotate, the pressure blocks deflect from the receiving slot, causing the outer end of the pressure blocks to press against the side of the mold. The four pressure blocks complete symmetrical pressing and limiting, preventing the mold from falling apart during vibration. The vibration motor is started to drive the side plate to vibrate, and the side plate drives the mold to vibrate. At this time, the concrete inside the mold is vibrated and expelled from the mold. Then, the hydraulic rod is started to drive the pressure plate to rise and fall. The pressure plate tamps the upper end of the concrete, making the concrete compacted. This device has a simple structure, is easy to operate, and is designed for easy movement, reducing the difficulty of operation and making it convenient to use. It is also compatible with different molds and has strong operability. Attached Figure Description
[0015] Fig. 1 This is a schematic diagram of the main structure of this utility model;
[0016] Fig. 2 This is a schematic diagram of the structure of this utility model from below;
[0017] Fig. 3 This is a schematic diagram of the side plate structure of this utility model;
[0018] Fig. 4 This is a schematic diagram of the top plate structure of this utility model.
[0019] In the diagram: 1. Connecting arm; 2. Adjusting box; 3. Top plate; 4. Pressure block; 5. Casters; 6. Side plate; 7. Vibration motor; 8. Adjusting arm; 9. Assembly base; 10. Hydraulic rod; 11. Pressure plate; 12. Connecting rod; 13. Storage slot; 14. Drive box; 15. Docking slot. Detailed Implementation
[0020] 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.
[0021] Example 1
[0022] Please see Figs. 1 to 4This utility model provides an embodiment of an extension-type CNC vibratory compaction device, comprising a top plate 3, side plates 6, and an assembly base 9. The assembly base 9 is fixed at the middle of the upper end face of the top plate 3, and a hydraulic rod 10 is embedded in the upper end of the assembly base 9. Adjustment boxes 2 are fixed at both the front and rear ends of the assembly base 9, and adjustment arms 8 are slidably installed in the openings at both ends of the adjustment boxes 2. There are two side plates 6, which are located at the lower ends of the two sides of the top plate 3, respectively. A connecting rod 12 is fixed at the middle of the upper end of the side plate 6, and the upper end of the connecting rod 12 is connected to the outer end of the corresponding adjustment arm 8 through the connecting arm 1. A storage groove 13 is opened on both sides of the side plate 6, and a pressure block 4 is rotatably installed in the storage groove 13 through a rotating shaft. A vibration motor 7 is embedded in the outer side of the side plate 6.
[0023] A pressure plate 11 is provided at the middle of the lower end face of the top plate 3. The lower end of the hydraulic rod 10 is fixed on the pressure plate 11. The pressure plate 11 is raised and lowered by the hydraulic rod 10, and the pressure plate 11 performs tamping and compaction work on the upper side of the concrete.
[0024] Both sides of the top plate 3 are provided with docking grooves 15, and the docking grooves 15 correspond to the connecting rods 12. The docking grooves 15 reserve storage space for the connecting rods 12, thereby increasing the movement space of the connecting rods 12.
[0025] A bidirectional telescopic rod is fixed in the middle of the interior of the adjustment box 2, and the two ends of the bidirectional telescopic rod are respectively fixed to the inner ends of the corresponding adjustment arms 8. The bidirectional telescopic rod drives the two adjustment arms 8 to move relative to each other.
[0026] The connecting arm 1 is Y-shaped, and the two outer ends of the connecting arm 1 are respectively fixed on the two adjusting arms 8 on the same side. The lower end of the connecting arm 1 is fixed on the connecting rod 12, and the adjusting arm 8 and the connecting rod 12 are linked through the connecting arm 1.
[0027] Both ends of the upper surface of the side plate 6 are fixed with drive boxes 14, and the output shaft of the motor in the drive box 14 is connected to the rotating shaft of the pressure block 4. The motor in the drive box 14 drives the pressure block 4 to rotate, and the rotating shaft of the pressure block 4 is located on one side to achieve deflection.
[0028] Both ends of the lower end face of the side plate 6 are rotatably mounted with casters 5, and the casters 5 are equipped with wheel stops. The casters 5 are used to move the side plate 6, and the wheel stops are used to stop and brake.
[0029] The side plate 6 is located on the lower side of the top plate 3, and the pressure block 4 is adapted to the storage groove 13, through which the pressure block 4 is stored.
[0030] In operation, this utility model is powered by an external power source. The operator starts the device through an external control device and manually pushes it. The rotation of the universal wheels 5 achieves the displacement of the device, pushing it to the outside of the concrete column mold, so that the mold is located between the two side plates 6, and the pressure plate 11 corresponds to the upper opening of the mold. The bidirectional telescopic rod inside the adjustment box 2 is activated, which drives the two adjustment arms 8 to move relative to each other. The adjustment arms 8 drive the side plates 6 to move synchronously through the connecting arm 1 and the connecting rod 12. The two side plates 6 move closer to each other and fit against the outside of the mold. Then, the motor inside the drive box 14 is activated to drive the pressure block 4 to rotate. After the pressure block 4 deflects from the storage groove 13, the outer end of the pressure block 4 presses against the side of the mold. The four pressure blocks 4 complete symmetrical compression and limiting to prevent the mold from falling apart during vibration. The vibration motor 7 is activated to drive the side plates 6 to vibrate. The side plates 6 drive the mold to vibrate. At this time, the concrete inside the mold is vibrated and the internal air bubbles are discharged. Then, the hydraulic rod 10 is activated to drive the pressure plate 11 to rise and fall. The pressure plate 11 tamps the upper end of the concrete, making the concrete compacted.
[0031] 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 telescopic CNC vibratory compaction device, comprising a top plate (3), side plates (6), and an assembly base (9), characterized in that: A mounting base (9) is fixed at the middle of the upper end face of the top plate (3), and a hydraulic rod (10) is embedded in the upper end of the mounting base (9). An adjustment box (2) is fixed at both the front and rear ends of the mounting base (9), and an adjustment arm (8) is slidably installed in the openings at both ends of the adjustment box (2). There are two side plates (6), and the two side plates (6) are located at the lower ends of the two sides of the top plate (3). A connecting rod (12) is fixed at the middle of the upper end of the side plate (6), and the upper end of the connecting rod (12) is connected to the outer end of the corresponding adjustment arm (8) through the connecting arm (1). A storage groove (13) is opened on both sides of the side plate (6), and a pressure block (4) is rotatably installed in the storage groove (13) through a rotating shaft. A vibration motor (7) is embedded in the outer side of the side plate (6).
2. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: A pressure plate (11) is provided at the middle of the lower end face of the top plate (3), and the lower end of the hydraulic rod (10) is fixed on the pressure plate (11).
3. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: Both sides of the top plate (3) are provided with docking grooves (15), and the docking grooves (15) correspond to the connecting rods (12).
4. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: A bidirectional telescopic rod is fixed in the middle of the interior of the adjustment box (2), and the two ends of the bidirectional telescopic rod are respectively fixed to the inner ends of the corresponding adjustment arms (8).
5. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: The connecting arm (1) is Y-shaped, and the two outer ends of the connecting arm (1) are fixed on the two adjusting arms (8) on the same side respectively. The lower end of the connecting arm (1) is fixed on the connecting rod (12).
6. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: Both ends of the upper surface of the side plate (6) are fixed with drive boxes (14), and the output shaft of the motor inside the drive box (14) is connected to the rotating shaft of the pressure block (4).
7. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: Both ends of the lower end face of the side plate (6) are rotatably mounted with casters (5), and the casters (5) are equipped with wheel stops.
8. The extension-type CNC vibratory compaction device according to claim 1, characterized in that: The side plate (6) is located on the lower side of the top plate (3), and the pressure block (4) is adapted to the storage groove (13).