Concrete barrel body auxiliary clamping device for water conservancy construction
By designing a concrete cylinder body auxiliary clamping device for water conservancy construction including clamping device, plate groove, carrier plate, walking wheel and pusher, the problem of the concrete cylinder body easily shake during the transfer process is solved, stable clamping and efficient transfer are achieved, and operation convenience is significantly improved.
Patent Information
- Application Number
- CN202421707912.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-16
- Publication Date
- 2025-06-03
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing concrete cylinder body auxiliary clamping device for water conservancy construction is prone to shake during the transfer of the concrete cylinder body, and it is impossible to transfer multiple concrete cylinder bodies at one time, resulting in inconvenient operation.
A concrete cylinder body auxiliary clamping device for water conservancy construction, including clamping device, plate groove, carrier plate, walking wheel and pusher, is designed. By cooperating with the movable components of the clamping device and the stress-receiving body, the concrete cylinder body is stable clamped and transferred.
It effectively reduces the shaking of the concrete cylinder during the transfer process, improves the transfer efficiency, and can transfer multiple concrete cylinders at one time, significantly improving the convenience of operation.
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Figure CN222933922U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water conservancy construction, and particularly relates to an auxiliary clamping device for a concrete cylinder body in water conservancy construction. Background Technique
[0002] A water conservancy project refers to various projects such as flood control, waterlogging drainage, irrigation, hydropower generation, water diversion (supply), beach treatment, soil and water conservation, and water resource protection, including new construction, expansion, reconstruction, reinforcement, repair, demolition and other projects. Concrete materials are usually required, and concrete is also one of the most important engineering construction materials in the contemporary era.
[0003] When optimizing the existing auxiliary clamping device for a concrete cylinder body in water conservancy construction, most of them are reflected in improving the clamping effect on the concrete cylinder body and reducing its sway. For example, the Chinese utility model patent with the application number CN202320125613.2 discloses "An auxiliary clamping device for a concrete cylinder in municipal construction". In this device, it includes a U-shaped support frame, and a sliding rod is movably installed inside the U-shaped support frame. A connecting plate is welded between the two sliding rods. By installing components such as a U-shaped support frame, a clamping plate and a universal wheel, when transporting the concrete cylinder, the clamping plates at the bottoms of the two movable sleeves are driven by a moving component to move relatively, clamping both sides of the auxiliary clamping device for the concrete cylinder. The anti-slip pads on the inner sides of the clamping plates further improve the stability of the auxiliary clamping device for the concrete cylinder. There is no need for manual support of the auxiliary clamping device for the concrete cylinder. At the same time, the universal wheels at the bottom of the U-shaped support frame are used to move the entire device, which reduces the overall swaying amplitude of the concrete cylinder during transportation compared with hoisting and transportation, and reduces potential safety hazards.
[0004] Although the above-mentioned auxiliary clamping device for a concrete cylinder body in water conservancy construction has certain advantages in improving the clamping effect on the concrete cylinder body and reducing its sway, it still has certain drawbacks: when the concrete cylinder body is applied to different places, it needs to be continuously moved. The concrete cylinder body is placed on a carrier plate, and then the personnel push the carrier plate to move. The concrete cylinder body has no stabilizing effect, and it is easy to shake during the transfer journey. Moreover, multiple concrete cylinder bodies cannot be transferred at one time, resulting in great inconvenience for personnel during the transfer of the concrete cylinder body. Content of the Utility Model
[0005] (1) Technical Problems to be Solved
[0006] To solve the above technical problems, the utility model provides an auxiliary clamping device for a concrete cylinder body in water conservancy construction.
[0007] (2) Technical Solutions
[0008] Based on this, the present utility model provides the following technical solution: a concrete cylinder body auxiliary clamping device for water conservancy construction, including a clamping device, a plate groove, a carrier plate, traveling wheels, and a push handle. The plate groove and the carrier plate are of an integrated structure and are located at the upper end thereof. The clamping device is embedded in the plate groove. The traveling wheels are connected below the carrier plate. The lower end of the push handle is fixedly connected to the rear end of the carrier plate. The clamping device includes a placement plate, a connection seat, a movable assembly, a carrier seat, a ring seat, a bottom opening, and mounting screws. The connection seat is fixedly connected to the upper end of the placement plate. The movable assembly is connected to the outer periphery of the ring seat. The carrier seat is located inside the ring seat. The ring seat and the connection seat are of an integrated structure and are located at the upper end thereof. The bottom opening and the connection seat are of an integrated structure and are penetrated and provided at the bottom thereof. The mounting screws penetrate through the four peripheral corner positions of the placement plate and are bolt-fitted.
[0009] Preferably, the movable assembly includes a clamping block, a pry block, a connecting block, a stress body, a linkage arm, and a through shaft. The clamping block is hinged to the upper end of the pry block through the through shaft. The connecting block is hinged to the middle end of the pry block through the through shaft. One end of the linkage arm is connected to the lower end of the pry block with a clearance and is movably matched. The other end of the linkage arm is movably matched with the stress body through the through shaft. The stress body is movably matched with the pry block through the linkage arm.
[0010] Preferably, the clamping block includes a clamping block, an anti-slip block, and a shaft through hole. The shaft through hole is of an integrated structure with the clamping block and is penetrated and provided at the position of its rear side. The back of the anti-slip block is fixedly connected to the front end face of the clamping block.
[0011] Preferably, the stress body includes a compression block, a connection seat, a shaft rod, a bottom block, and a spring. The compression block is fixedly connected to the upper end of the connection seat. The shaft rod and the connection seat are of an integrated structure and are located on the outer periphery of the connection seat. The bottom block is connected to the lower side of the connection seat through the spring and is elastically matched.
[0012] Preferably, the placement plate is pressed into the inside of the plate groove. The placement plate is bolt-mounted on the carrier plate through the mounting screws.
[0013] Preferably, the front end of the connecting block is fixedly connected to the outer peripheral surface of the ring seat. The stress body penetrates into the bottom opening. The linkage arm penetrates through the connection seat and is movably matched. The clamping block moves above the ring seat. There are three linkage arms, and they are evenly distributed in a ring shape with respect to the stress body. The clamping block, the pry block, the connecting block, and the linkage arm form a group for cooperative movement, and there are three groups, which are evenly distributed in a ring shape.
[0014] Preferably, the clamping block is connected to the connecting block by penetrating through the through shaft. The anti-slip block is made of rubber material and has flexibility and anti-slip property.
[0015] Preferably, the shaft rod is connected to the linkage arm through a through-shaft and is movably matched. There are three shaft rods, which are evenly distributed in a ring shape.
[0016] (III) Beneficial Effects
[0017] Compared with the prior art, the present utility model provides an auxiliary clamping device for a concrete cylinder body in water conservancy construction, which has the following beneficial effects:
[0018] 1. For this auxiliary clamping device for a concrete cylinder body in water conservancy construction, place the concrete cylinder body above the carrier plate. The plate groove serves as an auxiliary clamping device. The bottom of the concrete cylinder body is placed on the carrier seat. After being subjected to gravity, it can have a downward displacement, so that the bottom end of the cylinder body is embedded and pressed into the inner side of the ring seat, which is beneficial to the placement of the cylinder body.
[0019] 2. For this auxiliary clamping device for a concrete cylinder body in water conservancy construction, when the bottom end of the cylinder body generates a downward pressing gravity on the stress body, the pressure block conveys the pressure to the connecting seat. The connecting seat can buffer the pressure of the pressure block in time under the elastic cooperation of the spring and assist it to gradually displace downward. During this process, the position of the shaft rod changes, which is convenient for the linkage arm to tilt and change. The outer side of the linkage arm generates a pushing pressure on the lower end of the pry block, so that the pry block swings with the connecting shaft of the connecting block as the pivot, driving the pressure block hinged to its upper end to displace inward, which is convenient for the clamping block to generate a clamping effect on the outer circumference of the cylinder body. The pressure block can be adapted to cylindrical cylinder bodies of different specifications, and the fitting of the connecting seat and the cylinder body increases the friction force, so that the clamping device will not cause the cylinder body to shake during the operation of clamping the cylinder body. Description of the Drawings
[0020] Figure 1 is a schematic structural diagram of the whole of the present utility model;
[0021] Figure 2 is a schematic structural diagram of the clamping device of the present utility model;
[0022] Figure 3 is a schematic structural diagram of the movable component of the present utility model;
[0023] Figure 4 is a schematic structural diagram of the clamping block of the present utility model;
[0024] Figure 5 is a schematic structural diagram of the stress body of the present utility model.
[0025] In the figure: clamping device - 1, plate groove - 2, carrier plate - 3, walking wheel - 4, push handle - 5, mounting plate - 11, connecting seat - 12, movable component - 13, carrier seat - 14, ring seat - 15, bottom opening - 16, mounting screw - 17, clamping block - q1, prying and swinging block - q2, connecting block - q3, stress body - q4, linkage arm - q5, through - shaft - q6, clamping block - q11, anti - slip block - q12, shaft through - hole - q13, pressure - receiving block - q41, connecting seat - q42, shaft rod - q43, bottom block - q44, spring - q45. Detailed implementation manner
[0026] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0027] Please refer to Figure 1-2 , a concrete cylinder body auxiliary clamping device for water conservancy construction, including a clamping device 1, a plate groove 2, a carrier plate 3, walking wheels 4 and a push handle 5. The plate groove 2 and the carrier plate 3 are of an integrated structure and are located at its upper end position. The clamping device 1 is embedded and installed in the plate groove 2. The walking wheels 4 are connected to the lower part of the carrier plate 3. The lower end of the push handle 5 is fixedly connected to the rear end of the carrier plate 3. The clamping device 1 includes a mounting plate 11, a connecting seat 12, a movable component 13, a carrier seat 14, a ring seat 15, a bottom opening 16 and mounting screws 17. The connecting seat 12 is fixedly connected to the upper end of the mounting plate 11. The movable component 13 is connected to the outer circumference of the ring seat 15. The carrier seat 14 is located inside the ring seat 15. The ring seat 15 and the connecting seat 12 are of an integrated structure and are located at its upper end position. The bottom opening 16 and the connecting seat 12 are of an integrated structure and are penetrated and arranged at its bottom. The mounting screws 17 penetrate through the four corner positions of the mounting plate 11 and are in bolt fit. The mounting plate 11 is pressed into the inside of the plate groove 2, and the mounting plate 11 is bolt - installed on the carrier plate 3 through the mounting screws 17.
[0028] Please refer to Figure 3-4, A concrete cylinder body auxiliary clamping device for water conservancy construction. The movable assembly 13 includes a clamping block q1, a pry-swing block q2, a connecting block q3, a force-receiving body q4, a linkage arm q5 and a through-shaft q6. The clamping block q1 is hinged to the upper end of the pry-swing block q2 through the through-shaft q6. The connecting block q3 is hinged and connected to the middle end of the pry-swing block q2 through the through-shaft q6. One end of the linkage arm q5 is connected to the lower end of the pry-swing block q2 with a clearance and is movably matched. The other end of the linkage arm q5 is movably matched with the force-receiving body q4 through the through-shaft q6. The force-receiving body q4 is movably matched with the pry-swing block q2 through the linkage arm q5. The clamping block q1 includes a clamping block q11, an anti-slip block q12 and a shaft through-hole q13. Q13 and the clamping block q11 are of an integrated structure and are arranged in a through manner at a position biased towards the rear end thereof. The back of the anti-slip block q12 is fixedly connected to the front end face of the clamping block q11. The front end of the connecting block q3 is fixedly connected to the outer peripheral surface of the ring seat 15. The force-receiving body q4 passes through the bottom opening 16. The linkage arm q5 passes through the connecting seat 12 and is movably matched. The clamping block q1 moves above the ring seat 15. There are three linkage arms q5, and they are evenly distributed in a ring shape with respect to the force-receiving body q4. The clamping block q1, the pry-swing block q2, the connecting block q3 and the linkage arm q5 are a group that makes a cooperative movement. There are three groups, and they are evenly distributed in a ring shape. The clamping block q11 is connected to the connecting block q3 by passing through the through-shaft q6. The anti-slip block q12 is made of rubber material and has flexibility and anti-slip properties.
[0029] Please refer to Figure 5 , A concrete cylinder body auxiliary clamping device for water conservancy construction. The force-receiving body q4 includes a compression block q41, a connection seat q42, a shaft rod q43, a bottom block q44 and a spring q45. The compression block q41 is fixedly connected to the upper end of the connection seat q42. The shaft rod q43 and the connection seat q42 are of an integrated structure and are located on the outer periphery of the connection seat q42. The bottom block q44 is connected to the lower part of the connection seat q42 through the spring q45 and is elastically matched. The shaft rod q43 is connected to the linkage arm q5 through the through-shaft q6 and is movably matched. There are three shaft rods q43, and they are evenly distributed in a ring shape.
[0030] In summary, place the concrete cylinder body above the carrier plate 3. The plate groove 2 serves as an auxiliary clamping device. The bottom of the concrete cylinder body is placed on the carrier seat 14. After being loaded, it can have a downward displacement, causing the bottom end of the cylinder body to be pressed into the inner side of the ring seat 15, which is beneficial for the placement of the cylinder body. At the same time, the bottom end of the cylinder body also generates a downward pressure on the force-receiving body q4. The pressure-receiving block q41 conveys the pressure to the connecting seat q42. The connecting seat q42 can buffer the pressure on the pressure-receiving block q41 in a timely manner under the elastic cooperation of the spring q45 and assist it to gradually displace downward. During this process, the position of the shaft rod q43 changes, facilitating the tilting and changing of the linkage arm q5. The outer side of the linkage arm q5 exerts a pushing pressure on the lower end of the pry-swing block q2, causing the pry-swing block q2 to swing with the connecting shaft with the connecting block q3 as the pivot axis, driving the pressure-receiving block q41 hinged to its upper end to displace inward, facilitating the clamping block q1 to generate a clamping effect on the outer circumference of the cylinder body. The pressure-receiving block q41 can be adapted to cylindrical cylinder bodies of different specifications, and the fitting of the connecting seat q42 with the cylinder body increases the friction force, so that the clamping device will not cause the phenomenon of the cylinder body shaking during the operation of clamping the cylinder body.
[0031] The control mode of the present invention is controlled by manually starting and closing the switch. The wiring diagram of the power element and the power supply are common knowledge in the art. And the present invention is mainly used to protect mechanical devices, so the control mode and wiring layout of the present invention will not be explained in detail.
[0032] The control mode of the present invention is automatically controlled by a controller. The control circuit of the controller can be realized by simple programming by those skilled in the art. The power supply is also common knowledge in the art. And the present invention is mainly used to protect mechanical devices, so the control mode and circuit connection of the present invention will not be explained in detail.
[0033] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A concrete cylinder auxiliary clamping device for water conservancy construction, comprising a plate groove (2), a carrier plate (3), a walking wheel (4) and a push handle (5), wherein the plate groove (2) and the carrier plate (3) are an integrated structure and are located at the upper end thereof, the walking wheel (4) is connected to the lower side of the carrier plate (3), and the lower end of the push handle (5) is embedded and connected to the rear side end of the carrier plate (3); Features: The invention also comprises a clamping device (1), wherein the clamping device (1) is embedded and installed in the plate groove (2), and the clamping device (1) comprises a placement plate (11), a connecting seat (12), a movable component (13), a carrier seat (14), a ring seat (15), a bottom opening (16) and a mounting screw (17). The connecting seat (12) is embedded and connected to the upper end of the placement plate (11), the movable component (13) is connected to the outer periphery of the ring seat (15), the carrier seat (14) is located on the inner side of the ring seat (15), the ring seat (15) and the connecting seat (12) are an integrated structure and are located at the upper end thereof, the bottom opening (16) and the connecting seat (12) are an integrated structure and are through-set at the bottom thereof, and the mounting screw (17) passes through four angular positions of the placement plate (11) and is bolted.
2. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 1 is characterized in that: The movable component (13) comprises a clamping block (q1), a prying block (q2), a connecting block (q3), a force-bearing body (q4), a linkage arm (q5) and a through shaft (q6); the clamping block (q1) is hinged to the upper end of the prying block (q2) through the through shaft (q6); the connecting block (q3) is hinged to the middle end of the prying block (q2) through the through shaft (q6); one end of the linkage arm (q5) is gap-connected and movably matched with the lower end of the prying block (q2); the other end of the linkage arm (q5) is movably matched with the force-bearing body (q4) through the through shaft (q6); and the force-bearing body (q4) is movably matched with the prying block (q2) through the linkage arm (q5).
3. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 2 is characterized in that: The clamping block (q1) comprises a clamping block (q11), an anti-sliding block (q12) and an axial through-hole (q13); the axial through-hole (q13) and the clamping block (q11) are an integrated structure and are arranged through-through at a rear end position thereof; the back of the anti-sliding block (q12) is fixedly connected to the front end surface of the clamping block (q11).
4. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 2 is characterized in that: The force-bearing body (q4) comprises a pressure block (q41), a connecting seat (q42) and an axle rod (q43), a bottom block (q44) and a spring (q45); the pressure block (q41) is embedded and connected to the upper end of the connecting seat (q42); the axle rod (q43) and the connecting seat (q42) are an integrated structure and are located on the outer periphery of the connecting seat (q42); the bottom block (q44) is connected to the bottom of the connecting seat (q42) through a spring (q45) and is elastically matched.
5. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 1 is characterized in that: The placement plate (11) is pressed into the interior of the plate groove (2), and the placement plate (11) is bolted onto the carrier plate (3) by means of mounting screws (17).
6. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 2, characterized in that: The front end of the connecting block (q3) is fixedly connected to the outer peripheral surface of the ring seat (15), the force-bearing body (q4) passes through the bottom opening (16), the linkage arm (q5) passes through the connecting seat (12) and is movably engaged, and the clamping block (q1) moves above the ring seat (15).
7. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 3 is characterized in that: The clamping block (q11) is connected to the connecting block (q3) by penetrating the through shaft (q6).
8. The auxiliary clamping device for concrete cylinder for water conservancy construction according to claim 4, characterized in that: The shaft rod (q43) is connected to the linkage arm (q5) through the through shaft (q6) and is movably matched.
Citation Information
Patent Citations
Auxiliary clamping device for municipal construction concrete cylinder
CN219707040U