Concrete pouring device for pier column construction
By connecting the first lifting plate and the transverse platform in the concrete pouring device, installing the clamping mechanism, and adjusting the position of the conveying pump pipe using the translation and transverse mechanisms, the problem that the existing technology can only pour at the same position is solved, realizing multi-position pouring of the conveying pump pipe and improving the pouring effect.
Patent Information
- Application Number
- CN202511137345.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-14
- Publication Date
- 2025-11-14
AI Technical Summary
The position of the adjustment section in the existing technology cannot be adjusted, which means that the concrete pouring device can only pour at the same position, thus reducing the pouring effect.
The first lifting plate is connected to the bottom of the horizontal moving platform, and the second lifting plate is connected to the bottom of the first lifting plate. A clamping mechanism is installed to enable the material pump pipe to move synchronously with the first lifting plate. The position of the material pump pipe is adjusted by the cooperation of the translation mechanism and the horizontal moving mechanism to improve the pouring effect.
This enables the material conveying pump pipe to be used for pouring at different locations, improving the flexibility and effectiveness of concrete pouring.
Smart Images

Figure CN120945792A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of pier construction technology, and specifically relates to a concrete pouring device for pier construction. Background Technology
[0002] In related technologies, during the construction of piers, concrete needs to be poured inside the steel membrane of the pier to form the pier.
[0003] Existing technology (authorization announcement number: CN217556706U) discloses a simple high-pier column pouring device, including a hopper, a guide pipe located below the hopper, and an adjusting section located below the guide pipe. Four first hooks are fixedly connected to the outer wall of the hopper, and four corresponding first chain links are fixedly connected to the outer wall of the guide pipe, with the first chain links hanging on their respective first hooks. Four second hooks are fixedly connected to the outer wall of the guide pipe, and four second chain links are fixedly connected to the outer wall of the adjusting section, with the second chain links hanging on their respective second hooks. In this invention, a simple vertical concrete conveying tool is made using a hopper, guide pipe, and adjusting section as the main materials. This device can pour concrete and effectively prevents segregation during pouring, thereby ensuring project quality and offering convenient operation.
[0004] In this prior art, since the position of the adjusting section cannot be adjusted, the discharge position cannot be adjusted, which results in the only position that can be poured, thereby reducing the pouring effect of the product. Summary of the Invention
[0005] To address the problem in existing technologies where the position of the adjusting section cannot be adjusted, thus preventing adjustments to the discharge position and limiting pouring to the same location, thereby reducing the overall pouring effect, this invention provides a concrete pouring device for pier construction. This device connects a first lifting plate to the bottom of a horizontal moving platform, and a second lifting plate to the bottom of the first lifting plate. A clamping mechanism is installed on the first lifting plate, enabling synchronous movement of the first lifting plate, second lifting plate, and horizontal moving platform. This allows the clamping mechanism to clamp the material pump pipe, ensuring synchronous movement between the material pump pipe and the first lifting plate. This allows the material pump pipe to pour at different locations, improving the overall pouring effect. The specific technical solution is as follows:
[0006] A concrete pouring device for pier construction is disclosed. This device pours concrete onto a steel formwork for pier construction. The device includes: an installation plate, a clearance groove, a translation mechanism, a translation platform, a lateral movement mechanism, a lateral movement platform, a first clearance hole, a first lifting plate, a second clearance hole, a clamping mechanism, a second lifting plate, a telescopic guide pipe, and a lifting mechanism. The installation plate is fastened to the top of the steel formwork. The clearance groove is located at the center of the installation plate. Two translation mechanisms are installed on the installation plate, positioned on either side of the clearance groove. Two translation platforms are connected to the two translation mechanisms respectively. The lateral movement mechanism is simultaneously installed on both translation platforms. The lateral movement platform is connected to the lateral movement mechanism, and the lateral movement platform... Located above the clearance groove; the first clearance hole is located at the center of the transverse platform; the first lifting plate is located below the transverse platform and is connected to the bottom of the transverse platform; the second clearance hole is located at the center of the first lifting plate and is located below the first clearance hole; a clamping mechanism is installed on the first lifting plate and is located on both sides of the second clearance hole; the second lifting plate is located below the first lifting plate and is connected to the bottom of the first lifting plate; a telescopic guide tube is installed on the second lifting plate and is located below the second clearance hole; two lifting mechanisms are installed on both sides of the first lifting plate and are simultaneously connected to the bottom of the telescopic guide tube.
[0007] In addition, the concrete pouring device for pier construction in the above-mentioned technical solution provided by the present invention may also have the following additional technical features:
[0008] In the above technical solution, the translation mechanism includes: a guide rail, a slide block, a rack, a first motor, and a gear; the guide rail is mounted on a mounting plate; a slide block is provided in the slide block, the slide block is mounted on the bottom of the translation stage, and the guide rail passes through the slide block; the rack is mounted on the mounting plate, the first motor is provided with a first output shaft, and the first motor is mounted on the translation stage; the gear is connected to the first output shaft of the first motor, and the gear meshes with the rack.
[0009] In the above technical solution, the transverse movement mechanism includes: a support plate, a lead screw, a first connecting seat, a guide rod, a second connecting seat, and a second motor; two support plates are respectively mounted on two translation platforms, and the two support plates are arranged opposite to each other; the outer wall of the lead screw is provided with an external thread, and the two ends of the lead screw are rotatably connected to the two support plates respectively; the first connecting seat is provided with a threaded hole, and the threaded hole is provided with an internal thread, the threaded holes of the two first connecting seats are fitted onto the outside of the lead screw, and the two first connecting seats are simultaneously connected to the top of the transverse platform; the two ends of the guide rod are respectively connected to the two support plates; the two second connecting seats are simultaneously connected to the top of the transverse platform, and the guide rod passes through the two second connecting seats in sequence; the second motor is provided with a second output shaft, the second motor is mounted on a translation platform, and the second output shaft of the second motor is connected to the lead screw; wherein, the external thread and the internal thread are adapted to each other.
[0010] In the above technical solution, the clamping mechanism includes: a fixed frame, a clamping plate, a spring, a clamping seat, and a clamping wheel; the fixed frame is L-shaped, two fixed frames are mounted on the first lifting plate, and the two fixed frames are located on both sides of the second clearance hole; two clamping plates are located between the two fixed frames; one end of at least two springs is connected to the fixed frame, and the other end of at least two springs is connected to the clamping plate; the clamping seat is provided with a clamping groove, two clamping seats are respectively connected to two clamping plates, and the two clamping seats are arranged opposite to each other; the clamping wheel is embedded in the clamping groove of the clamping seat, and the clamping wheel is rotatably connected to the clamping seat.
[0011] In the above technical solution, the clamping mechanism further includes: guide rods, limiting plates, pull rods, and handles; one end of at least two guide rods is connected to the fixed frame, and the other end of at least two guide rods passes through at least two springs and clamping plates in sequence; at least two limiting plates are connected to the other end of at least two guide rods, and at least two limiting plates are in contact with the clamping plates; one end of the pull rod is connected to the clamping plate, and the other end of the pull rod passes through the fixed frame; the handle is connected to the other end of the pull rod.
[0012] In the above technical solution, the telescopic guide tube includes: a first guide tube, a second guide tube, a third guide tube, a limiting part, a first locking part, a second locking part, and a lifting plate; the first guide tube is a hollow cavity with openings at both ends, the first guide tube passes through the second lifting plate, and the first guide tube is mounted on the second lifting plate; the second guide tube is a hollow cavity with openings at both ends, one end of the second guide tube is located inside the first guide tube, and the other end of the second guide tube is located outside the first guide tube; the third guide tube is a hollow cavity with openings at both ends, the third... One end of the guide tube is located inside the second guide tube, and the other end of the third guide tube is located outside the second guide tube; the limiting part is provided on the inner wall of the bottom opening of the second guide tube, and the limiting part is arranged around the outside of the first guide tube; the first snap-fit part is fitted on the outside of the top opening of the third guide tube, and the first snap-fit part is opposite to the limiting part; the second snap-fit part is fitted on the outside of the third guide tube, and the second snap-fit part is located below the limiting part; the lifting plate is connected to two lifting mechanisms at the same time, the third guide tube passes through the lifting plate, and the third guide tube is installed on the lifting plate.
[0013] In the above technical solution, the telescopic guide pipe further includes: a first sealing ring, a second sealing ring, a vibrating rod, and a feed pipe; the first sealing ring is an elastic body, which is fitted on the outside of the second guide pipe and is in contact with the inner wall of the first guide pipe; the second sealing ring is an elastic body, which is fitted on the outside of the third guide pipe and is in contact with the inner wall of the second guide pipe; at least two vibrating rods are installed on the lifting plate; the feed pipe is a hollow cavity with openings at both ends, the cross-section of the feed pipe is trapezoidal, the feed pipe is connected to the first guide pipe, and the feed pipe is installed on the second lifting plate.
[0014] In the above technical solution, the lifting mechanism includes: a winding drum, a wire rope, a third motor, a first pulley, a second pulley, and a belt; the winding drum is installed at the bottom of the second lifting plate; one end of the wire rope is connected to the winding drum, the wire rope is wound around the outside of the winding drum, and the other end of the wire rope is connected to the lifting plate; the third motor is provided with a third output shaft, and the third motor is installed at the top of the second lifting plate; the first pulley is connected to the third output shaft of the third motor; the second pulley is connected to the winding drum; the belt is simultaneously fitted on the outside of both the first pulley and the second pulley.
[0015] In the above technical solution, the concrete pouring device for pier construction also includes: positioning frame, electric push rod and positioning plate; the positioning frame is L-shaped, and the four positioning frames are respectively connected to the four side walls of the mounting plate; the four electric push rods are respectively installed on the four positioning frames; the four positioning plates are respectively connected to the four electric push rods, and the four positioning plates are simultaneously attached to the outer wall of the pier steel membrane.
[0016] The concrete pouring device for pier construction of the present invention has the following advantages compared with the prior art:
[0017] 1. By connecting two translation mechanisms to two translation platforms respectively, and simultaneously installing a transverse mechanism on both translation platforms, and connecting the transverse platforms to the translation mechanisms, the translation mechanisms and translation mechanisms can work together to adjust the transverse platforms from different directions, thereby improving the flexibility of the transverse platform's movement. By connecting the first lifting plate to the bottom of the transverse platform, connecting the second lifting plate to the bottom of the first lifting plate, and installing a clamping mechanism on the first lifting plate, the first lifting plate, the second lifting plate, and the transverse platform can move synchronously. This allows the clamping mechanism to clamp the material pump pipe, enabling the material pump pipe to move synchronously with the first lifting plate, thus allowing the material pump pipe to be poured at different locations, thereby improving the product's pouring effect.
[0018] 2. By mounting the rack on the mounting plate, mounting the first motor on the translation stage, connecting the gear to the first output shaft of the first motor, and meshing the gear with the rack, the first motor can drive the gear to rotate, thereby enabling the gear to mesh with the rack and move, thus providing power for the moving stage to move along the guide rail, in order to adjust the position of the translation bar and the transverse stage.
[0019] 3. By fitting the threaded holes of the two first connecting seats onto the outside of the lead screw, and simultaneously connecting the two first connecting seats to the top of the transverse stage, the two first connecting seats are simultaneously threadedly connected to the lead screw, thereby rotating the lead screw and causing the lead screw to drive the transverse stage to move through the two first connecting seats, thus adjusting the position of the transverse stage.
[0020] 4. When preparing to clamp the feed pump pipe, pass the feed pump pipe between the two clamping wheels, so that the feed pump pipe will press the clamping seat and clamping plate towards the fixed frame. At this time, the spring is in a compressed state, thereby using the elastic force of the spring to clamp the feed pump pipe, so as to improve the stability of the feed pump pipe.
[0021] 5. By connecting multiple limiting plates to the other ends of multiple guide rods and ensuring the limiting plates are in contact with the clamping plate, the limiting plates limit the clamping plate, preventing it from moving off the guide rods and improving the user experience. By connecting one end of a pull rod to the clamping plate and the other end of the pull rod through the fixing frame, and connecting a handle to the other end of the pull rod, the operator can pull the clamping plate using the handle and pull rod, increasing the distance between the two clamping wheels to allow the material pump pipe to pass between them.
[0022] 6. By setting the limiting part on the inner wall of the bottom opening of the second guide tube, and fitting the first snap-fit part on the outer side of the top opening of the third guide tube, with the first snap-fit part facing the limiting part, when the third guide tube moves downward and the top opening of the third guide tube moves to the bottom opening of the second guide tube, the first snap-fit part and the limiting part are in contact. This allows the third guide tube to drive the second guide tube to move downward within the first guide tube through the first snap-fit part and the limiting part as it continues to move downward, thereby increasing the overall length of the first, second, and third guide tubes. By fitting the second snap-fit part on the outer side of the third guide tube and positioning it below the limiting part, when the third guide tube moves upward, the second snap-fit part can be in contact with the limiting part, thus allowing the third guide tube to drive the second guide tube to move upward within the first guide tube through the limiting part and the second snap-fit part.
[0023] 7. By installing multiple vibrating rods on the lifting plate, the lifting plate can drive the multiple vibrating rods to move up and down, thereby enabling the multiple vibrating rods to vibrate the concrete at different heights, thus improving the product's pouring effect; by installing a trapezoidal feed pipe on the second lifting plate and connecting the feed pipe to the first guide pipe, the feeding area of the first guide pipe is increased, thereby ensuring that the concrete enters the first guide pipe, thus improving the product's user experience.
[0024] 8. By installing the wire rope drum at the bottom of the second lifting plate, connecting one end of the wire rope to the drum, winding the wire rope around the outside of the drum, and connecting the other end of the wire rope to the lifting plate, the second lifting plate supports the wire rope drum, thereby rotating the drum to reel in or unelute the wire rope, which in turn drives the lifting plate to move up and down to adjust the height of the lifting plate.
[0025] 9. By connecting four positioning plates to four electric push rods respectively, and making the four positioning plates simultaneously fit against the outer wall of the pier steel membrane, the electric push rods can drive the positioning plates to move, thereby achieving simultaneous fitment of the four positioning plates against the outer wall of the pier steel membrane. This not only positions the mounting plate so that its centerline coincides with the centerline of the pier steel membrane, but also prevents the mounting plate from shifting, thus improving the stability of the product. Attached Figure Description
[0026] Figure 1 This is a top view of a concrete pouring device for pier construction according to the present invention;
[0027] Figure 2 This is a cross-sectional view of a concrete pouring device for pier construction according to the present invention;
[0028] Figure 3 for Figure 2 A magnified view of part A;
[0029] Figure 4 for Figure 2 A magnified view of section B;
[0030] Figure 5 for Figure 2 A magnified view of a portion at point C;
[0031] Figure 6 for Figure 2 A magnified view of a portion at point D;
[0032] in, Figures 1 to 6 The correspondence between the reference numerals and component names in the attached drawings is as follows:
[0033] 10. Pier steel formwork; 11. Mounting plate; 12. Clearance groove; 13. Translation mechanism; 131. Guide rail; 132. Slide; 133. Rack; 134. First motor; 135. Gear; 14. Translation platform; 15. Lateral movement mechanism; 151. Support plate; 152. Lead screw; 153. First connecting seat; 154. Guide bar; 155. Second connecting seat; 156. Second motor; 16. Lateral movement platform; 17. First clearance hole; 18. First lifting plate; 19. Second clearance hole; 20. Clamping mechanism; 201. Fixing frame; 202. Clamping plate; 203. Spring; 204. Clamping seat; 205. Clamping wheel; 206. Guide rod; 20 7 Limiting plate, 208 Tie rod, 209 Handle, 21 Second lifting plate, 22 Telescopic guide pipe, 221 First guide pipe, 222 Second guide pipe, 223 Third guide pipe, 224 Limiting part, 225 First snap-fit part, 226 Second snap-fit part, 227 Lifting plate, 228 First sealing ring, 229 Second sealing ring, 230 Vibrating rod, 231 Feed pipe, 24 Lifting mechanism, 241 Winding drum, 242 Wire rope, 243 Third motor, 244 First pulley, 245 Second pulley, 246 Belt, 25 Positioning frame, 26 Electric push rod, 27 Positioning plate. Detailed Implementation
[0034] The following are specific implementation cases and appendices. Figures 1 to 6 The present invention will be further described, but the present invention is not limited to these embodiments.
[0035] A concrete pouring device for pier construction, such as Figures 1 to 6As shown, the concrete pouring device for pier construction pours concrete for the pier steel membrane 10. The concrete pouring device for pier construction includes: an installation plate 11, a clearance groove 12, a translation mechanism 13, a translation platform 14, a transverse mechanism 15, a transverse platform 16, a first clearance hole 17, a first lifting plate 18, a second clearance hole 19, a clamping mechanism 20, a second lifting plate 21, a telescopic guide pipe 22, and a lifting mechanism 24. The installation plate 11 is fastened to the top of the pier steel membrane 10. The clearance groove 12 is located at the center of the installation plate 11. Two translation mechanisms 13 are installed on the installation plate 11 and are located on both sides of the clearance groove 12. Two translation platforms 14 are respectively connected to the two translation mechanisms 13. The transverse mechanism 15 is installed on both translation platforms 14. The transverse platform 16 is connected to the transverse mechanism 15 and is located at the clearance groove 17. Above the groove 12; the first clearance hole 17 is located at the center of the transverse platform 16; the first lifting plate 18 is located below the transverse platform 16 and is connected to the bottom of the transverse platform 16; the second clearance hole 19 is located at the center of the first lifting plate 18 and is located below the first clearance hole 17; the clamping mechanism 20 is installed on the first lifting plate 18 and is located on both sides of the second clearance hole 19; the second lifting plate 21 is located below the first lifting plate 18 and is connected to the bottom of the first lifting plate 18; the telescopic guide tube 22 is installed on the second lifting plate 21 and is located below the second clearance hole 19; two lifting mechanisms 24 are installed on both sides of the first lifting plate 18 and are simultaneously connected to the bottom of the telescopic guide tube 22.
[0036] By fastening the mounting plate 11 to the top of the pier steel membrane 10, the pier steel membrane 10 supports the mounting plate 11. Two translation mechanisms 13 are installed on the mounting plate 11, and two translation platforms 14 are connected to the two translation mechanisms 13 respectively, so that the mounting plate 11 supports the two translation mechanisms 13, thereby enabling the two translation mechanisms 13 to simultaneously drive the two translation platforms 14 to move. By simultaneously installing the transverse mechanism 15 on the two translation platforms 14 and connecting the transverse platform 16 to the transverse mechanism 15, the two translation platforms 14 cooperate to drive the transverse mechanism 15 to move, thereby enabling the transverse mechanism 15 to drive the transverse platform 16 to move, and thus enabling the position of the transverse platform 16 to be adjusted from multiple directions. By connecting the first lifting plate 18 to the bottom of the transverse platform 16 and the second lifting plate 21 to the bottom of the first lifting plate 18, the transverse platform 16 can drive the first lifting plate 18 and the second lifting plate 21 to move synchronously. By setting the first clearance hole 17 at the center of the transverse platform 16 and the second clearance hole 19 at the center of the first lifting plate 18, and placing the second clearance hole 19 below the first clearance hole 17, the conveying pump pipe can pass through the first clearance hole 17 and the second clearance hole 19 in sequence. By installing the clamping mechanism 20 on the first lifting plate 18 and placing the clamping mechanism 20 on both sides of the second clearance hole 19, the first lifting plate 18 supports the clamping mechanism 20, thereby enabling the clamping mechanism 20 to clamp the conveying pump pipe, and thus enabling the first lifting plate 18 to drive the conveying pump pipe to move, thereby adjusting the conveying position of the conveying pump pipe. By installing the telescopic guide pipe 22 on the second lifting plate 21 and positioning it below the second clearance hole 19, the second lifting plate 21 can support the telescopic guide pipe 22, allowing the concrete output from the material pump pipe to flow into the telescopic guide pipe 22 and be guided to the predetermined pouring position via the telescopic guide pipe 22. By installing two lifting mechanisms 24 on both sides of the first lifting plate 18 and connecting both lifting mechanisms 24 to the bottom of the telescopic guide pipe 22, the two lifting mechanisms 24 can work together to move the telescopic guide pipe 22, thereby adjusting the overall length of the telescopic guide pipe 22 and enabling the pouring of the interior of the pier steel membrane 10 from different heights.
[0037] When using the product, first, attach the mounting plate 11 to the top of the pier steel membrane 10; then, pass the material conveying pump pipe through the first clearance hole 17 and the second clearance hole 19 in sequence; simultaneously, clamp the material conveying pump pipe with the clamping mechanism 20; then, simultaneously activate the two lifting mechanisms 24, so that the two lifting mechanisms 24 cooperate to stretch the telescopic guide pipe 22, thereby increasing the overall length of the telescopic guide pipe 22; then, start the pump truck, so that the pump truck inputs concrete into the material conveying pump pipe, so that the concrete in the material conveying pump pipe flows into the predetermined pouring position through the telescopic guide pipe 22; then, start the leveling... The translation mechanism 13 and the transverse mechanism 15 work together to move the transverse platform 16, the first lifting plate 18 and the second lifting plate 21, thereby adjusting the position of the material pump pipe and the telescopic guide pipe 22 from different directions, and then pouring at different positions; after the pouring of the lowest point of the pier steel membrane 10 is completed, the two lifting mechanisms 24 are activated at the same time, so that the bottom of the telescopic guide pipe 22 is moved upward by the two lifting mechanisms 24, thereby reducing the overall length of the telescopic guide pipe 22, and then pouring the interior of the pier steel membrane 10 from different heights.
[0038] By adopting the above structure, by connecting the two translation mechanisms 13 to the two translation platforms 14 respectively, installing the transverse mechanism 15 on both translation platforms 14 simultaneously, and connecting the transverse platform 16 to the transverse mechanism 15, the transverse mechanism 15 and the translation mechanism 13 can cooperate to adjust the transverse platform 16 from different directions, thereby improving the flexibility of the transverse platform 16's movement. By connecting the first lifting plate 18 to the bottom of the transverse platform 16, connecting the second lifting plate 21 to the bottom of the first lifting plate 18, and installing the clamping mechanism 20 on the first lifting plate 18, the first lifting plate 18, the second lifting plate, and the transverse platform 16 can move synchronously, thereby enabling the clamping mechanism 20 to clamp the material pump pipe, so that the material pump pipe moves synchronously with the first lifting plate 18, and thus enabling the material pump pipe to pour at different positions, thereby improving the product pouring effect.
[0039] In embodiments of the present invention, such as Figures 1 to 6 As shown, the translation mechanism 13 includes: a guide rail 131, a slide block 132, a rack 133, a first motor 134, and a gear 135; the guide rail 131 is mounted on the mounting plate 11; the slide block 132 is provided with a sliding groove, the slide block 132 is mounted on the bottom of the translation stage 14, and the guide rail 131 passes through the sliding groove of the slide block 132; the rack 133 is mounted on the mounting plate 11; the first motor 134 is provided with a first output shaft, and the first motor 134 is mounted on the translation stage 14; the gear 135 is connected to the first output shaft of the first motor 134, and the gear 135 meshes with the rack 133.
[0040] By mounting the guide rail 131 on the mounting plate 11 and mounting the slide block 132 on the bottom of the translation stage 14, and by having the guide rail 131 pass through the slide block 132, the translation stage 14 can move along the guide rail 131 via the slide block 132, thereby preventing the translation stage from deviating during movement. By mounting the rack 133 on the mounting plate 11 and mounting the first motor 134 on the translation stage 14, and connecting the gear 135 to the first output shaft of the first motor 134, and making the gear 135 mesh with the rack 133, the first motor 134 can drive the gear 135 to rotate, thereby enabling the gear 135 to move by meshing with the rack 133, thus providing power for the translation stage to move along the guide rail 131 to adjust the position of the translation bar and the transverse stage 16.
[0041] Specifically, the two first motors 134 are electrically connected to the synchronizer at the same time, thereby enabling the two first motors 134 to run synchronously, and thus enabling the two translation stages 14 to move synchronously.
[0042] In embodiments of the present invention, such as Figures 1 to 6 As shown, the transverse mechanism 15 includes: a support plate 151, a lead screw 152, a first connecting seat 153, a guide rod 154, a second connecting seat 155, and a second motor 156; the two support plates 151 are respectively mounted on two translation stages 14, and the two support plates 151 are arranged opposite to each other; the outer wall of the lead screw 152 is provided with external threads, and the two ends of the lead screw 152 are respectively rotatably connected to the two support plates 151; the first connecting seat 153 is provided with threaded holes, and the threaded holes of the two first connecting seats 153 are fitted into the support plates 156. The outer side of the lead screw 152 and the two first connecting seats 153 are simultaneously connected to the top of the transverse stage 16; the two ends of the guide rod 154 are respectively connected to the two support plates 151; the two second connecting seats 155 are simultaneously connected to the top of the transverse stage 16, and the guide rod 154 passes through the two second connecting seats 155 in sequence; the second motor 156 is provided with a second output shaft, the second motor 156 is mounted on a translation stage 14, and the second output shaft of the second motor 156 is connected to the lead screw 152; wherein, the external thread and the internal thread are adapted to each other.
[0043] By mounting two support plates 151 on two translation stages 14 respectively, and rotatably connecting both ends of the lead screw 152 to the two support plates 151 respectively, the two support plates 151 cooperate to support the lead screw 152, thereby enabling the lead screw 152 to rotate between the two support plates 151. By fitting the threaded holes of the two first connecting seats 153 onto the outside of the lead screw 152, and simultaneously connecting the two first connecting seats 153 to the top of the transverse stage 16, the two first connecting seats 153 are simultaneously threadedly connected to the lead screw 152, thereby enabling the lead screw 152 to rotate, causing the lead screw 152 to drive the transverse stage 16 to move through the two first connecting seats 153, and thus adjusting the position of the transverse stage 16. By connecting the two ends of the optical bar 154 to two support plates 151 respectively, and connecting the two second connecting seats 155 to the top of the transverse stage 16 simultaneously, and allowing the optical bar 154 to pass through the two second connecting seats 155 in sequence, the two support plates 151 cooperate to support the optical bar 154, thereby enabling the transverse stage 16 to move along the optical bar 154 via the two second connecting seats 155, thus improving the stability of the transverse stage 16's movement; by mounting the second motor 156 on a translation stage 14 and connecting the second output shaft of the second motor 156 to the lead screw 152, the second motor 156 can drive the lead screw 152 to rotate, thereby providing power for rotating the lead screw 152.
[0044] In embodiments of the present invention, such as Figures 1 to 6 As shown, the clamping mechanism 20 includes: a fixed frame 201, a clamping plate 202, a spring 203, a clamping seat 204, and a clamping wheel 205; the fixed frame 201 is L-shaped, and two fixed frames 201 are mounted on the first lifting plate 18, and the two fixed frames 201 are located on both sides of the second clearance hole 19; the two clamping plates 202 are located between the two fixed frames 201; one end of at least two springs 203 is connected to the fixed frame 201, and the other end of at least two springs 203 is connected to the clamping plate 202; the clamping seat 204 is provided with a clamping groove, and the two clamping seats 204 are respectively connected to the two clamping plates 202, and the two clamping seats 204 are arranged opposite to each other; the clamping wheel 205 is embedded in the clamping groove of the clamping seat 204, and the clamping wheel 205 is rotatably connected to the clamping seat 204.
[0045] By installing two fixing frames 201 on the first lifting plate 18, connecting one end of multiple springs 203 to the fixing frames 201, and connecting the other end of multiple springs 203 to the clamping plate 202, the fixing frames 201 support the clamping plate 202 through the multiple springs 203; by connecting the clamping seat 204 to the clamping plate 202, embedding the clamping wheel 205 into the clamping groove of the clamping seat 204, and rotatably connecting the clamping wheel 205 to the clamping seat 204, the clamping plate 202 supports the clamping wheel 205 through the clamping seat 204, thereby enabling the clamping wheel 205 to rotate in the clamping groove.
[0046] With the above structure, when preparing to clamp the conveying pump pipe, the conveying pump pipe passes between the two clamping wheels 205, thereby causing the conveying pump pipe to press the clamping seat 204 and the clamping plate 202 towards the fixed frame 201. At this time, the spring 203 is in a compressed state, thereby using the elastic force of the spring 203 to clamp the conveying pump pipe, so as to improve the stability of the conveying pump pipe.
[0047] In embodiments of the present invention, such as Figures 1 to 6 As shown, the clamping mechanism 20 further includes: guide rods 206, limiting plates 207, pull rods 208, and handles 209; one end of at least two guide rods 206 is connected to the fixing frame 201, and the other end of at least two guide rods 206 passes through at least two springs 203 and clamping plates 202 in sequence; at least two limiting plates 207 are connected to the other end of at least two guide rods 206, and at least two limiting plates 207 are in contact with the clamping plates 202; one end of the pull rod 208 is connected to the clamping plates 202, and the other end of the pull rod 208 passes through the fixing frame 201; the handle 209 is connected to the other end of the pull rod 208.
[0048] By connecting one end of multiple guide rods 206 to the fixing frame 201 and allowing the other ends of the multiple guide rods 206 to pass sequentially through multiple springs 203 and clamping plates 202, the clamping plates 202 can move along the guide rods 206, thereby improving the stability of the movement of the clamping plates 202. By connecting multiple limiting plates 207 to the other ends of the multiple guide rods 206 respectively and allowing the multiple limiting plates 207 to fit against the clamping plates 202, the multiple limiting plates 207 can limit the clamping plates 202, thereby preventing the clamping plates 202 from moving off the guide rods 206 and improving the user experience of the product. By connecting one end of the pull rod 208 to the clamping plate 202, and letting the other end of the pull rod 208 pass through the fixed frame 201, and connecting the handle 209 to the other end of the pull rod 208, the operator can pull the clamping plate 202 to move by using the handle 209 and the pull rod 208, thereby increasing the distance between the two clamping wheels 205 so that the material pump pipe can pass between the two clamping wheels 205.
[0049] In embodiments of the present invention, such as Figures 1 to 6 As shown, the telescopic guide tube 22 includes: a first guide tube 221, a second guide tube 222, a third guide tube 223, a limiting part 224, a first locking part 225, a second locking part 226, and a lifting plate 227; the first guide tube 221 is a hollow cavity with openings at both ends, the first guide tube 221 passes through the second lifting plate 21, and the first guide tube 221 is mounted on the second lifting plate 21; the second guide tube 222 is a hollow cavity with openings at both ends, one end of the second guide tube 222 is located inside the first guide tube 221, and the other end of the second guide tube 222 is located outside the first guide tube 221; the third guide tube 223 is a hollow cavity with openings at both ends, one end of the third guide tube 223... The third guide tube 223 is located inside the second guide tube 222, and the other end of the third guide tube 223 is located outside the second guide tube 222; the limiting part 224 is disposed on the inner wall of the bottom opening of the second guide tube 222, and the limiting part 224 is wrapped around the outside of the first guide tube 221; the first snap-fit part 225 is fitted on the outside of the top opening of the third guide tube 223, and the first snap-fit part 225 is opposite to the limiting part 224; the second snap-fit part 226 is fitted on the outside of the third guide tube 223, and the second snap-fit part 226 is located below the limiting part 224; the lifting plate 227 is connected to both lifting mechanisms 24 at the same time, the third guide tube 223 passes through the lifting plate 227, and the third guide tube 223 is installed on the lifting plate 227.
[0050] By installing the first guide pipe 221 on the second lifting plate 21, the second lifting plate 21 can support the first guide pipe 221. By placing one end of the second guide pipe 222 inside the first guide pipe 221 and one end of the third guide pipe 223 inside the second guide pipe 222, the second guide pipe 222 can move inside the first guide pipe 221, thereby allowing the third guide pipe 223 to move inside the second guide pipe 222, thus adjusting the overall length of the first guide pipe 221, the second guide pipe 222, and the third guide pipe 223. By placing the limiting part 224 on the inner wall of the bottom opening of the second guide tube 222, and fitting the first engaging part 225 onto the outer side of the top opening of the third guide tube 223, with the first engaging part 225 facing the limiting part 224, when the third guide tube 223 moves downward and its top opening reaches the bottom opening of the second guide tube 222, the first engaging part 225 and the limiting part 224 come into contact. This ensures that when the third guide tube 223 continues to move downward, it drives the second guide tube 222 through the first engaging part 225 and the limiting part 224. The guide tube 222 moves downward within the first guide tube 221, thereby increasing the overall length of the first guide tube 221, the second guide tube 222, and the third guide tube 223. The second snap-fit part 226 is fitted onto the outside of the third guide tube 223 and positioned below the limiting part 224, so that when the third guide tube 223 moves upward, the second snap-fit part 226 can fit against the limiting part 224, thereby enabling the third guide tube 223 to drive the second guide tube 222 to move upward within the first guide tube 221 through the limiting part 224 and the second snap-fit part 226. By connecting the lifting plate 227 to two lifting mechanisms 24 simultaneously and installing the third guide pipe 223 on the lifting plate 227, the lifting plate 227 supports the third guide pipe 223, thereby enabling the two lifting mechanisms 24 to work together to drive the lifting plate 227 and the third guide pipe 223 to move up and down, thereby adjusting the overall length of the first guide pipe 221, the second guide pipe 222 and the third guide pipe 223.
[0051] In embodiments of the present invention, such as Figures 1 to 6As shown, the telescopic guide pipe 22 further includes: a first sealing ring 228, a second sealing ring 229, a vibrating rod 230, and a feed pipe 231; the first sealing ring 228 is an elastic body, and the first sealing ring 228 is fitted on the outside of the second guide pipe 222, and the first sealing ring 228 is in contact with the inner wall of the first guide pipe 221; the second sealing ring 229 is an elastic body, and the second sealing ring 229 is fitted on the outside of the third guide pipe 223, and the second sealing ring 229 is in contact with the inner wall of the second guide pipe 222; at least two vibrating rods 230 are installed on the lifting plate 227; the feed pipe 231 is a hollow cavity with openings at both ends, the cross-section of the feed pipe 231 is trapezoidal, the feed pipe 231 is connected to the first guide pipe 221, and the feed pipe 231 is installed on the second lifting plate 21.
[0052] By fitting the first sealing ring 228 onto the outside of the second guide tube 222 and fitting the first sealing ring 228 against the inner wall of the first guide tube 221, the first sealing ring 228 seals the gap between the second guide tube 222 and the first guide tube 221, thereby improving the product's sealing performance. By fitting the second sealing ring 229 onto the outside of the third guide tube 223 and fitting the second sealing ring 229 against the inner wall of the second guide tube 222, the second sealing ring 229 seals the gap between the third guide tube 223 and the second guide tube 222, further improving the product's sealing performance. By installing multiple vibrating rods 230 on the lifting plate 227, the lifting plate 227 can drive the multiple vibrating rods 230 to move up and down, thereby enabling the multiple vibrating rods 230 to vibrate the concrete at different heights, thus improving the pouring effect of the product; by installing a trapezoidal feed pipe 231 on the second lifting plate 21 and connecting the feed pipe 231 to the first guide pipe 221, the feeding area of the first guide pipe 221 is increased, thereby ensuring that the concrete enters the first guide pipe 221, thus improving the user experience of the product.
[0053] In embodiments of the present invention, such as Figures 1 to 6 As shown, the lifting mechanism 24 includes: a winding drum 241, a wire rope 242, a third motor 243, a first pulley 244, a second pulley 245, and a belt 246; the winding drum 241 is installed at the bottom of the second lifting plate 21; one end of the wire rope 242 is connected to the winding drum 241, the wire rope 242 is wound around the outside of the winding drum 241, and the other end of the wire rope 242 is connected to the lifting plate 227; the third motor 243 is provided with a third output shaft, and the third motor 243 is installed at the top of the second lifting plate 21; the first pulley 244 is connected to the third output shaft of the third motor 243; the second pulley 245 is connected to the winding drum 241; the belt 246 is simultaneously fitted on the outside of the first pulley 244 and the second pulley 245.
[0054] By installing the reel 241 at the bottom of the second lifting plate 21, connecting one end of the wire rope 242 to the reel 241, winding the wire rope 242 around the outside of the reel 241, and connecting the other end of the wire rope 242 to the lifting plate 227, the second lifting plate 21 supports the reel 241, thereby rotating the reel 241 to wind up or unwind the wire rope 242, which in turn drives the lifting plate 227 to move up and down to adjust the height of the lifting plate 227. By mounting the third motor 243 on the top of the second lifting plate 21 and connecting the first pulley 244 to the third output shaft of the third motor 243, the third motor 243 can drive the first pulley 244 to rotate. By connecting the second pulley 245 to the winding drum 241 and simultaneously fitting the belt 246 on the outside of the first pulley 244 and the second pulley 245, the second pulley 245 and the winding drum 241 can rotate synchronously. Thus, the third motor 243 drives the winding drum 241 to rotate through the first pulley 244, the second pulley 245 and the belt 246, thereby providing power for rotating the winding drum 241.
[0055] In embodiments of the present invention, such as Figures 1 to 6 As shown, the concrete pouring device for pier construction also includes: positioning frame 25, electric push rod 26 and positioning plate 27; the positioning frame 25 is L-shaped, and the four positioning frames 25 are respectively connected to the four side walls of the mounting plate 11; the four electric push rods 26 are respectively installed on the four positioning frames 25; the four positioning plates 27 are respectively connected to the four electric push rods 26, and the four positioning plates 27 are simultaneously attached to the outer wall of the pier steel membrane 10.
[0056] By connecting four L-shaped positioning frames 25 to the four side walls of the mounting plate 11 respectively, and installing four electric push rods 26 on the four positioning frames 25 respectively, the mounting plate 11 supports the electric push rods 26 through the positioning frames 25, thereby improving the stability of the electric push rods 26. By connecting four positioning plates 27 to the four electric push rods 26 respectively, and making the four positioning plates 27 simultaneously fit against the outer wall of the pier steel membrane 10, the electric push rods 26 can drive the positioning plates 27 to move, thereby making the four positioning plates 27 simultaneously fit against the outer wall of the pier steel membrane 10. This not only positions the mounting plate 11 so that the centerline of the mounting plate 11 coincides with the centerline of the pier steel membrane 10, but also prevents the mounting plate 11 from shifting, thus improving the stability of the product.
[0057] In the description of this invention, the term "a plurality of" refers to two or more. Unless otherwise explicitly defined, the terms "upper," "lower," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the invention. The terms "connection," "installation," "fixing," etc., should be interpreted broadly. For example, "connection" can be a fixed connection, a detachable connection, or an integral connection; it can be a direct connection or an indirect connection through an intermediate medium. For those skilled in the art, the specific meaning of the above terms in this invention can be understood according to the specific circumstances.
[0058] In the description of this invention, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the invention. In this invention, 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.
[0059] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
Claims
1. A concrete pouring device for pier construction, wherein the concrete pouring device for pier construction pours concrete onto a steel formwork for the pier, characterized in that, The concrete pouring device for pier construction includes: Mounting plate, which is fastened to the top of the steel membrane of the pier column; A clearance groove is provided at the center of the mounting plate; Translation mechanism, two of the translation mechanisms are mounted on the mounting plate and are located on both sides of the clearance groove; Translation stages, the two translation stages are respectively connected to the two translation mechanisms; A transverse movement mechanism, which is simultaneously mounted on both of the translation platforms; A transverse moving platform, which is connected to the transverse moving mechanism and is located above the clearance groove; The first clearance hole is located at the center of the transverse stage; The first lifting plate is located below the transverse moving platform and is connected to the bottom of the transverse moving platform; The second clearance hole is located at the center of the first lifting plate and is located below the first clearance hole; A clamping mechanism is mounted on the first lifting plate and is located on both sides of the second clearance hole; The second lifting plate is located below the first lifting plate and is connected to the bottom of the first lifting plate; A telescopic guide tube is installed on the second lifting plate and is located below the second clearance hole; The lifting mechanism consists of two lifting mechanisms installed on both sides of the first hoisting plate, and both lifting mechanisms are simultaneously connected to the bottom of the telescopic guide pipe.
2. The concrete pouring device for pier construction according to claim 1, characterized in that, The translation mechanism includes: Guide rail, which is mounted on the mounting plate; A slide block, wherein a slide groove is provided inside the slide block, the slide block is installed at the bottom of the translation stage, and the guide rail passes through the slide groove of the slide block; A rack, which is mounted on the mounting plate; A first motor, the first motor having a first output shaft, is mounted on the translation platform; The gear is connected to the first output shaft of the first motor and meshes with the rack.
3. The concrete pouring device for pier construction according to claim 1, characterized in that, The lateral movement mechanism includes: Support plates, two of which are respectively mounted on two translation platforms, and the two support plates are arranged opposite to each other; A lead screw, the outer wall of which is provided with an external thread, and the two ends of the lead screw are respectively rotatably connected to the two support plates; The first connecting seat has a threaded hole with an internal thread. The threaded holes of the two first connecting seats are fitted onto the outside of the lead screw, and the two first connecting seats are simultaneously connected to the top of the transverse table. The optical bar has two ends connected to the two support plates respectively; The second connecting seat, two of the second connecting seats are simultaneously connected to the top of the transverse stage, and the optical bar passes through the two second connecting seats in sequence; A second motor, which has a second output shaft, is mounted on a translation platform and the second output shaft is connected to the lead screw. The external thread is adapted to the internal thread.
4. The concrete pouring device for pier construction according to claim 1, characterized in that, The clamping mechanism includes: The fixing frame is L-shaped, and two fixing frames are mounted on the first lifting plate, with the two fixing frames located on both sides of the second clearance hole; Clamping plates, two of the clamping plates being located between the two fixing frames; At least two springs, one end of which is connected to the fixing frame, and the other end of at least two springs, which is connected to the clamping plate; A clamping seat, wherein a clamping groove is provided in the clamping seat, and the two clamping seats are respectively connected to the two clamping plates, and the two clamping seats are arranged opposite to each other; A clamping wheel is embedded in the clamping groove of the clamping seat, and the clamping wheel is rotatably connected to the clamping seat.
5. A concrete pouring device for pier construction according to claim 4, characterized in that, The clamping mechanism further includes: Guide rods, at least two of the guide rods are connected at one end to the fixing frame, and the other ends of at least two of the guide rods pass through at least two of the springs and clamping plates in sequence; The limiting plates, at least two of which are respectively connected to the other end of at least two of the guide rods, and at least two of the limiting plates are in contact with the clamping plate; A pull rod, one end of which is connected to the clamping plate, and the other end of which passes through the fixing frame; A handle, which is connected to the other end of the lever.
6. The concrete pouring device for pier construction according to claim 1, characterized in that, The telescopic guide tube includes: The first guide pipe is a hollow cavity with openings at both ends. The first guide pipe passes through the second lifting plate and is mounted on the second lifting plate. The second guide tube is a hollow cavity with openings at both ends. One end of the second guide tube is located inside the first guide tube, and the other end of the second guide tube is located outside the first guide tube. The third guide tube is a hollow cavity with openings at both ends. One end of the third guide tube is located inside the second guide tube, and the other end of the third guide tube is located outside the second guide tube. A limiting part is provided on the inner wall of the bottom opening of the second guide tube, and the limiting part is arranged around the outside of the first guide tube. The first snap-fit part is fitted onto the outside of the top opening of the third guide tube, and the first snap-fit part is opposite to the limiting part. The second snap-fit part is fitted onto the outside of the third guide tube, and the second snap-fit part is located below the limiting part; A lifting plate is connected to two lifting mechanisms simultaneously, and a third guide pipe passes through the lifting plate and is mounted on the lifting plate.
7. A concrete pouring device for pier construction according to claim 6, characterized in that, The telescopic guide tube also includes: The first sealing ring is an elastomer. The first sealing ring is fitted on the outside of the second guide tube and is in contact with the inner wall of the first guide tube. The second sealing ring is an elastomer. The second sealing ring is fitted on the outside of the third guide tube and is in contact with the inner wall of the second guide tube. Vibrating rods, at least two of the vibrating rods are mounted on the lifting plate; The feed pipe is a hollow cavity with openings at both ends. The cross-section of the feed pipe is trapezoidal. The feed pipe is connected to the first guide pipe and is mounted on the second lifting plate.
8. A concrete pouring device for pier construction according to claim 7, characterized in that, The lifting mechanism includes: A cable reel, which is installed at the bottom of the second lifting plate; A wire rope, one end of which is connected to the drum, the wire rope is wound around the outside of the drum, and the other end of which is connected to the lifting plate. The third motor, which has a third output shaft, is mounted on the top of the second lifting plate; The first pulley is connected to the third output shaft of the third motor; The second pulley is connected to the winding drum; A belt, which is fitted onto the outside of both the first pulley and the second pulley.
9. A concrete pouring device for pier construction according to claim 1, characterized in that, The concrete pouring device for pier construction also includes: The positioning frame is L-shaped, and the four positioning frames are respectively connected to the four side walls of the mounting plate; Electric push rods, the four electric push rods are respectively mounted on the four positioning frames; The four positioning plates are respectively connected to the four electric push rods, and the four positioning plates are simultaneously attached to the outer wall of the pier steel membrane.
Citation Information
Patent Citations
Simple high pier column pouring device
CN217556706U
Automatic pouring and vibrating device for pier column pile foundation concrete and construction method thereof
CN113622677A
Concrete pouring device
CN118326985A
Telescopic tumbling barrel device
CN210263949U
Adjusting structure of concrete pouring guide pipe
CN215803277U