Concrete pouring construction device for cylindrical structure

The construction device, consisting of a track frame and a lifting frame, enables the adjustment of the position and circumferential rotation of the pouring pipe and vibrator, solving the problems of uniformity and efficiency in concrete pouring of cylindrical structures and improving construction quality and efficiency.

CN119877853BActive Publication Date: 2026-01-06HAINAN UNIV +1
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Patent Information

Application Number
CN202510290071.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Priority Date
2024-12-03
Filing Date
2025-03-12
Publication Date
2026-01-06
Estimated Expiration
2045-03-12

AI Technical Summary

Technical Problem

In existing technologies, it is difficult to achieve uniform pouring and vibration when pouring concrete for cylindrical structures, which makes it easy for voids to appear inside the concrete. In addition, the operation is cumbersome and affects the construction quality.

Method used

The construction device, consisting of a track frame, lifting frame, turntable, connecting frame, drive mechanism, transmission mechanism, and adjustment mechanism, uses the coordination of climbing, rotating, translating, and adjusting mechanisms to adjust the position and circumferential rotation of the pouring pipe and vibrator, ensuring uniform pouring and vibration of concrete.

Benefits of technology

It improves the quality of concrete pouring, reduces porosity defects, and increases construction efficiency. It is suitable for cylindrical structures with different radial and thickness dimensions and has good versatility.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides a cylinder structure concrete pouring construction device, through a climbing mechanism to drive the whole device to drive the pouring pipe and the vibrating rod to lift, a driving mechanism, a transmission mechanism, a translation mechanism and a rotating mechanism to cooperate to adjust the position of the connecting frame and drive the rotating platform to rotate, to realize the position adjustment and circumferential rotation of the pouring pipe and the vibrating rod, to realize the circumferential pouring and vibrating work of the cylinder structure with different radial sizes, to simultaneously realize the pouring and vibrating work, to effectively reduce the air hole defects in the concrete, through the first motor to drive the adjusting frame to rotate, the adjusting frame to drive the mounting frame to reciprocate through the adjusting block and the swing rod, to make the pouring pipe and the vibrating rod to uniformly pour and vibrate along the radial direction, to improve the concrete pouring quality, through the adjusting mechanism to adjust the position of the adjusting block to adjust the stroke range of the reciprocating movement of the pouring pipe and the vibrating rod, to be suitable for the pouring work of the cylinder structure with different thickness sizes, and to have good universal performance.
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Description

Technical Field

[0001] This invention relates to the field of construction technology for cylindrical structures, and specifically to a concrete pouring construction device for cylindrical structures. Background Technology

[0002] A chimney is a structure that provides ventilation for hot flue gas or smoke from a boiler, furnace, or fireplace. Chimneys are typically vertical, or as close to vertical as possible, to ensure a smooth flow of gas, drawing in air for combustion, or the chimney effect. The construction of a chimney typically involves the following steps: foundation construction, chimney body construction, ancillary facility construction, and final acceptance. Foundation construction is the first step in chimney construction and a crucial part of the entire project. The stability and load-bearing capacity of the foundation directly affect the safety and service life of the chimney. Ancillary facility construction is a supplementary step in chimney construction, including the installation and commissioning of equipment such as flues, platforms, and ladders. The construction of the chimney body is the core of chimney construction, involving multiple construction procedures and technical requirements. It generally uses two cylindrical templates, inner and outer, to form an annular pouring cavity, which is then filled with concrete. The inner and outer cylindrical templates are spliced ​​together layer by layer along the height direction, and then poured layer by layer. This process usually requires manual assistance with the pouring equipment to pour concrete. After each pour, the concrete is manually compacted by hand or by operating a vibrator. This process is quite cumbersome, and it is not easy for the concrete to be poured evenly in the annular pouring cavity. Furthermore, it is not easy for the operator to control the height of the vibrator in the concrete, resulting in the concrete at the bottom not being vibrated evenly and effectively. This can easily lead to more pores and defects inside the concrete, making it difficult to meet the design requirements for the pouring quality. Summary of the Invention

[0003] The purpose of this invention is to address the shortcomings of the aforementioned technologies by proposing a concrete pouring construction device for cylindrical structures, thereby solving the problems described above.

[0004] This invention provides a concrete pouring construction device for cylindrical structures, comprising:

[0005] A track frame, on which a lifting frame is movably mounted, and on which a climbing mechanism is provided for driving the lifting frame to climb;

[0006] A turntable is rotatably mounted on the lifting frame, and a rotary mechanism for driving the turntable to rotate is provided on the turntable;

[0007] A plurality of connecting frames are movably mounted on the turntable, and the turntable is provided with a translation mechanism for adjusting the position of the plurality of connecting frames;

[0008] A drive mechanism is provided, which is connected to the rotary mechanism and the translation mechanism respectively and drives the rotary mechanism and the translation mechanism to work respectively. A transmission mechanism is provided on the turntable, which is used to adjust the transmission state between the drive mechanism, the rotary mechanism and the translation mechanism.

[0009] The mounting frame is movably mounted on each of the connecting frames, and each of the mounting frames is equipped with a pouring pipe and a vibrating rod. An adjusting frame is rotatably mounted on the connecting frame, and an adjusting block is movably mounted on the adjusting frame. A swing rod is hinged to the adjusting block, and the swing rod is hinged to the mounting frame and drives the mounting frame to reciprocate. A first motor that drives the adjusting frame to rotate is mounted on the connecting frame.

[0010] An adjustment mechanism is provided on the adjustment frame and is used to adjust the position of the adjustment block.

[0011] Preferably, the transmission mechanism includes a rotating drum, a slide block, a spring, and a magnetic attraction assembly. The rotating drum is rotatably mounted on the turntable. The driving mechanism is connected to the rotating drum and drives it to rotate. The slide block is movably mounted on the rotating drum, and the rotating drum drives the slide block to rotate. A first bevel gear and a second bevel gear are provided on the slide block. A main gear and a main bevel gear are rotatably mounted on the turntable. Both the main gear and the main bevel gear have through holes for the rotating drum to pass through. The main gear has a first bevel tooth groove for the first bevel gear to mesh with. The main bevel gear is provided with a second bevel tooth groove for the second bevel gear to mesh with. The main gear is connected to the translation mechanism and drives the translation mechanism to work. The main bevel gear is connected to the rotary mechanism and drives the rotary mechanism to work. The spring pushes the slide to drive the first bevel gear away from the first bevel tooth groove and drive the second bevel gear to mesh with the second bevel tooth groove. The magnetic suction assembly is used to push the slide to drive the second bevel gear away from the second bevel tooth groove and drive the first bevel gear to mesh with the first bevel tooth groove.

[0012] Preferably, the translation mechanism includes a first crown gear ring, a plurality of transmission gears, and a plurality of screws. The plurality of screws are rotatably mounted on the turntable, and each screw is provided with a transmission gear. The connecting frame is provided with a screw hole that mates with the screw. The plurality of screws respectively drive the plurality of connecting frames to move. The first crown gear ring is rotatably mounted on the turntable and meshes with the plurality of transmission gears respectively. The first crown gear ring is provided with an internal gear ring, and the internal gear ring meshes with the main gear.

[0013] Preferably, the rotary mechanism includes a driven bevel gear, a rotary gear, and a second crown gear ring. The driven bevel gear is rotatably mounted on the turntable and meshes with the main bevel gear. The rotary gear is coaxially arranged with the driven bevel gear and rotates with the driven bevel gear. The second crown gear ring is arranged on the lifting frame and meshes with the rotary gear.

[0014] Preferably, the magnetic attraction assembly includes an electromagnet and an iron ring. The iron ring is disposed on the slide, and the electromagnet is disposed on the turntable. The electromagnet is used to attract the iron ring to drive the first bevel gear to mesh with the first bevel tooth groove and to drive the second bevel gear away from the second bevel tooth groove.

[0015] Preferably, the rotating drum has an inner cavity, a slider is movably disposed in the inner cavity, a plurality of grooves are provided on the side wall of the rotating drum, a plurality of connecting parts are provided on the slider, the connecting parts pass through the grooves and are connected to the slide block, and the spring is installed in the inner cavity and abuts against the slider.

[0016] Preferably, the driving mechanism is a drive motor, which is connected to the rotating drum and drives the rotating drum to rotate.

[0017] Preferably, the adjusting mechanism includes a second motor and a threaded rod. The second motor is mounted on the adjusting frame, and the threaded rod is rotatably mounted on the adjusting frame. The second motor is connected to the threaded rod and drives the threaded rod to rotate. The adjusting block is provided with a threaded hole that mates with the threaded rod.

[0018] Preferably, the lifting frame is provided with an annular cavity, a connecting ring is provided on one side of the annular cavity, the annular cavity is connected to the ground pump truck, and several of the pouring pipes are respectively connected to the connecting ring and respectively connected to the annular cavity.

[0019] Preferably, the climbing mechanism includes a third motor, a worm, a worm wheel, and a climbing gear. The worm and the worm wheel are rotatably mounted on the lifting frame. The worm meshes with the worm wheel. The third motor is connected to the worm and drives the worm to rotate. The climbing gear is coaxially connected to the worm wheel and rotates with the worm wheel. A rack that meshes with the climbing gear is provided on the track frame.

[0020] Compared with the prior art, the present invention has the following advantages:

[0021] After the cylindrical template is installed, the climbing mechanism drives the entire device to raise and lower the pouring pipe and vibrator. The drive mechanism, transmission mechanism, translation mechanism, and rotation mechanism work together to adjust the position of the connecting frame and drive the turntable to rotate, thereby realizing the position adjustment and circumferential rotation of the pouring pipe and vibrator. This enables circumferential pouring and vibration of cylindrical structures with different radial dimensions, allowing for simultaneous pouring and vibration. It can effectively reduce porosity defects in concrete. The first motor drives the adjustment frame to rotate, and the adjustment frame drives the installation frame to move back and forth through the adjustment block and swing rod, so that the pouring pipe and vibrator can perform more uniform pouring and vibration along the radial direction, improving the quality of concrete pouring. The adjustment mechanism adjusts the position of the adjustment block to adjust the stroke range of the pouring pipe and vibrator, making it suitable for pouring cylindrical structures with different thicknesses and dimensions, and has good versatility. Attached Figure Description

[0022] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only preferred embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0023] Figure 1 This is a schematic diagram of a structure according to one embodiment of the present invention;

[0024] Figure 2 This is a schematic diagram of the structure of the climbing mechanism and the rotating mechanism in a certain embodiment of the present invention;

[0025] Figure 3 This is a schematic diagram of the structure of the main gear and the first crown gear ring in a certain embodiment of the present invention;

[0026] Figure 4 This is a schematic diagram of the structure of the translation mechanism, driving mechanism and transmission mechanism in a certain embodiment of the present invention;

[0027] Figure 5 This is a schematic diagram of the transmission mechanism in one embodiment of the present invention;

[0028] Figure 6 This is a schematic diagram of the structure of the rotating drum in one embodiment of the present invention;

[0029] Figure 7 This is a schematic diagram of the structure of the connecting frame and the adjustment mechanism in one embodiment of the present invention.

[0030] In the diagram, 1-track frame; 11-rack; 2-lifting frame; 21-annular cavity; 22-connecting ring; 3-climbing mechanism; 31-third motor; 32-worm gear; 33-worm wheel; 34-climbing gear; 4-turntable; 41-connecting frame; 42-mounting frame; 421-pouring pipe; 422-vibrator; 43-adjusting frame; 44-adjusting block; 45-swing arm; 46-first motor; 47-main gear; 471-first bevel gear groove; 48-main bevel gear; 481-second bevel gear groove; 5-rotation mechanism; 51-driven bevel gear 52-Rotating gear; 53-Second crown gear ring; 6-Translation mechanism; 61-First crown gear ring; 611-Internal gear ring; 62-Transmission gear; 63-Screw; 7-Drive mechanism; 8-Transmission mechanism; 81-Rotating drum; 811-Inner cavity; 812-Slider; 813-Slide groove; 814-Connecting part; 82-Slide seat; 821-First bevel gear; 822-Second bevel gear; 83-Spring; 84-Magnetic attraction assembly; 841-Electromagnet; 842-Iron ring; 9-Adjusting mechanism; 91-Second motor; 92-Threaded rod. Detailed Implementation

[0031] This section will describe in detail specific embodiments of the present invention. Preferred embodiments of the present invention are shown in the accompanying drawings. The purpose of the drawings is to supplement the textual description with graphics, so that people can intuitively and vividly understand each technical feature and overall technical solution of the present invention, but they should not be construed as limiting the scope of protection of the present invention.

[0032] Example 1:

[0033] Reference Figures 1 to 7 This invention provides a concrete pouring construction device for cylindrical structures, comprising:

[0034] Track frame 1, lifting frame 2 is movably mounted on track frame 1, and climbing mechanism 3 is mounted on lifting frame 2 for driving lifting frame 2 to climb;

[0035] Turntable 4 is rotatably mounted on lifting frame 2, and a rotary mechanism 5 is provided on turntable 4 to drive turntable 4 to rotate.

[0036] Several connecting frames 41 are movably mounted on a turntable 4, and a translation mechanism 6 is provided on the turntable 4 to adjust the position of the several connecting frames 41.

[0037] The drive mechanism 7 is connected to the rotary mechanism 5 and the translation mechanism 6 respectively and drives the rotary mechanism 5 and the translation mechanism 6 to work respectively. The turntable 4 is provided with a transmission mechanism 8, which is used to adjust the transmission state between the drive mechanism 7, the rotary mechanism 5 and the translation mechanism 6.

[0038] Mounting frame 42, each connecting frame 41 is movably mounted with mounting frame 42, each mounting frame 42 is equipped with pouring pipe 421 and vibrating rod 422, the connecting frame 41 is rotatably mounted with adjusting frame 43, the adjusting frame 43 is movably mounted with adjusting block 44, the adjusting block 44 is hinged with swing rod 45, the swing rod 45 is hinged with mounting frame 42 and drives mounting frame 42 to reciprocate, the connecting frame 41 is equipped with a first motor 46 that drives adjusting frame 43 to rotate;

[0039] Adjustment mechanism 9 is mounted on adjustment frame 43 and is used to adjust the position of adjustment block 44.

[0040] After the cylindrical formwork is installed, the climbing mechanism 3 drives the entire device to raise and lower the pouring pipe 421 and the vibrator 422. The drive mechanism 7, transmission mechanism 8, and translation mechanism 6 work together to adjust the position of the connecting frame 41 to adjust the position of the pouring pipe 421 and the vibrator 422. The drive mechanism 7, transmission mechanism 8, and rotation mechanism 5 work together to drive the turntable 4 to rotate. The turntable 4 drives the pouring pipe 421 and the vibrator 422 to rotate circumferentially around the cylindrical structure, realizing circumferential pouring and vibration work for cylindrical structures of different radial dimensions. Pouring can be carried out simultaneously. The vibration and compaction process effectively reduces air pockets in the concrete. The first motor 46 drives the adjusting frame 43 to rotate, and the adjusting frame 43 drives the installation frame 42 to move back and forth through the adjusting block 44 and the swing rod 45. This allows the pouring pipe 421 and the vibrating rod 422 to perform relatively uniform pouring and vibration work in the radial direction, improving the quality of concrete pouring. The position of the adjusting block 44 can be adjusted by the adjusting mechanism 9 to adjust the stroke range of the reciprocating movement of the pouring pipe 421 and the vibrating rod 422, making it suitable for pouring cylindrical structures of different thicknesses and dimensions, and has good versatility.

[0041] Example 2:

[0042] Reference Figures 1 to 7In conjunction with the technical solution of Embodiment 1, in this embodiment, the transmission mechanism 8 includes a rotating cylinder 81, a sliding block 82, a spring 83, and a magnetic attraction assembly 84. The rotating cylinder 81 is rotatably mounted on the turntable 4. The driving mechanism 7 is connected to the rotating cylinder 81 and drives the rotating cylinder 81 to rotate. The sliding block 82 is movably mounted on the rotating cylinder 81. The rotating cylinder 81 drives the sliding block 82 to rotate. A first bevel gear 821 and a second bevel gear 822 are provided on the sliding block 82. A main gear 47 and a main bevel gear 48 are rotatably mounted on the turntable 4. Both the main gear 47 and the main bevel gear 48 are provided with through holes for the rotating cylinder 81 to pass through. The main gear 47 is provided with holes for the first bevel gear 821 to pass through. The first bevel tooth groove 471 is engaged, and the main bevel gear 48 is provided with a second bevel tooth groove 481 for the second bevel gear 822 to engage. The main gear 47 is connected to the translation mechanism 6 and drives the translation mechanism 6 to work. The main bevel gear 48 is connected to the rotation mechanism 5 and drives the rotation mechanism 5 to work. The spring 83 pushes the slide 82 to drive the first bevel gear 821 away from the first bevel tooth groove 471 and drive the second bevel gear 822 to engage with the second bevel tooth groove 481. The magnetic suction assembly 84 is used to push the slide 82 to drive the second bevel gear 822 away from the second bevel tooth groove 481 and drive the first bevel gear 821 to engage with the first bevel tooth groove 471.

[0043] The drive mechanism 7 drives the rotating drum 81 to rotate the slide 82. The magnetic attraction assembly 84 pushes the slide 82 to drive the second bevel gear 822 away from the second bevel tooth groove 481 and to drive the first bevel gear 821 to mesh with the first bevel tooth groove 471. At this time, the spring 83 is in a compressed state. The drive mechanism 7 is connected to the main gear 47 and drives the main gear 47 to rotate. The main gear 47 drives the translation mechanism 6 to adjust the positions of several adjusting frames 43, thereby adjusting the positions of the vibrating rod 422 and the pouring pipe 421. After the magnetic suction assembly 84 stops working, the spring 83 resets and pushes against the slide 82 to drive the first bevel gear 821 away from the first bevel tooth groove 471 and drive the second bevel gear 822 to mesh with the second bevel tooth groove 481. The drive mechanism 7 is connected to the main bevel gear 48 and drives the main bevel gear 48 to rotate. The main bevel gear 48 works through the rotary mechanism 5 to drive the pouring pipe 421 and the vibrating rod 422 to rotate circumferentially around the cylindrical structure, so as to realize the circumferential pouring and vibration work of cylindrical structures with different radial dimensions.

[0044] Specifically, the translation mechanism 6 includes a first crown gear ring 61, several transmission gears 62, and several screws 63. The screws 63 are rotatably mounted on the turntable 4, and each screw 63 is provided with a transmission gear 62. The connecting frame 41 is provided with a screw hole that mates with the screw 63. The screws 63 drive the connecting frames 41 to move respectively. The first crown gear ring 61 is rotatably mounted on the turntable 4 and meshes with several transmission gears 62 respectively. The first crown gear ring 61 is provided with an internal gear ring 611, which meshes with the main gear 47.

[0045] During the rotation of the main gear 47, the first crown gear ring 61 is driven to rotate. During the rotation of the first crown gear ring 61, several transmission gears 62 drive several screws 63 to rotate. The screws 63 respectively cooperate with the screw holes on several connecting frames 41 to adjust the radial position of the connecting frames 41, thereby realizing the position adjustment of the vibrator 422 and the pouring pipe 421.

[0046] Specifically, the rotary mechanism 5 includes a driven bevel gear 51, a rotary gear 52, and a second crown gear ring 53. The driven bevel gear 51 is rotatably mounted on the turntable 4 and meshes with the main bevel gear 48. The rotary gear 52 is coaxially arranged with the driven bevel gear 51 and rotates with the driven bevel gear 51. The second crown gear ring 53 is arranged on the lifting frame 2 and meshes with the rotary gear 52.

[0047] During the rotation of the main bevel gear 48, the driven bevel gear 51 is driven to rotate, and the driven bevel gear 51 drives the rotary gear 52 to rotate. The rotary gear 52 rotates relative to the second crown gear ring 53, thereby driving the rotary table 4 to rotate relative to the lifting frame 2. The rotary table 4 drives the connecting frame 41 and the mounting frame 42 to rotate, thereby driving the pouring pipe 421 and the vibrating rod 422 to rotate circumferentially around the cylindrical structure, realizing circumferential pouring and vibration work. In conjunction with the climbing mechanism 3, the lifting frame 2 is driven to rise and fall, realizing the layer-by-layer pouring and vibration of the cylindrical structure. This method of pouring and vibrating at the same time is beneficial to eliminating air pore defects in the concrete, and does not require a lot of time to spend on additional vibration work after pouring, thus improving the overall pouring efficiency.

[0048] Specifically, the magnetic attraction assembly 84 includes an electromagnet 841 and an iron ring 842. The iron ring 842 is mounted on the slide block 82, and the electromagnet 841 is mounted on the turntable 4. The electromagnet 841 is used to attract the iron ring 842 to drive the first bevel gear 821 to mesh with the first bevel tooth groove 471 and drive the second bevel gear 822 away from the second bevel tooth groove 481.

[0049] When the electromagnet 841 is energized, it attracts the iron ring 842, causing the slide 82 to move. During the movement of the slide 82, the second bevel gear 822 is driven away from the second bevel tooth groove 481 and the first bevel gear 821 is driven to mesh with the first bevel tooth groove 471. At this time, the spring 83 is in a compressed state. The drive mechanism 7 is connected to the main gear 47 and drives the main gear 47 to rotate. The main gear 47 drives the translation mechanism 6 to work to adjust the position of several adjusting frames 43, thereby adjusting the position of the vibrating rod 422 and the pouring pipe 421. After the electromagnet 841 is de-energized, the spring 83 resets and pushes against the slide 82 to drive the first bevel gear 821 away from the first bevel tooth groove 471 and drive the second bevel gear 822 to mesh with the second bevel tooth groove 481. The drive mechanism 7 is connected to the main bevel gear 48 and drives the main bevel gear 48 to rotate. The main bevel gear 48 works through the rotary mechanism 5 to drive the pouring pipe 421 and the vibrating rod 422 to rotate circumferentially around the cylindrical structure, so as to realize the circumferential pouring and vibration work of cylindrical structures with different radial dimensions.

[0050] Specifically, the rotating drum 81 is provided with an inner cavity 811, and a slider 812 is movably provided in the inner cavity 811. Several grooves 813 are provided on the side wall of the rotating drum 81, and several connecting parts 814 are provided on the slider 812. The connecting parts 814 pass through the grooves 813 and are connected to the slide block 82. The spring 83 is installed in the inner cavity 811 and abuts against the slider 812.

[0051] The connecting part 814 on the slider 812 is connected to the slide block 82 through the slide groove 813. The sliding limit effect between the connecting part 814 and the slide groove 813 makes the slider 812 and the slide block 82 only slide relative to the rotating cylinder 81 and not rotate relative to the rotating cylinder 81. This allows the rotating cylinder 81 to drive the slide block 82 to rotate, which is conducive to the transmission connection between the spring 83 and the magnetic attraction component 84 and the translation mechanism 6 and the rotation mechanism 5, respectively.

[0052] Specifically, the drive mechanism 7 is a drive motor, which is connected to the rotating drum 81 and drives the rotating drum 81 to rotate.

[0053] Example 3:

[0054] Reference Figures 1 to 7 In conjunction with the technical solutions of Embodiments 1 and 2, in this embodiment, the adjusting mechanism 9 includes a second motor 91 and a threaded rod 92. The second motor 91 is mounted on the adjusting frame 43, and the threaded rod 92 is rotatably mounted on the adjusting frame 43. The second motor 91 is connected to the threaded rod 92 and drives the threaded rod 92 to rotate. The adjusting block 44 is provided with a screw hole that mates with the threaded rod 92.

[0055] The second motor 91 drives the threaded rod 92 to rotate. The threaded rod 92, in conjunction with the threaded hole on the adjusting block 44, drives the adjusting block 44 to move relative to the adjusting frame 43, thereby adjusting the position of the adjusting block 44 and the rotation radius of the adjusting block 44. This adjusts the travel range of the reciprocating movement of the mounting frame 42, thus enabling the adjustment of the travel range of the reciprocating movement of the pouring pipe 421 and the vibrating rod 422. This makes it suitable for pouring cylindrical structures of different thicknesses and has good versatility.

[0056] Specifically, the lifting frame 2 is equipped with an annular cavity 21, and a connecting ring 22 is provided on one side of the annular cavity 21. The annular cavity 21 is connected to the ground pump truck. Several pouring pipes 421 are respectively connected to the connecting ring 22 and respectively connected to the annular cavity 21. The pump truck delivers concrete to the annular cavity 21, which can supply concrete to several pouring pipes 421 that rotate with the installation frame 42, realizing concrete supply during the rotation of the pouring pipes 421.

[0057] Specifically, the climbing mechanism 3 includes a third motor 31, a worm gear 32, a worm wheel 33, and a climbing gear 34. Both the worm gear 32 and the worm wheel 33 are rotatably mounted on the lifting frame 2. The worm gear 32 meshes with the worm wheel 33. The third motor 31 is connected to the worm gear 32 and drives it to rotate. The climbing gear 34 is coaxially connected to the worm wheel 33 and rotates with it. A rack 11 meshes with the climbing gear 34 on the track frame 1. The third motor 31 drives the worm gear 32 to rotate, and the worm gear 32 drives the climbing gear 34 to rotate via the worm wheel 33. During rotation, the climbing gear 34 climbs along the rack 11 on the track frame 1, thus realizing the lifting operation of the lifting frame 2.

[0058] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention in any way. Any person skilled in the art can make many possible variations and modifications to the technical solutions of the present invention, or modify them into equivalent embodiments, without departing from the scope of the present invention. Therefore, any modifications, equivalent changes, and alterations made to the above embodiments based on the technology of the present invention without departing from the scope of the present invention are within the protection scope of the present invention.

Claims

1. A concrete pouring construction device for cylindrical structures, characterized in that, Include: Track frame, the track frame is movably provided with a lifting frame, the lifting frame is provided with a climbing mechanism for driving the lifting frame to climb; Rotary table, the rotary table is rotatably installed on the lifting frame, the rotary table is provided with a rotary mechanism for driving the rotary table to rotate; Several connecting frames, several connecting frames are movably installed on the rotary table, the rotary table is provided with a translation mechanism for adjusting the position of several connecting frames; Drive mechanism, the drive mechanism is respectively connected with the rotary mechanism and the translation mechanism and drives the rotary mechanism and the translation mechanism to work, the rotary table is provided with a transmission mechanism, the transmission mechanism is used to adjust the transmission state between the drive mechanism, the rotary mechanism and the translation mechanism; Mounting frame, each connecting frame is movably provided with the mounting frame, each mounting frame is provided with a pouring pipe and a vibrating rod, the connecting frame is rotatably provided with an adjusting frame, the adjusting frame is movably provided with an adjusting block, the adjusting block is hingedly provided with a swing rod, the swing rod is hingedly connected with the mounting frame and drives the mounting frame to reciprocate, the connecting frame is provided with a first motor for driving the adjusting frame to rotate; Adjusting mechanism, the adjusting mechanism is arranged on the adjusting frame and is used for adjusting the position of the adjusting block; The transmission mechanism includes a rotating drum, a sliding seat, a spring and a magnetic attraction assembly, the rotating drum is rotatably installed on the rotary table, the drive mechanism is connected with the rotating drum and drives the rotating drum to rotate, the sliding seat is movably installed on the rotating drum, the rotating drum drives the sliding seat to rotate, the sliding seat is provided with a first bevel gear and a second bevel gear, the rotary table is rotatably provided with a main gear and a main bevel gear, the main gear and the main bevel gear are both provided with a through hole for the rotating drum to pass through, the main gear is provided with a first bevel gear slot for the first bevel gear to engage, the main bevel gear is provided with a second bevel gear slot for the second bevel gear to engage, the main gear is connected with the translation mechanism and drives the translation mechanism to work, the main bevel gear is connected with the rotary mechanism and drives the rotary mechanism to work, the spring pushes the sliding seat to drive the first bevel gear away from the first bevel gear slot and the second bevel gear to engage with the second bevel gear slot, the magnetic attraction assembly is used to push the sliding seat to drive the second bevel gear away from the second bevel gear slot and the first bevel gear to engage with the first bevel gear slot.

2. According to claim 1, a kind of cylinder structure concrete pouring construction device, it is characterized in that: The translation mechanism includes a first crown gear, a plurality of transmission gears and a plurality of screws, a plurality of the screws are rotatably installed on the rotary table, each screw is provided with the transmission gear, the connecting frame is provided with a screw hole matched with the screw, a plurality of the screws respectively drive a plurality of the connecting frame to move, the first crown gear is rotatably installed on the rotary table and is respectively engaged with a plurality of the transmission gears, the first crown gear is provided with an internal gear, and the internal gear is engaged with the main gear.

3. The device according to claim 1, characterized in that: The rotating mechanism comprises a driven bevel gear, a rotating gear and a second crown gear, the driven bevel gear is rotatably installed on the rotating table and engaged with the main bevel gear, the rotating gear is coaxially arranged with the driven bevel gear and rotates with the driven bevel gear, and the second crown gear is arranged on the lifting frame and engaged with the rotating gear.

4. The device according to claim 1, characterized in that: The magnetic attraction assembly comprises an electromagnet and an iron ring, the iron ring is arranged on the sliding seat, and the electromagnet is arranged on the rotating table, the electromagnet is used to attract the iron ring to drive the first bevel gear to engage with the first bevel gear slot and drive the second bevel gear away from the second bevel gear slot.

5. The device according to claim 1, characterized in that: The rotating drum is provided with an inner cavity, a sliding block is arranged at the inner cavity, a plurality of sliding grooves are arranged on the side wall of the rotating drum, a plurality of connecting parts are arranged on the sliding block, the connecting parts pass through the sliding grooves and are connected with the sliding seat, and the spring is installed at the inner cavity and abuts against the sliding block.

6. The device according to claim 1, characterized in that: The driving mechanism is a driving motor, the driving motor is drivingly connected with the rotating drum and drives the rotating drum to rotate.

7. The device according to claim 1, characterized in that: The adjusting mechanism comprises a second motor and a threaded rod, the second motor is arranged on the adjusting frame, the threaded rod is rotatably installed on the adjusting frame, the second motor is drivingly connected with the threaded rod and drives the threaded rod to rotate, and a screw hole matched with the threaded rod is arranged on the adjusting block.

8. The device according to claim 1, characterized in that: The lifting frame is provided with an annular cavity, a connecting ring is arranged on one side of the annular cavity, the annular cavity is communicated with a ground pump truck, and a plurality of pouring pipes are respectively connected with the connecting ring and communicated with the annular cavity.

9. The device according to claim 1, characterized in that: The climbing mechanism comprises a third motor, a worm, a worm wheel and a climbing gear, the worm and the worm wheel are rotatably installed on the lifting frame, the worm is engaged with the worm wheel, the third motor is drivingly connected with the worm and drives the worm to rotate, the climbing gear is coaxially connected with the worm wheel and rotates with the worm wheel, and a rack engaged with the climbing gear is arranged on the track frame.

Citation Information

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