Sluice pier construction auxiliary device
By designing an auxiliary device for the construction of sluice gate piers, the problems of high working strength and low efficiency caused by frequent measurement of column installation positions during construction are solved, and more efficient column installation and higher quality gate piers are achieved.
Patent Information
- Application Number
- CN202510511591.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-23
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2045-04-23
AI Technical Summary
During the construction of sluice gate piers, construction personnel need to frequently use measuring instruments to measure the installation position of the columns, resulting in greater working strength and lower installation efficiency.
A sluice gate pier construction auxiliary device is designed, including a steel frame and a steel rod frame installed on the column. The measuring frame moves on the steel frame and the steel rod frame, the positioning and fixing plates are adjusted, the column installation position is determined using the scale groove, and the column is limited by the limiting mechanism.
It effectively improves the installation efficiency of columns, ensures the construction quality of the gate pier, and reduces the working intensity of construction personnel.
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Figure CN120061595A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of new energy construction engineering, and specifically to an auxiliary device for the construction of a sluice pier. Background Technique
[0002] In the fields of new energy construction engineering such as water conservancy and hydropower, tidal energy, wave energy power generation, and pumped storage, sluices are important infrastructure for new energy development. Among them, as a low-head hydraulic structure that can both block water and discharge water in new energy construction projects, a sluice mainly consists of the following three parts: the upstream connecting section, the sluice chamber, and the downstream connecting section. Among them, the sluice chamber is the main part of the sluice, and its main functions are to control the water level and flow rate, and at the same time play a role in preventing seepage and scouring. The sluice chamber contains the following components: the bottom slab, the pier, and the gate; among them, the pier in the sluice mainly plays roles such as supporting the gate, separating the sluice openings, connecting both banks, and bearing water pressure; As an important infrastructure for new energy construction projects, when the gate of the sluice is closed or partially opened, the gate will bear a certain thrust of the water flow, and the thrust borne by the gate will be transmitted to the pier through the support. Therefore, during the construction process of new energy construction projects, prestressed anchor cables are usually set during the construction of the pier to apply compressive stress to the pier to resist the tensile stress transmitted from the gate, so as to achieve the purpose of improving its bearing capacity; the prestressed anchor cables in the pier generally adopt the method of embedding steel pipes to form holes, which are used as anchor cable holes; during the construction of the pier, a support bent made of steel materials is usually installed on the pier construction layer, and the support bent is used to fix the embedded steel pipes, and then concrete is poured, so that the embedded steel pipes form holes for prestressed anchor cables in the concrete layer. During the concrete pouring process, the support bent bears the lateral pressure of the concrete to prevent the embedded steel pipes from shifting in position. The support bent mainly includes columns and crossbars. During the installation of the support bent, first, construction workers weld multiple columns to the embedded reinforcing bars on the pier, and then weld crossbars and diagonal braces and other components. During the installation of the columns, it is necessary to avoid a situation where the distance between the columns is too large. If the distance between the columns is too large, it will reduce the lateral displacement resistance of the support bent, and then during the concrete pouring process, the support bent is prone to deformation. Therefore, during the installation process, in order to avoid too large a distance between the columns, construction workers need to use measuring instruments to measure the installation positions of the columns. Since multiple columns that make up the support bent need to be installed, construction workers need to frequently use measuring instruments to measure the installation positions of the columns, which leads to a relatively large working intensity of the construction workers and a relatively low installation efficiency. For this reason, we propose an auxiliary device for the construction of a sluice pier. Summary of the Invention
[0003] The purpose of the present invention is to provide an auxiliary device for the construction of a sluice pier to solve the problems raised in the above background technique.
[0004] To achieve the above object, the present invention provides the following technical solution: An auxiliary device for the construction of a sluice pier, including a steel frame installed on one of the columns, and a steel rod frame slidably connected to the inner wall of the steel frame. Measuring frames are symmetrically arranged on the steel frame. A rotating shaft body rotatably connected to its inner wall is installed inside each measuring frame. A first roller and a second roller are installed in parallel on the rotating shaft body. The first roller contacts the surface of the steel frame, and the second roller contacts the surface of the steel rod frame. Scale grooves are provided on the surfaces of both the steel frame and the steel rod frame. A square plate frame is further provided on one side of the measuring frame. A fixed clamping plate is fixedly installed on one side of the square plate frame. A positioning clamping plate slidably connected to its side wall is installed on the other side of the square plate frame. A limiting mechanism for controlling the positioning clamping plate to limit the installation of the column is provided inside the measuring frame. By pulling the measuring frame, the square plate frame drives the fixed clamping plate and the positioning clamping plate to move, and the installation position of the column is determined through the scale grooves. The positioning clamping plate and the fixed clamping plate limit the column during the installation process under the action of the limiting mechanism.
[0005] Preferably, a circular disc frame is further fixedly installed on the rotating shaft body. A plurality of sliding grooves are provided on the circular disc frame. A moving slider slidably connected to its inner wall is installed in each sliding groove. A plastic spring is connected between the moving slider and the inner wall of the circular disc frame. A rolling sphere is further installed on each moving slider.
[0006] Preferably, the limiting mechanism includes an annular bracket provided inside the measuring frame. The annular bracket is connected to the square plate frame through a plurality of connecting rod frames. The connecting rod frames are slidably connected to the inner wall of the measuring frame. A connecting disc frame is further provided on one side of the circular disc frame. A plurality of fixed rod frames are connected between the connecting disc frame and the annular bracket. A positioning disc is further provided on the side of the measuring frame away from the square plate frame. The positioning disc is connected to the connecting disc frame through a plurality of transmission shafts.
[0007] Preferably, a constant force spring for connecting the connecting disc frame and the inner wall of the measuring frame is sleeved on each transmission shaft. The inner diameter of the annular bracket is larger than the outer diameter of the circular disc frame.
[0008] Preferably, a plurality of rotating rod frames are fixedly installed at the end of the rotating shaft body. A plurality of positioning rod frames are fixedly installed inside the positioning disc. The positioning rod frames control the movement state of the rotating shaft body by limiting the rotating rod frames.
[0009] Preferably, a guiding shaft body is fixedly installed on one side of the positioning clamping plate, and the guiding shaft body is slidably connected to the side wall of the measuring frame. A return spring is further connected between the guiding shaft body and the side wall of the measuring frame. A rotatable clamping plate is also installed on the positioning clamping plate and is rotatably connected thereto. A torsion spring is further connected between the rotatable clamping plate and the positioning clamping plate. A magnetic plate frame is fixedly installed on the fixed clamping plate, and one side of the positioning clamping plate is a magnetic surface. The magnetic plate frame generates a repulsive force on the magnetic surface of the positioning clamping plate.
[0010] Preferably, a positioning frame is fixedly installed on the top of one of the measuring frames, and a movable rod frame slidably connected to its inner wall is installed inside the positioning frame. A buffer spring is connected between the movable rod frame and the bottom inner wall of the positioning frame. A plurality of clamping blocks are fixedly installed on the movable rod frame.
[0011] Preferably, a clamping roller part is arranged inside the positioning frame. The clamping roller part is located on the movement tracks of the plurality of clamping blocks. An extension shaft body is fixedly installed on the clamping roller part. The end of the extension shaft body penetrates through the inner wall of the positioning frame and extends to the outside. A spring body is connected between the extension shaft body and the inner wall of the positioning frame.
[0012] Preferably, a rotatable seat body is installed on the top of the movable rod frame and is rotatably connected thereto. A rotatable rod frame rotatably connected to the rotatable seat body is installed on the rotatable seat body. A plurality of locking sleeves are also installed on the rotatable rod frame.
[0013] Preferably, one side of the clamping block is an inclined surface and the other side is a right-angle surface.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: In the present invention, the measuring frame moves on the steel frame and the steel rod frame, so that the positioning clamping plate and the fixed clamping plate are synchronously adjusted in position therewith. Under the action of the scale groove, the construction personnel can effectively know the distance between the columns. Under the action of the positioning disc and the positioning rod frame therein, the rotation state of the rotating shaft body can be controlled by rotating the rod frame, so as to control the movement state of the measuring frame, avoid the displacement of the measuring frame caused by the acting force during the installation of the column. At the same time, the fixed clamping plate, the positioning clamping plate and the rotatable clamping plate thereon limit the column during the installation process, prevent the column from shifting in position during the installation process or being non-parallel to other columns. Through the structural design of the present invention, the installation efficiency of the column can be effectively improved, and the construction quality of the gate pier can be improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic diagram of the overall structure of the present invention; Figure 2Structural schematic diagram of the steel frame and steel rod frame of the present invention on the column; Figure 3 Structural schematic diagram of the measuring frame of the present invention; Figure 4 Internal structural schematic diagram of the measuring frame of the present invention; Figure 5 Structural schematic diagram of the rotating shaft body and its mechanical components of the present invention; Figure 6 Structural position schematic diagram of the annular bracket, square plate frame and circular disc frame of the present invention; Figure 7 Structural schematic diagram of the annular bracket and circular disc frame of the present invention; Figure 8 Internal partial structural schematic diagram of the measuring frame of the present invention; Figure 9 Structural schematic diagram of the rotating rod frame and positioning rod frame of the present invention; Figure 10 Top view structural schematic diagram of the positioning clamp and fixed clamp of the present invention; Figure 11 Internal structural schematic diagram of the positioning frame of the present invention; Figure 12 Structural schematic diagram of the clamping block body and clamping roller part of the present invention.
[0016] In the figure: 1. Steel frame; 2. Steel rod frame; 3. Measuring frame; 31. Rotating shaft body; 311. Rotating rod frame; 32. Roller one; 33. Roller two; 34. Circular disc frame; 35. Sliding groove body; 36. Moving slider; 361. Rolling sphere; 37. Plastic spring; 4. Scale groove; 5. Square plate frame; 51. Fixed clamp; 52. Positioning clamp; 521. Guide shaft body; 522. Return spring; 53. Rotating clamp; 54. Torsion spring; 55. Magnetic plate frame; 6. Limiting mechanism; 61. Annular bracket; 62. Connecting rod frame; 63. Connecting disc frame; 64. Fixed rod frame; 65. Positioning disc; 651. Positioning rod frame; 66. Transmission shaft body; 67. Constant force spring; 7. Positioning frame; 71. Movable rod frame; 72. Buffer spring; 73. Clamping block body; 74. Clamping roller part; 75. Extension shaft body; 76. Spring body; 77. Rotating seat body; 78. Rotating rod frame; 79. Locking sleeve. Detailed implementation manners
[0017] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0018] Please refer to Figures 1-12 , the present invention provides a technical solution: an auxiliary device for the construction of a sluice pier. The present invention makes corresponding improvements to the technical problems in the background art, including a steel frame 1 installed on one of the columns, and a steel rod frame 2 slidably connected to the inner wall of the steel frame 1. Combining with the attached Figure 1 As shown in the figure, during the construction of a new energy building project, first, two columns are fixedly installed on the concrete layer of the sluice pier. The installation of these two columns requires position measurement through precise instruments (such as using a total station). After the positions are determined, the two columns are welded to the embedded reinforcing bars on the concrete layer of the sluice pier. Subsequently, the steel frame 1 is fixed to one of the columns by bolts, and the steel rod frame 2 is pulled to fix its end on the other column. Measuring frames 3 are symmetrically arranged on the steel frame 1. Inside each measuring frame 3, a rotating shaft body 31 rotatably connected to its inner wall is installed, and a first roller 32 and a second roller 33 are installed in parallel on the rotating shaft body 31. The first roller 32 contacts the surface of the steel frame 1, and the second roller 33 contacts the surface of the steel rod frame 2. Thus, under the action of the first roller 32 and the second roller 33, the measuring frame 3 can be adjusted in position between the steel frame 1 and the steel rod frame 2. Scale grooves 4 are provided on the surfaces of both the steel frame 1 and the steel rod frame 2. Thus, the position of the measuring frame 3 can be known according to the scale grooves 4. A circular disc frame 34 is also fixedly installed on the rotating shaft body 31, and a plurality of sliding groove bodies 35 are provided on the circular disc frame 34. A moving slider 36 slidably connected to its inner wall is installed in each sliding groove body 35, and a plastic spring 37 is connected between the moving slider 36 and the inner wall of the circular disc frame 34. A rolling sphere 361 is also installed on each moving slider 36; Further explanation, combining with the attached Figures 5-7 As shown in the figure, in the initial state, that is, when the first roller 32 and the second roller 33 do not rotate, the moving slider 36 is located in the sliding groove body 35. At this time, the plastic spring 37 is in a normal state. When the first roller 32 and the second roller 33 rotate, they drive the circular disc frame 34 to rotate through the rotating shaft body 31. Thus, during the rotation of the circular disc frame 34, the sliding groove bodies 35 thereon will drive the moving slider 36 to move synchronously. During the process of the moving slider 36 rotating with the circular disc frame 34, it will move directionally in the sliding groove body 35 under the action of centrifugal force. And during the movement process, the moving slider 36 will stretch the plastic spring 37. At this time, the end of the sliding block is located outside the sliding groove body 35, and part of the area is located inside the sliding groove body 35.
[0019] On one side of the measuring frame 3, a square plate frame 5 is further provided. A fixed clamping plate 51 is fixedly installed on one side of the square plate frame 5. On the other side of the square plate frame 5, a positioning clamping plate 52 slidably connected to its side wall is installed. A guiding shaft body 521 is fixedly installed on one side of the positioning clamping plate 52, and the guiding shaft body 521 is slidably connected to the side wall of the measuring frame 3. A return spring 522 is further connected between the guiding shaft body 521 and the side wall of the measuring frame 3. A rotatable clamping plate 53 rotatably connected to it is installed on the positioning clamping plate 52. A torsion spring 54 is connected between the rotatable clamping plate 53 and the positioning clamping plate 52. A magnetic plate frame 55 is fixedly installed on the fixed clamping plate 51, and one side of the positioning clamping plate 52 is a magnetic surface. The magnetic plate frame 55 generates a repulsive force on the magnetic surface of the positioning clamping plate 52; And a limiting mechanism 6 for controlling the positioning clamping plate 52 to limit the installation of the upright column is arranged in the measuring frame 3. By pulling the measuring frame 3, the square plate frame 5 drives the fixed clamping plate 51 and the positioning clamping plate 52 to move, and the installation position of the upright column is determined through the scale groove 4. The positioning clamping plate 52 and the fixed clamping plate 51 limit the upright column during the installation process under the action of the limiting mechanism 6.
[0020] As a further limitation in the present invention, the limiting mechanism 6 includes an annular bracket 61 arranged inside the measuring frame 3. The annular bracket 61 is located on one side of the circular disc frame 34. The annular bracket 61 and the square plate frame 5 are connected by a plurality of connecting rod frames 62. The connecting rod frames 62 are slidably connected to the inner wall of the measuring frame 3. A connecting disc frame 63 is further arranged on the side of the circular disc frame 34 away from the annular bracket 61. A plurality of fixed rod frames 64 are connected between the connecting disc frame 63 and the annular bracket 61. A positioning disc 65 is further arranged on the side of the measuring frame 3 away from the square plate frame 5. As shown in the attached Figure 9 figure, a plurality of rotating rod frames 311 are fixedly installed at the end of the rotating shaft body 31. A plurality of positioning rod frames 651 are fixedly installed inside the positioning disc 65. The positioning rod frames 651 control the movement state of the rotating shaft body 31 by limiting the rotating rod frames 311. The positioning disc 65 and the connecting disc frame 63 are connected by a plurality of transmission shaft bodies 66. A constant force spring 67 for connecting the connecting disc frame 63 and the inner wall of the measuring frame 3 is sleeved on each transmission shaft body 66. The inner diameter of the annular bracket 61 is larger than the outer diameter of the circular disc frame 34. As shown in the attached Figure 2 figure, the two positioning discs 65 are connected by a pulling handle.
[0021] Specifically, as shown in the attached Figures 4-9 figure, in the initial state, the measuring frame 3 is in a static state, that is, the first roller 32 and the second roller 33 do not rotate. At this time, the positional relationship between the annular bracket 61 and the circular disc frame 34 is as shown in the attached Figure 6 figure, and the plurality of positioning rod frames 651 inside the positioning disc 65 and the rotating rod frames 311 are as shown in the attached Figure 9As shown in the figure, when in the contact state, if the first roller 32 and the second roller 33 rotate, the rotating shaft body 31 will rotate accordingly. However, since the rotating rod frame 311 on the rotating shaft body 31 is in contact with the positioning rod frame 651, in this state, if the rotating shaft body 31 rotates, the rotating rod frame 311 will exert a force on the positioning rod frame 651, causing the positioning disc 65 to rotate. However, the positioning disc 65 is connected to the connecting disc frame 63 through a plurality of transmission shaft bodies 66, and the transmission shaft bodies 66 are slidably connected to the measuring frame 3 and cannot rotate. Therefore, at this time, the positioning disc 65 cannot rotate, and correspondingly, the rotating shaft body 31 and the first roller 32 and the second roller 33 thereon cannot rotate. At this time, the measuring frame 3 is in a limited position state; When it is necessary to install the remaining columns on the concrete layer of the pier, it is necessary to determine the positions of the remaining columns at this time. Then, the construction workers can pull the positioning disc 65, as shown in the appendix Figure 2 As shown, the two positioning discs 65 are connected by a pulling handle. Then, the construction workers pull the pulling handle outwards, that is, the positioning disc 65 moves outside the measuring frame 3. At this time, the positioning rod frame 651 leaves the contact position with the rotating rod frame 311. That is, if the rotating rod frame 311 rotates, it will not contact the positioning rod frame 651. During the outward pulling process of the positioning disc 65, it drives the connecting disc frame 63 to compress the constant force spring 67 through the transmission shaft body 66. During the movement of the connecting disc frame 63, it will drive the annular bracket 61 to move synchronously through the fixed rod frame 64. Since the first roller 32 and the second roller 33 do not rotate at this time, the circular disc frame 34 on the rotating shaft body 31 will not rotate either. Then, the moving slider 36 in the sliding groove body 35 thereon will not move outside the sliding groove body 35. At this time, the relationship between the mechanical components on the circular disc frame 34 and the annular bracket 61 is as shown in the appendix Figure 7 As shown, when the annular bracket 61 moves synchronously with the connecting disc frame 63 under the action of the fixed rod frame 64, the annular bracket 61 moves from one side of the circular disc frame 34 to the other side, and the annular bracket 61 drives the square plate frame 5 to move synchronously under the action of the connecting rod frame 62; Further explanation, when the measuring frame 3 is in a static state, at this time, the fixed clamping plate 51 and the positioning clamping plate 52 are within the installation range of the column, that is, the column is located between the fixed clamping plate 51 and the positioning clamping plate 52; when the positioning disc 65 is pulled outside the measuring frame 3, the square plate frame 5 moves synchronously with the annular bracket 61 under the action of the connecting rod frame 62. At this time, the fixed clamping plate 51 and the positioning clamping plate 52 are not within the installation range of the column; Continuing from the above, when the positioning disc 65 is pulled outward from the outside of the measuring frame 3, at this time, the annular bracket 61 moves from one side of the circular disc frame 34 to the other side. Subsequently, the construction worker pulls the measuring frame 3 to make it move directionally. Since the positioning rod frame 651 in the positioning disc 65 no longer contacts the rotating rod frame 311, the rotating rod frame 311 can rotate along with the rotating shaft body 31 without being hindered. At this time, the rotating shaft body 31 can rotate. During the rotation of the rotating shaft body 31, the circular disc frame 34 will rotate synchronously with the rotating shaft body 31. Therefore, during the rotation of the circular disc frame 34, the moving slider 36 will move directionally in the sliding groove body 35 under the action of centrifugal force. During the movement, the moving slider 36 will stretch the plastic spring 37. At this time, the end of the sliding block body is located outside the sliding groove body 35, and a part of the area is located inside the sliding groove body 35. The partial area of the sliding block body located outside the sliding groove body 35 will be located on the movement track of the annular bracket 61 to hinder the reset of the annular bracket 61. Therefore, at this time, the constant force spring 67 cannot perform the reset movement, and the positioning rod frame 651 in the positioning disc 65 cannot enter the rotation range of the rotating rod frame 311. At this time, the first roller 32 and the second roller 33 can rotate. Correspondingly, the fixed clamping plate 51 and the positioning clamping plate 52 are no longer within the installation range of the column; During the movement of the measuring frame 3, the distance from the first column can be accurately understood through the scale groove 4. After reaching the appropriate position, at this time, the worker stops pulling the measuring frame 3, that is, the measuring frame 3 stops moving. The first roller 32 and the second roller 33 no longer rotate, and the rotating shaft body 31 will not drive the circular disc frame 34 to rotate. Therefore, the moving slider 36 is reset under the action of the plastic spring 37. The moving slider 36 no longer hinders the reset of the annular bracket 61, so that the annular bracket 61 performs the reset movement, that is, the positioning rod frame 651 in the positioning disc 65 returns to the rotating rod frame 311. It should be noted that in combination with the attached Figure 9As shown, if the positioning rod holder 651 is obstructed by the rotating rod holder 311 during the process of returning to the rotating rod holder 311, the measuring frame 3 can be slightly moved at this time, that is, the rotating shaft body 31 rotates under the action of the first roller 32 and the second roller 33, and the rotating rod holder 311 no longer obstructs the positioning rod holder 651, so that the positioning rod holder 651 returns to the rotating rod holder 311 to obstruct the rotation of the rotating rod holder 311. At this time, the measuring frame 3 is in a static state, while the fixed bracket and the positioning bracket will return to the installation range of the column. Since the installation position of the column is determined, the construction worker will place the column at the installation position. During this process, the column is located between the fixed clamping plate 51 and the positioning clamping plate 52, and when the column is placed, its two sides block the magnetic plate holder 55. Then, the magnetic plate holder 55 will not generate a repulsive force on the magnetic surface of the positioning clamping plate 52. At this time, the positioning clamping plate 52 will move towards the side wall of the column under the action of the return spring 522, and the rotating clamping plate 53 on the positioning clamping plate 52 also contacts the side wall of the column. When the construction worker fixes the column with welding equipment, the fixed clamping plate 51, the positioning clamping plate 52 and the rotating clamping plate 53 thereon limit the column to assist the construction worker in the installation work. After the installation is completed, the construction worker pulls the positioning disc 65 to move it outside the measuring frame 3. Then, both the positioning clamping plate 52 and the fixed clamping plate 51 leave the installation range of the column, and the rotating clamping plate 53 will contact the column. However, since the rotating clamping plate 53 is rotatably connected to the positioning clamping plate 52 and a torsion spring 54 is installed, the rotating clamping plate 53 rotates during the movement with the measuring frame 3 to leave the installation range of the column. It should be noted that when the positioning disc 65 is pulled to move it outside the measuring frame 3, the mechanical components in the measuring frame 3 repeat the above operations.
[0022] Combined with the attached Figure 1As shown, after all the vertical columns are installed, cross bars are welded to all the vertical columns. The cross bars are used to support the embedded steel pipes. Since the embedded steel pipes may need to be adjusted in angle according to the requirements of the drawings during installation, it is necessary to weld clamps at corresponding angles on the cross bars. During the welding of the clamps, it is easy to have an angular deviation due to the influence of the construction environment. If the angular deviation is too large, it will affect the installation of the embedded steel pipes. Based on this, the present invention makes the following design: A positioning frame 7 is fixedly installed at the top of one of the measuring frames 3, and a movable rod frame 71 slidably connected to its inner wall is installed inside the positioning frame 7. A buffer spring 72 is connected between the movable rod frame 71 and the inner wall of the bottom of the positioning frame 7. A plurality of clamping blocks 73 are also fixedly installed on the movable rod frame 71. One side of the clamping block 73 is an inclined surface and the other side is a right-angle surface. A clamping roller part 74 is arranged inside the positioning frame 7. The clamping roller part 74 is located on the movement trajectories of the plurality of clamping blocks 73. An extension shaft body 75 is fixedly installed on the clamping roller part 74. The end of the extension shaft body 75 penetrates through the inner wall of the positioning frame 7 and extends to the outside. A spring body 76 is connected between the extension shaft body 75 and the inner wall of the positioning frame 7. A rotating seat body 77 is installed at the top of the movable rod frame 71 and is rotatably connected to it. A rotating rod frame 78 rotatably connected to the rotating seat body 77 is installed on the rotating seat body 77. A plurality of locking sleeves 79 are also installed on the rotating rod frame 78; It should be noted that in combination with the attached Figure 2 As shown, the two shafts that the rotating seat body 77 is rotatably connected to the movable rod frame 71 and the rotating rod frame 78 are both damping rotating shafts; Furthermore, after the cross bar is installed, the staff can fix an embedded steel pipe on the locking sleeve 79. Then, use measuring equipment to mark the installation position of each embedded steel pipe on the concrete layer, that is, make a "cross" mark on the concrete layer to represent the position of the extension line of the embedded steel pipe. After the position is determined, the construction staff can pull the movable rod frame 71 to move upward. In the initial state, the movable rod frame 71 is in the lowest position. During the pulling process of the movable rod frame 71, the buffer spring 72 is in a stretched state, and the inclined surface of the clamping block 73 on it will exert a force on the clamping roller part 74, so that the clamping roller part 74 squeezes the spring body 76. At this time, the clamping roller part 74 no longer hinders the upward movement of the clamping block 73. However, when the movable rod frame 71 moves downward, the clamping roller part 74 contacts the right-angle surface of the clamping block 73. At this time, the clamping roller part 74 will hinder the downward movement of the clamping block 73, thus effectively preventing the movable rod frame 71 from moving downward under the action of gravity. When the movable rod frame 71 needs to move downward, pull the end of the extension shaft body 75 outward, so that the clamping roller part 74 squeezes the spring body 76, that is, the clamping roller part 74 is not on the movement trajectory of the clamping block 73. Then the movable rod frame 71 can move downward under the action of the buffer spring 72; When the mobile pole rack 71 is adjusted in position, the rotating seat body 77 and the rotating pole rack 78 thereon move synchronously therewith. Construction workers can adjust the position of the embedded steel pipe in the locking sleeve 79 by rotating the rotating seat body 77 and the rotating pole rack 78. After the position of the embedded steel pipe in the locking sleeve 79 is determined, construction workers can weld the hoop on the cross bar. It should be noted that the embedded steel pipe on the locking sleeve 79 is not connected to the hoop at this time. The embedded steel pipe on the locking sleeve 79 serves as a reference at this stage. Subsequently, construction workers can move the measuring frame 3. Under the action of the embedded steel pipe on the locking sleeve 79, determine the installation positions of other hoops on the cross bar. After the positions of all hoops are determined, install the embedded steel pipes on all hoops in sequence. After the embedded steel pipes are completely fixed, remove the steel frame 1 and the steel pole rack 2 from two of the columns, and then carry out the concrete pouring work.
[0023] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "include", "comprise" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or device.
[0024] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A sluice pier construction auxiliary device, characterized in that: The invention comprises a steel frame (1) mounted on one of the columns, and a steel rod frame (2) slidably connected to the inner wall of the steel frame (1), wherein the steel frame (1) is symmetrically provided with measuring frames (3), each measuring frame (3) is internally provided with a rotating shaft (31) rotatably connected to the inner wall thereof, and the rotating shaft (31) is parallelly provided with a first roller (32) and a second roller (33), wherein the first roller (32) is in contact with the surface of the steel frame (1), and the second roller (33) is in contact with the surface of the steel rod frame (2), and the surfaces of the steel frame (1) and the steel rod frame (2) are both provided with scale grooves (4), wherein the measuring frames (3) A square plate frame (5) is also provided on one side, and a fixed clamping plate (51) is fixedly installed on one side of the square plate frame (5), and a positioning clamping plate (52) slidably connected to the side wall of the square plate frame (5) is installed on the other side of the square plate frame (5). A limiting mechanism (6) for controlling the positioning clamping plate (52) to limit the installation of the column is provided in the measuring frame (3). By pulling the measuring frame (3), the square plate frame (5) drives the fixed clamping plate (51) and the positioning clamping plate (52) to move, and the column installation position is determined through the scale groove (4). The positioning clamping plate (52) and the fixed clamping plate (51) are used to limit the column during the installation process under the action of the limiting mechanism (6).
2. A sluice pier construction auxiliary device according to claim 1, characterized in that: A circular disc rack (34) is also fixedly mounted on the rotating shaft (31), and a plurality of sliding grooves (35) are arranged on the circular disc rack (34). A movable slider (36) is mounted in each of the sliding grooves (35) and is slidably connected to the inner wall thereof. A plastic spring (37) is connected between the movable slider (36) and the inner wall of the circular disc rack (34). A rolling ball (361) is also mounted on each of the movable sliders (36).
3. A sluice pier construction auxiliary device according to claim 2, characterized in that: The limiting mechanism (6) comprises an annular bracket (61) arranged inside the measuring frame (3), the annular bracket (61) being connected to the square plate frame (5) via a plurality of connecting rod frames (62), the connecting rod frames (62) being slidably connected to the inner wall of the measuring frame (3), and a connecting disc frame (63) being provided on one side of the circular disc frame (34), a plurality of fixed rod frames (64) being connected between the connecting disc frame (63) and the annular bracket (61), wherein a positioning disc (65) is also provided on a side of the measuring frame (3) away from the square plate frame (5), and the positioning disc (65) and the connecting disc frame (63) are connected via a plurality of transmission shafts (66).
4. A sluice pier construction auxiliary device according to claim 3, characterized in that: Each of the transmission shaft bodies (66) is sleeved with a constant force spring (67) for connecting the connecting disc frame (63) to the inner wall of the measuring frame (3); the inner diameter of the annular bracket (61) is greater than the outer diameter of the circular disc frame (34).
5. A sluice pier construction auxiliary device according to claim 4, characterized in that: A plurality of rotating rod frames (311) are fixedly mounted on the end of the rotating shaft body (31), and a plurality of positioning rod frames (651) are fixedly mounted inside the positioning disc (65). The positioning rod frames (651) control the motion state of the rotating shaft body (31) by limiting the rotating rod frames (311).
6. A sluice pier construction auxiliary device according to claim 1, characterized in that: A guide shaft body (521) is fixedly mounted on one side of the positioning clamping plate (52), and the guide shaft body (521) is slidably connected to the side wall of the measuring frame (3), wherein a return spring (522) is also connected between the guide shaft body (521) and the side wall of the measuring frame (3), and a rotating clamping plate (53) is also mounted on the positioning clamping plate (52) and is rotatably connected thereto, and a torsion spring (54) is also connected between the rotating clamping plate (53) and the positioning clamping plate (52), wherein a magnetic plate frame (55) is also fixedly mounted on the fixed clamping plate (51), and one side of the positioning clamping plate (52) is a magnetic surface, and the magnetic plate frame (55) generates a repulsive force on the magnetic surface of the positioning clamping plate (52).
7. A sluice pier construction auxiliary device according to claim 6, characterized in that: A positioning frame (7) is fixedly mounted on the top of one of the measuring frames (3), and a movable rod frame (71) is mounted inside the positioning frame (7) and is slidably connected to the inner wall thereof, and a buffer spring (72) is connected between the movable rod frame (71) and the inner wall at the bottom of the positioning frame (7), and a plurality of clamping blocks (73) are also fixedly mounted on the movable rod frame (71).
8. A sluice pier construction auxiliary device according to claim 7, characterized in that: A clamping roller portion (74) is provided inside the positioning frame (7), and the clamping roller portion (74) is located on the movement trajectory of the plurality of clamping blocks (73). An extension shaft (75) is fixedly mounted on the clamping roller portion (74), and an end of the extension shaft (75) passes through the inner wall of the positioning frame (7) and extends to the outside, and a spring body (76) is connected between the extension shaft (75) and the inner wall of the positioning frame (7).
9. A sluice pier construction auxiliary device according to claim 8, characterized in that: A rotating seat body (77) rotatably connected to the movable rod frame (71) is mounted on the top of the movable rod frame (71), and a rotating rod frame (78) rotatably connected to the movable rod frame (71) is mounted on the rotating seat body (77), and a plurality of locking sleeves (79) are also mounted on the rotating rod frame (78).
10. A sluice pier construction auxiliary device according to claim 7, characterized in that: The clamping block (73) has an inclined surface on one side and a right-angle surface on the other side.
Citation Information
Patent Citations
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