Reinforcement cage machining platform for concrete pole manufacturing
By introducing a clamping plate and T-slot structure into the steel cage processing platform for cement pole manufacturing, the problem of sliding plate detachment was solved, achieving stability and convenience in steel bar processing and improving processing efficiency.
Patent Information
- Application Number
- CN202520955726.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2026-04-07
- Estimated Expiration
- 2035-05-15
AI Technical Summary
In existing steel reinforcement cage processing platforms for cement pole manufacturing, the sliding plate lacks a positioning structure at the contact point with the insertion pole, which makes the sliding plate prone to falling off, affecting the stability and continuity of steel reinforcement processing.
A structure including a retaining plate and a T-slot is designed. The retaining plate fixes and releases the second support plate through a rotating plate and a sliding rod. The T-slot is used to guide the sliding plate and ensure the stability of the sliding plate during sliding.
It improves the convenience and stability of steel bar processing, reduces the risk of sliding plate detachment, and ensures the continuity and efficiency of steel cage processing.
Smart Images

Figure CN224087859U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to the field of steel reinforcement cage processing, and concretely relates to a steel reinforcement cage processing platform for cement pole manufacturing. BACKGROUND
[0002] The steel reinforcement cage mainly plays a role in stress with the longitudinal steel of the column, mainly plays a role in tensile resistance, the compressive strength of the concrete is high but the tensile strength is very low. The pile body concrete is constrained, so that it can bear certain axial tension, and there is a cylindrical steel reinforcement cage in the production of the steel reinforcement cage, a plurality of steels are surrounded to form a cylinder in the production process of the cylindrical steel reinforcement cage, and then the staff rotates the steel to perform full-angle welding.
[0003] The patent application with the announcement number CN221209718U discloses a steel reinforcement cage processing platform for cement pole manufacturing, and the specification discloses in paragraph 0029 that when the equipment is used, the distance between the first support shell and the second support shell is adjusted through the cooperation of the sliding plate and the sliding rail, the distance between the first rotating shaft and the second rotating shaft is also adjusted, then the first support shell is positioned by inserting the rod into the insertion hole, the first rotating shaft and the second rotating shaft are positioned through the cooperation of the second screw rod and the nut, the above operation guarantees the stability of the equipment during operation, welding operation can be performed on steels of different lengths, the application range of the equipment is improved, the applicability is enhanced, the rotating shaft is driven by the motor, the rotating shaft drives the rotation of the support frame, so that the steel can be welded in all directions, the steel is positioned through the cooperation of the first screw rod and the steel positioning ring, the service life of the first screw rod is relatively long, in addition, the first screw rod can be completely taken out from the steel positioning ring, so that the replacement of the steel positioning ring can be conveniently completed, and the maintainability of the equipment is improved.
[0004] However, in actual application, the sliding plate is clamped and matched on the upper side of the bottom plate under the action of one end of the rod, the contact position of the rod and the sliding plate is not provided with a positioning structure, one end of the rod is easy to slide out from the inside of the sliding plate and the insertion hole, the sliding plate is easy to fall off from the side of the sliding rail, and the steel body cannot be processed.
[0005] Therefore, the steel reinforcement cage processing platform for cement pole manufacturing is provided to solve the above problems. UTILITY MODEL CONTENTS
[0006] The utility model overcomes the defects of the prior art and provides a steel reinforcement cage processing platform for cement pole manufacturing.
[0007] To solve the above technical problems, the basic idea of the technical scheme of the utility model is as follows:
[0008] A steel cage processing platform for manufacturing cement poles includes a base plate, a first support plate fixedly fitted on the upper side of the base plate, a rotating disk rotatably fitted on one side of the first support plate, and a plurality of steel bar bodies snapped into one side of the rotating disk.
[0009] A second support plate is slidably fitted on the upper side of the base plate. Fixed blocks are fixedly fitted on both sides of the second support plate. A sliding rod is elastically and slidably fitted on one side of the fixed block. A locking plate is fixedly fitted at the lower end of the sliding rod. One end of the locking plate is engaged with the base plate. A rotating plate is elastically and rotatably fitted at the bottom of the fixed block. The rotating plate is located inside the sliding rod.
[0010] Optionally, a fixing plate is fixedly fitted to the upper side of the base plate, the bottom of the first support plate is fixedly fitted to the upper side of the fixing plate, a first groove is provided on one side of the first support plate, and the rotating disk is rotatably fitted inside the first groove.
[0011] Optionally, a fixing column is fixedly fitted to one side of the first support plate, a servo motor is fixedly fitted to one side of the fixing column, one side of the rotating disk is fixedly fitted to the output end of the servo motor, and multiple positioning cylinders are evenly distributed and fixedly fitted to the other side of the rotating disk, with one end of the reinforcing bar body located inside the positioning cylinder.
[0012] Optionally, two T-shaped plates are fixedly fitted on the upper side of the base plate, and a sliding plate is fixedly fitted on the bottom of the second support plate. Two T-shaped grooves are opened at the bottom of the sliding plate, and the T-shaped plates are located inside the T-shaped grooves. First guide grooves are opened at both ends of the sliding plate, and the clamping plate is located inside the first guide groove. A second groove is opened on one side of the second support plate.
[0013] Optionally, a guide hole is provided on one side of the fixing block, and the sliding rod is slidably fitted inside the guide hole.
[0014] Optionally, a sliding disc is fixedly fitted to the upper end of the sliding rod, and a spring is fixedly fitted to one side of the sliding disc and one side of the fixed block, with the spring sleeved around the periphery of the sliding rod.
[0015] Optionally, the bottom of the fixing block is fixedly fitted with two connecting plates, one end of the connecting plate is provided with a through hole, the first end of the rotating plate is fixedly fitted with a rotating rod, one end of the rotating rod is located inside the through hole, and a torsion spring is fixedly fitted between one side of the connecting plate and one side of the rotating plate, the torsion spring being sleeved on the periphery of the rotating rod.
[0016] Optionally, multiple slots are provided on both sides of the base plate, one end of the card plate engages with the slot, a second guide groove is provided on one side of the sliding rod, and the second end of the rotating plate is located inside the second guide groove.
[0017] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art. Of course, any product implementing the present invention does not necessarily need to achieve all of the following advantages at the same time:
[0018] The clamping plate is designed so that, under the action of the worker, one end of the clamping plate can slide in and out of the bottom plate through the rotating rod. The clamping plate can also fix and release the second support plate, reducing the problem of the second support plate falling off the upper side of the bottom plate and making the processing of the steel bar more convenient.
[0019] The T-shaped groove is designed to allow the sliding plate to slide around the periphery of the T-shaped plate under the action of the second support plate. The T-shaped groove also guides the sliding direction of the sliding plate, reducing the problem of tilting during sliding and improving the stability of the sliding plate during sliding.
[0020] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0021] The accompanying drawings described below are merely some embodiments. Those skilled in the art can obtain other drawings based on these drawings without any creative effort.
[0022] In the picture:
[0023] Figure 1 This is a three-dimensional structural diagram of an embodiment of the present utility model;
[0024] Figure 2 This is a bottom view of an embodiment of the present invention.
[0025] Figure 3 This is a schematic diagram of the second support plate structure according to an embodiment of the present invention;
[0026] Figure 4 This is a schematic diagram of the fixing block structure according to an embodiment of the present invention.
[0027] The attached diagram lists the components represented by each number as follows:
[0028] Base plate 100, fixing plate 101, first support plate 102, first groove 103, fixing column 104, servo motor 105, rotating disk 106, positioning cylinder 107, steel bar body 108, T-shaped plate 109, slot 110, sliding plate 200, T-shaped groove 201, first guide groove 202, second support plate 203, second groove 204, fixing block 205, guide hole 206, sliding rod 207, second guide groove 208, clamping plate 209, sliding disk 210, spring 211, connecting plate 212, through hole 213, rotating rod 214, rotating plate 215, torsion spring 216.
[0029] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the present invention in any way, but rather to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Implementation
[0030] The present invention will now be described in further detail with reference to the accompanying drawings.
[0031] Please see Figures 1-4 As shown, this embodiment provides a steel cage processing platform for manufacturing cement poles, including a base plate 100, a first support plate 102 fixedly fitted on the upper side of the base plate 100, a rotating disk 106 rotatably fitted on one side of the first support plate 102, and a plurality of steel bar bodies 108 snapped onto one side of the rotating disk 106.
[0032] A second support plate 203 is slidably fitted on the upper side of the base plate 100. Fixing blocks 205 are fixedly fitted on both sides of the second support plate 203. A sliding rod 207 is elastically and slidably fitted on one side of the fixing block 205. A locking plate 209 is fixedly fitted at the lower end of the sliding rod 207. One end of the locking plate 209 is engaged with the base plate 100. A rotating plate 215 is elastically and rotatably fitted at the bottom of the fixing block 205. The rotating plate 215 is located inside the sliding rod 207.
[0033] Working principle:
[0034] First, rotate the rotating plate 215. The rotating plate 215 drives the sliding rod 207 to slide inside the fixed block 205. The sliding rod 207 drives the clamping plate 209 to slide from inside the base plate 100. One end of the clamping plate 209 releases its positioning on the base plate 100. Then, slide the second support plate 203. The second support plate 203 drives the sliding rod 207 to slide through the fixed block 205. The sliding rod 207 drives the clamping plate 209 to slide. The second support plate 203 slides to the appropriate position. Then, release the sliding rod 207. The sliding rod 207 returns to its original position under the action of elasticity. One end of the sliding rod 207 drives one end of the clamping plate 209 to slide into the interior of the base plate 100. The steel bar body 108 can then be processed through the first support plate 102 and the second support plate 203, thereby completing the processing of the steel bar body 108.
[0035] The clamping plate 209 is designed so that the rotating plate 215 can be driven by the rotating rod 214 to slide one end of the clamping plate 209 into and out of the bottom plate 100 under the action of the worker. The clamping plate 209 can also fix and release the second support plate 203, reducing the problem of the second support plate 203 falling off the top of the bottom plate 100, and making the processing of the steel bar body 108 more convenient.
[0036] To make the sliding plate 200 more stable during sliding on one side of the base plate 100 in this embodiment, improvements are made through the following structure, such as... Figures 1-4As shown, in this embodiment, a fixing plate 101 is fixedly fitted to the upper side of the base plate 100, and the bottom of the first support plate 102 is fixedly fitted to the upper side of the fixing plate 101. A first groove 103 is provided on one side of the first support plate 102, and a rotating disk 106 is rotatably fitted inside the first groove 103. A fixing post 104 is fixedly fitted to one side of the first support plate 102, and a servo motor 105 is fixedly fitted to one side of the fixing post 104. One side of the rotating disk 106 is fixedly fitted to the output end of the servo motor 105. On the other side of 106, multiple positioning cylinders 107 are evenly distributed and fixedly fitted. One end of the reinforcing bar body 108 is located inside the positioning cylinder 107. Two T-shaped plates 109 are fixedly fitted on the upper side of the bottom plate 100. A sliding plate 200 is fixedly fitted on the bottom of the second support plate 203. Two T-shaped grooves 201 are opened at the bottom of the sliding plate 200. The T-shaped plates 109 are located inside the T-shaped grooves 201. First guide grooves 202 are opened at both ends of the sliding plate 200. The clamping plate 209 is located inside the first guide groove 202. The second support plate 203... A second groove 204 is provided on one side of the support plate 203, and a guide hole 206 is provided on one side of the fixing block 205. The sliding rod 207 is slidably fitted inside the guide hole 206. A sliding disk 210 is fixedly fitted to the upper end of the sliding rod 207. A spring 211 is fixedly fitted to one side of the sliding disk 210 and one side of the fixing block 205. The spring 211 is sleeved on the periphery of the sliding rod 207. Two connecting plates 212 are fixedly fitted to the bottom of the fixing block 205. A through hole 213 is provided at one end of the connecting plate 212. A rotating rod 214 is fixedly fitted to the first end of the plate 215. One end of the rotating rod 214 is located inside the through hole 213. A torsion spring 216 is fixedly fitted between one side of the connecting plate 212 and one side of the rotating plate 215. The torsion spring 216 is sleeved on the periphery of the rotating rod 214. Multiple slots 110 are provided on both sides of the base plate 100. One end of the locking plate 209 is engaged with the slot 110. A second guide groove 208 is provided on one side of the sliding rod 207. The second end of the rotating plate 215 is located inside the second guide groove 208.
[0037] In this embodiment, the rotating plate 215 is first rotated. The rotating plate 215 drives the sliding rod 207 to slide inside the guide hole 206 through the second guide groove 208. The sliding rod 207 drives the sliding disk 210 to slide upward and stretch the spring 211. One end of the sliding rod 207 drives one end of the locking plate 209 to slide out from inside the locking groove 110, thereby releasing the positioning of the second support plate 203. Then the second support plate 203 is slid. The second support plate 203 slides around the T-shaped plate 109 through the T-shaped groove 201, thereby completing the sliding of the second support plate 203.
[0038] The T-shaped groove 201 is provided so that the sliding plate 200 slides on the periphery of the T-shaped plate 109 under the action of the second support plate 203. The T-shaped groove 201 also guides the sliding direction of the sliding plate 200, reducing the problem of tilting of the sliding plate 200 during sliding and improving the stability of the sliding plate 200 during sliding.
[0039] This utility model is not limited to the above-described embodiments. Anyone should know that structural changes made under the guidance of this utility model, and any technical solutions that are the same as or similar to this utility model, fall within the protection scope of this utility model. Technical aspects, shapes, and structures not described in detail in this utility model are all publicly known technologies.
Claims
1. A steel cage processing platform for manufacturing cement poles, characterized in that, include: A base plate (100) is fixedly fitted with a first support plate (102) on its upper side. A rotating disk (106) is rotatably fitted on one side of the first support plate (102). A plurality of steel bar bodies (108) are snapped onto one side of the rotating disk (106). A second support plate (203) is slidably fitted on the upper side of the base plate (100). Fixing blocks (205) are fixedly fitted on both sides of the second support plate (203). A sliding rod (207) is elastically and slidably fitted on one side of the fixing block (205). A locking plate (209) is fixedly fitted at the lower end of the sliding rod (207). One end of the locking plate (209) is engaged with the base plate (100). A rotating plate (215) is elastically and rotatably fitted at the bottom of the fixing block (205). The rotating plate (215) is located inside the sliding rod (207).
2. The steel cage processing platform for manufacturing cement poles according to claim 1, characterized in that, A fixing plate (101) is fixedly fitted on the upper side of the base plate (100), and the bottom of the first support plate (102) is fixedly fitted on the upper side of the fixing plate (101). A first groove (103) is provided on one side of the first support plate (102), and the rotating disk (106) is rotatably fitted inside the first groove (103).
3. The steel reinforcement cage processing platform for manufacturing cement poles according to claim 1, characterized in that, A fixed column (104) is fixedly fitted on one side of the first support plate (102), a servo motor (105) is fixedly fitted on one side of the fixed column (104), a rotating disk (106) is fixedly fitted on one side of the output end of the servo motor (105), and a plurality of positioning cylinders (107) are evenly distributed and fixedly fitted on the other side of the rotating disk (106). One end of the steel bar body (108) is located inside the positioning cylinder (107).
4. The steel reinforcement cage processing platform for manufacturing cement poles according to claim 1, characterized in that, Two T-shaped plates (109) are fixedly fitted on the upper side of the base plate (100), and a sliding plate (200) is fixedly fitted on the bottom of the second support plate (203). Two T-shaped grooves (201) are opened at the bottom of the sliding plate (200), and the T-shaped plates (109) are located inside the T-shaped grooves (201). A first guide groove (202) is opened at both ends of the sliding plate (200), and the clamping plate (209) is located inside the first guide groove (202). A second groove (204) is opened on one side of the second support plate (203).
5. The steel reinforcement cage processing platform for manufacturing cement poles according to claim 1, characterized in that, A guide hole (206) is provided on one side of the fixing block (205), and the sliding rod (207) is slidably fitted inside the guide hole (206).
6. The steel reinforcement cage processing platform for manufacturing cement poles according to claim 1, characterized in that, The upper end of the sliding rod (207) is fixedly fitted with a sliding disk (210), and a spring (211) is fixedly fitted on one side of the sliding disk (210) and one side of the fixed block (205). The spring (211) is sleeved on the periphery of the sliding rod (207).
7. The steel reinforcement cage processing platform for manufacturing cement poles according to claim 1, characterized in that, The bottom of the fixed block (205) is fixedly fitted with two connecting plates (212). One end of the connecting plate (212) is provided with a through hole (213). The first end of the rotating plate (215) is fixedly fitted with a rotating rod (214). One end of the rotating rod (214) is located inside the through hole (213). A torsion spring (216) is fixedly fitted between one side of the connecting plate (212) and one side of the rotating plate (215). The torsion spring (216) is sleeved on the periphery of the rotating rod (214).
8. The steel reinforcement cage processing platform for manufacturing cement poles according to claim 1, characterized in that, Multiple slots (110) are provided on both sides of the base plate (100). One end of the card plate (209) is engaged with the slot (110). A second guide groove (208) is provided on one side of the sliding rod (207). The second end of the rotating plate (215) is located inside the second guide groove (208).
Citation Information
Patent Citations
Reinforcement cage machining platform for concrete pole manufacturing
CN221209718U