Steel structure module and machining system thereof
By introducing spring columns and motor-driven grinding plates into the steel structure module processing system, combined with polishing and anti-oxidation liquid treatment, the problem of easy oxidation of steel structure modules after grinding was solved, and a significant anti-oxidation effect was achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- 庄贤生
- Filing Date
- 2023-09-06
- Publication Date
- 2026-04-10
AI Technical Summary
Existing steel structure module processing systems are prone to oxidation during the grinding process and lack effective oxidation resistance.
A steel structure module and its processing system are adopted, including a spring column slidably connected to a grinding plate and a motor-driven grinding plate. Combined with polishing and anti-oxidation liquid treatment, the oxidation resistance of the steel structure module after grinding is enhanced.
Repeated grinding and polishing significantly improves the oxidation resistance of the steel structure modules, ensuring that the surface is not easily oxidized after processing.
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Figure CN121821087A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to steel structure module processing technology field, more specifically, a steel structure module and its processing system. BACKGROUND
[0002] The steel structure module and its processing system are a structure composed of steel material and a system for processing steel structure. The steel structure module and its processing system are composed of a steel structure module, an assembly and a steel structure module processing system. Because the steel structure module and its processing system have a light self-weight and simple construction, they are widely used in large-scale factory buildings, venues, super high-rise buildings and other fields. In the prior art, the steel structure module processing system can cause surface oxidation when polishing the steel structure module. Therefore, in order to solve the above problems, the present application provides a steel structure module and its processing system, which can enhance the anti-oxidation ability of the steel structure module processing system after polishing. SUMMARY
[0003] In order to overcome the shortcomings of the prior art, the present application provides a steel structure module and its processing system, which can enhance the anti-oxidation ability of the steel structure module processing system after polishing.
[0004] The technical scheme adopted by the present application to solve the technical problems is:
[0005] A steel structure module and its processing system, comprising a spring column slidingly connected to a polishing plate, the polishing plate being provided with four through holes, the lower end of the spring column being fixedly connected with a lower plate, the lower plate being provided with a motor, the lower plate being provided with four through holes, and the lower plate being slidingly connected with a supporting plate.
[0006] The through hole in the supporting plate is slidingly connected with a turntable, the turntable is fixedly connected with a connecting shaft, the lower end of the connecting shaft is fixedly connected with a curved turntable, the curved turntable is rotatably connected with a through bridge, the through bridge is slidingly connected with a baffle, and the connecting shaft is connected with the baffle through a connecting line.
[0007] The supporting plate is fixedly connected with a protrusion, and the lower end of the supporting plate is slidingly connected with two transmission belts at one end, and each transmission belt is rotatably connected with a door at the other end. BRIEF DESCRIPTION OF DRAWINGS
[0008] The present application will be further described in detail below with reference to the drawings and specific implementation methods.
[0009] Figure 1 The structure of the steel structure module processing system in the present application is shown in the figure;
[0010] Figure 2 The structure of the polishing plate in the present application is shown in the figure;
[0011] Figure 3 The structure of the baffle in the present application is shown in the figure;
[0012] Figure 4 Structure diagram of the door in the present application;
[0013] Figure 5 Structure diagram of the multi-directional connecting rod in the present application;
[0014] Figure 6 Structure diagram of the collar A and collar B in the present application;
[0015] Figure 7 Structure diagram of the steering gear in the present application;
[0016] Figure 8 Structure diagram of the semi-circular cover in the present application;
[0017] Figure 9 Structure diagram of the cutting knife and sliding knife in the present application;
[0018] Figure 10 Structure diagram of the outer plate in the present application;
[0019] Figure 11 Structure diagram of the supporting plate in the present application;
[0020] Figure 12 Structure diagram of the steel structure module in the present application. DETAILED DESCRIPTION
[0021] By observation Figures 1 to 11 An exemplary working process of increasing the oxidation resistance after polishing can be obtained according to the content shown in the figure:
[0022] A steel structure module and its processing system, comprising a polishing plate 04 slidingly connected to a spring column 06, the polishing plate 04 being provided with four through holes, the lower plate 02 being fixedly connected with the lower end of the spring column 06, the motor being arranged in the lower plate 02, the lower plate 02 being provided with four through holes, and the supporting plate 07 being slidingly connected to the lower plate 02; when the steel structure module processing system is installed and put into work, when the rough pouring of the steel structure module is completed, the polishing plate 04 slidingly connected to the outer plate 01 will be driven by the motor in the lower plate 02 to rotate downward, so that the spring on the spring column 06 is contracted, and then the polishing plate 04 fixedly connected to the spring column 06 is driven to slide downward along the outer plate 01, the polishing plate 04 is provided with a polishing piece in the circular through hole, so that the polishing plate 04 can perform rough machining and polishing treatment on the outer wall of the poured steel structure module during the downward process, and after the spring of the spring column 06 is compressed to the limit, the motor in the lower plate 02 will stop working, so that the spring column 06 moves upward, and after the polishing plate 04 returns to the top end, the motor will work again, so that the polishing plate 04 repeatedly polishes the poured piece, and after polishing, polishing and anti-oxidation liquid can also be added in the polishing plate 04 to perform anti-oxidation treatment on the processed steel structure module, so as to realize the effect of increasing anti-oxidation after polishing.
[0023] By observing Figures 1 to 11 An exemplary working process of the combination can be obtained according to the content shown in the figure:
[0024] The rotating disc 08 is slidingly connected to the through hole provided in the supporting plate 04, the connecting shaft 09 is fixedly connected to the rotating disc 08, the curved rotating disc 10 is fixedly connected to the lower end of the connecting shaft 09, the through bridge 11 is rotatably connected to the curved rotating disc 10, the baffle 12 is slidingly connected to the through bridge 11, and the connecting shaft 09 and the baffle 12 are connected through the connecting line; when the steel structure module processing system is installed and put into work, before the steel structure module is poured, the motor in the lower plate 02 will drive the rotating disc 08 to rotate in the through hole of the polishing plate 04, so that the connecting shaft 09 fixedly connected to the rotating disc 08 rotates, and the baffle 12 connected thereto slides through the sliding channel of the curved rotating disc 10 fixedly connected to the lower end of the connecting shaft 09, when the baffle 12 slides to the front of the through bridge 11 rotatably connected to the curved rotating disc 10, the through bridge 11 will be lowered by rotating, and at the same time, the front end of the through bridge 11 will slowly bend, so that the through bridge 11 is finally placed in a horizontal position, and at the same time, the front end of the through bridge 11 will be connected to the baffle sliding channel of the lower plate 02, so that the baffle 12 can smoothly enter the sliding channel under the driving of the motor, and four baffle 12 devices are arranged in the system, so that the four baffles 12 are combined into a cylindrical barrel, and the effect of combination is realized.
[0025] By observing Figures 1 to 11 An exemplary working process of the combination can be obtained according to the content shown in the figure:
[0026] The protrusion 14 is fixedly connected to the support plate 07. One end of each of the two transmission belts 13 is slidably connected to the lower end of the support plate 07. Each gate 03 is rotatably connected to the other end of one of the transmission belts 13. When the steel structure module processing system is installed and put into operation, after the rough processing of the steel mold is completed, the baffle 12 will retract under the drive of the motor, causing the support plate 07 on the lower plate 02 to move forward under the drive of the motor. When the support plate 07 moves forward, the two transmission belts 13 slidably connected to the lower end of the support plate 07 will rotate, thereby causing the gates 03 rotatably connected to the transmission belt 13 to rotate. When the support plate 07 moves to the front end of one end of the transmission belt 13, the two gates 03 will be fully opened, allowing the steel mold to move out of the processing system, thus achieving the effect of movement.
[0027] Through observation Figures 1 to 11 An exemplary locking process, as shown in the diagram, is as follows:
[0028] The push column 15 is slidably connected to the protrusion 14. Both ends of the protrusion 14 are provided with through holes. The multi-directional connecting rod 16 is fixedly connected to the push column 15, and the two extension columns 18 are fixedly connected to both ends of the multi-directional connecting rod 16. When the steel structure module processing system is installed and put into operation, when the steel mold moves to the front end under the drive of the support plate 07, the protrusion 14 fixedly connected to the front end of the support plate 07 will contact the steering block 22, causing the push column 15 to move backward. At the same time as the push column 15 moves backward, it will drive the multi-directional connecting rod 16 fixedly connected to it to move backward. The transmission device fixedly connected to both ends of the multi-directional connecting rod 16 will move forward under the drive of its movement, causing the extension column 18 fixedly connected to the other end of the transmission device to move forward. The extension column 18 will press forward against the push rod 23 slidably connected to the steering block 22 and move backward, locking the locking column into the through hole on the protrusion 14, thereby fixing the protrusion 14 and achieving the locking effect.
[0029] Through observation Figures 1 to 11 An exemplary working process for separation, based on the content shown in the figure, is as follows:
[0030] One end of the connecting rod A20 is rotatably connected to the multi-directional connecting rod 16, and the other end of the connecting rod A20 is rotatably connected to the collar A19. The collar B21 is fixedly connected to the lower end of the collar A19. When the steel structure module processing system is installed and put into operation, when the multi-directional connecting rod 16 moves backward, the connecting rod A20 at its other end will push the collar A19 at its other end to slide upward, so that the collar A19 extends out of the support plate 07 to fix the steel structure module. When the collar A19 moves upward, it will drive the collar B21 fixedly connected at its lower end to move upward, so that the collar B21 slides out of the connecting rod at the lower end of the support plate 07, so that the support plate 07 can be separated from the connecting rod, thereby achieving the separation effect.
[0031] Through observation Figures 1 to 11 An exemplary working process for steering, as shown in the diagram, is as follows:
[0032] Steering mechanism 05 is fixedly connected to the lower plate 02. A curved slide is provided inside steering mechanism 05. Steering block 22 is slidably connected inside the curved slide provided in steering mechanism 05. Push rod 23 is slidably connected to steering block 22. When the steel structure module processing system is installed and put into operation, it is connected to steering block 22 under the drive of steel structure module support plate 07 and sleeve of collar A19. After steering block 22 is connected to steel structure module, it will slide in the curved slide provided in steering mechanism 05, so that steel structure module will slide downward under the drive of steering block 22. When it slides to the bottom of the curved slide, steering block 22 will turn under the drive of motor provided in steering mechanism 05, so that the front end to be processed will rotate to the direction of processing device, thereby achieving the turning effect.
[0033] Through observation Figures 1 to 11 An exemplary working process that can be protected based on the content shown in the figure is as follows:
[0034] Two semi-circular arc covers 24 are slidably connected to the lower plate 02. Each semi-circular arc deflector 25 is rotatably connected to both ends of the semi-circular arc cover 24. When the steel structure module processing system is installed and put into operation, when the steel structure module is conveyed to the processing position, the two semi-circular arc covers 24 will slide out of the groove at the lower end of the lower plate 02 under the drive of the motor in the lower plate 02. When the two semi-circular arc covers 24 have completely slid out, the semi-circular arc deflectors 25 fixedly connected to them will rotate, causing the two semi-circular arc covers 24 to slide to both sides, exposing the processing device installed therein, thereby achieving the effect of protection.
[0035] Through observation Figures 1 to 11 An exemplary workflow for cutting, based on the content shown in the figure, is as follows:
[0036] The lower plate 02 is equipped with a circular slide rail, and two sliding columns 29 are slidably connected within the circular slide rail. A turntable 28 is fixedly connected to the two sliding columns 29. The lower plate 02 is rotatably connected to the lower end of the turntable 28. A cutting blade 26 is fixedly connected to the turntable 28, and the cutting blade 26 has a hole in it. A sliding blade 27 is slidably connected within the hole. When the steel structure module processing system is installed and put into operation, after the two semi-circular covers 24 are fully opened, the cutting blade 26 will be exposed. Driven by the motor in the lower plate 02, the turntable 28 is propelled through the lower end of the fixed... Two fixed sliding columns 29 rotate within the circular slide. As the turntable 28 rotates, the cutting blade 26 fixedly connected to it will rotate. When the turntable 28 rotates at high speed, the cutting blade 26 can cut the steel structure module. After processing a circular hole, it will continue to process forward for a while. At the same time, the sliding blade 27, which is slidably connected within the cutting blade 26, will slide out and process the steel structure module simultaneously with the cutting blade 26. Under the processing of the sliding blade 27, a cylindrical space is processed inside the steel structure module, thereby achieving the cutting effect.
[0037] Through observation Figures 1 to 11 An exemplary working process for docking, based on the content shown in the figure, is as follows:
[0038] It also includes a blocking disc 32 fixedly connected to one end of the semi-threaded rod 33, a rotating plate 30 rotatably connected to the other end of the semi-threaded rod 33, the semi-threaded rod 33 engaging with the internal threaded shaft 34 via threads, three pop-out spring pillars 36 fixedly connected to the internal threaded shaft 34, and each support plate 35 fixedly connected to one pop-out spring pillar 36. When the steel structure module processing system is installed and put into operation, the steel structure module is processed, and the other end of it will be rotatably connected to the semi-threaded rod 33. When the steel structure module is assembled, by rotating the rotating plate 30 on the steel structure module, the semi-threaded rod 33 rotates, thereby causing the internal threaded shaft 34 to rotate along the threads on the semi-threaded rod 33. When the support plate 35 slides out of the cylindrical tube 31, the three pop-out spring pillars 36 fixedly connected to the internal threaded shaft 34 will extend outward, thereby causing the support plate 35 fixedly connected to it to be inserted into the cylindrical space inside the steel structure module, thus achieving the docking effect.
Claims
1. A steel structure module and its processing system, characterized in that: It includes a spring post (06) that is slidably connected to the grinding plate (04). The grinding plate (04) has four through holes. The lower end of the spring post (06) is fixedly connected to a lower plate (02). The lower plate (02) contains a motor. The lower plate (02) has four through holes. A support plate (07) is slidably connected to the lower plate (02).
2. The steel structure module and its processing system according to claim 1, characterized in that: A turntable (08) is slidably connected to a through hole on the tray (04). A connecting shaft (09) is fixedly connected to the turntable (08). A curved turntable (10) is fixedly connected to the lower end of the connecting shaft (09). A through bridge (11) is rotatably connected to the curved turntable (10). A baffle (12) is slidably connected to the through bridge (11). The connecting shaft (09) is connected to the baffle (12) through a connecting line.
3. The steel structure module and its processing system according to claim 2, characterized in that: The tray (07) is fixedly connected to a protrusion (14), and the lower end of the tray (07) is slidably connected to one end of two transmission belts (13), and a stop (03) is rotatably connected to the other end of each transmission belt (13).
4. The steel structure module and its processing system according to claim 3, characterized in that: A push post (15) is slidably connected to the protrusion (14). A through hole is provided at both ends of the protrusion (14). A multi-directional connecting rod (16) is fixedly connected to the push post (15). An extension post (18) is fixedly connected to both ends of the multi-directional connecting rod (16).
5. The steel structure module and its processing system according to claim 4, characterized in that: One end of the connecting rod A (20) is rotatably connected to the multi-directional connecting rod (16), and the other end of the connecting rod A (20) is rotatably connected to the collar A (19). The lower end of the collar A (19) is fixedly connected to the collar B (21).
6. The steel structure module and its processing system according to claim 1, characterized in that: A steering gear (05) is fixedly connected to the lower plate (02). A curved slide is provided inside the steering gear (05). A steering block (22) is slidably connected inside the curved slide of the steering gear (05). A push rod (23) is slidably connected to the steering block (22).
7. The steel structure module and its processing system according to claim 6, characterized in that: The lower plate (02) is slidably connected to two semi-circular arc covers (24), and each semi-circular arc cover (24) is rotatably connected to a semi-circular arc steering device (25) at both ends.
8. The steel structure module and its processing system according to claim 7, characterized in that: The lower plate (02) is provided with a circular slide rail, and two sliding columns (29) are slidably connected in the circular slide rail. Both sliding columns (29) are fixedly connected to a turntable (28). The lower end of the turntable (28) is rotatably connected to the lower plate (02). A cutting blade (26) is fixedly connected to the turntable (28). The cutting blade (26) is provided with a hole, and a sliding blade (27) is slidably connected in the hole.
9. The steel structure module and its processing system according to claim 8, characterized in that: An outer plate (01) is fixedly connected to the lower plate (02).
10. The steel structure module and its processing system according to claim 9, characterized in that: It also includes a half-threaded rod (33) with a blocking disc (32) fixedly connected to one end, and a rotating plate (30) rotatably connected to the other end of the half-threaded rod (33). The half-threaded rod (33) and the internal threaded shaft (34) are engaged by threads. Three pop-out spring pillars (36) are fixedly connected to the internal threaded shaft (34), and a support plate (35) is fixedly connected to each pop-out spring pillar (36).