Steel structure embedded part forming machining device
By setting multiple sets of clamps and toothed frames on the steel structure embedded part forming and processing device, combined with positioning rail guidance and worm motor adjustment, the problem of unstable clamping of cylindrical workpieces was solved, and the stability and adaptability of the equipment were improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANJIN ZHONGLIAN STEEL STRUCTURE CO LTD
- Filing Date
- 2025-06-06
- Publication Date
- 2026-05-26
AI Technical Summary
Existing steel structure embedded part forming and processing equipment is prone to movement when clamping cylindrical workpieces, which affects the stability of the equipment.
By setting multiple clamps on the upper part of the machining disc and using the internal thread handle to drive the toothed frame to move, the locking of the movable seat is released, and its position is adjusted to fix the cylindrical workpiece. Combined with the positioning rail guide, the deformation of the positioning shaft caused by unilateral force is avoided. The orientation of the machining disc is adjusted by using a worm motor, which enhances the stability and adaptability of the equipment.
This effectively prevents the cylindrical embedded parts from shifting during processing, increases the stability and adaptability of the equipment, and reduces the processing burden on the staff.
Smart Images

Figure CN224273793U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of steel structure embedded parts, and in particular to a steel structure embedded parts forming and processing device. Background Technology
[0002] An existing patent (publication number: CN216325991U) discloses a steel structure embedded part forming and processing device. It includes a base plate, with connecting frames fixedly mounted on both sides of the top surface of the base plate. An electric slide rail is fixedly mounted on one side of each connecting frame, and a slide rod slides between the electric slide rails. A cylinder a is fixedly mounted on the top surface of the slide rod, and a welding torch is fixedly connected to the output end of cylinder a. A bidirectional lead screw is rotatably connected inside the base plate, and a bevel gear a is fixedly mounted on one end of the bidirectional lead screw. However, in this device, "a push plate is fixedly connected to the output end of cylinder b," meaning the equipment relies on the push plate on the upper part of the clamping plate to process the embedded part. When processing cylindrical workpieces, the clamping area of the push plate is small, making it prone to movement and affecting the stability of the equipment. Summary of the Invention
[0003] This utility model addresses the aforementioned shortcomings of the existing technology by providing a steel structure embedded part forming and processing device that uses multiple sets of clamps on the upper part of the processing disc to process and clamp embedded parts. When clamping cylindrical workpieces, the internal thread handle at the lower part of the toothed frame is rotated, causing the internal thread handle to move the toothed frame while simultaneously releasing the toothed frame from the first or second movable seat. The first or second movable seat is then moved to a suitable position to clamp and fix the workpiece, thereby enabling the equipment to process and clamp cylindrical embedded parts, preventing movement during processing, and thus increasing the stability of the equipment.
[0004] The objective of this utility model is achieved through the following technical solution:
[0005] A steel structure embedded part forming and processing device includes an equipment base, a frequency converter, a clamp shaft, a positioning shaft, a positioning rail, a sliding cylinder, a threaded rod, an internally threaded handle, and a guide rod. The front of the equipment base is fixedly connected to the frequency converter, the upper part of the frequency converter is fixedly connected to the handle base, the handle base is adapted to the handle, the handle base connects to the handle, the handle is inserted into the upper part of the handle base, the front of the handle is fixedly connected to a welding torch, the welding torch is connected to the frequency converter via a cable, the upper part of the equipment base is fixedly connected to an angle frame, the side of the central shaft is fixedly connected to an angle shaft, and the rear of the angle frame is fixedly connected to... The worm gear carrier is fixedly connected, the rear of the angle shaft is fixedly connected to the worm gear, the worm gear rotates inside the worm gear carrier, the side of the angle carrier is fixedly connected to the worm gear carrier, the worm gear carrier is adapted to the worm, the worm gear carrier connects to the worm, the worm rotates inside the worm gear carrier, the front of the worm gear carrier is fixedly connected to the worm motor, the output shaft of the worm motor is fixedly connected to the worm, the worm meshes with the worm gear at the lower part, the upper part of the central shaft is fixedly connected to the column, the upper part of the column is fixedly connected to the machining disc, the machining disc has a clamping shaft inside, and the front of the first movable seat and the front of the second movable seat are both fixedly connected to the positioning shaft.
[0006] The clamping shaft is adapted to the positioning shaft, the clamping shaft is connected to the positioning shaft, the positioning shaft rotates inside the clamping shaft, the side of the processing disk is fixedly connected to the positioning rail, and the rear of the first movable seat and the rear of the second movable seat are both fixedly connected to the sliding cylinder.
[0007] The positioning rail is adapted to the sliding cylinder, the positioning rail is connected to the sliding cylinder, the sliding cylinder slides on the side of the positioning rail, the lower part of the first movable seat and the lower part of the second movable seat are both fixedly connected to the threaded rod, the locking pin is inserted into the side of the threaded rod, the lower part of the processing plate has a locking groove, the locking groove is adapted to the locking pin, the locking groove is connected to the locking pin, the locking pin slides inside the locking groove, and the lower part of the locking pin is fixedly connected to the tooth frame. Beneficial effects
[0008] 1. During the use of this utility model steel structure embedded part forming and processing device, the embedded part material is processed and clamped by multiple sets of clamps on the upper part of the processing plate. When it is necessary to clamp a cylindrical workpiece, the internal thread handle at the lower part of the toothed frame is rotated, which drives the toothed frame to move. At the same time, the toothed frame releases the lock on the first or second movable seat and moves the first or second movable seat to a suitable position to clamp and fix the workpiece. This allows the equipment to process and clamp cylindrical embedded parts, avoiding movement during processing and thus increasing the stability of the equipment.
[0009] 2. During the use of this utility model steel structure embedded part forming and processing device, the position of the workpiece clamping is adjusted by rotating the first movable seat or the second movable seat, and the positioning rail on the side of the processing plate guides the first movable seat and the second movable seat to avoid deformation and loosening of the positioning shaft due to unilateral force, thereby further increasing the stability of the equipment.
[0010] 3. During the use of this utility model steel structure embedded part forming and processing device, the steel structure embedded part is supported by the processing plate on the upper part of the equipment base. During long-term processing, if it is necessary to adjust the orientation of the processing plate, the worm motor on the side of the angle frame drives the worm to rotate, which in turn drives the worm wheel on the side of the central shaft to rotate. This allows the worm wheel to drive the processing plate on the upper part of the central shaft to adjust its orientation according to the operator's position, making it easier for the operator to process the steel structure embedded part on the processing plate, reducing the operator's processing burden, and thus increasing the adaptability of the equipment. Attached Figure Description
[0011] Figure 1 This is a schematic diagram of the steel structure embedded part forming and processing device described in this utility model.
[0012] Figure 2 This is a three-dimensional assembly diagram of the frequency converter structure of the steel structure embedded part forming and processing device described in this utility model.
[0013] Figure 3 This is a partial cross-sectional schematic diagram of the angle frame structure of the steel structure embedded part forming and processing device described in this utility model.
[0014] Figure 4 This is a three-dimensional assembly diagram of an angle frame structure for a steel structure embedded part forming and processing device according to the present invention.
[0015] Figure 5 This is a partial cross-sectional schematic diagram of the processing disc structure of the steel structure embedded part forming and processing device described in this utility model.
[0016] Figure 6 This is a partial cross-sectional schematic diagram of the processing disc structure of the steel structure embedded part forming and processing device described in this utility model.
[0017] Figure 7 This is a three-dimensional assembly schematic diagram of a partial cross-section of the processing disc structure of a steel structure embedded part forming and processing device according to the present invention.
[0018] Figure 8 This is a three-dimensional assembly diagram of the tooth frame structure of the steel structure embedded part forming and processing device described in this utility model.
[0019] Figure 9 This is a three-dimensional assembly diagram of the cylinder seat structure of the steel structure embedded part forming and processing device described in this utility model. Detailed Implementation
[0020] The present invention will be further described in detail below with reference to the accompanying drawings and embodiments:
[0021] Example 1:
[0022] A steel structure embedded part forming and processing device includes an equipment base 01, a frequency converter 02, a clamp shaft 16, a positioning shaft 19, a positioning rail 20, a sliding cylinder 21, a threaded rod 22, an internally threaded handle 26, and a guide rod 29. The front part of the equipment base 01 is fixedly connected to the frequency converter 02, and the upper part of the frequency converter 02 is fixedly connected to the handle base 03. The handle base 03 is adapted to the handle 04, and the handle 04 is inserted into the upper part of the handle base 03. The front part of the handle 04 is fixed to a welding torch 05. The welding torch 05 is connected to the frequency converter 02 via a cable. The upper part of the equipment base 01 is fixedly connected to the angle frame 06. The side of the central shaft 07 is fixedly connected to the angle shaft 08. The rear of the angle frame 06 is fixedly connected to the worm gear frame 09. The rear of the angle shaft 08 is fixedly connected to the worm gear 10, which rotates inside the worm gear frame 09. The side of the angle frame 06 is fixedly connected to the worm gear frame 11. The worm gear frame 11 is adapted to the worm 12, and the worm gear frame 11 connects to the worm 12. The worm 12 rotates inside the worm gear frame 11. The front part of 11 is fixedly connected to the worm motor 13. The output shaft of the worm motor 13 is fixedly connected to the worm 12. The worm 12 meshes with the worm wheel 10 at the lower part. The upper part of the central shaft 07 is fixedly connected to the column 14. The upper part of the column 14 is fixedly connected to the processing plate 15. During the use of the steel structure embedded part forming and processing device, the steel structure embedded part is supported by the processing plate 15 on the upper part of the equipment base 01. During long-term processing, if it is necessary to adjust the orientation of the processing plate 15, the worm motor 13 on the side of the angle bracket 06 is used. The worm gear 12 is driven to rotate, which in turn drives the worm wheel 10 on the side of the central shaft 07 to rotate. This causes the worm wheel 10 to drive the machining disk 15 on the upper part of the central shaft 07 to adjust its orientation according to the operator's position. This facilitates the operator's machining of the steel structure embedded parts on the upper part of the machining disk 15, reduces the operator's machining burden, and increases the adaptability of the equipment. The machining disk 15 has a clamping shaft 16 inside. The front parts of the first movable seat 17 and the second movable seat 18 are both fixedly connected to the positioning shaft 19.
[0023] Example 2:
[0024] The clamping shaft 16 of this utility model is adapted to the positioning shaft 19. The clamping shaft 16 is connected to the positioning shaft 19, and the positioning shaft 19 rotates inside the clamping shaft 16. The side of the processing disk 15 is fixedly connected to the positioning rail 20. The rear of the first movable seat 17 and the rear of the second movable seat 18 are both fixedly connected to the sliding cylinder 21.
[0025] Example 3:
[0026] The positioning rail 20 of this utility model is adapted to the sliding cylinder 21. The positioning rail 20 is connected to the sliding cylinder 21, and the sliding cylinder 21 slides on the side of the positioning rail 20. During the use of the steel structure embedded part forming and processing device, the position of the workpiece clamping is adjusted by rotating the first movable seat 17 or the second movable seat 18, and the positioning rail 20 on the side of the processing plate 15 guides the first movable seat 17 and the second movable seat 18 to avoid deformation and loosening of the positioning shaft 19 due to unilateral force, thereby further increasing the stability of the equipment. The lower part of the first movable seat 17 and the lower part of the second movable seat 18 are both fixedly connected to the threaded rod 22. The locking pin 23 is inserted into the side of the threaded rod 22. The lower part of the processing plate 15 has a locking groove 24, which is adapted to the locking pin 23. The locking groove 24 is connected to the locking pin 23, and the locking pin 23 slides inside the locking groove 24. The lower part of the locking pin 23 is fixedly connected to the tooth frame 25.
[0027] Example 4:
[0028] The internal thread handle 26 of this utility model is threadedly connected to the lower part of the threaded rod 22. During the use of the steel structure embedded part forming and processing device, the embedded part material is processed and clamped by multiple sets of clamps 32 on the upper part of the processing plate 15. When it is necessary to clamp a cylindrical workpiece, the internal thread handle 26 at the lower part of the toothed frame 25 is rotated, so that the internal thread handle 26 drives the toothed frame 25 to move. At the same time, the toothed frame 25 releases the lock on the first movable seat 17 or the second movable seat 18, and moves the first movable seat 17 or the second movable seat 18 to a suitable position to clamp and fix the workpiece. This allows the equipment to process and clamp cylindrical embedded parts, avoiding movement during processing, thereby increasing the stability of the equipment. The toothed frame 25 is pressed against the lower part of the processing plate 15 by the internal thread handle 26. The rear part of the processing plate 15 is fixedly connected to the positioning seat 27. The upper parts of the first movable seat 17, the second movable seat 18, and the positioning seat 27 are all fixedly connected to the cylinder seat 28.
[0029] Example 5:
[0030] The cylinder seat 28 of this utility model is adapted to the guide rod 29. The cylinder seat 28 is connected to the guide rod 29. The guide rod 29 slides on the side of the cylinder seat 28. The front part of the cylinder seat 28 is fixedly connected to the cylinder 30. The side of the clamp seat 31 is fixedly connected to the guide rod 29. The front part of the cylinder 30 is fixedly connected to the clamp seat 31. The front part of the clamp seat 31 has a clamp 32.
[0031] Example 6:
[0032] Installation steps of this utility model: Fix the front of the equipment base 01 to the frequency converter 02; fix the upper part of the frequency converter 02 to the handle base 03; insert the handle 04 into the upper part of the handle base 03; fix the front of the handle 04 to the welding torch 05; connect the welding torch 05 to the frequency converter 02 via a cable; fix the upper part of the equipment base 01 to the angle bracket 06; fix the side of the central shaft 07 to the angle shaft 08; fix the rear of the angle bracket 06 to the worm gear bracket 09; and fix the rear of the angle shaft 08 to the worm gear 10. The connection is as follows: The worm gear 10 is rotatably connected inside the worm gear holder 09; the side of the angle bracket 06 is fixedly connected to the worm gear holder 11; the worm 12 rotates inside the worm gear holder 11; the front of the worm gear holder 11 is fixedly connected to the worm motor 13; the output shaft of the worm motor 13 is fixedly connected to the worm 12; the worm 12 meshes with the lower part of the worm gear 10; the upper part of the central shaft 07 is fixedly connected to the column 14; the upper part of the column 14 is fixedly connected to the processing plate 15; the front parts of the first movable seat 17 and the front parts of the second movable seat 18 are both connected to the positioning shaft 19. A fixed connection is established, with the positioning shaft 19 rotating inside the clamping shaft 16. The side of the machining disc 15 is fixedly connected to the positioning rail 20. The rear parts of both the first movable seat 17 and the second movable seat 18 are fixedly connected to the sliding cylinder 21. The sliding cylinder 21 slides along the side of the positioning rail 20. The lower parts of both the first movable seat 17 and the second movable seat 18 are fixedly connected to the threaded rod 22. The locking pin 23 is inserted into the side of the threaded rod 22 and slides inside the locking groove 24. The lower part of the locking pin 23 is fixedly connected to the toothed frame 25. The internal thread... The handle 26 is threaded to the lower part of the threaded rod 22. The toothed frame 25 is pressed against the lower part of the processing plate 15 through the internal thread handle 26. The rear part of the processing plate 15 is fixedly connected to the positioning seat 27. The upper parts of the first movable seat 17, the upper parts of the second movable seat 18, and the upper parts of the positioning seat 27 are all fixedly connected to the cylinder seat 28. The guide rod 29 slides on the side of the cylinder seat 28. The front part of the cylinder seat 28 is fixedly connected to the cylinder 30. The side of the clamp seat 31 is fixedly connected to the guide rod 29. The front part of the cylinder 30 is fixedly connected to the clamp seat 31.
[0033] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the technical principles of the present utility model, and these improvements and modifications should also be considered within the protection scope of the present utility model.
Claims
1. A steel structure embedded part forming and processing device, characterized in that: The equipment includes a base (01), a frequency converter (02), a clamp shaft (16), a positioning shaft (19), a positioning rail (20), a sliding cylinder (21), a threaded rod (22), an internally threaded handle (26), and a guide rod (29). The front of the base (01) is fixedly connected to the frequency converter (02), and the upper part of the frequency converter (02) is fixedly connected to the handle base (03). The handle base (03) is adapted to the handle (04), and the handle base (03) is connected to the handle (04). The handle (04) is inserted into the upper part of the handle base (03), and the front of the handle (04) is fixedly connected to the welding torch (05). (05) Connected to the frequency converter (02) via cable, the upper part of the equipment base (01) is fixedly connected to the angle frame (06), the side of the central shaft (07) is fixedly connected to the angle shaft (08), the rear part of the angle frame (06) is fixedly connected to the worm gear frame (09), the rear part of the angle shaft (08) is fixedly connected to the worm gear (10), the worm gear (10) rotates inside the worm gear frame (09), the side of the angle frame (06) is fixedly connected to the worm frame (11), the worm frame (11) is adapted to the worm (12), the worm frame (11) is connected to the worm (12), and the worm (12) rotates inside the worm frame (11).
2. The steel structure embedded part forming and processing device according to claim 1, characterized in that: The front part of the worm gear frame (11) is fixedly connected to the worm motor (13), the output shaft of the worm motor (13) is fixedly connected to the worm (12), the worm (12) meshes with the worm wheel (10) at the bottom, the upper part of the central shaft (07) is fixedly connected to the column (14), the upper part of the column (14) is fixedly connected to the processing disk (15), the processing disk (15) has a clamping shaft (16) inside, the front part of the first movable seat (17) and the front part of the second movable seat (18) are both fixedly connected to the positioning shaft (19); the clamping shaft (16) is adapted to the positioning shaft (19), the clamping shaft (16) is connected to the positioning shaft (19), the positioning shaft (19) rotates inside the clamping shaft (16), the side part of the processing disk (15) is fixedly connected to the positioning rail (20), the rear part of the first movable seat (17) and the rear part of the second movable seat (18) are both fixedly connected to the sliding cylinder (21).
3. The steel structure embedded part forming and processing device according to claim 2, characterized in that: The positioning rail (20) is adapted to the sliding cylinder (21). The positioning rail (20) is connected to the sliding cylinder (21). The sliding cylinder (21) slides on the side of the positioning rail (20). The lower part of the first movable seat (17) and the lower part of the second movable seat (18) are both fixedly connected to the threaded rod (22). The locking pin (23) is inserted into the side of the threaded rod (22). The lower part of the processing disc (15) has a slot (24). The slot (24) is adapted to the locking pin (23). The slot (24) is connected to the locking pin (23). The locking pin (23) slides inside the slot (24). The lower part of the locking pin (23) is fixedly connected to the tooth frame (25).
4. The steel structure embedded part forming and processing device according to claim 3, characterized in that: The internal thread handle (26) is threaded to the lower part of the threaded rod (22). The tooth frame (25) is pressed against the lower part of the processing plate (15) through the internal thread handle (26). The rear part of the processing plate (15) is fixedly connected to the positioning seat (27). The upper part of the first movable seat (17), the upper part of the second movable seat (18), and the upper part of the positioning seat (27) are all fixedly connected to the cylinder seat (28).
5. The steel structure embedded part forming and processing device according to claim 1, characterized in that: The cylinder seat (28) is adapted to the guide rod (29). The cylinder seat (28) is connected to the guide rod (29). The guide rod (29) slides on the side of the cylinder seat (28). The front of the cylinder seat (28) is fixedly connected to the cylinder (30). The side of the clamp seat (31) is fixedly connected to the guide rod (29). The front of the cylinder (30) is fixedly connected to the clamp seat (31). The front of the clamp seat (31) has a clamp (32).