Rotating mechanism for polishing titanium table gold tube
By designing a rotating mechanism for titanium metal tubes, automatic feeding and stable clamping of titanium alloy tubes are realized, which solves the problem of manual support and adjustment in the prior art, and improves grinding efficiency and accuracy.
Patent Information
- Application Number
- CN202421731080.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-07-22
AI Technical Summary
The existing titanium metal pipe grinding technology requires manual support and adjustment of titanium alloy pipes, which leads to troublesome and inefficient grinding process.
A rotating mechanism for grinding a titanium alloy tube is designed, and the automatic feeding method is adopted to realize automatic pushing and stable clamping of titanium alloy tubes through the workbench, positioning plate, placement shaft, bearing, adjustment plate and driving motor.
Automatic polishing of titanium alloy tubes is realized, reducing manual operation, improving grinding efficiency and accuracy, and avoiding the problem of lifting caused by gravity sagging of titanium alloy tubes.
Smart Images

Figure CN222891064U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of titanium alloy tube processing, in particular to a rotating mechanism for polishing titanium alloy tubes. Background Art
[0002] The rotary mechanism used for grinding titanium alloy tubes generally refers to the rotary tools or equipment used in metal processing. When grinding titanium alloy tubes, rotary grinding equipment is usually used. Its basic working principle is to grind and polish the surface of the titanium tube by rotating the grinding tool to achieve the required accuracy and surface smoothness.
[0003] In the prior art, titanium alloy tube grinding is generally performed by manually placing a titanium alloy tube on one side surface of two grinding wheels. The grinding wheels rotate to contact the titanium alloy tube and drive the titanium alloy tube to rotate, thereby achieving a grinding effect through high-speed rotation, making the surface of the titanium alloy tube smooth. However, since the titanium alloy tube is generally placed manually during the prior art grinding, the grinder needs to manually support the titanium alloy tube to enter between the grinding wheels when grinding a longer titanium alloy tube. In addition, in order to prevent the titanium alloy tube from sagging due to gravity and warping during the grinding process, it is necessary to manually adjust or support the titanium alloy tube, which makes the grinding process more troublesome. Utility Model Content
[0004] The utility model provides a rotating mechanism for grinding titanium alloy tubes, which has the advantage of automatic feeding, so as to solve the problem that in the existing grinding of titanium alloy tubes, the titanium alloy tubes are generally placed manually, resulting in the need for manual support of the titanium alloy tube to enter between the grinding wheels when the grinder grinds a titanium alloy tube with a long length, and in order to prevent the titanium alloy tube from sagging due to gravity and causing it to warp during the grinding process, it is necessary to manually adjust or support the titanium alloy tube, resulting in a more troublesome grinding process.
[0005] In order to achieve the purpose of automatic feeding, the utility model provides the following technical solutions: a rotating mechanism for titanium alloy tube grinding, comprising a workbench and a positioning plate, the positioning plate is installed on the top surface of the workbench, a placement shaft is installed on one side surface of the positioning plate, a bearing is installed on the outer surface of the placement shaft, a first adjusting plate is installed on the outer surface of the bearing, a second adjusting plate is installed on one side surface of the first adjusting plate, a fixing bolt is installed on the inner wall of the second adjusting plate, a driving motor is installed on one side surface of the second adjusting plate, a rubber wheel is installed on one side surface of the second adjusting plate, a pushing assembly is installed on one side surface of the workbench, and a control assembly is installed on one side surface of the positioning plate.
[0006] As a preferred technical solution of the utility model, there are two positioning plates, and the two positioning plates are equidistantly distributed on the top surface of the workbench. There are two placement shafts, and the two ends of the two placement shafts are movably and rotatably connected to the two positioning plates. Two bearings are installed on the outer surface of each bearing, and the inner wall of the bearing is movably and rotatably connected to the outer surface of the placement shaft.
[0007] As a preferred technical solution of the utility model, a first adjustment plate is correspondingly distributed on the outer surface of each bearing, a second adjustment plate is correspondingly distributed on one side surface of each first adjustment plate, a fixing bolt is correspondingly distributed on the inner wall of each second adjustment plate, the second adjustment plates are movably and rotatably connected to each other, a rubber wheel is correspondingly distributed on one side surface of every two second adjustment plates that movably and rotatably rotate together, a side surface of the drive motor is fixedly connected to a side surface of one of its adjustment plates, and the output end of the drive motor is fixedly connected to one end of one of its rubber wheels.
[0008] As a preferred technical solution of the utility model, the pushing assembly includes a driving motor, a screw rod is installed on one side surface of the positioning plate, a ball nut is installed on the outer surface of the screw rod, a push plate is installed on the outer surface of the ball nut, and the driving motor is installed on one side surface of the positioning plate.
[0009] As a preferred technical solution of the utility model, the output end of the drive motor is fixedly connected to one end of the screw rod, the screw rod is movably and rotatably connected to the positioning plate, and the inner wall of the ball nut is movably and rotatably connected to the outer surface of the screw rod.
[0010] As a preferred technical solution of the utility model, the control component includes a cylinder, a toothed plate is installed on one side surface of the cylinder, a gear is also installed on the surface of the bearing, and the cylinder is installed on one side surface of the positioning plate.
[0011] As a preferred technical solution of the utility model, there are two tooth plates, which are equidistantly distributed on one side and the other side of the cylinder, and there are two gears, which are fixedly connected to two bearings, and the gears and tooth plates are meshed with each other.
[0012] Compared with the prior art, the utility model provides a rotating mechanism for polishing titanium alloy tubes, which has the following beneficial effects:
[0013] The rotating mechanism for grinding the titanium alloy tube has a ball nut that drives the push plate installed on its outer surface to move. At this time, the moving push plate pushes the titanium alloy tube to move on the surface of the placement shaft, so that the titanium alloy tube enters the grinder, thereby realizing the grinding of the titanium alloy tube, thereby compensating for the existing problem that the titanium alloy tube is generally placed manually when grinding the titanium alloy tube, resulting in the need for manual support of the titanium alloy tube to enter between the grinding wheels when the grinder grinds a longer titanium alloy tube, and in order to prevent the titanium alloy tube from sagging due to gravity and causing it to warp during the grinding process, it is necessary to manually adjust or support the titanium alloy tube, resulting in a more troublesome grinding process. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 This is a schematic diagram of the external structure of the utility model;
[0015] Figure 2 This is a schematic diagram of the external structure of the utility model from another angle;
[0016] Figure 3 This is a schematic diagram of the internal structure of the utility model;
[0017] Figure 4 This is a schematic diagram of the internal structure of the utility model from another angle;
[0018] Figure 5 The utility model provides Figure 4 Enlarged schematic diagram of the middle part of the structure.
[0019] In the figure: 1. workbench; 2. positioning plate; 3. placement shaft; 4. bearing; 5. first adjustment plate; 6. second adjustment plate; 7. fixing bolt; 8. drive motor; 9. rubber wheel; 10. drive motor; 11. ball nut; 12. push plate; 13. cylinder; 14. tooth plate; 15. gear; 16. screw rod. DETAILED DESCRIPTION
[0020] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model. Embodiment 1
[0021] See also Figure 1 , Figure 2 , Figure 4 , Figure 5The utility model discloses a rotating mechanism for polishing titanium alloy tubes, including a workbench 1 and a positioning plate 2, the positioning plate 2 is installed on the top surface of the workbench 1, a placement shaft 3 is installed on one side surface of the positioning plate 2, a bearing 4 is installed on the outer surface of the placement shaft 3, a first adjusting plate 5 is installed on the outer surface of the bearing 4, a second adjusting plate 6 is installed on one side surface of the first adjusting plate 5, a fixing bolt 7 is installed on the inner wall of the second adjusting plate 6, a driving motor 8 is installed on one side surface of the second adjusting plate 6, a rubber wheel 9 is installed on one side surface of the second adjusting plate 6, a pushing component is installed on one side surface of the workbench 1, and a control component is installed on one side surface of the positioning plate.
[0022] There are two positioning plates 2, which are equidistantly distributed on the top surface of the workbench 1. There are two placing shafts 3, and both ends of the two placing shafts 3 are movably and rotatably connected to the two positioning plates 2. Two bearings 4 are installed on the outer surface of each bearing 4, and the inner wall of the bearing 4 is movably and rotatably connected to the outer surface of the placing shaft 3.
[0023] A first adjustment plate 5 is correspondingly distributed on the outer surface of each bearing 4, a second adjustment plate 6 is correspondingly distributed on one side surface of each first adjustment plate 5, a fixing bolt 7 is correspondingly distributed on the inner wall of each second adjustment plate 6, the second adjustment plates 6 are movably and rotatably connected to each other, a rubber wheel 9 is correspondingly distributed on one side surface of every two second adjustment plates 6 that movably and rotatably rotate together, one side surface of a driving motor 8 is fixedly connected to one side surface of one of its adjustment plates, and the output end of the driving motor 8 is fixedly connected to one end of one of its rubber wheels 9.
[0024] The control component includes a cylinder 13 , a toothed plate 14 is mounted on one side surface of the cylinder 13 , a gear 15 is also mounted on the surface of the bearing 4 , and the cylinder 13 is mounted on one side surface of the positioning plate 2 .
[0025] There are two tooth plates 14 equidistantly distributed on one side and the other side of the cylinder 13 . There are two gears 15 , which are fixedly connected to the two bearings 4 , and the gears 15 and the tooth plates 14 are meshed with each other.
[0026] When the two toothed plates 14 drive the two gears 15 to rotate, the two gears 15 will respectively drive the first adjustment plate 5 installed on one side surface to rotate, and the second adjustment plate 6 is installed on one side surface of the two first adjustment plates 5, so when the first adjustment plate 5 rotates, the second adjustment plate 6 will be driven to rotate together, so that the angle of the second adjustment plate 6 changes. At this time, the moving second adjustment plate 6 will drive the rubber wheel 9 installed on one side surface to contact with the surface of the titanium alloy tube. The two rubber wheels 9 clamp the titanium alloy tube through rotation, so that the titanium alloy tube is stabilized on the surface of the placement shaft 3. Embodiment 2
[0027] Based on the above Example 1, please refer to Figure 3 The pushing assembly includes a driving motor 10, a screw rod 16 is installed on one side surface of the positioning plate 2, a ball nut 11 is installed on the outer surface of the screw rod 16, a push plate 12 is installed on the outer surface of the ball nut 11, and the driving motor 10 is installed on one side surface of the positioning plate 2.
[0028] The output end of the driving motor 10 is fixedly connected to one end of the screw rod 16 , the screw rod 16 is movably and rotatably connected to the positioning plate 2 , and the inner wall of the ball nut 11 is movably and rotatably connected to the outer surface of the screw rod 16 .
[0029] When the diameter of the titanium alloy tube is larger or smaller, the adjusting bolt installed on the inner wall of the second adjusting plate 6 can be held and rotated. The first adjusting plate 5 and the second adjusting plate 6 can be rotated movably by rotation. At this time, the second adjusting plate 6 is held so that the second adjusting plate 6 and the first adjusting plate 5 can rotate relative to each other, thereby causing a change in the angle between the two, so as to adapt to titanium alloy tubes of different sizes.
[0030] The working principle and use process of the utility model are as follows: when it is necessary to use a rotating mechanism for grinding titanium alloy tubes, the titanium alloy tubes to be transported are placed on the surfaces of the two placement shafts 3. After the placement is completed, the cylinder 13 is started. When the cylinder 13 is started, its two ends will extend, and toothed plates 14 are installed at both ends of the cylinder 13. At this time, the toothed plates 14 will move with the extension of the cylinder 13, and the toothed plates 14 and the gears 15 are also meshed with each other, so the moving toothed plates 14 will drive the gears 15 to rotate, and the gears 15 are fixedly connected to the first adjustment plate 5, so when the two toothed plates 14 drive the two gears 15 to rotate, the two gears 15 will respectively drive the first adjustment plates 5 installed on one side of the surfaces thereof to rotate, and the second adjustment plates 6 are installed on one side of the two first adjustment plates 5, so when the first adjustment plates 5 rotate, the second adjustment plates 6 will be driven to rotate together, so that the angle of the second adjustment plates 6 changes, and the moving second adjustment plates 6 will drive The rubber wheel 9 installed on one side of the surface is in contact with the surface of the titanium alloy tube. The two rubber wheels 9 are rotated to clamp the titanium alloy tube, thereby stabilizing the titanium alloy tube on the surface of the placement shaft 3. When the titanium alloy tube needs to be pushed, the drive motor 8 and the drive motor 10 are started at the same time. When the drive motor 8 is started, it will drive the rubber wheel 9 installed on its output end to rotate, and the outer surface of the rubber wheel 9 is in contact with the titanium alloy tube. Therefore, the rotating rubber wheel 9 will drive the titanium alloy tube to rotate on the surface of the placement shaft 3, thereby controlling the rotation of the titanium alloy tube through the drive motor 8. When the drive motor 10 is started, it will drive the screw rod 16 installed on its output end to rotate, and the outer surface of the screw rod 16 is installed with a ball nut 11. At this time, the ball nut 11 will drive the push plate 12 installed on its outer surface to move. At this time, the moving push plate 12 will push the titanium alloy tube to move on the surface of the placement shaft 3, so that the titanium alloy tube enters the grinder, thereby realizing the grinding of the titanium alloy tube.
[0031] When the diameter of the titanium alloy tube is larger or smaller, the adjusting bolt installed on the inner wall of the second adjusting plate 6 can be held and rotated. The first adjusting plate 5 and the second adjusting plate 6 can be rotated movably by rotation. At this time, the second adjusting plate 6 is held so that the second adjusting plate 6 and the first adjusting plate 5 can rotate relative to each other, thereby causing a change in the angle between the two, so as to adapt to titanium alloy tubes of different sizes.
Claims
1. A rotary mechanism for polishing a titanium alloy tube, comprising a workbench (1) and a positioning plate (2), wherein the positioning plate (2) is mounted on the top surface of the workbench (1), characterized in that: A placement shaft (3) is mounted on one side surface of the positioning plate (2), a bearing (4) is mounted on the outer side surface of the placement shaft (3), a first adjustment plate (5) is mounted on the outer side surface of the bearing (4), a second adjustment plate (6) is mounted on one side surface of the first adjustment plate (5), a fixing bolt (7) is mounted on the inner wall of the second adjustment plate (6), a driving motor (8) is mounted on one side surface of the second adjustment plate (6), a rubber wheel (9) is mounted on one side surface of the second adjustment plate (6), a pushing assembly is mounted on one side surface of the workbench (1), and a control assembly is mounted on one side surface of the positioning plate.
2. The rotary mechanism for polishing a titanium alloy tube according to claim 1, characterized in that: There are two positioning plates (2), and the two positioning plates (2) are equidistantly distributed on the top surface of the workbench (1). There are two placement shafts (3), and the two ends of the two placement shafts (3) are movably and rotatably connected to the two positioning plates (2). Two bearings (4) are installed on the outer surface of each bearing (4), and the inner wall of the bearing (4) is movably and rotatably connected to the outer surface of the placement shaft (3).
3. The rotary mechanism for grinding titanium alloy tube according to claim 1, characterized in that: A first adjustment plate (5) is correspondingly distributed on the outer surface of each bearing (4), a second adjustment plate (6) is correspondingly distributed on one side surface of each first adjustment plate (5), a fixing bolt (7) is correspondingly distributed on the inner wall of each second adjustment plate (6), the second adjustment plates (6) are movably and rotatably connected to each other, a rubber wheel (9) is correspondingly distributed on one side surface of each two second adjustment plates (6) that movably and rotatably co-operate, a side surface of the drive motor (8) is fixedly connected to a side surface of one of its adjustment plates, and an output end of the drive motor (8) is fixedly connected to one end of one of its rubber wheels (9).
4. The rotary mechanism for grinding titanium alloy tube according to claim 1, characterized in that: The pushing assembly comprises a driving motor (10), a screw rod (16) is mounted on one side surface of the positioning plate (2), a ball nut (11) is mounted on the outer side surface of the screw rod (16), a pushing plate (12) is mounted on the outer side surface of the ball nut (11), and the driving motor (10) is mounted on one side surface of the positioning plate (2).
5. The titanium alloy tube grinding rotating mechanism according to claim 4, characterized in that: The output end of the drive motor (10) is fixedly connected to one end of the screw rod (16), the screw rod (16) is movably and rotatably connected to the positioning plate (2), and the inner wall of the ball nut (11) is movably and rotatably connected to the outer surface of the screw rod (16).
6. The titanium alloy tube grinding rotating mechanism according to claim 1, characterized in that: The control component comprises a cylinder (13), a toothed plate (14) is mounted on one side surface of the cylinder (13), a gear (15) is also mounted on the surface of the bearing (4), and the cylinder (13) is mounted on one side surface of the positioning plate (2).
7. The titanium alloy tube grinding rotating mechanism according to claim 6, characterized in that: There are two tooth plates (14), which are equidistantly distributed on one side and the other side of the cylinder (13). There are two gears (15), which are fixedly connected to the two bearings (4), and the gears (15) and the tooth plates (14) are meshed with each other.