Titanium plate polishing device
By designing an adaptive lifting device and a driving device for titanium plate grinding, the problems of laborious operation and unstable accuracy of traditional manual grinding devices have been solved, achieving labor-saving operation and high-precision grinding.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHENYANG EXCELLENCE TITANIUM IND CO LTD
- Filing Date
- 2025-08-21
- Publication Date
- 2026-07-24
AI Technical Summary
Traditional manual titanium plate grinding devices are laborious to operate, and prolonged operation can easily lead to arm fatigue, affecting grinding accuracy.
Design a titanium plate grinding device including a V-shaped carrier plate, an adaptive lifting device, and a drive device. The adaptive lifting device distributes the weight, and combined with the auxiliary wheel and spring structure, it reduces the labor intensity of the operator. The drive device realizes the synchronous rotation and stable contact of the grinding roller.
It reduces the labor intensity of operators when changing grinding positions and during the grinding process, improves grinding accuracy and safety, and avoids the decrease in accuracy caused by arm fatigue.
Smart Images

Figure CN224544026U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of titanium plate surface treatment technology, and specifically relates to a titanium plate grinding device. Background Technology
[0002] In the field of titanium processing, surface grinding of titanium plates is a crucial step in ensuring the accuracy of subsequent processing and performance. Currently, for small factories producing small to medium-sized titanium plates or specific irregularly shaped titanium plates, grinding operations still largely rely on manual grinding equipment.
[0003] Traditional manual polishing devices typically consist of a polishing roller, a drive motor, and a handheld support. During operation, the operator must hold the device the entire time and control the contact pressure and balance between the polishing roller and the titanium plate surface using arm strength. However, the drive motor increases the overall weight of the device, requiring the operator to overcome its weight during polishing or when lifting the polishing structure to change positions. This results in extremely high labor intensity, easily leading to arm fatigue and affecting polishing accuracy over long periods. Therefore, this alternative titanium plate polishing device is provided to solve the aforementioned technical problems. Utility Model Content
[0004] In view of the shortcomings of the prior art described above, the purpose of this utility model is to provide a titanium plate grinding device to solve the problems of manual grinding devices in the prior art, which are laborious to operate, prone to fatigue during long-term operation, and affect grinding accuracy.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A titanium plate grinding device includes a V-shaped carrier plate. A vertical plate is fixedly installed on the lower surface of the middle section of the V-shaped carrier plate. A main wheel is rotatably installed on the right surface of the vertical plate. An adaptive lifting device is installed on the lower surface of the right section of the V-shaped carrier plate. A support plate is fixedly installed at the lower end of the adaptive lifting device. An auxiliary wheel is rotatably installed on the lower surface of the support plate. Two extension blocks are symmetrically fixedly installed on the lower surface of the left section of the V-shaped carrier plate. A bearing seat is fixedly installed on the lower surface of each extension block. A rotating shaft is rotatably installed in each bearing seat. A grinding roller is detachably installed between the two rotating shafts. A driving device is fixedly installed on the upper surface of the right section of the V-shaped carrier plate. The driving device is used to drive the two rotating shafts and the grinding roller to rotate synchronously. A T-shaped handle is fixedly installed on the upper surface of the left section of the V-shaped carrier plate.
[0007] In the above technical solution, the adaptive lifting device includes an H-shaped rod, the top of which is welded and fixed to a V-shaped carrier plate, and an H-shaped sleeve is slidably installed on the outer surface of the H-shaped rod. The H-shaped sleeve is welded and installed on the upper surface of the support plate. Two annular stops A and two annular stops B are welded and installed on the outer surfaces of the H-shaped rod and the H-shaped sleeve, respectively. Springs are fixedly installed between the annular stops A and the corresponding annular stops B.
[0008] In the above technical solution, the upper surface of the V-shaped carrier plate has two through openings. The driving device includes a dual-output motor, four sprockets and two transmission chains. The dual-output motor is fixedly installed on the upper surface of the right section of the V-shaped carrier plate. The four sprockets are respectively sleeved on the outer surface of the output shaft and the outer surface of the rotating shaft of the dual-output motor. The transmission chains pass through the corresponding through openings and are sleeved between the corresponding two sprockets.
[0009] In the above technical solution, a connecting plate is welded and installed on the opposite surfaces of the two rotating shafts. The outer surface of the connecting plate has multiple mounting holes that are circumferentially through it. The grinding roller is fixedly installed between the two connecting plates by bolts.
[0010] In the above technical solution, an arc-shaped baffle is fixedly installed on the lower left section of the V-shaped carrier plate by bolts, and the grinding roller is located inside the arc-shaped baffle.
[0011] In the above technical solution, the dual-output motor is electrically connected to a control switch via a cable. The control switch is mounted on the left end of the T-shaped handle bar via a fixing component, and the control switch wire is connected to a power supply line.
[0012] The titanium plate grinding device of this utility model has the following advantages compared with the prior art:
[0013] This invention, by setting up an adaptive lifting device and auxiliary wheels, can utilize the sliding cooperation between the H-shaped rod and the H-shaped sleeve, combined with the spring and auxiliary wheels between the annular stops A and B, to construct a movable elastic support structure. When changing the grinding position, the adaptive lifting device supports the right section and the rolling cooperation of the auxiliary wheels, which reasonably distributes the weight of the device. The operator does not need to exert effort to maintain the balance of the device; he only needs to push the device to move it, which can reduce the labor intensity during movement.
[0014] In addition, the adaptive lifting device and the V-shaped carrier plate form a linkage mechanism. During grinding, the operator only needs to apply a small amount of downward pressure using the T-shaped handle, and the spring will adjust the extension and retraction of the adaptive lifting device according to the feedback from the titanium plate surface, so that the grinding roller and the titanium plate are in stable contact for grinding. This reduces the need for downward pressure during operation, effectively reducing the labor intensity of grinding and avoiding the problem of uneven wear leading to a decrease in grinding accuracy. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0016] Figure 2 This is a schematic diagram of the main structure of this utility model.
[0017] Figure 3 This is a top view of the structure of this utility model.
[0018] Figure 4 This is a schematic diagram of the cross-sectional structure of the H-shaped sleeve of this utility model.
[0019] Figure 5 This is a schematic diagram of the grinding roller structure of this utility model.
[0020] Figures 1-5 The components include: 1. V-shaped carrier plate; 11. Vertical plate; 12. Main wheel; 13. Through port; 2. Adaptive lifting device; 21. H-shaped rod; 211. Annular stop A; 22. H-shaped sleeve; 221. Annular stop B; 23. Spring; 3. Support plate; 31. Auxiliary wheel; 4. Extension block; 5. Bearing seat; 6. Rotating shaft; 7. Grinding roller; 8. Drive device; 81. Dual-output motor; 82. Sprocket; 83. Transmission chain; 9. T-shaped handle bar. Detailed Implementation
[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0022] In this embodiment, front, back, left, right, top, and bottom are... Figure 1 Describe the reference plane. See [link / reference] Figures 1-5 This utility model provides a technical solution:
[0023] A titanium plate grinding device includes a V-shaped carrier plate 1. A vertical plate 11 is fixedly installed on the lower surface of the middle section of the V-shaped carrier plate 1. A main wheel 12 is rotatably installed on the right surface of the vertical plate 11. An adaptive lifting device 2 is installed on the lower surface of the right section of the V-shaped carrier plate 1. A support plate 3 is fixedly installed at the lower end of the adaptive lifting device 2. An auxiliary wheel 31 is rotatably installed on the lower surface of the support plate 3. Two extension blocks 4 are symmetrically fixedly installed on the lower surface of the left section of the V-shaped carrier plate 1. A bearing seat 5 is fixedly installed on the lower surface of each extension block 4. A rotating shaft 6 is rotatably installed in each bearing seat 5. A grinding roller 7 is detachably installed between the two rotating shafts 6. A driving device 8 is fixedly installed on the upper surface of the right section of the V-shaped carrier plate 1. The driving device 8 is used to drive the two rotating shafts 6 and the grinding roller 7 to rotate synchronously. A T-shaped handle 9 is fixedly installed on the upper surface of the left section of the V-shaped carrier plate 1.
[0024] The entire device is supported by the main wheel 12. By setting the adaptive lifting device 2, the weight of the device can be distributed, so that the operator does not need to overcome the overall weight of the device. He only needs to push or apply a small amount of downward pressure to complete the movement or grinding operation, which greatly reduces the labor intensity and makes it easier to change the grinding position of the device, avoiding the decrease in grinding accuracy due to arm fatigue.
[0025] Combination Figure 2 and Figure 4 As shown, the adaptive lifting device 2 includes an H-shaped rod 21. The top end of the H-shaped rod 21 is welded and fixed to the V-shaped carrier plate 1. An H-shaped sleeve 22 is slidably installed on the outer surface of the H-shaped rod 21. The H-shaped sleeve 22 is welded and installed on the upper surface of the support plate 3. Two annular stops A211 and two annular stops B221 are welded and installed on the outer surfaces of the H-shaped rod 21 and the H-shaped sleeve 22, respectively. A spring 23 is fixedly installed between the annular stops A211 and the corresponding annular stops B221.
[0026] During grinding, the operator applies downward pressure to the T-shaped handle 9, pressing the grinding roller 7 down until it contacts the grinding surface of the titanium plate. During operation, the right end of the V-shaped carrier plate 1 is raised, and the adaptive lifting device 2, under the action of the spring 23, extends the H-shaped sleeve 22 downward, so that the auxiliary wheel 31 is attached to the titanium plate. This achieves adaptive adjustment of the adaptive lifting device 2, providing auxiliary support for the right section of the V-shaped carrier plate 1, making the grinding operation easier for the operator. When moving, after the operator releases the pressure on the T-shaped handle 9, the right section of the V-shaped carrier plate 1 is pressed down under the gravity of the drive device 8, causing the spring 23 to retract and reset, and the adaptive lifting device 2 to shorten and reset. At this time, the grinding roller 7 moves upward and disengages from the surface of the titanium plate, directly pushing the entire device to move and change the grinding position. The overall operation can reduce the labor intensity during operation.
[0027] Combination Figure 1 and Figure 4As shown, two through-holes 13 are opened through the upper surface of the V-shaped carrier plate 1, and the through-holes 13 are designed to facilitate the installation of the transmission chain 83.
[0028] The drive device 8 includes a dual-output motor 81, four sprockets 82 and two transmission chains 83. The dual-output motor 81 is fixedly installed on the upper surface of the right section of the V-shaped carrier plate 1. The four sprockets 82 are respectively sleeved on the outer surface of the output shaft of the dual-output motor 81 and the outer surface of the rotating shaft 6. The transmission chains 83 pass through the corresponding openings 13 and are sleeved between the corresponding two sprockets 82.
[0029] The dual-output motor 81 drives the two rotating shafts 6 and the grinding roller 7 to rotate synchronously through the cooperation of the two side sprockets 82 and the transmission chain 83. It has high transmission efficiency and strong synchronization, which can ensure that the grinding roller is subjected to uniform force on both sides when rotating, and avoid the problem of roller tilting or uneven grinding surface caused by single-sided drive.
[0030] Combination Figure 1 and Figure 5 As shown, connecting discs are welded to the opposite faces of the two rotating shafts 6. Multiple mounting holes are circumferentially opened on the outer surface of the connecting discs. The grinding roller 7 is fixedly installed between the two connecting discs by bolts. By using bolts to assemble the guide roller 7 between the two connecting discs, different types of grinding rollers 7 (such as coarse sand rollers and fine sand rollers) can be replaced according to the grinding requirements of the titanium plate (such as roughness and material hardness), thereby improving the versatility of the device.
[0031] In addition, combined Figure 2 As shown, an arc-shaped baffle is fixedly installed on the lower left section of the V-shaped carrier plate 1 by bolts. The grinding roller 7 is located inside the arc-shaped baffle. The arc-shaped baffle can prevent titanium chips, dust and other debris generated during the grinding process from splashing outward, avoiding debris from scratching the operator and improving work safety.
[0032] Finally, the dual-output motor 81 is electrically connected to a control switch via a cable. The control switch wire is connected to the power supply wire, and the control switch directly controls the start and stop of the dual-output motor 81. The power supply wire is connected to an external power source to provide power to the dual-output motor 81. The control switch is installed on the left end of the T-shaped handle 9 through a fixing piece, so the operator can quickly start and stop the equipment without having to bend down or adjust the hand posture.
Claims
1. A titanium plate grinding device, comprising a V-shaped carrier plate (1), characterized in that, A vertical plate (11) is fixedly installed on the lower surface of the middle section of the V-shaped carrier plate (1). A main wheel (12) is rotatably installed on the right surface of the vertical plate (11). An adaptive lifting device (2) is installed on the lower surface of the right section of the V-shaped carrier plate (1). A support plate (3) is fixedly installed at the lower end of the adaptive lifting device (2). An auxiliary wheel (31) is rotatably installed on the lower surface of the support plate (3). Two extension blocks (4) are symmetrically fixedly installed on the lower surface of the left section of the V-shaped carrier plate (1). The lower surface of each extension block (4) is fixedly equipped with a bearing seat (5), and a rotating shaft (6) is rotatably installed inside each bearing seat (5). A grinding roller (7) is detachably installed between the two rotating shafts (6). A driving device (8) is fixedly installed on the upper right section of the V-shaped carrier plate (1). The driving device (8) is used to drive the two rotating shafts (6) and the grinding roller (7) to rotate synchronously. A T-shaped handle (9) is fixedly installed on the upper left section of the V-shaped carrier plate (1).
2. The titanium plate grinding device according to claim 1, characterized in that, The adaptive lifting device (2) includes an H-shaped rod (21), the top of which is welded and fixed to a V-shaped carrier plate (1), and an H-shaped sleeve (22) is slidably installed on the outer surface of the H-shaped rod (21). The H-shaped sleeve (22) is welded and installed on the upper surface of the support plate (3). Two annular stops A (211) and two annular stops B (221) are welded and installed on the outer surface of the H-shaped rod (21) and the outer surface of the H-shaped sleeve (22), respectively. A spring (23) is fixedly installed between the annular stops A (211) and the corresponding annular stops B (221).
3. The titanium plate grinding device according to claim 1, characterized in that, The upper surface of the V-shaped carrier plate (1) has two through openings (13); The drive device (8) includes a dual-output motor (81), four sprockets (82) and two transmission chains (83). The dual-output motor (81) is fixedly installed on the upper right section of the V-shaped carrier plate (1). The four sprockets (82) are respectively sleeved on the outer surface of the output shaft of the dual-output motor (81) and the outer surface of the rotating shaft (6). The transmission chains (83) pass through the corresponding openings (13) and are sleeved between the corresponding two sprockets (82).
4. A titanium plate grinding device according to claim 1 or 3, characterized in that, A connecting disc is welded to the opposite face of the two rotating shafts (6). The outer surface of the connecting disc has multiple mounting holes that run through it in a circumferential direction. The grinding roller (7) is fixedly installed between the two connecting discs by bolts.
5. A titanium plate grinding device according to claim 4, characterized in that, An arc-shaped baffle is fixedly installed on the lower left section of the V-shaped carrier plate (1) by bolts, and the grinding roller (7) is located inside the arc-shaped baffle.
6. The titanium plate grinding device according to claim 3, characterized in that, The dual-output motor (81) is electrically connected to a control switch via a cable. The control switch is mounted on the left end of the T-shaped handle (9) via a fixing piece. The control switch wire is connected to the power supply wire.