Polishing device for alloy machining
By installing a cleaning block and a filtration system on the grinding device, the problem of metal shavings and dust scattering during the grinding process is solved, achieving environmental protection and personnel safety, and improving grinding efficiency and the applicability of the device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZOUPING HONGXIN NEW MATERIAL TECH CO LTD
- Filing Date
- 2025-05-06
- Publication Date
- 2026-04-28
AI Technical Summary
Existing grinding equipment generates metal shavings and dust during the grinding process, which are scattered into the air, causing environmental pollution and harming the health of workers.
A grinding device for alloy processing was designed. By setting a cleaning block and a filtration system on the grinding disc, an air pump is used to draw air and filter metal shavings and dust through the cleaning holes into the filter bag for filtration, preventing them from scattering in the air. At the same time, a plug-in fixing mechanism is adopted to improve grinding efficiency.
It effectively removes metal shavings and dust generated during the grinding process, preventing environmental pollution and personal injury, and improving the efficiency and versatility of the grinding equipment.
Smart Images

Figure CN224169476U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of alloy processing technology, specifically to a grinding device for alloy processing. Background Technology
[0002] An alloy is a substance with metallic properties synthesized by mixing, melting, cooling, and solidifying two or more metals or non-metals. Common alloys include aluminum alloys, titanium alloys, magnesium alloys, and copper alloys. Alloy processing requires grinding. Currently, existing grinding equipment generates metal shavings and dust, which pollute the environment when scattered in the air. Furthermore, inhaling these shavings and dust can harm the health of grinding workers. Utility Model Content
[0003] To address the shortcomings of existing technologies, this utility model provides a grinding device for alloy processing, which solves the problems of existing grinding devices generating metal shavings and dust during grinding, causing pollution to the surrounding environment when the metal shavings and dust are scattered in the air, and causing health damage to grinding workers when inhaling the metal shavings and dust generated during grinding.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a grinding device for alloy processing, comprising a worktable, a pair of support plates movably disposed on the upper wall of the worktable, guide blocks respectively disposed on the pair of support plates, a pair of guide grooves disposed on the worktable, the support plates being slidably mounted in the guide grooves via the guide blocks, a top plate disposed on the upper wall of the support plates, a first multi-stage electric telescopic cylinder disposed on the top plate, a first support block disposed on the telescopic end of the first multi-stage electric telescopic cylinder, a first motor disposed on the first support block, a grinding disc disposed on the drive end of the first motor, a cleaning block disposed on the first support block, the grinding disc disposed within the cleaning block, an air pump disposed on the cleaning block, a second channel disposed within the cleaning block, a first channel disposed on the second channel, a filter tube disposed between the first channel and the air pump, a filter bag movably disposed within the filter tube, a plurality of cleaning holes disposed on the cleaning block, the plurality of cleaning holes being connected to the second channel, and a fixing mechanism disposed on the worktable.
[0005] Preferably, the fixing mechanism includes a pair of grooves disposed on the worktable. A pair of second multi-stage electric telescopic cylinders are disposed within the grooves. A first fixing block is disposed on the telescopic end of each of the second multi-stage electric telescopic cylinders. The first fixing block is movably disposed within the groove. A second fixing block is movably disposed on each of the pair of first fixing blocks. An insert is disposed on each of the second fixing blocks. A slot is disposed on each of the first fixing blocks. The second fixing block is inserted into the slot via the insert. A sliding groove is disposed on each of the second fixing blocks. An anti-slip block is slidably disposed within the sliding groove of the second fixing block. An alloy rod body is movably disposed on the anti-slip block.
[0006] Preferably, a third multi-stage electric telescopic cylinder is provided on the workbench. A second support block is provided on the telescopic end of the third multi-stage electric telescopic cylinder. A second motor is provided on the second support block. A third fixing block is provided on the drive end of the second motor. A fixing rod is movably provided on the third fixing block. A threaded rod is provided on the fixing rod. The fixing rod is screwed into the third fixing block through the threaded rod. A fixing post is provided at one end of the alloy rod body. A mounting hole is provided on the fixing post. The alloy rod body is movably disposed in the mounting hole.
[0007] Preferably, the alloy rod body and the anti-slip block are matched.
[0008] Beneficial effects
[0009] The grinding device for alloy processing provided by this utility model has the following beneficial effects:
[0010] This design uses a drive air pump to draw air from the first and second channels. Metal shavings and dust generated during grinding enter the second channel through the cleaning hole, then pass through the first channel into the filter bag. This removes the metal shavings and dust generated during grinding, preventing them from scattering in the air and polluting the surrounding environment. It also prevents grinding workers from inhaling metal shavings and dust and causing injury.
[0011] The second fixing block in this design is inserted into the slot via a plug, which can fix the second fixing block on the first fixing block. The plug-in installation method can improve the installation efficiency of the second fixing block, thereby improving the grinding efficiency of the grinding device. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the entire utility model.
[0013] Figure 2 This is a schematic diagram of the fixing mechanism of this utility model.
[0014] Figure 3 This is a schematic diagram of the cleaning block of this utility model.
[0015] Figure 4 This is a schematic diagram of the cleaning hole of this utility model.
[0016] Figure 5 This is a schematic diagram of the alloy rod body of this utility model.
[0017] Figure 6 This is a schematic diagram of the second fixing block of this utility model.
[0018] Figure 7 This is a schematic diagram of the second fixing block of this utility model.
[0019] In the diagram: 1. Support plate; 2. Top plate; 3. First multi-stage electric telescopic cylinder; 4. First support block; 5. First motor; 6. Grinding disc; 7. Worktable; 8. Second multi-stage electric telescopic cylinder; 9. Guide block; 10. First fixing block; 11. Second fixing block; 12. Anti-slip block; 13. Slot; 14. Insert block; 15. Second support block; 16. Second motor; 17. Second fixing block; 18. Fixing rod; 19. Threaded rod; 20. Groove; 21. Air pump; 22. First channel; 23. Filter tube; 24. Filter bag; 25. Second channel; 26. Cleaning block; 27. Cleaning hole; 28. Alloy rod body; 29. Fixing column; 30. Mounting hole; 31. Third multi-stage electric telescopic cylinder; 32. Guide groove. Detailed Implementation
[0020] 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.
[0021] Please see Figure 1-7This utility model provides a technical solution: a grinding device for alloy processing, including a worktable 7. A pair of support plates 1 are movably arranged on the upper wall of the worktable 7. Guide blocks 9 are respectively arranged on the pair of support plates 1. A pair of guide grooves 32 are provided on the worktable 7. The support plates 1 are slidably installed in the guide grooves 32 through the guide blocks 9. A top plate 2 is provided on the upper wall of the support plates 1. A first multi-stage electric telescopic cylinder 3 is provided on the top plate 2. A first support block 4 is provided on the telescopic end of the first multi-stage electric telescopic cylinder 3. A first motor 5 is provided on the first support block 4. A grinding disc 6 is provided on the drive end of the first motor 5, a cleaning block 26 is provided on the first support block 4, the grinding disc 6 is disposed inside the cleaning block 26, an air pump 21 is provided on the cleaning block 26, a second channel 25 is provided inside the cleaning block 26, a first channel 22 is provided on the second channel 25, a filter tube 23 is provided between the first channel 22 and the air pump 21, a filter bag 24 is movably disposed inside the filter tube 23, a plurality of cleaning holes 27 are provided on the cleaning block 26, a plurality of cleaning holes 27 are connected to the second channel 25, and a fixing mechanism is provided on the worktable 7;
[0022] The air pump 21 is started to draw air from the first channel 22 and the second channel 25. The metal shavings and dust generated during the grinding of the grinding disc 6 enter the second channel 25 through the cleaning hole 27, and then enter the filter bag 24 through the first channel 22. This is used to remove the metal shavings and dust generated during the grinding process, which can prevent the metal shavings and dust from scattering in the air and causing pollution to the surrounding environment. At the same time, it can prevent the grinding workers from inhaling the metal shavings and dust and causing injury to their bodies.
[0023] The first motor 5 is driven to rotate, which in turn drives the grinding disc 6 to rotate, thus grinding the alloy rod body 28.
[0024] The first multi-stage electric telescopic cylinder 3 is driven to extend and retract, which in turn drives the first support block 4 to rise and fall, controls the first motor 5 to rise and fall, and then causes the grinding disc 6 to rise and fall. This allows for the grinding of alloy rod bodies 28 of different sizes, thus improving the versatility of the grinding device.
[0025] The support plate 1 is slidably installed in the guide groove 32 via the guide block 9, so that the support plate 1 is slidably installed on the worktable 7. Driving the support plate 1 to move causes the top plate 2 to move, controls the first multi-stage electric telescopic cylinder 3 to move, causes the first support block 4 to move, drives the first motor 5 to move, and then causes the grinding disc 6 to move, so as to grind the alloy rod body 28.
[0026] In this embodiment, the fixing mechanism is further configured such that the fixing mechanism includes a pair of grooves 20, the grooves 20 are disposed on the worktable 7, a pair of second multi-stage electric telescopic cylinders 8 are disposed in the grooves 20, a first fixing block 10 is disposed on the telescopic end of the second multi-stage electric telescopic cylinder 8, the first fixing block 10 is movably disposed in the grooves 20, a second fixing block 11 is movably disposed on the pair of first fixing blocks 10, an insert block 14 is disposed on the second fixing block 11, a slot 13 is disposed on the first fixing block 10, the second fixing block 11 is inserted into the slot 13 through the insert block 14, a sliding groove is disposed on the second fixing block 11, an anti-slip block 12 is slidably disposed in the sliding groove of the second fixing block 11, and an alloy rod body 28 is movably disposed on the anti-slip block 12;
[0027] Drive the second multi-stage electric telescopic cylinder 8 to extend and retract, thereby moving the first fixed block 10 and controlling the second fixed block 11 to move, causing the anti-sliding block 12 to move, which is used to clamp the alloy rod body 28.
[0028] The second fixing block 11 is inserted into the slot 13 via the insert block 14, which can fix the second fixing block 11 onto the first fixing block 10. The insertion installation method can improve the installation efficiency of the second fixing block 11, thereby improving the grinding efficiency of the grinding device.
[0029] The second fixing block 11 is movably set on the first fixing block 10. The second fixing block 11 of the corresponding size can be replaced according to the size of the alloy rod body 28, which makes it convenient for workers to grind alloy rod bodies 28 of different sizes, thereby improving the versatility of the grinding device.
[0030] The anti-slip block 12 is slidably disposed in the groove of the second fixing block 11, which facilitates the rotation of the alloy rod body 28 and avoids the alloy rod body 28 from being damaged due to friction with the second fixing block 11.
[0031] In this embodiment, the workbench 7 is further configured with a third multi-stage electric telescopic cylinder 31, a second support block 15 is provided on the telescopic end of the third multi-stage electric telescopic cylinder 31, a second motor 16 is provided on the second support block 15, a third fixing block 17 is provided on the drive end of the second motor 16, a fixing rod 18 is movably provided on the third fixing block 17, a threaded rod 19 is provided on the fixing rod 18, the fixing rod 18 is screwed into the third fixing block 17 through the threaded rod 19, a fixing post 29 is provided at one end of the alloy rod body 28, a mounting hole 30 is provided on the fixing post 29, and the alloy rod body 28 is movably disposed in the mounting hole 30;
[0032] The third fixing block 17 is provided with an installation groove, and the fixing post 29 is movably disposed in the installation groove of the third fixing block 17. The fixing rod 18 is inserted into the installation hole 30 to fix the fixing post 29, thereby connecting the fixing post 29 to the third fixing block 17. Rotating the fixing rod 18 causes the threaded rod 19 to be screwed into the third fixing block 17 to fix the fixing rod 18. The second motor 16 is driven to rotate, which drives the third fixing block 17 to rotate. The rotation of the fixing rod 18 is controlled to make the fixing post 29 rotate, which drives the alloy rod body 28 to rotate, which makes it convenient for workers to grind the alloy rod body 28.
[0033] The third multi-stage electric telescopic cylinder 31 is driven to rise and fall, which in turn drives the second support block 15 to rise and fall, controls the second motor 16 to rise and fall, and drives the third fixed block 17 to rise and fall, so that the axis of the drive shaft of the second motor 16 and the center of the alloy rod body 28 are on the same horizontal line.
[0034] In this embodiment, the alloy rod body 28 and the anti-slip block 12 are further configured to match.
[0035] Example: When installing the alloy rod body 28, a corresponding second fixing block 11 is selected according to the size of the alloy rod body 28. The second fixing block 11 is movably set on the first fixing block 10. The second fixing block 11 of the corresponding size can be replaced according to the size of the alloy rod body 28, which facilitates the grinding of alloy rod bodies 28 of different sizes by the workers, thereby improving the versatility of the grinding device. The second fixing block 11 is inserted into the slot 13 through the insert 14, so that the second fixing block 11 can be fixed on the first fixing block 10. The insert installation method can improve the installation efficiency of the second fixing block 11, thereby improving the grinding efficiency of the grinding device, driving the second multi-stage electric telescopic cylinder 8 to extend and retract, driving the first The movement of a fixed block 10 controls the movement of a second fixed block 11, causing the anti-slip block 12 to move and clamp the alloy rod body 28. This drives the third multi-stage electric telescopic cylinder 31 to rise and fall, causing the second support block 15 to rise and fall. This controls the rise and fall of the second motor 16, which in turn causes the third fixed block 17 to rise and fall, ensuring that the axis of the drive shaft of the second motor 16 is on the same horizontal line as the center of the alloy rod body 28. The third fixed block 17 has a mounting groove, and a fixing post 29 is movably disposed within this groove. A fixing rod 18 is inserted into the mounting hole 30 to fix the fixing post 29, thus connecting the fixing post 29 to the third fixed block 17. Rotating the fixing rod 18 causes the threaded rod 19 to be screwed onto the third fixed block 17. Inside, a fixing rod 18 is fixed, driving the second motor 16 to rotate, which in turn drives the third fixing block 17 to rotate, controlling the rotation of the fixing rod 18, causing the fixing column 29 to rotate, which in turn drives the alloy rod body 28 to rotate. This allows workers to easily grind the alloy rod body 28. When the grinding device is in use, the air pump 21 is started to extract air from the first channel 22 and the second channel 25. Metal shavings and dust generated during grinding by the grinding disc 6 enter the second channel 25 through the cleaning hole 27, and then pass through the first channel 22 into the filter bag 24. This is used to remove metal shavings and dust generated during the grinding process, preventing metal shavings and dust from scattering in the air and polluting the surrounding environment. To prevent grinding workers from inhaling metal shavings and dust and causing injury, the first multi-stage electric telescopic cylinder 3 is driven to extend and retract, causing the first support block 4 to rise and fall, controlling the first motor 5 to rise and fall, thereby raising and lowering the grinding disc 6 to the alloy rod body 28. This allows for grinding of alloy rod bodies 28 of different sizes, improving the versatility of the grinding device. The first motor 5 is driven to rotate, causing the grinding disc 6 to rotate, which can grind the alloy rod body 28. The support plate 1 is driven to move, causing the top plate 2 to move, controlling the first multi-stage electric telescopic cylinder 3 to move, causing the first support block 4 to move, driving the first motor 5 to move, and thus the grinding disc 6 to move, which can grind the alloy rod body 28.
[0036] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A grinding apparatus for alloy processing, comprising a worktable (7), characterized in that, A pair of support plates (1) are movably arranged on the upper wall of the workbench (7). Guide blocks (9) are respectively arranged on the pair of support plates (1). A pair of guide grooves (32) are arranged on the workbench (7). The support plates (1) are slidably installed in the guide grooves (32) through the guide blocks (9). A top plate (2) is arranged on the upper wall of the support plate (1). A first multi-stage electric telescopic cylinder (3) is arranged on the top plate (2). A first support block (4) is arranged on the telescopic end of the first multi-stage electric telescopic cylinder (3). A first motor (5) is arranged on the first support block (4). A grinding disc (6) is arranged on the drive end of the first motor (5). A cleaning block (26) is provided on the first support block (4), and the grinding disc (6) is provided inside the cleaning block (26). An air pump (21) is provided on the cleaning block (26). A second channel (25) is provided inside the cleaning block (26). A first channel (22) is provided on the second channel (25). A filter tube (23) is provided between the first channel (22) and the air pump (21). A filter bag (24) is movably provided inside the filter tube (23). A plurality of cleaning holes (27) are provided on the cleaning block (26). A plurality of cleaning holes (27) are connected to the second channel (25). A fixing mechanism is provided on the worktable (7).
2. The grinding device for alloy processing according to claim 1, characterized in that, The fixing mechanism includes a pair of grooves (20) disposed on the workbench (7). A pair of second multi-stage electric telescopic cylinders (8) are disposed in the grooves (20). A first fixing block (10) is disposed on the telescopic end of the second multi-stage electric telescopic cylinder (8). The first fixing block (10) is movably disposed in the groove (20). A second fixing block (11) is movably disposed on each pair of first fixing blocks (10). An insert (14) is disposed on the second fixing block (11). A slot (13) is disposed on the first fixing block (10). The second fixing block (11) is inserted into the slot (13) through the insert (14). A sliding groove is disposed on the second fixing block (11). An anti-sliding block (12) is slidably disposed in the sliding groove of the second fixing block (11). An alloy rod body (28) is movably disposed on the anti-sliding block (12).
3. The grinding device for alloy processing according to claim 2, characterized in that, The workbench (7) is provided with a third multi-stage electric telescopic cylinder (31). The telescopic end of the third multi-stage electric telescopic cylinder (31) is provided with a second support block (15). The second support block (15) is provided with a second motor (16). The drive end of the second motor (16) is provided with a third fixing block (17). The third fixing block (17) is movably provided with a fixing rod (18). The fixing rod (18) is provided with a threaded rod (19). The fixing rod (18) is screwed into the third fixing block (17) through the threaded rod (19). One end of the alloy rod body (28) is provided with a fixing post (29). The fixing post (29) is provided with a mounting hole (30). The alloy rod body (28) is movably provided in the mounting hole (30).
4. The grinding device for alloy processing according to claim 3, characterized in that, The alloy rod body (28) and the anti-slip block (12) are matched.