Vibration cutter laser cladding machine
Patent Information
- Application Number
- CN202520245004.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-02-17
AI Technical Summary
Existing vibratory cutting tools have insufficient physical and mechanical properties in the cutting edge area, and their production costs are high with low automation.
Specialized powder alloy materials are used in conjunction with high-power laser cladding equipment to clad the powder alloy onto the blade body, which is designed as the cutting edge. The process is fully automated and intelligent, combined with a vibrating laser cladding machine that can be operated manually.
It improves the physical and mechanical properties of the cutting edge, reduces production costs, and enables highly efficient automated production.
Smart Images

Figure CN223738143U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of vibratory knife cladding technology, specifically relating to a vibratory knife laser cladding machine. Background Technology
[0002] This cladding machine uses specialized powder alloy materials, combined with high-power laser cladding equipment, to clad the powder alloy onto the blade body, serving as the cutting edge. This improves the physical and mechanical properties of the cutting edge. Furthermore, the equipment is designed according to established production processes, adhering to the principles of "advanced technology and economic rationality," ensuring consistently high product quality. Simultaneously, fully automated intelligent operation reduces production costs. Utility Model Content
[0003] The purpose of this invention is to provide a vibrating knife laser cladding machine. This cladding machine uses a special powder alloy material, combined with high-power laser cladding equipment, to clad the powder alloy onto the knife body, which serves as the cutting edge. This improves the physical and mechanical properties of the knife edge. Furthermore, the equipment is designed according to a predetermined production process, adhering to the principle of "advanced technology and economic rationality," ensuring consistently high product quality. Simultaneously, the fully automated intelligent operation reduces production costs.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a vibrating knife laser cladding machine, comprising a cladding machine body, a loading and unloading device body on one side of the cladding machine body, a water cooler and a laser generator on one side of the loading and unloading device body, a powder feeder and a control panel on one side of the cladding machine body, a robotic arm on the front of the cladding machine body, and a cladding positioning fixture mounted on the top of the cladding machine body. The cladding positioning fixture includes a clamping base and two pneumatic clamps, the clamping base being mounted on the top of the cladding machine body, and the two pneumatic clamps being mounted on the top of the clamping base.
[0005] The bottom of the loading and unloading device is provided with a storage trolley, and the outer wall of the loading and unloading device is connected to a mounting frame. One end of the mounting frame is through which a first lead screw passes. The outer wall of the first lead screw is threaded with a threaded connecting block. The outer wall of the threaded connecting block is connected with a limit baffle. The bottom of the mounting frame is provided with a sliding groove, and the bottom of the threaded connecting block is connected with a slider.
[0006] As a preferred embodiment of the vibratory knife laser cladding machine of this utility model, one end of the first lead screw is connected to the mounting frame via a bearing to form a rotatable connection structure.
[0007] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the outer wall of the loading and unloading device body is provided with an opening, and one end of the limiting baffle can extend into the interior through the opening on the outer wall of the loading and unloading device body.
[0008] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the threaded connecting block can form a sliding connection structure with the mounting frame through a sliding groove and a sliding block.
[0009] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the bottom of the laser generator is provided with a placement frame, and the two sides of the placement frame are provided with connecting plates. The surface of the connecting plates is bonded with a buffer pad, and the back of the connecting plates is connected with a fixing block. The end of the fixing block is provided with a limit slot. The top of the inner side of the placement frame is connected with two connecting seats. One end of the two connecting seats is penetrated by a bidirectional lead screw. The outer wall of the bidirectional lead screw is threaded with two connecting blocks. The outer wall of the two connecting blocks is connected with an L-shaped insert. The inside of the two connecting seats is connected with a guide rod.
[0010] In a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the ends of the two connecting blocks are sleeved on the outer wall of the guide rod, and the size of the limiting slot is adapted to one end of the L-shaped insert.
[0011] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the bottom of the control panel is provided with a base, the top of the base is connected to a column, one end of the column is through a telescopic column, the outer wall of the telescopic column is installed with a handle, one end of the telescopic column is connected to a mounting base, the mounting base is provided with a spring, the end of the spring is connected to a movable block, one end of the movable block is connected to a locking pin, and the outer wall of the column is connected to two fixing plates, the surfaces of the two fixing plates are provided with multiple slots.
[0012] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the surface of the column is provided with an opening, and the mounting base extends to the outside through the opening on the surface of the column.
[0013] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, the two fixed plates are symmetrically distributed at both ends of the mounting base, and the telescopic column can form an elastic locking structure with the column through the mounting base, spring, movable block, locking pin, fixed plate, and locking groove.
[0014] As a preferred embodiment of the vibrating knife laser cladding machine of this utility model, a feeding slide rail is installed on the top of the loading and unloading device body, a feeding motor is installed inside the loading and unloading device body, a feeding pusher is provided on the inner side of the feeding slide rail, and a pushing cylinder is installed on one side of the loading and unloading device body.
[0015] Compared with the prior art, the beneficial effects of this utility model are:
[0016] First, activate the control panel and use the lever to move the movable block, causing the locking pin to retract. One end of the locking pin will then disengage from its slot. Next, use the handle to lift the telescopic column to raise or lower it. Once the desired position is reached, release the lever; the locking pin will then spring out and insert into the corresponding slot on the fixed plate, allowing for height adjustment of the control panel to accommodate users of different heights. Turn on the power to the powder feeder, robotic arm, chiller, and air dryer. The laser generator requires a key to operate. Connecting plates and buffer pads on both sides of the mounting frame cushion the impact of lateral forces, improving the stability of the top laser generator. By rotating the double-ended screw counterclockwise, the two threaded connecting blocks on their outer walls move in opposite directions along the guide rod. As the two connecting blocks move, one end of the L-shaped insert connected to the outer wall disengages from its limiting slot, allowing for easy disassembly of the connecting plate and buffer pad. Transport the blanks to the designated location in advance and promptly complete the grinding and cleaning of the blanks to make them meet the cladding standard. Use the control box to control the balance push block of the loading and unloading device to retract to the appropriate position, manually and correctly fill the material storage bin with an appropriate amount of material, control the balance push block to press it tightly, and turn on the unloading conveyor belt switch to push the storage trolley into the bottom of the loading and unloading device. Start the laser generator power: The pushing mechanism pushes the workpiece to be processed to the loading position; the robot picks up the workpiece and places it on the vibrating knife special cladding positioning fixture; the powder feeder delivers powder alloy material to the powder feeding head, and combined with the high-power laser cladding equipment, the powder alloy is clad onto the blade body, serving as the cutting edge; after the cladding work is completed, the robot moves it from the vibrating knife special cladding positioning fixture to the unloading conveyor belt, and then into the storage trolley via the conveyor belt; before grabbing the clad semi-finished product, the robot needs to grab a new blank to be clad from the loading mechanism and replace it with the already clad semi-finished product, so as to ensure that the cladding machine can perform the next cladding work. This vibrating knife laser cladding machine can perform both automatic and manual cladding. Operators can manually operate the robotic arm and the cladding head on the machine body via the control panel. Simply switch to manual mode on the control panel, click the "Manual Shaft Group" option box at the bottom of the display screen, enter the point position and cladding speed parameters in the corresponding input boxes, and then manually load and unload the cladding material. After completing the production task, press the stop button on the vertical control box; open each gripper to drop the raw material, initialize the equipment position to zero, disconnect the motor enable, and simultaneously set the robotic arm's running speed to zero on the controller; remove the raw material from the gripper, pick up the dropped material from the gripper, and send it to the conveyor belt on the loading / unloading device body, where the conveyor belt will transport the raw material into the storage trolley.By setting a limiting baffle inside the loading and unloading device, the limiting baffle can limit the pushing of the storage trolley. By adjusting the knob to rotate the first lead screw, the threaded connecting block on its outer wall can move along the slide groove under the action of the slider. As the threaded connecting block moves, the limiting baffle on its outer wall will move together, thereby realizing the adjustment of the position of the limiting baffle and thus the pushing position of the storage trolley. Attached Figure Description
[0017] The accompanying drawings are provided to further illustrate the present invention and form part of the specification. They are used together with the embodiments of the present invention to explain the present invention, but do not constitute a limitation thereof. In the drawings:
[0018] Figure 1 This is a schematic diagram of the main structure of this utility model;
[0019] Figure 2 This is a schematic diagram of the front cross-sectional structure of this utility model;
[0020] Figure 3 This is a schematic diagram of the rear view structure of this utility model;
[0021] Figure 4 This is a schematic diagram of the rear cross-sectional structure of this utility model;
[0022] Figure 5 This is an enlarged structural diagram of the present invention (A).
[0023] Figure 6 This is a schematic diagram of the enlarged structure of the present invention (B).
[0024] Figure 7 This is a C-scale enlarged structural diagram of the present invention;
[0025] Figure 8 This is a schematic diagram of the main structure of the loading and unloading device of this utility model;
[0026] Figure 9 This is a bottom view of the loading and unloading device of this utility model.
[0027] Figure 10 This is a schematic diagram of the disassembly structure of the cladding positioning fixture of this utility model.
[0028] In the diagram: 1. Cladding machine body; 2. Loading and unloading device body; 3. Water chiller; 4. Laser generator; 5. Powder feeder; 6. Control panel; 7. Robotic arm; 8. Storage trolley; 9. Mounting frame; 10. First lead screw; 11. Threaded connecting block; 12. Limiting baffle; 13. Slide groove; 14. Sliding block; 15. Placement frame; 16. Connecting plate; 17. Buffer pad; 18. Fixing block; 19. Limiting slot; 20. Connecting seat; 21. Bidirectional 21. Lead screw; 22. Connecting block; 23. L-shaped insert; 24. Base; 25. Column; 26. Telescopic column; 27. Handle; 28. Mounting base; 29. Spring; 30. Movable block; 31. Locking pin; 32. Fixing plate; 33. Slot; 34. Guide rod; 35. Fusing positioning fixture; 201. Feeding slide rail; 202. Feeding motor; 203. Feeding push block; 204. Pushing cylinder; 351. Fixture base; 352. Pneumatic clamp. Detailed Implementation
[0029] 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.
[0030] Please see Figure 1-10 The present invention provides the following technical solution: a vibrating knife laser cladding machine, including a cladding machine body 1, a loading and unloading device body 2 on one side of the cladding machine body 1, a water cooler 3 and a laser generator 4 on one side of the loading and unloading device body 2, a powder feeder 5 and a control panel 6 on one side of the cladding machine body 1, a robotic arm 7 on the front of the cladding machine body 1, and a cladding positioning fixture 35 installed on the top of the cladding machine body 1. The cladding positioning fixture 35 includes a clamp base 351 and two pneumatic clamps 352. The clamp base 351 is installed on the top of the cladding machine body 1, and the two pneumatic clamps 352 are installed on the top of the clamp base 351.
[0031] It should be noted that the vibrating knife can be clamped and fixed by two pneumatic clamps 352, so that the cladding head on the top of the cladding machine body 1 can perform single-station or double-station cladding.
[0032] By setting up a loading and unloading device body 2, a water cooler 3, a powder feeder 5, and a robotic arm 7, the overall automation capability can be improved. Furthermore, by using a special patented powder alloy material and combining it with a high-power laser cladding device, the powder alloy is clad onto the blade body to serve as the cutting edge, thereby improving the physical and mechanical properties of the cutting edge.
[0033] The bottom of the loading and unloading device body 2 is provided with a storage trolley 8. The outer wall of the loading and unloading device body 2 is connected to a mounting frame 9. One end of the mounting frame 9 is through which a first lead screw 10 passes. The outer wall of the first lead screw 10 is threadedly connected to a threaded connecting block 11. The outer wall of the threaded connecting block 11 is connected to a limit baffle 12. The bottom of the mounting frame 9 is provided with a sliding groove 13. The bottom of the threaded connecting block 11 is connected to a slider 14.
[0034] Preferably, one end of the first lead screw 10 is connected to the mounting frame 9 by a bearing to form a rotating connection structure. The outer wall of the loading and unloading device body 2 is provided with an opening, and one end of the limiting baffle 12 can extend into the interior through the opening of the outer wall of the loading and unloading device body 2. The threaded connecting block 11 can form a sliding connection structure with the mounting frame 9 through the sliding groove 13 and the slider 14.
[0035] In practical use, a limiting baffle 12 is set inside the body 2 of the loading and unloading device. The limiting baffle 12 can limit the push-in storage trolley 8. By adjusting the knob to rotate the first lead screw 10, the threaded connecting block 11 connected to the outer wall can move along the slide groove 13 under the action of the slider 14. As the threaded connecting block 11 moves, the limiting baffle 12 connected to its outer wall will move together, thereby realizing the position adjustment of the limiting baffle 12, and thus also adjusting the push-in position of the storage trolley 8.
[0036] It should be noted that when pushing in the storage trolley 8, you only need to press the pushing end of the storage trolley 8 against the limit baffle 12.
[0037] Preferably, the laser generator 4 has a placement frame 15 at its bottom, and connecting plates 16 on both sides of the placement frame 15. A buffer pad 17 is bonded to the surface of the connecting plate 16, and a fixing block 18 is connected to the back of the connecting plate 16. A limit slot 19 is opened at the end of the fixing block 18. Two connecting seats 20 are connected to the top of the inner side of the placement frame 15. A bidirectional lead screw 21 passes through one end of the two connecting seats 20. Two connecting blocks 22 are threaded to the outer wall of the bidirectional lead screw 21. An L-shaped plug 23 is connected to the outer wall of the two connecting blocks 22. A guide rod 34 is connected inside the two connecting seats 20. The ends of the two connecting blocks 22 are sleeved on the outer wall of the guide rod 34, and the size of the limit slot 19 is adapted to one end of the L-shaped plug 23.
[0038] In practical use, the connecting plates 16 and buffer pads 17 on both sides of the placement frame 15 can buffer the force on the side of the placement frame 15, thereby playing a shock absorption role and improving the stability of the top laser generator 4. Furthermore, by rotating the bidirectional lead screw 21 counterclockwise, the two connecting blocks 22 connected to the outer wall thread can move in opposite directions along the guide rod 34. As the two connecting blocks 22 move, one end of the L-shaped insert 23 connected to the outer wall will disengage from the limiting slot 19, thereby enabling convenient disassembly of the connecting plates 16 and buffer pads 17.
[0039] Preferably, the control panel 6 has a base 24 at its bottom, a column 25 connected to the top of the base 24, a telescopic column 26 extending through one end of the column 25, a handle 27 installed on the outer wall of the telescopic column 26, a mounting base 28 connected to one end of the telescopic column 26, a spring 29 inside the mounting base 28, a movable block 30 connected to the end of the spring 29, a locking pin 31 connected to one end of the movable block 30, two fixing plates 32 connected to the outer wall of the column 25, multiple slots 33 opened on the surface of the two fixing plates 32, an opening opened on the surface of the column 25, and the mounting base 28 extending to the outside through the opening on the surface of the column 25. The two fixing plates 32 are symmetrically distributed at both ends of the mounting base 28. The telescopic column 26 can form an elastic engagement structure with the column 25 through the mounting base 28, spring 29, movable block 30, locking pin 31, fixing plates 32, and slots 33.
[0040] In practical use, the movable block 30 is moved by the lever to retract the locking pin 31. At this time, one end of the locking pin 31 will disengage from the slot 33. Then, the telescopic column 26 is lifted by the handle 27 to raise or lower. When the appropriate position is reached, the lever is released. At this time, the locking pin 31 will pop out under the action of the spring 29 and insert into the corresponding slot 33 on the fixing plate 32, thereby adjusting the height of the control panel 6, making it convenient for users of different heights to operate the control panel 6.
[0041] Preferably, a feeding slide rail 201 is installed on the top of the loading and unloading device body 2, a feeding motor 202 is installed inside the loading and unloading device body 2, a feeding push block 203 is provided on the inner side of the feeding slide rail 201, and a pushing cylinder 204 is installed on one side of the loading and unloading device body 2.
[0042] In practical use, the feeding motor 202 drives the lead screw to rotate, so that the feeding pusher 203 pushes the vibrating knife blank along the feeding slide rail 201. Then, the starting pusher cylinder 204 pushes the vibrating knife blank to one side, and the robotic arm 7 grabs the pushed vibrating knife blank and sends it to the cladding positioning fixture 35 for fixing, so that subsequent cladding can be carried out.
[0043] Working principle: First, activate the control panel 6 and use the lever to move the movable block 30 to retract the locking pin 31. At this time, one end of the locking pin 31 will disengage from the slot 33. Then, use the handle 27 to lift the telescopic column 26 to raise or lower it. When the desired position is reached, release the lever. At this time, the locking pin 31 will pop out under the action of the spring 29 and insert into the corresponding slot 33 on the fixed plate 32, thereby adjusting the height of the control panel 6 for convenient operation by users of different heights. Turn on the power to the powder feeder 5, robotic arm 7, water chiller 3, and air dryer. The laser generator 4 needs to be turned on with a key. By setting connecting plates 16 and buffer pads 17 on both sides of the placement frame 15, the force on the side of the placement frame 15 can be buffered, thereby playing a shock absorption role and improving the stability of the top laser generator 4. By rotating the bidirectional lead screw 21 counterclockwise, the two connecting blocks 22 connected to its outer wall thread can move in opposite directions along the guide rod 34. As the two connecting blocks 22 move, one end of the L-shaped insert 23 connected to its outer wall will disengage from the limiting slot 19, thereby facilitating the disassembly of the connecting plate 16 and the buffer pad 17. The blank is transported to the designated position in advance, and the blank is polished and cleaned in time to make the blank meet the cladding standard. The balance push block of the loading and unloading device body 2 is controlled by the control box to retract to the appropriate position. The appropriate amount of blank is manually and correctly loaded into the material storage bin, the balance push block is controlled to tighten, and the unloading conveyor belt switch is turned on to push the storage trolley 8 into the bottom of the loading and unloading device body 2. Start the power supply of laser generator 4: The pushing mechanism pushes the workpiece to be processed to the loading position; the robotic arm 7 picks up the workpiece to be processed and places it on the vibrating knife special cladding positioning fixture 35; the powder feeder 5 delivers powder alloy material to the powder feeding head, and combined with the high-power laser cladding equipment, the powder alloy is clad onto the knife body, serving as the cutting edge; after the cladding work is completed, the robotic arm 7 moves it from the vibrating knife special cladding positioning fixture 35 to the unloading conveyor belt, and enters the storage trolley 8 through the conveyor belt; before grabbing the clad semi-finished product, the robotic arm 7 needs to grab a new blank to be clad from the loading mechanism and replace it with the clad semi-finished product, so as to ensure that the cladding machine can carry out the next cladding work. Meanwhile, this vibrating knife laser cladding machine can not only perform automatic cladding but also manual cladding. Operators can manually operate the robotic arm 7 and the cladding head on the machine body 1 through the control panel 6. Simply switch to manual mode on the operation page of the control panel 6, click the shaft group manual option box at the bottom of the display screen, switch to the shaft group manual page, and enter the point position and cladding speed and other parameters in the corresponding input box to perform manual loading and unloading cladding operations.After completing the production task, press the stop button on the control panel 6; open each gripper to drop the raw material, initialize the equipment position to zero and disconnect the motor enable, and simultaneously set the running speed of the robotic arm 7 to zero on the controller; remove the raw material from the gripper, pick up the dropped raw material from the gripper and send it to the conveyor belt on the loading / unloading device body 2, and use the conveyor belt to send the raw material into the storage trolley 8. By setting a limit baffle 12 inside the loading / unloading device body 2, the limit baffle 12 can limit the pushed-in storage trolley 8, and by adjusting the knob to rotate the first lead screw 10, the threaded connecting block 11 on its outer wall can move along the slide groove 13 under the action of the slider 14. As the threaded connecting block 11 moves, the limit baffle 12 on its outer wall will move together, thereby realizing the position adjustment of the limit baffle 12, and thus also adjusting the pushing position of the storage trolley 8.
[0044] Finally, it should be noted that the above are merely preferred embodiments of this utility model and are not intended to limit the utility model. Although the utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. A vibrating-knife laser cladding machine comprising a cladding machine body (1), characterized in that: The side of the cladding machine body (1) is provided with an upper and lower feeding device body (2), one side of the upper and lower feeding device body (2) is provided with a water cooling machine (3) and a laser generator (4), one side of the cladding machine body (1) is provided with a powder feeder (5) and a control panel (6), the front of the cladding machine body (1) is provided with a mechanical arm (7), the top of the cladding machine body (1) is provided with a cladding positioning tool (35), the cladding positioning tool (35) comprises a clamp base (351) and two pneumatic clamps (352), the clamp base (351) is installed on the top of the cladding machine body (1), and the two pneumatic clamps (352) are installed on the top of the clamp base (351). The bottom of the upper and lower feeding device body (2) is provided with a storage trolley (8), the outer wall of the upper and lower feeding device body (2) is connected with a mounting frame (9), one end of the mounting frame (9) penetrates through a first lead screw (10), the outer wall of the first lead screw (10) is threadedly connected with a threaded connecting block (11), the outer wall of the threaded connecting block (11) is connected with a limiting baffle (12), the bottom of the mounting frame (9) is provided with a sliding groove (13), and the bottom of the threaded connecting block (11) is connected with a sliding block (14).
2. The laser cladding machine with a vibrating tool according to claim 1, characterized in that: One end of the first lead screw (10) is rotatably connected with the mounting frame (9) through a bearing.
3. The vibrating-knife laser cladding machine of claim 1, wherein: The outer wall of the upper and lower feeding device body (2) is provided with an opening, and one end of the limiting baffle (12) can extend into the interior through the opening in the outer wall of the upper and lower feeding device body (2).
4. The vibrating-knife laser cladding machine of claim 1, wherein: The threaded connecting block (11) can be slidably connected with the mounting frame (9) through the sliding groove (13) and the sliding block (14).
5. The vibrating-knife laser cladding machine of claim 1, wherein: The bottom of the laser generator (4) is provided with a placing rack (15), both sides of the placing rack (15) are provided with a connecting plate (16), the surface of the connecting plate (16) is bonded with a buffer pad (17), the back surface of the connecting plate (16) is connected with a fixed block (18), the end of the fixed block (18) is provided with a limiting slot (19), the inner top of the placing rack (15) is connected with two connecting seats (20), one end of the two connecting seats (20) penetrates through a bidirectional lead screw (21), the outer wall of the bidirectional lead screw (21) is threadedly connected with two connecting blocks (22), the outer wall of the two connecting blocks (22) is connected with an L-shaped plug block (23), and the interiors of the two connecting seats (20) are connected with a guide rod (34).
6. A vibrating tool laser cladding machine according to claim 5, wherein: The ends of the two connecting blocks (22) are sleeved on the outer wall of the guide rod (34), and the limiting slot (19) and one end of the L-shaped plug block (23) are matched in size.
7. The vibrating-knife laser cladding machine of claim 1, wherein: The bottom of the control panel (6) is provided with a base (24), the top of the base (24) is connected with a stand (25), one end of the stand (25) penetrates through a telescopic column (26), the outer wall of the telescopic column (26) is mounted with a handle (27), one end of the telescopic column (26) is connected with a mounting seat (28), the inside of the mounting seat (28) is provided with a spring (29), the end of the spring (29) is connected with a movable block (30), one end of the movable block (30) is connected with a clamping pin (31), the outer wall of the stand (25) is connected with two fixed plates (32), a plurality of clamping grooves (33) are formed in the surface of the two fixed plates (32).
8. A vibrating tool laser cladding machine according to claim 7, wherein: The surface of the stand (25) is provided with an opening, and the mounting seat (28) extends to the outside through the opening in the surface of the stand (25).
9. The vibrating-knife laser cladding machine of claim 7, wherein: The two fixed plates (32) are symmetrically distributed at both ends of the mounting seat (28), and the telescopic column (26) can form an elastic clamping structure with the stand (25) through the mounting seat (28), the spring (29), the movable block (30), the clamping pin (31), the fixed plate (32) and the clamping groove (33).
10. The vibratory knife laser cladding machine of claim 1, wherein: The top of the feeding device body (2) is mounted with a feeding slide rail (201), the inside of the feeding device body (2) is mounted with a feeding motor (202), the inner side of the feeding slide rail (201) is provided with a feeding push block (203), and one side of the feeding device body (2) is mounted with a pushing cylinder (204).