An ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell

By using a clamping system that combines electric telescopic rods, hydraulic rods, servo motors, and gears, along with buffer springs and limit posts, the system solves the problems of low efficiency and insufficient positioning accuracy of existing equipment when clamping titanium plates of different sizes. This achieves efficient and stable titanium plate processing, and the heat dissipation mechanism reduces maintenance costs and processing heat, while improving the flexibility and processing consistency of the equipment.

CN224273744UActive Publication Date: 2026-05-26HEFEI YINGRUI HI-TECH NEW MATERIAL TECH CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEFEI YINGRUI HI-TECH NEW MATERIAL TECH CO LTD
Filing Date
2025-04-24
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing ultrafast laser micro-hole processing equipment for titanium plates in electrolytic cells suffers from low efficiency, insufficient positioning accuracy, and high maintenance costs when clamping titanium plates of different sizes. In particular, it is difficult to meet the flexibility and reliability requirements of industrial production when dealing with titanium plates with extreme size differences or special shapes.

Method used

The clamping system, which combines electric telescopic rods, hydraulic rods, servo motors, and gears, along with buffer springs and limit posts, enables automated clamping of titanium plates of different sizes. A cooling mechanism utilizes circulating coolant to reduce processing heat, ensuring processing accuracy and efficiency.

Benefits of technology

It enables efficient and stable clamping and processing of titanium plates of different sizes, reduces human error and maintenance costs, improves processing consistency and equipment flexibility, and ensures smooth processing.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This utility model relates to the field of laser micro-hole processing equipment, and discloses an ultrafast laser micro-hole processing device for titanium plates in electrolytic cells. The device includes an operating table, with multiple electrically operated telescopic rods fixedly connected to the inner wall of the operating table. One end of each of the telescopic rods is fixedly connected to a placement platform. A fixed plate is fixedly connected to the front of the top of the operating table, and a hydraulic rod is fixedly connected to the rear of the fixed plate. One end of the hydraulic rod is fixedly connected to an L-shaped bracket. A sliding block is slidably connected to the front of the L-shaped bracket, and a laser device is fixedly connected to the front of the sliding block. A servo motor is fixedly connected to the top of the L-shaped bracket. In this utility model, the placement platform is raised by activating the electric telescopic rods. During the rise, the slider is squeezed by the fixed plate, causing the sliders on both sides to move. This drives the L-shaped clamping plate and clamping block to clamp the titanium plate. The clamping block slides on the clamping plate and compresses the buffer spring, thereby completing the processing of titanium plates from different electrolytic cells.
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Description

Technical Field

[0001] This utility model relates to the field of laser micro-hole processing equipment, and in particular to an ultrafast laser micro-hole processing equipment for titanium plates in an electrolytic cell. Background Technology

[0002] An ultrafast laser micro-hole processing device for titanium plates in electrolytic cells is a specialized device for high-precision micro-hole processing on the surface of titanium plates in electrolytic cells. Its core principle is to utilize the high energy density and short pulse characteristics of ultrafast laser beams to instantly melt or vaporize the material on the titanium plate in a non-contact manner, forming micron- or even nano-sized micro-holes. This device is widely used in electrolytic cell manufacturing, new energy batteries, and semiconductor fields, and has the advantages of high processing efficiency, high precision, and small heat-affected zone. The device consists of an ultrafast laser, a beam transmission system, a processing platform, a fixture device, and a heat dissipation device. Its core objective is to achieve efficient and stable processing of micro-holes in titanium plates.

[0003] Early ultrafast laser micro-hole processing equipment for titanium plates in electrolytic cells used a fixed clamping structure, clamping and fixing the titanium plates through mechanical positioning blocks or manually adjusting bolts. Although this structure is simple, the clamping range is limited, making it unable to adapt to titanium plates of different sizes. This leads to frequent clamping changes during production, resulting in low efficiency. Furthermore, manual adjustment is prone to human error, causing insufficient positioning accuracy of the titanium plates and affecting the consistency of micro-hole processing. To solve these problems, existing technologies have gradually adopted pneumatic or electric adaptive clamps. These clamps use sensors to detect the edge position of the titanium plate and automatically adjust the spacing of the clamping arms to achieve rapid positioning of titanium plates of different sizes. However, such clamps still have limitations: their adaptive adjustment depends on a preset clamping range. When the size of the titanium plate exceeds the equipment's design parameters, the machine must be stopped and the adapter module replaced. In addition, the mechanical movement of the clamping arms may lead to a decrease in positioning accuracy due to long-term wear, and the complex transmission structure increases equipment maintenance costs. Therefore, although existing technologies avoid the drawbacks of manual operation through automated adjustment, they still cannot meet the requirements of industrial production for flexibility and reliability when dealing with titanium plates with extreme size differences or special shapes. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides an ultrafast laser micro-hole processing device for electrolytic cell titanium plates, which aims to improve the problem that the existing technology cannot clamp and fix electrolytic cell titanium plates of different sizes.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: an ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, comprising an operating table, wherein multiple electric telescopic rods are fixedly connected to the inner wall of the operating table, and a placement platform is fixedly connected to one end of each of the multiple electric telescopic rods; a fixing plate is fixedly connected to the front side of the top of the operating table, and a hydraulic rod is fixedly connected to the rear side of the fixing plate; an L-shaped bracket is fixedly connected to one end of the hydraulic rod; a sliding block is slidably connected to the front side of the L-shaped bracket; a laser device is fixedly connected to the front side of the sliding block; and a servo is fixedly connected to the top of the L-shaped bracket. The servo motor has a gear fixedly connected to its output end. A rack is fixedly connected to the top of the sliding block. The outer wall of the gear meshes with the outer wall of the rack. Slider blocks are slidably connected to the left and right sides of the inner wall of the fixed plate. An L-shaped clamping plate is rotatably connected to the rear side of the slider. A clamping block is slidably connected to the rear side of the inner wall of the L-shaped clamping plate. Buffer springs are fixedly connected to the front and rear sides of the outer wall of the clamping block. The other end of the buffer spring is fixedly connected to the outer wall of the L-shaped clamping plate. A heat dissipation mechanism is provided at the bottom of the inner wall of the operating table for heat dissipation treatment of the placement table.

[0006] As a further description of the above technical solution:

[0007] The heat dissipation mechanism includes a liquid storage tank. The bottom of the liquid storage tank is fixedly connected to the bottom of the inner wall of the operating table. A water pump is connected to the right side of the outer wall of the liquid storage tank. A flexible hose is connected to the output end of the water pump. An arc-shaped metal pipe is fixedly connected to the inner wall of the platform. The other end of the flexible hose is connected to one end of the arc-shaped metal pipe. A conduit is connected to the other end of the arc-shaped metal pipe. A radiator is connected to the other end of the radiator. A connecting pipe is connected to the other end of the connecting pipe. The other end of the connecting pipe is connected to the outer wall of the liquid storage tank. A filling pipe is connected to the left side of the outer wall of the liquid storage tank.

[0008] As a further description of the above technical solution:

[0009] Limiting posts are provided on both the front and rear sides of the outer wall of the L-shaped clamping plate. The outer wall of the limiting post penetrates the L-shaped clamping plate and is fixedly connected to the outer wall of the clamping block.

[0010] As a further description of the above technical solution:

[0011] An observation window is provided on the front side of the outer wall of the liquid storage tank, and an outer frame is fixedly connected to the outer wall of the observation window.

[0012] As a further description of the above technical solution:

[0013] A nameplate is fixedly connected to the front side of the outer wall of the control panel, and a warning sign block is fixedly connected to the front side of the fixing plate.

[0014] As a further description of the above technical solution:

[0015] A column is fixedly connected to the top of the L-shaped bracket, and an alarm light is fixedly connected to the top of the column.

[0016] As a further description of the above technical solution:

[0017] A controller is fixedly connected to the top right side of the operating platform. The controller is electrically connected to the electric telescopic rod, hydraulic rod, laser equipment, servo motor and water pump respectively.

[0018] As a further description of the above technical solution:

[0019] The outer wall of the clamping block is fixedly connected to an anti-slip plate, and the outer wall of the placement platform is rounded.

[0020] This utility model has the following beneficial effects:

[0021] 1. In this utility model, by placing the electrolytic cell titanium plate on the placement platform, the electric telescopic rod is activated to raise the placement platform. During the rise, the slider is squeezed by the fixed plate, causing the sliders on both sides to move, which drives the L-shaped clamping plate and clamping block to clamp the titanium plate. After the clamping block stops, the L-shaped clamping plate continues to move, and the clamping block slides on the clamping plate and squeezes the buffer spring. Then, the laser equipment is activated to drill holes. The servo motor and gear drive the laser equipment to move left and right, and the hydraulic rod moves the L-shaped support, thereby completing the processing of titanium plates from different electrolytic cells.

[0022] 2. In this utility model, by adding coolant to the storage tank and starting the water pump, the coolant is sent into the bow-shaped metal pipe through the hose. The thermal conductivity of the platform transfers the heat generated during processing to the coolant. The coolant enters the radiator through the conduit for heat dissipation. After heat dissipation, the coolant returns to the storage tank through the connecting pipe. The filling pipe facilitates the replenishment of coolant, thereby ensuring smooth processing. Attached Figure Description

[0023] Figure 1 This is a perspective view of an ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, as proposed in this utility model.

[0024] Figure 2 This is a front view of an ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, as proposed in this utility model.

[0025] Figure 3 This is a side view of an ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, as proposed in this utility model.

[0026] Figure 4 This is a schematic diagram of the structure of an L-shaped support for an electrolytic cell titanium plate ultrafast laser micro-hole processing equipment proposed in this utility model;

[0027] Figure 5 This is a schematic diagram of the heat dissipation mechanism of an ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, as proposed in this utility model.

[0028] Legend:

[0029] 1. Control panel; 2. Heat dissipation mechanism; 201. Liquid storage tank; 202. Water pump; 203. Hoses; 204. Bow-shaped metal pipe; 205. Conduit; 206. Radiator; 207. Connecting pipe; 208. Filling pipe; 3. Electric telescopic rod; 4. Placement platform; 5. Fixing plate; 6. Hydraulic rod; 7. L-shaped bracket; 8. Sliding block; 9. Laser equipment; 10. Servo motor; 11. Gear; 12. Rack; 13. Slider; 14. L-shaped clamp; 15. Clamping block; 16. Buffer spring; 17. Limiting post; 18. Anti-slip plate; 19. Observation window; 20. Outer frame; 21. Nameplate; 22. Warning sign block; 23. Column; 24. Alarm light; 25. Controller. Detailed Implementation

[0030] 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.

[0031] Reference Figure 1 , Figure 3 and Figure 4This utility model provides an embodiment of an ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, comprising an operating table 1. Multiple electric telescopic rods 3 are fixedly connected to the inner wall of the operating table 1. One end of each of the electric telescopic rods 3 is fixedly connected to a placement platform 4. A fixing plate 5 is fixedly connected to the front of the top of the operating table 1. A hydraulic rod 6 is fixedly connected to the rear of the fixing plate 5. An L-shaped bracket 7 is fixedly connected to one end of the hydraulic rod 6. Activating the hydraulic rod 6 moves the L-shaped bracket 7. A sliding block 8 is slidably connected to the front of the L-shaped bracket 7. A laser device 9 is fixedly connected to the front of the sliding block 8. A servo motor 10 is fixedly connected to the top of the L-shaped bracket 7. A gear 11 is fixedly connected to the output end of the servo motor 10. A rack 12 is fixedly connected to the top of the sliding block 8. The outer wall of the gear 11 meshes with the outer wall of the rack 12. Activating the servo motor 10 rotates the gear 11. The meshing relationship between the gear 11 and the rack 12 causes the slider to move. 13 drives the laser device 9 to move left and right above the L-shaped bracket 7. The inner wall of the fixed plate 5 is slidably connected to the left and right sides of the slider 13. The rear side of the slider 13 is rotatably connected to the L-shaped clamp 14. The rear side of the inner wall of the L-shaped clamp 14 is slidably connected to the clamping block 15. The electric telescopic rod 3 is activated to drive the placement platform 4 to move to the top together. At this time, the electrolytic cell titanium plate will move to the top together with the placement platform 4. When the slider 13 rises with the placement platform 4, it is squeezed by the inclined groove above the fixed plate 5, so that the two sliders 13 move relative to each other above the placement platform 4. At this time, the slider 13 will drive the L-shaped clamp 14 to move relative to each other, and then drive the clamping block 15 to clamp the electrolytic cell titanium plate from both sides. The outer wall of the clamping block 15 is fixedly connected to the front and rear sides of the front and rear sides of the front and rear sides. The other end of the buffer spring 16 is fixedly connected to the outer wall of the L-shaped clamp 14. The bottom of the inner wall of the operating table 1 is provided with a heat dissipation mechanism 2, which is used to dissipate heat from the placement platform 4.

[0032] Specifically, the electrolytic titanium plate to be processed is placed above the placement platform 4. Then, by activating the electric telescopic rod 3, the placement platform 4 is moved upwards. At this time, the electrolytic titanium plate moves upwards along with the placement platform 4. As the placement platform 4 rises, the slider 13 is squeezed by the inclined groove above the fixed plate 5, causing the two sliders 13 to move relative to each other above the placement platform 4. At this time, the slider 13 will drive the L-shaped clamping plate 14 to move relative to each other, thereby causing the clamping block 15 to clamp the electrolytic titanium plate from both sides. Due to their different sizes, when the clamping block 15 and the electrolytic titanium plate are clamped, the clamping block 15 will clamp the electrolytic titanium plate from both sides. Upon contact, the clamping block 15 stops moving, but the L-shaped clamping plate 14 continues to move. The clamping block 15 slides above the L-shaped clamping plate 14 and compresses the buffer spring 16 until the placement platform 4 rises to the required height. Then, the laser equipment 9 is activated to drill holes, and the servo motor 10 is activated to drive the gear 11 to rotate. The meshing relationship between the gear 11 and the rack 12 causes the slider 13 to move the laser equipment 9 left and right above the L-shaped bracket 7. Then, the hydraulic rod 6 can be activated to move the L-shaped bracket 7, thereby completing the processing of titanium plates from different electrolytic cells.

[0033] Reference Figure 1 , Figure 2 and Figure 5 The heat dissipation mechanism 2 includes a liquid storage tank 201, the bottom of which is fixedly connected to the bottom of the inner wall of the operating platform 1. Coolant is added to the liquid storage tank 201. A water pump 202 is connected to the right side of the outer wall of the liquid storage tank 201. A hose 203 is connected to the output end of the water pump 202. An arc-shaped metal pipe 204 is fixedly connected to the inner wall of the platform 4. The other end of the hose 203 is connected to one end of the arc-shaped metal pipe 204. When the water pump 202 is started, the coolant in the liquid storage tank 201 is drawn out and sent into the arc-shaped metal pipe 204 through the hose 203. The other end of the arc-shaped metal pipe 204 is connected to... There is a conduit 205, the other end of which is connected to a radiator 206. The other end of the radiator 206 is connected to a connecting pipe 207. The other end of the connecting pipe 207 is connected to the outer wall of the reservoir 201. The left side of the outer wall of the reservoir 201 is connected to a filling pipe 208 and an arc-shaped metal pipe 204, which transfer heat to the coolant inside. The coolant that absorbs heat then enters the radiator 206 through the conduit 205. The radiator 206 then dissipates the heat from the coolant. After the heat dissipation is completed, the coolant returns to the reservoir 201 through the connecting pipe 207.

[0034] Specifically, coolant is first added to the storage tank 201. When processing the titanium plate of the electrolytic cell, the water pump 202 is started to draw out the coolant from the storage tank 201 and send it into the bow-shaped metal pipe 204 through the hose 203. Since the placement platform 4 has good thermal conductivity, it will transfer the heat generated during processing to the coolant inside through the bow-shaped metal pipe 204. Then, the coolant that has absorbed heat enters the radiator 206 through the conduit 205. The radiator 206 then dissipates the heat absorbed by the coolant. After the heat dissipation is completed, the coolant returns to the storage tank 201 through the connecting pipe 207. The coolant can be easily replenished to the storage tank 201 through the filling pipe 208, thereby ensuring the smooth progress of processing.

[0035] Reference Figure 1 , Figure 2 and Figure 3 Limiting posts 17 are provided on both the front and rear sides of the outer wall of the L-shaped clamping plate 14. The outer wall of the limiting post 17 penetrates the L-shaped clamping plate 14 and is fixedly connected to the outer wall of the clamping block 15. The limiting post 17 ensures that the movement trajectory of the clamping block 15 is always consistent with the axis of the limiting post 17, ensuring that the clamping force is evenly distributed on the edge of the titanium plate and avoiding the processing position deviation caused by the tilt of the clamping block 15. An observation window 19 is provided on the front side of the outer wall of the liquid storage tank 201. The observation window 19 can observe the liquid level and contamination status in the liquid storage tank 201 in real time. An outer frame 20 is fixedly connected to the outer wall of the observation window 19, which can enhance the structural strength of the observation window 19 area. A nameplate 21 is fixedly connected to the front side of the outer wall of the operating table 1. The nameplate 21 can facilitate the operator to quickly identify the equipment parameters. A warning sign block 22 is fixedly connected to the front side of the fixed plate 5. The warning sign block 22 can play a significant safety reminder role when the equipment is running.

[0036] Specifically, the movement trajectory of the clamping block 15 is always aligned with the axis of the limiting post 17, ensuring that the clamping force is evenly distributed on the edge of the titanium plate and preventing the processing position from shifting due to the tilt of the clamping block 15. The liquid level and contamination status in the storage tank 201 can be observed in real time through the observation window 19. At the same time, the vacuum jacket can effectively block heat transfer in the processing area and prevent fogging on the glass surface from affecting observation. Furthermore, the outer frame 20 can enhance the structural strength of the observation window 19 area, preventing glass breakage caused by pressure fluctuations inside the storage tank 201. Meanwhile, the sealing strip can effectively prevent coolant leakage and ensure the sealing of the equipment during operation. The nameplate 21 allows operators to quickly identify equipment parameters, and the warning sign block 22 provides significant safety reminders during equipment operation.

[0037] Reference Figure 1 , Figure 2 and Figure 3The top of the L-shaped bracket 7 is fixedly connected to a column 23, which forms an independent support system for the warning device. The top of the column 23 is fixedly connected to an alarm light 24, which can remind the operator to handle the situation in time when a malfunction occurs. The top right side of the operating table 1 is fixedly connected to a controller 25, which is electrically connected to the electric telescopic rod 3, the hydraulic rod 6, the laser equipment 9, the servo motor 10, and the water pump 202. The controller 25 can control the starting and running power of the electric telescopic rod 3, the hydraulic rod 6, the laser equipment 9, the servo motor 10, and the water pump 202 respectively. The outer wall of the clamping block 15 is fixedly connected to an anti-slip plate 18, which can better clamp the titanium plate of the electrolytic cell. The outer wall of the placement platform 4 is rounded to avoid scratches caused by sharp edges during the handling of the titanium plate.

[0038] Specifically, the support system of the independent warning device can be formed by the column 23. Compared with the traditional integrated installation, it can reduce vibration transmission and ensure that the alarm light 24 remains stable in the processing vibration environment. The alarm light 24 can remind the operator to deal with it in time when a fault occurs. The controller 25 can control the starting and running power of the electric telescopic rod 3, hydraulic rod 6, laser equipment 9, servo motor 10 and water pump 202 respectively. The anti-slip plate 18 can better hold the titanium plate of the electrolytic cell. The smooth treatment of the outer wall of the placement platform 4 can avoid scratches caused by sharp edges during the handling of titanium plates, and at the same time improve the corrosion resistance of the platform.

[0039] Working principle: Before using the device, firstly, the titanium plate to be processed in the electrolytic cell is placed on the placement platform 4. Then, the electric telescopic rod 3 is activated, causing the placement platform 4 and the titanium plate to move upward together. During this process, the slider 13 is squeezed by the inclined groove on the fixed plate 5, causing it to move relative to the placement platform 4 as the platform rises. The movement of the slider 13 then drives the L-shaped clamping plate 14 to move synchronously, so that the clamping blocks 15 clamp the titanium plate in the electrolytic cell from both sides. Due to the size difference, the clamping blocks 15 contact the titanium plate in the electrolytic cell. Then the movement stops, while the L-shaped clamp 14 continues to move, causing the clamping block 15 to slide on the L-shaped clamp 14 and compress the buffer spring 16 until the placement platform 4 reaches the predetermined height. Then, the laser equipment 9 is started to drill holes in the titanium plate. By starting the servo motor 10, the gear 11 is driven to rotate, and through the meshing of the gear 11 and the rack 12, the slider 13 drives the laser equipment 9 to move left and right on the L-shaped bracket 7. Finally, the hydraulic rod 6 is started to push the L-shaped bracket 7 to move, thereby realizing the processing of titanium plates from different electrolytic cells.

[0040] Furthermore, through the heat dissipation mechanism 2, coolant is first injected into the storage tank 201. During the processing of the electrolytic cell titanium plate, the water pump 202 is started to extract the coolant from the storage tank 201 and deliver it to the bow-shaped metal tube 204 through the hose 203. Since the placement platform 4 has excellent thermal conductivity, it can transfer the heat generated during the processing to the bow-shaped metal tube 204 and further to the coolant inside. Subsequently, the coolant that has absorbed the heat flows to the radiator 206 through the conduit 205. During this process, the radiator 206 dissipates the heat from the coolant. The coolant that has completed the heat dissipation returns to the storage tank 201 through the connecting pipe 207. At the same time, the coolant can be conveniently replenished to the storage tank 201 through the filling pipe 208 to ensure the smooth progress of the processing.

[0041] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present 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 the present utility model should be included within the protection scope of the present utility model.

Claims

1. An ultrafast laser micro-hole processing device for titanium plates in an electrolytic cell, comprising an operating table (1), characterized in that: Multiple electric telescopic rods (3) are fixedly connected to the inner wall of the operating table (1). One end of each of the multiple electric telescopic rods (3) is fixedly connected to a placement platform (4). A fixing plate (5) is fixedly connected to the front of the top of the operating table (1). A hydraulic rod (6) is fixedly connected to the rear of the fixing plate (5). An L-shaped bracket (7) is fixedly connected to one end of the hydraulic rod (6). A sliding block (8) is slidably connected to the front of the L-shaped bracket (7). A laser device (9) is fixedly connected to the front of the sliding block (8). A servo motor (10) is fixedly connected to the top of the L-shaped bracket (7). A gear (11) is fixedly connected to the output end of the servo motor (10). The sliding block (8) A rack (12) is fixedly connected to the top of the plate (1), and the outer wall of the gear (11) meshes with the outer wall of the rack (12). A slider (13) is slidably connected to the left and right sides of the inner wall of the fixed plate (5). An L-shaped clamp (14) is rotatably connected to the rear side of the slider (13). A clamp (15) is slidably connected to the rear side of the inner wall of the L-shaped clamp (14). A buffer spring (16) is fixedly connected to the front and rear sides of the outer wall of the clamp (15). The other end of the buffer spring (16) is fixedly connected to the outer wall of the L-shaped clamp (14). A heat dissipation mechanism (2) is provided at the bottom of the inner wall of the operating table (1). The heat dissipation mechanism (2) is used to dissipate heat from the placement table (4).

2. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 1, characterized in that: The heat dissipation mechanism (2) includes a liquid storage tank (201). The bottom of the liquid storage tank (201) is fixedly connected to the bottom of the inner wall of the operating table (1). A water pump (202) is connected to the right side of the outer wall of the liquid storage tank (201). A hose (203) is connected to the output end of the water pump (202). An arc-shaped metal pipe (204) is fixedly connected to the inner wall of the placement platform (4). The other end of the hose (203) is connected to one end of the arc-shaped metal pipe (204). A conduit (205) is connected to the other end of the arc-shaped metal pipe (204). A radiator (206) is connected to the other end of the radiator (206). A connecting pipe (207) is connected to the other end of the connecting pipe (207). The other end of the connecting pipe (207) is connected to the outer wall of the liquid storage tank (201). A filling pipe (208) is connected to the left side of the outer wall of the liquid storage tank (201).

3. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 1, characterized in that: Limiting posts (17) are provided on both the front and rear sides of the outer wall of the L-shaped clamp (14). The outer wall of the limiting post (17) penetrates the L-shaped clamp (14) and is fixedly connected to the outer wall of the clamp (15).

4. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 2, characterized in that: An observation window (19) is provided on the front side of the outer wall of the liquid storage tank (201), and an outer frame (20) is fixedly connected to the outer wall of the observation window (19).

5. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 1, characterized in that: A nameplate (21) is fixedly connected to the front side of the outer wall of the operating table (1), and a warning sign block (22) is fixedly connected to the front side of the fixing plate (5).

6. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 1, characterized in that: The top of the L-shaped bracket (7) is fixedly connected to a column (23), and the top of the column (23) is fixedly connected to an alarm light (24).

7. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 2, characterized in that: A controller (25) is fixedly connected to the top right side of the operating table (1). The controller (25) is electrically connected to the electric telescopic rod (3), the hydraulic rod (6), the laser device (9), the servo motor (10), and the water pump (202).

8. The ultrafast laser micro-hole processing equipment for electrolytic titanium plates according to claim 1, characterized in that: The outer wall of the clamp (15) is fixedly connected to the anti-slip plate (18), and the outer wall of the placement platform (4) is rounded.