A blade marking processing device
By designing a blade marking processing device and employing laser ablation and smoke filtration technologies, the problems of chaotic blade marking and toxic fumes have been solved, achieving efficient automated marking and safe production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-10
- Publication Date
- 2026-03-13
AI Technical Summary
Existing blade processing equipment lacks marking processing functions, resulting in confusion and low production efficiency. Furthermore, the use of acrylic and other plastic materials generates toxic fumes during laser marking, which endangers human health.
Design a blade marking processing device that uses laser ablation marking technology combined with a smoke extraction and filtration mechanism to achieve automatic marking and smoke filtration, thereby improving production efficiency and reducing toxic gas emissions.
The automated marking and processing of blades has been achieved, which has improved production efficiency and effectively filtered out toxic fumes, ensuring the safety of operators.
Smart Images

Figure CN115625881B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of blade processing, and more specifically, to a blade marking processing device. Background Technology
[0002] After the blades are manufactured, an identification code needs to be processed onto the blade body using an electrochemical process. The identification code includes the product code and serial number, etc. In the blade forging production site, dozens or even hundreds of forgings are produced and handled simultaneously. To prevent problems such as mixing of different materials, mixing of batches of the same material from different melting furnaces, and mixing of forgings with similar shapes and sizes, in addition to physical spatial isolation and the placement of identification tags, the forging numbers of the forged blades must also be marked in a timely manner.
[0003] In the prior art, such as the Chinese patent CN102990514A "A method for cutting the flash of blade forgings", it can solve the problem of severe deformation of the blade forging surface that occurs when using a conventional cutting die. Therefore, it can save the conventional hot forming process of the forging after cutting, resulting in low processing cost, high production efficiency, and stable blade forging surface dimensions. Its feature is that it uses a water jet cutting machine to cut and remove the flash of the blade forging. It includes the following processing steps: the electrical control cabinet (1) installs a special water jet cutting fixture on the working platform of the water jet cutting machine; the blade processing door (2) positions the blade forging to be processed on the water jet cutting fixture; the laser source (3) performs water jet cutting on the flash of the blade forging after compiling the water jet cutting CNC program; the moving positioning shaft (4) inspects the blade forging after flash cutting and then flows into the next process.
[0004] In the existing technology, the existing blade processing equipment lacks the function of marking the blade castings, which can easily lead to confusion in the later transportation process after processing. Moreover, the existing marking methods all rely on manual marking, which is extremely inefficient and results in reduced production efficiency. In addition, since the existing blades use plastic materials such as acrylic, these materials will generate fumes during the laser marking process, and the fumes contain toxic gases that can easily harm the human body. Summary of the Invention
[0005] To overcome the shortcomings of existing blade processing equipment, which lacks the function of marking blade castings, leading to confusion during subsequent transportation and other processes, and because existing marking methods rely on manual marking, resulting in extremely low efficiency and reduced production efficiency, this invention aims to provide a blade marking processing device capable of laser ablation marking of blades, thereby improving processing efficiency.
[0006] To achieve this objective, the present invention adopts the following technical solution:
[0007] This invention provides a blade marking processing device, including an electrical control cabinet. A protective cover is mounted on the top of the electrical control cabinet. A blade processing hatch is movably mounted on the front of the protective cover. A movable positioning stage is mounted on the side of the blade processing hatch. A blade fixture is fixedly mounted on the top of the movable positioning stage. A blade product is mounted on the top of the blade fixture. A laser source is mounted inside the protective cover. The bottom of the laser source is mounted on the top of the electrical control cabinet. A bracket is mounted on the side of the laser source. A galvanometer is mounted at one end of the laser source. A movable positioning shaft is mounted inside the protective cover. A bracket is mounted on the bottom of the movable positioning shaft. Mounted on the top of the electrical control cabinet, a movable covering blade shaft is fixedly installed on the side of the movable positioning shaft, a mask roll is installed on the side of the movable covering blade shaft, a material leveling device is installed on one side of the movable covering blade shaft, the material leveling device is located on the side of the mask roll, an electrode head is installed on the inner side of the protective cover, the bottom of the electrode head is installed on the top of the electrical control cabinet, a horizontal motion shaft is movably connected to the top of the electrode head, one end of the horizontal motion shaft is movably connected to an up and down motion shaft, an electrolyte tank is provided on the top of the electrical control cabinet, and the electrolyte tank is located below the electrode head;
[0008] A smoke exhaust filter mechanism is fixedly installed on the inner side of the protective cover. Four smoke conveying bends are fixedly connected to the side of the smoke exhaust filter mechanism. A smoke hood is fixedly connected to the bottom end of each smoke conveying bend. The smoke hood is positioned above the movable positioning platform. A filter screen is installed at the bottom of the smoke hood. A smoke sensor is fixedly installed at the bottom of the filter screen. A sensor wire is fixedly connected to the side of the smoke sensor. One end of the sensor wire is fixedly connected to a fan control box. Three filter cottons are provided on the inner side of the smoke exhaust filter mechanism. Four fans are provided on the side of the filter cottons. Four smoke exhaust pipes are provided on the side of the smoke exhaust filter mechanism. The smoke exhaust pipes and fans are all connected to the inner side of the smoke exhaust filter mechanism. The smoke exhaust pipes pass through the back of the protective cover.
[0009] In a preferred embodiment of the present invention, a sign making control display is fixedly installed on the front of the protective cover, and a device operation button is installed on the front of the protective cover. The device operation button is located on the lower side of the sign making control display. The sign making control display can control and display the sign making status, and the device operation button facilitates the operation of the device.
[0010] In a preferred embodiment of the present invention, a keyboard is provided on the top of the electrical control cabinet, and a mouse is provided on the top of the electrical control cabinet. The mouse is located to the side of the keyboard, and the data to be operated can be adjusted and controlled through the keyboard and mouse.
[0011] In a preferred embodiment of the present invention, the electrical control cabinet has a slot on the front and four bases are fixedly installed on the bottom of the electrical control cabinet. The slot facilitates the insertion of the legs into the cabinet when the user is seated, and the bases provide stable support at the bottom.
[0012] In a preferred embodiment of the present invention, a cabinet door is movably installed on the back of the electrical control cabinet, and an electrical control compartment is opened on the inner side of the electrical control cabinet. The cabinet door facilitates opening the cabinet for inspection and maintenance, while the electrical control compartment provides space for the placement of electrical equipment.
[0013] In a preferred embodiment of the present invention, a controller is installed inside the electrical control compartment, a power supply is installed inside the electrical control compartment, a pressure gauge is installed on the front of the electrical control compartment, and the controller is located to the side of the power supply. The controller mainly provides electrical control for the overall equipment, the power supply provides power, and the pressure gauge facilitates the viewing of voltage and other conditions.
[0014] In a preferred embodiment of the present invention, two clamping devices are installed on the top of the blade tooling, and the clamping devices are located on both sides of the blade product. A slide rail is movably installed on the bottom of the blade processing door, and the bottom of the slide rail is installed on the top of the electrical control cabinet. The clamping devices facilitate clamping of the blade product and improve stability, while the slide rail facilitates stable guiding and sliding of the moving positioning table.
[0015] In a preferred embodiment of the present invention, a lifting adjustment groove is provided through the side of the bracket, a limiting clamp is installed on the side of the bracket, a fixing seat is fixedly installed at the bottom of the bracket, and the bottom of the fixing seat is fixedly installed on the top of the electrical control cabinet. The lifting adjustment groove facilitates the adjustment of the bracket to a suitable height for use, the limiting clamp provides a fixing function after the appropriate height is adjusted, and the fixing seat provides stable support at the bottom.
[0016] In a preferred embodiment of the present invention, a coating device is provided at the bottom of the electrode head, a horizontal motion groove is provided at the bottom of the horizontal motion shaft, a horizontal motion screw is movably installed on the inner side of the horizontal motion groove, one end of the horizontal motion screw is connected to a horizontal motion motor, one end of the horizontal motion motor is installed on the inner side of the horizontal motion groove, and the top of the electrode head is threadedly connected to the outer wall of the horizontal motion screw. Electrolyte can be applied by the coating device, and the horizontal motion motor drives the horizontal motion screw to rotate, thereby driving the electrode head to achieve a stable horizontal sliding effect on the inner side of the horizontal motion groove.
[0017] In a preferred embodiment of the present invention, an upper and lower movement groove is provided on the side of the upper and lower movement shaft, an upper and lower movement screw is movably installed on the inner side of the upper and lower movement groove, a lifting motor is installed at the bottom of the upper and lower movement shaft, and the top of the lifting motor is connected to the bottom of the upper and lower movement screw. By driving the upper and lower movement screw to rotate through the lifting motor, one end of the horizontal movement shaft can be adjusted to move up and down inside the upper and lower movement groove.
[0018] The beneficial effects of this invention are as follows:
[0019] This invention provides a blade marking processing device, which includes a blade processing chamber, a laser source, a moving positioning shaft, and an electrode head. The moving positioning platform on the side of the blade processing chamber serves as a transport vehicle, pulling the blade, mounted on a fixture, into the equipment for processing. After processing, the blade is removed from the equipment, and the operator releases the clamping device to replace the workpiece, after which it re-enters the chamber. Each blade requires a dedicated fixture for positioning and clamping. Positioning should ensure the marking area faces directly upwards to guarantee effective electrode contact and coating. The mask is processed using laser ablation, and the mask material is roll material. The editing of the markings and the automatic change of the serial number are implemented by the industrial control computer's laser control software. Currently, to facilitate continuous production and improve processing efficiency, roll-to-roll masks are used for easy replacement and long service life. The mask control system includes processes such as material feeding and unloading, positioning motion, photoforming, and masking the product before processing. The electrode and electrolyte control system includes a processing power supply, electrode head, dip tank, up-down moving axis (dip and press), left-right moving axis, and coating device. Based on electrolyte consumption data, subsequent equipment can automatically and quantitatively deliver electrolyte to the electrode head, eliminating the need for an electrolyte dip tank and enabling continuous single-piece processing. The identification code can include various information such as barcodes and QR codes. QR codes and barcodes facilitate recording and product identification using scanning equipment, improving management efficiency.
[0020] By incorporating a smoke extraction and filtration mechanism, with its side connected to a smoke conveying bend, and a smoke hood positioned above the blade processing cabin door at one end of the smoke conveying bend, a smoke sensor is installed on the inner side of the smoke hood via a filter plate. The smoke sensor is connected to a fan control box via a sensor wire. Filter cotton is installed on the inner side of the smoke extraction and filtration mechanism. Multiple fans and exhaust pipes are distributed on the other side of the mechanism, connecting to the outside. This facilitates the efficient handling of smoke generated by lasers on acrylic plastic blades and membranes during the marking process. The smoke sensor detects this smoke, and the fan control box activates the fans to generate strong suction. The smoke is then drawn into the smoke conveying bend through the smoke hood and transported to the filter cotton for filtration. The filtered smoke is then discharged through the exhaust pipe. This effectively reduces the emission of toxic gases and avoids the problem of toxic gases in the smoke generated by lasers on some plastics causing discomfort to the human body. Attached Figure Description
[0021] Figure 1 This is a perspective view of a blade marking processing device according to the present invention;
[0022] Figure 2 This is a schematic diagram of the blade marking processing device of the present invention from another angle;
[0023] Figure 3 This is a schematic diagram of the internal structure of a blade marking processing device according to the present invention;
[0024] Figure 4 This is a schematic diagram of the structure of the movable positioning platform of the blade marking processing device of the present invention;
[0025] Figure 5 This is a schematic diagram of the laser source of the blade marking processing device of the present invention;
[0026] Figure 6 This is a schematic diagram of the moving positioning shaft of a blade marking processing device according to the present invention;
[0027] Figure 7 This is a schematic diagram of the electrode control system of the blade marking processing device of the present invention;
[0028] Figure 8 This is a schematic diagram of the smoke extraction and filtration mechanism of a blade marking processing device according to the present invention;
[0029] Figure 9 This is a schematic diagram of the electrical control compartment of a blade marking processing device according to the present invention.
[0030] In the picture:
[0031] 1-Electrical control cabinet; 2-Blade processing compartment door; 3-Laser source; 4-Moving positioning axis; 5-Electrode head; 6-Smoke exhaust and filtration mechanism; 11-Protective cover; 12-Identification and control display; 13-Equipment operation buttons; 14-Keyboard; 15-Mouse; 16-Slot; 17-Base; 18-Cabinet door; 19-Electrical control compartment; 191-Controller; 192-Power supply; 193-Pressure gauge; 21-Moving positioning stage; 22-Blade tooling; 23-Clamping device; 24-Blade product; 25-Slide rail; 31-Bracket; 32-Galvanometer; 33-Lifting adjustment slot ; 34-Limiting clamp; 35-Fixed seat; 41-Moving covering blade shaft; 42-Mask roll; 43-Material leveling device; 51-Coating device; 52-Horizontal motion shaft; 53-Horizontal motion groove; 54-Horizontal motion screw; 55-Horizontal motion motor; 56-Up and down motion shaft; 57-Up and down motion groove; 58-Up and down motion screw; 59-Electrolyte tank; 61-Fumigation hood; 62-Filter plate; 63-Smoke sensor; 64-Sensing wire; 65-Fan control box; 66-Smoke conveying bend; 67-Filter cotton; 68-Fan; 69-Exhaust pipe. Detailed Implementation
[0032] The technical solution of the present invention will be further described below with reference to the accompanying drawings and specific embodiments.
[0033] like Figure 1-9As shown, the embodiment provides a blade marking processing device, including an electrical control cabinet 1. A protective cover 11 is provided on the top of the electrical control cabinet 1. A blade processing door 2 is movably installed on the front of the protective cover 11. A movable positioning platform 21 is installed on the side of the blade processing door 2. A blade fixture 22 is fixedly installed on the top of the movable positioning platform 21. A blade product 24 is placed on the top of the blade fixture 22. A laser source 3 is installed inside the protective cover 11. The bottom of the laser source 3 is installed on the top of the electrical control cabinet 1. A bracket 31 is installed on the side of the laser source 3. A galvanometer 32 is provided at one end of the laser source 3. A movable positioning shaft 4 is installed inside the protective cover 11. The bottom of the positioning shaft 4 is installed on the top of the electrical control cabinet 1. A movable covering blade shaft 41 is fixedly installed on the side of the movable positioning shaft 4. A mask roll 42 is installed on the side of the movable covering blade shaft 41. A material leveling device 43 is installed on one side of the movable covering blade shaft 41. The material leveling device 43 is located on the side of the mask roll 42. An electrode head 5 is installed inside the protective cover 11. The bottom of the electrode head 5 is installed on the top of the electrical control cabinet 1. A horizontal motion shaft 52 is movably connected to the top of the electrode head 5. One end of the horizontal motion shaft 52 is movably connected to an up-down motion shaft 56. An electrolyte tank 59 is provided on the top of the electrical control cabinet 1. The slot 59 is located below the electrode head 5. The movable positioning table 21 on the side of the blade processing door 2 is a transport tool that drags the blade mounted on the fixture into the equipment for processing. After processing, it is sent out of the equipment, and the operator releases the clamping device 23. After changing the workpiece, it re-enters the chamber. Each blade requires a dedicated fixture for positioning and clamping. Positioning should ensure that the marking part faces directly upwards, which is beneficial to ensuring the electrode contact coating effect. The mask is processed by laser ablation, and the mask material is roll material. The editing of the marking and the automatic change of the serial number are implemented by the industrial control computer laser control software to facilitate continuous production. To improve processing efficiency, the mask uses roll material, which is easy to replace and has a long service life. The mask control system includes processes such as material feeding and unloading, positioning movement, photoforming and film formation, and masking the product for processing. The electrode and electrolyte control system includes processing power supply, electrode head, dip tank, up and down moving axis for dipping and pressing, left and right moving axis, and coating device. Based on electrolyte consumption data statistics, subsequent equipment can adopt an automatic quantitative delivery of electrolyte to the electrode head, eliminating the need for an electrolyte dip tank and enabling continuous processing of single pieces. The identification code content can include various information such as barcodes and QR codes. QR codes and barcodes are convenient for recording and product identification using barcode scanning equipment, improving management efficiency.
[0034] A smoke exhaust filter mechanism 6 is fixedly installed inside the protective cover 11. Four smoke delivery bends 66 are fixedly connected to the side of the smoke exhaust filter mechanism 6. A smoke hood 61 is fixedly connected to the bottom end of the smoke delivery bends 66. The smoke hood 61 is positioned above the movable positioning platform 21. A filter screen plate 62 is installed at the bottom of the smoke hood 61. A smoke sensor 63 is fixedly installed at the bottom of the filter screen plate 62. A sensor wire 64 is fixedly connected to the side of the smoke sensor 63. One end of the sensor wire 64 is fixedly connected to a fan control box 65. Three filter cottons 67 are provided inside the smoke exhaust filter mechanism 6. Four fans 68 are provided on the side of the filter cottons 67. Four smoke exhaust pipes 69 are provided on the side of the smoke exhaust filter mechanism 6. The smoke exhaust pipes 69 and the fans 68 are all connected to the inside of the smoke exhaust filter mechanism 6. The smoke exhaust pipes 69 pass through the back of the protective cover 11. By connecting the side of the smoke exhaust filter mechanism 6 to the smoke delivery bends 66, a smoke control box 65 is provided at one end of the smoke delivery bends 66. The fume hood 61 is located above the blade processing door 2. A smoke sensor 63 is installed on the inner side of the fume hood 61 via a filter plate 62. The side of the smoke sensor 63 is connected to the fan control box 65 via a sensor wire 64. A filter cotton 67 is installed on the inner side of the smoke exhaust filtration mechanism 6. On the other side of the smoke exhaust filtration mechanism 6, multiple fans 68 and exhaust pipes 69 are distributed and connected to the outside. This facilitates the processing of marking processes. When dealing with some acrylic plastic blades and membranes, smoke generated by the laser can be detected by the smoke sensor 63. The fan control box 65 then starts the fans 68 to generate strong suction. The smoke is then drawn into the smoke delivery bend 66 through the fume hood 61 and then transmitted to the filter cotton 67 for filtration. The filtered smoke is then discharged through the exhaust pipe 69. This effectively reduces the emission of toxic gases and avoids the problem of some plastics generating toxic gases in the smoke after laser treatment, which may cause discomfort to the human body.
[0035] like Figure 1 and Figure 2 As shown, a sign making control display 12 is fixedly installed on the front of the protective cover 11, and a device operation button 13 is installed on the front of the protective cover 11. The device operation button 13 is located on the lower side of the sign making control display 12. The sign making control display 12 can control and display the sign making status, while the device operation button 13 facilitates the operation of the device.
[0036] like Figure 1 and Figure 9 As shown, a keyboard 14 is installed on the top of the electrical control cabinet 1, and a mouse 15 is installed on the top of the electrical control cabinet 1. The mouse 15 is located to the side of the keyboard 14. The keyboard 14 and the mouse 15 can be used to adjust and control the operation data.
[0037] like Figure 1As shown, the front of the electrical control cabinet 1 has a slot 16, and four bases 17 are fixedly installed at the bottom of the electrical control cabinet 1. The slot 16 makes it convenient for the user to extend their legs into the cabinet when sitting, while the bases 17 provide stable support at the bottom.
[0038] like Figure 2 and Figure 9 As shown, a cabinet door 18 is movably installed on the back of the electrical control cabinet 1, and an electrical control compartment 19 is opened on the inside of the electrical control cabinet 1. The cabinet door 18 facilitates opening the cabinet door to conduct internal inspection and maintenance work, while the electrical control compartment 19 provides space for the placement of electrical equipment.
[0039] like Figure 9 As shown, a controller 191 is installed inside the electrical control compartment 19, a power supply 192 is installed inside the electrical control compartment 19, and a pressure gauge 193 is installed on the front of the electrical control compartment 19. The controller 191 is located to the side of the power supply 192. The controller 191 mainly provides electrical control for the overall equipment, the power supply 192 provides power, and the pressure gauge 193 facilitates the viewing of voltage and other conditions.
[0040] like Figure 4 As shown, two clamping devices 23 are installed on the top of the blade tooling 22. The clamping devices 23 are located on both sides of the blade product 24. A slide rail 25 is movably installed on the bottom of the blade processing door 2. The bottom of the slide rail 25 is installed on the top of the electrical control cabinet 1. The clamping devices 23 facilitate the clamping of the blade product 24 and improve stability. The slide rail 25 facilitates the stable guiding and sliding of the moving positioning table 21.
[0041] like Figure 5 As shown, a lifting adjustment groove 33 is provided through the side of the bracket 31, a limit clamp 34 is installed on the side of the bracket 31, and a fixed seat 35 is fixedly installed at the bottom of the bracket 31. The bottom of the fixed seat 35 is fixedly installed on the top of the electrical control cabinet 1. The lifting adjustment groove 33 makes it easy to adjust the bracket 31 to a suitable height for use. The limit clamp 34 provides a fixing function after adjusting to a suitable height, and the fixed seat 35 provides a stable support function at the bottom.
[0042] like Figure 7As shown, the bottom of the electrode head 5 is provided with a coating device 51, and the bottom of the horizontal motion shaft 52 is provided with a horizontal motion groove 53. A horizontal motion screw 54 is movably installed on the inner side of the horizontal motion groove 53. One end of the horizontal motion screw 54 is connected to a horizontal motion motor 55, and one end of the horizontal motion motor 55 is installed on the inner side of the horizontal motion groove 53. The top of the electrode head 5 is threadedly connected to the outer wall of the horizontal motion screw 54. Electrolyte can be applied by dipping the coating device 51, and the horizontal motion motor 55 drives the horizontal motion screw 54 to rotate, thereby driving the electrode head 5 to achieve a stable horizontal sliding effect on the inner side of the horizontal motion groove 53.
[0043] like Figure 7 As shown, the upper and lower motion shaft 56 has an upper and lower motion groove 57 on its side. An upper and lower motion screw 58 is movably installed inside the upper and lower motion groove 57. A lifting motor is installed at the bottom of the upper and lower motion shaft 56. The top of the lifting motor is connected to the bottom of the upper and lower motion screw 58. By driving the upper and lower motion screw 58 to rotate through the lifting motor, one end of the horizontal motion shaft 52 can be adjusted to move up and down inside the upper and lower motion groove 57.
[0044] In this invention, when the blade marking processing device is in use, the movable positioning table 21 on the side of the blade processing chamber 2 serves as a transport tool, dragging the blade mounted on the tooling into the equipment for processing. After processing, it is sent out of the equipment, and the operator releases the clamping device 23. After changing the workpiece, it re-enters the chamber. Each blade requires a dedicated tooling for positioning and clamping. Positioning should ensure that the marking part faces directly upwards, which is beneficial to ensuring the electrode contact coating effect. The mask processing is carried out by laser ablation, and the mask material is roll material. The editing of the marking and automatic change of the serial number are implemented by the industrial control computer laser control software. In order to facilitate continuous production and improve processing efficiency, the mask uses roll material, which is easy to replace and has a long service life. The mask control system includes processes such as feeding and unloading, positioning movement, light-receiving film formation, masking the product and waiting for processing. Electrodes and electrolytes are also included. The control system includes a processing power supply, electrode head, dip tank, up-down moving axis, left-right moving axis, and coating device. Based on the electrolyte consumption data, subsequent equipment can automatically and quantitatively deliver electrolyte to the electrode head, eliminating the need for an electrolyte dip tank and enabling continuous single-piece processing. The identification code can include various information such as barcodes and QR codes. QR codes and barcodes facilitate recording and product identification using scanning equipment, improving management efficiency. During the marking process, some acrylic plastic blades and membranes may generate smoke due to the laser. This smoke can be detected by the smoke sensor 63, and then the fan control box 65 will start the fan 68 to generate strong suction. The smoke will then be drawn into the smoke delivery bend 66 through the smoke hood 61 and then transmitted to the filter cotton 67 for filtration. The filtered smoke is then discharged through the exhaust pipe 69, effectively reducing the emission of toxic gases.
[0045] Other techniques in this embodiment are based on existing technologies.
[0046] This invention has been described through preferred embodiments. Those skilled in the art will understand that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of the invention. This invention is not limited to the specific embodiments disclosed herein; other embodiments falling within the scope of the claims are also within the protection scope of this invention.
Claims
1. A blade identification machining device comprising an electrical control cabinet (1), characterized in that: The top of the electrical control cabinet (1) is provided with a protective cover (11), the front of the protective cover (11) is movably provided with a blade processing cabin door (2), the side of the blade processing cabin door (2) is provided with a movable positioning table (21), the top of the movable positioning table (21) is fixedly provided with a blade tooling (22), the top of the blade tooling (22) is provided with a blade product (24), the inner side of the protective cover (11) is provided with a laser source (3), the bottom of the laser source (3) is installed on the top of the electrical control cabinet (1), the side of the laser source (3) is provided with a support (31), one end of the laser source (3) is provided with a galvanometer (32), the inner side of the protective cover (11) is provided with a movable positioning shaft (4), the bottom of the movable positioning shaft (4) is installed on the top of the electrical control cabinet (1), the side of the movable positioning shaft (4) is fixedly provided with a movable shielding blade shaft (41), the side of the movable shielding blade shaft (41) is provided with a mask coiled material (42), one side of the movable shielding blade shaft (41) is provided with a material feeding and winding flattening device (43), the material feeding and winding flattening device (43) is arranged on the side of the mask coiled material (42), the inner side of the protective cover (11) is provided with an electrode head (5), the bottom of the electrode head (5) is installed on the top of the electrical control cabinet (1), the top of the electrode head (5) is movably connected with a horizontal motion shaft (52), one end of the horizontal motion shaft (52) is movably connected with an up-down motion shaft (56), the top of the electrical control cabinet (1) is provided with an electrolyte tank (59), the electrolyte tank (59) is arranged below the electrode head (5); The inner side of the protective cover (11) is fixedly provided with a smoke exhaust filtering mechanism (6), the side of the smoke exhaust filtering mechanism (6) is fixedly connected with four smoke conveying bends (66), one end of the bottom of the smoke conveying bend (66) is fixedly connected with a smoke suction cover (61), the smoke suction cover (61) is arranged above the movable positioning table (21), the bottom of the smoke suction cover (61) is provided with a filter screen plate (62), the bottom of the filter screen plate (62) is fixedly provided with a smoke sensor (63), the side of the smoke sensor (63) is fixedly connected with a sensing line (64), one end of the sensing line (64) is fixedly connected with a fan control box (65), the inner side of the smoke exhaust filtering mechanism (6) is provided with three filter cottons (67), the side of the filter cotton (67) is provided with four fans (68), the side of the smoke exhaust filtering mechanism (6) is provided with four smoke exhaust pipes (69), the smoke exhaust pipes (69) and the fans (68) are all communicated with the inner side of the smoke exhaust filtering mechanism (6), and the smoke exhaust pipes (69) penetrate the back of the protective cover (11); The top of the blade tooling (22) is provided with two clamping devices (23), the clamping devices (23) are arranged on the two sides of the blade product (24), the bottom of the blade processing cabin door (2) is movably provided with a slide rail (25), and the bottom of the slide rail (25) is installed on the top of the electrical control cabinet (1); The side of the support (31) is provided with a lifting adjusting groove (33), the side of the support (31) is provided with a limiting clamping plate (34), the bottom of the support (31) is fixedly provided with a fixing seat (35), and the bottom of the fixing seat (35) is fixedly installed on the top of the electrical control cabinet (1). The bottom of the electrode head (5) is provided with a smearing device (51), the bottom of the horizontal movement shaft (52) is provided with a horizontal movement groove (53), the inner side of the horizontal movement groove (53) is movably provided with a horizontal movement screw rod (54), one end of the horizontal movement screw rod (54) is connected with a horizontal movement motor (55), one end of the horizontal movement motor (55) is movably installed on the inner side of the horizontal movement groove (53), and the top of the electrode head (5) is in threaded connection with the outer wall of the horizontal movement screw rod (54). The side of the up-down movement shaft (56) is provided with an up-down movement groove (57), the inner side of the up-down movement groove (57) is movably provided with an up-down movement screw rod (58), and the bottom of the up-down movement shaft (56) is provided with a lifting motor.
2. The blade identification machining apparatus according to claim 1, characterized by: The front of the protective cover (11) is fixedly provided with an identification making control display (12), and the front of the protective cover (11) is provided with a device operation button (13).
3. The blade identification machining apparatus according to claim 1, characterized by: The top of the electrical control cabinet (1) is provided with a keyboard (14), and the top of the electrical control cabinet (1) is provided with a mouse (15).
4. The vane identification machining apparatus according to claim 1, characterized by: The front of the electrical control cabinet (1) is provided with a slot (16), and the bottom of the electrical control cabinet (1) is fixedly provided with four bases (17).
5. The vane identification machining apparatus according to claim 1, characterized by: The back of the electrical control cabinet (1) is movably provided with a cabinet door (18), and the inner side of the electrical control cabinet (1) is provided with an electrical control cabin (19).
6. The vane identification machining apparatus according to claim 5, characterized by: The inner side of the electrical control cabin (19) is provided with a controller (191), the inner side of the electrical control cabin (19) is provided with a power supply (192), the front of the electrical control cabin (19) is provided with a pressure gauge (193), and the controller (191) is arranged on the side of the power supply (192).
Citation Information
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