An automated mechanical machining cutting device
By incorporating cooling protection and absorption purification mechanisms into laser cutting equipment, the problems of smoke, dust, and thermal deformation during laser cutting are solved, achieving efficient cutting quality assurance and environmental protection.
Patent Information
- Application Number
- CN202611095476.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-07-22
- Publication Date
- 2026-08-25
AI Technical Summary
Existing laser cutting equipment generates smoke, dust, and odors when cutting materials, and the cut edges are prone to thermal deformation, burrs, blackening, oxidation, and yellowing, affecting the cutting quality.
It adopts an automated machining and cutting device, equipped with a cooling protection mechanism and an absorption and purification mechanism, including a micro atomizer, a partitioned inner cover, a moving component, and an absorption and purification mechanism, to achieve simultaneous absorption and cooling protection of smoke and dust. Cleaning and cooling are carried out in independent areas, and the laser cutter adapts to its own movement.
It effectively ensures the cleanliness of the cutting position, avoids the impact of smoke on the environment, prevents defects such as thermal deformation and burrs on the cut, provides synchronous and good cooling protection, and is suitable for different cutting surface operations.
Smart Images

Figure CN122625841A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of cutting technology, and in particular relates to an automated machining and cutting device. Background Technology
[0002] Laser cutting is a non-contact processing technology that uses a high-power-density laser beam to irradiate materials and achieve cutting through melting, vaporization, or combustion. It features high precision, high efficiency, and smooth cut surfaces. Nowadays, there are many types of laser cutting equipment.
[0003] Although laser cutting equipment can now complete the cutting of materials, there are still some problems in actual use. The main problems are that it generates smoke, dust and odors when cutting materials, which damages the working environment. In addition, the high temperature of the laser burns the material during operation, and the cut is prone to thermal deformation, burrs, blackening, oxidation and yellowing. The actual cutting effect cannot be guaranteed. Therefore, an automated mechanical processing and cutting device is proposed. Summary of the Invention
[0004] The purpose of this invention is to provide an automated machining and cutting device to address the problem that current laser cutting equipment cannot guarantee the cutting quality of materials.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: an automated machining and cutting device, comprising a base, a telescopic module, and a laser cutting module. A movable frame is movably mounted on the base. An adjusting motor is fixedly installed on one outer wall of the movable frame. An adjusting screw is fixedly installed at one end of the output shaft of the adjusting motor. A movable seat with a moving block is threaded onto the external thread of the adjusting screw. A telescopic module is mounted on one outer wall of the movable seat. A laser cutting module is movably mounted below the telescopic module via an adaptive spring. A cooling protection mechanism for synchronous cooling during cutting is provided on the exterior of the laser cutting module. An absorption and purification mechanism for synchronous collection and treatment of cutting dust and polluting gases is provided on the exterior of the telescopic module. The cooling protection mechanism includes:
[0006] A miniature atomizer has a housing fixedly installed on its inner wall. A threaded ring is fixedly installed on the top of the housing. The threaded ring is rotatably installed in an annular threaded groove provided inside the laser-cut module. Multiple sets of flow guide grooves are provided on the inner wall of the housing.
[0007] The inner partition cover is fixedly installed on the inner wall of the micro atomizer by a connecting rod. The bottom of the inner partition cover is provided with an annular groove, and a movable sealing ring is movably installed inside the annular groove by a connecting spring.
[0008] The above solution, with its integrated cooling protection and absorption purification mechanisms, effectively absorbs smoke and dust simultaneously during laser cutting operations. It also provides simultaneous and effective cooling protection, ensuring the cleanliness of the cutting area and preventing smoke from adversely affecting the working environment. Simultaneous cooling of the cutting area prevents thermal deformation, burrs, blackening, and yellowing of the cut surface. Thin, soft, and composite materials are particularly susceptible to damage from heat and warping. Furthermore, cleaning and cooling occur in two independent zones, without interference, providing excellent protection for the laser cutter. The laser cutter is also self-adaptive, allowing it to handle different cutting surfaces.
[0009] As a further description of the above technical solution:
[0010] The inner wall of the micro atomizer is provided with spray holes, and a rotating atomizing nozzle is rotatably installed in the spray holes. The diameter of the outer casing is larger than the diameter of the inner casing, and the thickness of the inner casing is the same as the thickness of the outer casing.
[0011] As a further description of the above technical solution:
[0012] The cooling protection mechanism also includes:
[0013] A movable component is movably installed in a slide groove provided on the inner wall of the outer cover of the suit. The movable component includes a wheel frame, which is movably installed on the inner side of the slide groove by a built-in spring. The wheel frame is slidably connected to the guide rail provided on the inner wall of the slide groove by guide grooves provided on its two outer walls. A rotating shaft is rotatably installed on the inner side of the wheel frame, and a movable wheel is fixedly installed at the center of the rotating shaft. Multiple airflow vanes are fixedly installed on the outside of the rotating shaft.
[0014] As a further description of the above technical solution:
[0015] The absorption and purification mechanism includes:
[0016] A first combined cover and a second combined cover, wherein the second combined cover is provided on one side of the first combined cover, the first combined cover and the second combined cover have the same specifications, and both the first combined cover and the second combined cover have an inner groove inside.
[0017] As a further description of the above technical solution:
[0018] The inner tank is equipped with a suction pump, an activated carbon layer, and a filter layer from top to bottom. The suction pump and the activated carbon layer are detachably connected by a connecting rod, and the activated carbon layer and the filter layer are detachably connected by a connecting rod.
[0019] As a further description of the above technical solution:
[0020] Multiple sets of annular slide rails are fixedly installed on the inner walls of the first and second combined covers. The suction pump, the adsorption activated carbon layer and the filter layer are all slidably installed on the annular slide rails through the slide grooves provided on their outer walls.
[0021] As a further description of the above technical solution:
[0022] The absorption and purification mechanism also includes:
[0023] The connecting assembly includes a mounting bracket, which is fixedly mounted on the top surface of the first combined cover. A mounting shaft is rotatably mounted on the inner side of the mounting bracket, and a connecting claw is fixedly mounted on the outer side of the mounting shaft. Torsion springs are provided at both ends of the mounting shaft.
[0024] As a further description of the above technical solution:
[0025] One end of the torsion spring is fixedly connected to the inner wall of the mounting bracket, one end of the mounting shaft is fixedly mounted with a presser via a connecting shaft, and a connecting claw is fixedly mounted at the middle position of the mounting shaft.
[0026] As a further description of the above technical solution:
[0027] The first combined cover has a top groove on its top surface and a slot inside its shell cavity. A plug is fixedly installed on one side outer wall of the second combined cover and is inserted into the slot.
[0028] As a further description of the above technical solution:
[0029] One end of the connecting claw is engaged in a wedge-shaped groove on the outer wall of the insert block. A flexible suction tube is provided at the bottom of the second combined cover, and one end of the flexible suction tube passes through and extends to the inside of the partition inner cover.
[0030] In summary, due to the adoption of the above technical solution, the beneficial effects of the present invention are:
[0031] 1. In this invention, by providing a cooling protection mechanism and an absorption and purification mechanism, it is possible to effectively absorb smoke and dust simultaneously during laser cutting operations, while also providing a good cooling protection effect. This effectively ensures the cleanliness of the cutting position, avoids the adverse effects of smoke on the working environment, and simultaneously cools the cutting position to prevent thermal deformation, burrs, blackening, oxidation, and yellowing of the cut. Furthermore, cleaning and cooling are carried out in two independent areas without interference between them, providing good protection for the laser cutter. At the same time, the laser cutter can adapt to different cutting surfaces.
[0032] 2. In this invention, by providing a movable component within the cooling protection mechanism, the movable wheel can contact the cutting surface during cutting. As the laser cutting module moves, the wheel frame can rotate, driving multiple airflow vanes to rotate synchronously. The movable wheel can effectively prevent the outer casing of the suit from directly contacting the cutting surface, reducing resistance during cutting movement. At the same time, the rotating airflow vanes can generate circulating airflow within the outer casing. The airflow flows rapidly through the guide groove, which can assist the cooling atomized liquid in cooling the cutting process. Simultaneously, the airflow can also drive the rotating atomizing nozzle to rotate, thereby improving the spray range and uniformity of the rotating atomizing nozzle, further enhancing the cooling effect of the cooling protection mechanism.
[0033] 3. In this invention, by designing the absorption and purification mechanism as detachable, the adsorbed waste and exhaust gas are absorbed into the absorption and purification mechanism. The filter layer can filter the absorbent material, leaving large particles of impurities at the bottom of the absorption and purification mechanism. The adsorption activated carbon layer can filter and purify the adsorbed gas. After a period of use, the presser can be directly squeezed downwards, the connecting claw rotates, and one end lifts up to disengage from the wedge-shaped slot of the insert block. At this time, the first and second combined covers can be separated. Then, the suction pump, the adsorption activated carbon layer, and the filter layer can be rotated to disassemble the above structure, quickly clean the impurities and dirt in the first and second combined covers, and replace the new adsorption activated carbon layer and filter layer. When reassembling, the first and second combined covers are directly connected and the insert block is inserted into the slot, so that the connecting claw re-engages into the wedge-shaped slot of the insert block. Through this design, the assembly and disassembly of the absorption and purification mechanism can be completed quickly, and the cleaning and material replacement inside the absorption and purification mechanism can be completed quickly. The operation is convenient and quick, allowing the absorption and purification mechanism to maintain its effectiveness. Attached Figure Description
[0034] Figure 1 This is a three-dimensional structural diagram of an automated machining and cutting device.
[0035] Figure 2 This is a three-dimensional structural diagram of an automated machining and cutting device from another angle.
[0036] Figure 3 This is an exploded three-dimensional structural diagram of an automated machining and cutting device.
[0037] Figure 4 This is an exploded three-dimensional structural diagram of a laser cutting module, an absorption and purification mechanism, and a cooling protection mechanism in an automated machining and cutting device.
[0038] Figure 5 This is an exploded structural diagram of a cooling protection mechanism in an automated machining and cutting device.
[0039] Figure 6 This is a schematic diagram of the combined structure of a laser cutting module, an absorption and purification mechanism, and a cooling protection mechanism in an automated machining and cutting device.
[0040] Figure 7 This is an exploded structural diagram of a micro atomizer and a partitioned inner cover in an automated machining and cutting device.
[0041] Figure 8 This is an exploded three-dimensional structural diagram of the outer casing of an automated machining and cutting device.
[0042] Figure 9 This is an exploded three-dimensional structural diagram of a moving component in an automated machining and cutting device.
[0043] Figure 10 This is an exploded three-dimensional structural diagram of the absorption and purification mechanism in an automated machining and cutting device.
[0044] Figure 11 This is an exploded three-dimensional structural diagram of a connecting component in an automated machining and cutting device.
[0045] Legend:
[0046] 1. Mobile frame; 2. Adjustable motor; 3. Mobile base; 4. Telescopic module; 5. Laser cutting module; 6. Base; 7. Absorption and purification mechanism; 71. Top groove; 72. Connecting assembly; 721. Mounting bracket; 722. Mounting shaft; 723. Connecting claw; 724. Torsion spring; 725. Presser; 73. Slot; 74. First combined cover; 75. Inner groove; 76. Suction pump; 77. Adsorption activated carbon layer; 78. Filter layer; 79. Insert block; 710. Second combined cover; 711. Flexible suction tube; 712. Annular slide rail; 8. Cooling protection mechanism; 81. Micro atomizer; 82. Assembly threaded ring; 83. Outer casing; 84. Flow guide groove; 85. Inner partition cover; 86. Rotating atomizing nozzle; 87. Annular groove; 88. Movable sealing ring; 89. Moving component; 891. Built-in spring; 892. Wheel frame; 893. Moving wheel; 894. Airflow vane; 810. Slide groove; 9. Adjusting screw; 10. Annular threaded groove; 11. Adaptive spring. Detailed Implementation
[0047] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0048] Please see Figures 1-11 This invention provides a technical solution: an automated machining and cutting device, comprising a base 6, a telescopic module 4, and a laser cutting module 5. A movable frame 1 is movably mounted on the base 6. An adjusting motor 2 is fixedly mounted on one outer wall of the movable frame 1. An adjusting screw 9 is fixedly mounted on one end of the output shaft of the adjusting motor 2. A movable seat 3 with a moving block is threaded onto the external thread of the adjusting screw 9. A telescopic module 4 is mounted on one outer wall of the movable seat 3. The laser cutting module 5 is movably mounted below the telescopic module 4 via an adaptive spring 11. A cooling protection mechanism 8 for simultaneous cooling during cutting is provided on the outside of the laser cutting module 5. An absorption and purification mechanism 7 for simultaneous collection and treatment of cutting dust and polluting gases is provided on the outside of the telescopic module 4. The cooling protection mechanism 8 includes:
[0049] The micro atomizer 81 has a housing 83 fixedly installed on its inner wall. A mounting threaded ring 82 is fixedly installed on the top of the housing 83. The mounting threaded ring 82 is rotatably installed in the annular threaded groove 10 provided inside the laser cutting module 5. Multiple sets of guide grooves 84 are provided on the inner wall of the housing 83.
[0050] The inner partition cover 85 is fixedly installed on the inner wall of the micro atomizer 81 by a connecting rod. The bottom of the inner partition cover 85 is provided with an annular groove 87. A movable sealing ring 88 is movably installed inside the annular groove 87 by a connecting spring. The inner wall of the micro atomizer 81 is provided with a spray hole. A rotating atomizing nozzle 86 is rotatably installed in the spray hole. The diameter of the outer cover 83 is larger than the diameter of the inner partition cover 85. The thickness of the inner partition cover 85 is the same as the thickness of the outer cover 83.
[0051] Cooling protection mechanism 8 also includes:
[0052] The movable component 89 is movably mounted in a slide groove 810 provided on the inner wall of the outer cover 83 of the kit. The movable component 89 includes a wheel frame 892, which is movably mounted on the inner side of the slide groove 810 by a built-in spring 891.
[0053] The absorption and purification unit 7 includes:
[0054] A first combined cover 74 and a second combined cover 710 are provided on one side of the first combined cover 74. The first combined cover 74 and the second combined cover 710 have the same specifications. Both the first combined cover 74 and the second combined cover 710 have an inner groove 75 inside. The inner groove 75 is provided with a suction pump 76, an adsorption activated carbon layer 77 and a filter layer 78 from top to bottom. The suction pump 76 and the adsorption activated carbon layer 77 are detachably connected by a connecting rod. The adsorption activated carbon layer 77 and the filter layer 78 are detachably connected by a connecting rod. Multiple sets of annular slide rails 712 are fixedly installed on the inner walls of the first combined cover 74 and the second combined cover 710. The suction pump 76, the adsorption activated carbon layer 77 and the filter layer 78 are all slidably installed on the annular slide rails 712 through the sliding grooves provided on their outer walls.
[0055] Furthermore, during laser cutting, the material to be cut is placed on the base 6, the cutting program is set, and the equipment is turned on for intelligent automatic cutting. The telescopic module 4 controls the laser cutting module 5 to descend and cut the material. During this process, the suction pump 76 can be turned on automatically. At this time, the flexible suction pipe 711 located inside the inner cover 85 can absorb the fine dust and smoke generated during cutting in real time. At the same time, the micro atomizer 81 can be turned on simultaneously to quickly atomize the internal cooling liquid and spray it out through the rotating atomizing nozzle 86, achieving effective cooling treatment for the cutting process. Due to the separation effect of the outer cover 83, the atomized coolant will not be conducted to one side of the laser cutting module 5, which can effectively avoid damage to the laser cutting module 5 by the atomized liquid. During operation, the movable sealing ring 88 can further ensure the sealing effect of the outer cover 83. Moreover, during the cutting process, the laser cutting module 5 can adapt to the shape changes of the cutting surface through the adaptive spring 11.
[0056] By adopting the above technical solution, and by setting up a cleaning mechanism and a cooling protection mechanism on the laser cutting structure, it is possible to effectively absorb smoke and dust simultaneously during laser cutting operations, while also providing a good simultaneous cooling protection effect. This effectively ensures the cleanliness of the cutting position, avoids the adverse effects of smoke on the working environment, and simultaneously cools the cutting position to prevent thermal deformation, burrs, blackening, oxidation, and yellowing of the cut. Thin materials, soft materials, and composite materials are extremely prone to being burned or warped. Moreover, cleaning and cooling are carried out in two independent areas, without interference between them, which also provides a good protection effect for the laser cutter. At the same time, the laser cutter can adapt to different cutting surfaces.
[0057] Please see Figure 9The wheel frame 892 is slidably connected to the guide rail on the inner wall of the slide 810 via guide grooves on its two outer walls. A rotating shaft is rotatably installed on the inner side of the wheel frame 892. A movable wheel 893 is fixedly installed at the center of the rotating shaft. Multiple airflow vanes 894 are fixedly installed on the outside of the rotating shaft.
[0058] Furthermore, during cutting, the moving wheel 893 can contact the cutting surface. As the laser cutting module 5 moves, the wheel frame 892 can rotate, driving multiple airflow vanes 894 to rotate synchronously. The moving wheel 893 can effectively prevent the outer casing 83 of the set from directly contacting the cutting surface, reducing the resistance during cutting movement. At the same time, the rotating airflow vanes 894 can generate airflow within the outer casing 83. The airflow flows rapidly through the guide groove 84, which can assist the cooling atomized liquid in cooling the cutting. Simultaneously, the airflow can also drive the rotating atomizing nozzle 86 to rotate, thereby improving the spray range and uniformity of the rotating atomizing nozzle 86, further enhancing the cooling effect of the cooling protection mechanism 8.
[0059] Please see Figures 10-11 The absorption and purification mechanism 7 also includes:
[0060] The connecting assembly 72 includes a mounting bracket 721, which is fixedly mounted on the top surface of the first combined cover 74. A mounting shaft 722 is rotatably mounted on the inner side of the mounting bracket 721, and a connecting claw 723 is fixedly mounted on the outer side of the mounting shaft 722. Torsion springs 724 are provided at both ends of the mounting shaft 722. One end of the torsion spring 724 is fixedly connected to the inner wall of the mounting bracket 721. A presser 725 is fixedly mounted on one end of the mounting shaft 722 via a connecting shaft. A fixed part is located at the middle of the mounting shaft 722. The first combined cover 74 is equipped with a connecting claw 723, and a top groove 71 is provided on the top surface of the first combined cover 74. A slot 73 is provided inside the shell cavity of the first combined cover 74. An insert block 79 is fixedly installed on one side outer wall of the second combined cover 710. The insert block 79 is inserted into the inside of the slot 73. One end of the connecting claw 723 is engaged in the wedge-shaped groove provided on the outer wall of the insert block 79. A flexible suction tube 711 is provided at the bottom of the second combined cover 710. One end of the flexible suction tube 711 passes through and extends to the inside of the partition inner cover 85.
[0061] Furthermore, the adsorbed waste and exhaust gas are absorbed into the absorption and purification mechanism 7. The filter layer 78 can filter the absorbent material, and large particles of impurities are left at the bottom of the absorption and purification mechanism 7. The adsorption activated carbon layer 77 can filter and purify the adsorbed gas. After a period of use, the presser 725 can be pressed down directly, the connecting claw 723 rotates, and one end is lifted up and disengaged from the wedge-shaped slot of the insert block 79. At this time, the first combined cover 74 and the second combined cover 710 can be separated. Then, rotate the suction pump 76, the adsorption activated carbon layer 77 and the filter layer 78 to disassemble the above structure. Quickly clean the impurities and dirt in the first combined cover 74 and the second combined cover 710, and replace them with new adsorption activated carbon layer 77 and filter layer 78. When reassembling, directly connect the first combined cover 74 and the second combined cover 710, insert the insert block 79 into the slot 73, and let the connecting claw 723 re-engage into the wedge-shaped slot of the insert block 79.
[0062] By adopting the above technical solution, the assembly and disassembly of the absorption and purification mechanism 7 can be completed quickly, and the cleaning and material replacement inside the absorption and purification mechanism 7 can be completed quickly. The operation is convenient and fast, so that the absorption and purification mechanism 7 can maintain its effectiveness.
[0063] Working principle: During laser cutting, the material to be cut is placed on the base 6, the cutting program is set, and the equipment is turned on for intelligent automatic cutting. The telescopic module 4 controls the laser cutting module 5 to descend and cut the material. During this process, the suction pump 76 can be turned on automatically. At this time, the flexible suction pipe 711 located inside the partition cover 85 can absorb the fine dust and smoke generated during cutting in real time. At the same time, the micro atomizer 81 can be turned on simultaneously to quickly atomize the internal cooling liquid and spray it out through the rotating atomizing nozzle 86 to achieve effective cooling treatment for the cutting process. Due to the separation effect of the outer cover 83, the atomized coolant will not be conducted to one side of the laser cutting module 5, which can effectively avoid damage to the laser cutting module 5 by the atomized liquid. During operation, the movable sealing ring 88 can further ensure the sealing effect of the outer cover 83. In addition, during the cutting process, the laser cutting module 5 can adapt to the shape changes of the cutting surface through the adaptive spring 11.
[0064] During cutting, the moving wheel 893 can contact the cutting surface. As the laser cutting module 5 moves, the wheel frame 892 can rotate, driving multiple airflow vanes 894 to rotate synchronously. The moving wheel 893 can effectively prevent the outer cover 83 of the set from directly contacting the cutting surface, reducing the resistance during cutting movement. At the same time, the rotating airflow vanes 894 can generate airflow within the outer cover 83. The airflow flows quickly through the guide groove 84, which can assist the cooling atomized liquid in cooling the cutting. At the same time, the airflow can also drive the rotating atomizing nozzle 86 to rotate, thereby improving the spray range and uniformity of the rotating atomizing nozzle 86, further improving the cooling effect of the cooling protection mechanism 8.
[0065] The adsorbed waste and exhaust gas are absorbed into the absorption and purification mechanism 7. The filter layer 78 can filter the absorbent material, and large particles of impurities are left at the bottom of the absorption and purification mechanism 7. The adsorption activated carbon layer 77 can filter and purify the adsorbed gas. After a period of use, the presser 725 can be pressed down directly, the connecting claw 723 rotates, and one end is lifted up and disengaged from the wedge-shaped slot of the insert block 79. At this time, the first combined cover 74 and the second combined cover 710 can be separated. Then, rotate the suction pump 76, the adsorption activated carbon layer 77 and the filter layer 78 to disassemble the above structure. Quickly clean the impurities and dirt in the first combined cover 74 and the second combined cover 710, and replace them with new adsorption activated carbon layer 77 and filter layer 78. When reassembling, directly connect the first combined cover 74 and the second combined cover 710, insert the insert block 79 into the slot 73, and let the connecting claw 723 re-engage into the wedge-shaped slot of the insert block 79.
[0066] The above are merely preferred embodiments of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An automated machining and cutting device, comprising a base (6), a telescopic module (4), and a laser cutting module (5), wherein a movable frame (1) is movably mounted on the base (6), an adjusting motor (2) is fixedly mounted on one side of the outer wall of the movable frame (1), an adjusting screw (9) is fixedly mounted on one end of the output shaft of the adjusting motor (2), a movable seat (3) with a moving block is threaded onto the external thread of the adjusting screw (9), a telescopic module (4) is provided on one side of the outer wall of the movable seat (3), and the laser cutting module (5) is movably mounted below the telescopic module (4) via an adaptive spring (11), characterized in that: The laser cutting module (5) is externally equipped with a cooling protection mechanism (8) for simultaneous cooling during cutting, and the telescopic module (4) is externally equipped with an absorption and purification mechanism (7) for simultaneous collection and treatment of cutting dust and polluting gases. The cooling protection mechanism (8) includes: The micro atomizer (81) has a housing (83) fixedly installed on its inner wall. The top of the housing (83) is fixedly installed with a threaded ring (82). The threaded ring (82) is rotatably installed in the annular threaded groove (10) provided inside the laser cutting module (5). The inner wall of the housing (83) is provided with multiple sets of guide grooves (84). The inner partition cover (85) is fixedly installed on the inner wall of the micro atomizer (81) by a connecting rod. The bottom of the inner partition cover (85) is provided with an annular groove (87). A movable sealing ring (88) is movably installed inside the annular groove (87) by a connecting spring.
2. The automated machining and cutting device according to claim 1, characterized in that, The inner wall of the micro atomizer (81) is provided with a spray hole, and a rotating atomizing nozzle (86) is rotatably installed in the spray hole. The diameter of the outer cover (83) is larger than the diameter of the inner cover (85), and the thickness of the inner cover (85) is the same as the thickness of the outer cover (83).
3. The automated machining and cutting device according to claim 1, characterized in that, The cooling protection mechanism (8) also includes: The movable component (89) is movably installed in a slide groove (810) provided on the inner wall of the outer cover (83) of the suit. The movable component (89) includes a wheel frame (892). The wheel frame (892) is movably installed on the inner side of the slide groove (810) by a built-in spring (891). The wheel frame (892) is slidably connected to the guide rail provided on the inner wall of the slide groove (810) by guide grooves provided on its two outer walls. A rotating shaft is rotatably installed on the inner side of the wheel frame (892). A movable wheel (893) is fixedly installed at the center of the rotating shaft. Multiple airflow vanes (894) are fixedly installed on the outside of the rotating shaft.
4. The automated machining and cutting device according to claim 1, characterized in that, The absorption and purification mechanism (7) includes: The first combined cover (74) and the second combined cover (710) are provided on one side of the first combined cover (74). The first combined cover (74) and the second combined cover (710) have the same specifications. The interior of the first combined cover (74) and the second combined cover (710) is provided with an inner groove (75).
5. The automated machining and cutting device according to claim 4, characterized in that, The inner tank (75) is provided with a suction pump (76), an adsorption activated carbon layer (77) and a filter layer (78) from top to bottom. The suction pump (76) and the adsorption activated carbon layer (77) are detachably connected by a connecting rod, and the adsorption activated carbon layer (77) and the filter layer (78) are detachably connected by a connecting rod.
6. The automated machining and cutting device according to claim 5, characterized in that, Multiple sets of annular slide rails (712) are fixedly installed on the inner walls of the first combined cover (74) and the second combined cover (710). The suction pump (76), the adsorption activated carbon layer (77) and the filter layer (78) are all slidably installed on the annular slide rails (712) through the slide grooves provided on their outer walls.
7. An automated machining and cutting device according to claim 6, characterized in that, The absorption and purification mechanism (7) further includes: The connecting assembly (72) includes a mounting bracket (721), which is fixedly mounted on the top surface of the first combined cover (74). A mounting shaft (722) is rotatably mounted on the inner side of the mounting bracket (721), and a connecting claw (723) is fixedly mounted on the outer side of the mounting shaft (722). Torsion springs (724) are provided at both ends of the mounting shaft (722).
8. The automated machining and cutting device according to claim 7, characterized in that, One end of the torsion spring (724) is fixedly connected to the inner wall of the mounting bracket (721), and one end of the mounting shaft (722) is fixedly mounted with a presser (725) via a connecting shaft. A connecting claw (723) is fixedly mounted at the middle position of the mounting shaft (722).
9. An automated machining and cutting device according to claim 8, characterized in that, The top surface of the first combined cover (74) is provided with a top groove (71), and the cavity of the first combined cover (74) is provided with a slot (73). A plug (79) is fixedly installed on one side outer wall of the second combined cover (710), and the plug (79) is inserted into the inside of the slot (73).
10. An automated machining and cutting device according to claim 9, characterized in that, One end of the connecting claw (723) is fitted into the wedge-shaped groove provided on the outer wall of the insert (79), and a flexible suction tube (711) is provided at the bottom of the second combined cover (710), one end of the flexible suction tube (711) passes through and extends to the inside of the partition inner cover (85).