High-speed steel filament cutting machine

By designing the intelligent decomposition removal system of the high-speed steel filament cutting machine, monitoring the content of particles and automatically adjusting the decomposition, the air pollution problem caused by debris generated by the cutting machine is solved, and the automatic adjustment of air cleanliness and safety alarm is achieved to ensure the cleanliness and safety of the production environment.

CN120268932AInactive Publication Date: 2025-07-08JIANGSU WEIJIAN TOOLS TECH CO LTD
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Patent Information

Application Number
CN202510709281.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-29
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing high-speed steel filament cutting machines produce cutting debris during the cutting stage, and cannot adjust and remove impurities according to the content of particles, which does not help improve the air cleanliness of the production and cutting site.

Method used

A high-speed steel filament cutting machine is designed, including a cutting table, a bracket, a cover, a cutting wheel, aggregation box, an analyzer, a extraction unit, an actuation unit and a liquid discharge unit. By monitoring the content of particles and debris in the air, opening and closing the activity unit, using the infusion pump to settle particles and debris, combining the stop unit and the release unit to adjust the debris, and using the negative pressure blade to extract debris, realizing automatic adjustment of air cleanliness.

Benefits of technology

It effectively improves the air cleanliness of the production and cutting site, ensures the smooth progress of the debris removal operation, and prompts the operator to evacuate when the content of particles exceeds the standard, improving the safety and cleanliness of the production environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a high-speed steel filament cutting machine, and belongs to the technical field of steel wire machining, the high-speed steel filament cutting machine comprises a cutting table, the upper part of the cutting table is fixedly connected with a bearing frame, a supporting block and a surrounding cover, the bearing frame is located in the surrounding cover, the bearing frame is provided with an electric cylinder, the lower part of the electric cylinder is provided with a cutting wheel and a first actuating piece, and the first actuating piece is provided with a second actuating piece. The upper portion of the supporting block is fixedly connected with a containing box, and the containing box is provided with a loading box, a bearing block, a liquid containing box, an extraction unit, an analyzer, an actuating unit, a movable unit and a liquid outlet unit. The high-speed steel filament cutting machine solves the problems that an existing high-speed steel filament cutting machine can generate cutting chippings in the cutting stage, the impurity removal position cannot be adjusted according to the particle impurity content, and improvement of the air cleanliness of a production cutting place is not facilitated.
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Description

Technical Field

[0001] The present invention belongs to the technical field of wire processing, and particularly relates to a high-speed steel fine wire cutting machine. Background Art

[0002] High-speed steel, also known as air-hardening steel or high-speed tool steel, is an ultra-fine metal wire made by a precision cold drawing process. In the production of high-speed steel fine wires, a corresponding cutting machine is usually required for processing.

[0003] The existing high-speed steel fine wire cutting machine generates cutting debris during the cutting stage, cannot adjust the impurity removal position according to the content of particulate impurities, and is not beneficial to improving the air cleanliness of the production and cutting site. Summary of the Invention

[0004] The present invention provides a high-speed steel fine wire cutting machine, aiming to solve the problems that the existing high-speed steel fine wire cutting machine generates cutting debris during the cutting stage, cannot adjust the impurity removal position according to the content of particulate impurities, and is not beneficial to improving the air cleanliness of the production and cutting site.

[0005] An embodiment of the present invention provides a high-speed steel fine wire cutting machine, which includes a cutting table. An upper part of the cutting table is fixedly connected with a support bracket, a support block and a shroud. The support bracket is inside the shroud. An electric cylinder is installed on the support bracket. A cutting wheel and a first actuator are installed below the electric cylinder. An output end of the first actuator is connected to the cutting wheel in a transmission manner. An aggregate box is installed below the cutting table. An upper part of the support block is fixedly connected with a storage box. A part of the storage box adjacent to the shroud is communicated. A first opening and closing plate is rotatably connected to the storage box. A loading box, a support block, a liquid storage box, an extraction unit, an analyzer, an actuator unit, a moving unit and a liquid outlet unit are installed on the storage box;

[0006] An upper part of the support block is fixedly connected with the loading box. The liquid storage box is slidably connected inside the support block. The actuator unit and the moving unit are installed on an upper part of the loading box;

[0007] The analyzer is installed on an upper part of the moving unit;

[0008] The extraction unit is installed on an upper part of the loading box, and an upper part of the extraction unit is installed on the moving unit;

[0009] A screening block is movably installed on an upper part of the liquid storage box. A concave channel is reserved on an upper part of the screening block. An attachment block is installed in the concave channel. Channel threes are installed on both sides of the loading box. A plurality of liquid outlets are installed outside the channel threes. The liquid outlets are installed on both sides inside the loading box;

[0010] The liquid outlet unit is communicated with the channel threes.

[0011] The movable unit includes a mounting block, a movable block, a first circular block, and a first connecting rod. A plurality of protrusions are fixedly connected to the side wall of the first circular block. The mounting block is fixedly connected to the upper part of the loading box. The movable block is movably arranged in the mounting block. A channel is arranged on the movable block, and a plurality of protrusions are fixedly connected in the channel. The first connecting rod is rotatably arranged on the mounting block, and the first circular block is fixedly connected to the first connecting rod. The channel on the movable block engages with the first circular block. A stop unit and a release unit are arranged on one side of the mounting block, and the stop unit engages with the first circular block.

[0012] The liquid discharging unit includes a liquid storage box, an infusion pump, a first channel, and a second channel. The liquid storage box is arranged on one side of the loading box. An injection hole is arranged on the upper part of the liquid storage box. One side of the third channel is fixedly connected to the first channel via the second channel. The infusion pump is arranged on one side of the first channel, and the infusion pump is fixedly connected to the liquid storage box via the sixth channel.

[0013] An introduction groove is reserved on the upper part of the loading box, and a second opening and closing plate is rotatably connected to one side of the loading box.

[0014] The actuating unit includes a second actuating member, a flat rope, a second guide roller, and a first guide roller. A stop block is fixedly connected to the upper part of the loading box, and the second actuating member is arranged in the stop block. The second actuating member is fixedly connected to the upper part of the loading box. The output head of the second actuating member is fixedly connected to the second guide roller. The second guide roller is connected to the first guide roller via the flat rope. The first guide roller is fixedly connected to one side of the first connecting rod.

[0015] A second connecting block is rotatably connected to the outside of the first connecting rod. The second connecting block is fixedly connected to one side of the mounting block. The other side of the second guide roller is rotatably connected to a first linkage block. The first linkage block is fixedly connected to one side of the mounting block.

[0016] The stop unit includes a check wheel, a stop block, a spiral beryllium copper wire, a support rod, and a third linkage block. A plurality of protrusions are fixedly connected to the side wall of the check wheel. The support rod has the property of being expandable or contractible. The check wheel is fixedly connected to one side of the first connecting rod. The check wheel engages with the outside of the stop block. The upper part of the stop block is fixedly connected to the spiral beryllium copper wire and the support rod. The other sides of the spiral beryllium copper wire and the support rod are fixedly connected to the third linkage block. The third linkage block is fixedly connected to the mounting block;

[0017] A third connecting rod is rotatably connected in the stop block. The third connecting rod is fixedly connected to one side of the mounting block.

[0018] The release unit includes a second linkage block, a third actuator, a second ring block, a second connecting bar, a fourth linkage block and a movable opening. A non-full-circle biting protrusion is fixedly connected to the side wall of the fourth linkage block. A biting protrusion is arranged on one side of the second linkage block. The fourth linkage block is bite-connected to one side of the second linkage block. An activity opening is reserved on one side of the fourth linkage block. The output head of the third actuator is fixedly connected to the second ring block. The connecting bar two is fixedly connected to the side of the second ring block. The second connecting bar is movably arranged in the movable opening. The fourth linkage block is rotatably arranged on one side of the installation block. The second linkage block is rotatably arranged on one side of the stop block. The third actuator is fixedly connected to the installation block through a right-angle block. The second linkage block is movably arranged on the right-angle block.

[0019] One upper part of one side of the movable block is fixedly connected to a first connecting block. A signal lamp is arranged on the upper part of the movable block. The analyzer is arranged below the first connecting block. A central control module is arranged on the movable block. The analyzer, the signal lamp, the second actuator and the third actuator are all electrically connected to the central control module.

[0020] The extraction unit includes a fourth channel, a first connecting channel, a second connecting channel, a negative pressure blade, a fifth channel and a feed hopper. The feed hopper extends into the shroud. The fourth channel has the property of being expandable or contractible. One side of the movable block is fixedly connected to a connecting piece. The first connecting channel is fixedly connected in the connecting piece. The lower part of the first connecting channel is fixedly connected to the fourth channel. The fourth channel is fixedly connected to the upper part of the loading box. The lower part of the fourth channel is connected to the inlet groove on the upper part of the loading box. The upper part of the first connecting channel is fixedly connected to the second connecting channel. The negative pressure blade is arranged on the upper part of the second connecting channel. The fifth channel is arranged on the upper part of the negative pressure blade. The other side of the fifth channel is fixedly connected to the feed hopper.

[0021] The beneficial effects of the present invention:

[0022] 1. A through groove for the high-speed steel fine wire to pass through is reserved on the shroud of the present invention. The supporting block supports the storage box, which is beneficial to the smooth passing of the high-speed steel fine wire and beneficial to the cutting wheel to cut the high-speed steel fine wire. A material passing port communicating with the aggregate box is reserved on the cutting table, which is beneficial to the collection and disposal of the cut chips. The installation of the shroud is beneficial to improving the air cleanliness of the production cutting site. When the content of particulate impurities in the air monitored by the analyzer is lower than the predetermined threshold, the movable unit is opened to make the movable block move upward to the preset position to prevent interference to the operator. When the content of monitored particulate impurities increases, the stop unit is released through the release unit, and then the first ring block rotates reversely, which is beneficial to adjusting the impurity removal position according to the content of particulate impurities and beneficial to improving the air cleanliness of the production cutting site.

[0023] 2. The infusion pump of the present invention sucks the liquid in the liquid storage box, guides it through Channel 1 to Channel 2 and Channel 3, allows the particulate impurities in the air to settle for unified disposal. Through the attachment block, it is beneficial for the particulate impurities in the air to adhere thereto. Through Actuator 2, Roller 2 is driven to rotate. Through the flat rope, Roller 1 is rotated. Roller 1 drives Linking Rod 1 to rotate, driving Rotating Block 1 to rotate. Rotating Block 1 makes the externally engaged Movable Block move upward. When the content of particulate impurities in the air is high, the Stopping Unit is released through the Release Unit, and then Rotating Block 1 is rotated reversely, which is beneficial for adjusting the impurity removal position according to the content of particulate impurities, beneficial for improving the air cleanliness of the production cutting site. Linking Block 2 is beneficial for enhancing the stability of the rotation of Linking Rod 1, and Linking Block 1 is beneficial for enhancing the stability of the rotation of Roller 2.

[0024] 3. When Rotating Block 1 rotates to adjust the position of the Movable Block in the vertical direction, the Check Wheel in the Stopping Unit rotates. During the rotation of the Check Wheel, the Stopping Block is pulled. The Stopping Block shortens the upper helical beryllium copper wire and the Support Rod. Through the helical beryllium copper wire, the Stopping Block engages with the next Check Wheel to prevent the Check Wheel from rotating reversely, stabilizing the Movable Block at the adjusted position to prevent it from moving downward during the continuous operation of the impurity removal operation, which is beneficial for the smooth progress of the impurity removal operation. When Linking Rod 1 rotates, the Check Wheel also rotates to stop the rotating Linking Rod 1.

[0025] 4. When the content of particulate impurities in the air increases, the feed hopper needs to be adjusted downward. Actuator 3 is activated, and Rotating Block 2 drives Linking Rod 2 to rotate together. Rotating Block 2 makes a semi-circular rotation. After adjusting the position in the vertical direction, then making the Stopping Block make a semi-circular rotation can return to the engaged state. Linking Rod 2 slides in the Movable Port. Here, Linking Block 4 moves up and down. Linking Block 4 drives Linking Block 2 to move downward. Linking Block 2 drives the Stopping Block to deflect downward on one side, and the other side of the Stopping Block deflects upward correspondingly, separating from the Check Wheel. The Check Wheel can rotate reversely. The feed hopper is moved downward through the Movable Block, which is beneficial for adjusting the impurity removal position according to the content of particulate impurities, beneficial for improving the air cleanliness of the production cutting site. When the content of particulate impurities in the air exceeds the preset threshold of the analyzer, the signal lamp triggers an audible and visual alarm signal to prompt the operator to evacuate the area. When the content monitored by the analyzer is low, only Actuator 2 is activated here. When the content of particulate impurities monitored is high, Actuator 2 and Lifting Actuator 3 are activated together here, which is beneficial for adjusting the impurity removal position in the vertical direction. When the Movable Block moves upward, the Linking Channel 1 on one side of the Movable Block moves upward, and Channel 4 stretches, which is beneficial for the smooth progress of the impurity removal operation, and also drives Channel 5 and the feed hopper to move upward together to adjust the impurity removal position in the vertical direction. The negative pressure blade sucks the particulate impurities in the air from the feed hopper, guides them through Channel 5 to Channel 4, and then to the Loading Box.

[0026] Other features and advantages of the present invention will be described in the subsequent specification, and partly will become apparent from the specification, or will be understood by implementing the present invention. The objectives and other advantages of the present invention can be achieved and obtained through the structures particularly pointed out in the specification and the drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] The drawings are used to provide a further understanding of the present invention, and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention, and do not constitute a limitation to the present invention. In the drawings:

[0028] Figure 1 is a structural diagram of the cutting machine of the present invention;

[0029] Figure 2 is a structural diagram of the loading box of the present invention;

[0030] Figure 3 is a structural diagram of the infusion pump and channel 1 of the present invention;

[0031] Figure 4 is a structural diagram of the introduction slot of the present invention;

[0032] Figure 5 is a structural diagram of the movable unit of the present invention;

[0033] Figure 6 is a structural diagram of block 1 of the present invention;

[0034] Figure 7 is a structural diagram of the right-angle block of the present invention;

[0035] Figure 8 is a structural diagram of the channel of the present invention;

[0036] Figure 9 is a structural diagram of the movable block of the present invention.

[0037] Reference numerals: 1, cutting table; 101, shroud; 102, supporting bracket; 103, electric cylinder; 104, first actuator; 105, cutting wheel; 106, aggregate box; 107, support block; 108, storage box; 109, first opening and closing plate; 3, loading box; 4, liquid storage box; 5, second opening and closing plate; 6, liquid storage box; 7, infusion pump; 8, first channel; 9, supporting block; 10, screening block; 21, concave channel; 22, attachment block; 23, second channel; 24, third channel; 25, liquid outlet; 26, injection hole; 27, guiding groove; 28, installation block; 29, movable block; 210, signal lamp; 31, first connecting block; 32, connecting piece; 33, second actuator; 34, first linkage block; 35, flat rope; 36, first guide roller; 37, first loop block; 38, first connecting rod; 39, check wheel; 310, stop block; 41, helical beryllium copper wire; 42, support rod; 43, third linkage block; 44, second linkage block; 45, third actuator; 46, second loop block; 47, second connecting rod; 48, fourth linkage block; 49, movable opening; 410, third connecting rod; 51, fourth channel; 52, first connecting channel; 53, second connecting channel; 54, negative pressure vane; 55, fifth channel; 56, feed hopper; 57, analyzer; 58, stop block; 59, right-angle block; 510, second guide roller; 61, groove channel. Detailed implementation manners

[0038] In order to make the objectives, technical solutions and advantages of the technical solutions of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the drawings of the specific embodiments of the present invention. The same reference numerals in the drawings represent the same components. It should be noted that the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.

[0039] Refer to Figures 1-9, an embodiment of the present invention provides a high-speed steel wire cutting machine, which includes a cutting table 1. The upper part of the cutting table 1 is fixedly connected with a supporting bracket 102, a supporting block 107 and an enclosure 101. The supporting bracket 102 is inside the enclosure 101. An electric cylinder 103 is installed on the supporting bracket 102. A cutting wheel 105 and a first actuator 104 are installed at the lower part of the electric cylinder 103. The output head of the first actuator 104 is connected to the cutting wheel 105. An aggregate box 106 is installed at the lower part of the cutting table 1. The upper part of the supporting block 107 is fixedly connected with a storage box 108. The part of the storage box 108 adjacent to the enclosure 101 is communicated. A first opening and closing plate 109 is screwed on the storage box 108. A loading box 3, a supporting block 9, a liquid storage box 6, an extraction unit, an analyzer 57, an actuating unit, a moving unit and a liquid outlet unit are installed on the storage box 108. The analyzer 57 is used to monitor the content of particulate impurities in the air. A through groove for the high-speed steel wire to pass through is reserved on the enclosure 101. The supporting block 107 supports the storage box 108, which is beneficial to the smooth passing of the high-speed steel wire and beneficial to the cutting of the high-speed steel wire by the cutting wheel 105. A material passing port communicated with the aggregate box 106 is reserved on the cutting table 1, which is beneficial to the collection and disposal of the cut chips. The installation of the enclosure 101 is beneficial to improving the air cleanliness of the production and cutting site.

[0040] The upper part of the supporting block 9 is fixedly connected with the loading box 3, and the liquid storage box 6 is slidably connected inside the supporting block 9.

[0041] An actuating unit and a moving unit are installed on the upper part of the loading box 3, and the actuating unit drives the moving unit to operate.

[0042] The analyzer 57 is installed on the upper part of the moving unit.

[0043] An extraction unit is installed on the upper part of the loading box 3, and the upper part of the extraction unit is installed on the moving unit.

[0044] A screening block 10 is movably installed on the upper part of the liquid storage box 6. A concave channel 21 is reserved on the upper part of the screening block 10. An attachment block 22 is installed in the concave channel 21. Channel three 24 is installed on both sides of the loading box 3. A plurality of liquid outlets 25 are installed outside the channel three 24, and the liquid outlets 25 are installed on both sides inside the loading box 3;

[0045] The liquid outlet unit is communicated with the channel three 24.

[0046] The moving unit includes a mounting block 28, a moving block 29, a first ring block 37 and a first connecting rod 38. A plurality of protrusions are fixedly connected to the side wall of the first ring block 37. The mounting block 28 is fixedly connected to the upper part of the loading box 3. The moving block 29 is movably installed in the mounting block 28. A channel 61 is installed on the moving block 29. A plurality of protrusions are fixedly connected in the channel 61. The first connecting rod 38 is rotatably installed on the mounting block 28. The first ring block 37 is fixedly connected to the first connecting rod 38. The channel 61 on the moving block 29 is engaged with the first ring block 37.

[0047] One side of the installation block 28 is provided with a stop unit and a release unit. The stop unit engages with the first loop block 37, and the release unit drives the stop unit to release the stopped state.

[0048] When the content of particulate debris in the air monitored by the analyzer 57 is lower than a predetermined threshold, the movable unit is activated to move the movable block 29 upward to a preset position to prevent interference to the operator. When the content of monitored particulate debris increases, the stop unit is released via the release unit, and then the first loop block 37 rotates reversely, which is beneficial to adjusting the impurity removal position according to the content of particulate debris and improving the air cleanliness of the production cutting site.

[0049] The liquid outlet unit includes a liquid storage box 4, an infusion pump 7, a first channel 8 and a second channel 23. The liquid storage box 4 is installed on one side of the loading box 3, an injection hole 26 is installed on the upper part of the liquid storage box 4, one side of the third channel 24 is fixedly connected to the first channel 8 via the second channel 23, the infusion pump 7 is installed on one side of the first channel 8, and the infusion pump 7 is fixedly connected to the liquid storage box 4 via the sixth channel.

[0050] The infusion pump 7 sucks out the liquid in the liquid storage box 4 and guides it to the second channel 23 and the third channel 24 through the first channel 8 to settle the particulate debris in the air for unified disposal.

[0051] An introduction groove 27 is reserved on the upper part of the loading box 3, and a second opening and closing plate 5 is rotatably connected to one side of the loading box 3.

[0052] Through the attachment block 22, it is beneficial to make the particulate debris in the air attach thereto.

[0053] The actuating unit includes a second actuator 33, a flat rope 35, a second guide roller 510 and a first guide roller 36. A stop block 58 is fixedly connected to the upper part of the loading box 3. The second actuator 33 is installed in the stop block 58. The second actuator 33 is fixedly connected to the upper part of the loading box 3. The output head of the second actuator 33 is fixedly connected to the second guide roller 510. The second guide roller 510 is connected to the first guide roller 36 through the flat rope 35. The first guide roller 36 is fixedly connected to one side of the connecting bar 38.

[0054] The second guide roller 510 is driven to rotate by the second actuator 33, and the first guide roller 36 is rotated by the flat rope 35. The first guide roller 36 drives the connecting bar 38 to rotate, driving the first loop block 37 to rotate. The first loop block 37 moves the externally engaged movable block 29 upward. When the content of particulate debris in the air is high, the stop unit is released via the release unit, and then the first loop block 37 rotates reversely, which is beneficial to adjusting the impurity removal position according to the content of particulate debris and improving the air cleanliness of the production cutting site.

[0055] A second connecting block is rotatably connected to the outside of the connecting bar 38. The second connecting block is fixedly connected to one side of the installation block 28. The other side of the second guide roller is rotatably connected to a first linkage block 34. The first linkage block 34 is fixedly connected to one side of the installation block 28.

[0056] The second connecting block is beneficial to enhancing the smoothness of the rotation of the first connecting rod 38, and the first linkage block 34 is beneficial to enhancing the smoothness of the rotation of the second guide roller.

[0057] The stop unit includes a check wheel 39, a stop block 310, a helical beryllium copper wire 41, a support rod 42, and a third linkage block 43. The support rod 42 has the property of being able to expand or contract. A plurality of protrusions are fixedly connected to the side wall of the check wheel 39. The check wheel 39 is fixedly connected to one side of the first connecting rod 38. The check wheel 39 externally engages with the stop block 310. The upper part of the stop block 310 is fixedly connected to the helical beryllium copper wire 41 and the support rod 42. The other side of the helical beryllium copper wire 41 and the support rod 42 is fixedly connected to the third linkage block 43. The third linkage block 43 is fixedly connected to the mounting block 28.

[0058] A third connecting rod 410 is rotatably connected inside the stop block 310. The third connecting rod 410 is fixedly connected to one side of the mounting block 28.

[0059] When the first circular block 37 rotates to adjust the position of the movable block 29 in the vertical direction, the check wheel 39 in the stop unit rotates. During the rotation of the check wheel 39, the stop block 310 is pulled. The stop block 310 shortens the upper helical beryllium copper wire 41 and the support rod 42. Through the helical beryllium copper wire 41, the stop block 310 is engaged with the next check wheel 39 to prevent the check wheel 39 from rotating reversely, stabilizing the movable block 29 at the adjusted position to prevent it from moving down during the continuous operation of the impurity removal operation, which is beneficial to the smooth progress of the impurity removal operation. When the first connecting rod 38 rotates, the check wheel 39 also rotates to stop the rotating first connecting rod 38.

[0060] The release unit includes a second linkage block 44, a third actuator 45, a second circular block 46, a second connecting rod 47, a fourth linkage block 48, and a movable opening 49. A non-full-circumference engaging protrusion is fixedly connected to the side wall of the fourth linkage block 48. An engaging protrusion is arranged on one side of the second linkage block 44. The fourth linkage block 48 is engaged with one side of the second linkage block 44. An activity opening 49 is reserved on one side of the fourth linkage block 48. The output head of the third actuator 45 is fixedly connected to the second circular block 46. The side part of the second circular block 46 is fixedly connected to the second connecting rod 47. The second connecting rod 47 is movably arranged in the movable opening 49. The fourth linkage block 48 is rotatably arranged on one side of the mounting block 28. The second linkage block 44 is rotatably arranged on one side of the stop block 310. The third actuator 45 is fixedly connected to the mounting block 28 through a right-angle block 59. The second linkage block 44 is movably arranged on the right-angle block 59.

[0061] When the content of particulate impurities in the air increases, the feed hopper 56 needs to be adjusted downward. Actuator three 45 is activated, and the second ring block 46 rotates together with the second connecting rod 47. The second ring block 46 makes a semi-circular rotation. After adjusting the position in the vertical direction, then let the stop block 310 make a semi-circular rotation to return to the engaged state. The second connecting rod 47 slides in the moving port 49. Here, the fourth linkage block 48 moves up and down. The fourth linkage block 48 drives the second linkage block 44 downward. The second linkage block 44 drives one side of the stop block 310 to deflect downward, and the other side of the stop block 310 deflects upward accordingly, separating from the check wheel 39. The check wheel 39 can rotate reversely, and the feed hopper 56 is moved downward through the moving block 29, which is beneficial to adjusting the impurity removal position according to the content of particulate impurities and improving the air cleanliness of the production and cutting site.

[0062] One upper side of the moving block 29 is fixedly connected with the first connecting block 31. A signal lamp 210 is installed on the upper part of the moving block 29. The analyzer 57 is installed below the first connecting block 31. A central control module is installed on the moving block 29. The analyzer 57, the signal lamp 210, the second actuator 33, and the third actuator 45 are all electrically connected to the central control module.

[0063] When the content of particulate impurities in the air exceeds the preset threshold of the analyzer 57, the signal lamp 210 triggers an audible and visual alarm signal to prompt the operator to evacuate the area. When the content monitored by the analyzer 57 is low, only the second driving actuator 33 is activated here. When the content of particulate impurities monitored is high, both the second driving actuator 33 and the third lifting actuator 45 are activated here, which is beneficial to adjusting the impurity removal position in the vertical direction.

[0064] The extraction unit includes the fourth channel 51, the first connecting channel 52, the second connecting channel 53, the negative pressure blade 54, the fifth channel 55, and the feed hopper 56. The fourth channel 51 has the characteristic of being expandable or contractible. The feed hopper 56 extends into the shroud 101.

[0065] One side of the moving block 29 is fixedly connected with the connecting piece 32. The first connecting channel 52 is fixedly connected in the connecting piece 32. The lower part of the first connecting channel 52 is fixedly connected with the fourth channel 51. The fourth channel 51 is fixedly connected to the upper part of the loading box 3. The lower part of the fourth channel 51 is connected to the inlet groove 27 on the upper part of the loading box 3. The upper part of the first connecting channel 52 is fixedly connected with the second connecting channel 53. The negative pressure blade 54 is installed on the upper part of the second connecting channel 53. The fifth channel 55 is installed on the upper part of the negative pressure blade 54. The other side of the fifth channel 55 is fixedly connected with the feed hopper 56.

[0066] When the moving block 29 moves upward, the first connecting channel 52 on one side of the moving block 29 moves upward, and the fourth channel 51 stretches, which is beneficial to the smooth progress of the impurity removal operation. At the same time, it drives the fifth channel 55 and the feed hopper 56 upward to adjust the impurity removal position in the vertical direction. The negative pressure blade 54 sucks the particulate impurities in the air from the feed hopper 56, guides them to the fourth channel 51 through the fifth channel 55, and then to the loading box 3.

[0067] The foregoing has shown and described the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments, and what is described in the above embodiments and the specification is only to illustrate the principles of the present invention. Without departing from the spirit and scope of the present invention, the present invention will also have various changes and improvements, and these changes and improvements fall within the scope of the present invention claimed. The scope of the present invention claimed is defined by the appended claims and their equivalents.

Claims

1. A high-speed steel fine wire cutting machine, comprising a cutting table (1), characterized in that, The upper part of the cutting table (1) is fixedly connected with a supporting bracket (102), a supporting block (107) and a shroud (101). The supporting bracket (102) is inside the shroud (101). An electric cylinder (103) is installed on the supporting bracket (102). A cutting wheel (105) and a first actuator (104) are installed at the lower part of the electric cylinder (103). The output head of the first actuator (104) is connected to the cutting wheel (105). An aggregate box (106) is installed at the lower part of the cutting table (1). A storage box (108) is fixedly connected to the upper part of the supporting block (107). The part of the storage box (108) adjacent to the shroud (101) is communicated. A first opening and closing plate (109) is screwed on the storage box (108). A loading box (3), a supporting block (9), a liquid storage box (6), an extraction unit, an analyzer (57), an actuator unit, a moving unit and a liquid outlet unit are installed on the storage box (108); The loading box (3) is fixedly connected to the upper part of the supporting block (9). The liquid storage box (6) is slidably connected inside the supporting block (9). An actuator unit and a moving unit are installed on the upper part of the loading box (3).

2. The high-speed steel fine wire cutting machine according to claim 1, characterized in that, The analyzer (57) is installed on the upper part of the moving unit. The extraction unit is installed on the upper part of the loading box (3). The upper part of the extraction unit is installed on the moving unit. A screening block (10) is movably installed on the upper part of the liquid storage box (6). A concave channel (21) is reserved on the upper part of the screening block (10). An attachment block (22) is installed in the concave channel (21). Channels three (24) are installed on both sides of the loading box (3). A plurality of liquid outlets (25) are installed outside the channels three (24). The liquid outlets (25) are installed on both sides inside the loading box (3). The liquid outlet unit is communicated with the channels three (24); The moving unit includes an installation block (28), a moving block (29), a first ring block (37) and a first connecting rod (38). A plurality of protrusions are fixedly connected to the side wall of the first ring block (37). The installation block (28) is fixedly connected to the upper part of the loading box (3). The moving block (29) is movably installed in the installation block (28). A channel (61) is installed on the moving block (29). A plurality of protrusions are fixedly connected in the channel (61). The first connecting rod (38) is rotatably installed on the installation block (28). The first ring block (37) is fixedly connected to the first connecting rod (38). The channel (61) on the moving block (29) is engaged with the first ring block (37). A stopping unit and a releasing unit are installed on one side of the installation block (28). The stopping unit is engaged with the first ring block (37).

3. The high-speed steel fine wire cutting machine according to claim 2, wherein The liquid outlet unit includes a liquid storage box (4), an infusion pump (7), a first channel (8) and a second channel (23). One side of the loading box (3) is provided with the liquid storage box (4). An injection hole (26) is provided on the upper part of the liquid storage box (4). One side of the third channel (24) is fixedly connected to the first channel (8) via the second channel (23). An infusion pump (7) is provided on one side of the first channel (8). The infusion pump (7) is fixedly connected to the liquid storage box (4) via a sixth channel.

4. The high-speed steel fine wire cutting machine according to claim 2, characterized in that, An introduction groove (27) is reserved on the upper part of the loading box (3). One side of the loading box (3) is rotatably connected with a second opening and closing plate (5).

5. The high-speed steel fine wire cutting machine according to claim 2, characterized in that, The actuating unit includes a second actuating member (33), a flat rope (35), a second guide roller (510) and a first guide roller (36). A stop block (58) is fixedly connected to the upper part of the loading box (3). The second actuating member (33) is arranged in the stop block (58). The second actuating member (33) is fixedly connected to the upper part of the loading box (3). The output head of the second actuating member (33) is fixedly connected to the second guide roller (510). The second guide roller (510) is connected to the first guide roller (36) via the flat rope (35). The first guide roller (36) is fixedly connected to one side of the first connecting bar (38).

6. The high-speed steel fine wire cutting machine according to claim 5, characterized in that, A second connecting block is rotatably connected to the outside of the first connecting bar (38). The second connecting block is fixedly connected to one side of the installation block (28). The other side of the second guide roller is rotatably connected with a first linkage block (34). The first linkage block (34) is fixedly connected to one side of the installation block (28).

7. A high-speed steel fine wire cutting machine according to claim 2, characterized in that, The stopping unit includes a check wheel (39), a stopping block (310), a spiral beryllium copper wire (41), a support bar (42) and a third linkage block (43). A plurality of protrusions are fixedly connected to the side wall of the check wheel (39). The support bar (42) has the property of being able to expand or contract. The check wheel (39) is fixedly connected to one side of the first connecting bar (38). The check wheel (39) is externally engaged with the stopping block (310). The upper part of the stopping block (310) is fixedly connected with the spiral beryllium copper wire (41) and the support bar (42). The other sides of the spiral beryllium copper wire (41) and the support bar (42) are fixedly connected to the third linkage block (43). The third linkage block (43) is fixedly connected to the installation block (28); A third connecting bar (410) is rotatably connected in the stopping block (310). The third connecting bar (410) is fixedly connected to one side of the installation block (28).

8. The high-speed steel fine wire cutting machine according to claim 2, characterized in that, The release unit includes a linkage block two (44), an actuator three (45), a ring block two (46), a connecting bar two (47), a linkage block four (48) and a movable opening (49). A non-full-circumference engaging protrusion is fixedly connected to the side wall of the linkage block four (48). An engaging protrusion is provided on one side of the linkage block two (44). The linkage block four (48) engages with one side of the linkage block two (44). An activity opening (49) is reserved on one side of the linkage block four (48). The output head of the actuator three (45) is fixedly connected to the ring block two (46). The connecting bar two (47) is fixedly connected to the side of the ring block two (46). The connecting bar two (47) is movably arranged in the movable opening (49). The linkage block four (48) is rotatably arranged on one side of the mounting block (28). The linkage block two (44) is rotatably arranged on one side of the stop block (310). The actuator three (45) is fixedly connected to the mounting block (28) via a right-angle block (59). The linkage block two (44) is movably arranged on the right-angle block (59).

9. The high-speed steel fine wire cutting machine according to claim 2, wherein, A connecting block one (31) is fixedly connected to the upper part of one side of the movable block (29). A signal lamp (210) is arranged on the upper part of the movable block (29). The analyzer (57) is arranged below the connecting block one (31). A central control module is arranged on the movable block (29). The analyzer (57), the signal lamp (210), the actuator two (33) and the actuator three (45) are all electrically connected to the central control module.

10. The high-speed steel fine wire cutting machine according to claim 2, wherein, The extraction unit includes a channel four (51), a connecting channel one (52), a connecting channel two (53), a negative pressure blade (54), a channel five (55) and a feed hopper (56). The feed hopper (56) extends into the shroud (101). The channel four (51) has the property of being expandable or contractible. A connecting piece (32) is fixedly connected to one side of the movable block (29). The connecting channel one (52) is fixedly connected in the connecting piece (32). The lower part of the connecting channel one (52) is fixedly connected to the channel four (51). The channel four (51) is fixedly connected to the upper part of the loading box (3). The lower part of the channel four (51) is connected to the inlet groove (27) on the upper part of the loading box (3). The upper part of the connecting channel one (52) is fixedly connected to the connecting channel two (53). The negative pressure blade (54) is arranged on the upper part of the connecting channel two (53). The channel five (55) is arranged on the upper part of the negative pressure blade (54). The other side of the channel five (55) is fixedly connected to the feed hopper (56).