Cutting and discharging device for copper profile production
By using a pneumatic grinding rod and an exhaust fan system in the copper profile cutting and blanking device, the problems of saw disc deformation and dust residue were solved, the saw disc life was extended, and the cleanliness of the working environment was improved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI JINHENG NEW MATERIALS CO LTD
- Filing Date
- 2025-05-07
- Publication Date
- 2026-04-17
AI Technical Summary
The saw discs of existing copper profile cutting and blanking devices are prone to deformation and generate dust and slag during the cutting process, which affects the equipment and the environment.
The saw blade is cleaned in a timely manner by using a pneumatic grinding rod output from the end sleeve inside the blade sheath, combined with the suction port, connecting pipe and exhaust fan extraction system to remove the dust and debris generated during cutting.
Extends the lifespan of the saw blade, improves the cleanliness of the working environment, and reduces dust and residue pollution.
Smart Images

Figure CN224128732U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of copper profile production technology, and in particular to a cutting and blanking device for copper profile production. Background Technology
[0002] Copper materials are made of pure copper or copper alloys and come in various shapes, including rods, wires, plates, strips, bars, tubes, and foils. Copper materials are processed by rolling, extrusion, and drawing methods. Copper plates and strips are hot-rolled and cold-rolled; while strips and foils are cold-rolled; tubes and rods are divided into extruded products and drawn products; and wires are all drawn.
[0003] Existing cutting and blanking devices, such as the one described in application number CN202321324830.0 for copper profile production, which relates to the field of copper profile cutting equipment technology, include a cutting table. A pressing cylinder is connected to the bottom end of the cutting table and located in the middle position. The output end of the pressing cylinder is provided with a wrapping and limiting component. The wrapping and limiting component includes an I-shaped pressing plate disposed at the output end of the pressing cylinder. The top of the I-shaped pressing plate and located on one side of the outer wall of the pressing cylinder is provided with a first U-shaped locking buckle that penetrates the cutting table. However, in the above technology, the saw blade is prone to deformation after long-term use and needs to be replaced frequently. Moreover, a lot of powder and slag are generated during the cutting process, which affects the equipment and the surrounding production environment. Therefore, this utility model proposes a cutting and blanking device for copper profile production to solve the problems existing in the prior art. Utility Model Content
[0004] To address the aforementioned problems, this utility model proposes a cutting and blanking device for copper profile production. This device mainly utilizes the output end of the end sleeve set on the inner side of both ends of the blade sleeve to enable the pneumatic grinding rod to achieve timely cleaning and grinding of the saw disc during rotation, facilitating subsequent long-term processing. Furthermore, with the cooperation of the suction port, connecting pipe, isolation cleaning box, and exhaust fan, it can effectively extract the powder and slag generated during the cutting process, thereby improving the cleanliness of the working environment.
[0005] To achieve the purpose of this utility model, the utility model is achieved through the following technical solution: a cutting and blanking device for copper profile production, including a positioning and clamping assembly and a cutting mechanism, wherein a displacement adjustment assembly is provided at the output end of the positioning and clamping assembly, and a bolt-assembled cutting mechanism is provided at the upper end of the displacement adjustment assembly.
[0006] The cutting mechanism includes a front arm, a blade sheath, an end sleeve, a pneumatic grinding rod, a saw disc, a transmission wheel assembly, a gearbox, a drive motor, a suction port, a connecting pipe, an isolation cleaning box, and an exhaust fan. The front arm is bolted to one end of the displacement adjustment assembly. One end of the front arm is provided with a blade sheath, and the inner sides of both ends of the blade sheath are provided with end sleeves for mounting the pneumatic grinding rod. The inside of the blade sheath is provided with a saw disc connected to the output end of the transmission wheel assembly. The input end of the transmission wheel assembly is provided with a gearbox for mounting the drive motor. The output end of the blade sheath is connected to a connecting pipe through a suction port, and the input end of the connecting pipe is connected to an isolation cleaning box for mounting the exhaust fan.
[0007] In a preferred embodiment of this utility model, the blade sheath has a porous structure, the connecting pipe, the isolation cleaning box and the exhaust fan constitute a unidirectional pipeline structure, and the pneumatic grinding rods are symmetrically distributed around the central axis of the saw disc.
[0008] In a preferred embodiment of the present invention, the positioning and clamping assembly includes a slotted base, an end frame, an empty slotted base plate, a carrier box, an end-to-end chamber, a first cylinder rod, a connecting frame, a second cylinder rod, a lifting bar, and an electric rotating bar. An end frame is provided above one end of the slotted base, and an empty slotted base plate is provided above the outer end of the end frame. A carrier box is provided on the inner bottom side of the empty slotted base plate.
[0009] In a preferred embodiment of this utility model, bolt-fitted end-to-end compartments are provided above the periphery of the hollow slot substrate, and a first cylinder rod is provided at the outer end of the end-to-end compartment. A connecting frame is provided at the output end of the first cylinder rod, and a second cylinder rod is provided at the inner end of the connecting frame. A lifting bar is provided at the output end of the second cylinder rod, and an electric rotating bar is provided at the output end of the lifting bar.
[0010] In a preferred embodiment of the present invention, the displacement adjustment assembly includes a first lead screw, a sliding frame, a table, a slotted frame, a second lead screw, a lifting frame, a horizontal box, a third lead screw, and a sliding base. The first lead screw is disposed at the output end of the slotted base, and the first lead screw is threadedly connected to the sliding frame. A table is disposed above the outer end of the sliding frame, and a slotted frame is disposed above the side of the table.
[0011] In a preferred embodiment of this utility model, a lifting frame is threadedly connected to the slotted frame via a second lead screw, and a bolted horizontal box is provided at one end of the lifting frame, with a sliding base threadedly connected to the horizontal box via a third lead screw.
[0012] The beneficial effects of this utility model are as follows:
[0013] This utility model mainly utilizes the output end of the end sleeve set on the inner side of both ends of the blade sleeve to enable the pneumatic grinding rod to achieve timely cleaning and grinding effect on the saw disc during rotation, so as to facilitate subsequent long-term processing. Moreover, with the cooperation of the suction port, connecting pipe, isolation cleaning box and exhaust fan, it can effectively achieve the extraction effect of powder and slag generated during the cutting process, thereby improving the cleanliness of the working environment. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0015] Figure 2 This is a bottom-view three-dimensional structural diagram of the present invention;
[0016] Figure 3 This is a three-dimensional structural diagram of the cutting mechanism of this utility model;
[0017] Figure 4 This is a three-dimensional structural diagram of the end sleeve and pneumatic grinding rod of this utility model.
[0018] The components include: 1. Positioning and clamping assembly; 101. Slotted base; 102. End frame; 103. Empty slotted base plate; 104. Carrier box; 105. End-aligning chamber; 106. First cylinder rod; 107. Connecting frame; 108. Second cylinder rod; 109. Lifting bar; 1010. Electric rotating bar; 2. Displacement adjustment assembly; 201. First lead screw; 202. Sliding frame; 203. Table; 204. Slotted frame; 205. ... 206. Lead screw; 207. Lifting frame; 208. Horizontal box; 209. Third lead screw; 2000. Sliding base; 3. Cutting mechanism; 301. Front arm; 302. Blade sleeve; 303. End sleeve; 304. Pneumatic grinding rod; 305. Saw disc; 306. Transmission wheel set; 307. Gearbox; 308. Drive motor; 309. Suction port; 3010. Connecting pipe; 3011. Isolation cleaning box; 3012. Exhaust fan. Detailed Implementation
[0019] To deepen the understanding of this utility model, the following detailed description will be provided in conjunction with embodiments. These embodiments are only used to explain this utility model and do not constitute a limitation on the scope of protection of this utility model.
[0020] according to Figure 1-4 As shown, this embodiment proposes a cutting and blanking device for copper profile production, including a positioning and clamping assembly 1 and a cutting mechanism 3. The output end of the positioning and clamping assembly 1 is provided with a displacement adjustment assembly 2, and the upper end of the displacement adjustment assembly 2 is provided with a bolt-assembled cutting mechanism 3.
[0021] The cutting mechanism 3 includes a front arm 301, a blade sheath 302, an end sleeve 303, a pneumatic grinding rod 304, a saw disc 305, a transmission wheel set 306, a speed change gearbox 307, a drive motor 308, a suction port 309, a connecting pipe 3010, an isolation cleaning box 3011, and an exhaust fan 3012. The front arm 301 is bolted to one end of the displacement adjustment assembly 2. The blade sheath 302 is provided at one end of the front arm 301, and both ends of the blade sheath 302 are... The inner side is provided with an end sleeve 303 for installing a pneumatic grinding rod 304. The inside of the blade sleeve 302 is provided with a saw disc 305 connected to the output end of the transmission wheel set 306. The input end of the transmission wheel set 306 is provided with a speed change box 307 for installing a drive motor 308. The output end of the blade sleeve 302 is connected to a connecting pipe 3010 through a suction port 309, and the input end of the connecting pipe 3010 is connected to an isolation cleaning box 3011 for installing an exhaust fan 3012.
[0022] The blade sheath 302 has a porous structure, and the connecting pipe 3010, the isolation cleaning box 3011 and the exhaust fan 3012 form a unidirectional pipeline structure. The pneumatic grinding rods 304 are symmetrically distributed around the central axis of the saw disc 305.
[0023] In this embodiment, when cutting is required, the drive motor 308 outputs power to drive the output end to run, so that the transmission wheel set 306 and the speed change gearbox 307 output to run, causing the saw disc 305 on the blade sleeve 302 to rotate at high speed, thereby achieving the cutting effect. Then, the exhaust fan 3012 outputs to run, so that the suction port 309, connecting pipe 3010, and isolation cleaning box 3011 can extract and store the heat of the exhaust gas generated by cutting. When timely cleaning is required, the pneumatic grinding rod 304 on the end sleeve 303 outputs to run, effectively and directly cleaning the saw disc 305.
[0024] The positioning and clamping assembly 1 includes a slotted base 101, an end frame 102, an empty slotted base plate 103, a carrier box 104, an end-aligning chamber 105, a first cylinder rod 106, a connecting frame 107, a second cylinder rod 108, a lifting bar 109, and an electric rotating bar 1010. The end frame 102 is provided above one end of the slotted base 101, and the empty slotted base plate 103 is provided above the outer end of the end frame 102. The carrier box 104 is provided on the inner bottom side of the empty slotted base plate 103.
[0025] In this embodiment, when in use, the product to be processed is placed on the slotted substrate 103 above the end frame 102, and the carrier box 104 on the bottom side of the slotted substrate 103 temporarily stores the waste generated during cutting.
[0026] The upper perimeter of the hollow base plate 103 is provided with bolt-fitted end-to-end compartments 105, and the outer end of the end-to-end compartments 105 is provided with a first cylinder rod 106. The output end of the first cylinder rod 106 is provided with a connecting frame 107, and the inner end of the connecting frame 107 is provided with a second cylinder rod 108. The output end of the second cylinder rod 108 is provided with a lifting bar 109, and the output end of the lifting bar 109 is provided with an electric rotating bar 1010.
[0027] In this embodiment, when positioning is required, the first cylinder rod 106 on the end-to-end chamber 105 outputs power to drive the output end to run, so that the connecting frame 107 runs to a suitable position. Then, the second cylinder rod 108 outputs power to drive the output end to run, so that after the lifting bar 109 outputs power, the electric rotating bar 1010 clamps and positions the product to be processed.
[0028] The displacement adjustment assembly 2 includes a first lead screw 201, a sliding frame 202, a table 203, a slotted frame 204, a second lead screw 205, a lifting frame 206, a horizontal box 207, a third lead screw 208, and a sliding base 209. The first lead screw 201 is located at the output end of the slotted base 101. The first lead screw 201 is threadedly connected to the sliding frame 202, and the table 203 is located above the outer end of the sliding frame 202. The slotted frame 204 is located above the side of the table 203.
[0029] In this embodiment, when cutting is required, the output end of the slotted base 101 is used to output power to drive the output end to run, so that the table 203 and the slotting frame 204 are adjusted to a suitable processing position.
[0030] A lifting frame 206 is threadedly connected to the slotted frame 204 via a second lead screw 205, and a bolted horizontal box 207 is provided at one end of the lifting frame 206. A sliding base 209 is threadedly connected to the horizontal box 207 via a third lead screw 208.
[0031] In this embodiment, when cutting is required, the output end of the slotting frame 204 is used to drive the output end to run, so that the lifting frame 206 is adjusted to a suitable height position, so that the output end of the horizontal box 207 is used to drive the output end to run, so that after the third lead screw 208 is output and run, the sliding base 209 runs to a suitable position.
[0032] The working principle of this copper profile cutting and blanking device is as follows: During use, the product to be processed is placed on the slotted substrate 103 above the end frame 102. The bearing box 104 on the bottom side of the slotted substrate 103 temporarily stores the waste generated during cutting. When positioning is required, the first cylinder rod 106 on the end chamber 105 outputs power to drive the output end, causing the connecting frame 107 to move to a suitable position. Then, the second cylinder rod 108 outputs power to drive the output end, causing the lifting bar 109 to operate, which in turn causes the electric rotating bar 1010 to clamp and position the product to be processed. When cutting is required, the output end of the slotted base 101 outputs power to drive the output end, adjusting the table 203 and the grooving frame 204 to a suitable processing position. When cutting is required, the conveyor belt on the grooving frame 204... The output power drives the output end to operate, so that the lifting frame 206 is adjusted to a suitable height position, so that the output end on the horizontal box 207 drives the output end to operate, so that after the third lead screw 208 is operated, the sliding base 209 is moved to a suitable position. When cutting is required, the drive motor 308 is used to output power to drive the output end to operate, so that after the transmission wheel set 306 and the speed change gearbox 307 are operated, the saw disc 305 on the blade sleeve 302 rotates at high speed to achieve the cutting effect. Then, the exhaust fan 3012 is used to operate, so that the suction port 309, connecting pipe 3010, and isolation cleaning box 3011 can extract and store the exhaust gas heat generated by cutting. When timely cleaning is required, the pneumatic grinding rod 304 on the end sleeve 303 is used to operate to effectively and directly clean the saw disc 305.
[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A cutting and blanking device for copper profile production, comprising a positioning and clamping assembly (1) and a cutting mechanism (3), characterized in that: The output end of the positioning clamping component (1) is provided with a displacement adjustment component (2), and the upper end of the displacement adjustment component (2) is provided with a bolt-assembled cutting mechanism (3). The cutting mechanism (3) includes a front arm (301), a blade sheath (302), an end sleeve (303), a pneumatic grinding rod (304), a saw disc (305), a transmission wheel set (306), a gearbox (307), a drive motor (308), a suction port (309), a connecting pipe (3010), an isolation cleaning box (3011), and an exhaust fan (3012). The front arm (301) is bolted to one end of the displacement adjustment assembly (2). One end of the front arm (301) is provided with a blade sheath (302), and the blade sheath (301) is... 2) The inner sides of both ends are provided with end sleeves (303) for installing pneumatic grinding rods (304). The inside of the blade sleeve (302) is provided with a saw disc (305) connected to the output end of the transmission wheel set (306). The input end of the transmission wheel set (306) is provided with a gearbox (307) for installing a drive motor (308). The output end of the blade sleeve (302) is connected to a connecting pipe (3010) through a suction port (309), and the input end of the connecting pipe (3010) is connected to an isolation cleaning box (3011) for installing an exhaust fan (3012).
2. The cutting and blanking device for copper profile production according to claim 1, characterized in that: The blade sheath (302) has a porous structure, the connecting pipe (3010), the isolation cleaning box (3011) and the exhaust fan (3012) form a unidirectional pipeline structure, and the pneumatic grinding rod (304) is symmetrically distributed around the central axis of the saw disc (305).
3. The cutting and blanking device for copper profile production according to claim 1, characterized in that: The positioning and clamping assembly (1) includes a slotted base (101), an end frame (102), an empty slotted base plate (103), a carrier box (104), an end-to-end compartment (105), a first cylinder rod (106), a connecting frame (107), a second cylinder rod (108), a lifting bar (109), and an electric rotating bar (1010). The end frame (102) is provided above one end of the slotted base (101), and the empty slotted base plate (103) is provided above the outer end of the end frame (102). The carrier box (104) is provided on the inner bottom side of the empty slotted base plate (103).
4. The cutting and blanking device for copper profile production according to claim 3, characterized in that: The hollow slot substrate (103) is provided with bolt-fitted end-to-end compartments (105) above its perimeter. The outer end of the end-to-end compartments (105) is provided with a first cylinder rod (106). The output end of the first cylinder rod (106) is provided with a connecting frame (107). The inner end of the connecting frame (107) is provided with a second cylinder rod (108). The output end of the second cylinder rod (108) is provided with a lifting bar (109). The output end of the lifting bar (109) is provided with an electric rotating bar (1010).
5. The cutting and blanking device for copper profile production according to claim 3, characterized in that: The displacement adjustment assembly (2) includes a first lead screw (201), a sliding frame (202), a table (203), a slotted frame (204), a second lead screw (205), a lifting frame (206), a horizontal box (207), a third lead screw (208), and a sliding base (209). The first lead screw (201) is located at the output end of the slotted base (101). The first lead screw (201) is threadedly connected to the sliding frame (202), and a table (203) is located above the outer end of the sliding frame (202). A slotted frame (204) is located above the side of the table (203).
6. The cutting and blanking device for copper profile production according to claim 5, characterized in that: The slotted frame (204) is threadedly connected to the lifting frame (206) via the second lead screw (205), and one end of the lifting frame (206) is provided with a bolt-assembled horizontal box (207), and the horizontal box (207) is threadedly connected to the sliding base (209) via the third lead screw (208).
Citation Information
Patent Citations
Cutting and discharging device for copper profile production
CN219924717U