Anode carbon block slotting device
By designing anode carbon block grooved device driven by fixed motors and mobile motors, the problem of displacement of carbon blocks of different specifications during transmission is solved, and higher cutting accuracy and grooved effect are achieved.
Patent Information
- Application Number
- CN202421818201.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-30
- Publication Date
- 2025-07-01
- Estimated Expiration
- 2034-07-30
AI Technical Summary
In the prior art, the different specifications and sizes of the anode carbon block lead to easy displacement during transmission, affecting the cutting accuracy and grooved effect.
An anode carbon block groove device including a fixed motor, a mobile motor, a cutting motor, a adjustment member and a roller is designed. The fixed motor drives the solid plate to clamp the carbon block, the mobile motor drives the frame to move, the cutting motor drives the blade to rotate, the adjustment member adjusts the blade position, avoids the displacement of the carbon block and improves the cutting accuracy.
It effectively avoids the displacement of carbon blocks of different specifications during transmission, and improves cutting accuracy and grooved effect.
Smart Images

Figure CN223044863U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cutting machinery, in particular to a grooving device for anode carbon blocks. Background Art
[0002] An anode carbon block refers to a carbon block produced with petroleum coke and pitch coke as aggregates and coal tar pitch as a binder, which is used as an anode material for pre-baked aluminum electrolysis cells. It is a carbon product with a stable geometric shape after calcination treatment, and is also called a pre-baked anode carbon block or a carbon anode for aluminum electrolysis. During the production process of anode carbon blocks, grooving is required. Usually, the device is inconvenient to adjust the position height of the blade, so that the grooving size of the anode carbon block is inconvenient to adjust, thus affecting the use effect of the device.
[0003] The prior art CN221021796U discloses a grooving device for pre-baked anode carbon blocks, including a servo motor, a threaded rod, a slider, a fixed bracket, a chute, a slider, a cutting motor, a rotating shaft, a blade, a cutting motor, a driving motor and a conveyor belt. The servo motor drives the threaded rod to rotate, and the threaded rod drives the slider to move up and down inside the chutes on both sides of the fixed bracket. Then the slider can drive the cutting motor and the rotating shaft to move up and down together to adjust the unknown height of the blade. The cutting motor drives the blade to rotate, and the driving motor drives the conveyor belt to rotate. The pre-baked anode carbon block is placed on the surface of the conveyor belt for conveying and contacts with the blade for cutting and grooving, so that the device is convenient to adjust the grooving size of the anode carbon block, thereby improving the use effect of the device.
[0004] During normal use, due to the different specification sizes of anode carbon blocks, during the grooving process of different specification anode carbon blocks in the prior art, different specification anode carbon blocks are prone to displacement during conveying, which affects the cutting accuracy of the anode carbon blocks, thereby affecting the grooving effect of the device on the anode carbon blocks. Summary of the Utility Model
[0005] The purpose of the utility model is to provide a grooving device for anode carbon blocks, which solves the problem that during the grooving process of different specification anode carbon blocks in the prior art, due to the different specification sizes of anode carbon blocks, different specification anode carbon blocks are prone to displacement during conveying, which affects the cutting accuracy of the anode carbon blocks, thereby affecting the grooving effect of the device on the anode carbon blocks.
[0006] To achieve the above object, the present utility model provides a grooving device for anode carbon blocks, which includes a box body and an installation component; the installation component includes a blade, a frame body, a frame, a fixing plate, rollers, a fixing screw rod, a fixing motor, a cutting motor, an adjusting component and a moving component. The frame body is fixedly installed on one side of the box body. The moving component is arranged on the box body. The frame is connected to the moving component and is slidably connected to the frame body. The fixing plate is slidably installed on the side of the frame away from the frame body. The fixing screw rod is rotatably connected to the frame and is threadedly connected to the fixing plate. The fixing motor is fixedly connected to the frame. The output shaft of the fixing motor is connected to the fixing screw rod. The adjusting component is arranged on the box body. The blade is connected to the adjusting component. The cutting motor is connected to the adjusting component. The output shaft of the cutting motor is connected to the blade. The rollers are rotatably installed on the side of the frame close to the box body.
[0007] Among them, the moving component includes a moving screw rod and a moving motor. The moving screw rod is threadedly connected to the frame and is rotatably connected to the frame body. The moving motor is fixedly connected to the frame body. The output shaft of the moving motor is connected to the moving screw rod.
[0008] Among them, the adjusting component includes a U-shaped frame, a slider, an adjusting screw rod and a power component. The slider is rotatably connected to the blade and is fixedly connected to the fixing motor. The adjusting screw rod is threadedly connected to the slider and is located on the side of the slider away from the blade. The U-shaped frame is slidably connected to the slider and is rotatably connected to the adjusting screw rod. The power component is connected to the U-shaped frame and is connected to the adjusting screw rod.
[0009] Among them, the power component includes a power rod, a main bevel gear, a driven bevel gear and a power motor. The main bevel gear is fixedly installed on the side of the adjusting screw rod away from the slider. The driven bevel gear meshes with the main bevel gear. The power rod is rotatably connected to the U-shaped frame and is fixedly connected to the driven bevel gear. The power motor is fixedly connected to the U-shaped frame. The output shaft of the power motor is connected to the power rod.
[0010] Among them, the adjusting component further includes a stabilizing rod, a stabilizing block and a stabilizing frame. The stabilizing block is fixedly connected to the slider and is located on the side of the slider away from the adjusting screw rod. The stabilizing frame is slidably connected to the stabilizing block and is located on the side of the stabilizing block away from the slider. The stabilizing rod is fixedly connected to the stabilizing frame and is slidably connected to the stabilizing block.
[0011] A grooving device for anode carbon blocks of the present utility model places the anode carbon block inside the frame body. The fixed motor drives the fixed lead screw to rotate on the frame body. When the fixed lead screw rotates, it drives the fixed plate to move, so that the two fixed plates clamp on both sides of the anode carbon block, fixing the anode carbon block on the frame body. The cutting motor drives the blade to rotate, and the moving motor drives the moving lead screw to rotate on the frame. When the moving lead screw rotates, it drives the frame body to move on the frame, and at the same time the frame body drives the roller to move on the box body, so that the anode carbon block approaches the blade for cutting and grooving, avoiding displacement of anode carbon blocks of different specifications during transmission and affecting the cutting accuracy of the anode carbon block, thereby improving the grooving effect of the device on the anode carbon block. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art.
[0013] Figure 1 It is a schematic diagram of the overall structure of the anode carbon block grooving device in the first embodiment of the present utility model.
[0014] Figure 2 It is a schematic diagram of the structure of the fixed lead screw and the fixed motor of the present utility model.
[0015] Figure 3 It is a schematic diagram of the structure of the power rod and the power motor of the present utility model.
[0016] Figure 4 It is a schematic diagram of the structure of the adjusting lead screw and the main bevel gear of the present utility model.
[0017] Figure 5 It is a schematic diagram of the structure of the moving lead screw and the moving motor of the present utility model.
[0018] Figure 6 It is a schematic diagram of the structure of the stabilizing rod and the stabilizing frame of the present utility model.
[0019] In the figure: 101 - box body, 102 - blade, 103 - frame, 104 - frame body, 105 - fixed plate, 106 - roller, 107 - fixed lead screw, 108 - fixed motor, 109 - cutting motor, 110 - moving lead screw, 111 - moving motor, 112 - U-shaped frame, 113 - slider, 114 - adjusting lead screw, 115 - power rod, 116 - main bevel gear, 117 - driven bevel gear, 118 - power motor, 201 - stabilizing rod, 202 - stabilizing block, 203 - stabilizing frame. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] Embodiments of the present utility model will be described in detail below. Examples of the embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to explain the present utility model, and should not be construed as a limitation of the present utility model.
[0021] The first embodiment of this application is as follows:
[0022] Please refer to Figures 1-5 , Figure 1 which is a schematic diagram of the overall structure of the anode carbon block grooving device according to the first embodiment of the present utility model, Figure 2 which is a schematic diagram of the fixed screw rod and the fixed motor of the present utility model, Figure 3 which is a schematic diagram of the power rod and the power motor of the present utility model, Figure 4 which is a schematic diagram of the adjusting screw rod and the main cone pulley of the present utility model, Figure 5 which is a schematic diagram of the moving screw rod and the moving motor of the present utility model. The present utility model provides an anode carbon block grooving device, which includes a box body 101 and an installation component; the installation component includes a blade 102, a frame body 103, a frame 104, a fixing plate 105, a roller 106, a fixed screw rod 107, a fixed motor 108, a cutting motor 109, an adjusting component and a moving component. The moving component includes a moving screw rod 110 and a moving motor 111. The adjusting component includes a U-shaped frame 112, a slider 113, an adjusting screw rod 114 and a power component. The power component includes a power rod 115, a main cone pulley 116, a driven cone pulley 117 and a power motor 118. Through the foregoing solution, in the process of grooving different specifications of anode carbon blocks in the prior art, different specifications of anode carbon blocks are likely to be displaced during transmission, affecting the cutting accuracy of the anode carbon blocks, thereby affecting the grooving effect of the device on the anode carbon blocks. It can be understood that the foregoing solution can be used in the case where the specifications and dimensions of the anode carbon blocks are different.
[0023] For this specific embodiment, by placing the anode carbon block inside the frame 104, the fixed motor 108 drives the fixed screw rod 107 to rotate on the frame 104. When the fixed screw rod 107 rotates, it drives the fixing plate 105 to move, so that the two fixing plates 105 clamp on both sides of the anode carbon block, fixing the anode carbon block on the frame 104. The cutting motor 109 drives the blade 102 to rotate. The moving component drives the frame 104 to move on the frame body 103. At the same time, the frame 104 drives the roller 106 to move on the box body 101, so that the anode carbon block approaches the blade 102 for cutting and grooving, avoiding the displacement of different specifications of anode carbon blocks during transmission, affecting the cutting accuracy of the anode carbon blocks, and thus improving the grooving effect of the device on the anode carbon blocks.
[0024] Among them, the frame body 103 is fixedly installed on one side of the box body 101, the moving member is arranged on the box body 101, the frame 104 is connected to the moving member and is slidably connected to the frame body 103, the fixing plate 105 is slidably installed on the side of the frame 104 away from the frame body 103, the fixing screw rod 107 is rotatably connected to the frame 104 and is threadedly connected to the fixing plate 105, the fixing motor 108 is fixedly connected to the frame 104, and the output shaft of the fixing motor 108 is connected to the fixing screw rod 107. The adjusting member is arranged on the box body 101, the blade 102 is connected to the adjusting member, the cutting motor 109 is connected to the adjusting member, and the output shaft of the cutting motor 109 is connected to the blade 102. The roller 106 is rotatably installed on the side of the frame 104 close to the box body 101. The top of the box body 101 is hollow. The four corners of the bottom of the frame body 103 are designed with columns, the top of the frame body 103 is designed with a chute, the columns of the frame body 103 are fixedly connected to the top of the box body 101. The upper part of the horizontal end of the frame 104 is designed with a through hole. The moving member drives the vertical end of the frame 104 to move on the chute of the frame body 103. There are two fixing plates 105. The top of the side surface of the fixing plate 105 is designed with a through threaded hole. The outer side of the fixing screw rod 107 is designed with an external thread, and the external threads at both ends are opposite. The external thread of the fixing screw rod 107 is connected to the through threaded hole of the fixing plate 105. The end of the fixing screw rod 107 is fixedly connected to the output shaft of the fixing motor 108 through the through hole of the frame 104. There are multiple rollers 106, and the rollers 106 are respectively located at the front and rear ends of the lower part outside the box body 101. The adjusting member is arranged at the inner bottom of the box body 101. The adjusting member drives the blade 102 and the cutting motor 109 to move in position. By placing the anode carbon block inside the frame 104, the fixing motor 108 drives the fixing screw rod 107 to rotate on the frame 104. When the fixing screw rod 107 rotates, it drives the fixing plate 105 to move, so that the two fixing plates 105 clamp on both sides of the anode carbon block, and the anode carbon block is fixed on the frame 104. The cutting motor 109 drives the blade 102 to rotate, and the moving member drives the frame 104 to move on the frame body 103. At the same time, the frame 104 drives the roller 106 to move on the box body 101, so that the anode carbon block approaches the blade 102 for cutting and grooving, avoiding displacement of anode carbon blocks of different specifications during transmission, which affects the cutting accuracy of the anode carbon block, thereby improving the grooving effect of the device on the anode carbon block.
[0025] Secondly, the moving lead screw 110 is threadedly connected to the frame body 104 and rotatably connected to the frame 103; the moving motor 111 is fixedly connected to the frame 103, the output shaft of the moving motor 111 is connected to the moving lead screw 110, a through hole is designed in the upper left part of the frame 103, an external thread is designed on the outer side of the moving lead screw 110, a through threaded hole is designed in the vertical end of the frame body 104, the external thread of the moving lead screw 110 is connected to the through threaded hole of the frame body 104, and the end of the moving lead screw 110 is fixedly connected to the output shaft of the moving motor 111 through the through hole of the frame 103. The moving lead screw 110 is driven by the moving motor 111 to rotate on the frame 103, and when the moving lead screw 110 rotates, it drives the frame body 104 to move on the frame 103, thereby driving the frame body 104 to move in position.
[0026] Then, the slider 113 is rotatably connected to the blade 102 and fixedly connected to the fixed motor 108; the adjusting lead screw 114 is threadedly connected to the slider 113 and is located on the side of the slider 113 away from the blade 102; the U-shaped frame 112 is slidably connected to the slider 113 and rotatably connected to the adjusting lead screw 114; the power component is connected to the U-shaped frame 112 and connected to the adjusting lead screw 114. A moving groove is designed in the vertical end of the U-shaped frame 112, and a rotating hole is designed at the end of the vertical end of the U-shaped frame 112. The outer side of the closed end of the U-shaped frame 112 is fixedly connected to the inner bottom of the box body 101. There are two sliders 113. A rotating hole is designed on the side of the slider 113, and a through threaded hole is designed in the upper right part of the top of the slider 113. The rotating hole of the slider 113 is rotatably connected to the end of the blade 102. An external thread is designed on the upper part of the outer side of the adjusting lead screw 114, and the external helix of the adjusting lead screw 114 is connected to the through threaded hole of the slider 113. The power component drives the two adjusting lead screws 114 to rotate on the rotating holes of the U-shaped frame 112. The adjusting lead screw 114 is driven by the power component to rotate on the U-shaped frame 112. When the adjusting lead screw 114 rotates, it drives the slider 113 to move up and down on the U-shaped frame 112. When the slider 113 moves, it drives the blade 102 and the cutting motor 109 to move, thereby adjusting the position height of the blade 102 and the cutting motor 109.
[0027] Finally, the main cone pulley 116 is fixedly installed on the side of the adjusting lead screw 114 away from the slider 113; the driven cone pulley 117 meshes with the main cone pulley 116; the power rod 115 is rotatably connected to the U-shaped frame 112 and fixedly connected to the driven cone pulley 117; the power motor 118 is fixedly connected to the U-shaped frame 112, the output shaft of the power motor 118 is connected to the power rod 115, the inner side of the closed end of the U-shaped frame 112 is hollow, a connection hole is designed on the right side of the closed end of the U-shaped frame 112, the main cone pulley 116 and the driven cone pulley 117 are a bevel gear, there are multiple main cone pulleys 116, the main cone pulleys 116 are located at the bottom end of the adjusting lead screw 114, the end of the power rod 115 is fixedly connected to the output shaft of the power motor 118 through the connection hole of the U-shaped frame 112, there are multiple driven cone pulleys 117, the driven cone pulleys 117 are respectively located at the left and right ends of the power rod 115, the power motor 118 drives the power rod 115 to drive the driven cone pulley 117 to rotate, and the driven cone pulley 117 drives the main cone pulley 116 to drive the adjusting lead screw 114 to rotate on the U-shaped frame 112, so as to drive the adjusting lead screw 114 to rotate.
[0028] When using the anode carbon block grooving device of this embodiment, place the anode carbon block inside the frame body 104, the fixed motor 108 drives the fixed lead screw 107 to rotate on the frame body 104, and when the fixed lead screw 107 rotates, it drives the fixed plate 105 to move, so that the two fixed plates 105 clamp on both sides of the anode carbon block, fixing the anode carbon block on the frame body 104, the cutting motor 109 drives the blade 102 to rotate, the moving motor 111 drives the moving lead screw 110 to rotate on the frame body 103, and when the moving lead screw 110 rotates, it drives the frame body 104 to move on the frame body 103. At the same time, the frame body 104 drives the roller 106 to move on the box body 101, so that the anode carbon block approaches the blade 102 for cutting and grooving, avoiding displacement of anode carbon blocks of different specifications during transmission and affecting the cutting accuracy of the anode carbon block, thereby improving the grooving effect of the device on the anode carbon block.
[0029] The second embodiment of this application is:
[0030] Please refer to Figure 6 , Figure 6 which is a structural schematic diagram of the stabilizing rod and the stabilizing frame of the present utility model. On the basis of the first embodiment, the adjusting member of this embodiment further includes a stabilizing rod 201, a stabilizing block 202 and a stabilizing frame 203.
[0031] For this specific embodiment, when the slider 113 moves, it drives the stabilizing block 202 to move on the stabilizing frame 203 and the stabilizing block 202, thereby improving the stability of the slider 113 driving the blade 102 to move.
[0032] Among them, the stabilizing block 202 is fixedly connected to the slider 113 and is located on the side of the slider 113 away from the adjusting lead screw 114; the stabilizing frame 203 is slidably connected to the stabilizing block 202 and is located on the side of the stabilizing block 202 away from the slider 113; the stabilizing rod 201 is fixedly connected to the stabilizing frame 203 and is slidably connected to the stabilizing block 202. There are multiple stabilizing blocks 202. A sliding hole is designed at the top of the stabilizing block 202. The right side of the stabilizing block 202 is fixedly connected to the left end of the slider 113. There are multiple stabilizing frames 203. A sliding groove is designed on the right side of the stabilizing frame 203. The bottom end of the stabilizing frame 203 is fixedly connected to the inner bottom of the box body 101. There are multiple stabilizing rods 201. The end of the stabilizing rod 201 is fixedly connected to the sliding groove of the stabilizing frame 203 through the sliding hole of the stabilizing block 202. When the slider 113 moves, it drives the stabilizing block 202 to move on the stabilizing frame 203 and the stabilizing block 202, thereby improving the stability of the slider 113 driving the blade 102 to move.
[0033] When using the anodic carbon block grooving device of this embodiment, when the slider 113 moves, it drives the stabilizing block 202 to move on the stabilizing frame 203 and the stabilizing block 202, thereby improving the stability of the slider 113 driving the blade 102 to move.
[0034] The above-disclosed are only one or more preferred embodiments of the present application, and the scope of rights of the present application cannot be limited thereby. Those of ordinary skill in the art can understand the entire or partial processes of implementing the above embodiments, and the equivalent changes made according to the claims of the present application still fall within the scope covered by the present application.
Claims
1. An anode carbon block slotting device, comprising a box, characterized in that: Also included are mounting components; The mounting assembly includes a blade, a frame, a frame, a fixing plate, a roller, a fixed screw, a fixed motor, a cutting motor, an adjusting member and a moving member. The frame is fixedly mounted on one side of the box, the moving member is arranged on the box, the frame is connected to the moving member and is slidably connected to the frame, the fixing plate is slidably mounted on a side of the frame away from the frame, the fixed screw is rotatably connected to the frame and is threadedly connected to the fixing plate, the fixed motor is fixedly connected to the frame, the output shaft of the fixed motor is connected to the fixed screw, the adjusting member is arranged on the box, the blade is connected to the adjusting member, the cutting motor is connected to the adjusting member, the output shaft of the cutting motor is connected to the blade, and the roller is rotatably mounted on a side of the frame close to the box.
2. The anode carbon block slotting device according to claim 1, characterized in that: The moving component includes a moving screw and a moving motor. The moving screw is threadedly connected to the frame and rotatably connected to the frame. The moving motor is fixedly connected to the frame, and the output shaft of the moving motor is connected to the moving screw.
3. The anode carbon block slotting device according to claim 1, characterized in that: The adjusting component includes a U-shaped frame, a slider, an adjusting screw and a power component. The slider is rotatably connected to the blade and fixedly connected to the fixed motor; the adjusting screw is threadedly connected to the slider and is located on a side of the slider away from the blade; the U-shaped frame is slidably connected to the slider and rotatably connected to the adjusting screw; the power component is connected to the U-shaped frame and to the adjusting screw.
4. The anode carbon block slotting device according to claim 3, characterized in that: The power component includes a power rod, a main cone wheel, a slave cone wheel and a power motor. The main cone wheel is fixedly installed on the side of the adjusting screw away from the slider; the slave cone wheel is meshed with the main cone wheel; the power rod is rotatably connected to the U-shaped frame and fixedly connected to the slave cone wheel; the power motor is fixedly connected to the U-shaped frame, and the output shaft of the power motor is connected to the power rod.
5. The anode carbon block slotting device according to claim 3, characterized in that: The adjusting member also includes a stabilizing rod, a stabilizing block and a stabilizing frame. The stabilizing block is fixedly connected to the slider and is located on a side of the slider away from the adjusting screw rod; the stabilizing frame is slidably connected to the stabilizing block and is located on a side of the stabilizing block away from the slider; the stabilizing rod is fixedly connected to the stabilizing frame and is slidably connected to the stabilizing block.
Citation Information
Patent Citations
A kind of prebaked anode carbon block slotting device
CN221021796U