Anode carbon block vibration molding equipment
By designing an anode carbon block vibration molding device including a vibration motor and a fixed hydraulic cylinder, the problem of the mold being unable to be replaced is solved, the versatility of the equipment is improved and the processing cost is reduced.
Patent Information
- Application Number
- CN202422072848.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-26
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2034-08-26
AI Technical Summary
The existing anode carbon block vibration molding equipment cannot replace the molding mold, resulting in the inability to process anode carbon blocks of different specifications. The equipment has low versatility and increases processing costs.
A vibration forming equipment for anode carbon blocks was designed, which included a workbench, a mounting assembly and a positioning assembly. Through the cooperation of a vibration motor, a fixed hydraulic cylinder and a clamping component, the mold could be quickly replaced and fixed, ensuring the versatility of the equipment.
The rapid replacement of molds is achieved, the versatility of the equipment is improved, and the cost of processing anode carbon blocks of different specifications is reduced.
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Figure CN223314528U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of anode carbon block processing, in particular to anode carbon block vibration molding equipment. Background Art
[0002] Anode carbon blocks are made from petroleum coke or pitch coke as aggregates and coal tar as a binder. They are used as anode materials in prebaked aluminum electrolytic cells. These carbon blocks have been calcined to maintain a stable geometric shape, hence the name prebaked anode carbon blocks and are more commonly known as carbon anodes for aluminum electrolysis.
[0003] During the production of anode carbon blocks, the anode carbon blocks are extruded from a paste mixed with petroleum coke and asphalt. The paste needs to be added to the inside of the molding structure, and then the paste is extruded into the anode carbon blocks by the molding structure.
[0004] However, since the existing anode carbon block vibration molding equipment cannot replace the molding mold during use, it is impossible to process anode carbon blocks of different specifications. Different molding equipment needs to be used when processing different models of products. The equipment has low versatility and increases processing costs, making it inconvenient to use. Utility Model Content
[0005] The purpose of the utility model is to provide an anode carbon block vibration molding device, which solves the problem that the molding mold cannot be replaced.
[0006] To achieve the above-mentioned purpose, the utility model provides an anode carbon block vibration forming equipment including a workbench, an installation component and a positioning component, the installation component including a support frame, a sliding guide rod, a shock absorber, a connecting frame, a vibration motor, a fixed hydraulic cylinder, a sliding clamping block, a disassembly mold and a stamping component, the support frame is fixedly connected to the workbench and is located on one side of the workbench, one end of the sliding guide rod is fixedly connected to the workbench, the other end of the sliding guide rod is fixedly connected to the support frame, the shock absorber is fixedly connected to the workbench and is located on one side of the workbench, the connecting frame is fixedly connected to the shock absorber and is slidably connected to the sliding guide rod, the vibration motor is fixedly connected to the connecting frame and is located on one side of the connecting frame, the fixed hydraulic cylinder is fixedly connected to the connecting frame and passes through the connecting frame, the sliding clamping block is connected to the output end of the fixed hydraulic cylinder, the disassembly mold is detachably connected to the connecting frame, and the stamping component It is connected to the support frame. When in use, the anode carbon block raw material is loaded into the disassembly mold, and the vibration motor is driven. The vibration motor causes the connecting frame and the disassembly mold to vibrate, so that the raw material in the disassembly mold is dispersed and the bubbles in the material are discharged. The material in the disassembly mold is stamped and formed by cooperating with the disassembly mold through the stamping component. When it is necessary to replace the mold, the fixed hydraulic cylinder is started, and the fixed hydraulic cylinder drives the sliding clamp to move, disconnecting the clamping of the sliding clamp on the disassembly mold. When the disassembly mold to be replaced is placed on the connecting frame, the fixed hydraulic cylinder drives the sliding clamp to reset, fixes the replaced disassembly mold on the connecting frame, and starts the clamping component to disconnect the fixation of the clamping component to the stamping component, replaces the stamping component, and fixes the stamping component through the clamping component, thereby solving the problem of being unable to replace the forming mold.
[0007] Among them, the stamping component includes a stamping hydraulic cylinder, a sliding frame and a stamping block. The stamping hydraulic cylinder is fixedly connected to the support frame and passes through the support frame; the sliding frame is connected to the output end of the stamping hydraulic cylinder, and the sliding frame is slidably connected to the sliding guide rod; the stamping block is detachably connected to the sliding frame.
[0008] Wherein, the mounting assembly further includes a clamping member, which includes a clamping hydraulic cylinder and a clamping block. The clamping hydraulic cylinder is fixedly connected to the sliding frame and passes through the sliding frame; the clamping block is connected to the output end of the clamping hydraulic cylinder.
[0009] Among them, the positioning assembly includes a mold positioning block and a mold positioning groove body, the mold positioning block is fixedly connected to the sliding clamping block and is located on one side of the sliding clamping block; the mold positioning groove body is fixedly connected to the disassembly mold and is located on the inner side of the disassembly mold.
[0010] Wherein, the positioning assembly also includes a stamping positioning block and a stamping positioning slot body, the stamping positioning block is fixedly connected to the clamping block and is located on one side of the clamping block; the stamping positioning slot body is fixedly connected to the stamping block and is located inside the stamping block.
[0011] 7. The swiftly and minutely adjusting device for a wood-planer working table as claimed in claim 1, wherein said linking rod and said adjusting base are pivotally connected to each other with a bolt, and said bolt has a round shank to contact with said linking rod. said linking rod having a round shank and a bolt has a round shank to contact with said linking rod. The sliding clamp is connected to the output end of the fixed hydraulic cylinder, the disassembly mold is detachably connected to the connecting frame, and the stamping component is connected to the supporting frame. When in use, the anode carbon block raw material is loaded into the disassembly mold, and the vibration motor is driven to vibrate the connecting frame and the disassembly mold, so that the raw material in the disassembly mold is dispersed and the bubbles in the material are discharged. The stamping component cooperates with the disassembly mold to stamp the material in the disassembly mold. When it is necessary to replace the mold, the fixed hydraulic cylinder is started, and the fixed hydraulic cylinder drives the sliding clamp to move, disconnects the clamping of the disassembly mold by the sliding clamp, and places the disassembly mold to be replaced on the connecting frame. The fixed hydraulic cylinder drives the sliding clamp to reset and fixes the replaced disassembly mold on the connecting frame, and starts the clamping component to disconnect the fixation of the clamping component to the stamping component, and replaces the stamping component. The stamping component is fixed by the clamping component, thereby solving the problem of being unable to replace the forming mold. BRIEF DESCRIPTION OF THE DRAWINGS
[0012] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art.
[0013] Figure 1It is a schematic diagram of the overall structure of the anode carbon block vibration molding equipment of the first embodiment of the present utility model.
[0014] Figure 2 This is a schematic diagram of the connection between the vibration motor and the connecting frame of the anode carbon block vibration molding equipment in the first embodiment of the present utility model.
[0015] Figure 3 It is a schematic diagram of the anode carbon block vibration molding equipment of the second embodiment of the present utility model.
[0016] In the figure: 101-workbench, 102-support frame, 103-sliding guide rod, 104-shock absorber, 105-connecting frame, 106-vibration motor, 107-fixed hydraulic cylinder, 108-sliding clamping block, 109-disassembly mold, 110-stamping hydraulic cylinder, 111-sliding frame, 112-stamping block, 113-clamping hydraulic cylinder, 114-clamping block, 201-mold positioning block, 202-mold positioning trough, 203-stamping positioning block, 204-stamping positioning trough. DETAILED DESCRIPTION
[0017] The embodiments of the present invention are described in detail below, and 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 be used to explain the present invention, but should not be understood as limiting the present invention.
[0018] The first embodiment of this application is:
[0019] See also Figure 1 and Figure 2 , Figure 1 This is a schematic diagram of the overall structure of the anode carbon block vibration molding equipment of the first embodiment of the utility model. Figure 2 This is a schematic diagram of the connection between the vibration motor and the connecting frame of the anode carbon block vibration molding equipment of the first embodiment of the utility model. The anode carbon block vibration molding equipment includes a workbench 101, an installation assembly and a positioning assembly. The installation assembly includes a support frame 102, a sliding guide rod 103, a shock absorber 104, a connecting frame 105, a vibration motor 106, a fixed hydraulic cylinder 107, a sliding clamping block 108, a disassembly mold 109 and a stamping component. The stamping component includes a stamping hydraulic cylinder 110, a sliding frame 111 and a stamping block 112. The installation assembly also includes a clamping component, and the clamping component includes a clamping hydraulic cylinder 113 and a clamping block 114. The above-mentioned solution solves the problem of being unable to replace the molding mold.
[0020] According to this specific embodiment, the anode carbon block raw material is loaded into the disassembly mold 109, and the vibration motor 106 is driven. The vibration motor 106 causes the connecting frame 105 and the disassembly mold 109 to vibrate, so that the raw material in the disassembly mold 109 is dispersed and the bubbles in the material are discharged. The stamping component cooperates with the disassembly mold 109 to stamp the material in the disassembly mold 109. When the mold needs to be replaced, the fixed hydraulic cylinder 107 is started, and the fixed hydraulic cylinder 107 drives the sliding clamp 10 8 moves, disconnects the clamping of the sliding clamp 108 on the disassembly mold 109, and places the disassembly mold 109 that needs to be replaced on the connecting frame 105. The fixed hydraulic cylinder 107 drives the sliding clamp 108 to reset, fixes the replaced disassembly mold 109 on the connecting frame 105, and starts the clamping member to disconnect the clamping member from fixing the stamping member, replace the stamping member, and fix the stamping member through the clamping member, thereby solving the problem of being unable to replace the forming mold.
[0021] Among them, the support frame 102 is fixedly connected to the workbench 101 and is located on one side of the workbench 101, one end of the sliding guide rod 103 is fixedly connected to the workbench 101, and the other end of the sliding guide rod 103 is fixedly connected to the support frame 102, the shock absorber 104 is fixedly connected to the workbench 101 and is located on one side of the workbench 101, the connecting frame 105 is fixedly connected to the shock absorber 104 and is slidably connected to the sliding guide rod 103, the vibration motor 106 is fixedly connected to the connecting frame 105 and is located on one side of the connecting frame 105, and the fixed hydraulic cylinder 107 is fixedly connected to the connecting frame 105 , and passes through the connecting frame 105, the sliding clamp 108 is connected to the output end of the fixed hydraulic cylinder 107, the disassembly mold 109 is detachably connected to the connecting frame 105, the stamping component is connected to the support frame 102, the support frame 102 is located above the workbench 101, the lower end of the sliding guide rod 103 is fixedly connected to the workbench 101, the upper end of the sliding guide rod 103 is fixedly connected to the support frame 102, the shock absorber 104 is located above the workbench 101, the connecting frame 105 is sleeved on the sliding guide rod 103, and is located above the shock absorber 104, the vibration motor 106 is located on the connecting frame 105 At the bottom, the output end of the fixed hydraulic cylinder 107 passes through the connecting frame 105, and the sliding clamp 108 is fixed on the output end of the fixed hydraulic cylinder 107. The sliding clamp 108 fixes the disassembly mold 109 on the connecting frame 105. When in use, the anode carbon block raw material is filled into the disassembly mold 109, and the vibration motor 106 is driven. The vibration motor 106 vibrates the connecting frame 105 and the disassembly mold 109 to disperse the raw material in the disassembly mold 109 and discharge the bubbles in the material. The stamping component cooperates with the disassembly mold 109 to stamp the material in the disassembly mold 109. When the mold needs to be replaced, the fixed hydraulic cylinder 107 is started, and the fixed hydraulic cylinder 107 drives the sliding clamp 108 to move, disconnecting the sliding clamp 108 from clamping the disassembly mold 109, and placing the disassembly mold 109 that needs to be replaced on the connecting frame 105. The fixed hydraulic cylinder 107 drives the sliding clamp 108 to reset, and fixes the replaced disassembly mold 109 on the connecting frame 105, and then starts the clamping member to disconnect the clamping member from fixing the stamping member, replace the stamping member, and then fix the stamping member through the clamping member, thereby solving the problem of being unable to replace the forming mold.
[0022] Secondly, the stamping hydraulic cylinder 110 is fixedly connected to the support frame 102 and passes through the support frame 102; the sliding frame 111 is connected to the output end of the stamping hydraulic cylinder 110, and the sliding frame 111 is slidably connected to the sliding guide rod 103; the stamping block 112 is detachably connected to the sliding frame 111, and the output end of the stamping hydraulic cylinder 110 passes through the support frame 102, and the sliding frame 111 is sleeved on the sliding guide rod 103 and fixed to the stamping hydraulic cylinder 1 10, the punching block 112 is placed on the sliding frame 111, and the punching block 112 is fixed on the sliding frame 111 by the clamping member, and the punching hydraulic cylinder 110 is started. The punching hydraulic cylinder 110 drives the sliding frame 111 to slide on the sliding guide rod 103, and the sliding frame 111 drives the punching block 112 to descend, and the punching block 112 cooperates with the disassembly mold 109 to stamp the material in the disassembly mold 109.
[0023] Then, the clamping hydraulic cylinder 113 is fixedly connected to the sliding frame 111 and passes through the sliding frame 111; the clamping block 114 is connected to the output end of the clamping hydraulic cylinder 113, the clamping hydraulic cylinder 113 passes through the sliding frame 111, and the clamping block 114 is fixed on the output end of the hydraulic cylinder. The clamping hydraulic cylinder 113 is started, and the clamping hydraulic cylinder 113 drives the clamping block 114 to move, disconnects the clamping of the stamping block 112 by the clamping block 114, and removes the stamping block 112 from the sliding frame 111. When replacing the stamping block 112, the clamping hydraulic cylinder 113 drives the clamping block 114 to reset, and the clamping block 114 fixes the replaced stamping block 112 on the sliding frame 111.
[0024] When using the anode carbon block vibration molding equipment of this embodiment, the anode carbon block raw material is loaded into the disassembly mold 109, and the vibration motor 106 is driven. The vibration motor 106 causes the connecting frame 105 and the disassembly mold 109 to vibrate, so that the raw material in the disassembly mold 109 is dispersed and the bubbles in the material are discharged. The stamping hydraulic cylinder 110 is started, and the stamping hydraulic cylinder 110 drives the sliding frame 111 to slide on the sliding guide rod 103. The sliding frame 111 drives the stamping block 112 to descend, and the stamping block 112 cooperates with the disassembly mold 109 to stamp and mold the material in the disassembly mold 109. When it is necessary to change the mold, the fixed hydraulic cylinder 107 is started, and the fixed hydraulic cylinder 107 drives the sliding clamping block 108 to move, disconnecting the The sliding clamping block 108 clamps the disassembly mold 109. When the disassembly mold 109 that needs to be replaced is placed on the connecting frame 105, the fixed hydraulic cylinder 107 drives the sliding clamping block 108 to reset, and fixes the replaced disassembly mold 109 on the connecting frame 105. The clamping hydraulic cylinder 113 is started, and the clamping hydraulic cylinder 113 drives the clamping block 114 to move, disconnects the clamping of the stamping block 112 by the clamping block 114, and removes the stamping block 112 from the sliding frame 111. When the stamping block 112 is replaced, the clamping hydraulic cylinder 113 drives the clamping block 114 to reset, and the clamping block 114 fixes the replaced stamping block 112 on the sliding frame 111, thereby solving the problem of being unable to replace the forming mold.
[0025] The second embodiment of this application is:
[0026] See also Figure 3 , Figure 3 It is a schematic diagram of the anode carbon block vibration forming equipment of the second embodiment of the utility model. On the basis of the first embodiment, the anode carbon block vibration forming equipment of this embodiment also includes a positioning component, and the positioning component includes a mold positioning block 201 and a mold positioning groove body 202, and the positioning component also includes a stamping positioning block 203 and a stamping positioning groove body 204.
[0027] According to this specific embodiment, when the sliding clamp 108 clamps the disassembly mold 109, the sliding clamp 108 drives the mold positioning block 201 to be inserted into the mold positioning groove 202. The mold positioning block 201 cooperates with the mold positioning groove 202 to limit the disassembly mold 109 and improve the stability of the sliding clamp 108 in fixing the disassembly mold 109.
[0028] Among them, the mold positioning block 201 is fixedly connected to the sliding clamp block 108 and is located on one side of the sliding clamp block 108; the mold positioning groove body 202 is fixedly connected to the disassembly mold 109 and is located on the inner side of the disassembly mold 109, the mold positioning block 201 is located in the sliding block close to the disassembly mold 109, and the mold positioning groove body 202 is located on the inner side of the disassembly mold 109. When the sliding clamp block 108 clamps the disassembly mold 109, the sliding clamp block 108 drives the mold positioning block 201 to be inserted into the mold positioning groove body 202. The mold positioning block 201 cooperates with the mold positioning groove body 202 to limit the disassembly mold 109 and improve the stability of the sliding clamp block 108 fixing the disassembly mold 109.
[0029] Secondly, the stamping positioning block 203 is fixedly connected to the clamping block 114 and is located on one side of the clamping block 114; the stamping positioning slot body 204 is fixedly connected to the stamping block 112 and is located on the inner side of the stamping block 112, the stamping positioning block 203 is located on the side of the clamping block 114 close to the stamping block 112, and the stamping positioning slot body 204 is located on the inner side of the stamping block 112. When the clamping block 114 clamps the stamping block 112, the clamping block 114 drives the stamping positioning block 203 to be inserted into the stamping positioning slot body 204, and the stamping block 112 is limited by the cooperation between the stamping positioning slot body 204 and the stamping positioning block 203, and the stability of the stamping block 112 is fixed by the clamping block 114.
[0030] When using the anode carbon block vibration forming equipment of this embodiment, when the sliding clamping block 108 clamps the disassembly mold 109, the sliding clamping block 108 drives the mold positioning block 201 to be inserted into the mold positioning groove body 202, and the mold positioning block 201 cooperates with the mold positioning groove body 202 to limit the disassembly mold 109 and improve the stability of the sliding clamping block 108 fixing the disassembly mold 109. When the clamping block 114 clamps the stamping block 112, the clamping block 114 drives the stamping positioning block 203 to be inserted into the stamping positioning groove body 204, and the stamping positioning groove body 204 cooperates with the stamping positioning block 203 to limit the stamping block 112 and improve the stability of the stamping block 112 fixed by the clamping block 114.
[0031] The above disclosure is merely one or more preferred embodiments of the present application and is not intended to limit the scope of the present application. A person skilled in the art will understand that all or part of the processes of the above embodiments and equivalent changes made in accordance with the claims of the present application are still within the scope of the present application.
Claims
1. An anode carbon block vibration molding device, comprising a workbench and a positioning assembly, characterized in that: Also includes installation components; The mounting assembly includes a support frame, a sliding guide rod, a shock absorber, a connecting frame, a vibration motor, a fixed hydraulic cylinder, a sliding clamp, a disassembly mold and a stamping component. The support frame is fixedly connected to the workbench and is located on one side of the workbench, one end of the sliding guide rod is fixedly connected to the workbench, and the other end of the sliding guide rod is fixedly connected to the support frame, the shock absorber is fixedly connected to the workbench and is located on one side of the workbench, the connecting frame is fixedly connected to the shock absorber and is slidably connected to the sliding guide rod, the vibration motor is fixedly connected to the connecting frame and is located on one side of the connecting frame, the fixed hydraulic cylinder is fixedly connected to the connecting frame and passes through the connecting frame, the sliding clamp is connected to the output end of the fixed hydraulic cylinder, the disassembly mold is detachably connected to the connecting frame, and the stamping component is connected to the support frame.
2. The anode carbon block vibration molding equipment according to claim 1, characterized in that: The stamping component includes a stamping hydraulic cylinder, a sliding frame and a stamping block. The stamping hydraulic cylinder is fixedly connected to the support frame and passes through the support frame; the sliding frame is connected to the output end of the stamping hydraulic cylinder, and the sliding frame is slidably connected to the sliding guide rod; the stamping block is detachably connected to the sliding frame.
3. The anode carbon block vibration molding equipment according to claim 2, characterized in that: The mounting assembly further comprises a clamping member, which comprises a clamping hydraulic cylinder and a clamping block. The clamping hydraulic cylinder is fixedly connected to the sliding frame and passes through the sliding frame; the clamping block is connected to the output end of the clamping hydraulic cylinder.
4. The anode carbon block vibration molding equipment according to claim 3, characterized in that: The positioning assembly includes a mold positioning block and a mold positioning groove body. The mold positioning block is fixedly connected to the sliding clamping block and is located on one side of the sliding clamping block; the mold positioning groove body is fixedly connected to the disassembly mold and is located inside the disassembly mold.
5. The anode carbon block vibration molding equipment according to claim 4, characterized in that: The positioning assembly also includes a stamping positioning block and a stamping positioning slot body. The stamping positioning block is fixedly connected to the clamping block and is located on one side of the clamping block; the stamping positioning slot body is fixedly connected to the stamping block and is located inside the stamping block.