A vibration molding machine for cathode carbon blocks of various sizes

Through the combined design of the conveyor frame and the forming mechanism, the problem that the existing cathode carbon block vibration forming machine can only form a single block is solved, and the continuous and efficient forming of cathode carbon blocks of multiple sizes is achieved, thereby improving the integrity and production efficiency of the formed carbon blocks.

CN120134694BActive Publication Date: 2025-10-21太谷县腾飞炭素有限公司
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Patent Information

Application Number
CN202510623592.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-15
Publication Date
2025-10-21
Estimated Expiration
2045-05-15

AI Technical Summary

Technical Problem

The existing cathode carbon block vibration molding machine can only achieve single-block molding due to the vibration direction and layout problems, and the manual feeding force control is inaccurate, affecting the integrity of the molded carbon block.

Method used

The combined design of conveyor frame, guide chute, conveyor ring, forming mechanism and unloading mechanism is adopted to realize multi-size forming through rotation and vibration. Combined with the cooperation of pressure slide plate and unloading arc plate, continuous and efficient forming is achieved.

Benefits of technology

The continuous and efficient molding of cathode carbon blocks of various sizes is achieved, and the integrity and production efficiency of the molded carbon blocks are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of cathode carbon block vibration forming machines of adaptation multi-size forming, it is related to cathode carbon block processing technical field, including conveyer frame, and the guide chute being opened in the inside of conveyer frame;Still include: the guide chute in the inside of conveyer frame is provided with conveying mechanism, and conveying mechanism contains conveying carrier ring, and conveying carrier ring is slidably arranged in the guide chute in the inside of conveyer frame;Wherein, the top of conveying mechanism is provided with forming mechanism, and forming mechanism contains forming bottom plate, and the top surface of forming bottom plate is fixedly provided with forming side plate on left and right sides;The cathode carbon block vibration forming machine of adaptation multi-size forming, by the rotation of conveying carrier ring cooperates the circumferential vibration of forming mechanism, carbon powder above forming bottom plate is extruded by pressure slide plate under vibration, and simultaneously, the carbon block formed is driven by blanking arc plate of blanking mechanism to move outward, realizes continuous, efficient forming operation.
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Description

Technical Field

[0001] The invention relates to the technical field of cathode carbon block processing, in particular to a cathode carbon block vibration forming machine suitable for forming multiple sizes. Background Art

[0002] Cathode carbon blocks refer to key materials used in aluminum electrolytic cells. They are mainly made of high-quality anthracite, coke, graphite and other raw materials. They are built at the bottom of the electrolytic cell to conduct electricity and form the inner lining of the electrolytic cell. The quality of cathode carbon blocks directly affects the efficiency and energy consumption of electrolytic aluminum production. Therefore, it is crucial to test them to ensure their physical and chemical properties are qualified. Existing cathode carbon blocks are mainly processed by pressure vibration molding, which vibrates and compacts powdered cathode carbon powder into carbon blocks.

[0003] The invention with announcement number CN102756422B discloses a CNC peat nutrient block forming machine, which can fully and evenly mix the peat through the feeding and stirring unit. The evenly mixed peat is fed into the feed port of the transmission disk through the feeding barrel, and then the pressing cylinder drives the pressing die to squeeze the peat into the space formed by the die hole and the lower plate to obtain a peat nutrient block. Finally, the discharging cylinder drives the discharging die to push the peat nutrient block out of the die hole and discharge it from the discharge port below the discharging die.

[0004] The invention with announcement number CN202318525U discloses a vibration forming machine for round cake-shaped carbon blocks. The pressurizing hydraulic cylinder in the lifting and pressurizing mechanism is actuated to lift the weight assembly upward until the pressure head just contacts the carbon block and stops. When the mold lifting hydraulic cylinder in the lifting and pressurizing mechanism is actuated to move upward to the demolding height, the pressurizing hydraulic cylinder in the lifting and pressurizing mechanism is started at the same time to lift the weight assembly until the pressure head starts to rise together with the mold sleeve and rises back to its original position to complete the demolding process.

[0005] However, the vibration forming machine for the above-mentioned carbon block material still has the following problems during actual use: although the forming operation is achieved through vibration extrusion of auxiliary materials, due to the vibration direction and layout problems, each forming operation can only achieve vibration pressure forming of a single carbon block. At the same time, manual auxiliary feeding will also affect the integrity of the formed carbon block due to the inability to control the force.

[0006] Therefore, a cathode carbon block vibration molding machine suitable for multi-size molding is proposed to solve the above problems. Summary of the Invention

[0007] The purpose of the present invention is to provide a cathode carbon block vibration forming machine that is suitable for forming multiple sizes, in order to solve the problem that the existing forming operation is achieved by vibration extrusion of auxiliary materials, but due to the vibration direction and layout problems, each forming operation can only achieve vibration pressure forming of a single carbon block. At the same time, manual auxiliary feeding will also affect the integrity of the formed carbon block due to the inability to control the force.

[0008] To achieve the above-mentioned object, the present invention provides the following technical solution: a cathode carbon block vibration forming machine suitable for forming multiple sizes, comprising a conveyor frame and a guide chute provided inside the conveyor frame; and further comprising:

[0009] A conveying mechanism is provided in the guide chute inside the conveying frame, and the conveying mechanism includes a conveying carrier ring, and the conveying carrier ring is slidably provided in the guide chute inside the conveying frame;

[0010] A forming mechanism is provided above the conveying mechanism, and the forming mechanism includes a forming bottom plate, and forming side plates are fixedly provided on both left and right sides of the top surface of the forming bottom plate.

[0011] Preferably, the conveying mechanism includes a vibration base, and the vibration base is fixedly installed on the top surface of the conveying carrier ring at an equal angle, and a resistance cam is rotatably provided on the upper part of the interior of the vibration base.

[0012] Preferably, the conveying mechanism includes a vibrating ring column, and the bottom end of the vibrating ring column is slidably arranged inside the vibrating base, and the inner wall of the vibrating ring column is fitly connected to the outer end of the resistance cam, and the top end of the vibrating ring column is fixedly connected to the middle of the bottom surface of the forming base plate included in the forming mechanism, and the vibrating ring column in contact with the outer end moves in a circular shape through the rotation of the resistance cam.

[0013] Preferably, the conveying mechanism includes a guide tooth block, and the guide tooth block is fixedly arranged at an equal angle on the inner wall of the conveying frame, and the inner side of the conveying carrier ring included in the conveying mechanism is provided with a transmission shaft at an equal angle through a bearing, and the bottom end of the transmission shaft is fixedly provided with a guide gear, and the guide gear is engaged with the guide tooth block, and the transmission shaft and the shaft end of the interference cam are connected to each other through a pulley assembly, and the transmission shaft drives the meshing interference cam to rotate through the pulley assembly.

[0014] Preferably, the forming mechanism includes a pressure slide, and the pressure slide is slidably arranged on the inner top surface of the forming base plate, and the outer top surface of the forming base plate is hingedly connected to the bottom end of the conveying flip plate by a torsion spring, and the conveying flip plate connected by the torsion spring can automatically reset after being rotated by resistance.

[0015] Preferably, the forming mechanism includes a resistance bracket, and the resistance bracket slides elastically above the outer end of the forming base plate, and the upper end of the resistance bracket extends to the left and right outer walls of the conveying flip plate, thereby realizing the resistance and unlocking of the conveying flip plate by sliding the resistance bracket up and down.

[0016] Preferably, the forming mechanism includes a pressure screw, and the pressure screw torsion spring is rotatably arranged in the middle inner side of the bottom surface of the forming base plate, and the pressure screw thread passes through the middle bottom end of the pressure slide. The pressure slide with threaded connection is driven to move on the top surface of the forming base plate by the rotation of the pressure screw.

[0017] Preferably, the forming mechanism includes a transmission gear, and the transmission gear is fixedly installed on the inner end of the pressing screw, and the forming mechanism includes an incomplete gear ring, and the incomplete gear ring elastically slides on the inner wall of the conveying frame, and at the same time, the incomplete gear ring is meshedly connected to the transmission gear at the inner end of the pressing screw, and the incomplete gear drives the meshed transmission gear and the pressing screw to rotate.

[0018] Preferably, a unloading mechanism is provided inside the guide chute on the right side of the conveyor frame, and the unloading mechanism includes a unloading platform, and the unloading platform is fixedly installed inside the guide chute on the right side of the conveyor frame, and the front and rear sides of the top surface of the unloading platform are both inclined, and the interference bracket is squeezed and rotated by the inclined structure of the unloading platform, so that the interference bracket will no longer limit the conveying flip plate after it rises.

[0019] Preferably, the unloading mechanism includes a unloading arc plate, and the unloading arc plate is fixedly installed on the right side of the top surface of the conveyor frame, and the unloading arc plate guides the pressing paper frame after forming inside the forming mechanism, so that the pressing paper frame inside the forming mechanism drives the formed cathode carbon block to move above the unloading platform.

[0020] Compared with the prior art, the present invention has the following beneficial effects: the cathode carbon block vibration forming machine, which is suitable for forming multiple sizes, uses the rotation of the conveying ring to cooperate with the circumferential vibration of the forming mechanism to squeeze and shape the carbon powder above the forming base plate by the pressure slide under vibration. At the same time, the blanking arc plate of the blanking mechanism drives the formed carbon block to move outward, thereby realizing continuous and efficient forming processing operations. The specific contents are as follows:

[0021] 1. The pressing paper frame containing cathode carbon powder is placed on the forming base plate, and is limited by the forming side plate, the pressure slide plate and the conveying flip plate. Then the conveying frame drives the conveying ring to rotate through the driving machine. The conveying ring cooperates with the conveying mechanism on the top surface to drive the forming base plate, the pressing paper frame and the cathode carbon powder to rotate.

[0022] The transmission gear meshes with the incomplete gear ring, so that the transmission gear drives the fixedly connected pressure screw to rotate, and then the pressure slide plate to which the pressure screw is threaded slides synchronously outward, and the pressure slide plate squeezes the pressure paper frame above the forming bottom plate, so that the cathode carbon powder is squeezed to reduce the volume of the carbon powder.

[0023] The incomplete gear ring is slid downward to disengage from the transmission gear, and then the transmission gear is rotated to drive the pressure screw, so that the pressure screw drives the threaded pressure slide to slide inward and outward as required, thereby changing the distance between the pressure slide and the conveying flip plate to adapt to the requirements of different carbon block forming specifications.

[0024] 2. The guide gear is meshed with the guide gear block, driving the interference cam connected to the transmission shaft and the pulley assembly to rotate continuously, so that the interference cam contacts the vibration ring column through the roller at the outer end, causing it to move in a circular structure. At the same time, the vibration ring column drives the top forming base plate and the cathode carbon powder inside the pressing paper frame to vibrate, reducing the gap between the carbon powder and improving the strength of the extrusion molding.

[0025] The circularly moving forming base drives the transmission gear to intermittently engage with the incomplete gear ring. When engaged, the threaded pressure slide is used to squeeze the carbon powder into blocks. When not engaged, the transmission gear and the pressure screw are rotated and reset, causing the pressure slide to move in the opposite direction for a short distance. The next time it engages, it drives the pressure slide to further squeeze inward, and forming is achieved through a gradual and vibration-assisted method.

[0026] 3. When the conveying ring drives the forming base plate and the formed carbon blocks to move to the right side of the conveyor frame, the interference bracket first contacts the inclined surface of the unloading platform, and squeezes the interference bracket through the unloading platform to move it upward, so that the upper end of the interference bracket no longer squeezes the conveying flip plate, making the conveying flip plate in an unlocked and rotatable state.

[0027] The pressing paper frame contacts the bottom surface of the unloading arc plate, so that the pressing paper frame is guided by the unloading arc plate to move the formed carbon blocks to the top of the unloading platform to complete the unloading. Then the conveying flip plate connected to the torsion spring is reset and drops after the contact bracket is no longer squeezed, and then the conveying flip plate is limited again to carry out the pressure vibration forming operation again. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] Figure 1 It is a schematic diagram of the overall three-dimensional structure of the present invention;

[0029] Figure 2 This is a schematic diagram of the three-dimensional structure of the blanking platform of the present invention;

[0030] Figure 3 This is a schematic diagram of the installation structure of the conveying carrier ring and the vibration base of the present invention;

[0031] Figure 4 For the present invention Figure 2 A in the middle is an enlarged structural diagram;

[0032] Figure 5 This is a schematic diagram of the installation structure of the forming base plate and the vibration base of the present invention;

[0033] Figure 6 This is a schematic diagram of the meshing structure of the transmission gear and the incomplete gear ring of the present invention;

[0034] Figure 7 This is a schematic diagram of the installation structure of the conveying flip plate of the present invention;

[0035] Figure 8 This is a schematic diagram of the structure of the conveying flip plate after rotation of the present invention;

[0036] Figure 9 This is a schematic diagram of the installation structure of the interference cam and the vibration ring column of the present invention;

[0037] Figure 10 This is a schematic diagram of the connection structure between the interfering cam and the transmission shaft of the present invention;

[0038] Figure 11 This is a schematic diagram of the structure of the connection between the transmission shaft and the conveying carrier ring of the present invention;

[0039] Figure 12 Schematic diagram of the installation structure of the pulley assembly of the present invention.

[0040] In the figure: 1. Conveyor frame; 2. Guide chute; 3. Conveyor carrier ring; 4. Forming bottom plate; 5. Forming side plate; 6. Vibrating base; 7. Contact cam; 8. Vibrating ring column; 9. Guide gear block; 10. Transmission shaft; 11. Guide gear; 12. Pulley assembly; 13. Pressure slide; 14. Conveyor flip plate; 15. Contact bracket; 16. Pressing screw; 17. Transmission gear; 18. Incomplete gear ring; 19. Unloading arc plate; 20. Unloading platform. DETAILED DESCRIPTION

[0041] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the implementation regulations described are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0042] See also Figures 1-12 , the present invention provides the following technical solutions:

[0043] Example 1: In order to solve the problems existing in the pressure vibration molding of the existing cathode carbon blocks, this embodiment discloses the following technical solutions: a cathode carbon block vibration molding machine suitable for multi-size molding, comprising a conveyor frame 1, and a guide chute 2 opened inside the conveyor frame 1; a conveying mechanism is provided in the guide chute 2 inside the conveyor frame 1, and the conveying mechanism includes a conveying carrier ring 3, and the conveying carrier ring 3 is slidably provided in the guide chute 2 inside the conveyor frame 1; a molding mechanism is provided above the conveying mechanism, and the molding mechanism includes a molding bottom plate 4, and the molding mechanism Forming side panels 5 are fixedly provided on both sides of the top surface of the forming base plate 4; the forming mechanism includes a pressure slide 13, and the pressure slide 13 is slidably provided on the inner top surface of the forming base plate 4, and the outer top surface of the forming base plate 4 is hingedly connected to the bottom end of the conveying flip plate 14 by a torsion spring; the forming mechanism includes a resistance bracket 15, and the resistance bracket 15 elastically slides above the outer end of the forming base plate 4, and the upper end of the resistance bracket 15 extends to the left and right outer walls of the conveying flip plate 14, and then the resistance and unlocking of the conveying flip plate 14 are achieved by sliding the resistance bracket 15 up and down.

[0044] The forming mechanism includes a pressure-feeding screw 16, and the pressure-feeding screw 16 is rotatably arranged in the middle of the inner side of the bottom surface of the forming base plate 4 by a torsion spring, and the pressure-feeding screw 16 threadedly passes through the middle of the bottom end of the pressure slide 13; the forming mechanism includes a transmission gear 17, and the transmission gear 17 is fixedly installed on the inner end of the pressure-feeding screw 16, and the forming mechanism includes an incomplete gear ring 18, and the incomplete gear ring 18 elastically slides on the inner wall of the conveyor frame 1, and at the same time, the incomplete gear ring 18 is meshed with the transmission gear 17 at the inner end of the pressure-feeding screw 16.

[0045] like Figure 6-Figure 7 As shown, when the cathode carbon powder needs to be molded, the cathode carbon powder is first placed in a pressing paper frame, and then the pressing paper frame is placed above the molding base plate 4 included in the molding mechanism, and the pressing paper frame and the cathode carbon powder are limited by the molding side plates 5 on the left and right sides. At the same time, the pressure slides 13 and the conveying flip plates 14 on the inner and outer sides are synchronously abutted against the pressing paper frame, and then the conveying frame 1 drives the conveying ring 3 to rotate through the driving machine, and the conveying ring 3 cooperates with the conveying mechanism on the top surface to drive the molding base plate 4, the pressing paper frame and the cathode carbon powder to rotate.

[0046] Furthermore, during the rotation process, the forming base plate 4 engages with the incomplete gear ring 18 through the transmission gear 17 on the inner lower side, so that the transmission gear 17 drives the fixedly connected pressure screw 16 to rotate, and then the pressure slide 13 threadedly connected to the pressure screw 16 slides synchronously outward, and the pressure slide 13 squeezes the pressing paper frame above the forming base plate 4, thereby squeezing the cathode carbon powder under force to reduce the volume of the carbon powder.

[0047] like Figure 6As shown, when it is necessary to adjust the distance between the pressure slide 13 above the forming base plate 4 and the conveying flip plate 14 (adjustment of the specifications of multi-sized carbon blocks), the incomplete gear ring 18 elastically arranged on the inner side of the conveying frame 1 is manually slid downward to disengage it from the transmission gear 17, and then the transmission gear 17 is manually rotated to drive the pressing screw 16, so that the pressing screw 16 drives the threaded pressure slide 13 to slide inward and outward as required, thereby changing the distance between the pressure slide 13 and the conveying flip plate 14 to adapt to the requirements of different carbon block forming specifications.

[0048] Example 2: In order to solve the problems existing in the pressure vibration molding of existing cathode carbon blocks, this embodiment discloses the following technical solutions: the conveying mechanism includes a vibrating base 6, and the vibrating base 6 is fixedly installed at an equal angle on the top surface of the conveying carrier ring 3, and a resistance cam 7 is rotatably arranged on the upper part of the interior of the vibrating base 6; the conveying mechanism includes a vibrating ring column 8, and the bottom end of the vibrating ring column 8 is slidably arranged inside the vibrating base 6, and the inner wall of the vibrating ring column 8 is fitted and connected to the outer end of the resistance cam 7, and the top of the vibrating ring column 8 is fixedly connected to the middle part of the bottom surface of the molding base plate 4 included in the molding mechanism; the conveying mechanism includes a guide gear block 9, and the guide gear block 9 is fixedly arranged at an equal angle on the inner wall of the conveying frame 1, and the inner side of the conveying carrier ring 3 included in the conveying mechanism is provided with a transmission shaft 10 at an equal angle through a bearing, and a guide gear 11 is fixedly arranged on the bottom end of the transmission shaft 10, and the guide gear 11 is meshed with the guide gear block 9, and the transmission shaft 10 and the shaft end of the resistance cam 7 are connected to each other through a pulley assembly 12.

[0049] like Figure 5 、 Figures 9-12 As shown, in the process of the forming mechanism driving the pressing paper frame and the cathode carbon powder to extrude, the rotating conveying carrier ring 3 engages with the guide tooth block 9 on the inner wall of the conveyor frame 1 through the inner guide gear 11, and then drives the transmission shaft 10 to rotate through the guide gear 11, and then the pulley assembly 12 drives the interference cam 7 inside the vibration base 6 to rotate continuously, so that the interference cam 7 contacts the vibration ring column 8 through the roller at the outer end, so that it moves in a circular structure. At the same time, the vibration ring column 8 drives the top forming base plate 4 and the cathode carbon powder inside the pressing paper frame to polarize, so that the gap between the carbon powder is reduced and the strength of the extrusion molding is improved.

[0050] Furthermore, in the process of the molding base plate 4 driving the cathode carbon powder to vibrate and mold, the molding base plate 4 that moves in a circular motion drives the transmission gear 17 to intermittently engage with the incomplete gear ring 18. During the engagement process, the transmission gear 17 drives the pressure screw 16 to rotate, and then the threaded pressure slide 13 is used to squeeze the carbon powder into blocks. When not engaged, the transmission gear 17 and the pressure screw 16 rotate and reset, causing the pressure slide 13 to move in the opposite direction for a short distance, and after the next engagement, it drives the pressure slide 13 to be further squeezed inward, and then the molding is achieved through a step-by-step manner in conjunction with vibration.

[0051] Example 3: In order to solve the problems existing in the pressure vibration molding of existing cathode carbon blocks, this embodiment discloses the following technical solutions: a feeding mechanism is provided inside the guide chute 2 on the right side of the conveyor frame 1, and the feeding mechanism includes a feeding platform 20, and the feeding platform 20 is fixedly installed inside the guide chute 2 on the right side of the conveyor frame 1, and the front and rear sides of the top surface of the feeding platform 20 are both inclined, and the interference bracket 15 is squeezed and rotated by the inclined structure of the feeding platform 20, so that the interference bracket 15 is no longer limited to the conveying flip plate 14 after it rises.

[0052] The unloading mechanism includes an unloading arc plate 19, and the unloading arc plate 19 is fixedly installed on the right side of the top surface of the conveyor frame 1, and the unloading arc plate 19 guides the pressing paper frame after forming inside the forming mechanism, so that the pressing paper frame inside the forming mechanism drives the formed cathode carbon block to move above the unloading platform 20.

[0053] like Figure 2 、 Figure 4 、 Figure 8 As shown, when the conveying ring 3 drives the forming base plate 4 and the formed carbon blocks to move to the right side of the conveyor frame 1, the interference bracket 15 on the outside of the forming base plate 4 first contacts the inclined surface of the unloading platform 20, and the unloading platform 20 squeezes the interference bracket 15 to move it upward, so that the upper end of the interference bracket 15 no longer squeezes the conveying flip plate 14, so that the conveying flip plate 14 can rotate freely.

[0054] At the same time, the pressing paper frame above the forming bottom plate 4 contacts the bottom surface of the unloading arc plate 19, and cooperates with the continuous rotation of the conveying ring 3, so that the pressing paper frame is guided by the unloading arc plate 19 to drive the formed carbon blocks to the top of the unloading platform 20 to complete the unloading, and then the conveying flip plate 14 connected to the torsion spring is reset, and after the contact bracket 15 is not squeezed, it descends, and then the conveying flip plate 14 is limited again to carry out the pressure vibration molding work again.

[0055] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A cathode carbon block vibration forming machine suitable for forming multiple sizes, comprising a conveyor frame (1), and a guide chute (2) provided inside the conveyor frame (1); It is characterized by: Also includes: A conveying mechanism is provided in the guide chute (2) inside the conveying frame (1), and the conveying mechanism includes a conveying carrier ring (3), and the conveying carrier ring (3) is slidably provided in the guide chute (2) inside the conveying frame (1); A forming mechanism is provided above the conveying mechanism, and the forming mechanism includes a forming bottom plate (4), and forming side plates (5) are fixedly provided on both left and right sides of the top surface of the forming bottom plate (4); The forming mechanism includes a pressure slide (13), and the pressure slide (13) is slidably arranged on the inner top surface of the forming base plate (4), and the outer top surface of the forming base plate (4) is hingedly connected to the bottom end of the conveying flip plate (14) by a torsion spring; The forming mechanism includes a resistance bracket (15), and the resistance bracket (15) elastically slides above the outer end of the forming base plate (4), and the upper end of the resistance bracket (15) extends to the left and right outer walls of the conveying flip plate (14), thereby achieving resistance and unlocking of the conveying flip plate (14) by sliding the resistance bracket (15) up and down; The molding mechanism includes a pressure-feeding screw (16), and the pressure-feeding screw (16) is rotatably arranged at the inner middle portion of the bottom surface of the molding base plate (4) via a torsion spring, and the pressure-feeding screw (16) thread penetrates the middle portion of the bottom end of the pressure slide plate (13); The forming mechanism includes a transmission gear (17), and the transmission gear (17) is fixedly mounted on the inner end of the pressing screw (16), and the forming mechanism includes an incomplete gear ring (18), and the incomplete gear ring (18) elastically slides on the inner wall of the conveying frame (1), and at the same time, the incomplete gear ring (18) is meshed with the transmission gear (17) at the inner end of the pressing screw (16); A material discharge mechanism is provided inside the guide chute (2) on the right side of the conveyor frame (1), and the material discharge mechanism includes a material discharge platform (20), and the material discharge platform (20) is fixedly installed inside the guide chute (2) on the right side of the conveyor frame (1), and the top front and rear sides of the material discharge platform (20) are both inclined, and the inclined surface structure of the material discharge platform (20) squeezes the rotating interference bracket (15) so that the interference bracket (15) is no longer limited to the conveying flip plate (14) after rising; The unloading mechanism includes an unloading arc plate (19), and the unloading arc plate (19) is fixedly installed on the right side of the top surface of the conveyor frame (1), and the unloading arc plate (19) guides the pressing paper frame after forming inside the forming mechanism, so that the pressing paper frame inside the forming mechanism drives the formed cathode carbon block to move above the unloading platform (20).

2. The cathode carbon block vibration forming machine adapted for forming multiple sizes according to claim 1, characterized in that: The conveying mechanism includes a vibration base (6), and the vibration base (6) is fixedly installed at an equal angle on the top surface of the conveying carrier ring (3), and a resistance cam (7) is rotatably provided on the upper part of the interior of the vibration base (6).

3. The cathode carbon block vibration forming machine adapted for forming multiple sizes according to claim 2, characterized in that: The conveying mechanism includes a vibrating ring column (8), and the bottom end of the vibrating ring column (8) is slidably arranged inside the vibrating base (6), and the inner wall of the vibrating ring column (8) is closely connected to the outer end of the contact cam (7), and the top end of the vibrating ring column (8) is fixedly connected to the middle of the bottom surface of the forming base plate (4) included in the forming mechanism.

4. The cathode carbon block vibration forming machine adapted for forming multiple sizes according to claim 3, characterized in that: The conveying mechanism includes a guide tooth block (9), and the guide tooth block (9) is fixedly arranged at an equal angle on the inner wall of the conveying frame (1), and the inner side of the conveying carrier ring (3) included in the conveying mechanism is provided with a transmission shaft (10) at an equal angle through a bearing, and a guide gear (11) is fixedly arranged at the bottom end of the transmission shaft (10), and the guide gear (11) is meshed with the guide tooth block (9), and the transmission shaft (10) and the shaft end of the contact cam (7) are connected to each other through a pulley assembly (12).

Citation Information

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