A mobile residual abrasive crusher feeding device

CN224629098UActive Publication Date: 2026-08-14FANGDA CARBON NEW MATERIAL CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-19
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0003]炭素制品中炭砖生碎均为块状,人工加入时耗时耗力,且在加入残极破碎机过程中频繁使用撬杠撬动炭砖生碎,存在安全隐患,现有技术设备为了保证员工安全,大多安装报警系统,人员在进入破碎腔入口一米内就会进行报警,但是这种报警系统不能从根本上解决员工安全问题,现有技术没有一种装置可以解决由于人工频繁使用撬杠撬动生碎块带来的工作耗时耗力、生产员工存在安全隐患的问题

Benefits of technology

[0014]本实用新型的有益效果是:本实用新型在使用时,工作人员在远离破碎腔的一侧推动本实用新型,使推板组件朝向生碎块,控制电液推杆的活塞杆伸出即可将生碎块推入破碎腔以便完成后续的破碎,电控柜直接安装在底框上跟随本实用新型移动,大大方便了工作人员的操作,本实用新型的使用无需再由人工使用撬杠撬动生碎块向破碎腔进行加料,工作人员只需在远离破碎腔的一侧操作,有效防止工作人员在加料过程中靠近破碎腔入口,消除了安全隐患,同时,使用电液推杆完成推料工作,降低了工作人员的劳动强度,提高了工作效率;本实用新型结构简单,制作方便,成本低廉,构设简单,具有推广价值。

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Abstract

This utility model relates to the technical field of carbon product manufacturing equipment, specifically a mobile residual anode crusher pushing device. In use, the operator pushes the device from the side away from the crushing chamber, causing the pusher plate assembly to face the raw crushed material. Controlling the piston rod of the electro-hydraulic pusher extends the piston rod, pushing the raw crushed material into the crushing chamber for subsequent crushing. The electrical control cabinet is directly mounted on the base frame and moves with the device, greatly facilitating operation. This device eliminates the need for manual prying of raw crushed material into the crushing chamber; the operator only needs to operate from the side away from the crushing chamber, effectively preventing the operator from approaching the crushing chamber inlet during material feeding, thus eliminating safety hazards. Simultaneously, using an electro-hydraulic pusher to complete the pushing operation reduces the operator's labor intensity and improves work efficiency. This utility model has a simple structure, is easy to manufacture, has low cost, and is easy to implement, making it worthy of widespread application.
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Description

Technical Field

[0001] This utility model relates to the technical field of carbon product manufacturing equipment, specifically a pusher device for a mobile residual electrode crusher. Background Technology

[0002] In the process of making carbon products, raw crushed materials need to be added during the batching process. After the materials are batched and asphalt is mixed in a kneading pot, the paste is then fed into a vibratory molding machine after the temperature of the paste reaches the process requirements. The vibratory molding machine undergoes vibration and compaction processes. The carbon brick production process generates a large amount of raw crushed materials, requiring more than 30 tons of raw crushed materials to be added daily for crushing to meet the production batching needs. The raw crushed materials in block form are generally transported using a raw crushing tray, and production personnel push the materials into the crushing chamber for crushing.

[0003] In carbon products, raw carbon bricks are typically in block form. Adding them manually is time-consuming and labor-intensive. Furthermore, the frequent use of crowbars to pry the raw carbon bricks during the addition to the residual anode crusher poses a safety hazard. To ensure employee safety, most existing equipment is equipped with alarm systems that trigger when personnel enter within one meter of the crushing chamber inlet. However, these alarm systems do not fundamentally solve the employee safety problem. Currently, there is no device that can resolve the issues of time-consuming and labor-intensive work and safety hazards for production workers caused by the frequent use of crowbars to pry the raw carbon bricks. Utility Model Content

[0004] The purpose of this utility model is to provide a mobile residual crusher feeding device that eliminates the need for manual prying of raw crushed blocks into the crushing chamber, thereby completely preventing production staff from approaching the crushing chamber inlet during the feeding process, eliminating safety hazards, and reducing the intensity of manual labor.

[0005] To address the aforementioned technical issues, this utility model provides a mobile residual abrasive crusher pushing device comprising an electro-hydraulic push rod, a base frame, rails, connecting plates, and a rotary wheel assembly I. The base frame is a rectangular frame formed by welding four channel steels. Two connecting plates are provided, both fixedly connected to the bottom surface of the base frame and respectively fixedly connected to the bottom surfaces of two parallel sides of the base frame. Two rotary wheel assemblies I are provided, each including two rotating wheels I and one axle I. The two rotating wheels I are rotatably connected to both ends of the axle I, and the axles I of the two rotary wheel assemblies I are respectively fixedly connected to the bottom surfaces of the two connecting plates. The rear end of the electro-hydraulic push rod is connected to the base frame. Two rails are provided, both made of channel steel, and both are fixedly connected to a platform beside the crushing chamber. The openings of the two rails face each other. The two rotating wheels I of each rotary wheel assembly I are rotatably connected within the two rails. A push plate assembly is connected to the front end of the piston rod of the electro-hydraulic push rod.

[0006] Furthermore, two vertical support plates are fixedly connected to the top surface of the bottom frame. The two vertical support plates are respectively fixedly connected to the top surface of the two parallel sides of the bottom frame that are not connected to the connecting plate. Both vertical support plates have arc-shaped grooves on their top surfaces. One of the vertical support plates, which is closer to the piston rod of the electro-hydraulic actuator, has a front support plate fixedly connected to its top surface. The cross-section of the front support plate is a downwardly protruding arc shape, and the outer wall of the front support plate is fixedly connected to the arc-shaped groove. The other vertical support plate has a rear support plate fixedly connected to its top surface. The cross-section of the rear support plate is a downwardly protruding arc shape, and the outer wall of the rear support plate is fixedly connected to the arc-shaped groove. The arc radius of the front support plate and the arc radius of the rear support plate are the same. The front support plate and the rear support plate are coaxial. The lower part of the rear end of the electro-hydraulic actuator is connected inside the front support plate and the rear support plate.

[0007] Furthermore, a lower retaining seat is fixedly connected between the front support plate and the rear support plate. The lower retaining seat includes an arc-shaped plate I and a side transverse plate I. The cross-section of the arc-shaped plate I is a downwardly projecting arc shape. The arc radius of the arc-shaped plate I is the same as the arc radius of the front support plate and the arc radius of the rear support plate. The arc-shaped plate I, the front support plate, and the rear support plate are coaxial. There are two side transverse plates I, which are fixedly installed at the left and right ends of the arc-shaped plate I, respectively. The two side transverse plates I are located on the same horizontal plane. Each side transverse plate I has a through hole I. The lower part of the rear end of the electro-hydraulic actuator is connected to the arc-shaped plate I, and the upper part of the rear end of the electro-hydraulic actuator is connected to an upper retaining seat, which is located above the lower retaining seat. The upper mounting base includes an arc-shaped plate II and a side transverse plate II. The cross-section of the arc-shaped plate II is an upwardly protruding arc shape. The arc radius of the arc-shaped plate II is the same as that of the arc radius of the arc-shaped plate I. The arc-shaped plate II and the arc-shaped plate I are coaxial. There are two side transverse plates II, which are fixedly installed at the left and right ends of the arc-shaped plate II respectively. The two side transverse plates II are located on the same horizontal plane. Each side transverse plate II has a through hole II. The two side transverse plates II are located above the two side transverse plates I respectively. The two through holes II are coaxial with the two through holes I. The two through holes II and the two through holes I are fixedly connected by bolts and nuts. The rear end of the electro-hydraulic actuator is engaged between the lower mounting base and the upper mounting base.

[0008] Furthermore, the push plate assembly includes a push plate, a support plate is fixedly connected to the rear side of the push plate, the support plate is provided with a through hole Ⅲ, the front end of the electro-hydraulic push rod piston rod is fixedly connected to a support seat, the support seat is composed of two side plates and a connecting plate forming a "]" shape, each of the two side plates of the support seat is provided with a through hole Ⅳ, the support plate is located between the two side plates of the support seat, the through hole Ⅲ is coaxial with the two through holes Ⅳ, and the through hole Ⅲ is fixedly connected to the two through holes Ⅳ by bolts and nuts.

[0009] Furthermore, the front end of the electro-hydraulic actuator is connected to a small support assembly, which is located on the front side of the bottom frame. The small support assembly includes a mounting base, a column, a lower support, and a rotating wheel assembly II. The mounting base is engaged with the front end of the electro-hydraulic actuator, and the top of the column is fixedly connected to the bottom surface of the mounting base. The lower support includes a crossbeam column and an inclined column. The crossbeam column is fixedly connected to the bottom end of the column laterally. There are two inclined columns, which are respectively located at both ends of the crossbeam column. The two inclined columns are symmetrical about the column as the center. The lower ends of the two inclined columns are inclined outward. The lower end of each inclined column is connected to a rotating wheel assembly II. Each rotating wheel assembly II includes a rotating wheel II and a wheel axle II. The rotating wheel II is rotatably connected to one end of the wheel axle II, and the wheel axle II is fixedly connected to the lower end of the inclined column. The axis of the rotating wheel II is in the same direction as the axis of the rotating wheel I.

[0010] Furthermore, the card holder includes an arc-shaped card plate and vertical card plates. The arc-shaped card plate has a downward-protruding arc cross-section. There are two vertical card plates, which are respectively located at both ends of the arc-shaped card plate. The two vertical card plates are parallel. The front end of the electro-hydraulic actuator is connected inside the arc-shaped card plate. The electro-hydraulic actuator extends out of both vertical card plates. Both vertical card plates are provided with oblong holes. The oblong holes on the two vertical card plates are coaxial and are fixedly connected by bolts and nuts. The top of the column is fixedly connected to the bottom surface of the arc-shaped card plate.

[0011] Furthermore, each of the side transverse plates I is provided with multiple through holes I, and each of the side transverse plates II is provided with multiple through holes II; the multiple through holes I and the multiple through holes II are coaxial, and the multiple through holes I and the multiple through holes II are fixedly connected by bolts and nuts.

[0012] Furthermore, both vertical plates are provided with multiple oblong holes, each oblong hole is coaxial, and all oblong holes are fixedly connected by bolts and nuts.

[0013] An electrical control cabinet is fixedly connected to the bottom frame. The electrical control cabinet is located on the side of the electro-hydraulic actuator. Four support legs are fixedly connected to the bottom surface of the electrical control cabinet. The bottom ends of the four support legs are fixedly connected to the top surface of the bottom frame. The drive element of the electro-hydraulic actuator is connected inside the electrical control cabinet. The control button of the electro-hydraulic actuator is provided on the panel of the electrical control cabinet.

[0014] The beneficial effects of this utility model are as follows: When in use, the operator pushes the utility model from the side away from the crushing chamber, causing the pusher plate assembly to face the raw crushed material. Controlling the piston rod of the electro-hydraulic pusher extends the piston rod, pushing the raw crushed material into the crushing chamber for subsequent crushing. The electrical control cabinet is directly mounted on the base frame and moves with the utility model, greatly facilitating operation. This utility model eliminates the need for manual prying of raw crushed material into the crushing chamber using a crowbar. Operators only need to operate from the side away from the crushing chamber, effectively preventing them from approaching the crushing chamber inlet during material feeding, thus eliminating safety hazards. Simultaneously, using an electro-hydraulic pusher to complete the material feeding reduces the labor intensity of the operator and improves work efficiency. This utility model has a simple structure, is easy to manufacture, has low cost, and is easy to implement, making it worthy of widespread application. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This utility model Figure 1 View from direction A; Figure 3 This is a partial structural diagram of the lower and upper card holders of this utility model; Figure 4 This is a schematic diagram of the lower card holder of this utility model; Figure 5 This is a schematic diagram of the upper card holder of this utility model; Figure 6 This is a partial structural diagram of the connection between the front support plate and the vertical support plate of this utility model; Figure 7 This is a partial structural diagram of the connection between the rear support plate and the vertical support plate of this utility model; Figure 8 This is a schematic diagram of the structure of the small support component of this utility model; Figure 9 This is a partial structural diagram of the push plate assembly of this utility model; Figure 10 This is a schematic diagram of the utility model in use.

[0016] In the diagram: 1. Electro-hydraulic actuator; 2. Lower mounting base; 201. Arc-shaped plate I; 202. Side transverse plate I; 203. Through hole I; 3. Upper mounting base; 301. Arc-shaped plate II; 302. Side transverse plate II; 303. Through hole II; 4. Front support plate; 5. Rear support plate; 6. Vertical support plate; 601. Arc-shaped groove; 7. Electrical control cabinet; 8. Base frame; 9. Track; 10. Connecting plate; 11. Rotary wheel assembly I; 12. Rotating wheel I; 13. Axle I; 4. Small support assembly; 15. Push plate assembly; 16. Support leg; 17. Card seat; 1701. Arc-shaped card plate; 1702. Vertical card plate; 1703. Waist-shaped hole; 18. Column; 19. Lower support; 1901. Horizontal beam column; 1902. Inclined column; 20. Rotary wheel assembly II; 21. Rotating wheel II; 22. Wheel axle II; 23. Push plate; 24. Support plate; 2401. Through hole III; 25. Support base; 2501. Through hole IV. Detailed Implementation

[0017] like Figures 1-10 As shown, the present invention discloses a mobile residual electrode crusher pushing device comprising an electro-hydraulic push rod 1, a base frame 8, a track 9, a connecting plate 10, and a rotary wheel assembly I11. The base frame 8 is a rectangular frame formed by welding four channel steels. Two connecting plates 10 are provided, both of which are fixedly connected to the bottom surface of the base frame 8, and the two connecting plates 10 are respectively fixedly connected to the bottom surfaces of two parallel sides of the base frame 8. Two rotary wheel assemblies I11 are provided, each of which includes two rotating wheels I12 and one axle I13. Each rotating wheel I12 is rotatably connected to both ends of the wheel axle I13. The wheel axles I13 of the two rotating wheel assemblies I11 are fixedly connected to the bottom surfaces of the two connecting plates 10. The rear end of the electro-hydraulic push rod 1 is connected to the bottom frame 8. There are two tracks 9, both of which are channel steel. Both tracks 9 are fixedly connected to the platform next to the crushing chamber. The openings of the two tracks 9 are opposite each other. The two rotating wheels I12 of each rotating wheel assembly I11 are rotatably connected to the two tracks 9. The front end of the piston rod of the electro-hydraulic push rod 1 is connected to the push plate assembly 15.

[0018] When using this utility model, such as Figure 10 As shown, the operator pushes the device from the side away from the crushing chamber, causing the pusher assembly 15 to face the raw crushed material. By controlling the piston rod of the electro-hydraulic pusher 1 to extend, the raw crushed material is pushed into the crushing chamber to complete the subsequent crushing. There is no need for manual prying of the raw crushed material into the crushing chamber. The operator only needs to operate from the side away from the crushing chamber, which effectively prevents the operator from approaching the crushing chamber inlet during the feeding process, eliminating safety hazards. At the same time, using the electro-hydraulic pusher 1 to complete the pushing work reduces the labor intensity of the operator and improves work efficiency.

[0019] The track 9 provides guidance for the movement of this utility model. In this embodiment, the track 9 is made of channel steel. In actual use, other forms of track 9 can also be used and rotating wheels I12 used in conjunction with track 9 can be used, as long as they can meet the normal movement requirements.

[0020] Since the top surface of the feeding platform in existing equipment is mostly metal, the track 9 and the platform can be fixedly connected by welding with stiffening plates.

[0021] Two vertical support plates 6 are fixedly connected to the top surface of the bottom frame 8. The two vertical support plates 6 are respectively fixedly connected to the top surfaces of the two parallel sides of the bottom frame 8 that are not connected to the connecting plate 10. Each of the two vertical support plates 6 has an arc-shaped groove 601 on its top surface. A front support plate 4 is fixedly connected to the top surface of one of the vertical support plates 6 closest to the piston rod of the electro-hydraulic actuator 1. The front support plate 4 has a downward-protruding arc-shaped cross-section, and its outer side wall is fixedly connected to the arc-shaped groove 601. A rear support plate 5 is fixedly connected to the top surface of the other vertical support plate 6. The rear support plate 5 also has a downward-protruding arc-shaped cross-section, and its outer side wall is fixedly connected to the arc-shaped groove 601. The front support plate 4 and the rear support plate 5 are connected within the arc-shaped groove 601. The arc radius of the front support plate 4 and the rear support plate 5 are the same, and the front support plate 4 and the rear support plate 5 are coaxial. The lower rear end of the electro-hydraulic actuator 1 is connected within the front support plate 4 and the rear support plate 5. A lower retainer 2 is fixedly connected between the front support plate 4 and the rear support plate 5. The lower retainer 2 includes an arc-shaped plate I 201 and a side transverse plate I 202. The cross-section of the arc-shaped plate I 201 is a downwardly protruding arc shape. The arc radius of the arc-shaped plate I 201 is the same as the arc radius of the front support plate 4 and the arc radius of the rear support plate 5. The arc-shaped plate I 201, the front support plate 4 and the rear support plate 5 are coaxial. The side transverse plate I 202... There are two side horizontal plates I202, which are fixed to the left and right ends of the arc plate I201 respectively. The two side horizontal plates I202 are on the same horizontal plane, and each side horizontal plate I202 has a through hole I203. The lower rear end of the electro-hydraulic actuator 1 is connected to the arc plate I201, and the upper rear end of the electro-hydraulic actuator 1 is connected to the upper bracket 3. The upper bracket 3 is located above the lower bracket 2. The upper bracket 3 includes an arc plate II301 and a side horizontal plate II302. The cross section of the arc plate II301 is an upwardly protruding arc shape. The arc radius of the arc plate II301 is the same as the arc radius of the arc plate I201. Plate II 301 and arc plate I 201 are coaxial. There are two side horizontal plates II 302. The two side horizontal plates II 302 are fixed at the left and right ends of the arc plate II 301 respectively. The two side horizontal plates II 302 are set on the same horizontal plane. Each of the two side horizontal plates II 302 is provided with a through hole II 303. The two side horizontal plates II 302 are respectively set above the two side horizontal plates I 202. The two through holes II 303 are coaxial with the two through holes I 203. The two through holes II 303 and the two through holes I 203 are fixedly connected by bolts and nuts. The rear end of the electro-hydraulic actuator 1 is clamped between the lower clamp 2 and the upper clamp 3.

[0022] In this embodiment, each side plate I202 is provided with two through holes I203, and each side plate II302 is provided with two through holes II303; the two through holes I203 on each side plate I202 and the two through holes II303 on each side plate II302 are coaxial, and the multiple through holes I203 and the multiple through holes II303 are fixedly connected by bolts and nuts.

[0023] The front support plate 4, the rear support plate 5, and the vertical support plate 6 provide a support base for the electro-hydraulic actuator 1; the lower bracket 2 and the upper bracket 3 position the electro-hydraulic actuator 1 to prevent displacement during use. The lower bracket 2 and the upper bracket 3 are fixedly connected by bolts and nuts for easy loading and unloading.

[0024] The electro-hydraulic actuator 1 has a small support assembly 14 connected to its front end. The small support assembly 14 is located on the front side of the bottom frame 8. The small support assembly 14 includes a mounting base 17, a column 18, a lower support 19, and a rotating wheel assembly II 20. The mounting base 17 is engaged with the front end of the electro-hydraulic actuator 1. The top of the column 18 is fixedly connected to the bottom surface of the mounting base 17. The lower support 19 includes a crossbeam column 1901 and an inclined column 1902. The crossbeam column 1901 is horizontally fixedly connected to the bottom end of the column 18. There are two inclined columns 1902, which are respectively located at both ends of the crossbeam column 1901. The two inclined columns 1902 are symmetrical about the column 18. The lower ends of the two inclined columns 1902 are inclined outward. The lower end of each inclined column 1902 is connected to a rotating wheel assembly II 20. Each rotating wheel assembly II 20 includes a rotating wheel II 21 and a wheel axle II 22. The rotating wheel II 21 is rotatably connected to the wheel axle II 20. One end of the axle II22 is fixedly connected to the lower end of the inclined column 1902. The axis of the rotating wheel II21 is in the same direction as the axis of the rotating wheel I12. The card holder 17 includes an arc-shaped card plate 1701 and a vertical card plate 1702. The cross-section of the arc-shaped card plate 1701 is an arc protruding downward. There are two vertical card plates 1702, which are respectively located at both ends of the arc-shaped card plate 1701. The two vertical card plates 1702 are parallel. The front end of the electro-hydraulic actuator 1 is connected inside the arc-shaped card plate 1701. The electro-hydraulic actuator 1 extends out of both vertical card plates 1702. There are two waist-shaped holes 1703 on both vertical card plates 1702. The waist-shaped holes 1703 on the two vertical card plates 1702 are coaxial and fixedly connected by bolts and nuts. The top of the column 18 is fixedly connected to the bottom surface of the arc-shaped card plate 1701.

[0025] In this embodiment, each of the two vertical card plates 1702 is provided with two waist-shaped holes 1703. The two waist-shaped holes 1703 on each vertical card plate 1702 are coaxial, and the multiple waist-shaped holes 1703 are fixedly connected by bolts and nuts.

[0026] Since the front end of the electro-hydraulic actuator 1 extends very long, this utility model provides a small support component 14 to support the front end of the electro-hydraulic actuator 1. Considering that the angle between the two vertical clamping plates 1702 will change when the bolt and nut are tightened to clamp the electro-hydraulic actuator 17, a waist-shaped hole 1703 is provided on the two vertical clamping plates 1702 to allow the bolt to pass through.

[0027] The push plate assembly 15 includes a push plate 23, and a support plate 24 is fixedly connected to the rear side of the push plate 23. The support plate 24 is provided with a through hole Ⅲ2401. The front end of the piston rod of the electro-hydraulic push rod 1 is fixedly connected to a support seat 25. The support seat 25 is composed of two side plates and a connecting plate forming a "]" shape. Both side plates of the support seat 25 are provided with through holes Ⅳ2501. The support plate 24 is located between the two side plates of the support seat 25. The through hole Ⅲ2401 is coaxial with the two through holes Ⅳ2501. The through hole Ⅲ2401 is fixedly connected to the two through holes Ⅳ2501 by bolts and nuts.

[0028] An electrical control cabinet 7 is fixedly connected to the bottom frame 8. The electrical control cabinet 7 is located on the side of the electro-hydraulic actuator 1. Four support legs 16 are fixedly connected to the bottom surface of the electrical control cabinet 7. The bottom ends of the four support legs 16 are fixedly connected to the top surface of the bottom frame 8. The drive element of the electro-hydraulic actuator 1 is connected inside the electrical control cabinet 7. The control button of the electro-hydraulic actuator 1 is provided on the panel of the electrical control cabinet 7.

[0029] Since the operator needs to push the device during use, the electrical control cabinet 7 is directly mounted on the base frame 8 to move with it, greatly facilitating operation. It should be noted that since the operator pushes the device from the side away from the crushing chamber, the electrical control cabinet 7 and its panel should also be located on the side of the base frame 8 away from the crushing chamber.

[0030] In this embodiment, the electro-hydraulic actuator 1 is model DYTPB1000-1600 / 110-P, the thrust of the electro-hydraulic actuator 1 is 1000Kgf, the thrust speed of the electro-hydraulic actuator 1 is 110mm / s, the stroke of the electro-hydraulic actuator 1 is 1600mm, and the motor power of the electro-hydraulic actuator 1 is 1.5Kw.

Claims

1. A mobile run-of-mine crusher pusher apparatus characterised in that: It includes an electro-hydraulic actuator (1), a base frame (8), a track (9), a connecting plate (10), and a rotating wheel assembly I (11). The base frame (8) is a rectangular frame formed by welding four channel steels. There are two connecting plates (10), both of which are fixedly connected to the bottom surface of the base frame (8). The two connecting plates (10) are respectively fixedly connected to the bottom surfaces of two parallel sides of the base frame (8). There are two rotating wheel assemblies I (11), each of which includes two rotating wheels I (12) and one axle I (13). The two rotating wheels I (12) rotate respectively. The two ends of the wheel axle I (13) are connected to each other. The wheel axle I (13) of the two wheel assemblies I (11) are fixedly connected to the bottom surface of the two connecting plates (10). The rear end of the electro-hydraulic push rod (1) is connected to the bottom frame (8). There are two tracks (9). Both tracks (9) are channel steel. Both tracks (9) are fixedly connected to the platform next to the crushing chamber. The openings of the two tracks (9) are opposite each other. The two rotating wheels I (12) of each wheel assembly I (11) are rotatably connected to the two tracks (9). The front end of the piston rod of the electro-hydraulic push rod (1) is connected to the push plate assembly (15).

2. A mobile residual tip crusher ramming device according to claim 1, characterized in that Two vertical support plates (6) are fixedly connected to the top surface of the bottom frame (8). The two vertical support plates (6) are respectively fixedly connected to the top surface of the two parallel sides of the bottom frame (8) that are not connected to the connecting plate (10). Both vertical support plates (6) are provided with arc-shaped grooves (601) on their top surfaces. One of the vertical support plates (6) near the piston rod of the electro-hydraulic push rod (1) is fixedly connected to a front support plate (4). The front support plate (4) has a downward-protruding arc cross-section. The outer wall is fixedly connected in the arc groove (601), and the top surface of another vertical support plate (6) is fixedly connected to the rear support plate (5). The cross-section of the rear support plate (5) is an arc shape protruding downwards. The outer wall of the rear support plate (5) is fixedly connected in the arc groove (601). The arc radius of the front support plate (4) is the same as that of the rear support plate (5). The front support plate (4) and the rear support plate (5) are coaxial. The lower part of the rear end of the electro-hydraulic push rod (1) is connected in the front support plate (4) and the rear support plate (5).

3. A mobile residual electrode crusher ramming device according to claim 2, characterised in that: A lower bracket (2) is fixedly connected between the front support plate (4) and the rear support plate (5). The lower bracket (2) includes an arc-shaped plate I (201) and a side cross plate I (202). The cross section of the arc-shaped plate I (201) is an arc protruding downward. The arc radius of the arc-shaped plate I (201) is the same as the arc radius of the front support plate (4) and the arc radius of the rear support plate (5). The arc-shaped plate I (201), the front support plate (4), and the rear support plate (5) are coaxial. The side cross plate I (202) 02) Two side horizontal plates I (202) are provided, and the two side horizontal plates I (202) are fixed at the left and right ends of the arc plate I (201) respectively. The two side horizontal plates I (202) are set on the same horizontal plane. Both side horizontal plates I (202) are provided with through holes I (203). The lower part of the rear end of the electro-hydraulic actuator (1) is connected to the arc plate I (201). The upper part of the rear end of the electro-hydraulic actuator (1) is connected to the upper bracket (3). The upper bracket (3) is set above the lower bracket (2). The structure includes an arc-shaped plate II (301) and a side transverse plate II (302). The cross-section of the arc-shaped plate II (301) is an upwardly protruding arc. The radius of the arc of the arc-shaped plate II (301) is the same as that of the arc-shaped plate I (201). The arc-shaped plate II (301) and the arc-shaped plate I (201) are coaxial. There are two side transverse plates II (302), which are fixed at the left and right ends of the arc-shaped plate II (301) respectively. 302) Set on the same horizontal plane, both side horizontal plates II (302) are provided with through holes II (303), the two side horizontal plates II (302) are respectively set above the two side horizontal plates I (202), the two through holes II (303) are coaxial with the two through holes I (203), the two through holes II (303) and the two through holes I (203) are fixedly connected by bolts and nuts, and the rear end of the electro-hydraulic push rod (1) is clamped between the lower clamping seat (2) and the upper clamping seat (3).

4. A mobile residual electrode crusher ramming device according to claim 3, characterised in that: The push plate assembly (15) includes a push plate (23), a support plate (24) is fixedly connected to the rear side of the push plate (23), and a through hole III (2401) is provided on the support plate (24). The front end of the piston rod of the electro-hydraulic push rod (1) is fixedly connected to a support seat (25). The support seat (25) is composed of two side plates and a connecting plate in the shape of "]". Both side plates of the support seat (25) are provided with through holes IV (2501). The support plate (24) is located between the two side plates of the support seat (25). The through hole III (2401) is coaxial with the two through holes IV (2501). The through hole III (2401) is fixedly connected to the two through holes IV (2501) by bolts and nuts.

5. A mobile residue tip crusher ramming device according to any one of claims 1-4, characterized in that: The electro-hydraulic actuator (1) is connected to a small support assembly (14) at its front end. The small support assembly (14) is located on the front side of the bottom frame (8). The small support assembly (14) includes a mounting base (17), a column (18), a lower support (19), and a rotating wheel assembly II (20). The mounting base (17) is engaged with the front end of the electro-hydraulic actuator (1). The top of the column (18) is fixedly connected to the bottom surface of the mounting base (17). The lower support (19) includes a crossbeam column (1901) and an inclined column (1902). The crossbeam column (1901) is fixedly connected laterally to the bottom end of the column (18). There are two inclined columns (1902). Inclined columns (1902) are respectively set at both ends of the crossbeam column (1901). The two inclined columns (1902) are symmetrical about the column (18). The lower ends of the two inclined columns (1902) are inclined outward. The lower end of each inclined column (1902) is connected to a rotating wheel assembly II (20). Each rotating wheel assembly II (20) includes a rotating wheel II (21) and a wheel axle II (22). The rotating wheel II (21) is rotatably connected to one end of the wheel axle II (22). The wheel axle II (22) is fixedly connected to the lower end of the inclined column (1902). The axis of the rotating wheel II (21) is in the same direction as the axis of the rotating wheel I (12).

6. A mobile residual electrode crusher ramming device according to claim 5, characterised in that: The card holder (17) includes an arc-shaped card plate (1701) and a vertical card plate (1702). The arc-shaped card plate (1701) has a downward-protruding arc cross-section. There are two vertical card plates (1702), which are respectively located at both ends of the arc-shaped card plate (1701). The two vertical card plates (1702) are parallel. The front end of the electro-hydraulic push rod (1) is connected inside the arc-shaped card plate (1701). Both vertical card plates (1702) extend out of the electro-hydraulic push rod (1). Both vertical card plates (1702) are provided with waist-shaped holes (1703). The waist-shaped holes (1703) on the two vertical card plates (1702) are coaxial and are fixedly connected by bolts and nuts. The top of the column (18) is fixedly connected to the bottom surface of the arc-shaped card plate (1701).

7. A mobile residual electrode crusher ramming device according to claim 3, characterised in that: Each side plate I (202) is provided with multiple through holes I (203), and each side plate II (302) is provided with multiple through holes II (303); the multiple through holes I (203) and the multiple through holes II (303) are coaxial, and the multiple through holes I (203) and the multiple through holes II (303) are fixedly connected by bolts and nuts.

8. A mobile residual electrode crusher ramming device according to claim 6, characterised in that: The two vertical plates (1702) are provided with multiple waist-shaped holes (1703), and the multiple waist-shaped holes (1703) are coaxial and are fixedly connected by bolts and nuts.

9. A mobile residue tip crusher ramming device according to any one of claims 1-4 or 6-8, characterized in that: An electrical control cabinet (7) is fixedly connected to the bottom frame (8). The electrical control cabinet (7) is located on the side of the electro-hydraulic actuator (1). Four support legs (16) are fixedly connected to the bottom surface of the electrical control cabinet (7). The bottom ends of the four support legs (16) are fixedly connected to the top surface of the bottom frame (8). The drive element of the electro-hydraulic actuator (1) is connected inside the electrical control cabinet (7). The control button of the electro-hydraulic actuator (1) is provided on the panel of the electrical control cabinet (7).