Ingot receiving device of aluminum ingot continuous casting production line

By adopting a guide structure and a knock structure in the ingot connecting device of the aluminum ingot continuous casting production line, the problem of difficult aluminum ingots being demolded smoothly is solved, safe and effective transmission of aluminum ingots is achieved, and production efficiency and safety are improved.

CN222873317UActive Publication Date: 2025-05-16顺博合金安徽有限公司
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Patent Information

Application Number
CN202421550443.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-03
Publication Date
2025-05-16
Estimated Expiration
2034-07-03

AI Technical Summary

Technical Problem

The existing aluminum ingot production and ingot joint structure lacks an effective mold release mechanism, which makes it difficult for aluminum ingot to be demolded smoothly, affecting production efficiency.

Method used

An ingot connecting device for a continuous casting production line of aluminum ingots was designed, adopting a guide structure and a strike structure. The guide structure limits the aluminum ingots on the ingot conveying line through the arc guide frame and the guide roller to prevent falling off. The strike structure assists the release of the aluminum ingot through a trigger plate, a trigger rack, a return spring and a lever to drive the strike hammer.

Benefits of technology

Effectively prevent aluminum ingots from falling off during 180° flip, avoid equipment damage and aluminum ingots collision and deformation, and improve production efficiency and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an ingot receiving device of an aluminum ingot continuous casting production line, which comprises a top frame, the two sides of the bottom of the top frame are respectively connected with a side frame used for supporting, an ingot casting conveying line is arranged between the side frames, and a conveying mechanism used for conveying and transferring aluminum ingots is arranged between the side frames and below the ingot casting conveying line. According to the ingot receiving device of the aluminum ingot continuous casting production line, the knocking structure is arranged in the device, so that the conveying task of an ingot casting conveying line can be coordinated without external power and energy. And the knocking structures enable the device to knock the two sides of the aluminum ingot in each ingot casting groove, so that the problem that the aluminum ingot and the ingot casting groove are attached too tightly, and therefore demolding cannot be conducted in the overturning process is solved. Meanwhile, due to the position design of the lever, the trigger frame can drive the knocking hammer to knock the two ends of the aluminum ingot through the connecting line with small force.
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Description

Technical Field

[0001] The utility model relates to the technical field of aluminum ingot production equipment, in particular to an ingot connecting device for an aluminum ingot continuous casting production line. Background Art

[0002] The ingot connection structure in the aluminum ingot production process is an important link in the aluminum smelting process, which directly affects the quality and production efficiency of aluminum ingots. Its main function is to transfer qualified aluminum ingots cast in the casting machine to the cooling conveyor for subsequent cooling, forming, stacking, packaging, weighing and marking production processes.

[0003] However, in the existing aluminum ingot production and joining structure, due to the lack of an effective demoulding mechanism, the aluminum ingot and the mold groove are too tightly fitted during the transfer of the aluminum ingot, making it difficult to demould the aluminum ingot smoothly, thereby affecting the subsequent transmission efficiency of the aluminum ingot.

[0004] In view of the above problems, it is urgent to carry out innovative design based on the original ingot joining device. Utility Model Content

[0005] The technical solution of the utility model aims at the technical problem that the existing technical solution is too single, and provides an ingot connecting device for an aluminum ingot continuous casting production line which is significantly different from the solution of the existing technology, so as to solve the problems raised in the above-mentioned background technology.

[0006] To achieve the above-mentioned purpose, the utility model provides the following technical solutions: an ingot connecting device for an aluminum ingot continuous casting production line, comprising a top frame, wherein a side frame for support is connected to each of the two sides of the bottom of the top frame, and an ingot conveyor line is installed between the side frames, and a transmission mechanism for conveying and transferring aluminum ingots is installed between the side frames below the ingot conveyor line, a guide structure for limiting and guiding the aluminum ingots is provided at the bottom of the top frame, and a knocking structure for preventing the aluminum ingots in the casting trough on the ingot conveyor line from being adsorbed and not demolded is installed at the bottom of the top frame.

[0007] Preferably, the guide structure includes a guide frame and guide rollers, and a guide frame is connected to each side of the bottom of the top frame, and each guide frame is rotatably connected to a plurality of guide rollers at equal intervals, and the guide frame is configured to cooperate with the arc structure of the ingot conveyor line.

[0008] Preferably, the knocking structure includes a trigger part and a striking part, the trigger part includes a trigger disk, a trigger frame, a groove, and a reset spring, the ends of the rotating shaft on both sides of the ingot conveyor line respectively pass through the outer wall of the side frame and are respectively connected to a trigger disk, and each side of each trigger disk is attached to a trigger frame, and each trigger frame part is snap-fitted and slidably connected in the groove, the grooves are respectively opened on both sides of the top of the top frame, and a reset spring is connected between the inner wall of each groove and the corresponding trigger frame.

[0009] Preferably, the striking part includes a lever, a bracket, a connecting line, a knock hammer, a pressure spring, and a pulley frame. The top of the top frame is connected to the bracket, and the bracket is rotatably connected to a lever. One end of the lever is connected to the trigger frame, and the other end of the lever is connected to the connecting line. The end of the connecting line is connected to the knock hammer, and the knock hammer is rotatably connected to the bottom of the top frame. The outer wall of the knock hammer is connected to a pressure spring, and the end of the pressure spring is connected to the outer wall of the pulley frame. The pulley frame is installed at the bottom of the top frame, and the pulley at the lower end of the pulley frame is attached to the connecting line.

[0010] Preferably, a plurality of protrusions are provided on the side of the trigger disk at equal angles corresponding to the casting groove on the ingot conveyor line, the trigger frame is configured as an arc structure at one end in contact with the trigger disk, and the other end of the trigger frame is rotatably connected to the lever.

[0011] Preferably, the connection fulcrum between the bracket and the lever is located on a side of the lever away from the ingot conveyor line.

[0012] Compared with the prior art, the beneficial effect of the utility model is that the ingot connecting device of the aluminum ingot continuous casting production line, through the setting of the guide structure, enables the device to limit the aluminum ingots on the ingot conveyor line to prevent the aluminum ingots from falling out of the ingot trough during the 180° flipping process during rotation, and falling on the ground or the transmission mechanism, causing damage to the equipment and deformation of the aluminum ingots.

[0013] By setting the guide structure, the device can limit the aluminum ingots on the ingot conveyor line to prevent the aluminum ingots from falling out of the ingot trough during the 180° flipping process during rotation and falling on the ground or the transmission mechanism, causing equipment damage and aluminum ingots from being bumped and deformed.

[0014] By setting a knocking structure in the device, it is possible to achieve the conveying task of the ingot conveyor line without external power and energy. The knocking structure enables the device to knock on both sides of the aluminum ingot in each ingot slot to prevent the aluminum ingot from fitting too tightly to the ingot slot, which may cause the problem of being unable to demold during the flipping process. At the same time, the position design of the lever allows the trigger frame to drive the knocking hammer to knock on both ends of the aluminum ingot through the connecting line with only a small force. This design improves the efficiency and safety of the device. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] Figure 1 This is a schematic diagram of the front view structure of the utility model;

[0016] Figure 2 This is a schematic diagram of the front cross-sectional structure of the utility model;

[0017] Figure 3 It is a schematic diagram of the side cross-sectional structure of the utility model;

[0018] Figure 4 It is a side structural schematic diagram of the utility model.

[0019] In the figure: 1. top frame; 2. side frame; 3. ingot conveyor line; 4. transmission mechanism; 5. guide structure; 501. guide frame; 502. guide roller; 6. knocking structure; 601. trigger plate; 602. trigger frame; 603. groove; 604. reset spring; 605. lever; 606. bracket; 607. connecting line; 608. knocking hammer; 609. pressure spring; 610. pulley frame. DETAILED DESCRIPTION

[0020] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.

[0021] See also Figure 1-4 The utility model provides a technical solution: an ingot connecting device for an aluminum ingot continuous casting production line, comprising a top frame 1, a side frame 2, an ingot conveyor line 3, a transmission mechanism 4, a guide structure 5, a guide frame 501, a guide roller 502, a knocking structure 6, a trigger plate 601, a trigger frame 602, a groove 603, a reset spring 604, a lever 605, a bracket 606, a connecting line 607, a knocking hammer 608, a pressure spring 609, and a pulley frame 610. The top frame 1 is connected to two sides of each other at the bottom with a side frame 2 for support, and the ingot conveyor line 3 is installed between the side frames 2, and a transmission mechanism 4 for conveying and transferring aluminum ingots is installed between the side frames 2 below the ingot conveyor line 3. A guide structure 5 for limiting and guiding aluminum ingots is provided at the bottom of the top frame 1, and a knocking structure 6 for preventing aluminum ingots in a casting trough on the ingot conveyor line 3 from being adsorbed and not demolded is installed at the bottom of the top frame 1.

[0022] The guide structure 5 includes a guide frame 501 and a guide roller 502. A guide frame 501 is connected to each side of the bottom of the top frame 1, and each guide frame 501 is rotatably connected to a plurality of guide rollers 502 at equal intervals. The guide frame 501 is configured to be an arc structure for cooperating with the ingot conveyor line 3.

[0023] The knocking structure 6 includes a trigger part and a striking part. The trigger part includes a trigger disk 601, a trigger frame 602, a groove 603, and a reset spring 604. The ends of the rotating shafts on both sides of the ingot conveyor line 3 respectively pass through the outer wall of the side frame 2 and are respectively connected to a trigger disk 601, and each side of each trigger disk 601 is attached to a trigger frame 602, and each part of the trigger frame 602 is snap-fitted and slidably connected in the groove 603. The grooves 603 are respectively opened on both sides of the top of the top frame 1, and a reset spring 604 is connected between the inner wall of each groove 603 and the corresponding trigger frame 602.

[0024] The striking part includes a lever 605, a bracket 606, a connecting line 607, a striking hammer 608, a pressure spring 609, and a pulley frame 610. The bracket 606 is connected to the top of the top frame 1, and the lever 605 is rotatably connected to the bracket 606. One end of the lever 605 is connected to the trigger frame 602, and the other end of the lever 605 is connected to the connecting line 607. The end of the connecting line 607 is connected to the striking hammer 608, and the striking hammer 608 is rotatably connected to the bottom of the top frame 1. The outer wall of the striking hammer 608 is connected to the pressure spring 609, and the end of the pressure spring 609 is connected to the outer wall of the pulley frame 610. The pulley frame 610 is installed at the bottom of the top frame 1, and the pulley at the lower end of the pulley frame 610 is fitted with the connecting line 607.

[0025] The trigger plate 601 has a plurality of protrusions at equal angles corresponding to the casting groove on the ingot conveyor line 3 . The trigger frame 602 is configured as an arc structure at one end in contact with the trigger plate 601 , and the other end of the trigger frame 602 is rotatably connected to the lever 605 .

[0026] The connection fulcrum between the bracket 606 and the lever 605 is located on the side of the lever 605 away from the ingot conveyor line 3.

[0027] Working principle: According to Figure 1 As shown, the device is firstly installed on the ingot conveyor line 3, and the formed aluminum ingot is conveyed to the bottom of the top frame 1 with the operation of the ingot conveyor line 3. The aluminum ingot in the ingot trough on the ingot conveyor line 3 is limited by the auxiliary cooperation of the arc guide frame 501 and the guide roller 502 to prevent it from falling off during the turning process.

[0028] As the ingot conveyor line 3 operates, the trigger disk 601 is driven to rotate, so that the protrusion on it corresponding to the ingot groove lifts the trigger frame 602, so that the return spring 604 in the groove 603 is compressed. As the trigger frame 602 moves upward, the lever 605 is driven to rotate on the bracket 606, and the connecting line 607 is disengaged from the limit of the knocking hammer 608. The pressure spring 609, which is initially in a compressed state, pushes the knocking hammer 608 to rotate and knock the two ends of the aluminum ingot on the ingot conveyor line 3 to help it demold. This is the working principle of the ingot connecting device of the aluminum ingot continuous casting production line.

[0029] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An ingot joining device for an aluminum ingot continuous casting production line, comprising a top frame (1), characterized in that: A side frame (2) for supporting is connected to each of the two sides of the bottom of the top frame (1), and an ingot conveyor line (3) is installed between the side frames (2), and a transmission mechanism (4) for conveying and transferring aluminum ingots is installed between the side frames (2) and below the ingot conveyor line (3). A guide structure (5) for limiting and guiding the aluminum ingots is provided at the bottom of the top frame (1), and a knocking structure (6) for preventing the aluminum ingots in the casting trough on the ingot conveyor line (3) from being adsorbed and not being demoulded is installed at the bottom of the top frame (1).

2. The ingot joining device of the aluminum ingot continuous casting production line according to claim 1, characterized in that: The guide structure (5) comprises a guide frame (501) and guide rollers (502), wherein two sides of the bottom of the top frame (1) are each connected to a guide frame (501), and each guide frame (501) is rotatably connected to a plurality of guide rollers (502) at equal intervals, and the guide frame (501) is configured to be an arc-shaped structure for cooperating with the ingot conveyor line (3).

3. The ingot joining device of the aluminum ingot continuous casting production line according to claim 1, characterized in that: The knocking structure (6) comprises a triggering part and a striking part, wherein the triggering part comprises a triggering plate (601), a triggering frame (602), a groove (603), and a reset spring (604). The ends of the rotating shafts on both sides of the ingot conveyor line (3) respectively penetrate the outer wall of the side frame (2) and are respectively connected to a triggering plate (601), and a triggering frame (602) is attached to the side of each triggering plate (601), and each triggering frame (602) is partially engaged and slidably connected in the groove (603). The grooves (603) are respectively opened on both sides of the top of the top frame (1), and a reset spring (604) is connected between the inner wall of each groove (603) and the corresponding trigger frame (602).

4. The ingot connection device of the aluminum ingot continuous casting production line according to claim 3 is characterized in that: The striking part comprises a lever (605), a bracket (606), a connecting line (607), a striking hammer (608), a pressure spring (609), and a pulley frame (610). The top of the top frame (1) is connected to the bracket (606), and the bracket (606) is rotatably connected to the lever (605). One end of the lever (605) is connected to the trigger frame (602), and the other end of the lever (605) is connected to the connecting line (607). The end of the connecting line (607) is connected to the striking hammer (608), and the striking hammer (608) is rotatably connected to the bottom of the top frame (1). The outer wall of the striking hammer (608) is connected to the pressure spring (609), and the end of the pressure spring (609) is connected to the outer wall of the pulley frame (610). The pulley frame (610) is installed at the bottom of the top frame (1), and the pulley at the lower end of the pulley frame (610) is in contact with the connecting line (607).

5. The ingot connection device of the aluminum ingot continuous casting production line according to claim 3, characterized in that: The trigger plate (601) has a plurality of protrusions at equal angles corresponding to the casting groove on the ingot conveyor line (3). The trigger frame (602) has an arc-shaped structure at one end in contact with the trigger plate (601), and the other end of the trigger frame (602) is rotatably connected to the lever (605).

6. The ingot connection device of the aluminum ingot continuous casting production line according to claim 4, characterized in that: The connection fulcrum between the bracket (606) and the lever (605) is located on a side of the lever (605) away from the ingot conveying line (3).