Aluminum-titanium-boron wire swing adding device
By using a guide assembly and an aluminum-titanium-boron wire guide block driven by an electric telescopic rod, the problem of only being able to add one aluminum-titanium-boron wire at a time in existing devices is solved, enabling the efficient oscillating addition of multiple aluminum-titanium-boron wires and improving production efficiency.
Patent Information
- Application Number
- CN202520308513.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2035-02-25
AI Technical Summary
The existing aluminum-titanium-boron wire oscillating feeding device can only introduce one aluminum-titanium-boron wire at a time, resulting in low overall efficiency.
The design employs a guide assembly and an electric telescopic rod in conjunction with a driven displacement component and an aluminum-titanium-boron wire guide block. The electric telescopic rod pushes the driven displacement stage to slide, causing the aluminum-titanium-boron wire guide block to swing within the aluminum liquid tank. Multiple rotating shafts are used to achieve double-sided swinging, increasing the swing range and the amount of liquid added.
It improves the oscillating addition amount and production efficiency of aluminum-titanium-boron wires, facilitates the replacement of aluminum-titanium-boron wire guide blocks of different quantities and sizes, and meets the requirement of simultaneous addition of multiple aluminum-titanium-boron wires.
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Figure CN223888901U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of metallurgical equipment technology, specifically to an aluminum-titanium-boron wire oscillating feeding device. Background Technology
[0002] Adding aluminum-titanium-boron wire online during the casting process is one of the most effective measures to refine the grain structure of the ingot. Currently, the common practice is to use a wire feeder to add aluminum-titanium-boron wire online. After entering the aluminum liquid, the aluminum-titanium-boron wire melts rapidly, and trace elements such as titanium and boron diffuse and dissolve, thereby refining the grain structure of the casting. The aluminum-titanium-boron wire feeding device is used to guide the aluminum-titanium-boron wire into the aluminum liquid flow channel, and the wire is guided into the aluminum liquid flow channel by oscillation.
[0003] For example, the public document CN220127560U, entitled "An Aluminum-Titanium-Boron Wire Swinging Addition Device," includes a wire swinging mechanism set on one side of an aluminum liquid flow channel. A convex plate is fixedly set on one side of the aluminum liquid flow channel, and a through hole is opened on the convex plate. A motor is set at the bottom of the convex plate, and the output end of the motor passes through the through hole and is connected to the swinging wire circular plate. A fixed column is fixedly set at the top edge of the swinging wire circular plate. One end of the swinging wire rod is connected to a sleeve, and the other end is connected to a swinging wire ring. The sleeve is sleeved on the fixed column and rotatably connected to the fixed column. The swinging wire ring is located above the aluminum liquid flow channel. By swinging the aluminum-titanium-boron wire into the aluminum liquid in the aluminum liquid flow channel, the position of the aluminum-titanium-boron wire added into the aluminum liquid is continuously changed, thereby ensuring that the aluminum-titanium-boron wire is evenly distributed in the aluminum liquid.
[0004] The existing aluminum-titanium-boron wire oscillating feeding device can adjust the position of the aluminum-titanium-boron wire by oscillating, but it can only introduce one aluminum-titanium-boron wire at a time, resulting in low overall efficiency. Therefore, it does not meet the current requirements. In response, we propose an aluminum-titanium-boron wire oscillating feeding device. Utility Model Content
[0005] The purpose of this invention is to provide an aluminum-titanium-boron wire oscillating feeding device to solve the problem mentioned in the background art that, although the existing aluminum-titanium-boron wire oscillating feeding device can oscillate to adjust the position of the aluminum-titanium-boron wire, it can only introduce one aluminum-titanium-boron wire at a time, resulting in low overall efficiency.
[0006] To achieve the above objectives, this utility model provides the following technical solution: an aluminum-titanium-boron wire oscillating feeding device, comprising: an aluminum liquid tank, a guide assembly installed above the aluminum liquid tank, the guide assembly including an assembly base, guide rods installed on both sides of the assembly base, a driven displacement member slidably installed on the outer wall of the guide rods, an oscillating adjustment block rotatably installed above the assembly base, a connecting rod installed between the oscillating adjustment block and the driven displacement member, an electric telescopic rod installed on the side wall of the assembly base, and the telescopic end of the electric telescopic rod connected to one side of the driven displacement member, an aluminum-titanium-boron wire guide block installed at the middle position of the driven displacement member.
[0007] Preferably, the swing adjustment block is rhomboid in shape, a first rotating shaft is installed at the middle position of the swing adjustment block, and a second rotating shaft is installed at both ends of the swing adjustment block.
[0008] Preferably, the driven displacement member includes a driven displacement stage, the upper surface of which is equipped with a third rotating shaft, and the two ends of the connecting rod are respectively connected to the second rotating shaft and the third rotating shaft.
[0009] Preferably, both ends of the driven displacement stage are provided with sliding sleeves, and the driven displacement stage slides on the guide rod through the sliding sleeves.
[0010] Preferably, the lower bottom of the driven displacement stage is provided with a base bracket, and the outer wall of the base bracket is provided with multiple locking holes.
[0011] Preferably, the bottom of the aluminum-titanium-boron wire guide block is provided with multiple locking blocks, the outer wall of the aluminum-titanium-boron wire guide block is provided with multiple guide holes, and the upper surface of the aluminum-titanium-boron wire guide block is equipped with two sets of handles.
[0012] Preferably, a bracket is installed at the end of the guide rod, and the lower bottom of the bracket is fixed to the aluminum liquid tank by bolts.
[0013] Compared with the prior art, the beneficial effects of this utility model are:
[0014] 1. In this utility model, the electric telescopic rod extends forward, pushing the driven displacement table on one side to move. The driven displacement table slides on the guide rod through the sliding sleeve, causing the position of the aluminum-titanium-boron wire guide block at that position to change. The aluminum-titanium-boron wire located in the guide hole is then moved. With the reciprocating extension and retraction, the aluminum-titanium-boron wire can be guided into the aluminum liquid tank in a swinging displacement manner. During this process, the connecting rod is connected to the swing adjustment block. Through the setting of the first rotating shaft, the second rotating shaft, and the third rotating shaft, the driven displacement table on the other side can also be driven to swing during this displacement process, thereby effectively increasing the swing range and the amount of aluminum-titanium-boron wire added each time, thus improving production efficiency.
[0015] 2. In this utility model, the driven displacement stage and the aluminum titanium boron wire guide block are detachable. During installation, the aluminum titanium boron wire guide block is fixedly placed on the base bracket by inserting the locking block into the locking hole. The aluminum titanium boron wire passes through and is guided by multiple guide holes on the aluminum titanium boron wire guide block. During disassembly, the aluminum titanium boron wire guide block is pulled upward by the handle to separate the locking block from the locking hole, which makes it convenient for users to replace aluminum titanium boron wire guide blocks with different numbers and sizes of locking holes in the future. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of this utility model;
[0017] Figure 2 This is a top view of the guide assembly of this utility model;
[0018] Figure 3 This is a bottom view of the guide assembly of this utility model;
[0019] Figure 4 This is a schematic diagram of the driven displacement component structure of this utility model;
[0020] Figure 5 This is a schematic diagram of the aluminum-titanium-boron wire guide block structure of this utility model;
[0021] In the diagram: 1. Aluminum liquid tank; 101. Bracket; 2. Guide assembly; 201. Assembly base; 202. Guide rod; 3. Swing adjustment block; 301. First rotating shaft; 302. Second rotating shaft; 4. Driven displacement component; 401. Driven displacement stage; 402. Base bracket; 403. Locking hole; 404. Sliding sleeve; 405. Third rotating shaft; 5. Connecting rod; 6. Electric telescopic rod; 7. Aluminum-titanium-boron wire guide block; 701. Locking block; 702. Guide hole; 703. Handle. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0023] Please see Figure 1-5This utility model provides an embodiment of an aluminum-titanium-boron wire oscillating feeding device, comprising: an aluminum liquid tank 1, a guide assembly 2 mounted above the aluminum liquid tank 1, the guide assembly 2 including an assembly base 201, guide rods 202 mounted on both sides of the assembly base 201, a driven displacement member 4 slidably mounted on the outer wall of the guide rods 202, an oscillation adjustment block 3 rotatably mounted above the assembly base 201, a connecting rod 5 installed between the oscillation adjustment block 3 and the driven displacement member 4, and an electric telescopic rod 6 mounted on the side wall of the assembly base 201, with the telescopic end of the electric telescopic rod 6 connected to one side of the driven displacement member 4. An aluminum-titanium-boron wire guide block 7 is installed at the middle position of the driven displacement component 4. The swing adjustment block 3 is rhomboid in shape. A first rotating shaft 301 is installed at the middle position of the swing adjustment block 3. A second rotating shaft 302 is installed at both ends of the swing adjustment block 3. The driven displacement component 4 includes a driven displacement stage 401. A third rotating shaft 405 is installed on the upper surface of the driven displacement stage 401. The two ends of the connecting rod 5 are respectively connected to the second rotating shaft 302 and the third rotating shaft 405. A sliding sleeve 404 is provided at both ends of the driven displacement stage 401. The driven displacement stage 401 slides on the guide rod 202 through the sliding sleeve 404.
[0024] The electric telescopic rod 6 extends forward, pushing the driven displacement stage 401 on one side to move. The driven displacement stage 401 slides on the guide rod 202 through the sliding sleeve 404, causing the position of the aluminum titanium boron wire guide block 7 at that position to change. The aluminum titanium boron wire located in the guide hole 702 is then moved. With the reciprocating extension and retraction, the aluminum titanium boron wire can be guided into the aluminum liquid tank 1 in a swinging displacement manner. During this process, the connecting rod 5 is connected to the swing adjustment block 3. Through the setting of the first rotating shaft 301, the second rotating shaft 302, and the third rotating shaft 405, the driven displacement stage 401 on the other side can also be driven to swing during this displacement process, thereby effectively increasing the swing range and the amount of aluminum titanium boron wire added each time, thus improving production efficiency.
[0025] Please see Figure 4 , Figure 5 The bottom of the driven displacement stage 401 is provided with a base bracket 402, and multiple locking holes 403 are provided on the outer wall of the base bracket 402. The bottom of the aluminum titanium boron wire guide block 7 is provided with multiple locking blocks 701, and multiple guide holes 702 are provided on the outer wall of the aluminum titanium boron wire guide block 7. Two sets of handles 703 are installed on the upper surface of the aluminum titanium boron wire guide block 7. A bracket 101 is installed at the end of the guide rod 202, and the bottom of the bracket 101 is fixed to the aluminum liquid tank 1 by bolts.
[0026] The driven displacement stage 401 and the aluminum titanium boron wire guide block 7 are detachable. During installation, the aluminum titanium boron wire guide block 7 is fixedly placed on the base bracket 402 by inserting the locking block 701 into the locking hole 403. The aluminum titanium boron wire is passed through and guided by the multiple guide holes 702 on the aluminum titanium boron wire guide block 7. During disassembly, the aluminum titanium boron wire guide block 7 is pulled upward by the handle 703 to separate the locking block 701 from the locking hole 403, which makes it convenient for users to replace aluminum titanium boron wire guide blocks 7 with different numbers and sizes of locking holes 403 in the future.
[0027] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. An aluminum-titanium-boron wire oscillating feeding device, comprising an aluminum liquid tank (1), characterized in that: A guide assembly (2) is installed above the aluminum liquid tank (1). The guide assembly (2) includes an assembly base (201). Guide rods (202) are installed on both sides of the assembly base (201). A driven displacement member (4) is slidably installed on the outer wall of the guide rod (202). A swing adjustment block (3) is rotatably installed above the assembly base (201). A connecting rod (5) is installed between the swing adjustment block (3) and the driven displacement member (4). An electric telescopic rod (6) is installed on the side wall of the assembly base (201). The telescopic end of the electric telescopic rod (6) is connected to the driven displacement member (4) on one side. An aluminum titanium boron wire guide block (7) is installed at the middle position of the driven displacement member (4).
2. The aluminum-titanium-boron wire oscillating feeding device according to claim 1, characterized in that: The swing adjustment block (3) is rhomboid in shape. A first rotating shaft (301) is installed at the middle position of the swing adjustment block (3), and a second rotating shaft (302) is installed at both ends of the swing adjustment block (3).
3. The aluminum-titanium-boron wire oscillating feeding device according to claim 2, characterized in that: The driven displacement member (4) includes a driven displacement stage (401), on the upper surface of which a third rotating shaft (405) is mounted, and the two ends of the connecting rod (5) are respectively connected to the second rotating shaft (302) and the third rotating shaft (405).
4. The aluminum-titanium-boron wire oscillating feeding device according to claim 3, characterized in that: Both ends of the driven displacement stage (401) are provided with sliding sleeves (404), and the driven displacement stage (401) slides on the guide rod (202) through the sliding sleeves (404).
5. The aluminum-titanium-boron wire oscillating feeding device according to claim 3, characterized in that: The lower bottom of the driven displacement stage (401) is provided with a base bracket (402), and the outer wall of the base bracket (402) is provided with multiple locking holes (403).
6. The aluminum-titanium-boron wire oscillating feeding device according to claim 1, characterized in that: The bottom of the aluminum titanium boron wire guide block (7) is provided with multiple locking blocks (701), the outer wall of the aluminum titanium boron wire guide block (7) is provided with multiple guide holes (702), and the upper surface of the aluminum titanium boron wire guide block (7) is provided with two sets of handles (703).
7. The aluminum-titanium-boron wire oscillating feeding device according to claim 1, characterized in that: The guide rod (202) is equipped with a bracket (101) at its end, and the bottom of the bracket (101) is fixed to the aluminum liquid tank (1) by bolts.
Citation Information
Patent Citations
Aluminum-titanium-boron wire swing adding device
CN220127560U