Novel hand-push type aluminum cake pouring ladle
By introducing a smoothing and sealing mechanism into the hand-push aluminum casting ladle, the problems of ladle shaking and solution overflow were solved, achieving both ease of operation and safety.
Patent Information
- Application Number
- CN202520335664.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-28
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-02-28
AI Technical Summary
Existing hand-push casting bags are prone to wobbling during operation, requiring manual support, which is physically demanding and poses a safety risk of high-temperature solution spillage.
A novel hand-push aluminum cake casting ladle was designed, employing a smoothing mechanism and a sealing mechanism. The smoothing mechanism reduces ladle tipping through the cooperation of sliding components and springs, while the sealing mechanism prevents solution spillage through a cover plate structure.
It effectively reduces physical exertion during operation, improves operational safety, prevents high-temperature solution overflow, and reduces the risk of safety accidents.
Smart Images

Figure CN223862855U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of metal casting, and in particular to a novel hand-push aluminum casting ladle. Background Technology
[0002] With social development and progress, the country is paying increasing attention to the personal safety and working environment of employees, and the requirements are becoming more stringent. Enterprises are investing more and more in safety production and improving the working environment, with some even adopting advanced semi-automatic or fully automatic production lines. However, most small and medium-sized wear-resistant casting ball manufacturers, limited by their capital, cannot afford to invest heavily in safety production and working environment improvements. They often prefer equipment that is safe, reliable, easy to operate, and requires less investment; some companies with the resources even develop or modify their own equipment.
[0003] Casting equipment is one of the key pieces of equipment in wear-resistant cast ball production enterprises. The temperature of molten iron can reach 1300-1600℃. Currently, the commonly used casting equipment mainly includes two types: constant temperature automatic casting ladle and handheld simple casting ladle. Constant temperature automatic casting ladle is mostly used in semi-automatic or fully automatic production lines. It has high casting quality, is safe and reliable, and has low labor intensity, but the equipment investment is large and the maintenance cost is high. Handheld simple casting ladle is mostly used for manual casting. The equipment is simple to manufacture, has low investment, and is easy to maintain, but the high temperature labor intensity and the risk of burns from spilled molten iron can cause serious safety accidents.
[0004] While some hand-push casting ladles reduce the risk of burns, they are more cumbersome to operate. During pouring, it is necessary to hold the connecting rod of the ladle with force, which is physically demanding. In addition, the ladle is prone to shaking, which can cause hot melt to flow out and cause danger.
[0005] Regarding the aforementioned technologies, the inventors believe that the following defects exist: the existing hand-push pouring bags are too shaky, require force to hold during pouring, are labor-intensive, and are prone to overflow. Utility Model Content
[0006] The purpose of this application is to provide a novel hand-push aluminum slab casting ladle to solve the problems mentioned in the background art.
[0007] To achieve the above objectives, this application provides a novel hand-push aluminum ingot casting ladle with the following technical solution:
[0008] A novel hand-push aluminum casting ladle includes a ladle, a rotating rod fixedly connected to the ladle, a fixed sleeve sleeved on the outside of the rotating rod, a roller structure hinged to the bottom of the fixed sleeve, and a handle fixed to the other end of the rotating rod. The rotating rod has a first groove on the outer side near the ladle, and a smoothing mechanism is provided in the first groove. The smoothing mechanism includes a second groove and a sliding assembly. The inner wall of the first groove has a surrounding second groove, and a set of symmetrical sliding assemblies are provided in the second groove. The sliding assemblies are arc-shaped. A set of symmetrical fixing blocks is provided on the outer side of the end of the rotating rod that enters the smoothing mechanism. Two fixing blocks are inserted into the two sliding assemblies.
[0009] The sliding assembly includes a slider, a baffle, a telescopic rod, and a spring. The two sliders are slidably disposed in the second slide groove. A baffle is fixed on the side of each slider near the rotating rod. A telescopic rod is connected between the two baffles. A spring is sleeved on the outside of the telescopic rod.
[0010] By adopting the above technical solution, when the rotating rod rotates, the ladle rotates. With the fixed sleeve unchanged, the fixed block and the spring of the sliding component are squeezed together. The spring at the ladle tip is under pressure, so that the ladle will not flip too much at once, reducing the force required to hold it. When the ladle returns to its position, the spring is still under pressure. When it is stable, the springs on both sides are in a compressed state, which plays a stabilizing role on both sides of the rotating rod, preventing the ladle from becoming unstable and causing the solution to overflow.
[0011] Preferably, the fixing block is configured as an arc shape, and the two fixing blocks and the two sliding components are sequentially in contact end to end to form a ring shape.
[0012] By adopting the above technical solution, the rotating rod can be subjected to the force of the spring on both sides when it is in the original position.
[0013] Preferably, the top of the ladle is provided with a sealing mechanism, which includes a baffle, a first cover plate, a handle, and a second cover plate. An annular baffle is fixed to the top of the ladle, and a first cover plate is provided on the top of the baffle. A handle is fixed to the top of the first cover plate, and a second cover plate is provided on one side of the first cover plate. The second cover plate is fixedly connected to the ladle.
[0014] By adopting the above technical solution, the ladle is sealed to prevent solution from overflowing when the ladle shakes, thus avoiding danger and providing better protection.
[0015] Preferably, the bottom of the first cover plate is provided with a flange, so that the first cover plate is slidably connected to the ladle.
[0016] By adopting the above technical solution, pulling the first cover plate can easily inject molten liquid into the ladle.
[0017] Preferably, the bottom of the second cover plate is provided with an annular flange that is fixedly connected to the ladle, and the flange of the first cover plate is located between the annular flange of the second cover plate and the stop strip.
[0018] By adopting the above technical solution, the first cover plate will not shift or fall out when the top of the ladle rotates.
[0019] Preferably, the area of the first cover plate is larger than the area of the second cover plate, and the first cover plate and the second cover plate can completely cover the top of the pouring ladle.
[0020] By adopting the above technical solution, the part that overlaps with the second cover plate when the first cover plate is rotated is the size of the ladle opening.
[0021] In summary, this application includes at least one of the following beneficial technical effects:
[0022] 1. By setting up a smoothing mechanism, when the rotating rod rotates, the ladle rotates. With the fixed sleeve unchanged, the fixed block and the spring of the sliding component are squeezed together. The spring at the ladle tip is under pressure, so that the ladle will not flip too much at once, reducing the force required to hold it. When the ladle returns to its position, the spring is still under pressure. When it is stable, the springs on both sides are in a compressed state, which plays a stabilizing role on both sides of the rotating rod, preventing the ladle from becoming unstable and causing the solution to overflow.
[0023] 2. The sealing mechanism is designed to seal the ladle, preventing the high-temperature solution from spilling out when the ladle shakes, thus avoiding potential danger and providing good protection. Attached Figure Description
[0024] Figure 1 This is a schematic diagram illustrating the overall structure in the embodiments of this application.
[0025] Figure 2 This is a partial exploded schematic diagram used to illustrate the sealing mechanism in the embodiments of this application.
[0026] Figure 3 This is a structural schematic diagram used to illustrate the smoothing mechanism in the embodiments of this application.
[0027] Explanation of reference numerals in the attached drawings: 1. Ladle; 11. Rotating rod; 12. Fixing sleeve; 13. Roller structure; 14. Handle; 2. First slide groove; 3. Smoothing mechanism; 31. Second slide groove; 32. Sliding assembly; 321. Slider; 322. Baffle; 323. Telescopic rod; 324. Spring; 4. Fixing block; 5. Sealing mechanism; 51. Stop bar; 52. First cover plate; 53. Handle; 54. Second cover plate; 521. Flanged edge; 541. Annular flange. Detailed Implementation
[0028] The following is in conjunction with the appendix Figure 1-3This application will be described in further detail.
[0029] This application discloses a novel hand-push aluminum biscuit casting ladle, referring to... Figure 1-3 The assembly includes a ladle 1, a rotating rod 11 fixedly connected to the ladle 1, a fixed sleeve 12 sleeved on the outside of the rotating rod 11, a roller structure 13 hinged to the bottom of the fixed sleeve, and a handle 14 fixed to the other end of the rotating rod 11. The rotating rod 11 has a first groove 2 on the outer side near the ladle 1. The first groove 2 has a smoothing mechanism 3. The smoothing mechanism 3 includes a second groove 31 and a sliding component 32. The inner wall of the first groove 2 has a second groove 31 that surrounds it. The second groove 31 has a set of symmetrical sliding components 32. The sliding components 32 are arc-shaped. The outer side of the rotating rod 11 that enters the smoothing mechanism 3 has a set of symmetrical fixing blocks 4. The two fixing blocks 4 are inserted into the two sliding components 32. The fixing blocks 4 are arc-shaped. The two fixing blocks 4 and the two sliding components 32 are in contact with each other end to end to form a ring.
[0030] The sliding assembly 32 includes a slider 321, a baffle 322, a telescopic rod 323, and a spring 324. The two sliders 321 are slidably disposed in the second slide groove 31. A baffle 322 is fixed on the side of each slider 321 near the rotating rod 11. A telescopic rod 323 is connected between the two baffles 322. A spring 324 is sleeved on the outside of the telescopic rod 323. The spring 324 remains in a compressed state when the rotating rod 11 is in its original position.
[0031] Reference Figure 1-2 The top of the ladle 1 is provided with a sealing mechanism 5. The sealing mechanism 5 includes a baffle 51, a first cover plate 52, a handle 53, and a second cover plate 54. The top of the ladle 1 is fixed with an annular baffle 51. The top of the baffle 51 is provided with a first cover plate 52. The top of the first cover plate 52 is fixed with a handle 53. A second cover plate 54 is provided on one side of the first cover plate 52. The second cover plate 54 is fixedly connected to the ladle 1. The bottom of the first cover plate 52 is provided with a flange 521, so that the first cover plate 52 is slidably connected to the ladle 1. The bottom of the second cover plate 54 is provided with an annular flange 541 fixedly connected to the ladle 1. The flange 521 of the first cover plate 52 is located between the annular flange 541 of the second cover plate 54 and the baffle 51. The area of the first cover plate 52 is greater than the area of the second cover plate 54. The first cover plate 52 and the second cover plate 54 can completely cover the top of the ladle 1.
[0032] The implementation principle of a novel hand-push aluminum cake casting ladle in this application embodiment is as follows:
[0033] When using the device, the first cover plate 52 of the rotating sealing mechanism 5 completely seals the pouring ladle 1 with the first cover plate 52 and the second cover plate 54 to prevent the solution from spilling out. Push the handle 14 to move the pouring ladle 1 to a suitable position. Rotate the handle 14 to tilt the pouring ladle 1 towards the pouring outlet. When the rotating rod 11 rotates, the spring 324 in the sliding component 32 near the pouring outlet is under pressure, so that the pouring ladle 1 will not flip over too much at once, reducing the force required to hold it. When the pouring ladle 1 returns to its original position, the spring 324 is still under pressure. When it is stable, the springs 324 on both sides are in a compressed state, which plays a stabilizing role on both sides of the rotating rod 11, preventing the pouring ladle 1 from becoming unstable and causing the solution to spill out.
[0034] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape, principle and application direction of this application should be covered within the scope of protection of this application.
Claims
1. A novel hand-push aluminum casting ladle, comprising a ladle (1), a rotating rod (11) fixedly connected to the ladle (1), a fixed sleeve (12) sleeved on the outside of the rotating rod (11), a roller structure (13) hinged to the bottom of the fixed sleeve (12), and a handle (14) fixed to the other end of the rotating rod (11), characterized in that: The rotating rod (11) has a first groove (2) on the outer side of the end near the ladle (1). The first groove (2) has a smoothing mechanism (3). The smoothing mechanism (3) includes a second groove (31) and a sliding component (32). The inner wall of the first groove (2) has a surrounding second groove (31). The second groove (31) has a set of symmetrical sliding components (32) in the second groove (31). The sliding components (32) are set in an arc shape. The rotating rod (11) has a set of symmetrical fixing blocks (4) on the outer side of the end near the smoothing mechanism (3). The two fixing blocks (4) fit into the two sliding components (32). The sliding assembly (32) includes a slider (321), a baffle (322), a telescopic rod (323), and a spring (324). The two sliders (321) are slidably disposed in the second slide groove (31). A baffle (322) is fixed on the side of each slider (321) near the rotating rod (11). A telescopic rod (323) is connected between the two baffles (322). A spring (324) is sleeved on the outside of the telescopic rod (323).
2. The novel hand-push aluminum casting ladle according to claim 1, characterized in that: The fixing block (4) is set in an arc shape, and the two fixing blocks (4) and the two sliding components (32) are in contact with each other end to end to form a ring.
3. The novel hand-push aluminum casting ladle according to claim 1, characterized in that: The ladle (1) is provided with a sealing mechanism (5) at the top. The sealing mechanism (5) includes a baffle (51), a first cover plate (52), a handle (53), and a second cover plate (54). The top of the ladle (1) is fixed with an annular baffle (51). The top of the baffle (51) is provided with a first cover plate (52). The top of the first cover plate (52) is fixed with a handle (53). A second cover plate (54) is provided on one side of the first cover plate (52). The second cover plate (54) is fixedly connected to the ladle (1).
4. The novel hand-push aluminum casting ladle according to claim 3, characterized in that: The first cover plate (52) has a flange (521) at the bottom, so that the first cover plate (52) is slidably connected to the ladle (1).
5. The novel hand-push aluminum casting ladle according to claim 4, characterized in that: The bottom of the second cover plate (54) is provided with an annular flange (541) that is fixedly connected to the ladle (1), and the flange (521) of the first cover plate (52) is located between the annular flange (541) and the baffle (51) of the second cover plate (54).
6. The novel hand-push aluminum casting ladle according to claim 5, characterized in that: The area of the first cover plate (52) is larger than the area of the second cover plate (54), and the first cover plate (52) and the second cover plate (54) can completely cover the top of the pouring ladle (1).