Intelligent zinc ingot quantitative casting device and method
By designing an intelligent zinc ingot quantitative casting device, a motor-driven rotary table and actuating plate system are used to achieve rapid delivery and quantitative control of the zinc liquid volume. This solves the problem that traditional devices cannot adjust the zinc liquid volume in real time, and improves the flexibility and automation level of production.
Patent Information
- Application Number
- CN202610233876.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-27
- Publication Date
- 2026-05-15
AI Technical Summary
Traditional intelligent zinc ingot quantitative casting devices cannot adjust the amount of zinc liquid poured in a single casting in real time according to production plans or different needs of downstream customers, resulting in limitations in their use.
An intelligent zinc ingot quantitative casting device was designed, including a conveying track, a moving seat, a storage tank, a material collection component, and a feeding component. Through a motor-driven rotary table and a toggle plate system, the device enables rapid conveying, quantitative collection, and quantitative feeding of zinc liquid.
It enables rapid delivery and quantitative control of zinc liquid, adapting to the production needs of zinc ingots of different specifications, and improving the flexibility and automation level of production.
Smart Images

Figure CN122033228A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of non-ferrous metal smelting and casting, and in particular to an intelligent quantitative casting device and method for zinc ingots. Background Technology
[0002] The intelligent zinc ingot quantitative casting device is an automated equipment used in the final stage of hydrometallurgical or pyrometallurgical refining processes. It is mainly used to accurately and efficiently cast high-temperature liquid zinc into zinc ingots that meet specifications. The device typically integrates a molten zinc supply system, a metering mechanism, a casting mechanism, a cooling conveyor chain, and an electrical control system. It aims to replace traditional manual casting or semi-mechanized operations to achieve continuous, standardized, and intelligent zinc ingot production. It is one of the key pieces of equipment for improving the automation level and product quality of zinc smelting enterprises.
[0003] In a typical intelligent zinc ingot quantitative casting process, the high-temperature zinc liquid in the smelting furnace first enters the insulated tundish of the device through a chute or conveying pump. Then, the control system drives the metering mechanism to accurately separate the required volume of zinc liquid from the tundish according to the preset single zinc ingot weight parameters. The separated zinc liquid is quickly poured into a continuously moving mold. Finally, the formed zinc ingot is automatically ejected by the demolding mechanism and conveyed by the conveyor chain to the stacking station for stacking. The entire process is monitored in real time by PLC combined with sensors to ensure precise coordination of the operating cycle.
[0004] Most traditional casting equipment's metering mechanism can only be designed for a single, fixed zinc ingot weight specification. It cannot adjust the amount of zinc liquid poured in a single casting in real time according to the production plan or different needs of downstream customers to meet the production requirements of zinc ingots of different specifications. This results in certain limitations in the actual use of the casting equipment. Summary of the Invention
[0005] In view of the problems existing in the above or prior art, the present invention is proposed.
[0006] Therefore, the purpose of this invention is to provide an intelligent zinc ingot quantitative casting device and method.
[0007] To solve the above-mentioned technical problems, the present invention provides the following technical solution:
[0008] A smart zinc ingot quantitative casting device includes a conveying track, a movable seat slidably connected to the upper end face of the conveying track, and a storage tank fixedly connected to the outer wall of the movable seat.
[0009] And, the material collection assembly includes a fixed disc, a rotating disc slidably connected to the upper surface of the fixed disc, and a toggle plate disposed on the outside of the fixed disc;
[0010] And, the unloading assembly includes a second drive shaft rotatably connected to the inner wall of the conveying track, a rotating shaft fixedly connected to the outer wall of the second drive shaft, and a movable sleeve threadedly connected to the outer surface of the second drive shaft.
[0011] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, the material collection assembly further includes a first connecting plate fixedly connected to the outer wall of the conveying track and a second connecting plate fixedly connected to the lower end face of the first connecting plate, wherein the end of the first connecting plate is fixedly connected to the outer wall of the fixed plate.
[0012] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, a motor is fixedly installed on the inner wall of the second connecting plate, a first drive shaft is provided on the outer wall of the fixed plate, and the output end of the motor is fixedly connected to the lower end face of the first drive shaft.
[0013] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, a connecting block is fixedly connected to the upper end face of the first drive shaft, the outer wall of the connecting block is fixedly connected to the outer wall of the rotating disk, and the end face of the rotating disk is integrally formed with a plurality of limiting blocks with its center as the axis.
[0014] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, the outer wall of the fixed disk is provided with a limiting groove adapted to one of the limiting blocks, and the outer wall of the rotating disk is fixedly connected with a plurality of first actuating rods arranged in a ring, and the outer wall of the first actuating rods is fixedly connected with a second actuating rod.
[0015] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, a first spring is fixedly connected to the outer wall of the first connecting plate, the end of the first spring is fixedly connected to the outer wall of the actuating plate, and the first actuating rod can contact the actuating plate.
[0016] As a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, the feeding assembly further includes a second spring fixedly connected to the outer wall of the conveying track and a connecting rod fixedly connected to the end of the second spring. One side of the end face of the moving block is designed to be inclined. The second actuating rod can contact the connecting rod. The inner wall of the rotating shaft is provided with a guide groove.
[0017] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, a movable plug is provided on the inner side of the rotating shaft, a guide shaft that can slide along the guide groove is fixedly connected to the outer wall of the movable plug, a connecting rod is fixedly connected to the outer wall of the movable plug, and the end of the connecting rod is fixedly connected to the outer wall of the moving block.
[0018] In a preferred embodiment of the intelligent zinc ingot quantitative casting device of the present invention, the movable sleeve can contact the movable seat, a fixed plate is fixedly connected to the outer wall of the movable sleeve, a guide rod is fixedly connected to the inner wall of the conveying track, and the fixed plate can slide along the guide rod.
[0019] The beneficial effects of the intelligent zinc ingot quantitative casting device and method of the present invention are as follows: The present invention realizes the rapid delivery of zinc liquid through multiple sets of moving seats, and realizes the quantitative collection of zinc liquid through the collecting component. Furthermore, the collecting component can trigger the stopping time of the storage tank at the position of the feeding component, thereby achieving the effect of quantitative feeding and providing zinc liquid for subsequent casting.
[0020] To better achieve the objectives of this invention, the present invention also provides a method for operating an intelligent zinc ingot quantitative casting device, comprising the following steps:
[0021] Step 1: The conveyor track is driven by the system to move in a cycle. The moving seat moves along the surface of the conveyor track and moves the storage tank to the outlet of the casting device. At this time, the actuating plate contacts the moving seat, so that both the moving seat and the storage tank are stationary. The zinc liquid is poured into the storage tank. At the same time, the motor starts and the fixed plate is fixed by the first connecting plate. The actuating plate is in a vertical position. The motor drives the first drive shaft to rotate. The first drive shaft is located on the rotating plate and provides driving force.
[0022] Step 2: As the motor operates, the first drive shaft drives the rotating disk to rotate via the connecting block. As the rotating disk rotates, it rotates synchronously via the first actuating rod. The first actuating rod contacts the actuating plate first. The bottom of the actuating plate is connected to the first spring, which stretches the first spring and causes the actuating plate to tilt, thus no longer obstructing the moving seat. At this time, the amount of zinc liquid falling into the storage tank reaches the required value, and the dwell time in the storage tank can be controlled by the motor. The faster the motor speed, the faster the first actuating rod 411 contacts the moving seat, and the less zinc liquid falls into the storage tank. Conversely, the slower the motor speed, the more zinc liquid falls. After the moving seat passes, the actuating plate is reset by the elastic force of the first spring.
[0023] Step 3: After the first actuating rod on the surface of the rotating disk contacts the actuating plate, a set of limiting blocks are engaged in the limiting groove, causing the rod to rotate. At this time, the first actuating rod contacts the actuating plate, triggering the movement of the storage tank. When the storage tank moves to the outlet, it is kept stationary by the limiting of the moving sleeve, and all the zinc liquid in the storage tank is sent to the designated position and then to the casting port. As the rotating disk rotates, the second actuating rod will squeeze the moving block when it moves, causing the second spring to compress. When the moving block 51 moves, it drives the connecting rod and the movable plug to move synchronously. The contact between the guide shaft and the guide groove makes the rotating shaft and the second drive shaft rotate synchronously. During the rotation of the second drive shaft, the moving sleeve moves along the second drive shaft and moves to the side closer to the rotating shaft, thereby releasing the limiting of the moving seat. At this time, the zinc liquid in the storage tank is completely released and moves along the conveying track, completing the quantitative delivery of zinc liquid. Attached Figure Description
[0024] To more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings used in the following description of the embodiments will be briefly introduced. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0025] Figure 1 This is a schematic diagram of the overall structure of an intelligent zinc ingot quantitative casting device and method.
[0026] Figure 2 This is a schematic diagram of the storage tank structure of an intelligent zinc ingot quantitative casting device and method.
[0027] Figure 3 This is a partial structural schematic diagram of an intelligent zinc ingot quantitative casting device and method.
[0028] Figure 4 This is a schematic diagram of the material collection component structure of an intelligent zinc ingot quantitative casting device and method.
[0029] Figure 5 This is a schematic diagram of the actuating plate structure of an intelligent zinc ingot quantitative casting device and method.
[0030] Figure 6 This is a schematic diagram of the feeding component structure of an intelligent zinc ingot quantitative casting device and method.
[0031] Figure 7 This is a partially disassembled structural diagram of the feeding component of an intelligent zinc ingot quantitative casting device and method.
[0032] In the diagram, 1. Conveying track; 2. Moving seat; 3. Storage tank; 4. Collecting assembly; 41. Motor; 42. Fixed plate; 43. Limiting groove; 44. First drive shaft; 45. Connecting block; 46. First connecting plate; 47. First spring; 48. Actuating plate; 49. Rotary disk; 410. Limiting block; 411. First actuating rod; 412. Second actuating rod; 413. Second connecting plate; 5. Discharge assembly; 51. Moving block; 52. Second spring; 53. Connecting rod; 54. Movable plug; 55. Guide shaft; 56. Second drive shaft; 57. Rotating shaft; 58. Moving sleeve; 59. Fixed plate; 510. Guide rod; 511. Guide groove. Detailed Implementation
[0033] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0034] Many specific details are set forth in the following description in order to provide a full understanding of the invention. However, the invention may also be practiced in other ways different from those described herein, and those skilled in the art can make similar extensions without departing from the spirit of the invention. Therefore, the invention is not limited to the specific embodiments disclosed below.
[0035] Secondly, the term "one embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that is mutually exclusive with other embodiments.
[0036] Example 1
[0037] Reference Figures 1 to 6 This is the first embodiment of the present invention, which provides an intelligent zinc ingot quantitative casting device.
[0038] Specifically, an intelligent zinc ingot quantitative casting device includes a conveying track 1, a movable seat 2 slidably connected to the upper surface of the conveying track 1, and a storage tank 3 fixedly connected to the outer wall of the movable seat 2. The conveying track 1 can be integrated into existing casting devices and is designed in a U-shape to achieve reciprocating motion. The movable seat 2 has multiple sets of designs and has a certain friction with the track, allowing it to stop and move synchronously on the track surface to ensure a continuous supply of molten zinc. The storage tank moves along the conveying track 1 with the movable seat 2. One side of the movable seat 2 is hollowed out to ensure the movement of the collecting component 4 and the discharging component 5. It should be noted that an outlet for the molten zinc to fall is opened on the surface of the conveying track 1, and this outlet matches the opening on the surface of the storage tank 3.
[0039] In addition, the material collection assembly 4 includes a fixed disk 42, a rotating disk 49 slidably connected to the upper surface of the fixed disk 42, and a deflector plate 48 disposed on the outside of the fixed disk 42; wherein the fixed disk 42 is disposed on one side of the conveying track 1, the deflector plate 48 can contact the moving seat 2 to achieve a blocking effect, and the material collection assembly 4 is located at the zinc liquid falling point of the casting device.
[0040] The unloading assembly 5 includes a second drive shaft 56 rotatably connected to the inner wall of the conveying track 1, a rotating shaft 57 fixedly connected to the outer wall of the second drive shaft 56, and a movable sleeve 58 threadedly connected to the outer surface of the second drive shaft 56. The second drive shaft 56 rotates inside the conveying track 1 and is located near the unloading port on the surface of the conveying track 1. The surface of the second drive shaft 56 has external threads. The movable sleeve 58 is threadedly connected to the second drive shaft 56. In the initial state, the movable sleeve 58 is located at the edge of the second drive shaft 56 and is in contact with the side of the movable seat 2 that has not been hollowed out.
[0041] Furthermore, the material collection assembly 4 also includes a first connecting plate 46 fixedly connected to the outer wall of the conveying track 1 and a second connecting plate 413 fixedly connected to the lower end face of the first connecting plate 46. The end of the first connecting plate 46 is fixedly connected to the outer wall of the fixed disk 42. The first connecting plate 46 and the second connecting plate 413 respectively fix the fixed disk 42 and the motor 41, with the motor 41 located at the bottom of the fixed disk 42.
[0042] It should be noted that a motor 41 is fixedly installed on the inner wall of the second connecting plate 413, and a first drive shaft 44 is provided on the outer wall of the fixed disk 42. The output end of the motor 41 is fixedly connected to the lower end face of the first drive shaft 44. The output end of the motor 41 passes through the fixed disk 42 and is connected to the first drive shaft 44.
[0043] During use, the conveying track 1 is driven by the system to move in a cycle. The moving seat 2 moves along the surface of the conveying track 1. The moving seat 2 drives the storage tank 3 to the outlet of the casting device. At this time, the actuating plate 48 contacts the moving seat 2, so that both the moving seat 2 and the storage tank 3 are in a stationary state. The zinc liquid is poured into the storage tank 3. At the same time, the motor 41 starts, the fixed plate 42 is fixed by the first connecting plate 46, the actuating plate 48 is in a vertical state, the motor 41 drives the first drive shaft 44 to rotate, and the first drive shaft 44 is located on the rotating disk 49 to provide driving force.
[0044] Example 2
[0045] Reference Figure 4 and Figure 5 This is the second embodiment of the present invention.
[0046] Specifically, a connecting block 45 is fixedly connected to the upper end face of the first drive shaft 44, and the outer wall of the connecting block 45 is fixedly connected to the outer wall of the rotating disk 49. The end face of the rotating disk 49 is integrally formed with multiple sets of limiting blocks 410 around its center. The connecting block 45 connects the first drive shaft 44 to the rotating disk 49, and the rotating disk 49 can slide along the upper surface of the fixed disk 42. Each set of limiting blocks 410 consists of two blocks, and the multiple sets of limiting blocks 410 are arranged in a ring on the outer surface of the fixed disk 42.
[0047] Furthermore, the outer wall of the fixed disk 42 is provided with a limiting groove 43 that matches one of the limiting blocks 410. The outer wall of the rotating disk 49 is fixedly connected with multiple sets of first actuating rods 411 arranged in a ring, and the outer wall of the first actuating rods 411 is fixedly connected with second actuating rods 412. The limiting blocks 410 are triangular, and the limiting grooves 43 are designed in two sets and are opened on the surface of the fixed disk 42. The interlocking between the limiting grooves 43 and the limiting blocks 410 achieves the switching and guiding effects.
[0048] Preferably, a first spring 47 is fixedly connected to the outer wall of the first connecting plate 46, and the end of the first spring 47 is fixedly connected to the outer wall of the actuating plate 48, allowing the first actuating rod 411 to contact the actuating plate 48. The first spring 47 serves to position and reset the actuating plate 48.
[0049] The rest of the structure is the same as in Example 1.
[0050] During use, as the motor 41 operates, the first drive shaft 44 drives the rotating disk 49 to rotate via the connecting block 45. As the rotating disk 49 rotates, it rotates synchronously via the first actuating lever 411. The first actuating lever 411 contacts the actuating plate 48 first. The bottom of the actuating plate 48 is connected to the first spring 47, which stretches the first spring 47 and causes the actuating plate 48 to tilt, thus no longer obstructing the moving seat 2. At this time, the amount of zinc liquid falling into the storage tank 3 reaches the required value, and the dwell time of the storage tank 3 can be controlled by the motor 41. The faster the motor 41 rotates, the faster the first actuating lever 411 contacts the moving seat 2, and the less zinc liquid falls into the storage tank 3. Conversely, the slower the motor 41 rotates, the more zinc liquid falls into the storage tank 3. After the moving seat 2 passes, the actuating plate 48 is reset by the elastic force of the first spring 47.
[0051] Example 3
[0052] Reference Figure 3 , Figure 6 and Figure 7 This is the third embodiment of the present invention.
[0053] Specifically, the feeding assembly 5 also includes a second spring 52 fixedly connected to the outer wall of the conveying track 1 and a connecting rod 53 fixedly connected to the end of the second spring 52. One side of the end face of the moving block 51 is designed to be inclined, and the second actuating rod 412 can contact the connecting rod 53. A guide groove 511 is provided on the inner wall of the rotating shaft 57. The second spring 52 connects the moving block 51 and has a certain pulling and expanding force. The inclined design on one side of the moving block 51 can ensure that the moving block 51 can move horizontally as the second actuating rod 412 descends.
[0054] Furthermore, a movable plug 54 is provided on the inner side of the rotating shaft 57. A guide shaft 55 that can slide along the guide groove 511 is fixedly connected to the outer wall of the movable plug 54. A connecting rod 53 is fixedly connected to the outer wall of the movable plug 54, and the end of the connecting rod 53 is fixedly connected to the outer wall of the moving block 51. The movable plug 54 can slide within the rotating shaft 57 driven by the connecting rod 53.
[0055] Preferably, the movable sleeve 58 can contact the movable seat 2. A fixed plate 59 is fixedly connected to the outer wall of the movable sleeve 58, and a guide rod 510 is fixedly connected to the inner wall of the conveying track 1. The fixed plate 59 can slide along the guide rod 510. The movable sleeve 58 can move along the second drive shaft 56, and the guiding effect is achieved by the sliding of the fixed plate 59 and the guide rod 510.
[0056] The rest of the structure is the same as in Example 2.
[0057] In use, after the first actuating rod 411 on the surface of the rotating disk 49 contacts the actuating plate 48, a set of limiting blocks 410 are engaged in the limiting groove 43, causing the rod to rotate. At this time, the first actuating rod 411 contacts the actuating plate 48, triggering the movement of the storage tank 3. When the storage tank 3 moves to the discharge port, it is kept stationary by the limiting of the moving sleeve 58, thus sending all the zinc liquid in the storage tank 3 to the designated position and then to the casting port. As the rotating disk 49 rotates, the second actuating lever 412 presses against the moving block 51 during movement, causing the second spring 52 to compress. When the moving block 51 moves, it drives the connecting rod 53 and the movable plug 54 to move synchronously. The contact between the guide shaft 55 and the guide groove 511 causes the rotating shaft 57 and the second drive shaft 56 to rotate synchronously. During the rotation of the second drive shaft 56, the moving sleeve 58 moves along the second drive shaft 56 and moves towards the side closer to the rotating shaft 57, thereby releasing the restriction on the moving seat 2. At this time, the zinc liquid in the storage tank 3 is completely released and moves along the conveying track 1 to complete the quantitative delivery of zinc liquid.
[0058] Example 4
[0059] Reference Figures 1-7This is the fourth embodiment of the present invention. Unlike the previous embodiment, this embodiment provides a method for operating an intelligent zinc ingot quantitative casting device, which includes the following steps:
[0060] Step 1: The conveying track 1 is driven by the system to move in a cycle. The moving seat 2 moves along the surface of the conveying track 1. The moving seat 2 drives the storage tank 3 to the liquid outlet of the casting device. At this time, the actuating plate 48 contacts the moving seat 2, so that both the moving seat 2 and the storage tank 3 are stationary. The zinc liquid is poured into the storage tank 3. At the same time, the motor 41 starts. The fixed plate 42 is fixed by the first connecting plate 46. The actuating plate 48 is in a vertical state. The motor 41 drives the first drive shaft 44 to rotate. The first drive shaft 44 is located on the rotating plate 49 to provide driving force.
[0061] Step 2: As the motor 41 operates, the first drive shaft 44 drives the rotating disk 49 to rotate via the connecting block 45. As the rotating disk 49 rotates, it rotates synchronously via the first actuating rod 411. The first actuating rod 411 contacts the actuating plate 48 first. The bottom of the actuating plate 48 is connected to the first spring 47, which stretches the first spring 47 and causes the actuating plate 48 to tilt, thus no longer obstructing the moving seat 2. At this time, the amount of zinc liquid falling into the storage tank 3 reaches the required value, and the dwell time of the storage tank 3 can be controlled by the motor 41. The faster the motor 41 rotates, the faster the first actuating rod 411 contacts the moving seat 2, and the less zinc liquid falls into the storage tank 3. Conversely, the slower the motor 41 rotates, the more zinc liquid falls into the storage tank 3. After the moving seat 2 passes, the actuating plate 48 is reset by the elastic force of the first spring 47.
[0062] Step 3: After the first actuating rod 411 on the surface of the rotating disk 49 contacts the actuating plate 48, a set of limiting blocks 410 are engaged in the limiting groove 43, causing them to rotate. At this time, the first actuating rod 411 contacts the actuating plate 48, triggering the movement of the storage tank 3. When the storage tank 3 moves to the discharge port, it is kept stationary by the limiting of the moving sleeve 58, and all the zinc liquid in the storage tank 3 is sent to the designated position and then to the casting port. As the rotating disk 49 rotates, the second actuating lever 412 presses against the moving block 51 during movement, causing the second spring 52 to compress. When the moving block 51 moves, it drives the connecting rod 53 and the movable plug 54 to move synchronously. The contact between the guide shaft 55 and the guide groove 511 causes the rotating shaft 57 and the second drive shaft 56 to rotate synchronously. During the rotation of the second drive shaft 56, the moving sleeve 58 moves along the second drive shaft 56 and moves towards the side closer to the rotating shaft 57, thereby releasing the restriction on the moving seat 2. At this time, the zinc liquid in the storage tank 3 is completely released and moves along the conveying track 1 to complete the quantitative delivery of zinc liquid.
[0063] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit it. Although the present invention has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solutions of the present invention without departing from the spirit and scope of the technical solutions of the present invention, and all such modifications or substitutions should be covered within the scope of the claims of the present invention.
Claims
1. An intelligent zinc ingot quantitative casting device, characterized in that: include, The conveying track (1), the movable seat (2) slidably connected to the upper end face of the conveying track (1), and the storage tank (3) fixedly connected to the outer wall of the movable seat (2); and, The material collection assembly (4) includes a fixed disk (42), a rotating disk (49) slidably connected to the upper surface of the fixed disk (42), and a toggle plate (48) disposed on the outside of the fixed disk (42); and, The feeding assembly (5) includes a second drive shaft (56) rotatably connected to the inner wall of the conveying track (1), a rotating shaft (57) fixedly connected to the outer wall of the second drive shaft (56), and a movable sleeve (58) threadedly connected to the outer surface of the second drive shaft (56).
2. The intelligent zinc ingot quantitative casting device as described in claim 1, characterized in that: The material collection assembly (4) further includes a first connecting plate (46) fixedly connected to the outer wall of the conveying track (1) and a second connecting plate (413) fixedly connected to the lower end face of the first connecting plate (46). The end of the first connecting plate (46) is fixedly connected to the outer wall of the fixed plate (42).
3. The intelligent zinc ingot quantitative casting device as described in claim 2, characterized in that: A motor (41) is fixedly installed on the inner wall of the second connecting plate (413), and a first drive shaft (44) is provided on the outer wall of the fixed plate (42). The output end of the motor (41) is fixedly connected to the lower end face of the first drive shaft (44).
4. The intelligent zinc ingot quantitative casting device as described in claim 3, characterized in that: A connecting block (45) is fixedly connected to the upper end face of the first drive shaft (44). The outer wall of the connecting block (45) is fixedly connected to the outer wall of the rotating disk (49). The end face of the rotating disk (49) is integrally formed with its center as the axis and has multiple sets of limiting blocks (410).
5. The intelligent zinc ingot quantitative casting device as described in claim 4, characterized in that: The outer wall of the fixed disk (42) is provided with a limiting groove (43) that is adapted to one of the limiting blocks (410). The outer wall of the rotating disk (49) is fixedly connected with multiple sets of first actuating rods (411) arranged in a ring. The outer wall of the first actuating rods (411) is fixedly connected with second actuating rods (412).
6. The intelligent zinc ingot quantitative casting device as described in claim 5, characterized in that: A first spring (47) is fixedly connected to the outer wall of the first connecting plate (46), and the end of the first spring (47) is fixedly connected to the outer wall of the actuating plate (48). The first actuating rod (411) can contact the actuating plate (48).
7. The intelligent zinc ingot quantitative casting device as described in claim 6, characterized in that: The feeding assembly (5) also includes a second spring (52) fixedly connected to the outer wall of the conveying track (1) and a connecting rod (53) fixedly connected to the end of the second spring (52). One side of the end face of the moving block (51) is inclined. The second actuating rod (412) can contact the connecting rod (53). The inner wall of the rotating shaft (57) is provided with a guide groove (511).
8. The intelligent zinc ingot quantitative casting device as described in claim 7, characterized in that: The inner side of the rotating shaft (57) is provided with a movable plug (54), and the outer wall of the movable plug (54) is fixedly connected to a guide shaft (55) that can slide along the guide groove (511). The outer wall of the movable plug (54) is fixedly connected to a connecting rod (53), and the end of the connecting rod (53) is fixedly connected to the outer wall of the moving block (51).
9. The intelligent zinc ingot quantitative casting device as described in claim 8, characterized in that: The movable sleeve (58) can contact the movable seat (2). A fixed plate (59) is fixedly connected to the outer wall of the movable sleeve (58). A guide rod (510) is fixedly connected to the inner wall of the conveying track (1). The fixed plate (59) can slide along the guide rod (510).
10. A method for a smart zinc ingot quantitative casting device, characterized in that: Includes the intelligent zinc ingot quantitative casting device according to any one of claims 1 to 9, and the following steps: Step 1: The conveying track (1) is driven by the system to move in a cycle. The moving seat (2) moves along the surface of the conveying track (1). The moving seat (2) drives the storage tank (3) to move to the outlet of the casting device. At this time, the actuating plate (48) contacts the moving seat (2), so that the moving seat (2) and the storage tank (3) are both stationary. The zinc liquid is poured into the storage tank (3). At the same time, the motor (41) starts. The fixed plate (42) is fixed by the first connecting plate (46). The actuating plate (48) is in a vertical state. The motor (41) drives the first drive shaft (44) to rotate. The first drive shaft (44) is located on the rotating plate (49) to provide driving force. Step 2: As the motor (41) works, the first drive shaft (44) drives the rotating disk (49) to rotate through the connecting block (45). As the rotating disk (49) rotates, the rotating disk (49) rotates synchronously through the first actuating rod (411). The first actuating rod (411) contacts the actuating plate (48) first. The bottom of the actuating plate (48) is connected to the first spring (47), which stretches the first spring (47) and the actuating plate (48) changes to an inclined state, so that it no longer blocks the moving seat (2). At this time, the amount of zinc liquid falling into the storage tank (3) reaches the required value, and the time that the storage tank (3) stays can be controlled by the motor (41). The faster the motor (41) rotates, the faster the first actuating rod 411 contacts the moving seat (2), and the less zinc liquid falls into the storage tank (3). Conversely, the more zinc liquid falls, the more the moving seat (2) passes. After the moving seat (2) passes, the actuating plate (48) is reset by the elastic force of the first spring (47). Step 3: After the first actuating rod (411) on the surface of the rotating disk (49) contacts the actuating plate (48), a set of limiting blocks (410) are inserted into the limiting groove (43), causing them to rotate. At this time, the first actuating rod (411) contacts the actuating plate (48) to trigger the movement of the storage tank (3). When the storage tank (3) moves to the outlet, it is kept stationary by the limiting of the moving sleeve (58), and all the zinc liquid in the storage tank (3) is sent to the designated position and then sent to the casting port. As the rotating disk (49) rotates, the second lever (412) will squeeze the moving block (51) when it moves, causing the second spring (52) to compress. When the moving block 51 moves, it drives the connecting rod (53) and the movable plug (54) to move synchronously. The contact between the guide shaft (55) and the guide groove (511) causes the rotating shaft (57) and the second drive shaft (56) to rotate synchronously. During the rotation of the second drive shaft (56), the moving sleeve (58) moves along the second drive shaft (56) and moves to the side closer to the rotating shaft (57), thereby releasing the limit on the moving seat (2). At this time, the zinc liquid in the storage tank (3) is released and moves along the conveying track (1) to complete the quantitative delivery of zinc liquid.