Integrated casting equipment for nut machining

Through the flow diversion mechanism and linkage structure, the problem that casting liquid cannot be transported to different mold cavity at the same time is solved, and the efficient nut casting process is achieved, which improves the flow diversion effect and the integration of the equipment.

CN120394779APending Publication Date: 2025-08-01JIANGSU DONGQI STANDARD PARTS
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Patent Information

Application Number
CN202510615933.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-08-01

AI Technical Summary

Technical Problem

During the casting process of existing nut casting molds, the casting liquid cannot be transported to different mold cavity at the same time, resulting in poor flow diversion effect and lack of an accelerated flow structure of the casting liquid, resulting in low conveying efficiency.

Method used

The flow guide mechanism is adopted, including infusion tank, drive motor, worm and worm gear transmission system, sealing plate and flow guide plate, etc., and the cast liquid flow is simultaneously flowed into multiple mold cavity through the linkage structure. The liquid flow is accelerated by using springs and pushing plates to improve the flow guide effect.

Benefits of technology

It realizes that cast liquid flows into multiple mold cavity at the same time, improves the flow diversion effect and conveying efficiency, and enhances the integration and maintenance convenience of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the relevant technical field of casting, and discloses integrated casting equipment for nut machining, which comprises a fixed mold, a movable mold is arranged above the fixed mold, a limiting column is fixedly connected to the top of the fixed mold, a mounting plate is arranged in the fixed mold, a clamping groove is formed in one side of the fixed mold, and the mounting plate is connected with the clamping groove in an inserted manner; a plurality of partition plates and mold cores are fixedly connected to the outer side of the mounting plate, a plurality of liquid inlets are formed in the lower end of the mounting plate, and a flow guide mechanism is arranged on one side of the fixed mold. According to the invention, the linkage structure is arranged; a driving motor can achieve the effects that casting liquid flows through a plurality of liquid inlets at the same time through a liquid conveying pipeline and is conveyed into different mold cavities; a flow guide plate can extrude the casting liquid in a liquid conveying box, so that the casting liquid is accelerated to flow into the mold cavities through the liquid inlets; a plurality of flow pushing plates push the casting liquid to move in the direction of a flow channel; the linkage effect that the casting liquid conveying efficiency can be improved can be achieved, the function is powerful, and meanwhile follow-up maintenance of equipment is facilitated.
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Description

Technical Field

[0001] The present invention belongs to the technical field related to casting, and more specifically, particularly relates to an integrated casting device for nut processing. Background Art

[0002] The casting process is a manufacturing process in which molten metal liquid is poured into a mold cavity and solidified by cooling to obtain parts with the required shape and performance. In the current nut casting mold during the casting process, each sand core in the shape of a thread is first placed into the empty slots on the mold plate, and the two mold plates are fitted together. By pouring molten iron into the two mold plates, it is thus shaped.

[0003] Although the existing technology can cast multiple nuts at one time, has a high degree of integration, and improves the nut processing efficiency, during the casting process, the casting liquid will first be transported to the middle of the mold through a pipeline, and then through multiple diversion pipelines arranged inside the mold, the casting liquid will be continuously diverted to both sides in sequence and transported to different mold cavities. This will cause the casting liquid to not be able to be transported to different mold cavities simultaneously, resulting in poor diversion effect of the casting liquid; in addition, there is no structure for accelerating the flow of the casting liquid, resulting in low transportation efficiency of the casting liquid and poor diversion effect of the casting liquid. Summary of the Invention

[0004] The present invention provides an integrated casting device for nut processing to overcome the above-mentioned defects in the prior art.

[0005] The purpose and effect of an integrated casting device for nut processing according to the present invention are achieved by the following specific technical means: The present invention provides an integrated casting device for nut processing, including a fixed mold. Above the fixed mold is provided a movable mold. At the top of the fixed mold is fixedly connected a limit post. Inside the fixed mold is provided a mounting plate. On one side of the fixed mold is provided a card slot. The mounting plate is inserted into the card slot. On the outer side of the mounting plate are fixedly connected a plurality of partition plates and mold cores. At the lower end of the mounting plate are provided a plurality of liquid inlets. On one side of the fixed mold is provided a diversion mechanism; the diversion mechanism includes an infusion box fixedly connected to the outer side of the fixed mold. Inside the infusion box is provided a movable connecting plate. At the bottom of the connecting plate are fixedly connected a plurality of sealing plates. The sealing plates correspond to the liquid inlets one by one. Inside the infusion box is provided a spring. One end of the spring is connected to a diversion plate.

[0006] Further technical solution: The flow guiding mechanism further includes a driving box fixedly connected to the outer wall of the infusion box. A driving motor is fixedly installed on the outer wall of the driving box. The output end of the driving motor is fixedly connected to a worm. A worm gear is meshed outside the worm. A transmission shaft is fixedly connected to the inner side of the worm gear. A spur gear is fixedly connected to the outer side of the transmission shaft. A rack is meshed outside the spur gear. The rack is fixedly connected to the connecting plate.

[0007] Further technical solution: A first guiding groove is opened at the upper end of the infusion box. The connecting plate is slidably connected to the first guiding groove.

[0008] Further technical solution: The flow guiding mechanism further includes a first bevel gear fixedly connected to the outer side of the transmission shaft. The first bevel gear is located inside the driving box. A second bevel gear is meshed outside the first bevel gear. A transmission lead screw is fixedly connected to the inner side of the second bevel gear. A lead screw nut is arranged outside the transmission lead screw. A sliding seat is arranged outside the lead screw nut. One end of the sliding seat is fixedly connected to a pressing plate. The pressing plate can press the flow guiding plate.

[0009] Further technical solution: A second guiding groove is opened inside the driving box. The pressing plate is slidably connected to the second guiding groove.

[0010] Further technical solution: An infusion pipeline is fixedly connected to one end of the infusion box. A first control valve is arranged on the infusion pipeline.

[0011] Further technical solution: A plurality of guiding frames are fixedly connected to the bottom of the flow guiding plate. The plurality of guiding frames are distributed on both sides of the bottom of the flow guiding plate. A moving frame is arranged inside the guiding frame. A plurality of push flow plates distributed linearly are fixedly connected to the outer side of the moving frame.

[0012] Further technical solution: A sliding groove is opened inside the guiding frame. Both ends of the moving frame are slidably connected to the sliding groove.

[0013] Further technical solution: A partition plate is arranged between the plurality of guiding frames. The partition plate is fixedly connected to the flow guiding plate. The partition plate can prevent the plurality of moving frames from piling up during the moving process.

[0014] Compared with the prior art, the present invention has the following beneficial effects: When the present invention performs casting processing on the nut, first, the mounting plate is clamped in the card slot, and the moving die is docked to the fixed die through the limit posts to complete the mold assembly. The fixed die, the moving die and the die core jointly form a plurality of separated nut cavities for the casting liquid to flow in. The present invention can complete the casting processing of a plurality of nuts at one time, has a high degree of integration, and improves the efficiency of nut processing.

[0015] After the mold is assembled, the driving motor is started. The output end of the driving motor drives the worm to rotate. Since the worm meshes with the worm wheel, the worm wheel and the transmission shaft fixedly connected to the inner side of the worm wheel are driven to rotate. Also, since a spur gear is fixedly connected to one end of the transmission shaft, and a rack meshes with the outer side of the spur gear, the rack is driven to move, so that the connecting plate fixedly connected to the rack can stably move under the guidance of the first guide groove. In addition, a plurality of sealing plates are fixedly connected to the bottom of the connecting plate, and the sealing plates correspond to the liquid inlet ports one by one. Therefore, a plurality of sealing plates can be driven to seal the plurality of liquid inlet ports. Subsequently, the casting liquid is conveyed into the liquid infusion tank through the infusion pipeline. The sealing plates seal the liquid inlet ports and enable the casting liquid to flow into the liquid infusion tank without splitting. When the casting liquid completely circulates inside the liquid infusion tank, the output end of the driving motor reverses and drives the sealing plates to move in the reverse direction through the connecting plate, so that the liquid inlet ports are opened and the casting liquid inside the liquid infusion tank can flow into different mold cavities through the plurality of liquid inlet ports at the same time, improving the diversion effect of the casting liquid. Compared with the prior art in which the casting liquid is sequentially diverted to both sides through a plurality of diversion pipelines and conveyed to different mold cavities, the present invention can enable the casting liquid to flow through a plurality of liquid inlet ports and be conveyed to different mold cavities through one infusion pipeline at the same time, improving the diversion effect of the casting liquid.

[0016] When the output end of the driving motor drives a plurality of sealing plates to seal a plurality of liquid inlet ports in the present invention, the transmission shaft, as a transmission structure for power transmission, rotates and operates. Since a first bevel gear is fixedly connected to the outer side of the transmission shaft, and a second bevel gear is meshed with the outer side of the first bevel gear, the second bevel gear and the transmission lead screw fixedly connected to the inner side of the second bevel gear are driven to rotate. Then, under the action of the lead screw nut and the second guide groove, the sliding seat can stably move downward and squeeze the diversion plate through the pressing plate, causing the spring to compress. When the casting liquid completely circulates inside the liquid infusion tank and the driving motor reverses and drives the sealing plates to move in the reverse direction through the connecting plate, the pressing plate moves upward and disengages from the diversion plate, and the compressed spring starts to vibrate and gradually returns to its original position. The diversion plate swings under the action of the spring, so that the diversion plate can squeeze the casting liquid inside the liquid infusion tank, thereby accelerating the flow of the casting liquid through the liquid inlet port into the mold cavity and improving the diversion effect of the casting liquid.

[0017] During the process of the diversion plate swinging under the action of the spring in the present invention, since a plurality of guide frames are fixedly connected to the bottom of the diversion plate, a sliding groove is formed inside each guide frame, a moving frame is slidably connected to the inside of the sliding groove, and a plurality of flow-pushing plates are fixedly connected to the bottom of the moving frame. Therefore, when the diversion plate moves downward and squeezes the casting liquid, the diversion plate drives a plurality of flow-pushing plates arranged at the bottom into the casting liquid. At this time, the moving frame moves in the direction of the flow channel under the action of the force, so that the plurality of flow-pushing plates push the casting liquid in the direction of the flow channel, which can accelerate the conveying efficiency of the casting liquid and improve the diversion effect of the casting liquid.

[0018] In addition, the present invention is provided with a linkage structure, so that a driving motor can achieve the linkage effects of "simultaneously flowing the casting liquid through a plurality of liquid inlets and transporting it to different mold cavities through an infusion pipeline", "the deflector can extrude the casting liquid inside the infusion tank, thereby accelerating the flow of the casting liquid into the mold cavity through the liquid inlets", and "a plurality of flow pusher plates push the casting liquid to move towards the flow channel direction, which can accelerate the transportation efficiency of the casting liquid". While having powerful functions, it is also convenient for subsequent maintenance of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] In order to more clearly illustrate the technical solutions in the embodiments of the invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0020] The present invention will be further described below in conjunction with the drawings and embodiments.

[0021] Figure 1 is the overall front view structural schematic diagram of the present invention; Figure 2 is the split structural schematic diagram of the present invention; Figure 3 is the overall rear view structural schematic diagram of the present invention; Figure 4 is the partial structural schematic Figure 1 ; Figure 5 is the Figure 4 magnified structural schematic diagram at A in the present invention; Figure 6 is the partial structural schematic Figure 2 ; Figure 7 is the overall side view structural schematic diagram of the present invention; Figure 8 is the partial structural schematic Figure 3 ; Figure 9 is the partial structural schematic Figure 4 ; Figure 10 is the Figure 9 magnified structural schematic diagram at B in the present invention.

[0022] Description of the reference numerals: 1. Fixed mold; 2. Movable mold; 3. Limit post; 4. Mounting plate; 5. Card slot; 6. Partition plate; 7. Mold core; 8. Liquid inlet; 9. Flow guiding mechanism; 901. Liquid infusion tank; 902. Driving box; 903. Driving motor; 904. Worm; 905. Worm gear; 906. Transmission shaft; 907. Straight gear; 908. Rack; 909. First guiding groove; 910. Connecting plate; 911. Sealing plate; 912. Liquid infusion pipeline; 913. First control valve; 914. First bevel gear; 915. Second bevel gear; 916. Transmission lead screw; 917. Lead screw nut; 918. Sliding seat; 919. Pressing plate; 920. Flow guiding plate; 921. Spring; 922. Second guiding groove; 923. Baffle plate; 924. Guide frame; 925. Sliding groove; 926. Moving frame; 927. Flow pushing plate. Detailed implementation manners

[0023] The following further describes in detail the implementation manners of the present invention in conjunction with the drawings and embodiments. The following embodiments are used to illustrate the present invention, but cannot be used to limit the scope of the present invention.

[0024] In the description of the present invention, unless otherwise specified, "a plurality of" means two or more; the orientation or positional relationship indicated by the terms "upper", "lower", "left", "right", "inner", "outer", "front end", "rear end", "head", "tail", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the present invention. In addition, the terms "first", "second", "third", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0025] In the description of the present invention, it should be noted that unless otherwise clearly specified and defined, the terms "connected" and "connected" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0026] Refer to the attached Figures 1 - 10, the present invention provides an integrated casting device for nut processing, including a fixed mold 1. Above the fixed mold 1, there is a movable mold 2. A limiting column 3 is fixedly connected to the top of the fixed mold 1. An installation plate 4 is arranged inside the fixed mold 1. A card slot 5 is opened on one side of the fixed mold 1. The installation plate 4 is inserted into the card slot 5. A plurality of partition plates 6 and mold cores 7 are fixedly connected to the outer side of the installation plate 4. A plurality of liquid inlets 8 are opened at the lower end of the installation plate 4. A diversion mechanism 9 is arranged on one side of the fixed mold 1; the diversion mechanism 9 includes a liquid infusion box 901 fixedly connected to the outer side of the fixed mold 1. Inside the liquid infusion box 901, there is a movable connecting plate 910. A plurality of sealing plates 911 are fixedly connected to the bottom of the connecting plate 910. The sealing plates 911 correspond to the liquid inlets 8 one by one. A spring 921 is arranged inside the liquid infusion box 901. One end of the spring 921 is connected to a diversion plate 920.

[0027] Preferably, the diversion mechanism 9 further includes a driving box 902 fixedly connected to the outer wall of the liquid infusion box 901. A driving motor 903 is fixedly installed on the outer wall of the driving box 902. The output end of the driving motor 903 is fixedly connected to a worm 904. A worm gear 905 is meshed on the outer side of the worm 904. A transmission shaft 906 is fixedly connected to the inner side of the worm gear 905. A spur gear 907 is fixedly connected to the outer side of the transmission shaft 906. A rack 908 is meshed on the outer side of the spur gear 907. The rack 908 is fixedly connected to the connecting plate 910.

[0028] In this embodiment, when the driving motor 903 is started, the output end of the driving motor 903 will drive the worm 904 to rotate. Because the worm 904 is meshed with the worm gear 905, the worm gear 905 and the transmission shaft 906 fixedly connected to the inner side of the worm gear 905 will be driven to rotate. Also, because a spur gear 907 is fixedly connected to one end of the transmission shaft 906 and the rack 908 is meshed on the outer side of the spur gear 907, the rack 908 is driven to move, so that the connecting plate 910 fixedly connected to the rack 908 can move. In addition, a plurality of sealing plates 911 are fixedly connected to the bottom of the connecting plate 910, and the sealing plates 911 correspond to the liquid inlets 8 one by one. Therefore, a plurality of sealing plates 911 can be driven to seal a plurality of liquid inlets 8. Additionally, when the driving motor 903 rotates in reverse, the plurality of sealing plates 911 can move in the reverse direction to reset and open the plurality of liquid inlets 8.

[0029] Preferably, a first guiding groove 909 is opened at the upper end of the liquid infusion box 901. The connecting plate 910 is slidably connected to the first guiding groove 909.

[0030] In this embodiment, the connecting plate 910 will slide in the first guiding groove 909 during the moving process. The first guiding groove 909 has a limiting and guiding effect on the connecting plate 910, and thus can improve the moving effect of the connecting plate 910.

[0031] Preferably, the flow guiding mechanism 9 further includes a first bevel gear 914 fixedly connected to the outside of the transmission shaft 906. The first bevel gear 914 is located inside the drive box 902. A second bevel gear 915 is meshed with the outside of the first bevel gear 914. A transmission lead screw 916 is fixedly connected to the inside of the second bevel gear 915. A lead screw nut 917 is arranged on the outside of the transmission lead screw 916. A sliding seat 918 is arranged on the outside of the lead screw nut 917. One end of the sliding seat 918 is fixedly connected to a pressing plate 919, and the pressing plate 919 can extrude the flow guiding plate 920.

[0032] In this embodiment, when the transmission shaft 906 rotates, the transmission lead screw 916 can be driven to rotate. Then, under the action of the lead screw nut 917 and the second guiding groove 922, the sliding seat 918 can stably move downward and drive the pressing plate 919 to extrude the flow guiding plate 920, causing the spring 921 to be compressed. In addition, when the motor rotates in reverse, the pressing plate 919 moves upward and disengages from the flow guiding plate 920, and the compressed spring 921 starts to vibrate. The flow guiding plate 920 swings under the action of the spring 921, so that the flow guiding plate 920 can extrude the casting liquid inside the infusion tank 901, thereby accelerating the casting liquid to flow into the mold cavity through the liquid inlet 8.

[0033] Preferably, a second guiding groove 922 is formed inside the drive box 902, and the pressing plate 919 is slidably connected to the second guiding groove 922.

[0034] In this embodiment, during the movement of the pressing plate 919, it will slide in the second guiding groove 922. The second guiding groove 922 has a limiting and guiding effect on the pressing plate 919, enabling the pressing plate 919 to move stably.

[0035] Preferably, one end of the infusion tank 901 is fixedly connected to an infusion pipeline 912, and a first control valve 913 is arranged on the infusion pipeline 912.

[0036] In this embodiment, the first control valve 913 can open the infusion pipeline 912, and the infusion pipeline 912 facilitates the transportation of the external casting liquid into the infusion tank 901.

[0037] Preferably, a plurality of guiding frames 924 are fixedly connected to the bottom of the flow guiding plate 920. The plurality of guiding frames 924 are distributed on both sides of the bottom of the flow guiding plate 920. A moving frame 926 is arranged inside the guiding frame 924, and a plurality of push flow plates 927 linearly distributed are fixedly connected to the outside of the moving frame 926.

[0038] In this embodiment, the movable moving frame 926 will move towards the direction of the flow channel under the action of force, so that the plurality of push flow plates 927 push the casting liquid towards the direction of the flow channel.

[0039] Preferably, a sliding groove 925 is formed inside the guiding frame 924, and both ends of the moving frame 926 are slidably connected to the sliding groove 925.

[0040] In this embodiment, the moving frame 926 can slide within the sliding groove 925, and the sliding groove 925 has a limiting and guiding effect, improving the moving effect of the moving frame 926.

[0041] Preferably, a partition plate 923 is provided between multiple guiding frames 924. The partition plate 923 is fixedly connected to the flow guiding plate 920, and the partition plate 923 can prevent the multiple moving frames 926 from piling up during movement.

[0042] In this embodiment, by providing a partition plate 923 between multiple guiding frames 924, the moving frame 926 will not slide out of the sliding groove 925 formed inside the corresponding guiding frame 924, and it can prevent the multiple moving frames 926 from piling up during movement.

[0043] Working principle of this device: Step 1: When the present invention performs casting processing on nuts, first, the mounting plate 4 is clamped in the card slot 5, and the moving die 2 is docked to the fixed die 1 through the limit posts 3 to complete the die assembly. The fixed die 1, the moving die 2, and the die core 7 jointly form multiple separate nut cavities for the inflow of casting liquid. The present invention can complete the casting processing of multiple nuts at one time, has a high degree of integration, and improves the efficiency of nut processing.

[0044] Step 2: After the mold is assembled in the present invention, the driving motor 903 is started. The output end of the driving motor 903 drives the worm 904 to rotate. Since the worm 904 meshes with the worm gear 905, the worm gear 905 and the transmission shaft 906 fixedly connected to the inner side of the worm gear 905 are driven to rotate. Also, since a spur gear 907 is fixedly connected to one end of the transmission shaft 906, and a rack 908 meshes with the outside of the spur gear 907, the rack 908 is driven to move, so that the connecting plate 910 fixedly connected to the rack 908 can stably move under the guidance of the first guide groove 909. In addition, a plurality of sealing plates 911 are fixedly connected to the bottom of the connecting plate 910, and the sealing plates 911 correspond to the liquid inlet ports 8 one by one. Therefore, a plurality of sealing plates 911 can be driven to seal the plurality of liquid inlet ports 8. Subsequently, the casting liquid is conveyed into the liquid infusion tank 901 through the liquid infusion pipeline 912. The sealing plates 911 seal the liquid inlet ports 8 and enable the casting liquid to flow into the liquid infusion tank 901 without splitting. When the casting liquid completely circulates inside the liquid infusion tank 901, the output end 903 of the driving motor reverses and drives the sealing plates 911 to move in the reverse direction through the connecting plate 910, so that the liquid inlet ports 8 are opened and the casting liquid inside the liquid infusion tank 901 can simultaneously flow into different mold cavities through the plurality of liquid inlet ports 8, improving the diversion effect of the casting liquid. Compared with the prior art in which the casting liquid is sequentially diverted to both sides through a plurality of diversion pipelines and conveyed to different mold cavities, the present invention can enable the casting liquid to flow through a plurality of liquid inlet ports 8 simultaneously through a single liquid infusion pipeline 912 and be conveyed to different mold cavities, improving the diversion effect of the casting liquid.

[0045] Step 3: When the output end of the driving motor 903 drives a plurality of sealing plates 911 to seal the plurality of liquid inlet ports 8 in the present invention, the transmission shaft 906, as a transmission structure for power transmission, rotates and operates. Since a first bevel gear 914 is fixedly connected to the outside of the transmission shaft 906, and a second bevel gear 915 is meshed with the outside of the first bevel gear 914, the second bevel gear 915 and the transmission lead screw 916 fixedly connected to the inner side of the second bevel gear 915 are driven to rotate. Then, under the action of the lead screw nut 917 and the second guide groove 922, the sliding seat 918 can stably move downward and squeeze the diversion plate 920 through the pressing plate 919, causing the spring 921 to be compressed. When the casting liquid completely circulates inside the liquid infusion tank 901, when the driving motor 903 reverses and drives the sealing plates 911 to move in the reverse direction through the connecting plate 910, the pressing plate 919 moves upward and disengages from the diversion plate 920. The compressed spring 921 starts to vibrate and gradually returns to its original position. The diversion plate 920 swings under the action of the spring 921, enabling the diversion plate 920 to squeeze the casting liquid inside the liquid infusion tank 901, thereby accelerating the flow of the casting liquid into the mold cavity through the liquid inlet port 8 and improving the diversion effect of the casting liquid.

[0046] Step 4: During the swinging process of the flow guide plate 920 of the present invention under the action of the spring 921, since a plurality of guide frames 924 are fixedly connected to the bottom of the flow guide plate 920, a sliding groove 925 is formed inside each guide frame 924, a moving frame 926 is slidably connected inside the sliding groove 925, and a plurality of flow pushing plates 927 are fixedly connected to the bottom of the moving frame 926. Therefore, when the flow guide plate 920 moves downward and squeezes the casting liquid, the flow guide plate 920 will drive a plurality of flow pushing plates 927 arranged at the bottom into the casting liquid. At this time, the moving frame 926 will move in the direction of the flow channel under the action of force, so that the plurality of flow pushing plates 927 push the casting liquid in the direction of the flow channel, which can accelerate the conveying efficiency of the casting liquid and improve the guiding effect of the casting liquid.

[0047] Step 5: In addition, the present invention is provided with a linkage structure, so that a driving motor 903 can achieve the linkage effects of "simultaneously flowing the casting liquid through a plurality of liquid inlets 8 through an infusion pipeline 912 and conveying it to different mold cavities", "the flow guide plate 920 can squeeze the casting liquid inside the infusion tank 901, thereby accelerating the casting liquid flowing into the mold cavity through the liquid inlet 8", and "a plurality of flow pushing plates 927 push the casting liquid in the direction of the flow channel, which can accelerate the conveying efficiency of the casting liquid". It has powerful functions and is also convenient for subsequent maintenance of the equipment.

[0048] The embodiments of the present invention are given for the purposes of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are chosen and described in order to better explain the principles of the present invention and its practical applications, and to enable those of ordinary skill in the art to understand the present invention and design various embodiments with various modifications suitable for specific purposes.

Claims

1. An integrated casting device for nut processing, characterized in that, It includes a fixed mold (1), above which a moving mold (2) is arranged. A limit post (3) is fixedly connected to the top of the fixed mold (1). An installation plate (4) is arranged inside the fixed mold (1). A card slot (5) is formed on one side of the fixed mold (1). The installation plate (4) is inserted into the card slot (5). A plurality of partition plates (6) and mold cores (7) are fixedly connected to the outer side of the installation plate (4). A plurality of liquid inlets (8) are formed at the lower end of the installation plate (4). A diversion mechanism (9) is arranged on one side of the fixed mold (1). The diversion mechanism (9) includes an infusion box (901) fixedly connected to the outer side of the fixed mold (1). A movable connecting plate (910) is arranged inside the infusion box (901). A plurality of sealing plates (911) are fixedly connected to the bottom of the connecting plate (910). The sealing plates (911) correspond to the liquid inlets (8) one by one. A spring (921) is arranged inside the infusion box (901). One end of the spring (921) is connected to a diversion plate (920).

2. An integrated casting device for nut processing according to claim 1, characterized in that, The diversion mechanism (9) further includes a driving box (902) fixedly connected to the outer wall of the infusion box (901). A driving motor (903) is fixedly installed on the outer wall of the driving box (902). The output end of the driving motor (903) is fixedly connected to a worm (904). A worm gear (905) is meshed outside the worm (904). A transmission shaft (906) is fixedly connected to the inner side of the worm gear (905). A spur gear (907) is fixedly connected to the outer side of the transmission shaft (906). A rack (908) is meshed outside the spur gear (907). The rack (908) is fixedly connected to the connecting plate (910).

3. An integrated casting device for nut processing according to claim 2, characterized in that, A first guiding groove (909) is formed at the upper end of the infusion box (901). The connecting plate (910) is slidably connected to the first guiding groove (909).

4. An integrated casting device for nut processing according to claim 2, characterized in that, The diversion mechanism (9) further includes a first bevel gear (914) fixedly connected to the outer side of the transmission shaft (9)06). The first bevel gear (914) is located inside the driving box (902). A second bevel gear (915) is meshed outside the first bevel gear (914). A transmission lead screw (916) is fixedly connected to the inner side of the second bevel gear (915). A lead screw nut (917) is arranged outside the transmission lead screw (916). A sliding seat (918) is arranged outside the lead screw nut (917). One end of the sliding seat (918) is fixedly connected to a pressing plate (919). The pressing plate (919) can press the diversion plate (920).

5. An integrated casting device for nut processing according to claim 4, characterized in that, A second guiding groove (922) is formed inside the driving box (902). The pressing plate (919) is slidably connected to the second guiding groove (922).

6. An integrated casting device for nut processing according to claim 1, characterized in that, One end of the infusion box (901) is fixedly connected to an infusion pipeline (912). A first control valve (913) is arranged on the infusion pipeline (912).

7. An integrated casting device for nut processing according to claim 1, characterized in that, A plurality of guide frames (924) are fixedly connected to the bottom of the flow deflector (920). The plurality of guide frames (924) are distributed on both sides of the bottom of the flow deflector (920). A moving frame (926) is arranged inside the guide frame (924), and a plurality of linearly distributed flow pushing plates (927) are fixedly connected to the outside of the moving frame (926).

8. An integrated casting device for nut processing according to claim 7, characterized in that, A sliding groove (925) is formed inside the guide frame (924), and both ends of the moving frame (926) are slidably connected to the sliding groove (925).

9. An integrated casting device for nut processing according to claim 7, characterized in that, A partition plate (923) is arranged between the plurality of guide frames (924). The partition plate (923) is fixedly connected to the flow deflector (920), and the partition plate (923) can prevent the plurality of moving frames (926) from piling up during the moving process.