Chip loading and feeding device for radiator production
By designing a sheet loading and loading device including a base, a support column, a rotating column and a clamping mechanism, the simultaneous clamping and circulating loading of sheets is realized while multi-piece heat sinks are clamped and recirculated, the problem that existing devices cannot clamp multiple heat sinks at one time and improve production efficiency.
Patent Information
- Application Number
- CN202422350617.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-26
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-09-26
AI Technical Summary
The existing radiator radiator sheet loading device cannot clamp multiple radiators at one time, and the operation is complicated and cumbersome, making it difficult to meet the production needs of the insert radiator.
A loading and loading device including a base, a support column, a rotating column, a support plate and a clamping mechanism is designed. Through the synergy between the cylinder and the motor, multiple heat sinks are clamped and circulated to load the sheet at the same time. The silicone sheet is used to increase friction and fix the heat sink, and the motor drives the clamping mechanism to rotate and switch.
The number of radiator fins and the efficiency of loading and loading of sheets are improved, the operation process is simplified, and the production efficiency of radiator is significantly improved.
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Figure CN223238078U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of radiator production, in particular to a chip loading and unloading device for radiator production. Background Art
[0002] In the production process of radiators, loading and discharging is an important step. This step is mainly to place the heat sink accurately in the specified position for subsequent assembly and processing. This is not only an important step in radiator production, but also a key link to ensure product quality. With the development of technology, the automation and intelligence of loading and discharging are also constantly improving, which is of great significance for improving production efficiency and reducing costs. In the production process of radiators, the process steps of loading and discharging are included. This process is usually carried out by a belt conveyor, and then the original part is placed at the work station by an electric lifting hanger. Due to the complex structure of the hanger and the cumbersome operation, the loading efficiency is low and the practicality is poor.
[0003] To solve this problem, the application number CN202222326312.4 proposes a sheet loading device for radiator production, which mainly uses a hydraulic cylinder to assist in lifting and lowering to drive the material to the loading station, including a bearing seat, a bracket, an empty slot, a first articulated frame, a first articulated shaft, a first articulated block, a hydraulic cylinder, a telescopic rod, a second articulated frame, a second articulated block, a second articulated shaft, a third articulated frame, a third articulated shaft, a third articulated block, a connecting frame, a clamping cylinder and a clamping plate. The top end of the bearing seat is rotatably connected to the bottom end of the bracket, an empty slot is provided on the upper side of the bracket, the top end of the bracket is connected to the bottom end of the second articulated frame, the second articulated frame is movably connected to the second articulated block via the second articulated shaft, the right side of the second articulated block is connected to the left end of the connecting device, the right end of the connecting device is connected to the left end of the connecting frame, and the bottom of the connecting frame The end is connected to the top of the clamping cylinder, and the output end of the clamping cylinder is connected to the top of the clamping piece. When taking materials, the hydraulic cylinder contracts the telescopic rod, and the first hinge block in the first hinge frame is movably constrained by the first hinge shaft, and the third hinge block in the third hinge frame is movably constrained by the third hinge shaft, and through the connecting device, the second hinge block is constrained by the second hinge shaft in the second hinge frame, so that the connecting device drives the connecting frame downward, and then the bracket rotates under the constraint of the bearing seat, so that the clamping cylinder controls the clamping piece to clamp and take materials, and then the hydraulic cylinder extends the telescopic rod again, so that the connecting device drives the connecting frame to rise, so that the material rises, and then the bracket is constrained to rotate through the bearing seat to move the material to the loading station. The hydraulic cylinder assists in lifting and driving the material to the loading station, which has a simpler structure, convenient operation, and improved practicality.
[0004] However, the radiator loading and feeding device in the existing patent can only clamp one radiator at a time when using the clamping cylinder and the clamping plate for clamping, and cannot transfer multiple radiators at a time. For example, the insert radiator is composed of multiple radiators, and each radiator is first embedded into the small groove on the bottom plate of the radiator through the loading and feeding device. After sorting, it is tightly connected to the radiator base by using external pressure. The clamping device used above cannot meet this requirement, and the existing loading and feeding device continuously performs reciprocating operations during operation, and the process is relatively complicated and tedious. Utility Model Content
[0005] In response to the above technical problems, the utility model provides a chip loading and unloading device for radiator production, characterized in that it includes a base, a support column, a rotating column, a support plate, and a clamping mechanism. A bearing seat is fixed to the middle of the top of the base, a support column is provided on the bearing seat, the bearing seat is rotatably connected to the support column, a rotating column is fixed to the top of the support column, a plurality of connecting plates are fixed to the rotating column, a support plate is fixed to the bottom of each connecting plate, a cylinder a and a cylinder b are installed at the bottom of the support plate, and a clamping mechanism is fixed to the bottom of the cylinder a and the cylinder b;
[0006] The clamping mechanism consists of a pushing structure, a connecting frame, and a right fixed plate. The pushing structure and the right fixed plate are respectively fixed at both ends of the bottom of the connecting frame.
[0007] The connecting frame is composed of a top plate, a left side plate and a right side plate, and the top plate, the left side plate and the right side plate are an integrated structure;
[0008] The pushing structure is composed of a left fixed plate, a cylinder c, a moving block, a moving column, and a push plate. The interior of the left fixed plate is a hollow structure, which is the inner cavity of the left fixed plate. The inner cavity of the left fixed plate is provided with a cylinder C, a moving block, and a moving column. The moving block is fixed to the output end of the cylinder c. A plurality of moving columns are fixed on one side of the moving block. A push plate is fixed to the bottom of each moving column. The push plate is a regular tetrahedron structure. A groove is provided on one side of the push plate. A plurality of holes are provided on the side of the left fixed plate close to the moving column. The moving column passes through the holes on the left fixed plate and is connected to the push plate.
[0009] A plurality of grooves are formed on one side of the right fixing plate, and silicone sheets are fixed in the grooves on the right fixing plate;
[0010] The grooves on the push plate and the grooves on the right fixed plate are slightly larger than the thickness of a single heat sink, and the grooves on the push plate and the grooves on the right fixed plate are parallel to each other;
[0011] A motor is installed inside the base, and an output shaft of the motor is fixedly connected to the support column.
[0012] Beneficial effects of the utility model:
[0013] The utility model adds a clamping mechanism, which realizes the simultaneous clamping of multiple heat sinks by cooperating with the pushing structure and the right fixed plate. When the heat sink is clamped in the radiator production, the conveyor line regularly conveys the heat sink. When the heat sink moves to the position of the first groove on the push plate, cylinders a and b are started at the same time. Cylinders a and b are activated to move the clamping mechanism downward. When the clamping mechanism reaches the bottom and the heat sink is inserted into the groove in the push plate, cylinder c is started. The action of cylinder c causes the moving block to drive the moving column to move. The moving block pushes the push plate, so that the heat sink is pushed by the push plate. The push plate moves to the groove of the right fixed plate to complete the clamping of a single heat sink. The silicone sheet fixed in the groove of the right fixed plate squeezes the heat sink into the groove of the right fixed plate due to the placement of the silicone sheet. This not only applies extrusion force to the heat sink, but also increases the friction between the heat sink and the groove of the right fixed plate, thereby fixing the heat sink. Cylinders a and b are activated again to move the clamping mechanism upward. When the clamping mechanism needs to clamp the next heat sink, the above action is repeated, so that the heat sink is sequentially inserted into the groove on the push plate and the groove on the right fixed plate, thereby achieving the clamping of multiple heat sinks.
[0014] The utility model drives the clamping mechanism under the cylinder a and the cylinder b to rotate by the action of the motor to realize the switching of the clamping mechanism and complete the cyclic loading and feeding of the heat sink. When the radiator is loaded and fed, when the heat sink clamped by the clamping mechanism reaches the upper limit, the motor is started, and the support column rotates under the control of the bearing seat, so that the rotating column controls the clamping mechanism to rotate and switch through the support plate, so that the clamping mechanism that has finished taking the material can load the material, and the next clamping mechanism can clamp a new round of heat sinks. At the same time, when the feeding position is reached, the cylinder a and the cylinder b are actuated to move the clamping mechanism downward. When the heat sink on the clamping mechanism is inserted into the small groove of the radiator bottom plate, the cylinder c is started. The action of the cylinder c causes the moving block to drive the moving column to move, and the moving block pulls the push plate to separate the heat sink from the clamping mechanism, thereby realizing the loading and feeding of the radiator.
[0015] This cyclical operation is used to realize the loading and unloading of radiators in production, which not only increases the number of radiators clamped, but also improves the efficiency of loading and unloading, greatly saves time, and significantly improves the efficiency of radiator production. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a schematic diagram of the overall structure of a chip loading and unloading device for radiator production according to the utility model;
[0017] Figure 2 This is a schematic diagram of the structure of the wafer loading device and the front side of the conveyor line of a wafer loading device for radiator production according to the utility model;
[0018] Figure 3 This is a schematic structural diagram of the rear position of the feeding device and the conveyor line of a chip loading device for radiator production according to the utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the clamping mechanism of a chip loading device for radiator production according to the utility model;
[0020] Figure 5 This is a structural diagram of component A of a chip loading and unloading device for radiator production according to the utility model;
[0021] Figure 6 This is a top view of the driving structure of a chip loading and unloading device for radiator production according to the utility model;
[0022] As shown in the figure: 1. Base; 2. Bearing seat; 3. Support column; 4. Rotating column; 5. Connecting plate; 6. Support plate; 7. Cylinder a; 8. Clamping mechanism; 9. Conveyor line; 10. Pushing structure; 11. Connecting frame; 12. Right fixed plate; 13. Push plate; 14. Left fixed plate; 15. Cylinder c; 16. Moving block; 17. Moving column. DETAILED DESCRIPTION
[0023] The following is a clear and complete description of the technical solution of the present invention in conjunction with the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present invention.
[0024] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating positions or relationships, are based on the positions or relationships shown in the accompanying drawings and are intended solely to facilitate the description of this utility model and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0025] In the description of the present invention, it should be noted that, unless otherwise clearly specified and limited, the terms "installed", "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 a direct connection, or it can be indirectly connected through an intermediate medium, or it can be internal communication between two components. For ordinary technicians in this field, the specific meanings of the above terms in the present invention can be understood according to specific circumstances. In addition, the technical features involved in the different embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0026] Example 1
[0027] like Figures 1 to 6 As shown, the utility model provides a chip loading device for radiator production, which is characterized by comprising a base 1, a support column 3, a rotating column 4, a support plate 6, and a clamping mechanism 8. A bearing seat 2 is fixed to the middle of the top of the base 1, and a support column 3 is provided on the bearing seat 2. The bearing seat 2 is rotatably connected to the support column 3. A rotating column 4 is fixed to the top of the support column 3. A plurality of connecting plates 5 are fixed to the rotating column 4. A support plate 6 is fixed to the bottom of each connecting plate 5. A cylinder a7 and a cylinder b are installed at the bottom of the support plate 6. The clamping mechanism 8 is fixed to the bottom of the cylinder a7 and the cylinder b.
[0028] The clamping mechanism 8 is composed of a pushing structure 10, a connecting frame 11, and a right fixed plate 12. The pushing structure 10 and the right fixed plate 12 are fixed to both ends of the bottom of the connecting frame 11 respectively.
[0029] The connecting frame 11 is composed of a top plate, a left side plate, and a right side plate, and the top plate, the left side plate, and the right side plate are an integrated structure;
[0030] The pushing structure 10 is composed of a left fixed plate 14, a cylinder c15, a moving block 16, a moving column 17, and a push plate 13. The interior of the left fixed plate 14 is a hollow structure, which is the inner cavity of the left fixed plate 14. The inner cavity of the left fixed plate 14 is provided with a cylinder c15, a moving block 16, and a moving column 17. The moving block 16 is fixed to the output end of the cylinder c15. A plurality of moving columns 17 are fixed to one side of the moving block 16. The bottom of each moving column 17 is fixed to the push plate 13. The push plate 13 is a regular tetrahedron structure. A groove is provided on one side of the push plate 13. A plurality of holes are provided on the side of the left fixed plate 14 close to the moving column 17. The moving column 17 passes through the holes on the left fixed plate 14 and is connected to the push plate 13.
[0031] A plurality of grooves are formed on one side of the right fixing plate 12, and silicone sheets are fixed in the grooves on the right fixing plate 12;
[0032] The grooves on the push plate 13 and the grooves on the right fixed plate 12 are slightly larger than the thickness of a single heat sink, and the grooves on the push plate 13 and the grooves on the right fixed plate 12 are parallel to each other;
[0033] A motor is installed inside the base 1 , and the output shaft of the motor is fixedly connected to the support column 3 .
[0034] Example 2
[0035] When using the utility model, the pushing structure 10 and the right fixed plate 12 in the clamping mechanism 8 cooperate to achieve simultaneous clamping of multiple heat sinks. In the heat sink clamping process in the radiator production, when the heat sink moves to the first groove position on the push plate 13 through the conveyor line, the cylinder a7 and the cylinder b are started. The cylinder a7 and the cylinder b are moved to move the clamping mechanism downward. When the heat sink is inserted into the groove in the push plate 13, the cylinder c15 is started. The cylinder c15 moves to drive the moving block 16 to move. The moving block 16 moves. The action drives the moving column 17 to move, and the action of the moving column 17 drives the push plate 13 to move. The push plate 13 pushes the heat sink to move into the groove of the right fixed plate 12. The cylinder a7 and the cylinder b act again to move the clamping mechanism 8 upward. When the heat sink moves to the second groove position on the push plate 13 through the conveyor line, the clamping mechanism 8 clamps the next heat sink and repeats the above action to make the clamping mechanism 8 insert the heat sink into the groove on the push plate 13 and the groove on the right fixed plate 12 in turn, and finally realize the clamping of multiple heat sinks.
[0036] Example 3
[0037] When using the utility model, the motor is driven to rotate the clamping mechanism under the cylinder a7 and the cylinder b to realize the switching of the clamping mechanism 8, and the cyclic loading and unloading of the heat sink is completed. In the process of loading and unloading the radiator, the motor is started, and the motor action drives the support column 3 to rotate under the control of the bearing seat 2. The action of the support column 3 drives the rotation column 4 to move, and the action of the rotation column 4 drives the connection plate 5 to move. The action of the connection plate 5 causes the support plate 6 to drive the clamping mechanism 8 to rotate, and finally completes the switching of the clamping mechanism 8, so that the next clamping mechanism 8 performs a new round of clamping of the heat sink, and at the same time, the clamping mechanism 8 that has finished taking the material is loaded. When it reaches the upper After the material is in position, start cylinder a7 and cylinder b. Cylinder a7 and cylinder b are in action to move the clamping mechanism 8 downward. When the heat sink on the clamping mechanism 8 is inserted into the small groove of the bottom plate of the radiator, start cylinder c15. Cylinder c15 is in action to make the moving block 16 drive the moving column 17 to move. The moving block 16 pulls the push plate 13 to separate the heat sink from the clamping mechanism 8. Cylinder a7 and cylinder b are in action again to move the clamping mechanism 8 upward. At the same time, the clamping mechanism 8 that has taken out the material repeats the above action to make the clamping mechanism 8 insert the heat sink into the small groove of the bottom plate of the radiator one by one. This cycle of operation is repeated to realize the loading and unloading of the radiator in production.
[0038] The above shows and describes the basic principles, main features and advantages of the present invention. The various components mentioned in the present invention are common technologies in the existing field. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The above embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and improvements may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and improvements fall within the scope of the present invention. The scope of protection claimed in this utility model is defined by the appended claims and their equivalents.
Claims
1. A radiator production loading device, characterized in that It includes a base, a support column, a rotating column, a support plate, and a clamping mechanism. A bearing seat is fixed to the middle of the top of the base, a support column is provided on the bearing seat, the bearing seat is rotatably connected to the support column, a rotating column is fixed to the top of the support column, a plurality of connecting plates are fixed on the rotating column, a support plate is fixed to the bottom of each connecting plate, a cylinder a and a cylinder b are installed at the bottom of the support plate, and a clamping mechanism is fixed to the bottom of the cylinder a and the cylinder b.
2. A radiator production loading and unloading device according to claim 1, characterized in that The clamping mechanism consists of a pushing structure, a connecting frame, and a right fixed plate. The pushing structure and the right fixed plate are respectively fixed to the two ends of the bottom of the connecting frame.
3. A radiator production loading and unloading device according to claim 2, characterized in that The connecting frame is composed of a top plate, a left side plate and a right side plate, and the top plate, the left side plate and the right side plate are an integrated structure.
4. A radiator production loading and unloading device according to claim 2, characterized in that The pushing structure consists of a left fixed plate, a cylinder C, a moving block, a moving column, and a push plate. The interior of the left fixed plate is a hollow structure, which is the inner cavity of the left fixed plate. The inner cavity of the left fixed plate is provided with a cylinder C, a moving block, and a moving column. The moving block is fixed to the output end of the cylinder C. Multiple moving columns are fixed on one side of the moving block. A push plate is fixed to the bottom of each moving column. The push plate is a regular tetrahedron structure. A groove is provided on one side of the push plate. Multiple holes are provided on the side of the left fixed plate close to the moving column. The moving column is connected to the push plate through the holes on the left fixed plate.
5. A radiator production loading and unloading device according to claim 3, characterized in that A plurality of grooves are provided on one side of the right fixing plate, and silicone sheets are fixed in the grooves on the right fixing plate.
6. A radiator production loading and unloading device according to claim 4, characterized in that The grooves on the push plate and the grooves on the right fixed plate are slightly larger than the thickness of a single heat sink, and the grooves on the push plate and the grooves on the right fixed plate are parallel to each other.
7. The chip loading device for heat sink production according to claim 1, characterized in that A motor is installed inside the base, and an output shaft of the motor is fixedly connected to the support column.
Citation Information
Patent Citations
Chip loading and feeding device for radiator production
CN218641889U