Novel dry mill
By using precise positioning and automated control in the diamond and triangular blade processing modes, the problems of inaccurate positioning and low automation in traditional blade processing equipment have been solved, enabling high-precision, low-cost, and diversified blade production.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-23
- Publication Date
- 2026-03-27
AI Technical Summary
Traditional blade processing equipment lacks precise positioning and clamping, leading to blade displacement, low processing accuracy, high defect rate, low automation, increased labor intensity for workers, and impact on production efficiency and quality stability.
It adopts a diamond and triangular blade machining mode, and achieves precise positioning and stable clamping through the synergistic action of positioning cylinder and extrusion cylinder. The cutting trajectory is controlled by a servo motor, and the equipment has a high degree of automation, integrating diamond and triangular blade machining functions.
It improves the precision and consistency of blade processing, reduces the defect rate, reduces manual intervention, improves production efficiency and product quality stability, and saves equipment procurement costs and workshop space.
Smart Images

Figure CN121733353A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of blade processing, in particular to a new dry grinder. BACKGROUND
[0002] In the field of blade processing and manufacturing, the quality and processing precision of blades directly affect their performance and service life. Traditional blade processing equipment often has single function, and a device can usually only process blades of a specific shape, such as only processing rhombic blades or triangular blades, which leads to the need for enterprises to purchase multiple devices when producing blades of different shapes, increasing the cost of equipment procurement and the occupation of workshop space.
[0003] In the processing process of traditional processing equipment, the positioning and clamping of blades are not accurate and stable enough, which is easy to cause blade displacement in the cutting process, thereby affecting the processing precision, leading to large blade size deviation and high scrap rate. Moreover, in the cutting operation link, the motion control of the cutting head of the traditional equipment is not flexible enough, and it is difficult to realize cutting of complex trajectories, which has limitations for processing of blades with special shape requirements. In addition, the automation degree of the traditional equipment is low, and many operations need manual intervention, such as clamping of blades, advancement and resetting of cutting heads, which not only increases the labor intensity of workers, but also reduces the production efficiency, and manual operation has certain errors, which further affects the consistency and quality stability of blade processing. SUMMARY
[0004] The purpose of the present application is to solve the problems of traditional processing equipment in the processing process, such as the positioning and clamping of blades are not accurate and stable enough, which is easy to cause blade displacement in the cutting process, thereby affecting the processing precision, leading to large blade size deviation and high scrap rate. Moreover, in the cutting operation link, the motion control of the cutting head of the traditional equipment is not flexible enough, and it is difficult to realize cutting of complex trajectories, which has limitations for processing of blades with special shape requirements. In addition, the automation degree of the traditional equipment is low, and many operations need manual intervention, such as clamping of blades, advancement and resetting of cutting heads, which not only increases the labor intensity of workers, but also reduces the production efficiency, and manual operation has certain errors, which further affects the consistency and quality stability of blade processing, and a new dry grinder is proposed.
[0005] In order to achieve the above-mentioned application purpose, the present application provides the following technical scheme: The present application is as follows: It includes rhombic blade processing mode and triangular blade processing mode. The diamond-shaped blade processing mode includes a main support frame. A movable support plate is horizontally mounted on the top surface of the main support frame. A bottom mold is horizontally fixedly connected to the top surface of the movable support plate. A support frame body is vertically fixedly connected to the top surface of the movable support plate. An extrusion top mold is horizontally mounted on the bottom surface of the support frame body. An extrusion cylinder is vertically fixedly mounted on the top surface of the support frame body. Side moving plates are symmetrically connected horizontally to the top surface of the main support frame. A conveyor body is horizontally fixedly connected to the top surface of the side moving plates. Push cylinders are symmetrically and horizontally fixedly connected to the sides of the main support frame. A head is fixedly connected to the output ends of the two conveyor bodies. The top of the side moving plates... A power motor is fixedly connected horizontally to the main support frame. A transmission belt is sleeved on the output end of the power motor. A second head is fixedly connected to the output ends of the two transmission bodies. Side cylinders are fixedly connected horizontally and symmetrically to both sides of the main support frame. A control panel is fixedly connected to the top surface of the main support frame. A control box is fixedly connected to the side of the main support frame. A rear motor is fixedly installed horizontally on one side of the main support frame. A transmission screw is horizontally inserted into the top surface of the main support frame. Guide rails are fixedly connected horizontally and symmetrically to the top surface of the main support frame. A locking block is fixedly connected symmetrically to the bottom surface of the movable tray. A mating connecting block is fixedly welded to the bottom surface of the movable tray. The triangular blade processing mode includes a main support frame, with support columns vertically and symmetrically fixed to the top surface of the main support frame. A fixed top plate is horizontally fixed to the top of the support columns. A positioning cylinder is vertically fixed to the top surface of the fixed top plate. A three-sided top mold is horizontally arranged on the bottom surface of the fixed top plate. A three-sided bottom mold is horizontally fixed to the top surface of the main support frame. An extender is vertically connected to the bottom surface of the three-sided bottom mold. A toggle rod is vertically connected to the top of the extender. An arc-shaped groove is formed through the top surface of the three-sided bottom mold. A top panel is fixedly arranged on the top surface of the fixed top plate. A main moving plate is horizontally arranged on the top surface of the main support frame. An auxiliary moving plate is symmetrically connected to the top surface of the main moving plate. An auxiliary machine is horizontally fixedly connected to the top surface of the auxiliary moving plate. An auxiliary motor is horizontally fixedly connected to the top surface of the auxiliary moving plate. A power belt is connected to the output end of the auxiliary motor. A processing cutter head is fixedly connected to the output end of the auxiliary machine. Auxiliary push rods are symmetrically fixedly arranged on both sides of the main moving plate. A main motor is fixedly arranged on one side of the main support frame. A toggle cylinder is horizontally connected to the top surface of the main support frame. A top guide rail is horizontally fixedly connected to the top surface of the main support frame. A screw hole block is fixedly welded to the bottom surface of the main moving plate. An auxiliary screw is horizontally fixedly connected to the output end of the main motor.
[0006] As a preferred technical solution of the present invention, the movable pallet is slidably connected to the top surface of the guide rail via a locking block on the bottom surface, the movable pallet is horizontally positioned at the center line of the top surface of the main support frame, and the bottom mold is horizontally fixedly connected to the center line of the top surface of the movable pallet in the form of a diamond-shaped blade.
[0007] As a preferred technical solution of the present invention, the support frame is L-shaped and is vertically fixedly connected to one end of the center line of the top surface of the movable pallet. The output end of the extrusion cylinder extends vertically downward and is fixedly connected to the center of the top surface of the extrusion top die. The extrusion top die and the bottom die are arranged in parallel and superimposed on each other. The diamond-shaped blade material plate is horizontally clamped by the extrusion top die and the bottom die.
[0008] As a preferred technical solution of the present invention, there are four side moving plates, and the four side moving plates are arranged in pairs and parallel to each other on both sides of the top surface of the main support frame. The transmission body is horizontally fixedly connected to the center of the top surface of the side moving plates. The output end of the push cylinder is horizontally fixedly connected to the side of the two side moving plates. The first head is fixedly connected to the output end of the two transmission bodies that are symmetrically arranged between each other.
[0009] As a preferred technical solution of the present invention, the power motor is fixedly connected to the top plate of the four side moving plates, and the output end of the power motor is connected to the input end of the transmission body through the transmission belt. The second head is fixedly connected to the output ends of the two transmission bodies near the rear motor.
[0010] As a preferred technical solution of the present invention, the output end of the side cylinder is horizontally fixedly connected to the side of the other two side moving plates, the control panel and the control main box are electrically connected to each other, the rear motor is horizontally fixedly connected to the center of the top side of the main support frame, the output end of the rear motor is horizontally fixedly connected to one end of the transmission screw, the guide rails are arranged in parallel to each other, and the side screw hole of the connecting block is threadedly connected to the outer side of the transmission screw.
[0011] As a preferred technical solution of the present invention, the support columns are fixedly and symmetrically arranged on the top surface of the main support frame near the two corners. The fixed top plate and the top surface of the main support frame are arranged in parallel and superimposed. The positioning cylinder is fixedly connected to the center of the top surface of the fixed top plate, and the output end of the positioning cylinder is fixedly connected to the top surface of the three-sided top mold.
[0012] As a preferred technical solution of the present invention, the three-sided top mold and the three-sided bottom mold are arranged in parallel and superimposed on each other. The three-sided bottom mold is shaped like a triangular blade. The triangular blade material plate is clamped and fixed between the three-sided top mold and the three-sided bottom mold. The bottom end of the extender is connected to the output end of the actuating cylinder. The top end of the actuating rod is inserted through the inner side of the arc-shaped groove. The arc-shaped groove is arc-shaped and opened on the top surface of the three-sided bottom mold near the edge.
[0013] As a preferred technical solution of the present invention, the main moving plate is slidably connected to the top surface of the top guide rail via a bottom locking block. There are two auxiliary moving plates, which are symmetrically connected to the top side of the main moving plate via a track. The auxiliary machine and the auxiliary motor are arranged in parallel to each other, and their shafts are connected by a power belt. The output end of the auxiliary push rod is horizontally fixedly connected to the side of the auxiliary moving plate, and the screw hole of the screw hole block is threadedly connected to the outer side of the auxiliary screw.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows: In the solution of this invention: 1. In the diamond-shaped blade processing mode, the precise positioning and stable clamping of the diamond-shaped blade material plate can be achieved through the coordinated action of the positioning cylinder and the extrusion cylinder (6). In the triangular blade processing mode, the cooperation of components such as the lifting cylinder and the ejection cylinder also ensures the accurate positioning of the triangular blade during the processing. Stable clamping and precise positioning effectively avoid blade displacement during the cutting process, greatly improve the processing accuracy of the blade, and result in small dimensional deviations in the processed blades, good product consistency, and a significant reduction in the defect rate, thereby improving the overall quality of the product and enhancing the company's competitiveness in the market.
[0015] 2. This equipment offers flexible control during the cutting process. In the machining of rhomboid inserts, the servo motor precisely controls the movement of the movable support plate (2) according to the set parameters, thereby achieving precise control of the cutting trajectory and enabling precise cutting of both ends of the rhomboid insert. In the machining of triangular inserts, the servo motor drives the cutting head to the set data via the lead screw component, and can rotate the insert according to the different positions of the three corners of the triangular insert via components such as the tension cylinder, repeating the cutting operation to meet the machining requirements of complex shapes of triangular inserts. This flexible cutting control method allows the equipment to adapt to the machining of inserts of various shapes and specifications, providing strong support for the diversified production of enterprise products.
[0016] 3. The entire equipment operation process is highly automated. From product positioning and clamping to the starting, advancing, cutting, and resetting of the cutting head, most operations are completed automatically, reducing manual intervention. This not only reduces the labor intensity of workers but also avoids errors caused by manual operation, improving production efficiency and product quality stability. Simultaneously, the automated production process enables continuous operation, further shortening the production cycle and increasing the company's production capacity and economic benefits. The new dry grinding mill integrates both rhomboid and triangular blade processing modes, eliminating the need for companies to purchase separate blade processing equipment with different functions. A single machine can meet the diverse blade production needs. This not only significantly saves on equipment procurement costs but also reduces workshop space occupancy and improves production site utilization, which is of great significance for companies to reduce production costs and optimize production layout. Attached Figure Description
[0017] Figure 1 This is a front view schematic diagram of the diamond-shaped blade processing mode provided by the present invention; Figure 2 This is a bottom view schematic diagram of the diamond-shaped blade processing mode provided by the present invention; Figure 3 This is a side view of the diamond-shaped blade machining mode provided by the present invention. Figure 4 This is a rear view structural diagram of the diamond-shaped blade processing mode provided by the present invention. Figure 5 A schematic diagram of the separate bottom view structure for the diamond-shaped blade processing mode provided by the present invention; Figure 6 A front view structural diagram of the triangular blade machining mode provided by the present invention; Figure 7 A schematic diagram of the left-side structure of the triangular blade machining mode provided by the present invention; Figure 8 A rear view structural diagram of the triangular blade machining mode provided by the present invention; Figure 9 A top view schematic diagram of the triangular blade machining mode provided by the present invention; Figure 10 The diagram is a right-side view of the triangular blade machining mode provided by the present invention.
[0018] The image shows: 1. Main support frame; 2. Movable pallet; 3. Bottom mold; 4. Support frame body; 5. Extrusion top mold; 6. Extrusion cylinder; 7. Side moving plate; 8. Conveyor body; 9. Push cylinder; 10. Head 1; 11. Power motor; 12. Conveyor belt; 13. Head 2; 14. Side cylinder; 15. Control panel; 16. Main control box; 17. Rear motor; 18. Conveyor screw; 19. Guide rail; 20. Locking block; 21. Connecting block; 22. 23. Support column; 24. Fixed top plate; 25. Positioning cylinder; 26. Three-sided top mold; 27. Three-sided bottom mold; 28. Extender; 29. Actuating rod; 30. Arc groove; 31. Top panel; 32. Main moving plate; 33. Auxiliary moving plate; 34. Auxiliary machine; 35. Auxiliary motor; 36. Power belt; 37. Processing cutter head; 38. Auxiliary push rod; 39. Main motor; 40. Actuating cylinder; 41. Top guide rail; 42. Screw hole block; 43. Auxiliary screw. Detailed Implementation
[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0020] Example 1: like Figures 1-5 As shown, the present invention provides a technical solution: a novel dry grinding mill, including a diamond-shaped blade processing mode and a triangular blade processing mode; The diamond-shaped blade processing mode includes a main support frame 1, a movable pallet 2 horizontally mounted on the top surface of the main support frame 1, a bottom mold 3 horizontally fixedly connected to the top surface of the movable pallet 2, the movable pallet 2 being slidably connected to the top surface of the guide rail 19 via a locking block 20 on the bottom surface, the movable pallet 2 being horizontally positioned at the center line of the top surface of the main support frame 1, the bottom mold 3 being a diamond-shaped blade horizontally fixedly connected to the center line of the top surface of the movable pallet 2, a support frame 4 vertically fixedly connected to the top surface of the movable pallet 2, an extrusion top mold 5 horizontally mounted on the bottom surface of the support frame 4, an extrusion cylinder 6 vertically fixedly mounted on the top surface of the support frame 4, the support frame 4 being L-shaped, and the vertical fixed connection of the support frame 4 being positioned at one end of the center line of the top surface of the movable pallet 2, the output end of the extrusion cylinder 6 extending vertically downwards and fixedly connected to the top surface of the extrusion top mold 5. At the center, the extrusion top die 5 and bottom die 3 are arranged in parallel and stacked. The diamond-shaped blade material plate is horizontally clamped by the extrusion top die 5 and bottom die 3. The top surface of the main support frame 1 is horizontally and symmetrically connected to the side moving plate 7. The top surface of the side moving plate 7 is horizontally and fixedly connected to the conveyor body 8. The side of the main support frame 1 is symmetrically and horizontally fixedly connected to the push cylinder 9. The output ends of the two conveyor bodies 8 are fixedly connected to the head 10. There are four side moving plates 7, and the four side moving plates 7 are arranged in pairs and parallel to each other on both sides of the top surface of the main support frame 1. The conveyor body 8 is horizontally and fixedly connected to the center of the top surface of the side moving plate 7. The output end of the push cylinder 9 is horizontally and fixedly connected to the side of the two side moving plates 7. The head 10 is fixedly connected to the output ends of the two conveyor bodies 8 that are symmetrically arranged.
[0021] Through the coordinated action of the positioning cylinder and the extrusion cylinder 6, precise positioning and stable clamping of the rhomboid blade material plate can be achieved. During the processing of the rhomboid blade, the servo motor precisely controls the movement of the movable support plate 2 according to the set parameters, thereby achieving precise control of the cutting trajectory and enabling precise cutting of both ends of the rhomboid blade.
[0022] Example 2: like Figures 1-5 As shown, the present invention provides a technical solution: a novel dry grinding mill, including a diamond-shaped blade processing mode and a triangular blade processing mode; The diamond-shaped blade processing mode includes a main support frame 1, a movable pallet 2 horizontally mounted on the top surface of the main support frame 1, a bottom mold 3 horizontally fixedly connected to the top surface of the movable pallet 2, the movable pallet 2 being slidably connected to the top surface of the guide rail 19 via a locking block 20 on the bottom surface, the movable pallet 2 being horizontally positioned at the center line of the top surface of the main support frame 1, the bottom mold 3 being a diamond-shaped blade horizontally fixedly connected to the center line of the top surface of the movable pallet 2, a support frame 4 vertically fixedly connected to the top surface of the movable pallet 2, an extrusion top mold 5 horizontally mounted on the bottom surface of the support frame 4, and an extrusion cylinder 6 vertically fixedly mounted on the top surface of the support frame 4, the support frame 4 being L-shaped and vertically fixedly connected to the top surface of the movable pallet 2. At one end of the center line, the output end of the extrusion cylinder 6 extends vertically downward and is fixedly connected to the center of the top surface of the extrusion die 5. The extrusion die 5 and the bottom die 3 are arranged in parallel and stacked. The diamond-shaped blade material plate is horizontally clamped by the extrusion die 5 and the bottom die 3. The top surface of the main support frame 1 is horizontally and symmetrically connected to the side moving plates 7. The top surface of the side moving plates 7 is horizontally and fixedly connected to the conveyor body 8. The sides of the main support frame 1 are symmetrically and horizontally fixedly connected to the push cylinders 9. The output ends of the two conveyor bodies 8 are fixedly connected to the head 10. There are four side moving plates 7, and the four side moving plates 7 are arranged in pairs and parallel to each other on both sides of the top surface of the main support frame 1. The conveyor body 8 is horizontally and fixedly connected to the side moving plates 7. At the center of the top surface of plate 7, the output end of the push cylinder 9 is horizontally and fixedly connected to the side of the two side moving plates 7. The first head 10 is fixedly connected to the output end of the two symmetrically arranged transmission bodies 8. The top surface of the side moving plate 7 is horizontally and fixedly connected to the power motor 11. The output end of the power motor 11 is sleeved with the transmission belt body 12. The output ends of the two transmission bodies 8 are fixedly connected to the second head 13. The power motor 11 is fixedly connected to the top plate of the four side moving plates 7, and the output end of the power motor 11 is connected to the input end of the transmission body 8 through the transmission belt body 12. The second head 13 is fixedly connected to the output ends of the two transmission bodies 8 near the rear motor 17. The two sides of the main support frame 1 are horizontally aligned. The main support frame 1 is fixedly connected to a side cylinder 14. A control panel 15 is fixedly connected to the top surface of the main support frame 1. A control box 16 is fixedly connected to the side of the main support frame 1. A rear motor 17 is horizontally fixedly mounted on one side of the main support frame 1. A transmission screw 18 is horizontally inserted into the top surface of the main support frame 1. Guide rails 19 are horizontally and symmetrically fixedly connected to the top surface of the main support frame 1. A locking block 20 is symmetrically fixedly connected to the bottom surface of the movable pallet 2. A mating block 21 is welded to the bottom surface of the movable pallet 2. The output end of the side cylinder 14 is horizontally fixedly connected to the side of the other two side movable plates 7. The control panel 15 and the control box 16 are electrically connected to each other. The rear motor 17 is horizontally fixedly connected to the center of the top side of the main support frame 1.The output end of the rear motor 17 is horizontally fixedly connected to one end of the transmission screw 18. Guide rails 19 are arranged parallel to each other and are threadedly connected to the side screw holes of the connecting block 21 on the outer side of the transmission screw 18.
[0023] In terms of operation, the equipment is equipped with a control panel 15 and a main control box 16, which allows operators to control various functions and set parameters of the equipment through simple operation, reducing the difficulty of operation and improving the convenience and operability of production.
[0024] Example 3: like Figures 1-10 As shown, the present invention provides a technical solution: a novel dry grinding mill, including a diamond-shaped blade processing mode and a triangular blade processing mode; The diamond-shaped blade processing mode includes a main support frame 1, a movable pallet 2 horizontally mounted on the top surface of the main support frame 1, a bottom mold 3 horizontally fixedly connected to the top surface of the movable pallet 2, the movable pallet 2 being slidably connected to the top surface of the guide rail 19 via a locking block 20 on the bottom surface, the movable pallet 2 being horizontally positioned at the center line of the top surface of the main support frame 1, the bottom mold 3 being a diamond-shaped blade horizontally fixedly connected to the center line of the top surface of the movable pallet 2, a support frame 4 vertically fixedly connected to the top surface of the movable pallet 2, an extrusion top mold 5 horizontally mounted on the bottom surface of the support frame 4, and an extrusion cylinder 6 vertically fixedly mounted on the top surface of the support frame 4, the support frame 4 being L-shaped and vertically fixedly connected to the top surface of the movable pallet 2. At one end of the center line, the output end of the extrusion cylinder 6 extends vertically downward and is fixedly connected to the center of the top surface of the extrusion die 5. The extrusion die 5 and the bottom die 3 are arranged in parallel and stacked. The diamond-shaped blade material plate is horizontally clamped by the extrusion die 5 and the bottom die 3. The top surface of the main support frame 1 is horizontally and symmetrically connected to the side moving plates 7. The top surface of the side moving plates 7 is horizontally and fixedly connected to the conveyor body 8. The sides of the main support frame 1 are symmetrically and horizontally fixedly connected to the push cylinders 9. The output ends of the two conveyor bodies 8 are fixedly connected to the head 10. There are four side moving plates 7, and the four side moving plates 7 are arranged in pairs and parallel to each other on both sides of the top surface of the main support frame 1. The conveyor body 8 is horizontally and fixedly connected to the side moving plates 7. At the center of the top surface of plate 7, the output end of the push cylinder 9 is horizontally and fixedly connected to the side of the two side moving plates 7. The first head 10 is fixedly connected to the output end of the two symmetrically arranged transmission bodies 8. The top surface of the side moving plate 7 is horizontally and fixedly connected to the power motor 11. The output end of the power motor 11 is sleeved with the transmission belt body 12. The output ends of the two transmission bodies 8 are fixedly connected to the second head 13. The power motor 11 is fixedly connected to the top plate of the four side moving plates 7, and the output end of the power motor 11 is connected to the input end of the transmission body 8 through the transmission belt body 12. The second head 13 is fixedly connected to the output ends of the two transmission bodies 8 near the rear motor 17. The two sides of the main support frame 1 are horizontally aligned. The main support frame 1 is fixedly connected to a side cylinder 14. A control panel 15 is fixedly connected to the top surface of the main support frame 1. A control box 16 is fixedly connected to the side of the main support frame 1. A rear motor 17 is horizontally fixedly mounted on one side of the main support frame 1. A transmission screw 18 is horizontally inserted into the top surface of the main support frame 1. Guide rails 19 are horizontally and symmetrically fixedly connected to the top surface of the main support frame 1. A locking block 20 is symmetrically fixedly connected to the bottom surface of the movable pallet 2. A mating block 21 is welded to the bottom surface of the movable pallet 2. The output end of the side cylinder 14 is horizontally fixedly connected to the side of the other two side movable plates 7. The control panel 15 and the control box 16 are electrically connected to each other. The rear motor 17 is horizontally fixedly connected to the center of the top side of the main support frame 1.The output end of the rear motor 17 is horizontally fixedly connected to one end of the transmission screw 18. Guide rails 19 are arranged parallel to each other and are threadedly connected to the side screw holes of the connecting block 21 on the outer side of the transmission screw 18. The triangular blade machining mode includes a main support frame 1. Support columns 22 are vertically and symmetrically fixedly connected to the top surface of the main support frame 1. A fixed top plate 23 is horizontally fixedly connected to the top of the support columns 22. A positioning cylinder 24 is vertically fixedly connected to the top surface of the fixed top plate 23. A three-sided top mold 25 is horizontally arranged on the bottom surface of the fixed top plate 23. The support columns 22 are parallel and symmetrically fixedly arranged near the two corners of the top surface of the main support frame 1. The fixed top plate 23 and the top surface of the main support frame 1 are arranged in a superimposed parallel arrangement. The positioning cylinder 24 is vertically fixedly connected to the center of the top surface of the fixed top plate 23, and the output end of the positioning cylinder 24 extends and is fixedly connected to the top surface of the three-sided top mold 25. A three-sided bottom mold 26 is horizontally fixed on the top surface of the mold 1. An extender 27 is vertically connected to the bottom surface of the three-sided bottom mold 26. A toggle rod 28 is vertically connected to the top of the extender 27. An arc-shaped groove 29 is opened through the top surface of the three-sided bottom mold 26. The three-sided top mold 25 and the three-sided bottom mold 26 are arranged in parallel and superimposed on each other. The three-sided bottom mold 26 is shaped like a triangular blade. The triangular blade material plate is clamped and fixed between the three-sided top mold 25 and the three-sided bottom mold 26. The bottom end of the extender 27 is connected to the output end of the toggle cylinder 39. The top of the toggle rod 28 is inserted through the inner side of the arc-shaped groove 29. The arc-shaped groove 29 is opened in an arc shape on the top surface of the three-sided bottom mold 26 near the edge.
[0025] In the machining of triangular inserts, the servo motor drives the cutting head to the set data through the lead screw component, and can rotate the insert according to the different positions of the three corners of the triangular insert through components such as the tension cylinder, and repeatedly perform cutting operations, thus meeting the machining requirements of complex shapes of triangular inserts.
[0026] Example 4: like Figures 1-10 As shown, the present invention provides a technical solution: a novel dry grinding mill, including a diamond-shaped blade processing mode and a triangular blade processing mode; The diamond-shaped blade processing mode includes a main support frame 1, a movable pallet 2 horizontally mounted on the top surface of the main support frame 1, a bottom mold 3 horizontally fixedly connected to the top surface of the movable pallet 2, the movable pallet 2 being slidably connected to the top surface of the guide rail 19 via a locking block 20 on the bottom surface, the movable pallet 2 being horizontally positioned at the center line of the top surface of the main support frame 1, the bottom mold 3 being a diamond-shaped blade horizontally fixedly connected to the center line of the top surface of the movable pallet 2, a support frame 4 vertically fixedly connected to the top surface of the movable pallet 2, an extrusion top mold 5 horizontally mounted on the bottom surface of the support frame 4, and an extrusion cylinder 6 vertically fixedly mounted on the top surface of the support frame 4, the support frame 4 being L-shaped and vertically fixedly connected to the top surface of the movable pallet 2. At one end of the center line, the output end of the extrusion cylinder 6 extends vertically downward and is fixedly connected to the center of the top surface of the extrusion die 5. The extrusion die 5 and the bottom die 3 are arranged in parallel and stacked. The diamond-shaped blade material plate is horizontally clamped by the extrusion die 5 and the bottom die 3. The top surface of the main support frame 1 is horizontally and symmetrically connected to the side moving plates 7. The top surface of the side moving plates 7 is horizontally and fixedly connected to the conveyor body 8. The sides of the main support frame 1 are symmetrically and horizontally fixedly connected to the push cylinders 9. The output ends of the two conveyor bodies 8 are fixedly connected to the head 10. There are four side moving plates 7, and the four side moving plates 7 are arranged in pairs and parallel to each other on both sides of the top surface of the main support frame 1. The conveyor body 8 is horizontally and fixedly connected to the side moving plates 7. At the center of the top surface of plate 7, the output end of the push cylinder 9 is horizontally and fixedly connected to the side of the two side moving plates 7. The first head 10 is fixedly connected to the output end of the two symmetrically arranged transmission bodies 8. The top surface of the side moving plate 7 is horizontally and fixedly connected to the power motor 11. The output end of the power motor 11 is sleeved with the transmission belt body 12. The output ends of the two transmission bodies 8 are fixedly connected to the second head 13. The power motor 11 is fixedly connected to the top plate of the four side moving plates 7, and the output end of the power motor 11 is connected to the input end of the transmission body 8 through the transmission belt body 12. The second head 13 is fixedly connected to the output ends of the two transmission bodies 8 near the rear motor 17. The two sides of the main support frame 1 are horizontally aligned. The main support frame 1 is fixedly connected to a side cylinder 14. A control panel 15 is fixedly connected to the top surface of the main support frame 1. A control box 16 is fixedly connected to the side of the main support frame 1. A rear motor 17 is horizontally fixedly mounted on one side of the main support frame 1. A transmission screw 18 is horizontally inserted into the top surface of the main support frame 1. Guide rails 19 are horizontally and symmetrically fixedly connected to the top surface of the main support frame 1. A locking block 20 is symmetrically fixedly connected to the bottom surface of the movable pallet 2. A mating block 21 is welded to the bottom surface of the movable pallet 2. The output end of the side cylinder 14 is horizontally fixedly connected to the side of the other two side movable plates 7. The control panel 15 and the control box 16 are electrically connected to each other. The rear motor 17 is horizontally fixedly connected to the center of the top side of the main support frame 1.The output end of the rear motor 17 is horizontally fixedly connected to one end of the transmission screw 18. Guide rails 19 are arranged parallel to each other and are threadedly connected to the side screw holes of the connecting block 21 on the outer side of the transmission screw 18. The triangular blade machining mode includes a main support frame 1, with support columns 22 vertically and symmetrically fixedly connected to the top surface of the main support frame 1. A fixed top plate 23 is horizontally fixedly connected to the top of the support columns 22. A positioning cylinder 24 is vertically fixedly connected to the top surface of the fixed top plate 23. A three-sided top mold 25 is horizontally arranged on the bottom surface of the fixed top plate 23. The support columns 22 are symmetrically and parallelly fixedly arranged on the top surface of the main support frame 1 near two corners. The fixed top plate 23 and the top surface of the main support frame 1 are arranged in a superimposed parallel arrangement. The positioning cylinder 24 is vertically fixedly connected to the center of the top surface of the fixed top plate 23, and the output end of the positioning cylinder 24 extends and is fixedly connected to the top surface of the three-sided top mold 25. A three-sided bottom mold 26 is horizontally fixed on the top surface of the main support frame 1. An extender 27 is vertically connected to the bottom surface of the three-sided bottom mold 26. A toggle rod 28 is vertically connected to the top of the extender 27. An arc-shaped groove 29 is formed through the top surface of the three-sided bottom mold 26. The three-sided top mold 25 and the three-sided bottom mold 26 are arranged in parallel and stacked. The three-sided bottom mold 26 is shaped like a triangular blade. The triangular blade material plate is clamped and fixed between the three-sided top mold 25 and the three-sided bottom mold 26. The bottom end of the extender 27 is connected to the output end of the toggle cylinder 39. The top of the toggle rod 28 is inserted through the inner side of the arc-shaped groove 29. The arc-shaped groove 29 is formed in the arc shape of the three-sided bottom mold 26. Near the edge of the top surface, a top panel 30 is fixedly installed on the top surface of the fixed top plate 23. A main moving plate 31 is horizontally installed on the top surface of the main support frame 1. An auxiliary moving plate 32 is symmetrically connected to the top surface of the main moving plate 31. An auxiliary machine 33 is horizontally fixedly connected to the top surface of the auxiliary moving plate 32. An auxiliary motor 34 is horizontally fixedly connected to the top surface of the auxiliary moving plate 32. A power belt 35 is connected to the output end of the auxiliary motor 34. A processing cutter head 36 is fixedly connected to the output end of the auxiliary machine 33. Auxiliary push rods 37 are symmetrically fixedly installed on both sides of the main moving plate 31. A main motor 38 is fixedly installed on one side of the main support frame 1. A toggle cylinder 39 is horizontally connected to the top surface of the main support frame 1. A top guide rail 40 is symmetrically fixedly connected. A screw hole block 41 is fixedly welded to the bottom surface of the main moving plate 31. An auxiliary screw 42 is horizontally fixedly connected to the output end of the main motor 38. The main moving plate 31 is slidably connected to the top surface of the top guide rail 40 through a locking block on the bottom surface. There are two auxiliary moving plates 32, and the two auxiliary moving plates 32 are symmetrically connected to the top surface of the main moving plate 31 on both sides through a track. The auxiliary machine 33 and the auxiliary motor 34 are arranged in parallel to each other, and their shafts are connected to each other through a power belt 35. The output end of the auxiliary push rod 37 is horizontally fixedly connected to the side of the auxiliary moving plate 32. The screw hole thread on the side of the screw hole block 41 is connected to the outer side of the auxiliary screw 42.
[0027] By integrating both rhomboid and triangular blade processing modes, companies no longer need to purchase two different blade processing machines; a single machine can meet diverse blade production needs. This not only significantly reduces equipment procurement costs but also minimizes workshop space usage and improves production site utilization.
[0028] Working principle: Rhomboid blade machining mode Equipment Start-up and Product Positioning: After the equipment enters automatic mode and starts, the positioning cylinder begins to work, clamping the diamond-shaped blade material plate and accurately positioning it in the designated position, providing a precise positioning basis for subsequent processing. The extrusion cylinder 6 starts, its output end extending vertically downwards, pushing the extrusion die 5 downwards. This, in conjunction with the bottom die 3, horizontally clamps and fixes the diamond-shaped blade material plate, ensuring the blades do not shift during cutting and guaranteeing processing accuracy. The No. 1 and No. 2 cutting heads connected to the No. 1 head 10 and No. 2 head 13 begin to rotate. Simultaneously, the related propulsion cylinders, presumably the transmission body 8 and other components, begin to work in tandem to propel the No. 1 and No. 2 cutting heads to the designated positions. Subsequently, the rear motor 17 and other servo motors begin to operate according to preset parameters, pushing the movable support plate 2 horizontally through the transmission screw 18 and other transmission components. The movable support plate 2 drives the bottom die 3 and the clamped diamond-shaped blade material plate together, causing the No. 1 and No. 2 cutting heads to perform cutting operations on both sides of one end of the diamond-shaped blade. Once the servo motor has reached its designated position according to the set data, both sides of one end of the diamond-shaped blade have been cut. At this point, cutting heads 1 and 2 reset their push cylinders, causing them to leave the product and stop rotating. Simultaneously, cutting heads 3 and 4 begin rotating, and their push cylinders operate, bringing them to their designated positions. The servo motor then operates again according to the set parameters, pushing the product in the opposite direction, causing cutting heads 3 and 4 to cut the other side of the product. After the servo motor reaches its position, cutting heads 3 and 4 stop working, and their push cylinders reset. Finally, the servo motor returns to its origin, the compression cylinder 6 resets, and the product clamping components reset, completing the entire diamond-shaped blade cutting process.
[0029] Triangular blade machining mode After the equipment enters automatic mode and starts, the positioning cylinder presses down to prepare for subsequent processing. The lifting cylinder moves to the center of the mold, triggering a sensor signal. The ejector cylinder extender 27, connected to the actuating cylinder 39, then begins operation, similar to an ejection function. The ejector cylinder extends, causing the product part to trigger the product positioning signal. At this time, the cutting head 36 rotates, and the cylinder auxiliary push rod 37 and other related cylinders push the cutting head forward into position. The servo motor, main motor 38, and other components enable servo function, driving the cutting head to the set data via the auxiliary screw 42 and other lead screw components to complete the cutting operation on one corner of the triangular blade. After the servo motor reaches its position, the cutting head advance cylinder retracts, and the servo motor simultaneously returns to its original position. The ejector cylinder rises again, the stretching cylinder operates, causing the triangular blade to rotate and move to another corner. The above actions are then repeated—cutting head rotation, advance, servo motor-driven cutting, and reset—to complete the cutting operation on all three corners of the triangular blade. After all the corner cutting work is completed, the pressure cylinder retracts, and the operator can then remove the machined triangular blade, thus ending the entire triangular blade machining process.
[0030] All technical features in this embodiment can be freely combined according to actual needs.
[0031] The above embodiments are preferred implementations of the present invention. In addition, the present invention can be implemented in other ways. Any obvious substitutions without departing from the concept of the present technical solution are within the protection scope of the present invention.
[0032] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0033] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A new dry grinding machine, comprising a rhombic blade processing mode and a triangular blade processing mode; The rhombus blade processing mode comprises a main support frame (1), characterized in that, The top surface of the main support frame (1) is horizontally provided with a movable supporting plate (2), the top surface of the movable supporting plate (2) is horizontally and fixedly connected with a bottom mold (3), the top surface of the movable supporting plate (2) is vertically and fixedly connected with a support frame body (4), the bottom surface of the support frame body (4) is horizontally provided with an extrusion top die (5), the top surface of the support frame body (4) is vertically and fixedly provided with an extrusion cylinder (6), the top surface of the main support frame (1) is horizontally and symmetrically connected with a side moving plate (7), the top surface of the side moving plate (7) is horizontally and fixedly connected with a transmission machine body (8), the side edges of the main support frame (1) are horizontally and fixedly connected with a pushing cylinder (9), the output ends of the two transmission machine bodies (8) are fixedly connected with a first head (10), the top surface of the side moving plate (7) is horizontally and fixedly connected with a power motor (11), the output end of the power motor (11) is sleeved with a transmission belt body (12), the output ends of the two transmission machine bodies (8) are fixedly connected with a second head (13), the two side edges of the main support frame (1) are horizontally and fixedly connected with a side cylinder (14), the top surface of the main support frame (1) is fixedly connected with a control panel (15), the side edges of the main support frame (1) are fixedly connected with a control main box (16), one side edge of the main support frame (1) is horizontally and fixedly provided with a rear motor (17), the top surface of the main support frame (1) is horizontally inserted with a transmission screw (18), the top surface of the main support frame (1) is horizontally and symmetrically fixedly connected with a guide rail (19), the bottom surface of the movable supporting plate (2) is symmetrically and fixedly connected with a clamping block (20), and the bottom surface of the movable supporting plate (2) is fixedly welded with a matching connecting block (21). The triangular blade processing mode includes a main support frame (1), characterized in that the top surface of the main support frame (1) is vertically and symmetrically fixedly connected with a support column (22), the top end of the support column (22) is horizontally fixedly connected with a fixed top plate (23), the top surface of the fixed top plate (23) is vertically fixedly connected with a positioning air cylinder (24), the bottom surface of the fixed top plate (23) is horizontally provided with a three-edge top die (25), the top surface of the main support frame (1) is horizontally fixedly provided with a three-edge bottom die (26), the bottom surface of the three-edge bottom die (26) is vertically connected with an extender (27), the top end of the extender (27) is vertically connected with a poking insertion rod (28), the top surface of the three-edge bottom die (26) is throughly provided with an arc-shaped groove (29), the top surface of the fixed top plate (23) is fixedly provided with a top panel (30), the top surface of the main support frame (1) is horizontally provided with a main moving plate (31), the top surface of the main moving plate (31) is symmetrically connected with an auxiliary moving plate (32), the top surface of the auxiliary moving plate (32) is horizontally fixedly connected with an auxiliary machine (33), the top surface of the auxiliary moving plate (32) is horizontally fixedly connected with an auxiliary motor (34), the output end of the auxiliary motor (34) is connected with a power belt (35), the output end of the auxiliary machine (33) is fixedly connected with a processing tool bit (36), the two side edges of the main moving plate (31) are symmetrically fixedly provided with auxiliary push rods (37), one side edge of the main support frame (1) is fixedly provided with a main motor (38), the top surface of the main support frame (1) is horizontally connected with a poking air cylinder (39), the top surface of the main support frame (1) is horizontally and symmetrically fixedly connected with a top guide rail (40), the bottom surface of the main moving plate (31) is fixedly welded with a threaded hole block (41), the output end of the main motor (38) is horizontally fixedly connected with an auxiliary screw rod (42).
2. A novel dry mill as claimed in claim 1, wherein, The movable supporting plate (2) is slidingly connected with the clamping block (20) on the top surface of the guide rail (19), and is horizontally arranged at the center line position of the top surface of the main support frame (1).
3. A novel dry mill as claimed in claim 1, wherein, The support frame body (4) is arranged in an L shape, and is vertically fixedly arranged at one end of the center line position of the top surface of the movable supporting plate (2), and the output end of the extrusion air cylinder (6) is vertically and downwardly fixedly arranged at the center position of the top surface of the extrusion top die (5), and the extrusion top die (5) and the bottom die (3) are arranged in a superimposed and parallel manner, and the rhombic blade material plate is horizontally clamped by the extrusion top die (5) and the bottom die (3).
4. A novel dry mill as claimed in claim 1, wherein, The number of side moving plates (7) is four, and the four side moving plates (7) are arranged in parallel in two groups respectively on the two side edges of the top surface of the main support frame (1), the transmission body (8) is horizontally fixedly connected to the center position of the top surface of the side moving plate (7), the output end of the push cylinder (9) is horizontally fixedly connected to the side edge position of the two side moving plates (7), and the first head (10) is fixedly connected to the output end of the two transmission bodies (8) arranged symmetrically.
5. A novel dry mill as claimed in claim 1, wherein, The power motor (11) is fixedly connected to the top layer position of the four side moving plates (7), and the output end of the power motor (11) is power-connected to the input end of the transmission body (8) through the transmission belt body (12), and the second head (13) is fixedly connected to the output end of the two transmission bodies (8) close to the rear motor (17).
6. A novel dry mill according to claim 1, characterized by, The output end of the side cylinder (14) is horizontally fixedly connected to the side edge position of the other two side moving plates (7), the control panel (15) and the control main box (16) are electrically connected to each other, the rear motor (17) is horizontally fixedly connected to the center position of the top end of the side edge of the main support frame (1), the output end of the rear motor (17) is horizontally fixedly connected to one end of the transmission screw rod (18), the guide rails (19) are arranged in parallel with each other, and the side screw holes of the matching connecting blocks (21) are threadedly connected to the outer side edges of the transmission screw rod (18).
7. A novel dry mill as claimed in claim 1, wherein, The support columns (22) are fixedly arranged in parallel and symmetrically on the top surface of the main support frame (1) close to the two corner positions, the fixed top plate (23) and the top surface of the main support frame (1) are arranged in parallel in a superimposed manner, the positioning cylinder (24) is vertically fixedly connected to the center position of the top surface of the fixed top plate (23), and the output end of the positioning cylinder (24) is fixedly connected to the top surface of the three-edge top die (25).
8. A novel dry mill according to claim 1, characterized by, The three-edge top die (25) and the three-edge bottom die (26) are arranged in parallel in a superimposed manner, the three-edge bottom die (26) is in the shape of a triangular blade, the triangular blade material plate is clamped and fixed between the three-edge top die (25) and the three-edge bottom die (26), the bottom end of the extender (27) is connected to the output end of the shifting cylinder (39), the top end of the shifting rod (28) is inserted into the inner side edge of the arc-shaped groove (29) in a penetrating manner, and the arc-shaped groove (29) is arc-shapedly formed on the top surface of the three-edge bottom die (26) close to the edge position.
9. A novel dry mill as claimed in claim 1, wherein, The main moving plate (31) is slidably connected to the top surface of the top guide rail (40) through the clamping block on the bottom surface, the number of auxiliary moving plates (32) is two, and the two auxiliary moving plates (32) are symmetrically arranged on the two side edge positions of the top surface of the main moving plate (31) through the track connection, the auxiliary machine (33) and the auxiliary motor (34) are arranged in parallel with each other, and the shaft rods are power-connected to each other through the power belt (35), the output end of the auxiliary push rod (37) is horizontally fixedly connected to the side edge of the auxiliary moving plate (32), and the side screw holes of the screw hole block (41) are threadedly connected to the outer side edges of the auxiliary screw rod (42).