Numerical control tool producing and machining equipment capable of achieving automatic feeding and discharging

The automated loading and unloading CNC cutting tool production and processing equipment driven by a single motor utilizes a moving gear and bevel gear mechanism to realize the rotation and lifting of circular cutting tools, solving the problems of high cost and space occupation caused by the cooperation of multiple equipment, realizing automated material processing, and improving production efficiency and stability.

CN121017650AInactive Publication Date: 2025-11-28JIANGSU SHANKEN PRECISION TOOLS CO LTD
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Patent Information

Application Number
CN202511202856.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-27
Publication Date
2025-11-28
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing CNC tool manufacturing equipment requires multiple drive devices to work together, which increases procurement and maintenance costs, energy consumption, and occupies too much space, making it unable to meet the needs of small-scale or space-constrained production.

Method used

This CNC cutting tool production and processing equipment, driven by a single motor, achieves the rotation and lifting of the circular blade through a moving gear and bevel gear mechanism. Combined with the cooperation of the loading block and positioning plate, it realizes the automatic loading, unloading and cutting of materials, reducing the use of auxiliary mechanical parts.

Benefits of technology

It reduces energy consumption of drive equipment and the use of auxiliary mechanical components, reduces space occupation, realizes automated material processing, improves production efficiency and stability, and meets the needs of small-scale production.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of numerical control tool production and machining, in particular to numerical control tool production and machining equipment capable of achieving automatic feeding and discharging. The top end of the outer wall of the workbench is fixedly connected with a placing plate through a cylinder; a feeding mechanism is arranged at the top end of the outer wall of the placing plate; the top end of the outer wall of the workbench is fixedly connected with a square plate through a pair of square columns. A square shell is slidably connected to one side of the outer wall of the square plate; according to the cutting device, feeding is conducted through the feeding mechanism, after feeding is completed, a first motor drives a rotating shaft and a circular blade to rotate, then the rotating shaft drives a moving mechanism to operate, the circular blade moves, and materials are cut, due to the fact that cutting of the materials and lifting of the circular blade are completed through a single motor, use of driving equipment is reduced, and the cutting efficiency is improved. The energy consumption is reduced, the use of matched auxiliary mechanical parts is reduced, the occupied space is reduced, and the production requirements of small-scale production or workshops with limited space are met.
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Description

TECHNICAL FIELD

[0001] The application relates to the technical field of numerical control cutter production and machining, in particular to an automatic feeding and discharging numerical control cutter production and machining device. BACKGROUND

[0002] The numerical control cutter production and machining device is a machine tool specially designed for cutter manufacturing, and is widely applied to the batch production of precise cutters such as turning tools, milling tools, hobbing tools and gear cutters due to the advantages of cost optimization, efficiency improvement and space saving.

[0003] In the prior art, when cutters are cut and machined, the cutting blades are generally rotated through a driving device, and then the cutting blades are lifted and cut through the driving device, so that multiple driving devices are required to cooperate when the cutters are cut and machined, thereby increasing the procurement and maintenance costs of the driving devices, increasing the energy consumption, further increasing the cutter machining cost, and when the driving devices are used, the auxiliary mechanical parts need to be installed, the use of multiple devices increases the use of auxiliary mechanical parts, and more space resources are required, which cannot meet the production needs of small-scale production or limited space workshops. SUMMARY

[0004] The purpose of the present application is to solve the problem that when cutters are cut and machined, the cutting blades are generally rotated through a driving device, and then the cutting blades are lifted and cut through the driving device, so that multiple driving devices are required to cooperate when the cutters are cut and machined, thereby increasing the procurement and maintenance costs of the driving devices, increasing the energy consumption, further increasing the cutter machining cost, and when the driving devices are used, the auxiliary mechanical parts need to be installed, the use of multiple devices increases the use of auxiliary mechanical parts, and more space resources are required, which cannot meet the production needs of small-scale production or limited space workshops.

[0005] The purpose of the present application can be achieved by the following technical solutions:

[0006] An automatic feeding and discharging numerical control cutter production and machining device, comprising a workbench, a placing plate is fixed at the top of the outer wall of the workbench through a cylinder, a feeding mechanism is arranged at the top of the outer wall of the placing plate, a square plate is fixed at the top of the outer wall of the workbench through a pair of square columns, a square shell is slidably connected to one side of the outer wall of the square plate, a moving mechanism is arranged on one side of the outer wall of the square shell, a motor one is fixed to the inner side wall of the square shell, a rotating shaft is arranged at the output end of the motor one, the moving mechanism is driven by the rotating shaft, and a circular blade is arranged at one end of the outer wall of the rotating shaft.

[0007] As a preferred embodiment of the present application, the moving mechanism comprises a moving gear; one side of the outer wall of the square shell is rotatably connected with a rotating rod one through a connecting block; one end of the outer wall of the moving gear is fixedly connected with one side of the outer wall of the rotating rod one; the outer wall of the square plate is provided with a gear slot on one side, and the gear slot and the moving gear are mutually engaged; the outer side wall of the other end of the rotating rod one and the outer side wall of the rotating shaft are both fixedly connected with a gear one, and a pair of gears one are mutually engaged.

[0008] As a preferred embodiment of the present application, the feeding mechanism comprises a material shell; the outer wall top end of the placing plate is provided with a group of placing through grooves; the outer wall bottom end of a group of the material shells are all fixedly connected with the outer wall top end of the placing plate, and a group of the material shells are respectively matched with a group of the placing through grooves; the inner side wall of a group of the placing through grooves are all slidably connected with feeding blocks; the outer wall side of a group of the feeding blocks are all rotatably connected with reciprocating rods one, and a group of the reciprocating rods one all penetrate the placing plate; a group of the reciprocating rods one are all matched with the placing plate; the outer wall side of the placing plate is rotatably connected with a group of gear two, and a group of the gear two are respectively slidably connected with a group of the reciprocating rods one; the outer wall side of the placing plate is rotatably connected with a pair of gear three; the outer wall side of the placing plate is rotatably connected with a gear four, and the gear four, the pair of gear three and the group of gear two are staggered distributed; the gear four, the pair of gear three and the group of gear two are mutually engaged; the outer wall top end of the workbench is fixedly connected with a motor two through a fixed block; the output end of the motor two is provided with a rotating shaft one; the outer wall one end of the gear four is fixedly connected with a rotating rod two; the outer side wall of the rotating rod two and the rotating shaft one are both fixedly connected with a chain wheel one, and a pair of the chain wheels one are connected through a chain one.

[0009] As a preferred embodiment of the present application, the outer wall one end of the rotating shaft one is fixedly connected with a bevel gear five; the outer wall side of the placing plate is hingedly connected with an auxiliary plate; the outer wall top end of the workbench is rotatably connected with a reciprocating rod two; the outer side wall of the reciprocating rod two is fixedly connected with a bevel gear six, and the bevel gear five and the bevel gear six are mutually engaged; the outer side wall of the reciprocating rod two is provided with a reciprocating block; the outer wall side of the reciprocating block is rotatably connected with a connecting rod, and the outer wall one end of the connecting rod is slidably connected with the outer wall side of the auxiliary plate.

[0010] As a preferred embodiment of the present application, the outer wall side of the square plate is provided with a first through groove; the inner side wall of the first through groove is slidably connected with a sliding plate; the outer wall one end of the sliding plate is fixedly connected with a positioning plate, and the positioning plate is matched with the placing through groove; the outer wall other end of the sliding plate is fixedly connected with a right trapezoidal block; the outer wall side of the square plate is fixedly connected with a pair of springs one, and the outer wall other end of the pair of springs one is fixedly connected with the outer wall side of the right trapezoidal block; the outer wall side of the square shell is fixedly connected with an adjusting block through a connecting plate one, and the adjusting block is in the shape of inverted right trapezoid; the adjusting block is matched with the right trapezoidal block.

[0011] As a preferred embodiment of the present application, the outer wall top of the auxiliary plate is provided with a group of second through grooves; the outer wall top of the workbench is fixedly connected with a group of limiting plates, and a group of limiting plates are located in a group of second through grooves respectively; one side of the outer wall of a group of limiting plates is fixedly connected with a group of inclined shells; a group of inclined shells are matched with a group of placing through grooves respectively.

[0012] As a preferred embodiment of the present application, the outer wall top of the workbench is rotatably connected with a rotating roller one and a rotating roller two through a block; the rotating roller one and the rotating roller two are connected through a group of conveying belts; a group of conveying belts are matched with a group of inclined shells respectively and are located below the inclined shells; the outer wall top of the workbench is fixedly connected with a group of protection plates, and a group of protection plates are located on both sides of a group of conveying belts respectively; the outer wall top of the workbench is rotatably connected with a rotating rod five; the outer side walls of the rotating rod five and the reciprocating rod two are fixedly connected with a gear seven, and a pair of gears seven are meshed with each other; the outer side walls of the rotating rod five and the rotating roller one are fixedly connected with a helical gear eight, and a pair of helical gears eight are meshed with each other.

[0013] As a preferred embodiment of the present application, the outer wall top of the workbench is fixedly connected with a vertical plate; one side of the outer wall of the vertical plate is rotatably connected with a plurality of pairs of cleaning rollers, and a plurality of pairs of cleaning rollers are matched with a group of conveying belts respectively; the outer side walls of a plurality of pairs of cleaning rollers are fixedly connected with a first gear; one side of the outer wall of the vertical plate is rotatably connected with a pair of second gears through a pair of round rods three; one side of the outer wall of the vertical plate is rotatably connected with a rotating rod; the outer side wall of the rotating rod is fixedly connected with a third gear; the third gear, the pair of second gears and the group of first gears are staggered and meshed with each other; the outer side walls of the rotating roller two and the rotating rod are fixedly connected with a fifth helical gear, and a pair of fifth helical gears are meshed with each other.

[0014] As a preferred embodiment of the present application, the outer wall top of the workbench is provided with a square through groove; the inner side wall of the square through groove is slidably placed with a storage shell; the storage shell is matched with a group of conveying belts; one side of the inner wall of the square through groove is provided with a fixed groove; one side of the inner wall of the fixed groove is fixedly connected with a fixed plate through a spring two, and the outer side wall of the fixed plate is slidably connected to the inner side wall of the fixed groove; the fixed plate is matched with the storage shell.

[0015] Compared with the prior art, the present application has the following beneficial effects:

[0016] 1、through the rotation of the rotating shaft, the rotating shaft drives the bevel gear five rotation, bevel gear five drive bevel gear six, reciprocating rod two rotation, make reciprocating rod two drive reciprocating block up and down, reciprocating block moves when drive connecting rod down, make connecting rod on the auxiliary plate sliding, make auxiliary plate change angle, when the material cutting, auxiliary plate and the placement of the groove flush, so that the material cutting has support, not easy to change, when the material cutting is finished, auxiliary plate tilt, make the cutting material slide along the slope, so as to complete the automatic discharge of material, the material loading and unloading more convenient, fast and intelligent, because of the use of labor, make the error rate of the device more stable, not easy to increase.

[0017] 2、through the circular blade down cutting, the down of the square shell through the connecting plate one drive adjustment block moves, when the adjustment block moves to a certain position, the inclined surface of the adjustment block extrudes the inclined surface of the right angle trapezoidal block, make the right angle trapezoidal block drive slide plate and positioning plate move, when the adjustment block extrusion to a certain degree, the right angle trapezoidal block moves to the plane of the adjustment block, at this time the positioning plate moves to the adjusted position, at this time the adjustment block continues to move down, the positioning plate will not move, at this time the circular blade on the material cutting, when the circular blade cutting, the material is clamped and fixed by the material shell and the positioning plate, and the material is blocked by the material shell above, and is blocked by the placement of the groove left and right, so that the material cutting is more stable, not easy to have error. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to facilitate the understanding of those skilled in the art, the present application is further described below in conjunction with the drawings.

[0019] Figure 1 is the main structure of the present application;

[0020] Figure 2 is the explosion structure diagram of the placement plate and the material shell of the present application;

[0021] Figure 3 is the partial structure diagram of the main body of the present application;

[0022] Figure 4 is the explosion structure diagram of the square plate and the square shell of the present application;

[0023] Figure 5 is the explosion structure diagram of the auxiliary plate and the limiting plate of the present application;

[0024] Figure 6 is the structure diagram of the reciprocating plate two, rotating rod five, rotating roller one, conveying belt and protection plate of the present application;

[0025] Figure 7 is the structure diagram of the vertical plate, cleaning roller, rotating rod and second gear of the present application;

[0026] Figure 8The exploded structural view of the workbench and the storage shell of the present application;

[0027] In the figure: 1, workbench; 2, placing plate; 3, square plate; 4, square shell; 5, motor one; 6, rotating shaft; 7, circular blade; 8, moving gear; 9, rotating rod one; 10, tooth groove; 11, gear one; 12, material shell; 13, placing through groove; 14, feeding block; 15, reciprocating rod one; 16, gear two; 17, gear three; 18, gear four; 19, motor two; 20, rotating shaft one; 21, rotating rod two; 22, chain wheel one; 23, chain one; 24, bevel gear five; 25, auxiliary plate; 26, reciprocating rod two; 27, bevel gear six; 28, reciprocating block; 29, connecting rod; 30, first through groove; 31, sliding plate; 32, positioning plate; 33, right-angle trapezoidal block; 34, spring one; 35, adjusting block; 36, second through groove; 37, limiting plate; 38, inclined shell; 39, rotating roller one; 40, rotating roller two; 41, conveying belt; 42, protection plate; 43, rotating rod five; 44, gear seven; 45, bevel gear eight; 46, vertical plate; 47, cleaning roller; 48, first gear; 49, second gear; 50, rotating rod; 51, third gear; 52, fifth bevel gear; 53, square through groove; 54, storage shell; 55, fixed groove; 56, fixed plate. DETAILED DESCRIPTION

[0028] The technical solutions of the present application will be described clearly and completely below in conjunction with the embodiments. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without any creative work, fall into the protection scope of the present application.

[0029] Embodiment 1:

[0030] Please refer to Figures 1-7As shown, an automatic feeding and discharging numerical control tool production and processing equipment, including a workbench 1; the outer wall top of the workbench 1 is fixed with a placing plate 2 through a cylinder; the outer wall top of the placing plate 2 is provided with a feeding mechanism; the outer wall top of the workbench 1 is fixed with a square plate 3 through a pair of square columns; the outer wall of the square plate 3 is slidably connected with a square shell 4; the outer wall of the square shell 4 is provided with a moving mechanism; the inner side wall of the square shell 4 is fixed with a motor 5; the output end of the motor 5 is provided with a rotating shaft 6; the moving mechanism is driven through the rotating shaft 6; the outer wall of the rotating shaft 6 is provided with a circular blade 7 at one end, which is fed through the feeding mechanism, after the feeding is completed, the rotating shaft 6 and the circular blade 7 are driven to rotate by the motor 5, and then the moving mechanism is driven to run by the rotating shaft 6, so that the circular blade 7 moves to cut the material. The device can complete the cutting of the material and the lifting of the circular blade 7 by a single motor, thereby reducing the use of driving equipment, reducing energy consumption, reducing the use of auxiliary mechanical parts, reducing the occupied space, and meeting the production needs of small-scale production or limited space workshops.

[0031] The moving mechanism includes a moving gear 8; the outer wall of the square shell 4 is rotatably connected with a rotating rod 9 through a connecting block 1; the outer wall of the moving gear 8 is fixed on the outer wall of the rotating rod 9 at one end; the outer wall of the square plate 3 is provided with a gear slot 10, and the gear slot 10 and the moving gear 8 are engaged with each other; the outer wall of the rotating rod 9 at the other end and the outer side wall of the rotating shaft 6 are both fixed with a gear 11, and the pair of gears 11 are engaged with each other; when the rotating shaft 6 rotates, because the outer wall of the rotating rod 9 at the other end and the outer side wall of the rotating shaft 6 are both fixed with a gear 11, and the pair of gears 11 are engaged with each other, the rotating shaft 6 drives the rotating rod 9 to rotate through the pair of gears 11, the rotating rod 9 drives the moving gear 8 to rotate, because the gear slot 10 and the moving gear 8 are engaged with each other, when the moving gear 8 rotates, the moving gear 8 moves up and down on a group of gear slots 10, thereby driving the rotating rod 9, the square shell 4, the motor 5 and the circular blade 7 to rotate. Only the rotating direction needs to be adjusted, that is, the height of the circular blade 7 can be adjusted, so that the cutting of the material is more convenient, simple and efficient.

[0032] The upper feeding mechanism comprises a material shell 12; a group of placement through grooves 13 are arranged at the top end of the outer wall of the placement plate 2; the bottom end of the outer wall of the group of material shells 12 is fixedly connected to the top end of the outer wall of the placement plate 2, and the group of material shells 12 are matched with the group of placement through grooves 13 respectively; the inner side wall of the group of placement through grooves 13 is slidably connected with a group of upper feeding blocks 14; the outer wall side of the group of upper feeding blocks 14 is rotatably connected with a group of reciprocating rods one 15, and the group of reciprocating rods one 15 penetrates through the placement plate 2; the group of reciprocating rods one 15 is matched with the placement plate 2; a group of gear two 16 is rotatably connected to the outer wall side of the placement plate 2, and the group of gear two 16 is slidably connected with the group of reciprocating rods one 15 respectively; a pair of gear three 17 is rotatably connected to the outer wall side of the placement plate 2; a gear four 18 is rotatably connected to the outer wall side of the placement plate 2, and the gear four 18, the pair of gear three 17 and the group of gear two 16 are staggered; the gear four 18, the pair of gear three 17 and the group of gear two 16 are meshed with each other; the top end of the outer wall of the workbench 1 is fixedly connected with a motor two 19 through a fixed block; the output end of the motor two 19 is provided with a rotating shaft one 20; one end of the outer wall of the gear four 18 is fixedly connected with a rotating rod two 21; the outer side wall of the rotating rod two 21 and the rotating shaft one 20 is fixedly connected with a chain wheel one 22, and the pair of chain wheel one 22 is connected through a chain one 23; the rotating shaft one 20 is driven to rotate through the motor two 19, because the outer side wall of the rotating rod two 21 and the rotating shaft one 20 is fixedly connected with the chain wheel one 22, and the pair of chain wheel one 22 is connected through the chain one 23, the rotating shaft one 20 drives the rotating rod two 21 to rotate through the chain wheel one 22 and the chain one 23, the rotating rod two 21 drives the gear four 18 to rotate, because the gear four 18, the pair of gear three 17 and the group of gear two 16 are meshed with each other, the rotation of the gear four 18 drives the pair of gear three 17 and the group of gear two 16 to rotate, thereby driving the group of reciprocating rods one 15 to rotate, the rotation of the reciprocating rods one 15 drives the reciprocating rods one 15 to reciprocate, thereby driving the upper feeding block 14 to slide in the placement through groove 13, when the material falls from the material shell 12 into the placement through groove 13, the upper feeding block 14 pushes the material to move to a suitable position to be cut, when the upper feeding block 14 moves to not below the material shell 12, the material falls from the material shell 12, and the cycle is repeated, so that the device has the automatic feeding function, thereby being more intelligent and convenient.

[0033] The outer wall of the square plate 3 is provided with a first through groove 30 on one side; the inner side wall of the first through groove 30 is slidably connected with a sliding plate 31; the outer wall of the sliding plate 31 is fixedly connected with a positioning plate 32 at one end, and the positioning plate 32 is matched with the placing through groove 13; the outer wall of the sliding plate 31 is fixedly connected with a right trapezoidal block 33 at the other end; one pair of spring one 34 is fixedly connected on the outer wall of the square plate 3 on one side, and the other end of the spring one 34 is fixedly connected on the outer wall of the right trapezoidal block 33 on the other side; the outer wall of the square shell 4 is fixedly connected with an adjusting block 35 on one side through a connecting plate one, and the adjusting block 35 is in the shape of an inverted right trapezoid; the adjusting block 35 is matched with the right trapezoidal block 33, when the circular blade 7 moves downward for cutting, the downward movement of the square shell 4 drives the adjusting block 35 to move through the connecting plate one, when the adjusting block 35 moves to a certain position, the inclined surface of the adjusting block 35 extrudes the inclined surface of the right trapezoidal block 33, so that the right trapezoidal block 33 drives the sliding plate 31 and the positioning plate 32 to move, when the adjusting block 35 is extruded to a certain extent, the right trapezoidal block 33 moves to the plane of the adjusting block 35, at this time the positioning plate 32 moves to the adjusted position, at this time the adjusting block 35 continues to move downward, and the positioning plate 32 will not move, at this time the circular blade 7 is just cutting the material, when the circular blade 7 is cutting, the material is clamped and fixed by the extrusion of the feeding block 14 and the positioning plate 32, and the upper part of the material is blocked by the material shell 12, and the left and right parts are blocked by the placing through groove 13, so that the material is more stable when cutting, and is not easy to have errors.

[0034] The outer wall of the rotating shaft one 20 is fixedly connected with a bevel gear five 24 at one end; the outer wall of the placing plate 2 is hingedly connected with an auxiliary plate 25 on one side; the outer wall of the workbench 1 is rotatably connected with a reciprocating rod two 26 at the top end; the outer side wall of the reciprocating rod two 26 is fixedly connected with a bevel gear six 27, and the bevel gear five 24 and the bevel gear six 27 are meshed with each other; the outer side wall of the reciprocating rod two 26 is provided with a reciprocating block 28; the outer wall of the reciprocating block 28 is rotatably connected with a connecting rod 29 on one side, and the outer wall of the connecting rod 29 is slidably connected on the outer wall of the auxiliary plate 25 on one side, when the rotating shaft one 20 rotates, the rotating shaft one 20 drives the bevel gear five 24 to rotate, the bevel gear five 24 drives the bevel gear six 27 and the reciprocating rod two 26 to rotate, so that the reciprocating rod two 26 drives the reciprocating block 28 to move up and down, when the reciprocating block 28 moves, the connecting rod 29 moves downward, so that the connecting rod 29 slides on the auxiliary plate 25, the auxiliary plate 25 changes the angle, so that the material is supported when cutting, and is not easy to deform, when the material is cut, the auxiliary plate 25 is inclined, so that the cut material slides down along the inclined surface, thereby completing the automatic unloading of the material, so that the feeding and unloading of the material are more convenient, fast and intelligent, because the use of manual labor is reduced, the error rate of the device is more stable, and is not easy to increase.

[0035] The outer wall top of the auxiliary plate 25 is provided with a group of second through grooves 36; the outer wall top of the workbench 1 is fixedly connected with a group of limiting plates 37, and a group of limiting plates 37 are located in a group of second through grooves 36 respectively; one side of the outer wall of a group of limiting plates 37 is fixedly connected with a group of inclined shells 38; a group of inclined shells 38 are matched with a group of placing through grooves 13 respectively, when the auxiliary plate 25 changes the angle downward, and the material is discharged, because the limiting plate 37 is not moved, when the auxiliary plate 25 moves downward with the material to change the angle, the protrusion of the limiting plate 37 plays a limiting role, so that the material is not easy to deviate from the position when the material is discharged, so that the material can accurately enter the inclined shell 38 and move to the appropriate position, so that the device can accurately process the material, and errors are not easy to occur.

[0036] The outer wall top of the workbench 1 is rotatably connected with a roller one 39 and a roller two 40 through a block; the roller one 39 and the roller two 40 are connected through a group of conveying belts 41; a group of conveying belts 41 are matched with a group of inclined shells 38 respectively and located below the inclined shell 38; the outer wall top of the workbench 1 is fixedly connected with a group of protection plates 42, and a group of protection plates 42 are located on both sides of a group of conveying belts 41 respectively; the outer wall top of the workbench 1 is rotatably connected with a rotating rod five 43; the outer side walls of the rotating rod five 43 and the reciprocating rod two 26 are fixedly connected with a gear seven 44, and a pair of gear sevens 44 are meshed with each other; the outer side walls of the rotating rod five 43 and the roller one 39 are fixedly connected with a bevel gear eight 45, and a pair of bevel gears eight 45 are meshed with each other, when the reciprocating rod two 26 rotates, because the outer side walls of the rotating rod five 43 and the reciprocating rod two 26 are fixedly connected with a gear seven 44, and a pair of gear sevens 44 are meshed with each other, the reciprocating rod two 26 drives the rotating rod five 43 to rotate through a pair of gears, because the outer side walls of the rotating rod five 43 and the roller one 39 are fixedly connected with a bevel gear eight 45, and a pair of bevel gears eight 45 are meshed with each other, the rotating rod five 43 drives the roller one 39 to rotate through a pair of bevel gears eight 45, so that the roller two 40 is driven to rotate through the conveying belt 41 when the material slides down the inclined shell 38 and falls on the conveying belt 41, the conveying belt 41 conveys the material to the designated position for the next process, so that the material can be conveniently processed in the next process, and the overall processing flow of the material is more smooth.

[0037] The outer wall top of the workbench 1 is fixedly connected with a vertical plate 46; a plurality of cleaning rollers 47 are rotatably connected to one side of the outer wall of the vertical plate 46, and the plurality of cleaning rollers 47 are matched with a group of conveying belts 41 respectively; the outer side wall of the plurality of cleaning rollers 47 is fixedly connected with a first gear 48; a pair of second gears 49 are rotatably connected to one side of the outer wall of the vertical plate 46 through a pair of round rods; a rotating rod 50 is rotatably connected to one side of the outer wall of the vertical plate 46; the outer side wall of the rotating rod 50 is fixedly connected with a third gear 51; the third gear 51, the pair of second gears 49 and the group of first gears 48 are staggered and meshed with each other; the outer side wall of the second roller 40 and the rotating rod 50 is fixedly connected with a fifth bevel gear 52, and the pair of fifth bevel gears 52 are meshed with each other; when the second roller 40 rotates, because the outer side wall of the second roller 40 and the rotating rod 50 is fixedly connected with the fifth bevel gear 52, and the pair of fifth bevel gears 52 are meshed with each other, the second roller 40 drives the rotating rod 50 to rotate through the pair of fifth bevel gears 52, so that the rotating rod 50 drives the third gear 51 to rotate, because the third gear 51, the pair of second gears 49 and the group of first gears 48 are staggered and meshed with each other, the third gear 51 drives the pair of second gears 49 and the group of first gears 48 to rotate, so as to drive the group of cleaning rollers 47 to rotate, so that the cleaning rollers 47 clean the material when conveying, so as to clean the outer side wall of the cleaning rollers 47, thereby reducing the time required for cleaning the material, and also preventing the material from being easily adhered with impurities or dust, affecting the material itself, and preventing the cleaning rollers 47 from contacting the material, so that the material is extruded on the conveying belt 41, thereby increasing the friction between the material and the conveying belt 41, preventing the material from staying in place when conveying, and ensuring the safety and stability of material conveying.

[0038] Example 2:

[0039] Please refer to Figure 8 As shown in the figure, the outer wall top of the workbench 1 is provided with a square through slot 53; the inner side wall of the square through slot 53 is slidably provided with a storage shell 54; the storage shell 54 is matched with a group of conveying belts 41; the inner wall of the square through slot 53 is provided with a fixed groove 55; the inner wall of the fixed groove 55 is fixedly connected with a fixed plate 56 through a spring 2, and the outer side wall of the fixed plate 56 is slidably connected to the inner side wall of the fixed groove 55; the fixed plate 56 is matched with the storage shell 54; when the material is moved to the end of the conveying belt 41, the material falls into the storage shell 54 for storage, and when the storage shell 54 is stored, the fixed plate 56 is popped out by the elastic force of the spring 2, and abuts against one side of the storage shell 54, so as to cooperate with the inner side wall of the square through slot 53 to fix the storage shell 54, so as to prevent the storage shell 54 from moving due to vibration or external force, thereby making the storage operation more stable; when the storage shell 54 needs to be taken out, the fixed plate 56 can be pressed to take out the storage shell 54.

[0040] In use, the material is placed in the material shell 12, and then falls into the placement channel 13, and the placement channel 13 is matched with the material, so that the placement channel 13 can only place one material at a time, and the rotating shaft 20 is driven by the motor 2 19 to rotate, and the outer wall of the rotating shaft 1 20 and the outer wall of the rotating rod 2 21 are fixedly connected with the chain wheel 1 22, and a pair of chain wheels 1 22 are connected by a chain 1 23, so that the rotating shaft 1 20 drives the rotating rod 2 21 to rotate through the chain wheel 1 22 and the chain 1 23, and the rotating rod 2 21 drives the gear 4 18 to rotate, and the gear 4 18, a pair of gear 3 17 and a group of gear 2 16 are meshed with each other, so that the rotation of the gear 4 18 drives a pair of gear 3 17 and a group of gear 2 16 to rotate, thereby driving a group of reciprocating rods 1 5 to rotate, and the reciprocating rod 1 5 reciprocates to drive the feeding block 1 4 to slide in the placement channel 1 3, so that the material falls from the material shell 1 2 into the placement channel 1 3, and the feeding block 1 4 pushes the material to move to a suitable position for cutting, and when the feeding block 1 4 moves to a position not directly below the material shell 1 2, the material falls from the material shell 1 2, and the cycle is repeated, so that the device has the function of automatic feeding.

[0041] After the feeding is completed, the rotating shaft 6 and the circular blade 7 are driven by the motor 1 5 to rotate, and the outer wall of the rotating rod 1 9 and the outer wall of the rotating shaft 6 are fixedly connected with the gear 1 1, and a pair of gear 1 1 are meshed with each other, so that the rotating shaft 6 drives the rotating rod 1 9 to rotate through a pair of gear 1 1, and the rotating rod 1 9 drives the moving gear 8 to rotate, and the gear slot 1 0 is meshed with the moving gear 8, so that the moving gear 8 moves up and down on a group of gear slots 1 0 when the moving gear 8 rotates, thereby driving the rotating rod 1 9, the square shell 4, the motor 1 5 and the circular blade 7 to rotate, and only the rotating direction needs to be adjusted, so that the height of the circular blade 7 can be adjusted, and the cutting of the material is more convenient, simple and efficient.

[0042] When the circular blade 7 moves downward for cutting, the downward movement of the square shell 4 drives the adjusting block 35 to move through the connecting plate 1, and when the adjusting block 35 moves to a certain position, the inclined surface of the adjusting block 35 presses the inclined surface of the right-angled trapezoidal block 33, so that the right-angled trapezoidal block 33 drives the sliding plate 31 and the positioning plate 32 to move, and when the adjusting block 35 is pressed to a certain extent, the right-angled trapezoidal block 33 moves to the plane of the adjusting block 35, and at this time the positioning plate 32 moves to the adjusted position, and at this time the adjusting block 35 continues to move downward, and the positioning plate 32 does not move, and at this time the circular blade 7 cuts the material, and the material is clamped and fixed by the feeding block 1 4 and the positioning plate 32, and the upper part of the material is blocked by the material shell 1 2, and the left and right parts are blocked by the placement channel 1 3, so that the material is more stable during cutting and is not easy to have errors.

[0043] When the material cutting is completed, the bevel gear five 24 is driven to rotate by the rotating shaft one 20, the bevel gear five 24 drives the bevel gear six 27 and the reciprocating rod two 26 to rotate, the reciprocating rod two 26 drives the reciprocating block 28 to move up and down, the reciprocating block 28 drives the connecting rod 29 to move down when moving, the connecting rod 29 slides on the auxiliary plate 25, the auxiliary plate 25 changes the angle, the auxiliary plate 25 is flush with the placing groove 13 when the material is cut, so that the material is supported when cutting and is not easy to deform, when the material cutting is completed, the auxiliary plate 25 is inclined, the cut material slides down along the inclined surface, so as to complete the automatic unloading of the material, the feeding and unloading of the material is more convenient, fast and intelligent, because the use of manual is reduced, the error rate of the device is more stable and not easy to increase.

[0044] When the auxiliary plate 25 changes the angle downward to unload the material, because the limiting plate 37 is stationary, the limiting plate 37 protrudes when the auxiliary plate 25 drives the material to change the angle downward, the limiting plate 37 plays a limiting role, the material is not easy to deviate from the position when unloading, the material can be accurately moved into the inclined shell 38 to the appropriate position, the device can accurately process the material and is not easy to have errors.

[0045] When the reciprocating rod two 26 rotates, because the outer side wall of the rotating rod five 43 and the reciprocating rod two 26 is fixedly connected with the gear seven 44, and a pair of gear seven 44 are engaged with each other, the reciprocating rod two 26 drives the rotating rod five 43 to rotate through a pair of gears, because the outer side wall of the rotating rod five 43 and the rotating roller one 39 is fixedly connected with the bevel gear eight 45, and a pair of bevel gear eight 45 are engaged with each other, the rotating rod five 43 drives the rotating roller one 39 to rotate through a pair of bevel gear eight 45, so as to drive the rotating roller two 40 to rotate through the conveyor belt 41 when the material slides down the inclined shell 38 and falls onto the conveyor belt 41, the conveyor belt 41 conveys the material, the material is conveyed to the designated position for the next process, so as to facilitate the next process of the material, and the overall processing flow of the material is more smooth.

[0046] When the second rotating roller 40 rotates, the fifth bevel gears 52 are fixed to the outer side walls of the second rotating roller 40 and the rotating rod 50, and a pair of fifth bevel gears 52 are meshed with each other, so that the second rotating roller 40 drives the rotating rod 50 to rotate through the pair of fifth bevel gears 52, and the rotating rod 50 drives the third gear 51 to rotate, and the third gear 51, the pair of second gears 49 and the group of first gears 48 are staggered and meshed with each other, so that the third gear 51 drives the pair of second gears 49 and the group of first gears 48 to rotate, thereby driving the group of cleaning rollers 47 to rotate, so that the cleaning rollers 47 clean the material when the material is conveyed, thereby cleaning the outer side walls of the cleaning rollers 47, reducing the time required for cleaning the material, and preventing impurities or dust from adhering to the outer surface of the material, affecting the material itself, and preventing the material from being squeezed on the conveyor belt 41 by the cleaning rollers 47, thereby increasing the friction between the material and the conveyor belt 41, preventing the material from staying in place when conveyed, and ensuring the safety and stability of the material conveying.

[0047] When the material is moved to the end of the conveyor belt 41, the material falls into the storage shell 54 for storage, and when the storage shell 54 is storing, the fixed plate 56 is popped out by the elastic force of the second spring, and abuts against one side of the storage shell 54, and cooperates with the inner side wall of the square through slot 53, so that the storage shell 54 is fixed, thereby preventing the storage shell 54 from moving due to vibration or external force, and making the storage operation more stable, and when the storage shell 54 needs to be taken out, the fixed plate 56 can be pressed to take out the storage shell 54.

[0048] The device can complete the cutting of the material and the lifting of the circular blade 7 through the motor 5, thereby reducing the use of driving equipment, energy consumption, and the use of auxiliary mechanical parts, reducing the occupied space, meeting the production needs of small-scale production or limited space workshops, and completing the automatic feeding, conveying, cleaning and storage operations of the material through the motor 2, and each operation process supports and cooperates with each other to complete the overall processing flow of the material, making the overall processing flow of the material more smooth, fast and stable, thereby improving the efficiency and stability of the numerical control cutter production and processing, and reducing the error rate or failure rate.

[0049] The preferred embodiments of the application disclosed above are only used to help explain the application. The preferred embodiments do not describe all the details, and the application is not limited to the specific embodiments. Obviously, many modifications and changes can be made according to the content of the specification. The embodiments are selected and described in the specification in order to better explain the principles and practical applications of the application, so that those skilled in the art can well understand and utilize the application. The application is limited by the claims and their entire scope and equivalents.

Claims

1. An automatic feeding and discharging numerical control tool production and processing equipment, comprising a workbench (1); the outer wall top end of the workbench (1) is fixed with a placing plate (2) through a cylinder; the outer wall top end of the placing plate (2) is provided with a feeding mechanism; the outer wall top end of the workbench (1) is fixed with a square plate (3) through a pair of square columns; characterized in that, The outer wall side of the square plate (3) is slidably connected with a square shell (4); the outer wall side of the square shell (4) is provided with a moving mechanism; the inner side wall of the square shell (4) is fixedly connected with a motor one (5); the output end of the motor one (5) is provided with a rotating shaft (6); the moving mechanism is driven through the rotating shaft (6); and the outer wall side of the rotating shaft (6) is provided with a circular blade (7).

2. The numerical control cutter production and processing equipment of claim 1, wherein, The moving mechanism comprises a moving gear (8); the outer wall side of the square shell (4) is rotatably connected with a rotating rod one (9) through a connecting block one; the outer wall side of the moving gear (8) is fixedly connected on the outer wall side of the rotating rod one (9); the outer wall side of the square plate (3) is provided with a gear slot (10), and the gear slot (10) is meshed with the moving gear (8); and the outer wall side of the rotating rod one (9) and the outer side wall of the rotating shaft (6) are both fixedly connected with a gear one (11), and the gears one (11) are meshed with each other.

3. The automatic feeding and discharging numerical control cutter production and processing equipment according to claim 2, characterized in that, The feeding mechanism comprises a material shell (12); the outer wall top end of the placing plate (2) is provided with a group of placing through grooves (13); the outer wall bottom ends of a group of the material shells (12) are fixedly connected on the outer wall top end of the placing plate (2), and a group of the material shells (12) are matched with a group of the placing through grooves (13) respectively; the inner side walls of a group of the placing through grooves (13) are slidably connected with feeding blocks (14); the outer wall sides of a group of the feeding blocks (14) are rotatably connected with reciprocating rods one (15), and a group of the reciprocating rods one (15) penetrate through the placing plate (2); a group of the reciprocating rods one (15) are matched with the placing plate (2); the outer wall side of the placing plate (2) is rotatably connected with a group of gear two (16), and a group of the gear two (16) are slidably connected with a group of the reciprocating rods one (15) respectively; the outer wall side of the placing plate (2) is rotatably connected with a pair of gear three (17); the outer wall side of the placing plate (2) is rotatably connected with a gear four (18), and the gear four (18), the pair of gear three (17) and the group of gear two (16) are staggered distributed; the gear four (18), the pair of gear three (17) and the group of gear two (16) are meshed with each other; the outer wall top end of the workbench (1) is fixedly connected with a motor two (19) through a fixed block; the output end of the motor two (19) is provided with a rotating shaft one (20); the outer wall side of the gear four (18) is fixedly connected with a rotating rod two (21); the outer side walls of the rotating rod two (21) and the rotating shaft one (20) are both fixedly connected with a chain wheel one (22), and a pair of the chain wheel one (22) are connected through a chain one (23).

4. The numerical control cutter production and processing equipment of claim 3, wherein, The outer wall of the first pivot (20) is fixedly connected with bevel gear five (24); the outer wall of the placement plate (2) is hingedly connected with an auxiliary plate (25); the outer wall of the workbench (1) is rotatably connected with a reciprocating rod two (26); the outer side wall of the reciprocating rod two (26) is fixedly connected with bevel gear six (27), and bevel gear five (24) and bevel gear six (27) are engaged with each other; the outer side wall of the reciprocating rod two (26) is provided with a reciprocating block (28); the outer wall of the reciprocating block (28) is rotatably connected with a connecting rod (29), and the outer wall of the connecting rod (29) is slidably connected on the outer wall of the auxiliary plate (25).

5. The automatic loading and unloading numerical control cutter production and processing equipment according to claim 4, characterized in that, The outer wall of the square plate (3) is provided with a first through groove (30) on one side; the inner side wall of the first through groove (30) is slidably connected with a sliding plate (31); the outer wall of the sliding plate (31) is fixedly connected with a positioning plate (32), and the positioning plate (32) is matched with the placement through groove (13); the outer wall of the sliding plate (31) is fixedly connected with a right trapezoidal block (33) at the other end; the outer wall of the square plate (3) is fixedly connected with a pair of springs one (34) on one side, and the other end of the outer wall of the pair of springs one (34) is fixedly connected on the outer wall of the right trapezoidal block (33); the outer wall of the square shell (4) is fixedly connected with an adjusting block (35) on one side through a connecting plate one, and the adjusting block (35) is in the shape of an inverted right trapezoid; the adjusting block (35) is matched with the right trapezoidal block (33).

6. The automatic feeding and discharging numerical control cutter production and processing equipment according to claim 4, characterized in that, The outer wall of the auxiliary plate (25) is provided with a group of second through grooves (36) on the top end; the outer wall of the workbench (1) is fixedly connected with a group of limiting plates (37) on the top end, and a group of limiting plates (37) are located in a group of second through grooves (36) respectively; a group of the outer wall of the limiting plate (37) is fixedly connected with a group of inclined shells (38) on one side; a group of the inclined shell (38) is matched with a group of placement through grooves (13) respectively.

7. The automatic feeding and discharging numerical control cutter production and processing equipment according to claim 6, characterized in that, The outer wall of the workbench (1) is rotatably connected with a rotating roller one (39) and a rotating roller two (40) on the top end through a pair of blocks one; the rotating roller one (39) and the rotating roller two (40) are connected through a group of conveying belts (41); a group of the conveying belts (41) are matched with a group of inclined shells (38) respectively, and are located below the inclined shell (38); the outer wall of the workbench (1) is fixedly connected with a group of protection plates (42) on the top end, and a group of protection plates (42) are located on both sides of a group of conveying belts (41) respectively; the outer wall of the workbench (1) is rotatably connected with a rotating rod five (43) on the top end; the outer side wall of the rotating rod five (43) and the reciprocating rod two (26) is fixedly connected with a gear seven (44), and a pair of gear sevens (44) are engaged with each other; the outer side wall of the rotating rod five (43) and the rotating roller one (39) is fixedly connected with a bevel gear eight (45), and a pair of bevel gears eight (45) are engaged with each other.

8. The automatic loading and unloading numerical control cutter production and processing equipment according to claim 7, characterized in that, The outer wall top of the workbench (1) is fixed with a vertical plate (46); the outer wall side of the vertical plate (46) is rotatably connected with a plurality of pairs of cleaning rollers (47), and the plurality of pairs of cleaning rollers (47) are matched with a group of conveying belts (41) respectively; the outer side wall of the plurality of pairs of cleaning rollers (47) is fixed with a first gear (48); the outer wall side of the vertical plate (46) is rotatably connected with a pair of second gears (49) through a pair of round rods; the outer wall side of the vertical plate (46) is rotatably connected with a rotating rod (50); the outer side wall of the rotating rod (50) is fixed with a third gear (51); the third gear (51) and a pair of second gears (49) and a group of first gears (48) are staggered and meshed with each other; the outer side wall of the rotating roller two (40) and the rotating rod (50) is fixed with a fifth bevel gear (52), and a pair of fifth bevel gears (52) are meshed with each other.

9. The automatic loading and unloading numerical control cutter production and processing equipment according to claim 8, characterized in that, The outer wall top of the workbench (1) is provided with a square through slot (53); the inner side wall of the square through slot (53) is slidably provided with a storage shell (54); the storage shell (54) is matched with a group of conveying belts (41); the inner wall side of the square through slot (53) is provided with a fixed groove (55); the inner wall side of the fixed groove (55) is fixed with a fixed plate (56) through spring two, and the outer side wall of the fixed plate (56) is slidably connected to the inner side wall of the fixed groove (55); the fixed plate (56) is matched with the storage shell (54).