Production device and production method for spare and accessory parts of geological sampling equipment

By designing an automated feeding, transferring and fixing mechanism, the problem of low efficiency of manual fixing of metal bars in the existing technology is solved, automated loading and fixing is achieved, and production efficiency and cutting accuracy are improved.

CN120587541APending Publication Date: 2025-09-05SHANXIAN FENGYUAN IND CO LTD
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Patent Information

Application Number
CN202510999953.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-21
Publication Date
2025-09-05

AI Technical Summary

Technical Problem

During the metal bar cutting process, existing geological sampling equipment needs to be manually fixed in groups, which increases production costs and reduces production efficiency.

Method used

A spare parts production device for geological sampling equipment is designed, including feeding, transferring, fixing and cutting mechanisms. The automatic feeding and fixing mechanisms are used to realize automatic loading and fixing of material rods, reducing manual operations.

Benefits of technology

It improves production efficiency, shortens cutting cycle, reduces the complexity and cost of manual operation, and ensures cutting accuracy.

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Abstract

The invention relates to the technical field of metal cutting, and particularly discloses a production device and a production method for spare and accessory parts of geological sampling equipment, the production device comprises a workbench and a charge bar, and further comprises a feeding mechanism arranged on the workbench; the material conveying mechanism is arranged on one side of the feeding mechanism; through the arrangement of the material conveying mechanism, automatic feeding of material bars can be achieved, the material bars can automatically roll into the material groove group by group through cooperation of the lifting bin and the material conveying mechanism while the material groove moves, manual carrying group by group is not needed, the material bars need to be aligned with the material groove during manual carrying, follow-up cutting is facilitated, and time and labor are wasted; and meanwhile, due to the fact that the material groove is obliquely formed, the material bars can be prevented from being blocked when the material bars roll down, three sets of material bars can be placed in the material groove at the same time, the three sets of material bars can be cut at the same time, the production efficiency is improved, and the cutting period is shortened through automatic feeding.
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Description

Technical Field

[0001] The present invention relates to the technical field of metal cutting, in particular to a device and method for producing spare parts for geological sampling equipment. Background Art

[0002] Geological sampling is a key technical means in geological work to obtain underground or surface material samples to analyze their physical properties, structural structure and other characteristics, thereby inferring information such as geological structure and mineral resource distribution. There are many types of geological sampling equipment parts. Among them, in the production process of sampling drill bits, metal rods need to be cut and then made into sampling drill bits.

[0003] Announcement No. CN212350579U discloses a metal bar cutting device, comprising a base and a cutting table, wherein the cutting table is fixed above the base by a plurality of support rods, and the cutting table is provided with a long slot, in which a first threaded rod is rotatably installed and a connecting block is slidably installed, and a bar fixing assembly is fixed on the connecting block; an L-shaped mounting frame is fixed on the base, and two strip plates are symmetrically provided on the upper part of the L-shaped mounting frame, and two second threaded rods are symmetrically installed and rotatably installed between the two strip plates, and a movable block is threadedly passed through the two second threaded rods, and a mounting box is fixedly provided at the bottom of the movable block, and a second motor is provided in the mounting box, and a rotating rod is rotatably inserted on the side wall of the mounting box close to the cutting table through a bearing, and a saw blade is fixedly connected to one end of the rotating rod outside the mounting box. The device can perform mechanized batch cutting of metal bars, is simple to operate, easy to use, greatly improves the efficiency of metal bar cutting, and is very practical.

[0004] In the existing technology, the metal bars are placed in a semicircular groove and then fixed with bolts before cutting. However, in actual work, it is found that although the above device can cut multiple groups of metal bars together, it is still necessary to manually fix them in groups during the placement of the metal bars. At the same time, the metal bars are long, and it may be difficult for one worker to operate them alone when placing them. Two or three workers may be required, which undoubtedly increases the production cost. Fixing them in groups increases the cutting cycle and reduces production efficiency. Summary of the Invention

[0005] The purpose of the present invention is to provide a production device and a production method for spare parts of geological sampling equipment.

[0006] The purpose of the present invention can be achieved through the following technical solutions: A device for producing spare parts for geological sampling equipment, comprising a workbench and a material rod, and further comprising: A feeding mechanism is arranged on a workbench; The material transfer mechanism is arranged on one side of the feeding mechanism; A fixing mechanism is provided at one end of the workbench; A cutting mechanism is arranged on one side of the fixing mechanism; A driving mechanism is arranged below the fixing mechanism and the cutting mechanism; The material rod is placed in the feeding mechanism, and the material rod is transported to the material transfer mechanism through the feeding mechanism. The material rod is then transported to the middle of the fixing mechanism and the cutting mechanism by the material transfer mechanism, and then the material rod is fixed by the fixing mechanism and cut at the same time.

[0007] The top of the lifting warehouse is fixedly connected with a connecting gear, and the connecting gear is movably connected to the transmission gear of the lifting warehouse, and the transmission gear is movably engaged with the transmission gear of the lifting warehouse.

[0008] Furthermore, the feeding mechanism includes a feeding base; the side wall of the feeding base is rotatably connected to a feeding screw; the feeding screw is threadedly connected to a push plate; a slot is provided on the feeding base; the push plate is arranged through the slot; the side wall of the feeding base is rotatably connected to a driven gear and a transmission gear; the driven gear is meshed with the transmission gear; the output end of the driven gear is fixedly connected to the input end of the feeding screw; the side wall of the connecting block is fixedly connected to a rack 1; the end of the transmission gear away from the driven gear is movably meshed with rack 1.

[0009] Furthermore, the driving mechanism includes a driving base; a driving groove is opened in the driving base; a driving screw is rotatably connected in the driving groove; a placement table, base one and base two are fixedly connected to the driving base; two groups of driving screws are provided, respectively arranged below base one and base two; the fixing mechanism is arranged above base one; and the cutting mechanism is arranged above base two.

[0010] Furthermore, the fixing mechanism includes an L-pillar; the L-pillar is slidably arranged in the base; the bottom of the L-pillar is threadedly connected to the driving screw; the L-pillar is rotatably connected to a fixed screw; two groups of fixed screws are provided; a connecting plate is threadedly connected to the fixed screw; a connecting column is fixedly connected to the connecting plate; the end of the connecting column away from the connecting plate is fixedly connected to a pressure plate; the end of the fixed screw away from the connecting plate is fixedly connected to a small gear; the top of the L-pillar is rotatably connected to a large gear; the small gears are provided on both sides of the large gear; the large gear is meshed with the small gear.

[0011] Furthermore, the cutting mechanism includes a slide plate; the slide plate is slidably connected to the base two; the slide plate is an L-shaped structure; the end of the slide plate away from the base two is threadedly connected to the driving screw; the top of the slide plate is fixedly connected to a cutting chamber; a cutting knife assembly is provided in the cutting chamber; the top of the cutting chamber is fixedly connected to a rack three; the rack three is movably engaged with the large gear.

[0012] Furthermore, the side wall of the feeding base is fixedly connected to the limit rod; the push plate is set through the limit rod; the bottom of the slide is fixedly connected to the limit foot; the limit foot is slidably set on the base two; the base one and the base two are connected to the driving groove.

[0013] Furthermore, the side wall of the driving base is fixedly connected to a driving motor; two groups of driving motors are provided; the driving screw is driven by the driving motor; the side wall of the fixed base is fixedly connected to a material transfer motor; the material transfer screw is driven by the material transfer motor.

[0014] A method for producing spare parts for geological sampling equipment comprises the following steps: S1, place the material rod on the feeding base, and then drive the fixed base to move toward the feeding base. During the movement, the push plate is driven by the setting of rack 1 to push the material rod into the material trough; S2, after the material bar arrives in the material trough, it is transported to the placement table through the material trough, and then the fixing mechanism and the cutting mechanism are driven to move toward the material bar. While moving, the rack 3 in the cutting mechanism drives the large gear in the fixing mechanism to rotate, so that the pressure plate descends to fix the material bar, and the cutting operation starts at the same time as the fixing; S3, after the cutting is completed, the material rod is taken down, and then the material trough is moved back to the feeding base, and then the feeding base sends the material rod into the material trough again for the next cutting.

[0015] Beneficial effects of the present invention: (1) The present invention can realize automatic loading of material bars by setting up the material transmission mechanism. When the material trough moves, the material bars can be automatically rolled into the material trough in groups through the cooperation of the lifting bin and the feeding mechanism. There is no need to manually carry the material bars in groups. Manual handling also requires the material bars to be aligned with the material trough to facilitate subsequent cutting, which is time-consuming and labor-intensive. At the same time, the inclined setting of the material trough can avoid congestion of the material bars when the material bars roll down, and three groups of material bars can be placed in the material trough at the same time, and the three groups of material bars can be cut at the same time, thereby improving production efficiency. Moreover, the cutting cycle is reduced by automatic loading.

[0016] (2) The present invention can cooperate with the material transfer base through the setting of the feeding base. When the material transfer base arrives, the material rods are pushed into the material trough by the push plate, which facilitates the loading of the material rods. Moreover, through the setting of the material trough, there is no need to manually organize the material rods. After the loading is completed and the push plate moves back, the material rods can be moved to the feeding base again without being organized until the next time the push plate pushes the material rods into the material trough.

[0017] (3) The present invention can fix the material rod and cut it at the same time by setting the fixing mechanism and the cutting mechanism. The material rod will vibrate during cutting, which will affect the cutting accuracy. Moreover, by setting the large gear and the rack three, the pressure plate can be lowered during movement, thereby fixing the material rod.

[0018] (4) When the material rod in the present invention reaches the material trough, the material trough is driven to move toward the placement table. During the movement, the two sets of driving screws are driven to rotate, which will drive the cutting mechanism and the fixing mechanism to move toward the placement table, and perform the fixing and cutting work. At the same time, the moving distance of the material trough is driven by the size to be cut. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] The present invention will be further described below with reference to the accompanying drawings.

[0020] Figure 1 It is a schematic diagram of the overall structure of the production device of the present invention; Figure 2 It is a schematic diagram of the overall structure of the cutting mechanism of the present invention; Figure 3 It is a schematic diagram of the overall structure of the material transfer mechanism in the present invention; Figure 4 yes Figure 3 Enlarged view of point A in the middle; Figure 5 This is a cross-sectional view of the overall structure of the feeding base in the present invention; Figure 6 This is a cross-sectional view of the overall structure of the fixed base in the present invention; Figure 7 It is a schematic diagram of the overall structure of the driving base in the present invention; Figure 8It is a cross-sectional view of the overall structure of the driving base in the present invention.

[0021] Description of the drawings: 1. Workbench; 2. Feeding mechanism; 21. Feeding base; 22. Feeding screw; 23. Limiting rod; 24. Push plate; 25. Driven gear; 26. Transmission gear; 27. Notch; 3. Feeding mechanism; 31. Fixed base; 311. Feeding motor; 32. Feeding screw; 33. Feeding block; 34. Feeding chassis; 341. Connecting block; 342. Articulated rod; 343. Articulated block; 344. Rack 1; 35. Lifting bin; 351. Lifting screw; 36. Lifting block; 37. Material trough; 371. Hinge plate; 38. Connecting gear; 39. Rack 2; 4. Fixing mechanism; 41. L-pillar; 42. Fixing screw; 43. Small gear; 44. Large gear; 45. Connecting plate; 46. Connecting column; 47. Pressing plate; 5. Cutting mechanism; 51. Slide plate; 511. Limiting foot; 52. Cutting chamber; 53. Rack 3; 54. Cutting knife assembly; 6. Driving mechanism; 61. Driving base; 62. Driving slot; 63. Driving screw; 64. Driving motor; 65. Placing table; 66. Base 1; 67. Base 2; 7. Material rod. DETAILED DESCRIPTION

[0022] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts shall fall within the scope of protection of the present invention.

[0023] See also Figures 1-8 As shown, the present application provides a device for producing spare parts for geological sampling equipment, including a workbench 1 and a material rod 7, and also includes: A feeding mechanism 2 is provided on the workbench 1; The material transfer mechanism 3 is arranged on one side of the material feeding mechanism 2; A fixing mechanism 4 is provided at one end of the workbench 1; The cutting mechanism 5 is arranged on one side of the fixing mechanism 4; The driving mechanism 6 is arranged below the fixing mechanism 4 and the cutting mechanism 5; The material rod 7 is placed in the feeding mechanism 2, and the material rod 7 is transported to the material transfer mechanism 3 by the feeding mechanism 2. The material transfer mechanism 3 then transports the material rod 7 to the middle of the fixing mechanism 4 and the cutting mechanism 5. The fixing mechanism 4 then fixes the material rod 7 while cutting is performed. During operation, first, place the material rod 7 on the feeding mechanism 2 on the workbench 1, then use the feeding mechanism 2 to send the material rod 7 to the transfer mechanism 3, and then move the transfer mechanism 3 to the middle of the cutting mechanism 5 and the fixing mechanism 4, and then use the fixing mechanism 4 to fix the material rod 7. After the fixing is completed, start the cutting work. After the cutting is completed, remove the material rod 7, and then use the transfer mechanism 3 and the feeding mechanism 2 to repeat the feeding.

[0024] like Figure 3-Figure 6 As shown, the material feeding mechanism 3 includes a fixed base 31, a material feeding chassis 34 and a material trough 37; a material feeding screw 32 is rotatably connected in the fixed base 31; the material feeding screw 32 is provided with two groups; a material feeding block 33 is fixedly connected to the bottom of the material feeding chassis 34; the end of the material feeding block 33 away from the material feeding chassis 34 is threadedly connected to the material feeding screw 32; a lifting bin 35 and a connecting block 341 are fixedly connected to the material feeding chassis 34; a lifting screw 351 is rotatably connected in the lifting bin 35; a lifting block 36 is threadedly connected to the lifting screw 351; the lifting block 33 is fixedly connected to the lifting block ... The side wall of the 6 is hinged with a hinge piece 371; the end of the connecting block 341 away from the material transfer chassis 34 is rotatably connected to the hinge rod 342; the side wall of the trough 37 is fixedly connected to the hinge piece 371; the bottom of the trough 37 is fixedly connected to the hinge block 343; the hinge block 343 is rotatably connected to the hinge rod 342; the side wall of the fixed base 31 is fixedly connected to the second rack 39; the top of the lifting bin 35 is fixedly connected to the connecting gear 38; the connecting gear 38 is movably engaged with the second rack 39; the output end of the connecting gear 38 is fixedly connected to the input end of the lifting screw 351; During operation, after the material feeding mechanism 3 sends the material rod 7 to the cutting and the cutting is completed, the material trough 37 in the material feeding mechanism 3 is driven to move back to the feeding mechanism 2. During operation, the material feeding screw 32 in the fixed base 31 is driven to rotate, and the material feeding block 33 and the material feeding chassis 34 are driven to move during rotation, and the material trough 37 is driven to move toward the feeding mechanism 2. When the material feeding chassis 34 moves, the connecting gear 38 at the bottom thereof will mesh with the rack 2 39 on the fixed base 31, and the connecting gear 38 will be driven by the rack 2 39 during movement. The gear 38 rotates, thereby driving the lifting screw 351 in the lifting bin 35 to rotate, and driving the lifting block 36 to descend. During the descent, the hinge piece 371 will be used to drive the trough 37 to descend. During the descent, since the lifting bin 35 drives one end of the trough 37 to descend, the trough 37 will be offset. At the same time, when the feeding mechanism 2 pushes the material rod 7 onto the trough 37, the material rod 7 will roll on the trough 37. First, the material rod 7 will roll into the groove of the trough 37 near the feeding mechanism 2, and then the material rod 7 will enter the groove. The material trough 37 is a material trough having a plurality of material rods, and the plurality of material rods are fed into the feed trough 37 and fed into the feed trough 37. The feed trough 37 is a material trough having a plurality of material rods, and the plurality of material rods are fed into the feed trough 37 and fed into the feed trough 37. The plurality of material rods are fed into the feed trough 37 and fed into the feed trough 37. Through the cooperation of the lifting bin 35 and the feeding mechanism 2, the material rods 7 can automatically roll into the material trough 37 in groups, without the need for manual transportation in groups. Manual transportation also requires the material rods 7 to be aligned with the material trough 37 to facilitate subsequent cutting, which is time-consuming and labor-intensive. At the same time, the inclined setting of the material trough 37 can avoid congestion of the material rods 7 when they roll down, and three groups of material rods 7 can be placed in the material trough 37 at the same time, and the three groups of material rods 7 can be cut at the same time, thereby improving production efficiency, and reducing the cutting cycle through automatic loading.

[0025] like Figure 3-Figure 6 As shown, the feeding mechanism 2 includes a feeding base 21; a feeding screw 22 is rotatably connected to the side wall of the feeding base 21; a push plate 24 is threadedly connected to the feeding screw 22; a notch 27 is provided on the feeding base 21; the push plate 24 is arranged to pass through the notch 27; a driven gear 25 and a transmission gear 26 are rotatably connected to the side wall of the feeding base 21; the driven gear 25 is meshed with the transmission gear 26; the output end of the driven gear 25 is fixedly connected to the input end of the feeding screw 22; a rack 344 is fixedly connected to the side wall of the connecting block 341; the end of the transmission gear 26 away from the driven gear 25 is movably meshed with the rack 344; During operation, when the material transfer base moves toward the feeding base 21, the rack 344 on the side wall of the connecting block 341 will mesh with the transmission gear 26 and drive the transmission gear 26 to rotate. The transmission gear 26 will drive the driven gear 25 to rotate, and then drive the feeding screw 22 in the feeding base 21 to rotate. That is, when the material transfer base is close to the feeding base 21, the feeding screw 22 drives the push plate 24 to move and pushes the material rod 7 to roll to the material trough 37 on the material transfer base to realize automatic loading. After the loading is completed, the material transfer base moves to the cutting mechanism 5 with the material rod 7, and drives the feeding screw 22 to rotate again, so that the push plate 24 moves back. After moving back, the staff again The material rods 7 are moved to the feeding base 21 and wait for the next feeding. The staff only needs to place the material rods 7 on the feeding base 21 for this transportation. There is no need to organize the material rods 7. They can be pushed by the push plate 24 later. The setting of the feeding base 21 can cooperate with the material transfer base. When the material transfer base arrives, the material rods 7 are pushed into the material trough 37 by the push plate 24, which facilitates the loading of the material rods 7. And through the setting of the material trough 37, there is no need to manually organize the material rods 7. After the loading is completed, the push plate 24 moves back and the material rods 7 can be moved to the feeding base 21 again without sorting until the next push plate 24 pushes the material rods 7 into the material trough 37.

[0026] like Figure 7 and Figure 8 As shown, the driving mechanism 6 includes a driving base 61; a driving slot 62 is formed in the driving base 61; a driving screw 63 is rotatably connected to the driving slot 62; a placement table 65, a base 1 66 and a base 2 67 are fixedly connected to the driving base 61; two groups of driving screws 63 are provided, respectively arranged below the base 1 66 and the base 2 67; the fixing mechanism 4 is arranged above the base 1 66; and the cutting mechanism 5 is arranged above the base 2 67; During operation, when the material rod 7 reaches the material trough 37, the material trough 37 is driven to move toward the placement table 65. During movement, the two sets of driving screws 63 are driven to rotate, which will drive the cutting mechanism 5 and the fixing mechanism 4 to move toward the placement table 65, and perform fixing and cutting work. At the same time, the moving distance of the material trough 37 is driven according to the size to be cut.

[0027] like Figure 7 and Figure 8As shown, the fixing mechanism 4 includes an L-pillar 41; the L-pillar 41 is slidably arranged in a base 66; the bottom of the L-pillar 41 is threadedly connected to the driving screw 63; the L-pillar 41 is rotatably connected to a fixed screw 42; two groups of fixed screws 42 are provided; the fixed screw 42 is threadedly connected to a connecting plate 45; the connecting plate 45 is fixedly connected to a connecting column 46; the end of the connecting column 46 away from the connecting plate 45 is fixedly connected to a pressure plate 47; the end of the fixed screw 42 away from the connecting plate 45 is fixedly connected to a pinion 43; the top of the L-pillar 41 is rotatably connected to a large gear 44; the small gears 43 are provided on both sides of the large gear 44; the large gear 44 is meshed with the small gear 43; During operation, when the material rod 7 reaches the placement table 65 and needs to be cut, the driving screw 63 in the driving base 61 is driven to rotate, and the rotation will drive the L column 41 to move toward the placement table 65. During the movement, the two sets of fixed screws 42 on the L column 41 will be driven to rotate, and the rotation will drive the connecting plate 45 to descend, so that the bottom plate is close to the material rod 7 during the movement, and the material rod 7 is fixed, and then the subsequent cutting is started.

[0028] like Figure 7 and Figure 8 As shown, the cutting mechanism 5 includes a slide 51; the slide 51 is slidably connected to the base 2 67; the slide 51 is an L-shaped structure; the end of the slide 51 away from the base 2 67 is threadedly connected to the drive screw 63; the top of the slide 51 is fixedly connected to the cutting chamber 52; the cutting chamber 52 is provided with a cutting blade assembly 54; the top of the cutting chamber 52 is fixedly connected to the rack 3 53; the rack 3 53 is movably engaged with the large gear 44; During operation, when the screw rod 63 is driven to rotate, the L column 41 and the slide 51 are driven to move toward the placement table 65 at the same time. When the slide 51 moves, it will drive the cutting chamber 52 above to move together. When the cutting chamber 52 moves toward the placement table 65, the rack three 53 on the top of the cutting chamber 52 will mesh with the large gear 44 on the L column 41, and drive the large gear 44 to rotate when moving, thereby driving the pressure plate 47 to descend and fix the material rod 7. Before the cutting knife assembly 54 touches the material rod 7, the rack three 53 has already contacted the large gear 44 and caused the pressure plate 47 to descend and fix it. After the fixing is completed, the rack three 53 and the large gear 44 are disengaged and then stop. The driving screw 63 in the base 1 66 rotates, and then continues to drive the driving screw 63 in the base 61 2 to rotate, driving the cutting knife assembly 54 to cut the material rod 7. After the cutting is completed, the cutting mechanism 5 is driven to move back. While moving back, the rack three 53 and the large gear 44 are used to drive the pressure plate 47 to rise, cancel the fixation of the material rod 7, and then take out the material rod 7. Through the setting of the fixing mechanism 4 and the cutting mechanism 5, the material rod 7 can be fixed and cut at the same time, and the material rod 7 shakes during cutting, affecting the cutting accuracy. Through the setting of the large gear 44 and the rack three 53, the pressure plate 47 can be lowered during movement, thereby fixing the material rod 7.

[0029] like Figure 3 and Figure 8 As shown, the side wall of the feeding base 21 is fixedly connected to the limit rod 23; the push plate 24 is set through the limit rod 23; the bottom of the slide plate 51 is fixedly connected to the limit foot 511; the limit foot 511 is slidably set on the base 2 67; the base 1 66 and the base 2 67 are connected to the driving groove 62; During operation, the push plate 24 can be limited by the limiting rod 23 to prevent the push plate 24 from deflecting, and the slide plate 51 can be supported by the limiting foot 511 .

[0030] like Figure 1 As shown, the side wall of the driving base 61 is fixedly connected to a driving motor 64; the driving motor 64 is provided with two groups; the driving screw 63 is driven by the driving motor 64; the side wall of the fixed base 31 is fixedly connected to the material feeding motor 311; the material feeding screw 32 is driven by the material feeding motor 311; During operation, the two sets of driving motors 64 can drive the driving screw 63 to rotate, thereby realizing the movement of the cutting mechanism 5 and the fixing mechanism 4, and the feeding motor 311 drives the feeding screw 32 to rotate, thereby realizing the loading of the material rod 7.

[0031] See also Figures 1-8 As shown, the present application provides a method for producing spare parts for geological sampling equipment, comprising the following steps: S1, place the material rod 7 on the feeding base 21, and then drive the fixed base 31 to move toward the feeding base 21. During the movement, the push plate 24 is driven by the rack 344 to push the material rod 7 into the material trough 37; S2: After the material rod 7 reaches the material trough 37, it is transported to the placement table 65 through the material trough 37. Then, the fixing mechanism 4 and the cutting mechanism 5 are driven to move toward the material rod 7. During the movement, the rack 53 in the cutting mechanism 5 drives the large gear 44 in the fixing mechanism 4 to rotate, thereby causing the pressing plate 47 to descend and fix the material rod 7. The cutting operation begins at the same time as the fixing. S3, after the cutting is completed, the material rod 7 is removed, and then the material trough 37 is moved back to the feeding base 21, and then the feeding base 21 again feeds the material rod 7 into the material trough 37 for the next cutting; During operation, the material rod 7 is placed on the feeding base 21, and then the fixed base 31 is driven to move toward the feeding base 21. During the movement, the push plate 24 is driven by the setting of the rack 1 344 to push the material rod 7 into the material trough 37. After the material rod 7 reaches the material trough 37, it is transported to the placement table 65 through the material trough 37, and then the fixing mechanism 4 and the cutting mechanism 5 are driven to move toward the material rod 7. While moving, the rack 3 53 in the cutting mechanism 5 drives the large gear 44 in the fixing mechanism 4 to rotate, so that the pressing plate 47 descends to fix the material rod 7, and the cutting operation is started while fixing it. After the cutting is completed, the material rod 7 is taken down, and then the material trough 37 is moved back to the feeding base 21, and then the feeding base 21 sends the material rod 7 into the material trough 37 again for the next cutting.

[0032] The working principle of the present invention is as follows: after the material transmission mechanism 3 sends the material rod 7 to the cutting and the cutting is completed, the material trough 37 in the material transmission mechanism 3 is driven to move back to the feeding mechanism 2. When working, the material transmission screw 32 in the fixed base 31 is driven to rotate. When rotating, the material transmission block 33 and the material transmission chassis 34 will be driven to move, and the material trough 37 will be driven to move toward the feeding mechanism 2. When the material transmission chassis 34 moves, the connecting gear 38 at its bottom will engage with the rack 2 39 on the fixed base 31, and when moving, the connecting gear 38 is driven to rotate through the rack 2 39, thereby driving the lifting screw 351 in the lifting bin 35 to rotate, and driving the lifting block 36 to descend. During the descent, the hinged piece 371 will be used to drive the material trough 37 to descend. During the descent, the lifting bin 35 drives the material trough When one end of 37 drops, the material trough 37 will be offset. At the same time, when the feeding mechanism 2 pushes the material rod 7 onto the material trough 37, the material rod 7 will roll down on the material trough 37. First, the material rod 7 will roll into the groove in the material trough 37 near the feeding mechanism 2, and then the material rod 7 will enter the slot 27. When the next group of material rods 7 rolls again, they will cross the first group of material rods 7 and reach the rear slot 27. Finally, the third group will enter the material trough 37. After entering, the fixed base 31 drives the material transfer chassis 34 to move toward the cutting mechanism 5. During movement, the connecting gear 38 meshes with the rack 2 39 again and drives the rotation, so that the material trough 37 rises and is in a parallel state, and then the material rod 7 is fixed and cut. Through the setting of the feeding mechanism 3, the automatic loading of the material rod 7 can be realized while the material trough 37 moves.

[0033] Among them, when the material transfer base moves toward the feeding base 21, the rack 344 on the side wall of the connecting block 341 will mesh with the transmission gear 26 and drive the transmission gear 26 to rotate. The transmission gear 26 will drive the driven gear 25 to rotate, and then drive the feeding screw 22 in the feeding base 21 to rotate. That is, when the material transfer base is close to the feeding base 21, the feeding screw 22 drives the push plate 24 to move and pushes the material rod 7 to roll to the material trough 37 on the material transfer base to realize automatic loading. After the loading is completed, the material transfer base moves to the cutting mechanism 5 with the material rod 7, and drives the feeding screw 22 to rotate again, so that the push plate 24 moves back. After moving back, the staff will again The material rods 7 are transported to the feeding base 21 and wait for the next feeding. The staff only needs to place the material rods 7 on the feeding base 21 for this transportation. There is no need to organize the material rods 7. They can be pushed by the push plate 24 later. The setting of the feeding base 21 can cooperate with the material transfer base. When the material transfer base arrives, the material rods 7 are pushed into the material trough 37 by the push plate 24, which facilitates the loading of the material rods 7. And through the setting of the material trough 37, there is no need to manually organize the material rods 7. After the loading is completed, the push plate 24 moves back and the material rods 7 can be transported to the feeding base 21 again without sorting until the next push plate 24 pushes the material rods 7 into the material trough 37.

[0034] The above is a detailed description of an embodiment of the present invention. However, the content described is only a preferred embodiment of the present invention and should not be considered to limit the scope of the present invention. All equivalent changes and improvements made within the scope of the present invention should still fall within the scope of the patent coverage of the present invention.

Claims

1. A device for producing spare parts for geological sampling equipment, comprising a workbench (1) and a material rod (7), characterized in that: Also includes: A feeding mechanism (2) is arranged on the workbench (1); A material transfer mechanism (3) is provided on one side of the material feeding mechanism (2); A fixing mechanism (4) is provided at one end of the workbench (1); A cutting mechanism (5) is provided on one side of the fixing mechanism (4); A driving mechanism (6) is arranged below the fixing mechanism (4) and the cutting mechanism (5); The material rod (7) is placed in the feeding mechanism (2), and the material rod (7) is transported to the transfer mechanism (3) through the feeding mechanism (2). The material rod (7) is then transported to the middle of the fixing mechanism (4) and the cutting mechanism (5) by the transfer mechanism (3), and then the material rod (7) is fixed by the fixing mechanism (4) and cut at the same time.

2. A spare parts production device for geological sampling equipment according to claim 1, characterized in that: The material feeding mechanism (3) comprises a fixed base (31), a material feeding chassis (34) and a material trough (37); a material feeding screw (32) is rotatably connected in the fixed base (31); two groups of material feeding screws (32) are provided; a material feeding block (33) is fixedly connected to the bottom of the material feeding chassis (34); an end of the material feeding block (33) away from the material feeding chassis (34) is threadedly connected to the material feeding screw (32); a lifting bin (35) and a connecting block (341) are fixedly connected to the material feeding chassis (34); a lifting screw (351) is rotatably connected in the lifting bin (35); a lifting block (36) is threadedly connected to the lifting screw (351); the lifting block (36) is threadedly connected to the lifting block (36). 6) The side wall is hinged with a hinge piece (371); the end of the connecting block (341) away from the material transfer chassis (34) is rotatably connected to the hinge rod (342); the side wall of the material trough (37) is fixedly connected to the hinge piece (371); the bottom of the material trough (37) is fixedly connected to the hinge block (343); the hinge block (343) is rotatably connected to the hinge rod (342); the side wall of the fixed base (31) is fixedly connected to the second rack (39); the top of the lifting bin (35) is fixedly connected to the connecting gear (38); the connecting gear (38) is movably engaged with the second rack (39); the output end of the connecting gear (38) is fixedly connected to the input end of the lifting screw (351).

3. A spare parts production device for geological sampling equipment according to claim 2, characterized in that: The feeding mechanism (2) includes a feeding base (21); a feeding screw (22) is rotatably connected to the side wall of the feeding base (21); a push plate (24) is threadedly connected to the feeding screw (22); a notch (27) is provided on the feeding base (21); the push plate (24) is arranged to pass through the notch (27); a driven gear (25) and a transmission gear (26) are rotatably connected to the side wall of the feeding base (21); the driven gear (25) and the transmission gear (26) are meshed and connected; the output end of the driven gear (25) is fixedly connected to the input end of the feeding screw (22); a rack (344) is fixedly connected to the side wall of the connecting block (341); and the end of the transmission gear (26) away from the driven gear (25) is movably meshed with the rack (344).

4. A spare parts production device for geological sampling equipment according to claim 3, characterized in that: The driving mechanism (6) includes a driving base (61); a driving groove (62) is provided in the driving base (61); a driving screw (63) is rotatably connected in the driving groove (62); a placing table (65), a base 1 (66) and a base 2 (67) are fixedly connected to the driving base (61); two groups of the driving screw (63) are provided, which are respectively provided below the base 1 (66) and the base 2 (67); the fixing mechanism (4) is provided above the base 1 (66); and the cutting mechanism (5) is provided above the base 2 (67).

5. A spare parts production device for geological sampling equipment according to claim 4, characterized in that: The fixing mechanism (4) includes an L-pillar (41); the L-pillar (41) is slidably arranged in a base (66); the bottom of the L-pillar (41) is threadedly connected to the driving screw (63); the L-pillar (41) is rotatably connected to a fixed screw (42); two groups of fixed screws (42) are provided; the fixed screw (42) is threadedly connected to a connecting plate (45); the connecting plate (45) is fixedly connected to a connecting column (46); the end of the connecting column (46) away from the connecting plate (45) is fixedly connected to a pressure plate (47); the end of the fixed screw (42) away from the connecting plate (45) is fixedly connected to a small gear (43); the top of the L-pillar (41) is rotatably connected to a large gear (44); the small gear (43) is provided on both sides of the large gear (44); the large gear (44) is meshed with the small gear (43).

6. A spare parts production device for geological sampling equipment according to claim 5, characterized in that: The cutting mechanism (5) includes a slide plate (51); the slide plate (51) is slidably connected to the base 2 (67); the slide plate (51) is an L-shaped structure; the end of the slide plate (51) away from the base 2 (67) is threadedly connected to the driving screw (63); the top of the slide plate (51) is fixedly connected to a cutting chamber (52); a cutting knife assembly (54) is provided in the cutting chamber (52); the top of the cutting chamber (52) is fixedly connected to a rack 3 (53); the rack 3 (53) is movably engaged with the large gear (44).

7. A spare parts production device for geological sampling equipment according to claim 6, characterized in that: The side wall of the feeding base (21) is fixedly connected to the limiting rod (23); the push plate (24) is arranged to pass through the limiting rod (23); the bottom of the slide plate (51) is fixedly connected to the limiting foot (511); the limiting foot (511) is slidably arranged on the base 2 (67); the base 1 (66) and the base 2 (67) are connected to the driving groove (62).

8. The spare parts production device for geological sampling equipment according to claim 7, characterized in that: The side wall of the driving base (61) is fixedly connected to a driving motor (64); two groups of driving motors (64) are provided; the driving screw (63) is driven by the driving motor (64); the side wall of the fixed base (31) is fixedly connected to a material transfer motor (311); the material transfer screw (32) is driven by the material transfer motor (311).

9. A method for producing parts for geological sampling equipment, using the device for producing parts for geological sampling equipment according to claim 8, characterized in that: The following steps are involved: S1, placing the material rod (7) on the feeding base (21), and then driving the fixed base (31) to move toward the feeding base (21). During the movement, the push plate (24) is driven by the setting of the rack (344) to push the material rod (7) into the material trough (37); S2, after the material rod (7) arrives in the material trough (37), it is transported to the placement table (65) through the material trough (37), and then the fixing mechanism (4) and the cutting mechanism (5) are driven to move toward the material rod (7). While moving, the rack three (53) in the cutting mechanism (5) drives the large gear (44) in the fixing mechanism (4) to rotate, thereby causing the pressing plate (47) to descend and fix the material rod (7), and the cutting operation starts at the same time as the fixing; S3, after the cutting is completed, the material rod (7) is taken down, and then the material trough (37) is moved back to the feeding base (21), and then the feeding base (21) again sends the material rod (7) into the material trough (37) for the next cutting.

Citation Information

Patent Citations

  • Metal bar cutting device

    CN212350579U