A lock cylinder machining device

By designing a lock cylinder processing equipment that includes components for feeding, transferring, drilling, and boring, the lock cylinder processing has been automated, solving the problem that existing equipment requires manual intervention in each process and improving operational efficiency.

CN224587031UActive Publication Date: 2026-08-04HUA YUE WU JIN SHEN ZHEN YOU XIAN GONG SI
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUA YUE WU JIN SHEN ZHEN YOU XIAN GONG SI
Filing Date
2025-03-21
Publication Date
2026-08-04

AI Technical Summary

Technical Problem

Existing lock cylinder processing equipment requires manual intervention in each process of feeding and unloading materials, which is cumbersome.

Method used

A lock cylinder processing device was designed, comprising a feeding component, a transfer component, a drilling component, and a boring component. The transfer component switches back and forth between the drilling position and the boring position to automatically complete the drilling and boring operations of the lock cylinder, and the unloading component realizes the automatic removal of the lock cylinder, reducing manual intervention.

Benefits of technology

It has improved the automation level of lock cylinder processing equipment, simplified the operation process, and increased work efficiency.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224587031U_ABST
    Figure CN224587031U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of lock cylinder processing, especially to a lock cylinder processing equipment, including work table, mounting seat and install on the work table's feeding assembly, blanking assembly, transfer assembly, drilling assembly and boring assembly, be equipped with the mounting groove for lock cylinder installation on the mounting seat, the mounting seat with transfer assembly link to each other, the mounting groove has the feeding hole and the discharge hole, the feeding assembly is used for transporting lock cylinder to the mounting groove through the feeding hole, the transfer assembly is used for switching back and forth between the drilling position and boring position of mounting seat, in the drilling position, the drilling assembly can carry out drilling to the lock cylinder in the mounting groove, in the boring position, the boring assembly is used for boring to the lock cylinder in the mounting groove, the blanking assembly is used for removing lock cylinder from the mounting groove through the discharge hole. Simple operation improves work efficiency.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of lock cylinder processing technology, and in particular to a lock cylinder processing equipment. Background Technology

[0002] During the production of lock cylinders, it is necessary to drill and bore holes in the lock cylinder.

[0003] Existing lock cylinder processing equipment includes a workbench, a drilling device, and a boring device. The drilling device and the boring device are arranged alternately on the workbench. When processing the lock cylinder, the lock cylinder is placed manually on the drilling device and the boring device respectively, so that the drilling device drills holes in the lock cylinder and the boring device boring holes in the lock cylinder.

[0004] The existing lock cylinder processing equipment has separate processes for drilling and boring, and each process requires manual feeding and unloading of materials, which is cumbersome. Summary of the Invention

[0005] This utility model provides a lock cylinder processing equipment, which aims to solve the problem that existing lock cylinder processing equipment requires manual feeding and unloading of materials for each process, resulting in cumbersome operation.

[0006] This utility model provides a lock cylinder processing equipment, including a workbench, a mounting base, and a feeding assembly, a discharging assembly, a transfer assembly, a drilling assembly, and a boring assembly mounted on the workbench;

[0007] The mounting base is provided with a mounting slot for mounting the lock cylinder. The mounting base is connected to the transfer assembly. The mounting slot has a feed hole and a discharge hole. The feeding assembly is used to transport the lock cylinder to the mounting slot through the feed hole. The transfer assembly is used to switch the mounting base back and forth between a drilling position and a boring position. In the drilling position, the drilling assembly can drill a hole in the lock cylinder in the mounting slot. In the boring position, the boring assembly is used to bore a hole in the lock cylinder in the mounting slot.

[0008] The feeding assembly is used to remove the lock cylinder from the mounting slot through the discharge hole.

[0009] Optionally, the mounting groove has a clearance hole on its side wall, and the drilling assembly includes multiple drilling mechanisms, which are spaced apart. The multiple drilling mechanisms are used to drill holes at different positions on the circumferential surface of the lock cylinder through the clearance hole.

[0010] The boring assembly includes multiple boring mechanisms, which are spaced apart and used to bore holes at different positions on the end face of the lock cylinder through the discharge hole.

[0011] Optionally, the boring assembly further includes a stop mechanism connected to the worktable. The stop mechanism and the boring mechanism are respectively arranged on opposite sides of the mounting base, and the stop mechanism is used to block the feed hole.

[0012] Optionally, the transfer assembly includes a transfer disk and a transfer drive mechanism, a plurality of drilling mechanisms are arranged at circumferential intervals around the transfer disk, and a plurality of boring mechanisms are arranged at circumferential intervals around the transfer disk.

[0013] The transfer drive mechanism is connected to the worktable, the transfer tray is connected to the transfer drive mechanism, the mounting base is installed on the edge of the transfer tray, and the mounting groove is located at the end of the mounting base away from the transfer tray;

[0014] The transfer drive mechanism is used to drive the transfer disk to rotate around the first axis.

[0015] Optionally, multiple mounting bases are provided, and the multiple mounting bases are arranged at circumferential intervals on the edge of the transfer disk.

[0016] Optionally, the feeding assembly includes a feeding mechanism and a transport mechanism;

[0017] The feeding mechanism includes a vibrating plate and a first transport seat. The vibrating plate includes a vibrating body and a discharge track. The vibrating body is provided with a discharge port. The first transport seat is provided with a long groove. The discharge track is connected to the discharge port. One end of the long groove is connected to the end of the discharge track away from the discharge port. The other end of the long groove is close to the transport mechanism.

[0018] The vibrating body is used to transport the lock core stored inside to the elongated groove via the discharge track through vibration;

[0019] The transport mechanism is used to transport the lock cylinder through the feed hole to the mounting slot.

[0020] Optionally, the transport mechanism includes a first drive mechanism, a transport platform, a second transport seat, and a pushing mechanism. The second transport seat is provided with a transfer slot for installing a lock cylinder. The transport platform is connected to the workbench, the first drive mechanism is connected to the transport platform, and the second transport seat is connected to the first drive mechanism.

[0021] The first driving mechanism can drive the transport seat to move between the receiving position and the discharging position. At the receiving position, one end of the transfer trough is connected to the long groove. At the discharging position, the other end of the transfer trough is connected to the mounting groove.

[0022] The pushing mechanism is used to push the lock core in the transfer slot into the mounting slot through the feed hole.

[0023] Optionally, the pushing mechanism includes a first push rod and a second driving mechanism. The second driving mechanism is connected to the worktable, and the first push rod is connected to the second driving mechanism. The second driving mechanism can drive the first push rod to move towards or away from the transfer tray. The first push rod can push the lock core in the transfer slot into the mounting slot through the feed hole.

[0024] Optionally, the unloading assembly includes a second push rod and a third drive mechanism, wherein the third drive mechanism is connected to the worktable, and the second push rod is connected to the third drive mechanism;

[0025] The third drive mechanism can drive the second push rod to move closer to or further away from the transfer plate, and the third drive mechanism can drive the second push rod to enter the mounting groove through the discharge hole to push out the lock cylinder in the mounting groove.

[0026] Optionally, the lock cylinder processing equipment further includes a receiving bin disposed on the workbench, the receiving bin being located below the transfer tray.

[0027] According to the lock cylinder processing equipment provided in this embodiment of the present invention, compared with the prior art, the feeding component transports the lock cylinder to the transfer component. The transfer component can switch the mounting base back and forth between the drilling position and the boring position, so that the drilling component can perform drilling operations on the lock cylinder on the mounting base moved to the drilling position, and the boring component can perform boring operations on the lock cylinder on the mounting base moved to the boring position. The unloading component can remove the processed lock cylinder from the mounting base, reducing manual intervention, improving the automation of the lock cylinder processing equipment, simplifying operation, and improving work efficiency. Attached Figure Description

[0028] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments of this utility model will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0029] Figure 1 This is a schematic diagram of the structure of a lock cylinder processing equipment provided in one embodiment of the present invention;

[0030] Figure 2 for Figure 1 Another perspective;

[0031] Figure 3A partial structural diagram of a lock cylinder processing equipment provided in an embodiment of this utility model. Figure 1 ;

[0032] Figure 4 This is a partial structural diagram of a lock cylinder processing equipment provided in an embodiment of the present invention. Figure 2 .

[0033] Instruction manual drawing reference numerals: 1. Feeding assembly; 2. Drilling assembly; 3. Translation mechanism; 4. Translation seat; 5. First mounting frame; 6. Drilling machine; 7. Mounting platform; 8. Boring assembly; 9. Boring machine; 10. Second mounting frame; 11. Unloading assembly; 12. Receiving bin; 13. Vibrating plate; 14. Vibrating body; 15. Discharge track; 16. First transport seat; 17. Long groove; 18. Lock cylinder; 19. Transport platform; 20. First cylinder; 21. Second transport seat; 22. Transfer trough; 23. 24. Transport slide rail; 25. Translation motor; 26. Translation slide block; 27. Translation slide rail; 28. Translation lead screw; 29. ​​Transfer motor; 30. Transfer plate; 31. Mounting base; 32. Mounting groove; 33. Feed hole; 34. Discharge hole; 35. Clearance hole; 36. Transfer hole; 37. Output shaft; 38. Stop cylinder; 39. Stop rod; 40. Third mounting bracket; 41. Third cylinder; 42. Second push rod; 43. Second cylinder; 44. First push rod; 45. Worktable. Detailed Implementation

[0034] To make the technical problems solved, technical solutions, and beneficial effects of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.

[0035] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0036] like Figures 1 to 4 As shown, one embodiment of this utility model provides a lock core processing equipment, including a worktable 45, a mounting base 31, and a loading assembly 1, a unloading assembly 11, a transfer assembly, a drilling assembly 2, and a boring assembly 8 mounted on the worktable 45.

[0037] The mounting base 31 is provided with a mounting groove 32 for mounting the lock cylinder 18. The mounting base 31 is connected to the transfer assembly. The mounting groove 32 has a feed hole 33 and a discharge hole 34 arranged opposite to each other. The feeding assembly 1 is used to transport the lock cylinder 18 through the feed hole to the mounting groove 32. The transfer assembly is used to switch the mounting base 31 back and forth between the drilling position and the boring position. In the drilling position, the drilling assembly 2 can drill the lock cylinder 18 in the mounting groove 32. In the boring position, the boring assembly 8 is used to bore the lock cylinder 18 in the mounting groove 32.

[0038] The feeding assembly 11 is used to remove the lock cylinder 18 from the mounting slot 32 through the discharge hole 34.

[0039] In this embodiment, the feed hole 33 and the discharge hole 34 are located at opposite ends of the mounting groove 32, and are connected to the mounting groove 32. The loading assembly 1 transports the lock cylinder 18 to the transfer assembly via the feed hole 33. The transfer assembly can switch the mounting base 31 back and forth between the drilling position and the boring position, so that the drilling assembly 2 can drill the lock cylinder 18 on the mounting base 31 when it is moved to the drilling position, and the boring assembly 8 can bore the lock cylinder 18 on the mounting base 31 when it is moved to the boring position. The unloading assembly 11 can remove the processed lock cylinder 18 from the mounting base 31 via the discharge hole 34. This reduces manual intervention, improves the automation of the lock cylinder processing equipment, simplifies operation, and increases work efficiency.

[0040] In one embodiment, the mounting groove 32 has a clearance hole 35 on its side wall, and the drilling assembly 2 includes a plurality of drilling mechanisms, which are spaced apart and are used to drill holes in different positions on the circumferential surface of the lock cylinder 18 through the clearance hole 35.

[0041] The boring assembly 8 includes multiple boring mechanisms, which are spaced apart and used to bore different positions on the end face of the lock cylinder 18 through the discharge hole 34.

[0042] In this embodiment, the drilling mechanism includes a drilling machine 6 and a translation mechanism 3. The drilling machine 6 is existing technology and will not be described in detail here. The translation mechanism 3 is a screw and nut mechanism, which includes a translation seat 4, a translation screw 28, a translation motor 24, a translation slide rail 26, and a translation slide block 25. The translation motor 24 is mounted on a first mounting frame 5 vertically arranged on the worktable 45, and the translation slide rail 26 is arranged on the first mounting frame 5. One end of the translation screw 28 is connected to the translation motor 24. The transmission connection is as follows: the other end of the translation screw 28 is rotatably mounted on the first mounting bracket 5; the translation slide rail 26 is set on the first mounting bracket 5; the translation slide rail 26 is set parallel to the translation screw 28; the translation slide seat 25 is helically mounted on the translation screw 28; the translation slide seat 25 has a translation groove 27 on the side facing the translation slide rail 26; the translation groove 27 is slidably mounted with the translation slide rail 26; the translation seat 4 is mounted on the translation slide seat 25; and the drilling and mounting are performed on the translation seat 4.

[0043] The first mounting bracket 5 is located on one side of the feed hole of the mounting base 31. During operation, the translation motor 24 drives the translation screw 28 to rotate, so that the translation slide 25 and the translation base 4 move towards or away from the mounting base 31, thereby adjusting the position of the drilling machine 6 to drill holes at different positions on the circumference of the lock core 18.

[0044] In this embodiment, the boring assembly 8 includes a boring machine 9 and a second mounting bracket 10 mounted on the worktable 45. The boring machine 9 is mounted on the second mounting bracket 10. The boring machine 9 is existing technology and will not be described in detail here.

[0045] In this embodiment, the drilling mechanism is used to drill holes in the circumferential surface of the lock cylinder 18. The clearance hole 35 is connected to the mounting groove 32, and the drilling mechanism drills holes in the lock cylinder 18 in the mounting groove 32 through the clearance hole 35.

[0046] The boring mechanism can perform boring operations on the holes on the end face of the lock cylinder 18 in the mounting groove 32 through the discharge hole 34, thereby improving the accuracy of the holes on the end face of the lock cylinder 18.

[0047] In this embodiment, "multiple" refers to two or more. Multiple drilling mechanisms can perform drilling operations on different positions of the lock cylinder 18, and multiple boring mechanisms can perform boring operations on different positions of the lock cylinder 18, which can further improve work efficiency.

[0048] In one embodiment, the boring assembly 8 further includes a stop mechanism connected to the worktable 45. The stop mechanism and the boring mechanism are respectively arranged on opposite sides of the mounting base 31. The stop mechanism is used to block the feed hole.

[0049] The transfer assembly includes a transfer disk 30 and a transfer drive mechanism. Multiple drilling mechanisms are arranged circumferentially around the transfer disk 30, and multiple boring mechanisms are arranged circumferentially around the transfer disk 30.

[0050] The transfer drive mechanism is connected to the worktable 45, the transfer disk 30 is connected to the transfer drive mechanism, the mounting base 31 is mounted on the edge of the transfer disk 30, and the mounting groove 32 is located at the end of the mounting base 31 away from the transfer disk 30.

[0051] The transfer drive mechanism is used to drive the transfer disk 30 to rotate around the first axis.

[0052] In this embodiment, the transfer drive mechanism includes a transfer motor 29, which is mounted on a mounting platform 7 on a worktable 45. The transfer disk 30 is circular, and a transfer hole 36 is provided in the center of the transfer disk 30. The output shaft 37 of the transfer motor 29 passes through the transfer hole 36. The inner wall of the transfer hole 36 is anti-rotationally fitted with the output shaft 37 of the transfer motor 29. In this embodiment, the anti-rotationally fitted means that the inner wall of the transfer hole 36 and the output shaft 37 of the transfer motor 29 are interference fit.

[0053] Mounting base 31 is mounted on the circumferential edge of transfer plate 30. The end of mounting base 31 away from transfer hole 36 extends out of transfer plate 30. Mounting groove 32 is provided at the end of mounting base 31 away from transfer hole 36 and extends axially along transfer plate 30.

[0054] In this embodiment, multiple drilling mechanisms are arranged at circumferential intervals around the transfer disk 30.

[0055] In this embodiment, only one first mounting bracket 5 of the drilling mechanism is installed on the mounting platform 7. The first mounting bracket 5 is located at the upper part of the mounting platform 7, and the rest of the first mounting brackets 5 are installed on the worktable 45.

[0056] During operation, the transfer motor 29 drives the transfer disk 30 to rotate, thereby changing the position of the mounting seat 31 on the transfer disk 30 so that the mounting seat 31 can be moved to the drilling position or the boring position.

[0057] In this embodiment, the boring machine 9 and the stopping mechanism are arranged opposite each other on both sides of the transfer plate 30 in the thickness direction.

[0058] In this embodiment, the stopping structure includes a stopping cylinder 38 and a stopping rod 39. The stopping cylinder 38 is mounted on the mounting platform 7, and the stopping rod 39 is connected to the stopping cylinder 38. The diameter of the stopping rod 39 is larger than the diameter of the feed hole 33. When the boring machine 9 bores the lock cylinder 18 in the mounting groove 32, the stopping cylinder 38 drives the stopping rod 39 to move towards the mounting base 31, so that the stopping rod 39 blocks the feed hole, thereby blocking and limiting the lock cylinder 18 in the mounting groove 32, and assisting the boring machine 9 in the boring operation of the lock cylinder 18.

[0059] In one embodiment, multiple mounting bases 31 are provided, and the multiple mounting bases 31 are arranged at intervals around the circumference of the transfer disk 30 on the edge of the transfer disk 30.

[0060] In this embodiment, "multiple" refers to two or more. Specifically, the number of mounting seats 31 is the same as the total number of drilling machines 6 and boring machines 9. Multiple mounting seats 31 are arranged circumferentially around the edge of the transfer disk 30. Each mounting seat 31 is provided with a mounting groove 32, so that the lock cylinder 18 drilling equipment can perform different processes on multiple lock cylinders 18 at the same time, which can further improve work efficiency.

[0061] In one embodiment, the feeding assembly 1 includes a feeding mechanism and a transport mechanism.

[0062] The feeding mechanism includes a vibrating plate 13 and a first transport seat 16. The vibrating plate 13 includes a vibrating body 14 and a discharge track 15. The vibrating body 14 is provided with a discharge port. The first transport seat 16 is provided with a long groove 17. The discharge track 15 is connected to the discharge port. One end of the long groove 17 is connected to the end of the discharge track 15 away from the discharge port. The other end of the long groove 17 is close to the transport mechanism.

[0063] The vibrating body 14 is used to convey the lock cylinder 18 stored inside to the elongated groove 17 via the discharge track 15 through vibration.

[0064] The transport mechanism is used to transport the lock cylinder 18 through the feed hole 33 to the mounting slot 32.

[0065] In this embodiment, the end of the discharge track 15 near the vibrating body 14 is higher than the end of the discharge track 15 near the first transport seat 16. The vibrating body 14 transports the lock cylinder 18 through the discharge port and the discharge track 15 to the elongated groove 17 of the first transport seat 16, and relies on the inertia of the lock cylinder 18 to transport the lock cylinder 18 to the end of the elongated groove 17 away from the discharge track 15. The transport mechanism then transfers the lock cylinder 18 in the elongated groove 17 to the mounting slot 32. The feeding mechanism uses a vibrating plate 13 to transport the lock cylinder 18, which has a simple structure and is easy to design.

[0066] In one embodiment, the transport mechanism includes a first drive mechanism, a transport platform 19, a second transport seat 21, and a pushing mechanism. The second transport seat 21 is provided with a transfer slot 22 for installing the lock cylinder 18. The transport platform 19 is connected to the worktable 45, the first drive mechanism is connected to the transport platform 19, and the second transport seat 21 is connected to the first drive mechanism.

[0067] The first drive mechanism can drive the second transport seat 21 to move between the receiving position and the discharging position. At the receiving position, one end of the transfer trough 22 is connected to the long groove 17, and at the discharging position, the other end of the transfer trough 22 is connected to the mounting groove 32.

[0068] The pushing mechanism is used to push the lock core 18 in the transfer slot 22 through the feed hole 33 into the mounting slot 32.

[0069] In this embodiment, the first driving mechanism is a first cylinder 20. The cylinder body of the first cylinder 20 is mounted on the transport platform 19. The transport platform 19 is provided with a transport slide rail 23. The lower side of the second transport seat 21 is equipped with a transport slide that is slidably assembled with the transport slide rail 23. The piston rod of the first cylinder 20 is connected to the first transport seat 16. The first cylinder 20 drives the first transport seat 16 to move towards or away from the transfer tray 30.

[0070] During operation, the first cylinder 20 drives the second transport seat 21 to move to the receiving position, so that the long transfer groove 22 is connected to the long groove 17, and the lock cylinder 18 in the long groove 17 moves into the long transfer groove 22. Then, the first cylinder 20 drives the second transport seat 21 to move towards the transfer plate 30. When it moves to the discharge position, the long transfer groove 22 is connected to the installation groove 32. While the second transport seat 21 moves towards the discharge position, the side of the second transport seat 21 facing the first transport seat 16 forms a blockage on the long groove 17 to prevent the lock cylinder 18 in the long groove 17 from falling out.

[0071] In one embodiment, the pushing mechanism includes a first push rod 44 and a second driving mechanism. The second driving mechanism is connected to the worktable 45, and the first push rod 44 is connected to the second driving mechanism. The second driving mechanism can drive the first push rod 44 to move towards or away from the transfer plate 30. The first push rod 44 can push the lock core 18 in the transfer slot 22 into the mounting slot through the feed hole 33.

[0072] In this embodiment, the second driving mechanism is a second cylinder 43, which is mounted on the mounting platform 7. The first push rod 44 is connected to the second cylinder 43. The first push rod 44 extends along the axial direction of the transfer plate 30, and the second cylinder 43 drives the first push rod 44 to move towards or away from the transfer plate 30.

[0073] During operation, when the second transport seat 21 moves to the discharge position, the end of the long transfer trough 22 near the transfer plate 30 connects with the mounting groove 32. The second cylinder 43 drives the first push rod 44 to push the lock core 18 in the long transfer trough 22 into the mounting groove 32 through the feed hole 33. The structure is simple and easy to design.

[0074] In one embodiment, the feeding assembly 11 includes a second push rod 42 and a third drive mechanism. The third drive mechanism is connected to the worktable 45, and the second push rod 42 is connected to the third drive mechanism.

[0075] The third drive mechanism can drive the second push rod 42 to move closer to or further away from the transfer plate 30. The third drive mechanism can drive the second push rod 42 to enter the mounting groove 32 through the discharge hole so as to push out the lock cylinder 18 in the mounting groove 32.

[0076] The lock cylinder processing equipment also includes a receiving bin 12 set on the workbench 45, which is located below the transfer plate 30.

[0077] In this embodiment, the third driving mechanism is a third cylinder 41, which is mounted on a third mounting bracket 40 on a workbench 45. The third mounting bracket 40 and the mounting base 31 are arranged opposite each other on both sides of the axial direction of the transfer plate 30. The second push rod 42 is connected to the third cylinder 41, and the receiving bin 12 is located below the transfer plate 30.

[0078] During operation, the third cylinder 41 drives the second push rod 42 to move closer to the transfer plate 30, so that the second push rod 42 enters the mounting groove 32 through the discharge hole 34, thereby pushing the lock cylinder 18 in the mounting groove 32 out of the feed hole 33, so that the lock cylinder 18 falls into the receiving bin 12. Unloading is convenient. The receiving bin 12 facilitates the collection of lock cylinders 18, allowing the lock cylinders 18 to be removed from the receiving bin 12 after all lock cylinders in the same batch have been processed and the entire lock cylinder processing equipment has been shut down.

[0079] The working principle of the lock cylinder processing equipment provided in one embodiment of this utility model is as follows:

[0080] During the processing of the lock cylinder 18, the first cylinder 20 first moves the second transport seat 21 to the receiving position, so that the transfer groove 22 is connected to the long groove 17. The vibrating disc 13 is then activated, causing the vibrating body 14 to transport the lock cylinder 18 through the discharge port and discharge track 15 to the long groove 17 of the first transport seat 16. Relying on the inertia of the lock cylinder 18, it is transported through the long groove 17 to the transfer groove 22. Then, the first cylinder 20 drives the second transport seat 21 to move closer to the transfer disc 30. When it moves to the discharge position, the transfer groove 22 is connected to the mounting groove 32. As the second transport seat 21 moves towards the discharge position, the side of the second transport seat 21 facing the first transport seat 16 forms a blockage in the long groove 17, preventing the lock cylinder 18 from falling out of the long groove 17. Then, the second cylinder 43 drives the second transport seat 21 to move closer to the first transport seat 16. A push rod 44 pushes the lock cylinder 18 in the transfer slot 22 into the mounting slot 32 through the feed hole 33. Then, the transfer motor 29 drives the transfer plate 30 to rotate between multiple boring machines 9 and multiple drilling machines 6, so that the mounting base 31 moves between the boring machines 9 and the drilling machines 6, so that the drilling machines 6 drill holes in the lock cylinder 18 and the boring machines 9 bore holes in the lock cylinder 18. After the lock cylinder 18 has completed all processing steps, the third cylinder 41 drives the second push rod 42 to move towards the transfer plate 30, so that the second push rod 42 enters the mounting slot 32 through the discharge hole 34, thereby pushing the lock cylinder 18 in the mounting slot 32 out of the feed hole 33, so that the lock cylinder 18 falls into the receiving bin 12. After all the lock cylinders 18 in the same batch have been completely processed, the entire lock cylinder processing equipment can be shut down before the lock cylinder 18 is taken out from the receiving bin 12.

[0081] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0082] According to the lock cylinder processing equipment provided in this embodiment of the present invention, compared with the prior art, the feeding component 1 transports the lock cylinder 18 to the transfer component. The transfer component can switch the mounting base 31 back and forth between the drilling position and the boring position, so that the drilling component 2 can perform drilling operations on the lock cylinder 18 on the mounting base 31 that has moved to the drilling position, and the boring component 8 can perform boring operations on the lock cylinder 18 on the mounting base 31 that has moved to the boring position. The unloading component 11 can remove the processed lock cylinder 18 from the mounting base 31, which reduces manual intervention, improves the automation of the lock cylinder processing equipment, simplifies operation, and improves work efficiency.

[0083] The above-described embodiments are only used to illustrate the technical solutions of this utility model, and are not intended to limit it. Although this utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this utility model, and should all be included within the protection scope of this utility model.

Claims

1. A lock cylinder processing equipment, characterized in that, It includes a workbench (45), a mounting base (31), and a loading assembly (1), a unloading assembly (11), a transfer assembly, a drilling assembly (2), and a boring assembly (8) mounted on the workbench (45). The mounting base (31) is provided with a mounting groove (32) for mounting the lock cylinder (18). The mounting base (31) is connected to the transfer assembly. The mounting groove (32) has a feed hole (33) and a discharge hole (34) arranged opposite to each other. The feeding assembly (1) is used to transport the lock cylinder (18) to the mounting groove (32) through the feed hole (33). The transfer assembly is used to switch the mounting base (31) back and forth between the drilling position and the boring position. In the drilling position, the drilling assembly (2) can drill the lock cylinder (18) in the mounting groove (32). In the boring position, the boring assembly (8) is used to bore the lock cylinder (18) in the mounting groove (32). The feeding assembly (11) is used to remove the lock cylinder (18) from the mounting slot (32) through the discharge hole (34).

2. The lock cylinder processing equipment according to claim 1, characterized in that, The mounting groove (32) has a clearance hole (35) on its side wall. The drilling assembly (2) includes multiple drilling mechanisms, which are spaced apart. The multiple drilling mechanisms are used to drill holes at different positions on the circumference of the lock cylinder (18) through the clearance hole (35). The boring assembly (8) includes multiple boring mechanisms, which are spaced apart and used to bore different positions on the end face of the lock cylinder (18) through the discharge hole (34).

3. The lock cylinder processing equipment according to claim 2, characterized in that, The boring assembly (8) also includes a stop mechanism, which is connected to the worktable (45). The stop mechanism and the boring mechanism are respectively arranged on opposite sides of the mounting base (31). The stop mechanism is used to block the feed hole (33).

4. The lock cylinder processing equipment according to claim 3, characterized in that, The transfer assembly includes a transfer disk (30) and a transfer drive mechanism. A plurality of drilling mechanisms are arranged circumferentially around the transfer disk (30), and a plurality of boring mechanisms are arranged circumferentially around the transfer disk (30). The transfer drive mechanism is connected to the worktable (45), the transfer disk (30) is connected to the transfer drive mechanism, the mounting base (31) is mounted on the edge of the transfer disk (30), and the mounting groove (32) is located at the end of the mounting base (31) away from the transfer disk (30). The transfer drive mechanism is used to drive the transfer disk (30) to rotate around the first axis.

5. The lock cylinder processing equipment according to claim 4, characterized in that, The mounting base (31) is provided in multiple ways, and the multiple mounting bases (31) are arranged circumferentially around the edge of the transfer disk (30).

6. The lock cylinder processing equipment according to claim 4, characterized in that, The feeding assembly (1) includes a feeding mechanism and a transport mechanism; The feeding mechanism includes a vibrating plate (13) and a first transport seat (16). The vibrating plate (13) includes a vibrating body (14) and a discharge track (15). The vibrating body (14) is provided with a discharge port. The first transport seat (16) is provided with a long groove (17). The discharge track (15) is connected to the discharge port. One end of the long groove (17) is connected to the end of the discharge track (15) away from the discharge port. The other end of the long groove (17) is close to the transport mechanism. The vibrating body (14) is used to convey the lock core (18) stored inside it through the discharge track (15) to the elongated groove (17) by vibration; The transport mechanism is used to transport the lock cylinder (18) through the feed hole (33) into the mounting slot (32).

7. The lock cylinder processing equipment according to claim 6, characterized in that, The transport mechanism includes a first drive mechanism, a transport platform (19), a second transport seat (21), and a pushing mechanism. The second transport seat (21) is provided with a transfer slot (22) for installing a lock cylinder (18). The transport platform (19) is connected to the workbench (45). The first drive mechanism is connected to the transport platform (19), and the second transport seat (21) is connected to the first drive mechanism. The first driving mechanism can drive the transport seat to move between the receiving position and the discharging position. At the receiving position, one end of the transfer long groove (22) is connected to the long groove (17). At the discharging position, the other end of the transfer long groove (22) is connected to the mounting groove (32). The pushing mechanism is used to push the lock core (18) in the transfer groove (22) into the mounting groove (32) through the feed hole (33).

8. The lock cylinder processing equipment according to claim 7, characterized in that, The pushing mechanism includes a first push rod (44) and a second driving mechanism. The second driving mechanism is connected to the worktable (45). The first push rod (44) is connected to the second driving mechanism. The second driving mechanism can drive the first push rod (44) to move closer to or further away from the transfer plate (30). The first push rod (44) can push the lock core (18) in the transfer slot (22) into the mounting slot (32) through the feed hole (33).

9. The lock cylinder processing equipment according to claim 4, characterized in that, The feeding assembly (11) includes a second push rod (42) and a third drive mechanism. The third drive mechanism is connected to the worktable (45), and the second push rod (42) is connected to the third drive mechanism. The third drive mechanism can drive the second push rod (42) to move closer to or further away from the transfer plate (30), and the third drive mechanism can drive the second push rod (42) to enter the mounting groove (32) through the discharge hole (34) to push out the lock cylinder (18) in the mounting groove (32).

10. The lock cylinder processing equipment according to claim 4, characterized in that, The lock core processing equipment also includes a receiving bin (12) set on the workbench (45), the receiving bin (12) being located below the transfer plate (30).