A drilling device for electronic ceramic components
By designing a drilling device with an adjustable clamping structure and a protective cover, the problems of narrow applicability and waste splashing of existing equipment have been solved, achieving diversified adaptability and improved safety of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHENGDU ZHANYI ELECTRONIC TECH CO LTD
- Filing Date
- 2025-06-11
- Publication Date
- 2026-05-26
AI Technical Summary
The existing drilling equipment's fixing structure cannot adapt to the clamping requirements of electronic ceramic components of different specifications, resulting in a narrow range of applications and difficulty in meeting diverse production requirements. Furthermore, the lack of effective protective measures makes it easy for waste chips to fly, affecting drilling accuracy and safety.
A drilling device comprising a base, dovetail groove, fixed column, L-shaped plate and clamping mechanism was designed. The adjustable clamping structure can accommodate components of different specifications, and a protective cover is provided to prevent debris from splashing. Automated drilling is achieved by using a drive motor and a rotating shaft.
It enables rapid adaptation of equipment to components of different sizes, improves versatility and application flexibility, simplifies operation procedures, enhances safety and stability, and avoids equipment failure and personal injury caused by debris.
Smart Images

Figure CN224275647U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic ceramic component processing technology, and in particular to a drilling device for electronic ceramic components. Background Technology
[0002] In the modern electronics industry, electronic ceramic components, with their excellent dielectric, piezoelectric, and semiconductor properties, are widely used in the manufacturing of core components such as integrated circuits, sensors, and communication equipment. Drilling, as a key process in the processing of electronic ceramic components, directly affects the precision and performance of the components.
[0003] However, the existing drilling equipment has a fixed structure, which cannot adapt to the clamping requirements of electronic ceramic components of different specifications, resulting in a narrow range of applications and difficulty in meeting diverse production requirements. Moreover, during the drilling operation, there is a lack of effective protective measures, and the generated waste chips are easy to fly, which may not only cause injury to the operators, but also affect the drilling accuracy and even damage the equipment. Utility Model Content
[0004] To address the shortcomings of existing technologies, this utility model provides a drilling device for electronic ceramic components. It solves the problem that existing drilling equipment is mostly designed with a fixed structure, which cannot adapt to the clamping requirements of electronic ceramic components of different specifications, resulting in a narrow range of applications and difficulty in meeting diverse production requirements. Furthermore, during the drilling process, there is a lack of effective protective measures, and the generated waste chips are easy to fly around, which may not only cause injury to the operator, but also affect the drilling accuracy and even damage the equipment.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A drilling device for electronic ceramic components includes a base, on which dovetail grooves are symmetrically formed at the upper end. A fixing post is fixedly installed at the center of the upper end of the base. Threaded rings are threaded onto both ends of the fixing post. First springs are symmetrically fixedly installed on the fixing post. L-shaped plates are symmetrically slidably installed inside the two dovetail grooves. Dovetail blocks are symmetrically fixedly installed at the lower ends of the two L-shaped plates. Two sets of dovetail blocks are slidably installed in the two sets of dovetail grooves respectively. Clamping mechanisms are slidably installed inside the two L-shaped plates.
[0007] The clamping mechanism includes a sliding plate, two sliding plates are slidably installed in two L-shaped plates respectively, and a first screw is threadedly installed inside each of the two sliding plates. The two first screws are rotatably installed in the two L-shaped plates respectively.
[0008] Preferably, a second spring is symmetrically fixedly installed at the lower end of each of the two slide plates, and the ends of the two sets of second springs away from the two slide plates are respectively fixedly connected to the two L-shaped plates.
[0009] Preferably, a first slot is provided on each of the two opposite ends of the two slide plates, and a second slot is provided on the upper end of each of the two slide plates.
[0010] Preferably, each of the two second slots has a plug slidably installed inside, and each of the two plugs has an inner groove.
[0011] Preferably, pressure strips are fixedly installed at the lower ends of both inserts, limit blocks are slidably installed inside both first slots, third springs are symmetrically fixedly installed on both limit blocks, and the ends of the two sets of third springs away from the two limit blocks are respectively fixedly connected to the two slide plates.
[0012] Preferably, a vertical frame is fixedly installed on the upper end of the base, a first drive motor is fixedly installed inside the vertical frame, and a first rotating shaft is fixedly installed on the output end of the first drive motor.
[0013] Preferably, a lifting bar is slidably installed inside the vertical frame, the lifting bar is threaded onto the first rotating shaft, a sliding groove is provided on the lifting bar, a second drive motor is fixedly installed at the upper end of the lifting bar, and a second rotating shaft is fixedly installed at the output end of the second drive motor.
[0014] Preferably, a protective cover is slidably installed on the lifting bar, an insert plate is fixedly installed in the inner wall of the protective cover, the insert plate is slidably installed in the slide groove, and a fourth spring is fixedly installed in the inner wall of the protective cover, with the end of the fourth spring away from the protective cover being fixedly connected to the second drive motor.
[0015] Compared with the prior art, the present invention has the following beneficial effects:
[0016] I. This equipment can quickly adapt to electronic ceramic components of different sizes, breaking through the limitations of traditional fixed specifications, effectively improving the equipment's versatility and application scenario flexibility, and meeting diverse production needs;
[0017] Second, when replacing the pressure bar, it can be separated simply by pulling, which greatly simplifies the operation process, shortens the maintenance time, and significantly improves the efficiency of equipment use and the convenience of maintenance;
[0018] Third, it effectively prevents debris from splashing during drilling operations on the second shaft, avoiding equipment failure and personnel injury risks caused by debris, and enhancing operational safety and stability. Attached Figure Description
[0019] The above description is only an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0020] Figure 1 This is a three-dimensional structural diagram of the present invention;
[0021] Figure 2 This is an exploded structural diagram of the protective cover connection of this utility model;
[0022] Figure 3 This is an exploded view of the L-shaped plate connection of this utility model;
[0023] Figure 4 This is an exploded structural diagram of the limiting block connection of this utility model.
[0024] Legend: 11. Base; 12. Dovetail groove; 13. Fixing column; 14. Threaded ring; 15. First spring; 16. L-shaped plate; 17. Dovetail block; 18. First screw; 21. Slide plate; 22. Second spring; 23. First slot; 24. Second slot; 25. Pressure bar; 26. Insert block; 27. Inner groove; 28. Limiting block; 29. Third spring; 31. Vertical frame; 32. First drive motor; 33. First rotating shaft; 34. Lifting bar; 35. Slide groove; 36. Second drive motor; 37. Second rotating shaft; 38. Protective cover; 39. Insert plate; 41. Fourth spring. Detailed Implementation
[0025] This application provides a drilling device for electronic ceramic components, which effectively solves the problem that existing drilling equipment often has a fixed structure design, which cannot adapt to the clamping requirements of electronic ceramic components of different specifications, resulting in a narrow range of applications and difficulty in meeting diverse production requirements. Furthermore, during the drilling process, there is a lack of effective protective measures, and the generated debris is prone to splashing, which may not only cause injury to operators but also affect drilling accuracy and even damage the equipment. This device can quickly adapt to electronic ceramic components of different sizes, breaking through the limitations of traditional fixed specifications, effectively improving the versatility of the equipment and the flexibility of application scenarios, meeting diverse production needs. During drilling operations on the second rotating shaft 37, it effectively blocks the splashing of debris, avoiding equipment failure and personnel injury risks caused by debris, and enhancing operational safety and stability.
[0026] Example
[0027] like Figure 1 , Figure 2 , Figure 3 and Figure 4As shown, the technical solution in this application embodiment effectively solves the problem that the existing drilling equipment's fixed structure is mostly a fixed design, which cannot adapt to the clamping requirements of electronic ceramic components of different specifications, resulting in a narrow range of equipment application and difficulty in meeting diversified production requirements; and during the drilling operation, there is a lack of effective protective measures, and the generated waste chips are easy to fly, which may not only cause injury to the operator, but also affect the drilling accuracy and even damage the equipment. The overall idea is as follows: an electronic ceramic component drilling device, including a base 11, dovetail grooves 12 symmetrically opened at the upper end of the base 11, a fixed column 13 fixedly installed at the center of the upper end of the base 11, threaded rings 14 threaded at both ends of the fixed column 13, a first spring 15 symmetrically fixedly installed on the fixed column 13, L-shaped plates 16 symmetrically slidably installed inside the two dovetail grooves 12, dovetail blocks 17 symmetrically fixedly installed at the lower ends of the two L-shaped plates 16, two sets of dovetail blocks 17 slidably installed in the two sets of dovetail grooves 12 respectively, and clamping mechanisms slidably installed inside the two L-shaped plates 16;
[0028] The clamping mechanism includes two sliding plates 21, which are slidably mounted in two L-shaped plates 16. Each sliding plate 21 has a first screw 18 threaded inside it, and the two first screws 18 are rotatably mounted in the two L-shaped plates 16. Second springs 22 are symmetrically fixedly mounted at the lower ends of each sliding plate 21, with the ends of the two second springs 22 away from the sliding plates 21 respectively fixedly connected to the two L-shaped plates 16. First slots 23 are provided on the opposite ends of each sliding plate 21, and second slots 24 are provided on the upper ends of each sliding plate 21. Insert blocks 26 are slidably mounted inside each of the two second slots 24, and each insert block 26 has an inner groove 27. Pressure strips 25 are fixedly mounted at the lower ends of each insert block 26. During use, the mechanism can be adjusted according to the specifications of the electronic ceramic components. The two threaded rings 14 are rotated on the fixed column 13. The rotation of the two threaded rings 14 will push the two L-shaped plates 16 to move towards the center. When the distance between the two L-shaped plates 16 is moved to a suitable distance for placing the electronic ceramic component, the electronic ceramic component is placed on the two L-shaped plates 16. Then, the two first screws 18 can be rotated on the two slide plates 21. The rotation of the two first screws 18 will cause the two slide plates 21 to move downward. At the same time, the two second springs 22 will also be compressed. At this time, the two slide plates 21 will drive the two pressure strips 25 to move downward to complete the fixation of the two ends of the electronic ceramic component. This device avoids the limitation of the application scope caused by the fixed size of the traditional device and significantly improves the versatility of the device and the diversity of the application scenarios.
[0029] Both first slots 23 have slidably installed limit blocks 28 inside, and both limit blocks 28 have symmetrically fixed third springs 29. The ends of the two sets of third springs 29 away from the two limit blocks 28 are respectively fixedly connected to the two slide plates 21. When the pressure strip 25 needs to be replaced, the limit blocks 28 can be pulled outward. The movement of the limit blocks 28 will cause the two third springs 29 to be stretched. At this time, the limit blocks 28 will be pulled out from the inner groove 27 to complete the separation, making it more convenient to replace the pressure strip 25 when using the device.
[0030] A vertical frame 31 is fixedly installed on the upper end of the base 11. A first drive motor 32 is fixedly installed inside the vertical frame 31. A first rotating shaft 33 is fixedly installed on the output end of the first drive motor 32. A lifting bar 34 is slidably installed inside the vertical frame 31. The lifting bar 34 is threaded onto the first rotating shaft 33. A sliding groove 35 is provided on the lifting bar 34. A second drive motor 36 is fixedly installed on the upper end of the lifting bar 34. A second rotating shaft 37 is fixedly installed on the output end of the second drive motor 36. A protective cover 38 is slidably installed on the lifting bar 34. An insert plate 39 is fixedly installed in the inner wall of the protective cover 38. The insert plate 39 is slidably installed in the sliding groove 35. A fourth spring 41 is fixedly installed in the inner wall of the protective cover 38. The fourth spring 41 is located away from the protective cover. One end of the cover 38 is fixedly connected to the second drive motor 36. After the electronic ceramic component is fixed, the first drive motor 32 and the second drive motor 36 can be started. The second drive motor 36 will drive the second rotating shaft 37 to rotate. Under the action of the first drive motor 32, the lifting bar 34 will move downward on the first rotating shaft 33. The lifting bar 34 will drive the protective cover 38 to move downward accordingly. Under the movement of the protective cover 38, the insert plate 39 will also move downward in the slide 35. When the protective cover 38 contacts the electronic ceramic component, the fourth spring 41 will be stretched. At this time, the second rotating shaft 37 will drill a hole in the electronic ceramic component. The waste generated during the drilling process will be blocked by the protective cover 38, which increases the safety of the equipment operation.
[0031] To address the problems existing in the prior art, this utility model provides a drilling device for electronic ceramic components. This device can quickly adapt to electronic ceramic components of different sizes, breaking through the limitations of traditional fixed specifications, effectively improving the versatility of the equipment and the flexibility of application scenarios, meeting diverse production needs, and effectively blocking the splashing of waste chips during drilling operations on the second rotating shaft 37, avoiding equipment failure and personnel injury risks caused by debris, and enhancing operational safety and stability.
[0032] Working principle:
[0033] The first step involves rotating two threaded rings 14 on the fixed post 13 according to the specifications of the electronic ceramic component. The rotation of the two threaded rings 14 will push the two L-shaped plates 16 to move towards the center. When the distance between the two L-shaped plates 16 is appropriate for placing the electronic ceramic component, the electronic ceramic component is placed on the two L-shaped plates 16. Then, the two first screws 18 can be rotated on the two slide plates 21. The rotation of the two first screws 18 will cause the two slide plates 21 to move downward, and the two second springs 22 will be compressed accordingly. At this time, the two slide plates 21 will drive the two pressure bars 25 to move downward to complete the fixation of the two ends of the electronic ceramic component. This device avoids the limitation of the application scope caused by the fixed size of traditional devices and significantly improves the versatility of the device and the diversity of application scenarios.
[0034] The second step is to pull the limiting block 28 outward when the pressure strip 25 needs to be replaced. The movement of the limiting block 28 will cause the two third springs 29 to be stretched. At this time, the limiting block 28 will be pulled out from the inner groove 27 to complete the separation, making it more convenient to replace the pressure strip 25 when using the equipment.
[0035] Third, after the electronic ceramic component is fixed, the first drive motor 32 and the second drive motor 36 can be started. The second drive motor 36 will drive the second rotating shaft 37 to rotate. Under the action of the first drive motor 32, the lifting bar 34 will move downward on the first rotating shaft 33. The lifting bar 34 will drive the protective cover 38 to move downward accordingly. Under the movement of the protective cover 38, the insert plate 39 will also move downward in the slide 35. When the protective cover 38 contacts the electronic ceramic component, the fourth spring 41 will be stretched. At this time, the second rotating shaft 37 will drill a hole in the electronic ceramic component. The waste generated during the drilling process will be blocked by the protective cover 38, which increases the safety of the equipment operation.
[0036] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A drilling device for electronic ceramic components, comprising a base (11), wherein dovetail grooves (12) are symmetrically provided on the upper end of the base (11), and a fixing post (13) is fixedly installed at the center of the upper end of the base (11), characterized in that, Both ends of the fixed column (13) are threaded with threaded rings (14), and the fixed column (13) is symmetrically fixed with first springs (15). The two dovetail grooves (12) are symmetrically slidably installed with L-shaped plates (16). The lower ends of the two L-shaped plates (16) are symmetrically fixed with dovetail blocks (17). The two sets of dovetail blocks (17) are slidably installed in the two sets of dovetail grooves (12). Both of the L-shaped plates (16) are slidably fitted with clamping mechanisms inside; The clamping mechanism includes a sliding plate (21), two sliding plates (21) are slidably installed in two L-shaped plates (16), and a first screw (18) is threadedly installed inside each of the two sliding plates (21), and the two first screws (18) are rotatably installed in the two L-shaped plates (16).
2. The drilling device for electronic ceramic components as described in claim 1, characterized in that, The lower ends of the two slide plates (21) are symmetrically fixed with second springs (22); Among them, the ends of the two sets of second springs (22) away from the two slide plates (21) are respectively fixedly connected to the two L-shaped plates (16).
3. The drilling device for electronic ceramic components as described in claim 2, characterized in that, Each of the two sliding plates (21) has a first slot (23) on its opposite ends; The upper ends of both of the two slide plates (21) are provided with a second slot (24).
4. The drilling device for electronic ceramic components as described in claim 3, characterized in that, Both of the second slots (24) have insert blocks (26) slidably installed inside them; Both of the inserts (26) have an inner groove (27) inside.
5. The drilling device for electronic ceramic components as described in claim 4, characterized in that, Pressure strips (25) are fixedly installed at the lower ends of both of the inserts (26); In this case, a limit block (28) is slidably installed inside each of the two first slots (23), and a third spring (29) is symmetrically fixedly installed on each of the two limit blocks (28). The ends of the two sets of third springs (29) away from the two limit blocks (28) are respectively fixedly connected to the two slide plates (21).
6. The drilling device for electronic ceramic components as described in claim 1, characterized in that, A vertical frame (31) is fixedly installed at the upper end of the base (11); The first drive motor (32) is fixedly installed inside the vertical frame (31), and the first rotating shaft (33) is fixedly installed on the output end of the first drive motor (32).
7. The drilling device for electronic ceramic components as described in claim 6, characterized in that, The vertical frame (31) has a lifting bar (34) slidably installed inside, and the lifting bar (34) is threaded onto the first rotating shaft (33); The lifting bar (34) is provided with a sliding groove (35), and a second drive motor (36) is fixedly installed at the upper end of the lifting bar (34). A second rotating shaft (37) is fixedly installed at the output end of the second drive motor (36).
8. The drilling device for electronic ceramic components as described in claim 7, characterized in that, A protective cover (38) is slidably installed on the lifting bar (34), and an insert plate (39) is fixedly installed in the inner wall of the protective cover (38). The insert plate (39) is slidably installed in the slide groove (35). A fourth spring (41) is fixedly installed in the inner wall of the protective cover (38), and the end of the fourth spring (41) away from the protective cover (38) is fixedly connected to the second drive motor (36).