Drilling device for smart home manufacturing
By introducing multi-directional locking and stress-relieving components into the drilling device, the problem of plate displacement during drilling was solved, achieving drilling accuracy and consistency of hole shape.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUAIAN KAIBO HOME TECH CO LTD
- Filing Date
- 2025-04-14
- Publication Date
- 2026-05-08
AI Technical Summary
Existing drilling equipment is prone to causing the plate to shift during drilling, affecting the accuracy of drilling and the shape of the hole.
A drilling device for smart home manufacturing was designed, comprising an operating table and a locking and buffering mechanism. Through multi-directional locking components and polarization unloading components, it achieves multi-point locking and multi-directional unloading of the board material, reduces vibration amplitude, and ensures drilling accuracy and consistency of hole shape.
It effectively prevents the board from shifting during drilling, improving drilling accuracy and the consistency of hole shape.
Smart Images

Figure CN224210087U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of smart home technology, and in particular to a drilling device for manufacturing smart home products. Background Technology
[0002] Drilling equipment is needed in the installation and manufacturing of smart home products to help with drilling operations on boards and other materials.
[0003] However, when these drilling devices drill, they use threaded drill rods, which can cause a bias force on the board material during drilling, resulting in displacement of the board material and affecting the accuracy of drilling and the shape of the hole. Utility Model Content
[0004] The purpose of this invention is to provide a drilling device for smart home manufacturing, which helps stabilize the board and remove lateral offset force during the drilling process, thereby preventing the board offset during drilling from affecting the drilling accuracy and hole shape.
[0005] To achieve the above objectives, this utility model provides a drilling device for smart home manufacturing, including an operating table, which is an L-shaped table body. A drilling assembly for drilling is provided on the vertical plate of the operating table, and a shelf is provided on the horizontal plate of the operating table. A locking buffer mechanism for multi-directional locking of the plate body on the shelf is provided at the edge of the shelf.
[0006] A locking buffer mechanism is provided at the edge of the shelf. The locking buffer mechanism includes a multi-directional locking component and a polarization unloading component. The multi-directional locking component is provided at multiple points on the edge of the shelf to form a multi-point compression locking effect on the shelf. The polarization unloading component is provided at the bottom inner side of the shelf to form an unloading effect on the shelf.
[0007] The polarization unloading assembly includes a base pad and a multi-directional unloading component. The horizontal plate of the platform and the operating table has a recessed bottom groove, and the base pad is placed in the bottom groove. The multi-directional unloading component is placed between the base pad and the inner wall of the bottom groove, and multi-directional polarization unloading is formed between the base pad and the inner wall of the bottom groove.
[0008] As a further improvement to this technical solution, the multi-directional unloading component includes a damping rod, a connecting member, and an outer ring spring. Multiple damping rods are distributed in a group on the four side walls of the base pad. The connecting member is disposed at both ends of the damping rod. One end of the connecting member connects the damping rod to the side wall of the base pad, and the other end of the connecting member connects the damping rod to the inner wall of the bottom groove on the horizontal plate of the operating platform. The outer ring spring is arranged around the outside of the damping rod.
[0009] As a further improvement to this technical solution, the end of the base pad extends beyond the bottom groove of the shelf, and the edge of the end pad is an arc-shaped edge. The bottom end of the base pad is provided with a compressible spring.
[0010] As a further improvement to this technical solution, the multi-directional locking assembly includes four corner locking members and a middle locking member. The shelf is a concave platform. The four corner locking members are arranged in groups of four and are respectively set on the convex plates on both sides of the shelf and distributed at the four corners of the shelf. The locking direction of the four corner locking members is horizontal. The two middle locking members are arranged in groups of two and are respectively set in the middle of the convex plates on both sides of the shelf. The locking direction of the middle locking members is inclined downward.
[0011] As a further improvement to this technical solution, the four corner locking components include a horizontal pressing frame, a pressing spring, and a vertical pressing rod. The horizontal pressing frame includes a slide rod that extends horizontally through the edge protrusion of the shelf and an L-shaped pressing plate disposed at the end of the slide rod. The pressing spring is disposed between the edge protrusion of the shelf and the end of the slide rod, and the pressing spring is arranged around the outside of the slide rod. The vertical pressing rod is disposed vertically on the horizontal plate portion of the L-shaped pressing plate, and the vertical pressing rod faces the shelf.
[0012] As a further improvement to this technical solution, the intermediate locking component includes an inclined mounting base, a locking ring, and an inclined pressing frame. The inclined mounting base is located in the middle of the protruding plate on the edge of the shelf. The end plate of the inclined mounting base is inclined, and a positioning slot is provided on the inclined plate. The inclined pressing frame passes vertically through the positioning slot and is inclined and faces the shelf. The locking ring is located at the connection between the inclined pressing frame and the positioning slot, so that the locking of the inclined pressing frame in the positioning slot is controlled by the locking ring.
[0013] As a further improvement to this technical solution, the inclined extrusion frame includes a threaded rod passing through the positioning groove at the end of the inclined mounting seat and an L-shaped corner plate disposed at the end of the threaded rod. The L-shaped corner plate of the inclined extrusion frame is distributed at the middle of the two sides of the platform.
[0014] Compared with the prior art, this utility model provides a drilling device for smart home manufacturing, which has the following beneficial effects:
[0015] This invention uses four corner locking components and a middle locking component to form a multi-point locking system for the board on the platform. At the same time, the bottom pad provides elastic support for the board on the platform, reducing vibration amplitude. The multi-directional force-relieving components on the four sides of the bottom pad can transmit the vibration generated by the board to the bottom pad when the drilling assembly is drilling. Then, through the force relief of the damping rods on the four sides of the bottom pad and the outer ring spring, a multi-directional damping and force-relieving effect is formed, further reducing the vibration of the board and ensuring the accuracy of drilling and the consistency of hole shape. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 This is a schematic diagram showing the disassembled structure of the present invention after removing the drilling components;
[0018] Figure 3 for Figure 2 Enlarged view of the structure at point A in the middle;
[0019] Figure 4 for Figure 2 Enlarged view of the structure at point B in the middle;
[0020] Figure 5 for Figure 2 Enlarged view of the structure at point C;
[0021] Figure 6 This is a cross-sectional view of the structure after removing the drilling assembly in this utility model.
[0022] In the diagram: 1. Operating table; 2. Drilling assembly; 3. Storage platform; 4. Multi-directional locking assembly; 41. Four-corner locking element; 411. Horizontal extrusion frame; 412. Extrusion spring; 413. Vertical extrusion rotary rod; 42. Intermediate locking element; 421. Inclined mounting base; 422. Locking ring; 423. Inclined extrusion frame; 5. Polarization unloading assembly; 51. Base pad; 52. Multi-directional unloading element; 521. Damping rod; 522. Outer ring spring. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Reference Figure 1 and Figure 2 As shown, a drilling device for smart home manufacturing is provided. In order to prevent the board from shifting excessively during the drilling process, which would affect the drilling accuracy and hole shape, an operating table 1 and a locking buffer mechanism are provided. The operating table 1 is an L-shaped table body. A drilling component 2 for drilling is provided on the vertical plate of the operating table 1. A storage platform 3 is provided on the horizontal plate of the operating table 1. A locking buffer mechanism for multi-directional locking of the board body on the storage platform 3 is provided at the edge of the storage platform 3.
[0025] The locking buffer mechanism is located at the edge of the platform 3. The locking buffer mechanism includes a multi-directional locking component 4 and a polarization unloading component 5. The multi-directional locking component 4 is located at multiple points on the edge of the platform 3, forming a multi-point compression locking effect on the platform 3. The polarization unloading component 5 is located at the bottom inner side of the platform 3, forming a unloading effect on the platform 3.
[0026] The polarization unloading assembly 5 includes a base pad 51 and a multi-directional unloading component 52. The horizontal plate of the platform 3 and the operating platform 1 has a recessed bottom groove, and the base pad 51 is set in the bottom groove. The multi-directional unloading component 52 is set between the base pad 51 and the inner wall of the bottom groove, and multi-directional polarization unloading is formed between the base pad 51 and the inner wall of the bottom groove.
[0027] Reference Figure 3 As shown, the multi-directional unloading component 52 includes a damping rod 521, a connector, and an outer ring spring 522. Multiple damping rods 521 are distributed in a group on the four side walls of the base pad 51. The connector is located at both ends of the damping rod 521. One end of the connector connects the damping rod 521 to the side wall of the base pad 51, and the other end of the connector connects the damping rod 521 to the inner wall of the bottom groove on the horizontal plate of the operating platform 1. The outer ring spring 522 is arranged around the outside of the damping rod 521.
[0028] The end of the base pad 51 extends beyond the bottom groove of the shelf 3, and the edge of the end is curved, such as... Figure 6 As shown, the bottom of the base pad 51 is provided with a compressible spring, so that when the board is inserted into the shelf 3, the board can squeeze the arc edge of the base pad 51 and squeeze the base pad 51 downward, so that the base pad 51 forms a support effect on the board below the board. The vibration force generated when the board is drilled will act on the base pad 51, and then be relieved by the multi-directional force relief member 52 at the edge of the base pad 51.
[0029] Reference Figure 2 As shown, the multi-directional locking assembly 4 includes four corner locking members 41 and a middle locking member 42. The shelf 3 is a concave shelf. The four corner locking members 41 are arranged in groups of four and are respectively set on the two convex plates on both sides of the shelf 3 and distributed at the four corners of the shelf 3. The locking direction of the four corner locking members 41 is horizontal. The two middle locking members 42 are arranged in groups of two and are respectively set in the middle of the two convex plates on both sides of the shelf 3. The locking direction of the middle locking members 42 is inclined downward.
[0030] Reference Figure 4As shown, the four corner locking member 41 includes a horizontal pressing frame 411, a pressing spring 412, and a vertical pressing rod 413. The horizontal pressing frame 411 includes a slide rod that passes through the edge protrusion of the platform 3 in a horizontal direction and an L-shaped pressing plate disposed at the end of the slide rod. The pressing spring 412 is disposed between the edge protrusion of the platform 3 and the end of the slide rod, and the pressing spring 412 is disposed around the outside of the slide rod. The vertical pressing rod 413 is disposed vertically on the horizontal plate portion of the L-shaped pressing plate, and the vertical pressing rod 413 is directly facing the platform 3.
[0031] The L-shaped extrusion plate has curved edges on both sides, which allows the plate to be pressed against the L-shaped extrusion plate when it slides into the shelf 3. This causes the horizontal extrusion frame 411 to slide outward and compress the extrusion spring 412. After the plate is placed on the shelf 3, the compressed extrusion spring 412 can drive the horizontal extrusion frame 411 to press the edge of the plate. Then, the vertical extrusion rod 413 is rotated to press the upper edge of the plate, thus further locking the plate.
[0032] Reference Figure 5 As shown, the intermediate locking component 42 includes an inclined mounting base 421, a locking ring 422, and an inclined pressing frame 423. The inclined mounting base 421 is located in the middle of the protruding plate on the edge of the shelf 3. The end plate of the inclined mounting base 421 is inclined, and a positioning groove is provided on the inclined plate. The inclined pressing frame 423 passes vertically through the positioning groove and is inclined and faces the shelf 3. The locking ring 422 is located at the connection between the inclined pressing frame 423 and the positioning groove, so that the locking of the inclined pressing frame 423 in the positioning groove is controlled by the locking ring 422.
[0033] Reference Figure 5 As shown, the inclined extrusion frame 423 includes a threaded rod passing through the positioning groove at the end of the inclined mounting base 421 and an L-shaped corner plate disposed at the end of the threaded rod. The L-shaped corner plates of the inclined extrusion frame 423 are distributed in the middle of the two side edges of the platform 3. Through the L-shaped corner plates of the inclined extrusion frame 423 and the L-shaped extrusion plate of the horizontal extrusion frame 411, a uniformly distributed extrusion locking structure is formed on the platform 3, which can lock the plate onto the platform 3.
[0034] Working principle: The sheet material is slid horizontally onto the concave platform 3. The sheet material presses against the L-shaped pressing plate, causing the horizontal pressing frame 411 to slide outwards and compress the pressing spring 412. Simultaneously, as the sheet material slides onto the platform 3, it also presses against the base pad 51, extending beyond the curved edge of the platform 3, and pushes the base pad 51 downwards, providing support for the sheet material. When the sheet material is fully placed on the platform 3, the compressed pressing spring 412 drives the horizontal pressing frame 411 to press against the edge of the sheet material. Then, rotating the vertical pressing rod 413 further presses against the top edge of the sheet material, creating a further lock. The four corner locking pieces 41 then lock the four corners of the sheet material. Finally, rotating the locking ring 422 unlocks the tilting pressing frame 423. The inclined extrusion frame 423 is used to press the edge of the plate with the L-shaped corner plate at the end of the inclined extrusion frame 423. Then, the locking ring 422 is rotated to lock the position of the inclined extrusion frame 423 on the inclined mounting base 421. At this time, the middle part of the plate is locked by the middle locking member 42, and finally the plate is locked at multiple points on the platform 3. Then, the bottom pad 51 supports the plate from below. When drilling is performed by the drilling assembly 2, the vibration generated by the plate will be transmitted to the bottom pad 51. At this time, the bottom pad 51 vibrates, which will press the damping rod 521 and the outer ring spring 522 to form a force relief. Thus, when the bottom pad 51 vibrates, the multi-directional force relief members 52 on the four sides of the bottom pad 51 can form a multi-directional damping and shock absorption effect, forming a multi-directional force relief, thereby preventing the plate from shifting excessively during the drilling process, which would affect the drilling accuracy and hole shape.
[0035] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely preferred examples and are not intended to limit the utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A drilling device for smart home manufacturing, characterized in that, include: The operating table (1) is an L-shaped platform. A drilling assembly (2) for drilling is provided on the vertical plate of the operating table (1). A storage platform (3) is provided on the horizontal plate of the operating table (1). A locking buffer mechanism for multi-directional locking of the plate on the storage platform (3) is provided at the edge of the storage platform (3). A locking buffer mechanism is provided at the edge of the platform (3). The locking buffer mechanism includes a multi-directional locking component (4) and a polarization unloading component (5). The multi-directional locking component (4) is provided at multiple points on the edge of the platform (3) to form a multi-point compression locking effect on the platform (3). The polarization unloading component (5) is provided at the bottom inner side of the platform (3) to form an unloading effect on the platform (3). The polarization unloading component (5) includes a base pad (51) and a multi-directional unloading component (52). The horizontal plate of the platform (3) and the operating table (1) has a recessed bottom groove, and the base pad (51) is set in the bottom groove. The multi-directional unloading component (52) is set between the base pad (51) and the inner wall of the bottom groove, and multi-directional polarization unloading is formed between the base pad (51) and the inner wall of the bottom groove.
2. The drilling device for smart home manufacturing according to claim 1, characterized in that, The multi-directional force relief component (52) includes a damping rod (521), a connector, and an outer ring spring (522). Multiple damping rods (521) are distributed in a group on the four side walls of the base pad (51). The connector is provided at both ends of the damping rod (521). One end of the connector connects the damping rod (521) to the side wall of the base pad (51), and the other end of the connector connects the damping rod (521) to the inner wall of the bottom groove on the horizontal plate of the operating table (1). The outer ring spring (522) is arranged around the outside of the damping rod (521).
3. The drilling device for smart home manufacturing according to claim 2, characterized in that, The end of the base pad (51) extends beyond the bottom groove of the shelf (3), and the edge of the end is arc-shaped. The bottom of the base pad (51) is provided with a compressible spring.
4. The drilling device for smart home manufacturing according to claim 3, characterized in that, The multi-directional locking assembly (4) includes four corner locking members (41) and a middle locking member (42). The shelf (3) is a concave shelf. The four corner locking members (41) are arranged in groups of four and are respectively set on the two convex plates on both sides of the shelf (3) and distributed at the four corners of the shelf (3). The locking direction of the four corner locking members (41) is horizontal. The two middle locking members (42) are arranged in groups of two and are respectively set in the middle of the two convex plates on both sides of the shelf (3). The locking direction of the middle locking members (42) is inclined downward.
5. A drilling device for smart home manufacturing according to claim 4, characterized in that, The four corner locking components (41) include a horizontal pressing frame (411), a pressing spring (412), and a vertical pressing rod (413). The horizontal pressing frame (411) includes a slide rod that passes through the edge protrusion of the shelf (3) in a horizontal direction and an L-shaped pressing plate disposed at the end of the slide rod. The pressing spring (412) is disposed between the edge protrusion of the shelf (3) and the end of the slide rod, and the pressing spring (412) is disposed around the outside of the slide rod. The vertical pressing rod (413) is disposed vertically on the horizontal plate portion of the L-shaped pressing plate, and the vertical pressing rod (413) faces the shelf (3).
6. The drilling device for smart home manufacturing according to claim 4, characterized in that, The intermediate locking component (42) includes an inclined mounting base (421), a locking ring (422), and an inclined pressing frame (423). The inclined mounting base (421) is located in the middle of the edge protrusion of the shelf (3). The end plate of the inclined mounting base (421) is inclined, and a positioning groove is provided on the inclined plate. The inclined pressing frame (423) passes vertically through the positioning groove and is inclined and faces the shelf (3). The locking ring (422) is located at the connection between the inclined pressing frame (423) and the positioning groove, so that the locking ring (422) controls the locking of the inclined pressing frame (423) in the positioning groove.
7. A drilling device for smart home manufacturing according to claim 6, characterized in that, The inclined extrusion frame (423) includes a threaded rod passing through the positioning groove at the end of the inclined mounting base (421) and an L-shaped corner plate disposed at the end of the threaded rod. The L-shaped corner plate of the inclined extrusion frame (423) is distributed in the middle of the two sides of the shelf (3).