Efficient processing equipment for smart devices
Through the combination of limit blocks and vacuum adsorption, the problems of unstable clamping and low processing accuracy of thin-walled shells are solved, and efficient flow operation and multi-angle precision processing are realized for intelligent equipment processing.
Patent Information
- Application Number
- CN202111668912.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-30
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2041-12-30
AI Technical Summary
It is difficult to efficiently clamp and process thin-walled shells in the prior art, especially in the processing of metal parts of smart mobile terminals, where there are problems such as unstable clamping and difficult to ensure machining accuracy.
Using an efficient processing device including the first machine and the second machine, the flow-through loading and multi-angle precision processing of the thin-walled shell are realized through a combination of limit blocks and vacuum adsorption.
Improve processing efficiency, ensure tight clamping of thin-walled shells and multi-angle processing accuracy, avoid deviation and deformation during processing, and improve processing quality.
Smart Images

Figure CN116408496B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a high-efficiency processing device for intelligent equipment, belonging to the technical field of electronic products. Background Art
[0002] Smart mobile devices are increasingly using increasingly thinner metal components. Computer numerical control (CNC) machines are often used to process these metal components. However, thin-walled housings are difficult to clamp due to their poor rigidity and susceptibility to deformation. This has always been a challenge in the machining industry. Summary of the Invention
[0003] The purpose of the present invention is to provide an efficient processing device for intelligent equipment, which can not only realize the streamlined operation of loading and processing of thin-walled shells to be processed, thereby improving processing efficiency, but also ensure the accuracy of multi-angle processing of the wall panel of the rotating thin-walled shell by the cutter head.
[0004] To achieve the above-mentioned objectives, the present invention adopts a technical solution: an efficient processing device for intelligent devices, comprising: a first machine platform, a second machine platform, and at least two carrier plates, wherein a rotating seat is mounted on one end of the upper surface of the second machine platform, one end of a base plate is mounted on the driving shaft of the rotating seat, and the other end of the base plate extends toward the other end of the second machine platform, a processing spindle with a tool head mounted thereon is disposed above the base plate, and the carrier plate is detachably connected to the first machine platform and the base plate mounted on the second machine platform;
[0005] A first limiting block and a second limiting block are provided on the upper surface of the carrier plate in parallel with each other, and a third limiting block and a fourth limiting block are provided between the first limiting block and the second limiting block, respectively, and perpendicular to the first limiting block, so that a clamping area for the thin-walled shell to be embedded is formed between the first limiting block, the second limiting block, the third limiting block and the fourth limiting block;
[0006] The first limit block and the third limit block fixedly mounted on the carrier plate are each in contact with the outer surface of one wall plate of the thin-walled shell; the second limit block is mounted on the carrier plate via a first movable seat; a first cylinder for driving the first movable seat to move toward the thin-walled shell is mounted on the first machine and located outside the first movable seat; the fourth limit block is mounted on the carrier plate via a second movable seat; a second cylinder for driving the first movable seat to move toward the thin-walled shell is mounted on the first machine and located outside the first movable seat;
[0007] The first movable seat and the second movable seat are each connected to the carrier plate via an elastic member. When the first movable seat and the second movable seat drive the second limit block and the fourth limit block to move to fit the wall surface of the thin-walled shell under the drive of the first cylinder and the second cylinder, the elastic member is in a compressed state, and the first movable seat and the second movable seat are connected to the carrier plate via mutually cooperating strip-shaped mounting holes and bolts.
[0008] A vacuum generator is provided under each of the first and second machines. The third limit block, which is in contact with the wall panel to be processed of the thin-walled shell, is provided with interconnected air grooves on the surface facing the thin-walled shell. The air grooves are connected to the corresponding vacuum generators through pipelines.
[0009] The further improved scheme in the above technical scheme is as follows:
[0010] 1. In the above solution, an air hole connecting the pipeline and the vacuum generator is provided on the second machine.
[0011] 2. In the above solution, the carrier plate and the first machine platform, and the base plate mounted on the second machine platform are positioned and connected by at least two sets of mutually cooperating guide posts and guide holes.
[0012] 3. In the above solution, each end of the carrier plate has an outward extension, and a cylinder is provided on the lower surface of the base plate and directly below the two extensions. The upper end of the cylinder piston rod passes through the mounting notches on the base plate and the extension in turn, and is equipped with a pressure block that can press against the upper surface of the extension.
[0013] 4. In the above solution, the first limit block and the third limit block are each fixedly mounted on the carrier plate via a mounting base.
[0014] 5. In the above solution, the pipeline is opened on the carrier plate, the mounting base installed with the third limit block, and the third limit block.
[0015] Due to the application of the above technical solution, the present invention has the following advantages compared with the prior art:
[0016] 1. The present invention is a high-efficiency processing device for intelligent equipment. It realizes the streamlined operation of loading and processing of thin-walled shells to be processed through the coordinated arrangement of two machines, thereby improving processing efficiency. While facilitating the loading of thin-walled shells to be processed and unloading of processed thin-walled shells, it can also achieve tight clamping of the thin-walled shells without deviation, ensuring the accuracy of the multi-angle processing of the wall panel of the rotating thin-walled shell by the cutter head, and can also keep the two movable limit blocks in the initial state of being opened outward to facilitate the loading and unloading of the thin-walled shells, and can buffer the thrust applied to the movable seat to avoid damage to the thin-walled shell caused by excessive instantaneous force, thereby ensuring the processing quality.
[0017] 2. The present invention is an efficient processing device for intelligent equipment, which can further ensure the surface fit between each wall panel of the thin-walled shell and the limit block, and ensure the tight fit of the entire surface between the wall panel to be processed, which is easy to deform due to its large area and thin thickness, and the limit block through vacuum adsorption, thereby avoiding jitter, vibration, etc. when the cutter head performs multi-angle processing on the wall panel of the rotating thin-walled shell, which affects the processing accuracy and produces knife marks, thereby improving the processing quality. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Attachment Figure 1 This is a schematic structural diagram of the efficient processing device for smart devices of the present invention;
[0019] Attachment Figure 2 This is a schematic structural diagram of a machine platform in the efficient processing device for intelligent devices of the present invention;
[0020] Attachment Figure 3 This is a schematic structural diagram of another machine in the efficient processing device for smart devices of the present invention;
[0021] Attachment Figure 4 This is a schematic diagram of the partial structure decomposition of the efficient processing device for smart devices of the present invention;
[0022] Attachment Figure 5 A cross-sectional view of the local structure of the high-efficiency processing device of the present invention from one perspective;
[0023] Attachment Figure 6 A cross-sectional view of the local structure of the high-efficiency processing device of the present invention from another perspective;
[0024] Attachment Figure 7 This is a partial structural cross-sectional view of the high-efficiency processing device of the present invention from the third viewing angle.
[0025] In the above drawings: 1. carrier plate; 101. extension portion; 102. mounting notch; 2. first limit block; 3. second limit block; 4. third limit block; 5. fourth limit block; 6. thin-walled shell; 7. clamping area; 8. mounting seat; 91. first movable seat; 92. second movable seat; 10. strip mounting hole; 11. bolt; 12. raised portion; 13. air groove; 14. pipeline; 15. sealing groove; 16. elastic member; 171. first machine; 172. second machine; 18. rotating seat; 19. machining spindle; 20. base plate; 201. vertical portion; 202. horizontal portion; 21. cutter head; 22. cylinder; 23. pressure block; 24. first cylinder; 25. second cylinder. DETAILED DESCRIPTION
[0026] In the description of this patent, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," "outer," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended only to facilitate the description of the present invention and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation, and therefore should not be construed as limiting the present invention. The terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. In addition, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense, for example, to mean a fixed connection, a detachable connection, or an integral connection; a mechanical connection or an electrical connection; a direct connection, an indirect connection through an intermediate medium, or internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this patent in specific circumstances.
[0027] Example 1: A high-efficiency processing device for smart devices, comprising: a first machine table 171, a second machine table 172, and at least two carrier plates 1. A rotating base 18 is mounted on one end of the upper surface of the second machine table 172. One end of a substrate 20 is mounted on the drive shaft of the rotating base 18, and the other end of the substrate 20 extends toward the other end of the second machine table 172. A processing spindle 19 with a cutting head 21 is disposed above the substrate 20. The carrier plate 1 is detachably connected to the first machine table 171 and the substrate 20 mounted on the second machine table 172.
[0028] A first limiting block 2 and a second limiting block 3 are provided on the upper surface of the carrier plate 1, and a third limiting block 4 and a fourth limiting block 5 are provided between the first limiting block 2 and the second limiting block 3, respectively, and are perpendicular to the first limiting block 2. Thus, a clamping area 7 for embedding a thin-walled shell 6 is formed between the first limiting block 2, the second limiting block 3, the third limiting block 4, and the fourth limiting block 5.
[0029] The first limit block 2 and the third limit block 4 fixedly mounted on the carrier plate 1 are each in contact with the outer surface of one wall panel of the thin-walled shell 6. The second limit block 3 is mounted on the carrier plate 1 via a first movable seat 91. A first cylinder 24 for driving the first movable seat 91 to move toward the thin-walled shell 6 is mounted on the first platform 171 and located outside the first movable seat 91. The fourth limit block 5 is mounted on the carrier plate 1 via a second movable seat 92. A second cylinder 25 for driving the first movable seat 92 to move toward the thin-walled shell 6 is mounted on the first platform 171 and located outside the first movable seat 92.
[0030] The first movable seat 91 and the second movable seat 92 are each connected to the carrier plate 1 via an elastic member 16. When the first movable seat 91 and the second movable seat 92 are driven by the first cylinder 24 and the second cylinder 25 to move the second limit block 3 and the fourth limit block 5 to fit the wall surface of the thin-walled shell 6, the elastic member 16 is in a compressed state, and the first movable seat 91 and the second movable seat 92 are connected to the carrier plate 1 via the mutually cooperating strip-shaped mounting holes 10 and the bolts 11;
[0031] A vacuum generator is provided under each of the first machine platform 171 and the second machine platform 172. The third limit block 4, which is in contact with the wall panel to be processed of the thin-walled shell 6, is provided with interconnected air grooves 13 on the surface facing the thin-walled shell 6. The air grooves 13 are connected to the corresponding vacuum generators through pipelines 14.
[0032] The second platform 172 is provided with an air hole connecting the pipeline 14 and the vacuum generator; the carrier 1 and the first platform 171, as well as the substrate 20 mounted on the second platform 172, are positioned and connected by at least two sets of mutually cooperating guide posts and guide holes.
[0033] Each end of the carrier plate 1 has an outward extension 101. A cylinder 22 is provided on the lower surface of the base plate 20 and directly below the two extensions 101. The upper end of the piston rod of the cylinder 22 passes through the mounting notches 102 on the base plate 20 and the extension 101 in turn, and is equipped with a pressure block 23 that can press against the upper surface of the extension 101.
[0034] Example 2: An efficient processing device for smart devices, comprising: a first machine table 171, a second machine table 172, and at least two carrier plates 1. A rotating base 18 is mounted on one end of the upper surface of the second machine table 172. One end of a substrate 20 is mounted on the drive shaft of the rotating base 18, and the other end of the substrate 20 extends toward the other end of the second machine table 172. A processing spindle 19 with a cutting head 21 is disposed above the substrate 20. The carrier plate 1 is detachably connected to the first machine table 171 and the substrate 20 mounted on the second machine table 172.
[0035] A first limiting block 2 and a second limiting block 3 are provided on the upper surface of the carrier plate 1, and a third limiting block 4 and a fourth limiting block 5 are provided between the first limiting block 2 and the second limiting block 3, respectively, and are perpendicular to the first limiting block 2. Thus, a clamping area 7 for embedding a thin-walled shell 6 is formed between the first limiting block 2, the second limiting block 3, the third limiting block 4, and the fourth limiting block 5.
[0036] The first limit block 2 and the third limit block 4 fixedly mounted on the carrier plate 1 are each in contact with the outer surface of one wall panel of the thin-walled shell 6. The second limit block 3 is mounted on the carrier plate 1 via a first movable seat 91. A first cylinder 24 for driving the first movable seat 91 to move toward the thin-walled shell 6 is mounted on the first platform 171 and located outside the first movable seat 91. The fourth limit block 5 is mounted on the carrier plate 1 via a second movable seat 92. A second cylinder 25 for driving the first movable seat 92 to move toward the thin-walled shell 6 is mounted on the first platform 171 and located outside the first movable seat 92.
[0037] The first movable seat 91 and the second movable seat 92 are each connected to the carrier plate 1 via an elastic member 16. When the first movable seat 91 and the second movable seat 92 are driven by the first cylinder 24 and the second cylinder 25 to move the second limit block 3 and the fourth limit block 5 to fit the wall surface of the thin-walled shell 6, the elastic member 16 is in a compressed state, and the first movable seat 91 and the second movable seat 92 are connected to the carrier plate 1 via the mutually cooperating strip-shaped mounting holes 10 and the bolts 11;
[0038] A vacuum generator is provided under each of the first machine platform 171 and the second machine platform 172. The third limit block 4, which is in contact with the wall panel to be processed of the thin-walled shell 6, is provided with interconnected air grooves 13 on the surface facing the thin-walled shell 6. The air grooves 13 are connected to the corresponding vacuum generators through pipelines 14.
[0039] The first limit block 2 and the third limit block 4 are each fixedly mounted on the carrier plate 1 via a mounting seat 8; the pipeline 14 is opened on the carrier plate 1, the mounting seat 8 on which the third limit block 4 is mounted, and the third limit block 4;
[0040] The third limit block 4 is provided with a sealing groove 15 at the edge of the surface of the thin-walled shell 6 and outside the air groove 13; the base plate 20 includes a vertical portion 201 connected to the rotating seat 18 and a horizontal portion 202 for mounting the carrier 1; the machining spindle 19 mounted on a three-axis drive mechanism can move in the horizontal and vertical directions.
[0041] When the above-mentioned high-efficiency processing device for intelligent equipment is adopted, it realizes the streamlined operation of loading and processing of the thin-walled shell to be processed through the coordinated setting of the two machines, thereby improving the processing efficiency; and provides initial positioning for the thin-walled shell by two mutually perpendicular limit blocks, and then pushes the other two mutually perpendicular limit blocks to make the four wall panels of the thin-walled shell correspond to each other and fit tightly with the four limit blocks, while facilitating the loading of the thin-walled shell to be processed and unloading the processed thin-walled shell, it can achieve tight clamping of the thin-walled shell without deviation, ensuring the accuracy of the multi-angle processing of the wall panel of the rotating thin-walled shell by the cutter head, and can also make the two movable limit blocks maintain the initial state of being opened outward, which is more convenient for loading and unloading the thin-walled shell, and can buffer the thrust applied to the movable seat, avoiding damage to the thin-walled shell caused by excessive instantaneous force, thereby ensuring the processing quality;
[0042] In addition, it can further ensure the surface fit between each wall panel of the thin-walled shell and the limit block, and ensure the tight fit of the entire surface between the wall panel to be processed, which is easy to deform due to its large area and thin thickness, and the limit block through vacuum adsorption, thereby avoiding shaking, vibration, etc. when the cutter head performs multi-angle processing on the wall panel of the rotating thin-walled shell, which affects the processing accuracy and produces knife marks, thereby improving the processing quality.
[0043] The above embodiments are intended only to illustrate the technical concepts and features of the present invention. Their purpose is to enable those skilled in the art to understand the contents of the present invention and implement them accordingly. They are not intended to limit the scope of protection of the present invention. Any equivalent changes or modifications made in accordance with the spirit of the present invention are intended to be covered by the scope of protection of the present invention.
Claims
1. An efficient processing device for smart devices, comprising: A first machine (171), a second machine (172) and at least two carriers (1), wherein a rotating seat (18) is installed on one end of the upper surface of the second machine (172), one end of a base plate (20) is installed on the driving shaft of the rotating seat (18), and the other end of the base plate (20) extends toward the other end of the second machine (172), and a processing spindle (19) with a tool head (21) installed is provided above the base plate (20), and the carrier (1) is detachably connected to the first machine (171) and the base plate (20) installed on the second machine (172); A first limiting block (2) and a second limiting block (3) are arranged on the upper surface of the carrier plate (1) in parallel with each other, and a third limiting block (4) and a fourth limiting block (5) are arranged between the first limiting block (2) and the second limiting block (3), respectively perpendicular to the first limiting block (2), so that a clamping area (7) for the thin-walled shell (6) to be embedded is formed between the first limiting block (2), the second limiting block (3), the third limiting block (4) and the fourth limiting block (5); The first limit block (2) and the third limit block (4) fixedly mounted on the carrier (1) are each in contact with the outer surface of a wall panel of the thin-walled shell (6); the second limit block (3) is mounted on the carrier (1) via a first movable seat (91); a first cylinder (24) for driving the first movable seat (91) to move toward the thin-walled shell (6) is mounted on the first machine (171) and located outside the first movable seat (91); the fourth limit block (5) is mounted on the carrier (1) via a second movable seat (92); a second cylinder (25) for driving the first movable seat (92) to move toward the thin-walled shell (6) is mounted on the first machine (171) and located outside the first movable seat (92); The first movable seat (91) and the second movable seat (92) are each connected to the carrier plate (1) via an elastic member (16). When the first movable seat (91) and the second movable seat (92) are driven by the first cylinder (24) and the second cylinder (25) to move the second limit block (3) and the fourth limit block (5) to fit the wall surface of the thin-walled shell (6), the elastic member (16) is in a compressed state. The first movable seat (91) and the second movable seat (92) are connected to the carrier plate (1) via the mutually matching strip-shaped mounting holes (10) and the bolts (11). A vacuum generator is provided below each of the first machine platform (171) and the second machine platform (172). A third limiting block (4) that is in contact with the wall panel to be processed of the thin-walled shell (6) is provided with mutually communicating air grooves (13) on its surface facing the thin-walled shell (6). The air grooves (13) are communicated with the corresponding vacuum generators via pipelines (14).
2. The efficient processing device for smart devices according to claim 1, characterized in that: The second machine (172) is provided with an air hole connecting the pipeline (14) and the vacuum generator.
3. The efficient processing device for smart devices according to claim 1, characterized in that: The carrier plate (1) is positioned and connected to the first machine (171) and the base plate (20) mounted on the second machine (172) through at least two sets of mutually cooperating guide columns and guide holes.
4. The efficient processing device for smart devices according to claim 1, characterized in that: Each of the two ends of the carrier plate (1) has an outward extension portion (101), and a cylinder (22) is provided on the lower surface of the base plate (20) and directly below the two extension portions (101). The upper end of the piston rod of the cylinder (22) passes through the mounting notches (102) on the base plate (20) and the extension portion (101) in sequence, and is provided with a pressure block (23) that can press against the upper surface of the extension portion (101).
5. The efficient processing device for smart devices according to claim 1, characterized in that: The first limiting block (2) and the third limiting block (4) are each fixedly mounted on the carrier plate (1) via a mounting seat (8).
6. The efficient processing device for smart devices according to claim 5, characterized in that: The pipeline (14) is opened on the carrier plate (1), the mounting seat (8) on which the third limiting block (4) is mounted, and the third limiting block (4).
Citation Information
Patent Citations
Processing method for electronic part
CN110666564A
Machining and positioning device for two ends of thin-wall aluminum part
CN214816455U