Multi-angle synchronous punching equipment for computer mainframe box plate
By designing a multi-angle synchronous drilling device, the synchronous operation of the drill bit in the vertical and horizontal directions is achieved by utilizing the coordinated work of the pressing mechanism and the clamping mechanism. This solves the problems of low efficiency, hole position deviation and manual operation in traditional drilling methods, and enables efficient and reliable mass production.
Patent Information
- Application Number
- CN202511472327.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-15
- Publication Date
- 2025-12-16
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional manual drilling methods are inefficient, and manual operation can easily lead to hole position deviations. Existing drilling equipment has limited functionality and cannot achieve multi-angle synchronous processing. Furthermore, it requires manual clamping and positioning, resulting in intermittent production processes and overall low efficiency.
Design a multi-angle synchronous drilling device for computer host chassis boards. The device uses a pressing mechanism to drive a moving mechanism, allowing the drill bits in the vertical and horizontal directions to work simultaneously. With the help of a clamping mechanism and the elastic adjustment of the auxiliary mechanism, the workpiece is automatically fixed and released. The conveying mechanism and the blocking plate work together to achieve automatic feeding and positioning, reducing manual intervention and ensuring the consistency and continuity of the processing.
It effectively avoids hole position deviation, realizes multi-angle synchronous processing, is suitable for mass production, improves production efficiency and product consistency, reduces manual intervention, and ensures the continuity and reliability of the processing process.
Smart Images

Figure CN121131833A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of drilling equipment technology, specifically to a multi-angle synchronous drilling device for computer host chassis panels. Background Technology
[0002] With the rapid development of computer hardware technology, the computer case, as an important structure that carries and protects the internal core components, has its board drilling process directly affecting heat dissipation performance, assembly accuracy, and overall aesthetics. The general process for drilling computer cases involves first drilling holes in the board and then performing bending operations. However, some holes are located near the bending marks, which may damage the shape of the holes during the bending process. Therefore, to avoid damaging the holes, holes located near the bending marks are drilled again after the bending process.
[0003] Currently, there are two main methods for drilling in this field: one is traditional manual drilling, where operators hold the chassis panels and use simple drills to drill holes one by one; the other is semi-automatic drilling equipment, which uses a conveyor mechanism to transport the panels to a fixed station for unidirectional drilling. Typical drilling equipment includes a conveyor line combined with a vertical drilling mechanism. The chassis panels are transported by the main conveyor line, and the vertical drilling mechanism drills holes on the top of the panels while the horizontal drilling mechanism processes the sides. In addition, there are devices that use electromagnetic drilling impact columns combined with replaceable molds, and use a drilling mold changing machine track to process holes of different shapes such as circles and rhombuses.
[0004] Although existing technologies offer a variety of drilling solutions, some problems still exist in practical applications. First, traditional manual drilling methods are inefficient and cannot meet production capacity requirements during mass production. Furthermore, manual operation can easily lead to hole position deviations, resulting in poor product consistency. Second, semi-automatic drilling equipment has limited functionality; most equipment can only perform drilling operations in a single direction and cannot achieve multi-angle synchronous processing. Moreover, manual clamping and positioning of the workpiece are required before processing, which indirectly increases processing time, leading to interrupted production processes and low overall efficiency. Summary of the Invention
[0005] Based on this, the purpose of this invention is to provide a multi-angle synchronous drilling device for computer host chassis boards, in order to solve the problems of low production efficiency of traditional manual drilling methods, difficulty in meeting production capacity requirements during mass production, and the fact that manual operation is prone to hole position deviation, resulting in poor product consistency. Most drilling equipment can only perform drilling operations in a single direction and cannot achieve multi-angle synchronous processing. Furthermore, manual clamping and positioning of the workpiece is required before processing, which indirectly increases processing time, leading to interrupted production processes and low overall efficiency.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a multi-angle synchronous drilling device for computer host chassis panels, comprising a machine body, a pressing mechanism disposed at the top of the machine body, two sets of moving mechanisms disposed inside the machine body, a clamping mechanism disposed on one side of each set of moving mechanisms, an auxiliary mechanism disposed between the moving mechanisms and the clamping mechanisms, the pressing mechanism comprising a pressing plate and pressing blocks, wherein the pressing plate is movably installed inside the machine body, the bottom sides of the pressing plate are fixedly connected to the two sets of pressing blocks, and the bottom of each set of pressing blocks is designed with an inclined surface, the moving mechanism comprising a moving plate and driving wheels, wherein the moving plate is slidably connected inside the machine body, multiple sets of driving wheels are installed on one side of the moving plate, and the driving wheels are located at the bottom of the pressing blocks, and the driving wheels cooperate with the inclined surface of the pressing blocks to move the moving plate horizontally, the clamping mechanism comprising a clamping plate, wherein the clamping plate is movably installed on one side of the moving plate, and the clamping plate serves to clamp and fix the workpiece.
[0007] By adopting the above technical solution, this invention drives the moving mechanism through a pressing mechanism, enabling the drill bit in both vertical and horizontal directions to work simultaneously. Combined with the clamping mechanism and the elastic adjustment of the auxiliary mechanism, it achieves automatic workpiece fixing and release, effectively avoiding the hole position deviation problem caused by multiple clamping in traditional processing. Furthermore, the coordinated work of the conveying mechanism and the blocking plate enables automatic workpiece feeding and positioning, reducing manual intervention and ensuring the consistency and continuity of the processing process. It is suitable for mass production scenarios, combining high efficiency and reliability. This invention solves the technical problems of most drilling equipment being able to perform drilling operations in only one direction, unable to achieve multi-angle synchronous processing, and requiring manual clamping and positioning of the workpiece before processing, which indirectly increases processing time, leading to interrupted production processes and low overall efficiency.
[0008] Furthermore, the pressing mechanism also includes a drive module, support rods, and a telescopic plate. The drive module is fixedly installed at the top of the machine body, multiple sets of support rods are fixedly installed inside the machine body, the pressing plate is fixedly installed at the bottom of the drive module, and the pressing plate is slidably connected to the support rods. The telescopic plate is fixedly installed at the bottom of the pressing plate. As the pressing plate descends, the telescopic plate at its bottom also descends synchronously. The bottom of the telescopic plate is the telescopic end, and the inside of the telescopic plate is provided with an elastic module. Furthermore, the bottom of the telescopic end of the telescopic plate is wrapped with a flexible anti-slip rubber pad. Therefore, after the telescopic plate descends, it will contact the top of the workpiece. Then, the telescopic plate continues to descend, and under the action of the conveyor belt and the workpiece, the telescopic plate is squeezed in the direction, thereby achieving initial clamping of the workpiece.
[0009] By adopting the above technical solution, the pressing mechanism is operated by the control system inside the machine body to start working. The drive module consists of an electronic control system, hydraulic components and telescopic components. The bottom of the drive module is fixed to the pressing plate by bolts. Therefore, after the drive module is started, it will control the pressing plate to move down on multiple sets of support rods, and the drilling mechanism will also be started.
[0010] Furthermore, the auxiliary mechanism includes a compression rod, a compression cylinder, a compression spring, an elastic component, and a locking bead. The compression rod is fixedly installed at the bottom of the moving plate. One side of each set of compression rods is slidably connected to the compression cylinder, and the compression cylinder is fixedly installed at the bottom of the clamping plate. The compression spring is installed inside the compression cylinder, and the compression rod is elastically connected to the compression cylinder through the compression spring. Multiple sets of elastic components are fixedly installed inside one side of the compression cylinder, and one side of each set of elastic components is elastically connected to the locking bead.
[0011] By adopting the above technical solution, the compression rod in the auxiliary mechanism will squeeze the locking ball under the drive of the horizontal movement of the moving plate, so that the locking ball squeezes the elastic component and disengages from the slot at the end of the compression rod, so that the compression rod squeezes the compression spring, thereby realizing that the moving plate can continue to move horizontally after the clamping plate stops moving.
[0012] Furthermore, the machine body is provided with a drilling mechanism, which includes a first drill bit and a second drill bit, wherein multiple sets of first drill bits are fixedly installed at the bottom of the lower pressure plate, and multiple sets of second drill bits are fixedly installed on one side of the moving plate.
[0013] By adopting the above technical solution, the first drill bit installed at the bottom of the pressing mechanism will contact the workpiece, and the second drill bit will also contact the workpiece through the second through hole. The first drill bit and the second drill bit are staggered, and the first through hole is opened on the clamping plate directly below the first drill bit, so that the first drill bit can smoothly drill through the workpiece.
[0014] Furthermore, the moving mechanism also includes a return spring, a slide rail, and a moving block. The return spring is installed between the moving plate and the machine body, and the moving plate is elastically connected to the machine body through the return spring. The slide rail is fixedly installed inside the machine body, and the moving block is fixedly installed on both sides of the moving plate. The moving block and the slide rail are slidably connected. The clamping mechanism also includes a first through hole and a second through hole. Multiple sets of first through holes are opened on one side of the bottom of the clamping plate, and multiple sets of second through holes are opened on one side of the clamping plate. The first through holes and the second through holes are staggered. A slider is fixedly installed on one side of the bottom of the moving plate, and a sliding groove is opened on the top of the clamping plate. The slider is slidably connected to the clamping plate through the sliding groove.
[0015] By adopting the above technical solution, the pressing mechanism will raise the pressing block under the control of the control system, and the moving plate will move back under the action of the return spring.
[0016] Furthermore, a conveying mechanism is provided at the bottom of the machine body. The conveying mechanism includes a conveying motor and a conveyor belt. The conveying motor is fixedly installed at the bottom of the machine body. The output end of the conveying motor is movably connected to the conveyor belt through a sprocket and a chain. A baffle plate is fixedly installed at the bottom of the machine body. The baffle plate is located between two sets of rollers in the conveyor belt and serves to block the workpiece.
[0017] By adopting the above technical solution, the output end of the conveyor motor drives multiple sets of rollers to rotate through chains and sprockets. The conveyor belt composed of multiple sets of rollers transports the plate into the machine body. After the plate is transported into the machine body, it triggers the sensor that controls the extension and retraction of the blocking plate. At this time, the blocking plate extends out from between the rollers in the conveyor belt, thereby preventing the plate from moving further inside the machine body. The conveyor motor is also electrically connected to the blocking plate. After the blocking plate rises, the conveyor motor will stop working, and therefore the conveyor belt will also stop running.
[0018] In summary, the present invention has the following advantages: The present invention drives the moving mechanism through a pressing mechanism, enabling the drill bit in both vertical and horizontal directions to operate simultaneously. Combined with the clamping mechanism and the elastic adjustment of the auxiliary mechanism, it achieves automatic workpiece fixing and release, effectively avoiding the hole position deviation problem caused by multiple clamping operations in traditional processing. Furthermore, the coordinated work of the conveying mechanism and the blocking plate enables automatic workpiece feeding and positioning, reducing manual intervention and ensuring the consistency and continuity of the processing process. It is suitable for mass production scenarios, combining high efficiency and reliability. It solves the technical problem that most drilling equipment can only perform drilling operations in a single direction, cannot achieve multi-angle synchronous processing, and requires manual clamping and positioning of the workpiece before processing, indirectly increasing processing time, leading to interrupted production processes and low overall efficiency. Attached Figure Description
[0019] Figure 1 This is a structural schematic diagram from a first perspective of the present invention; Figure 2 This is a structural schematic diagram from a second perspective of the present invention; Figure 3 This is a schematic diagram of the structure of some parts of the present invention; Figure 4 For the present invention Figure 3 Enlarged view of point A; Figure 5 For the present invention Figure 3 Enlarged view of point B; Figure 6This is a first-view structural schematic diagram of a partial part of the present invention; Figure 7 This is a second-view structural schematic diagram of a partial part of the present invention; Figure 8 This is a cross-sectional view of a portion of a part of the present invention; Figure 9 For the present invention Figure 8 Enlarged view of point C; Figure 10 For the present invention Figure 8 Enlarged view of point D.
[0020] In the diagram: 1. Body; 2. Pressing mechanism; 201. Drive module; 202. Support rod; 203. Pressing plate; 204. Pressing block; 205. Telescopic plate; 3. Moving mechanism; 301. Moving plate; 302. Return spring; 303. Slide rail; 304. Drive wheel; 305. Moving block; 306. Slider; 4. Clamping mechanism; 401. Clamping plate; 402. First through hole; 403. Second through hole; 404. Slide groove; 5. Conveying mechanism; 501. Conveying motor; 502. Conveying belt; 6. Blocking plate; 7. Drilling mechanism; 701. First drill bit; 702. Second drill bit; 8. Auxiliary mechanism; 801. Compression rod; 802. Compression cylinder; 803. Compression spring; 804. Elastic component; 805. Locking ball. Detailed Implementation
[0021] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0022] The embodiments of the present invention will now be described.
[0023] A device for simultaneous multi-angle drilling of computer chassis panels, such as Figure 1-10 As shown, it includes a body 1, a pressing mechanism 2 is provided at the top of the body 1, two sets of moving mechanisms 3 are provided inside the body 1, a clamping mechanism 4 is provided on one side of each set of moving mechanisms 3, and an auxiliary mechanism 8 is provided between the moving mechanism 3 and the clamping mechanism 4. Furthermore, the pressing mechanism 2 includes a pressing plate 203 and pressing blocks 204. The pressing plate 203 is movably installed inside the machine body 1. The bottom sides of the pressing plate 203 are fixedly connected to two sets of pressing blocks 204, and the bottom of each set of pressing blocks 204 is designed with an inclined surface. The moving mechanism 3 includes a moving plate 301 and drive wheels 304. The moving plate 301 is slidably connected inside the machine body 1. Multiple sets of drive wheels 304 are installed on one side of the moving plate 301, and the drive wheels 304 are located at the bottom of the pressing blocks 204. The drive wheels 304 cooperate with the inclined surface of the pressing blocks 204 to make the moving plate 301 move horizontally. The clamping mechanism 4 includes a clamping plate 401, which is movably installed on one side of the moving plate 301 and clamps and fixes the workpiece. After the lower pressure plate 203 descends, the lower pressure blocks 204 on both sides of its bottom will descend synchronously. The bottom end of the lower pressure block 204 is designed with a slope. Therefore, after it is pressed down, it will contact the drive wheel 304 in the moving mechanism 3. After the lower pressure block 204 continues to descend, the drive wheel 304 will be squeezed against the moving plate 301 and move horizontally. In the example, the body 1 is provided with a drilling mechanism 7, which includes a first drill bit 701 and a second drill bit 702. Multiple sets of first drill bits 701 are fixedly installed on the bottom of the lower pressure plate 203, and multiple sets of second drill bits 702 are fixedly installed on one side of the moving plate 301. At this time, the first drill bit 701 installed at the bottom of the pressing mechanism 2 will contact the workpiece, and the second drill bit 702 will also contact the workpiece through the second through hole 403. The first drill bit 701 and the second drill bit 702 are staggered, and the first through hole 402 is opened on the clamping plate 401 directly below the first drill bit 701, so that the first drill bit 701 can smoothly drill through the workpiece. In the example, the pressing mechanism 2 also includes a drive module 201, a support rod 202 and a telescopic plate 205. The drive module 201 is fixedly installed at the top inside the body 1, multiple sets of support rods 202 are fixedly installed inside the body 1, the pressing plate 203 is fixedly installed at the bottom of the drive module 201 and is slidably connected to the support rod 202, and the telescopic plate 205 is fixedly installed at the bottom of the pressing plate 203. The pressing mechanism 2 is operated by the control system inside the machine body 1. The drive module 201 consists of an electrical control system, hydraulic components and telescopic components. The bottom of the drive module 201 is fixed to the pressing plate 203 by bolts. Therefore, after the drive module 201 is started, it controls the pressing plate 203 to move down on multiple sets of support rods 202. At the same time, the drilling mechanism 7 will also be started. As the pressing plate 203 descends, the telescopic plate 205 at its bottom will also descend synchronously. The bottom of the telescopic plate 205 is the telescopic end. The telescopic plate 205 is equipped with an elastic module inside. At the bottom of the telescopic end of the telescopic plate, it is wrapped with a flexible anti-slip rubber pad. Therefore, after the telescopic plate 205 descends, it will contact the top of the workpiece. Then the telescopic plate 205 continues to descend. Under the action of the conveyor belt 502 and the workpiece, the telescopic plate 205 will be squeezed in the direction, thereby achieving the initial clamping of the workpiece. In the example, the moving mechanism 3 also includes a return spring 302, a slide rail 303, and a moving block 305. The return spring 302 is installed between the moving plate 301 and the body 1, and the moving plate 301 is elastically connected to the body 1 through the return spring 302. The slide rail 303 is fixedly installed inside the body 1. The moving block 305 is fixedly installed on both sides of the moving plate 301, and the moving block 305 and the slide rail 303 are slidably connected. The clamping mechanism 4 also includes a first through hole 402 and a second through hole 403. Multiple sets of first through holes 402 are opened on the bottom side of one side of the clamping plate 401, and multiple sets of second through holes 403 are opened on one side of the clamping plate 401. The first through holes 402 and the second through holes 403 are staggered. The pressing mechanism 2 will raise the pressing block 204 under the control of the control system. At this time, the moving plate 301 will move back under the action of the return spring 302. A slider 306 is fixedly installed on the bottom side of the moving plate 301. A groove 404 is opened on the top of the clamping plate 401. The slider 306 is slidably connected to the clamping plate 401 through the groove 404. In the example, the auxiliary mechanism 8 includes a compression rod 801, a compression cylinder 802, a compression spring 803, an elastic component 804, and a locking bead 805. The compression rod 801 is fixedly installed at the bottom of the movable plate 301. Each set of compression rods 801 is slidably connected to the compression cylinder 802 on one side. The compression cylinder 802 is fixedly installed at the bottom of the clamping plate 401. The compression spring 803 is installed inside the compression cylinder 802. The compression rod 801 is elastically connected to the compression cylinder 802 through the compression spring 803. Multiple sets of elastic components 804 are fixedly installed inside the compression cylinder 802 on one side. Each set of elastic components 804 is elastically connected to the locking bead 805 on one side. The compression rod 801 in the auxiliary mechanism 8 will squeeze the locking bead 805 under the drive of the horizontal movement of the moving plate 301, so that the locking bead 805 squeezes the elastic component 804 and disengages from the slot at the end of the compression rod 801, so that the compression rod 801 squeezes the compression spring 803, thereby realizing that after the clamping plate 401 stops moving, the moving plate 301 can continue to move horizontally. In the example, a conveying mechanism 5 is provided at the bottom of the machine body 1. The conveying mechanism 5 includes a conveying motor 501 and a conveyor belt 502. The conveying motor 501 is fixedly installed at the bottom of the machine body 1. The output end of the conveying motor 501 is movably connected to the conveyor belt 502 through a sprocket and a chain. A baffle plate 6 is fixedly installed at the bottom of the machine body 1. The baffle plate 6 is located between two sets of rollers in the conveyor belt 502. The baffle plate 6 serves to block the workpiece. The output of the conveyor motor 501 drives multiple sets of rollers to rotate via chains and sprockets. The conveyor belt 502, composed of multiple sets of rollers, transports the plate into the machine body 1. After the plate is transported into the machine body 1, it triggers the sensor that controls the extension and retraction of the baffle plate 6. At this time, the baffle plate 6 extends out from between the rollers in the conveyor belt 502, thus preventing the plate from moving further inside the machine body 1. The conveyor motor 501 is also electrically connected to the baffle plate 6. After the baffle plate 6 rises, the conveyor motor 501 will stop working, and therefore the conveyor belt 502 will also stop running.
[0024] The working principle of this invention is as follows: When in use, the power is turned on and the conveying mechanism 5 will start to work. The output end of the conveying motor 501 drives multiple sets of rollers to rotate through the chain and sprocket. The conveyor belt 502 composed of multiple sets of rollers will transport the plate into the interior of the machine body 1. After the plate is transported into the machine body 1, the sensor that controls the extension and retraction of the baffle plate 6 will be triggered. At this time, the baffle plate 6 will extend from between the rollers in the conveyor belt 502, so that the plate cannot continue to move in the machine body 1. The conveyor motor 501 is also electrically connected to the baffle plate 6. After the baffle plate 6 rises, the conveyor motor 501 will stop working, so the conveyor belt 502 will also stop running. Then the pressing mechanism 2 is operated by the control system inside the body 1 to start working. The drive module 201 consists of an electronic control system, hydraulic components and telescopic components. The bottom of the drive module 201 is fixedly installed to the pressing plate 203 by bolts. Therefore, after the drive module 201 is started, it will control the pressing plate 203 to move down on multiple sets of support rods 202, and the drilling mechanism 7 will also be started. After the lower pressure plate 203 descends, the lower pressure blocks 204 on both sides of its bottom will descend synchronously. The bottom end of the lower pressure block 204 is designed with a slope. Therefore, after it is pressed down, it will contact the drive wheel 304 in the moving mechanism 3. After the lower pressure block 204 continues to descend, the drive wheel 304 will be squeezed against the moving plate 301 and move horizontally. As the lower pressure plate 203 descends, the telescopic plate 205 at its bottom also descends synchronously. The bottom of the telescopic plate 205 is the telescopic end. The telescopic plate 205 is internally equipped with an elastic module, and the bottom of the telescopic end of the telescopic plate is wrapped with a flexible anti-slip rubber pad. Therefore, after the telescopic plate 205 descends, it will contact the top of the workpiece. Then the telescopic plate 205 continues to descend, and under the action of the conveyor belt 502 and the workpiece, the telescopic plate 205 will be squeezed in the direction, thereby achieving the initial clamping of the workpiece. As the pressure block 204 continues to descend, the moving plate 301 is squeezed and moves horizontally, while the clamping plate 401 in the clamping mechanism 4 moves synchronously with the moving plate 301 under the action of the auxiliary mechanism 8 until the bottom plate of the clamping plate 401 contacts the workpiece. Since one end of the bottom plate of the clamping plate 401 is provided with an inclined surface, the bottom of the clamping plate 401 can extend into the bottom of the workpiece after it continues to move horizontally. When the side plate of the clamping plate 401 contacts the workpiece, the lower pressure block 204 does not descend to the limit position. At this time, under the synchronous clamping of the two sets of clamping plates 401, the workpiece will be fixed between the two sets of clamping plates 401, thus completing the clamping and positioning of the workpiece. Then the pressing mechanism 2 continues to work, and the pressing block 204 continues to press down, which will cause the moving plate 301 to continue to move horizontally. However, at this time, the two sets of clamping plates 401 are tightly attached to the workpiece, so the clamping plate 401 will not be able to move. At this time, the compression rod 801 in the auxiliary mechanism 8 will squeeze the locking bead 805 under the drive of the horizontal movement of the moving plate 301, so that the locking bead 805 squeezes the elastic component 804, thereby disengaging from the slot at the end of the compression rod 801, so that the compression rod 801 squeezes the compression spring 803, thereby realizing that after the clamping plate 401 stops moving, the moving plate 301 can continue to move horizontally. At this time, the first drill bit 701 installed at the bottom of the pressing mechanism 2 will come into contact with the workpiece, and the second drill bit 702 will also come into contact with the workpiece through the second through hole 403. The first drill bit 701 and the second drill bit 702 are staggered, and the first through hole 402 is opened on the clamping plate 401 directly below the first drill bit 701, so that the first drill bit 701 can smoothly drill through the workpiece. After the first drill bit 701 and the second drill bit 702 have both passed through the workpiece, the pressure block 204 will also reach its limit position. At this time, the moving block 305 will not continue to move. Then, the pressure mechanism 2 will raise the pressure block 204 under the control of the control system. At this time, the moving plate 301 will move back under the action of the return spring 302, so that the first drill bit 701 and the second drill bit 702 complete the drilling of the workpiece. Then the lower pressure block 204 continues to rise, and the compression rod 801 in the auxiliary mechanism 8 will also return to the initial position under the elastic action of the compression spring 803, so that the locking bead 805 can be re-locked into the slot at one end of the compression rod 801, thereby realizing that the moving plate 301 drives the clamping plate 401 to move synchronously, and then the clamping plate 401 is separated from the workpiece and returns to the initial position. Then the lower pressure plate 203 rises, which will cause the compression plate 205 to detach from the workpiece, thereby releasing the restriction on the workpiece. After the lower pressure plate 203 returns to the initial position, the blocking plate 6 will be restored to the initial state under the operation of the control system, and the conveying mechanism 5 will be restarted, so that the workpiece can be conveyed out of the machine body 1. With the above structure, the traditional manual drilling method has low production efficiency, which is difficult to meet the production capacity requirements in mass production. In addition, manual operation is prone to hole position deviation, resulting in poor product consistency. Most drilling equipment can only perform drilling operations in a single direction and cannot achieve multi-angle synchronous processing. Furthermore, before processing, the workpiece needs to be clamped and positioned manually, which indirectly increases the processing time and causes the production process to be interrupted, resulting in low overall efficiency.
[0025] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the invention and are not intended to limit it. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the invention, but such modifications, substitutions, and variations are protected by patent law as long as they are within the scope of the claims of the present invention.
Claims
1. A multi-angle synchronous punching device for computer mainframe box plate parts, comprising a machine body (1), characterized in that: The body (1) is internally provided with a pressing mechanism (2), the body (1) is internally provided with two groups of moving mechanisms (3), one side of each group of the moving mechanisms (3) is provided with a clamping mechanism (4), the moving mechanisms (3) and the clamping mechanism (4) are provided with an auxiliary mechanism (8) therebetween; The pressing mechanism (2) comprises a pressing plate (203) and a pressing block (204), wherein the pressing plate (203) is movably mounted in the body (1), the bottom of the pressing plate (203) is fixedly connected with two groups of the pressing blocks (204), and the bottom of each group of the pressing blocks (204) is designed as a slope, the moving mechanism (3) comprises a moving plate (301) and a drive wheel (304), wherein the moving plate (301) is slidably connected in the body (1), a plurality of the drive wheels (304) are mounted on one side of the moving plate (301), the drive wheel (304) is located at the bottom of the pressing block (204), and the drive wheel (304) is cooperated with the slope of the pressing block (204) to horizontally move the moving plate (301), the clamping mechanism (4) comprises a clamping plate (401), wherein the clamping plate (401) is movably mounted on one side of the moving plate (301), and the clamping plate (401) plays a role of clamping and fixing the workpiece.
2. The multi-angle synchronous punching device for computer mainframe box plate parts according to claim 1, characterized in that: The pressing mechanism (2) further comprises a drive module (201), a support rod (202) and a telescopic plate (205), wherein the drive module (201) is fixedly mounted at the top end of the body (1), a plurality of the support rods (202) are fixedly mounted in the body (1), the pressing plate (203) is fixedly mounted at the bottom of the drive module (201), and the pressing plate (203) is slidably connected with the support rod (202), and the telescopic plate (205) is fixedly mounted at the bottom of the pressing plate (203).
3. The multi-angle synchronous punching apparatus for computer mainframe box plate parts according to claim 1, characterized in that: The body (1) is internally provided with a drilling mechanism (7), the drilling mechanism (7) comprises a first drill bit (701) and a second drill bit (702), wherein a plurality of the first drill bits (701) are fixedly mounted at the bottom of the pressing plate (203), and a plurality of the second drill bits (702) are fixedly mounted on one side of the moving plate (301).
4. The multi-angle synchronous punching apparatus for computer mainframe box plate parts according to claim 1, characterized in that: The clamping mechanism (4) further comprises a first through hole (402) and a second through hole (403), wherein a plurality of the first through holes (402) are formed in the bottom of one side of the clamping plate (401), and a plurality of the second through holes (403) are formed in one side of the clamping plate (401), and the first through hole (402) and the second through hole (403) are staggered.
5. The multi-angle synchronous punching apparatus for computer mainframe box plate parts according to claim 1, characterized in that: The auxiliary mechanism (8) comprises compression rods (801), compression cylinders (802), compression springs (803), elastic assemblies (804) and clamping beads (805), wherein the compression rods (801) are fixedly installed at the bottom of the moving plate (301), each group of the compression rods (801) is in sliding connection with the compression cylinder (802) on one side, the compression cylinder (802) is fixedly installed at the bottom of the clamping plate (401), the compression spring (803) is installed inside the compression cylinder (802), the compression rod (801) is elastically connected with the compression cylinder (802) through the compression spring (803), a plurality of groups of the elastic assemblies (804) are fixedly installed on one side inside the compression cylinder (802), and each group of the elastic assemblies (804) is elastically connected with the clamping bead (805) on one side.
6. The multi-angle synchronous punching apparatus for computer mainframe box plate parts according to claim 1, characterized in that: The moving mechanism (3) further comprises a reset spring (302), a sliding rail (303) and a moving block (305), wherein the reset spring (302) is installed between the moving plate (301) and the body (1), the moving plate (301) is elastically connected with the body (1) through the reset spring (302), the sliding rail (303) is fixedly installed inside the body (1), and the moving block (305) is fixedly installed on both sides of the moving plate (301).
7. The multi-angle synchronous punching apparatus for computer mainframe box plate parts according to claim 1, characterized in that: The body (1) is internally provided with a conveying mechanism (5) at the bottom end, the conveying mechanism (5) comprises a conveying motor (501) and a conveying belt (502), wherein the conveying motor (501) is fixedly installed at the bottom of the body (1), and the output end of the conveying motor (501) is movably connected with the conveying belt (502) through a chain wheel and a chain.
8. The multi-angle synchronous punching device for computer mainframe box plate parts according to claim 7, characterized in that: The body (1) is internally fixedly installed with a blocking plate (6) at the bottom end, the blocking plate (6) is located between two groups of rollers in the conveying belt (502), and the blocking plate (6) plays a role in blocking workpieces.
9. The multi-angle synchronous punching apparatus for computer mainframe box plate parts according to claim 1, characterized in that: The moving plate (301) is fixedly installed with a sliding block (306) on one side at the bottom, the clamping plate (401) is provided with a sliding groove (404) at the top, and the sliding block (306) is in sliding connection with the clamping plate (401) through the sliding groove (404).