A memory stick slot feeding device
By designing an automated memory slot feeding device, and utilizing intermittent conveying and unloading mechanisms and installation components, the automatic unloading and transportation of memory slots is achieved, solving the problem of manual installation required in existing technologies and improving feeding efficiency and accuracy.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 鸿盈科技实业(深圳)有限公司
- Filing Date
- 2025-07-11
- Publication Date
- 2026-08-04
AI Technical Summary
The existing memory slot feeding device requires workers to manually install the memory slots, which increases the workload of workers and affects work efficiency.
A memory module slot feeding device was designed, comprising an intermittent conveying mechanism, a feeding mechanism, and an installation component. The device achieves automatic feeding and transportation of memory module slots through the cooperation of a motor-driven push rod and a toggle rod, and automatically fixes the memory module slots with a clamping plate driven by a cylinder to ensure that they are aligned with the slot opening.
It achieves fully automated feeding of memory slots, avoiding slot accumulation or jamming, reducing manual intervention, improving feeding efficiency, and ensuring accurate alignment of memory modules with slots to prevent deformation or damage.
Smart Images

Figure CN224589951U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of material conveying, and in particular to a memory module slot feeding device. Background Technology
[0002] Memory slots are the slots on a motherboard used to insert memory modules. Memory slot feeding devices are mainly used to deliver memory modules for feeding. The control method of existing memory slot feeding devices is generally to preset start points, stop points, and preset downtime based on cycles. That is, the start position, stop position, and waiting time of the feeding device are controlled by preset programs.
[0003] Chinese Patent No. CN215853776U discloses a memory module slot feeding device, including a base, support units disposed on both sides of the base for placing memory module slots, a pushing unit disposed on the base, a sensing unit, and a driving unit. The pushing unit is driven by the driving unit to move the memory module slots. The sensing unit is disposed on the movement path of the memory module slots to monitor their position. This invention, by designing a memory module slot feeding device, not only achieves efficient and stable delivery of memory module slots, but also features simple operation and effective cost savings. Furthermore, by setting the sensing unit to monitor the entire material movement path, the device does not need to return to the feeding position in advance to wait for feeding, significantly saving intermediate waiting time and effectively improving the feeding efficiency and accuracy of memory module slots.
[0004] However, the aforementioned publicly available solutions have the following shortcomings: the existing memory slot feeding device requires staff to manually install the memory slots for feeding, which increases the workload of staff and affects work efficiency. Utility Model Content
[0005] The purpose of this invention is to address the problem in the prior art that memory slots cannot be automatically unloaded, installed, and transported, and to propose a memory slot feeding device.
[0006] The technical solution of this utility model: a memory module slot feeding device, including a workbench and a conveyor belt disposed outside the workbench; further comprising:
[0007] Intermittent conveying mechanism: The intermittent conveying mechanism is set on the side of the workbench and is used to drive the conveyor belt to transport materials intermittently, and to load and inspect materials during the stopping process;
[0008] The unloading mechanism is located on the side of the worktable away from the intermittent conveyor and is used to insert a memory module slot when the conveyor belt stops.
[0009] The mounting bracket is mounted on the unloading mechanism. A baffle is located at the bottom of the mounting bracket, and a partition is located at the top. The partition and baffle are positioned opposite each other. A feeding tube slides along the inner side of the mounting bracket, and memory slots are neatly arranged inside the feeding tube. In its natural state, the baffle is located at the bottom of the feeding tube and blocks the memory slots inside. The baffle is located on the outside of the feeding tube. When the unloading mechanism is running, it causes the mounting bracket to move intermittently. When the mounting bracket is pushed, it causes the baffle to detach from the feeding tube. At this time, the baffle blocks the memory slots above, while the bottom ones fall out.
[0010] Preferably, it also includes an installation assembly, which includes a placement platform, a cylinder, a mounting bracket, and a moving rod;
[0011] The placement platform is located on the outside of the conveyor belt, the fixing frame is located on the side of the placement platform, the cylinder is located on the inside of the fixing frame, the moving rod is located at the output end of the cylinder, the end of the moving rod away from the cylinder is provided with a mounting plate, the side of the mounting plate away from the moving rod is rotatably provided with a connecting rod, the end of the connecting rod away from the mounting plate is rotatably provided with a clamping plate, and a sensor is provided on the inside of the placement platform.
[0012] Preferably, the intermittent conveying mechanism includes a connecting frame, a power component, and a pushing component;
[0013] The connecting bracket is located on the side of the workbench;
[0014] The power unit is located on the side of the worktable and is used to provide power to the pushing component;
[0015] The pusher is located on top of the workbench and is used to intermittently push the conveyor belt to move the memory slots forward.
[0016] Preferably, the power assembly includes a motor, a shaft, a timing pulley, and a timing belt;
[0017] The rotating shaft is located on the inner side of the worktable, the motor is located at the end of the rotating shaft, the first synchronous pulley is located on the outer side of the rotating shaft, the synchronous belt is located on the outer side of the first synchronous pulley, the second synchronous pulley is located on the side of the synchronous belt away from the first synchronous pulley, and the connecting shaft is located at the center of the second synchronous pulley.
[0018] Preferably, the pushing component includes a rotating rod, a support plate, and a pushing rod;
[0019] The rotating rod is located at the end of the connecting shaft away from the second synchronous wheel. The support plate is located on the outside of the connecting shaft. The bottom of the support plate is connected to the top of the worktable. The push rod is rotatably located at the end of the rotating rod away from the connecting shaft. The push rod and the rotating rod are connected by a plug rod. The side of the conveyor belt is provided with a locking block.
[0020] Preferably, the feeding mechanism includes a lever, a fixed platform, a connecting rod, and a telescopic rod;
[0021] The actuating lever is located at the end of the rotating shaft away from the motor. The fixed platform is located on the top of the workbench. The telescopic rod is located inside the fixed platform. A spring is installed on the outside of the telescopic rod. The connecting rod is located at the end of the telescopic rod away from the fixed platform. The end of the connecting rod away from the actuating lever is connected to the outside of the mounting bracket.
[0022] Compared with the prior art, the present invention has the following beneficial technical effects:
[0023] 1. Through the intermittent conveying mechanism and the unloading mechanism, the motor drives the push rod to intermittently push the block, thereby causing the conveyor belt to move intermittently. At the same time, the rotating shaft drives the actuating rod to rotate, and the actuating rod drives the mounting frame to move intermittently, thereby placing the memory module slots one by one. The intermittent movement of the conveyor belt and the movement of the mounting frame work together to complete the automatic unloading and transportation. This can avoid the accumulation or jamming of slots caused by continuous unloading, ensure that there is always material at the feeding position and no overflow, and realize the full automation of the process from feeding to installation, reduce manual intervention, and improve overall efficiency.
[0024] 2. With the installation components in place, the cylinder automatically activates after the memory slot falls onto the placement platform. The cylinder drives the clamping plate to fix the memory slot, thus avoiding misalignment between the memory connection plate and the slot opening caused by operational deviations during manual installation. This prevents the connection plate from being deformed or damaged due to collisions, and ensures that the gold fingers of the memory module are fully aligned with the slot contacts. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of one embodiment of the present utility model;
[0026] Figure 2 This is a structural diagram of the installed components;
[0027] Figure 3 This is a schematic diagram of the intermittent conveying mechanism;
[0028] Figure 4 This is a schematic diagram of the feeding mechanism;
[0029] Figure 5 This is a partial structural diagram of the feeding mechanism.
[0030] Reference numerals: 1. Workbench; 2. Conveyor belt; 301. Cylinder; 302. Fixed frame; 303. Moving rod; 304. Mounting plate; 305. Linking rod; 306. Clamping plate; 307. Placement platform; 308. Sensor; 401. Motor; 402. Rotating shaft; 403. Synchronous pulley one; 404. Synchronous pulley two; 405. Synchronous belt; 406. Connecting shaft; 407. Rotating rod; 408. Pushing rod; 409. Locking block; 410. Support plate; 411. Connecting frame; 501. Actuating rod; 502. Fixed platform; 503. Feeding pipe; 504. Connecting rod; 505. Telescopic rod; 506. Spring; 507. Mounting frame; 508. Baffle; 509. Divider plate. Detailed Implementation
[0031] Example 1
[0032] like Figures 1-3 As shown, the present invention proposes a memory module slot feeding device, which includes a workbench 1, a conveyor belt 2 disposed outside the workbench 1, an intermittent conveying mechanism, a feeding mechanism, and a mounting frame 507.
[0033] An intermittent conveying mechanism is located on the side of the workbench 1 to drive the conveyor belt 2 to transport materials intermittently forward, and to load and inspect materials during the stopping process;
[0034] The unloading mechanism is located on the side of the workbench 1 away from the intermittent conveying mechanism, and is used to insert a memory module slot when the conveyor belt 2 stops;
[0035] Mounting bracket 507 is mounted on the unloading mechanism. A baffle 508 is provided at the bottom of mounting bracket 507, and a partition 509 is provided at the top of mounting bracket 507. The partition 509 and the baffle 508 are arranged opposite each other. A feeding tube 503 is slidably arranged on the inner side of mounting bracket 507. The feeding tube 503 is used to neatly place memory module slots. When mounting bracket 507 is in its natural state, the baffle 508 is located at the bottom of feeding tube 503 and blocks the memory module slots inside. The baffle 508 is located on the outside of feeding tube 503. When the unloading mechanism is running, it causes mounting bracket 507 to move intermittently. When mounting bracket 507 is pushed, it causes baffle 508 to disengage from feeding tube 503. At this time, baffle 508 blocks the memory module slots above, while the bottom ones fall out.
[0036] The mounting assembly includes a placement platform 307, a cylinder 301, a fixing frame 302, and a moving rod 303. The placement platform 307 is located on the outer side of the conveyor belt 2, the fixing frame 302 is located on the side of the placement platform 307, the cylinder 301 is located on the inner side of the fixing frame 302, and the moving rod 303 is located at the output end of the cylinder 301. A mounting plate 304 is located at the end of the moving rod 303 away from the cylinder 301. A connecting rod 305 is rotatably mounted on the side of the mounting plate 304 away from the moving rod 303. A clamping plate 306 is rotatably mounted on the end of the connecting rod 305 away from the mounting plate 304. The connecting rod 305 is related to the mounting... Two plates 304 are symmetrically arranged, with the outer side of the clamping platform and the inner side of the placement platform 307 slidably connected. A sensor 308 is provided on the inner side of the placement platform 307. A placement opening is provided on the placement platform 307 for storing memory slots. The sensor 308 is located at the bottom of the placement opening, so that when the memory slot falls into the placement opening, it can contact the sensor 308. After the sensor 308 senses the pressure, it activates the cylinder 301. The cylinder 301 drives the mounting plate 304 to move through the moving rod 303. The mounting plate 304 drives the two linkage rods 305 to move synchronously, thereby clamping the internal memory slot.
[0037] The intermittent conveying mechanism includes a connecting frame 411, a power component, and a pushing component. The connecting frame 411 is located on the side of the worktable 1. The power component is located on the side of the worktable 1 and is used to provide power to the pushing component. The pushing component is located on the top of the worktable 1 and is used to intermittently push the conveyor belt 2 to transport the memory module slots forward. The power component includes a motor 401, a rotating shaft 402, a first synchronous pulley 403, and a synchronous belt 405. The rotating shaft 402 is rotatably located on the inner side of the worktable 1. The motor 401 is located at the end of the rotating shaft 402. The first synchronous pulley 403 is located on the outer side of the rotating shaft 402. The synchronous belt 405 is located on the outer side of the first synchronous pulley 403. A second synchronous pulley 404 is located on the side of the synchronous belt 405 away from the first synchronous pulley 403. A connecting shaft 406 is located at the axis of the second synchronous pulley 404. The pushing assembly includes a rotating rod 407, a support plate 410, and a pushing rod 408. The rotating rod 407 is located at the end of the connecting shaft 406 away from the second synchronous pulley 404. The support plate 410 is located on the outside of the connecting shaft 406, and its bottom is connected to the top of the worktable 1. The pushing rod 408 is rotatably located at the end of the rotating rod 407 away from the connecting shaft 406. The pushing rod 408 and the rotating rod 407 are connected by a plug rod. A locking block 409 is provided on the side of the conveyor belt 2. The motor 401 drives the rotating shaft 402 to rotate, and the rotating shaft 402 drives the first synchronous pulley 403 to rotate. The first synchronous pulley 403 is connected to the synchronous belt. 405 drives the second synchronous wheel 404 to rotate. The second synchronous wheel 404 drives the rotating rod 407 to rotate through the connecting shaft 406. The rotating rod 407 drives the push rod 408 to move. When the push rod 408 moves forward, it cooperates with the locking block 409 to drive the locking block 409 to move. The locking block 409 drives the can forward through the conveyor belt 2. The end of the push rod 408 is provided with a push head. When the push rod 408 returns, it disengages from the locking block 409. At this time, it will not drive the locking block 409 to move. The push head and the slot on the locking block 409 can be engaged together to ensure that the locking block 409 moves stably when the push rod 408 rotates.
[0038] Example 2
[0039] like Figures 4-5 As shown, this utility model proposes a memory module slot feeding device. Compared with Embodiment 1, this embodiment details the structure of the feeding mechanism.
[0040] The feeding mechanism includes a lever 501, a fixed platform 502, a connecting rod 504, and a telescopic rod 505. The lever 501 is located at the end of the rotating shaft 402 away from the motor 401. The fixed platform 502 is located on the top of the worktable 1. The telescopic rod 505 is located inside the fixed platform 502, and a spring 506 is located on the outside of the telescopic rod 505. The connecting rod 504 is located at the end of the telescopic rod 505 away from the fixed platform 502, and the connecting rod 504 is slidably located inside the fixed platform 502. One end of the lever 501 is connected to the outside of the mounting bracket 507. When the rotating shaft 402 rotates, it drives the lever 501 to rotate. The end of the connecting rod 504 is located on the rotation trajectory of the lever 501. When the lever 501 rotates to the connecting rod 504, it drives the connecting rod 504 to move, thereby compressing the spring 506 and the telescopic rod 505, which in turn drives the mounting bracket 507 to move. When the lever 501 disengages from the connecting rod 504, the connecting rod 504 and the mounting bracket 507 return to their original positions under the action of the spring 506.
[0041] In summary, when this utility model is used, the motor 401 is started, which drives the rotating shaft 402 to rotate. The rotating shaft 402 drives the first synchronous pulley 403 to rotate. The first synchronous pulley 403 drives the second synchronous pulley 404 to rotate via the synchronous belt 405. The second synchronous pulley 404 drives the rotating rod 407 to rotate via the connecting shaft 406. The rotating rod 407 drives the pushing rod 408 to move. When the pushing rod 408 moves forward, it cooperates with the locking block 409, thereby driving the locking block 409 to move. The locking block 409 drives the can forward via the conveyor belt 2. When the pushing rod 408 returns, it disengages from the locking block 409, and at this time it will not drive the locking block 409 to move, thus making the conveyor belt 2 transport intermittently. At the same time, when the rotating shaft 402 rotates, it drives the actuating rod 501 to rotate. The end of the connecting rod 504 is located on the rotation trajectory of the actuating rod 501. The actuating rod 501 rotates to the connecting rod 501. At position 04, the connecting rod 504 moves, which in turn moves the mounting bracket 507. When the mounting bracket 507 is pushed, it causes the baffle 508 to disengage from the feeding tube 503. At this time, the baffle 508 blocks the memory slots above, and the memory slots at the bottom fall into the placement opening of the placement table 307. When the lever 501 disengages from the connecting rod 504, the connecting rod 504 and the mounting bracket 507 return to their original positions under the action of the spring 506. The baffle 508 blocks the bottom of the feeding tube 503. After the memory slots fall into the placement opening, the sensor 308 senses the pressure, thereby activating the cylinder 301. The cylinder 301 moves the mounting plate 304 through the moving rod 303. The mounting plate 304 moves the two connecting rods 305 synchronously, thereby clamping the internal memory slots. Then, the memory slots are intermittently transported forward by the conveyor belt 2 for testing.
[0042] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the spirit of the present invention.
Claims
1. A memory module slot feeding device, comprising a workbench (1) and a conveyor belt (2) disposed outside the workbench (1); characterized in that, Also includes: Intermittent conveying mechanism, which is set on the side of the workbench (1), is used to drive the conveyor belt (2) to transport materials intermittently forward and to load and inspect materials during the stopping process; The unloading mechanism is located on the side of the workbench (1) away from the intermittent conveying mechanism, and is used to insert a memory slot when the conveyor belt (2) stops. The mounting bracket (507) is mounted on the feeding mechanism. A baffle (508) is provided at the bottom of the mounting bracket (507), and a partition plate (509) is provided at the top of the mounting bracket (507). The partition plate (509) and the baffle (508) are arranged opposite to each other. A feeding tube (503) is slidably provided on the inner side of the mounting bracket. The feeding tube (503) is used to neatly place memory slots. When the mounting bracket (507) is in its natural state, the baffle (508) is located at the bottom of the feeding tube (503) and blocks the memory slots inside. The baffle (508) is located on the outside of the feeding tube (503). When the feeding mechanism is running, it drives the mounting bracket (507) to move intermittently. When the mounting bracket (507) is pushed, it drives the baffle (508) to disengage from the feeding tube (503). At this time, the baffle (508) blocks the memory slots above, and the bottom ones fall out.
2. The memory module slot feeding device according to claim 1, characterized in that, It also includes an installation assembly, which includes a placement platform (307), a cylinder (301), a mounting bracket (302), and a moving rod (303); The placement platform (307) is located on the outside of the conveyor belt (2), the fixing frame (302) is located on the side of the placement platform (307), the cylinder (301) is located on the inside of the fixing frame (302), the moving rod (303) is located at the output end of the cylinder (301), the end of the moving rod (303) away from the cylinder (301) is provided with a mounting plate (304), the side of the mounting plate (304) away from the moving rod (303) is rotatably provided with a connecting rod (305), the end of the connecting rod (305) away from the mounting plate (304) is rotatably provided with a clamping plate (306), and the inside of the placement platform (307) is provided with a sensor (308).
3. The memory module slot feeding device according to claim 1, characterized in that, The intermittent conveying mechanism includes a connecting frame (411), a power assembly, and a pushing assembly; The connecting bracket (411) is located on the side of the workbench (1); The power unit is located on the side of the worktable (1) and is used to provide power to the push unit; The push component is located on the top of the workbench (1) and is used to intermittently push the conveyor belt (2) to move the memory slots forward.
4. The memory module slot feeding device according to claim 3, characterized in that, The power assembly includes a motor (401), a rotating shaft (402), a timing pulley (403), and a timing belt (405); A rotating shaft (402) is rotatably mounted on the inner side of the workbench (1). A motor (401) is mounted on the end of the rotating shaft (402). A first synchronous pulley (403) is mounted on the outer side of the rotating shaft (402). A synchronous belt (405) is mounted on the outer side of the first synchronous pulley (403). A second synchronous pulley (404) is mounted on the side of the synchronous belt (405) away from the first synchronous pulley (403). A connecting shaft (406) is mounted at the center of the second synchronous pulley (404).
5. The memory module slot feeding device according to claim 4, characterized in that, The pushing assembly includes a rotating rod (407), a support plate (410), and a pushing rod (408); The rotating rod (407) is located at the end of the connecting shaft (406) away from the synchronous pulley (404). The support plate (410) is located on the outside of the connecting shaft (406). The bottom of the support plate (410) is connected to the top of the worktable (1). The push rod (408) is rotatably located at the end of the rotating rod (407) away from the connecting shaft (406). The push rod (408) and the rotating rod (407) are connected by a plug rod. The side of the conveyor belt (2) is provided with a locking block (409).
6. The memory module slot feeding device according to claim 4, characterized in that, The feeding mechanism includes a lever (501), a fixed platform (502), a connecting rod (504), and a telescopic rod (505); A lever (501) is located at the end of the rotating shaft (402) away from the motor (401). A fixed platform (502) is located on the top of the workbench (1). A telescopic rod (505) is located inside the fixed platform (502). A spring (506) is located on the outside of the telescopic rod (505). A connecting rod (504) is located at the end of the telescopic rod (505) away from the fixed platform (502). The end of the connecting rod (504) away from the lever (501) is connected to the outside of the mounting bracket (507).