Memory bank insertion and extraction force detection tool

By designing a memory stick plug-in and pull-out force detection tooling that includes supporting crossbars, slot components and force sensors, the memory stick damage problem caused by the application of uneven forces in traditional tooling is solved, uniform force distribution and real-time monitoring and control are achieved, and the risk of memory stick damage is reduced.

CN222964774UActive Publication Date: 2025-06-10SHENZHEN XINHUA MICRO TECH CO LTD
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Patent Information

Application Number
CN202421729072.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-06-10
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

The traditional memory stick plug-in and uneven force applied by the tooling equipment causes unnecessary stress during the plug-in and unplugging process, which increases the risk of memory stick damage and may cause deformation or breaking of the memory stick pins.

Method used

A memory stick plug-in and pull-out force detection tool is designed, including a workbench, slot body, support assembly, plug-in and pull-out assembly and force sensor. By cooperating with the support bar and the slot assembly, force is applied evenly, and the plugging and unplugging force is monitored in real time through the force sensor.

Benefits of technology

The uniform distribution of forces during the plug-in and unplugging of memory sticks is achieved, the risk of memory stick damage is reduced, and the accuracy and security of plug-in and unplugging force is ensured through real-time monitoring and control.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a memory bank plugging force detection tool comprising a workbench and a slot body, and the slot body is connected with the workbench through a screw. A supporting assembly and a first supporting frame are arranged on the workbench, and a sliding rod is arranged in the first supporting frame; a supporting cross rod is arranged between the supporting assembly and the first supporting frame and arranged on the supporting assembly and the sliding rod in a sleeving mode. A plugging assembly is arranged on the supporting cross rod, the memory bank body is installed in the plugging assembly, and one end of the memory bank body can be clamped in the slot body. According to the detection tool, supporting cross rods are arranged between a supporting assembly and a first supporting frame, a plugging assembly is arranged on the supporting cross rods, a memory bank body is installed in the plugging assembly and can be clamped in a slot assembly on a workbench, and the plugging force can be detected through the slot assembly; meanwhile, the supporting cross rod can move up and down, so that the insertion and extraction force is uniformly distributed, unnecessary stress borne by the memory bank body is reduced, and the possibility that the memory bank is damaged is reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of detection tooling, and more specifically, particularly relates to a detection tooling for the insertion and extraction force of a memory module. Background Art

[0002] The memory module is one of the key components in a computer system and has an important impact on the performance and stability of the system. To ensure the reliable connection and normal operation of the memory module, the detection of the insertion and extraction force of the memory module becomes crucial, which can effectively avoid the loosening of the connection or poor contact of the memory module during use. However, when the traditional detection tooling detects the insertion and extraction force of the memory module, the applied insertion and extraction force is uneven, which may cause unnecessary stress on the memory module during the insertion and extraction process, thus increasing the risk of damage to the memory module; at the same time, the pins of the memory module may be deformed or broken due to uneven force, further affecting its good connection with the slot, resulting in a decline in electrical performance or system instability. Summary of the Utility Model

[0003] In order to solve the above technical problems, the utility model provides a detection tooling for the insertion and extraction force of a memory module to solve the technical problems in the prior art that the traditional detection tooling applies uneven insertion and extraction force, resulting in unnecessary stress on the memory module and increasing the risk of damage to the memory module; at the same time, it is also easy to cause deformation or breakage of the pins of the memory module.

[0004] The purpose and effect of a detection tooling for the insertion and extraction force of a memory module of the utility model are achieved by the following specific technical means:

[0005] A detection tooling for the insertion and extraction force of a memory module includes a workbench and a slot body. The slot body is located above the workbench and is connected to the workbench by screws; a support assembly is arranged on the workbench, a first support frame is arranged on the workbench, and a sliding rod is arranged inside the first support frame; a support cross bar is arranged between the support assembly and the first support frame, and both ends of the support cross bar are sleeved on the support assembly and the sliding rod respectively; a plugging and unplugging assembly is arranged on the support cross bar, a memory module body is installed in the plugging and unplugging assembly, and one end of the memory module body can be clamped in the slot body.

[0006] According to a preferred embodiment, the support assembly includes a lead screw and a motor. A second support frame is arranged on the workbench, installation grooves are opened at both ends of the second support frame, bearings are arranged in the installation grooves, and both ends of the lead screw are clamped in the bearings; the motor is installed on the top of the second support frame, and the motor shaft end is connected to the lead screw.

[0007] According to a preferred embodiment, sliding blocks are provided at both ends of the support cross bar. One set of the sliding blocks is sleeved on the lead screw, and the other set of the sliding blocks is sleeved on the sliding rod.

[0008] According to a preferred embodiment, the plugging and unplugging assembly includes a connecting rod and a force sensor. The force sensor is located below the connecting rod. One end of the connecting rod is connected to the support cross bar, and the other end is connected to the force sensor.

[0009] According to a preferred embodiment, the plugging and unplugging assembly further includes a fixing base and two sets of fixing plates. The fixing base is connected to the force sensor through the screw. The two sets of fixing plates are located between the fixing bases. The memory module body is clamped between the two sets of fixing plates. Two sets of fixing holes are provided on both the fixing base and the two sets of fixing plates, and a bidirectional bolt is inserted through the fixing holes.

[0010] According to a preferred embodiment, support sleeves are provided at both ends of the fixing base. A support rod is inserted through the support sleeve. Chute grooves are provided on both sides of the support sleeve. A through groove is provided on the support rod. A connecting plate is inserted through the through groove, and both ends of the connecting plate are respectively clamped in the two sets of chute grooves. A spring is provided between the support rod and the support sleeve, and the spring is sleeved on the support rod.

[0011] According to a preferred embodiment, a fixing groove is provided on one side of the fixing plate, and a rubber plate is arranged in the fixing groove and contacts the memory module body.

[0012] Compared with the prior art, the utility model has the following beneficial effects:

[0013] 1. A support cross bar and a plugging and unplugging assembly are provided on the workbench. One end of the support cross bar is sleeved on the support assembly and the sliding rod, and the support cross bar is driven to move up and down by a motor. The slotting assembly is installed on the support cross bar, and the memory module body is installed on the slotting assembly, so that the memory module body can be plugged and unplugged in the slot body. Through the support cross bar and the slotting assembly, the memory module body receives a uniform force distribution during the plugging and unplugging process, avoiding the risk of damage to the memory module caused by uneven forces applied by traditional tooling. This uniform force distribution helps to reduce unnecessary stress on the memory module body and reduces the possibility of damage to the memory module. At the same time, the force sensor in the plugging and unplugging assembly can monitor the plugging and unplugging force in real time, helping the user to accurately master the force applied during the plugging and unplugging process and realizing the detection of the plugging and unplugging force of the memory module body.

[0014] 2. The combined setting of the support sleeve, support rod and spring inside the plug-and-play component can provide stable support force, ensuring that the memory module body maintains the correct position and posture during the plugging and unplugging process. One end of the support rod can contact the workbench, playing a role in limiting the up and down movement of the support crossbar, avoiding the support crossbar from descending to a position lower than the position of the memory module body inside the slot body, effectively preventing the deformation or breakage of the memory module pins. The rubber plate provided on the fixing plate can provide additional buffering and protection, reducing the friction and collision between the memory module body and the tooling, and effectively protecting the pins and the shell of the memory module from damage. Brief Description of the Drawings

[0015] Figure 1 is the structural schematic diagram of the assembled utility model.

[0016] Figure 2 is the structural schematic diagram of the disassembled utility model.

[0017] Figure 3 is the structural schematic diagram of the disassembled plug-and-play component.

[0018] Figure 4 is Figure 3 the partial enlarged view of area a in

[0019] Figure 5 the structural schematic diagram of the fixing plate.

[0020] In the figure, the corresponding relationship between the component names and the drawing reference numbers is as follows:

[0021] 11. Workbench; 12. First support frame; 13. Slide bar; 14. Second support frame; 15. Installation groove; 21. Slot body; 22. Support crossbar; 23. Memory module body; 24. Sliding block; 31. Lead screw; 32. Motor; 33. Connecting rod; 34. Force sensor; 35. Fixed seat; 36. Fixing plate; 37. Fixed hole; 38. Bidirectional bolt; 41. Support sleeve; 42. Support rod; 43. Chute; 44. Through groove; 45. Connecting plate; 46. Spring; 47. Fixed groove; 48. Rubber plate. Detailed Description of the Embodiment

[0022] The following further describes the embodiments of the present utility model in detail in conjunction with the drawings and embodiments. The following embodiments are used to illustrate the technical solutions of the present utility model, but cannot be used to limit the protection scope of the present utility model.

[0023] Embodiment:

[0024] As Figure 1 , 2As shown in the figure, the utility model provides a detection tool for the insertion and extraction force of a memory module, which includes a workbench 11 and a slot body 21. The workbench 11 serves as a support platform, bearing the weight and stability of the entire device, while the slot body 21 undertakes the slot function. Through the connection with the workbench 11 by screws, it is ensured that the slot body 21 is firmly fixed above the workbench 11 and will not shift or loosen due to vibrations or external forces during operation. A first support frame 12 is provided on the workbench 11, and a slide bar 13 is installed inside the first support frame 12. Both ends of the support cross bar 22 are respectively sleeved on the support assembly and the slide bar 13, ensuring the stable fixation of the support cross bar 22. At the same time, the support cross bar 22 can move up and down. An insertion and extraction assembly is provided on the support cross bar 22 for installing the memory module body 23. One end of the memory module body 23 can be firmly clamped in the slot body 21, and the detection of the memory module body 23 is realized through the insertion and extraction assembly.

[0025] The support assembly includes a lead screw 31 and a motor 32. A second support frame 14 is provided on the workbench 11. Installation grooves 15 are provided at both ends of the second support frame 14, and bearings are installed in the installation grooves 15 to ensure the stable installation of the lead screw 31. Both ends of the lead screw 31 are clamped in the bearings, thereby ensuring the smooth rotation of the lead screw 31. The motor 32 is installed on the top of the second support frame 14, and the shaft end of the motor 32 is connected to the lead screw 31. Through the drive of the motor 32, the rotational movement of the lead screw 31 can be controlled, thereby realizing the up and down movement of the support cross bar 22. Sliding blocks 24 are provided at both ends of the support cross bar 22. One set of sliding blocks 24 is sleeved on the lead screw 31, and the other set of sliding blocks 24 is sleeved on the slide bar 13. This enables the support cross bar 22 to move smoothly up and down under the guidance of the lead screw 31 and the slide bar 13. The sliding blocks 24 reduce the friction force, ensuring the smooth movement of the support cross bar 22. At the same time, they provide additional support and stability, making the installation and disassembly process of the memory module more smooth and reliable.

[0026] As Figures 2 to 5As shown in the figure, the pluggable component further includes a connecting rod 33 and a force sensor 34. The force sensor 34 is located below the connecting rod 33 and is used to monitor the force and pressure changes during the plugging and unplugging process. One end of the connecting rod 33 is connected to the support crossbar 22, and the other end is connected to the force sensor 34. Through the design of the connecting rod 33, the force sensor 34 can accurately sense the force applied to the memory module during the plugging and unplugging process, thereby realizing the real-time monitoring and control of the plugging and unplugging process. The pluggable component further includes a fixed seat 35 and two sets of fixing plates 36. The fixed seat 35 is connected to the force sensor 34 by screws, ensuring the stable fixation of the force sensor 34. The two sets of fixing plates 36 are located between the fixed seats 35, and the memory module body 23 is clamped between the two sets of fixing plates 36, thereby maintaining the stable position of the memory module body 23. Two sets of fixing holes 37 are provided on both the fixed seat 35 and the two sets of fixing plates 36. A double-headed bolt 38 is inserted through these fixing holes 37. Through the fixation of the double-headed bolt 38, the connection between the fixed seat 35, the fixing plate 36 and the memory module body 23 is ensured to be firm and reliable. Support sleeves 41 are provided at both ends of the fixed seat 35. A support rod 42 is inserted through the support sleeve 41, and sliding grooves 43 are provided on both sides of the support sleeve 41. A through groove 44 is provided on the support rod 42. A connecting plate 45 is inserted through the through groove 44, and both ends of the connecting plate 45 are clamped in the two sets of sliding grooves 43, thereby realizing the connection and fixation between the support sleeve 41 and the support rod 42. A spring 46 is provided between the support rod 42 and the support sleeve 41. The spring 46 is sleeved on the support rod 42. Through the elastic action of the spring 46, the vibration and impact during the plugging and unplugging of the memory module can be alleviated, protecting the safety of the memory module body 23. A fixing groove 47 is provided on one side of the fixing plate 36, and a rubber plate 48 is provided in the fixing groove 47. The rubber plate 48 contacts the memory module body 23. It can effectively reduce the friction and vibration during the plugging and unplugging of the memory module, protecting the memory module body 23 from damage. The elastic characteristics of the rubber plate 48 can also provide additional buffering and protection, ensuring that the memory module remains stable and well-protected during the plugging and unplugging process.

[0027] Specific usage method and function of this embodiment:

[0028] During use, first, one end of the memory module body 23 is firmly clamped in the slot body 21, and the detection of the memory module body 23 is realized through the plugging and unplugging component. The plugging and unplugging component is arranged on the support cross bar 22 and is used to install the memory module body 23 to ensure the stable fixation of the memory module. The connecting rod 33 and the force sensor 34 are used to monitor the force and pressure changes during the plugging and unplugging process. The force sensor 34 can accurately sense the force applied to the memory module, realize the real-time monitoring and control of the plugging and unplugging process, and ensure the accuracy and safety of the operation. Through the design of components such as the fixing seat 35, the fixing plate 36, and the support sleeve 41, the memory module body 23 maintains a stable position during the plugging and unplugging process and is not prone to displacement or loosening. The application of the spring 46 and the rubber plate 48 effectively reduces vibration, friction, and oscillation, protecting the memory module from damage. The combination of the lead screw 31 and the motor 32 can control the up and down movement of the support cross bar 22, and the sliding block 24 reduces the friction force, ensuring the smooth movement of the support cross bar 22 and providing additional support and stability.

[0029] The above shows and describes the basic principles, main features, and advantages of the present invention. For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments.

Claims

1. A memory stick insertion force detection tool, comprising a workbench (11) and a slot body (21), characterized in that: The slot body (21) is located above the workbench (11) and is connected to the workbench (11) by screws; a support assembly is arranged on the workbench (11), a first support frame (12) is arranged on the workbench (11), and a slide bar (13) is arranged in the first support frame (12); a support cross bar (22) is arranged between the support assembly and the first support frame (12), and two ends of the support cross bar (22) are respectively sleeved on the support assembly and the slide bar (13); a plug-in assembly is arranged on the support cross bar (22), a memory bar body (23) is installed in the plug-in assembly, and one end of the memory bar body (23) can be clamped in the slot body (21).

2. The memory stick insertion force detection tool according to claim 1, characterized in that: The support assembly comprises a screw rod (31) and a motor (32); a second support frame (14) is arranged on the workbench (11); both ends of the second support frame (14) are provided with mounting grooves (15); bearings are arranged in the mounting grooves (15); both ends of the screw rod (31) are clamped in the bearings; the motor (32) is installed on the top of the second support frame (14); and the shaft end of the motor (32) is connected to the screw rod (31).

3. The memory stick insertion force detection tool according to claim 2, characterized in that: Sliding blocks (24) are provided at both ends of the supporting cross bar (22), wherein one group of the sliding blocks (24) is sleeved on the screw rod (31), and the other group of the sliding blocks (24) is sleeved on the sliding rod (13).

4. The memory stick insertion force detection tool according to claim 1, characterized in that: The plug-in assembly comprises a connecting rod (33) and a force sensor (34), wherein the force sensor (34) is located below the connecting rod (33); one end of the connecting rod (33) is connected to the supporting cross bar (22), and the other end is connected to the force sensor (34).

5. The memory stick insertion force detection tool according to claim 4, characterized in that: The plug-in assembly also includes a fixing seat (35) and two groups of fixing plates (36); the fixing seat (35) is connected to the force sensor (34) through the screw; the two groups of fixing plates (36) are located between the fixing seats (35), and the memory bar body (23) is clamped between the two groups of fixing plates (36); the fixing seat (35) and the two groups of fixing plates (36) are both provided with two groups of fixing holes (37), and two-way bolts (38) are inserted into the fixing holes (37).

6. The memory stick insertion force detection tool according to claim 5, characterized in that: A support sleeve (41) is provided at both ends of the fixing seat (35), a support rod (42) is inserted into the support sleeve (41), sliding grooves (43) are provided on both sides of the support sleeve (41), a through groove (44) is provided on the support rod (42), a connecting plate (45) is inserted into the through groove (44), and two ends of the connecting plate (45) are respectively clamped in two groups of the sliding grooves (43); a spring (46) is provided between the support rod (42) and the support sleeve (41), and the spring (46) is sleeved on the support rod (42).

7. The memory stick insertion force detection tool according to claim 6, characterized in that: A fixing groove (47) is provided on one side of the fixing plate (36), a rubber plate (48) is arranged in the fixing groove (47), and the rubber plate (48) is in contact with the memory bar body (23).