Auxiliary inserting tool for RDIMM memory bank
By designing an auxiliary insertion fixture for RDIMM memory modules, and utilizing the cooperation of elastic and clamping components, the problems of slippage and localized wear during the insertion of RDIMM memory modules are solved, achieving stable and convenient insertion operations.
Patent Information
- Application Number
- CN202511788367.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-28
- Publication Date
- 2026-05-01
AI Technical Summary
When inserting RDIMM memory modules, hand operation can easily lead to slippage, localized wear, and concentrated force, affecting stability and lifespan.
Design an auxiliary insertion fixture that includes an insertion body, an elastic component, and a clamping component. Through the cooperation of the elastic component and the movable shaft, it can stably clamp and evenly distribute pressure on the RDIMM memory module, ensuring the correct insertion direction.
It improves the stability and safety of the connection, avoids localized wear, enhances the convenience and reliability of the connection, ensures even distribution of force points, and improves operational efficiency.
Smart Images

Figure CN121957299A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of auxiliary insertion and removal tooling technology, and in particular to an auxiliary insertion tooling for RDIMM memory modules. Background Technology
[0002] RDIMM is a dual in-line memory module with registers, widely used in the server field. Compared with ordinary unbuffered memory, RDIMM has added registers in its design to buffer the signal transmission between the CPU and memory chips, thereby increasing the memory capacity and frequency, and enhancing the system stability. Currently, most RDIMM memory modules are inserted by hand.
[0003] However, when operators manually insert RDIMM memory modules, the smooth surface of the modules can cause slippage, making it difficult to apply force. Furthermore, prolonged insertion can lead to excessive force applied to specific areas, causing wear and tear. Secondly, directly inserting RDIMM memory modules by hand concentrates force too much, failing to distribute it evenly across the module. This can result in excessive localized stress, damaging the memory module and affecting its stability during use. Summary of the Invention
[0004] This application provides an auxiliary insertion fixture for RDIMM memory modules, which can further provide stable clamping, uniform pressure distribution and guide the correct insertion direction for the insertion operation of RDIMM memory modules, thereby improving installation efficiency and reliability.
[0005] Therefore, this application provides an auxiliary insertion fixture for RDIMM memory modules, comprising:
[0006] The connector body has a mounting slot for accommodating RDIMM memory modules;
[0007] An elastic component includes at least one movable shaft and an elastic element, the elastic element being sleeved on the movable shaft and located within the insertion body; the movable shaft is slidably inserted through the insertion body;
[0008] A clamping assembly is connected to the movable shaft;
[0009] The clamping assembly, under the action of the elastic member, clamps or releases the RDIMM memory module in the fixing slot.
[0010] Furthermore, the insertion body includes an integrally connected fixing block and two extension blocks, the two extension blocks being respectively disposed on both sides of the fixing block and forming the fixing groove with the fixing block.
[0011] Furthermore, there are two movable shafts, which are slidably inserted through both ends of the fixed block.
[0012] Furthermore, each end of the fixed block is provided with a through groove, and a movable shaft can slide through each through groove.
[0013] Furthermore, each of the movable bushings is provided with an elastic element, which is housed in the through groove and has its two ends abutting against the fixing block and the clamping assembly, respectively.
[0014] Furthermore, the clamping assembly includes:
[0015] A slider is connected to one end of the movable shaft and is slidably connected to the inner wall of one side of the fixed groove;
[0016] A clamping block is slidably connected to the slider.
[0017] Furthermore, the slider has a guide protrusion on the side facing the clamping block, and the guide protrusion extends in a direction close to or away from the RDIMM memory module; the clamping block has a corresponding guide groove that matches the guide protrusion.
[0018] The guide protrusion is inserted into the guide groove so that the slider and the clamping block slide relative to each other in a direction that is close to or away from the RDIMM memory module.
[0019] Furthermore, the clamping block has a snap-fit protrusion on the side facing the RDIMM memory module, which is used to detachably engage with the slot of the RDIMM memory module.
[0020] Furthermore, the elastic component also includes a movable handle, which is connected to one end of each of the two movable shafts opposite to the fixed block, so as to drive the two movable shafts to slide synchronously.
[0021] Furthermore, it also includes a fixed handle, which is located on the side of the fixed block away from the fixed groove, and forms a receiving space between the fixed block and the fixed block.
[0022] The beneficial effects of this application are:
[0023] This auxiliary insertion fixture for RDIMM memory modules includes an insertion body, an elastic component, and a clamping component. The insertion body has a fixing groove for accommodating RDIMM memory modules. The elastic component includes at least one movable shaft and an elastic element, the elastic element being sleeved on the movable shaft and located within the insertion body. The movable shaft is slidably inserted through the insertion body. The clamping component is connected to the movable shaft. Under the action of the elastic element, the clamping component clamps or releases the RDIMM memory module within the fixing groove.
[0024] In its natural state, the clamping component is in the open position. When assisting in the insertion of the RDIMM memory module, the fixing slot of the insertion body is first aligned with the RDIMM memory module for insertion. This fixing slot provides initial positioning of the RDIMM memory module, preventing misalignment during insertion. The drive mechanism then moves its axis along the insertion body, driving the connected clamping component to press against the elastic element. Under the continuous action of the elastic force, the clamping component presses the RDIMM memory module in the fixing slot from both sides or corresponding directions until the inner wall of the fixing slot is in contact with the RDIMM memory module, forming a stable clamp and achieving stable assisted insertion of the RDIMM memory module. In this way, the force is evenly distributed across both ends of the RDIMM memory module by the insertion body and the clamping component, preventing the force from being too concentrated and causing damage to the RDIMM memory module during insertion, thus further ensuring the stability of the RDIMM memory module during insertion. In addition, after the insertion is completed, release the movable shaft so that it slides downward. At this time, the elastic element recovers its deformation and generates elastic force, which acts on the clamping component, causing the clamping component to open and release the clamping of the RDIMM memory module. Then remove the insertion fixture to complete the auxiliary insertion of the RDIMM memory module. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0026] Figure 1 This application provides an overall structural schematic diagram of an auxiliary insertion fixture for RDIMM memory modules;
[0027] Figure 2 A schematic diagram of the internal structure of an auxiliary insertion fixture for RDIMM memory modules provided in this application;
[0028] Figure 3 for Figure 2A magnified view of part A in the image;
[0029] Figure 4 This application provides a schematic diagram of the connection structure between an auxiliary insertion tool for RDIMM memory modules and an RDIMM memory module.
[0030] Explanation of reference numerals in the attached figures:
[0031] 1. RDIMM memory module; 101. Slot; 2. Insertion body; 21. Fixing block; 211. Through slot; 212. Limiting slot; 22. Extension block; 23. Fixing slot; 3. Fixing handle; 4. Movable handle; 5. Slider; 51. Guide protrusion; 6. Clamping block; 61. Snap-fit protrusion; 7. Movable shaft; 8. Elastic element. Detailed Implementation
[0032] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.
[0033] The following disclosure provides numerous different embodiments or examples for implementing various structures of this application. To simplify the disclosure, specific examples of components and arrangements are described below. These are merely examples and are not intended to limit the scope of this application. Furthermore, reference numerals and / or letters may be repeated in different examples. Such repetition is for simplification and clarity and does not in itself indicate a relationship between the various embodiments and / or arrangements discussed.
[0034] like Figures 1 to 4 As shown, this application provides an auxiliary insertion tool for RDIMM memory modules, including an insertion body 2, an elastic component, and a clamping component. The insertion body 2 has a fixing groove 23 for accommodating an RDIMM memory module 1. The elastic component includes at least one movable shaft 7 and an elastic element 8, the elastic element 8 being sleeved on the movable shaft 7 and located within the insertion body 2. The movable shaft 7 is slidably inserted through the insertion body 2. The clamping component is connected to the movable shaft 7. The clamping component, under the action of the elastic element 8, clamps or releases the RDIMM memory module 1 within the fixing groove 23.
[0035] In its natural state, the clamping assembly is in the open position. When assisting in the insertion of the RDIMM memory module 1, the fixing groove 23 of the insertion body 2 is first aligned with the RDIMM memory module 1 for insertion. In this way, the fixing groove 23 can play a preliminary positioning role for the RDIMM memory module 1, preventing misalignment during insertion. The movable shaft 7 is driven and slides along the insertion body 2. When the movable shaft 7 slides, it drives the connected clamping assembly, causing the clamping assembly to squeeze the elastic element 8, compressing it. Under the continuous action of the elastic force, the clamping assembly presses the RDIMM memory module 1 in the fixing groove 23 from both sides or corresponding directions until the inner wall of the fixing groove 23 is flush with the RDIMM memory module 1. The M memory module 1 is fitted together to form a stable clamp, achieving stable auxiliary insertion of the RDIMM memory module 1. In this way, the operator no longer needs to hold the RDIMM memory module 1 directly, but can directly hold the insertion body 2. This allows the force to be evenly transmitted to both ends of the RDIMM memory module 1 through the insertion body 2 and the clamping components. This can evenly distribute the operator's force on the RDIMM memory module 1, while increasing the contact area, making the insertion easier and more stable. It avoids the force being too concentrated, which could cause damage to the RDIMM memory module 1 during the insertion process, and further ensures the stability of the RDIMM memory module 1 during the insertion process. In addition, after the insertion is completed, the movable shaft 7 is released, allowing it to slide downwards. At this time, the elastic element 8 recovers its deformation and generates elastic force, which acts on the clamping component, causing the clamping component to open and release the clamping of the RDIMM memory module 1. Then, the insertion fixture can be removed, thereby completing the auxiliary insertion of the RDIMM memory module 1 and ensuring the safety, convenience, and stability of the RDIMM memory module 1 during insertion.
[0036] like Figure 1 As shown, in this embodiment, the insertion body 2 includes an integrally connected fixing block 21 and two extension blocks 22. The two extension blocks 22 are respectively disposed on both sides of the fixing block 21 and together with the fixing block 21 form the fixing groove 23. The extension blocks 22 on both sides restrict the left and right offset of the RDIMM memory module 1 in the width direction, while the fixing block 21 provides support from the bottom or back. This allows the shape and size of the fixing groove 23 to precisely match the RDIMM memory module 1, and its groove walls fit the RDIMM memory module 1 in all directions, improving positioning accuracy and enhancing support stability. This prevents forward and backward tilting during insertion, making it more reliable than positioning with a single groove. Furthermore, the integrally connected fixing block 21 and extension blocks 22 form a rigid frame, which can evenly transmit the pressure of the clamping components and the thrust during insertion to the surface of the RDIMM memory module 1, preventing excessive local stress that could damage the edges or gold fingers of the RDIMM memory module 1. It also prevents deformation of the fixture itself, ensuring stability after multiple uses.
[0037] like Figure 1As shown, in this embodiment, there are two movable axes 7, which are slidably inserted through both ends of the fixed block 21. The two movable axes 7 correspond to the two ends of the fixed block 21, forming a two-point support. This allows the clamping assembly to apply force synchronously from both ends of the RDIMM memory module 1, avoiding unilateral pressure concentration caused by single-axis clamping. This prevents the movable axes 7 from tilting or jamming during sliding, ensuring the RDIMM memory module 1 remains horizontal during clamping. This achieves symmetrical clamping, balanced force transmission, and structural stability, adapting to the auxiliary insertion of the entire fixture. Furthermore, the symmetrical arrangement of the two movable axes 7 allows the operator to pull simultaneously with both hands or grip naturally, providing a balanced feel and saving effort. Simultaneously, the dual-axis layout, in conjunction with the enclosing structure of the fixed block 21 and the extension block 22, keeps the overall center of gravity of the fixture centered, preventing wobbling during insertion and further improving operational accuracy.
[0038] like Figure 1 As shown, in this embodiment, the elastic component further includes a movable handle 4, which is connected to one end of each of the two movable shafts 7 opposite to the fixed block 21. Preferably, the movable handle 4 is integrated with the two movable shafts 7, eliminating the need to operate the two movable shafts 7 separately. When the operator pulls or releases the movable handle 4 with one hand, it can directly drive the dual shafts to slide synchronously, ensuring that the clamping component applies pressure and releases simultaneously from both ends of the RDIMM memory module 1, completely preventing the RDIMM memory module 1 from shifting or being damaged due to uneven clamping or release on one side. Moreover, the movable handle 4 provides a concentrated force point, making the grip more comfortable and the force application smoother, especially suitable for scenarios where RDIMM memory modules 1 are frequently plugged in and out, improving operating efficiency, and making the overall structure of the fixture more compact.
[0039] like Figures 2 to 4 As shown, in this embodiment, each end of the fixing block 21 is provided with a through groove 211, and a movable shaft 7 can slide through each through groove 211. The through grooves 211 at both ends of the fixing block 21 provide a sliding channel for the movable shaft 7, forming a sliding guide structure, which restricts the movable shaft 7 to only move axially, reduces structural shaking during insertion, and makes the tooling structure more compact and regular.
[0040] like Figures 2 to 4As shown, in this embodiment, each of the movable shafts 7 is fitted with an elastic element 8, which is housed within the through groove 211, with its two ends abutting against the fixing block 21 and the clamping assembly, respectively. The through groove 211 provides a closed accommodating space for the elastic element 8, limiting radial displacement and torsion of the spring, ensuring that the elastic element 8 only extends and contracts axially. Preferably, the elastic element 8 is a spring, whose elastic properties provide continuous and uniform pressure. With its two ends abutting against the fixing block 21 and the clamping assembly, and in conjunction with the dual-axis layout, the force on both sides of the RDIMM memory module 1 is consistent. Thus, the elastic force generated during compression can be transmitted to the clamping assembly without loss, ensuring stable clamping without damaging the RDIMM memory module 1. After insertion, the elastic element 8 can recover its deformation through its own elasticity without additional external force, causing the clamping assembly to open and the movable shaft 7 to reset. Simultaneously, the reset action, combined with the guiding effect of the through groove 211, ensures that the movable shaft 7 and the clamping assembly accurately return to their initial positions, preparing for the next insertion and improving operational continuity.
[0041] like Figure 3 and Figure 4 As shown, in this embodiment, the clamping assembly includes a slider 5 and a clamping block 6; the slider 5 is connected to one end of the movable shaft 7 and is slidably connected to one side inner wall of the fixed groove 23; the clamping block 6 is slidably connected to the slider 5; preferably, the slider 5 has a guide protrusion 51 on the side facing the clamping block 6, and the guide protrusion 51 extends in a direction close to or away from the RDIMM memory module 1; the clamping block 6 has a corresponding guide groove that matches the guide protrusion 51; wherein, the guide protrusion 51 is inserted into the guide groove so that the slider 5 and the clamping block 6 slide relative to each other in a direction close to or away from the RDIMM memory module 1.
[0042] The extension block 22 has a sliding groove extending along the sliding direction of the movable shaft 7. The slider 5 is embedded in and slides within the sliding groove. The slider 5 is arranged in a right-angled trapezoidal shape, meaning the upper end of the slider 5 is shorter than the lower end, and the vertical side of the slider 5 slides within the sliding groove. Preferably, the clamping block 6 is L-shaped, with its vertical segment also being a right-angled trapezoid. The trapezoidal segment of the clamping block 6 and the slider 5 are symmetrically offset, and the inclined surface of the clamping block 6 is slidably connected to the inclined surface of the slider 5. The vertical side of the slider 5 is embedded in and slides within the groove to limit the axial sliding trajectory; the clamping block 6 and the trapezoidal surface of the slider 5 are slidably connected to limit the lateral clamping trajectory, forming a double limiting mechanism to prevent component displacement or torsion.
[0043] Furthermore, the inclined surfaces of slider 5 and clamping block 6 are symmetrically offset and slidably connected. When the movable shaft 7 drives slider 5 to slide axially along the sliding groove, the inclined surfaces interact, making their contact area larger. This converts the elastic force of the axial elastic element 8 into the lateral clamping force of clamping block 6. Without additional transmission structure, clamping block 6 can retract into the fixing groove 23 to clamp RDIMM memory module 1. The structure is compact and the force transmission is direct. Moreover, the sliding fit of the trapezoidal inclined surfaces has self-adjusting characteristics. Even if there is a slight thickness deviation of RDIMM memory module 1 or a slight positional shift during assembly, clamping block 6 and slider 5 can automatically adjust the clamping position through the relative sliding of each inclined surface. This ensures that the contact surface of clamping block 6 fully contacts RDIMM memory module 1, avoiding local suspension or incomplete clamping, while reducing damage caused by hard compression, further improving clamping stability, and preventing RDIMM memory module 1 from falling off during insertion.
[0044] like Figure 3 and Figure 4 As shown, in this embodiment, the clamping block 6 has a snap-fit protrusion 61 on the side facing the RDIMM memory module 1. The snap-fit protrusion 61 is used to detachably engage with the slot 101 of the RDIMM memory module 1. During installation, the snap-fit protrusion 61 needs to slide into the slot 101 to ensure that the RDIMM memory module 1 is placed in the correct position in the clamping block 6, avoiding poor contact or physical damage caused by misalignment during installation. This effectively prevents the RDIMM memory module 1 from accidentally loosening or falling out of the slot during transportation, movement, or when subjected to slight vibration / impact, greatly improving the reliability of the connection between the fixing block 21 and the RDIMM memory module 1.
[0045] like Figure 1 and Figure 2 As shown, in this embodiment, a fixed handle 3 is also included. Preferably, the fixed handle 3 is inverted C-shape and integrally formed with the insertion body 2 to ensure structural strength. The fixed handle 3 is located on the side of the fixed block 21 opposite to the fixed groove 23, and a receiving space is formed between the fixed handle 3 and the fixed block 21. The size of the receiving space is adapted to the sliding stroke of the movable handle 4, which can help the movable handle 4 maintain the sliding direction so that the movable handle 4 can slide back and forth within the receiving space without falling out. This avoids excessive sliding of the movable handle 4 and causing pressure on the RDIMM memory module 1 or the motherboard slot, and ensures that the linear movement of the movable handle 4 can be accurately converted into the clamping or releasing action of the clamping block 6.
[0046] Furthermore, the inverted C-shaped fixed handle 3 forms a gripping area that conforms to hand movements, providing users with a clear force point. During the insertion process, by driving the movable handle 4 to slide within the receiving space, it drives the connected clamping block 6 to move, thereby achieving the engagement or release of the RDIMM memory module 1. Specifically, by sliding the movable handle 4 to one end of the receiving space, the clamping block 6 moves inward, and the engaging protrusion 61 engages with the RDIMM memory module 1 slot 101; by sliding the movable handle 4 to the other end of the receiving space, the clamping block 6 moves outward, and the engaging protrusion 61 separates from the RDIMM memory module 1 slot 101. In this way, the force required to insert and remove the RDIMM memory module 1 is reduced during the insertion operation, making it more convenient and effortless, avoiding hand slippage due to excessive force. At the same time, it further increases the contact area between the insertion fixture and the RDIMM memory module 1, distributing the force point evenly on the RDIMM memory module 1 to ensure the stability of the RDIMM memory module 1 during the insertion process. This also makes the overall structure compact and does not take up extra installation space.
[0047] In this embodiment, a buffer pad is provided at the bottom of the fixing slot 23. The buffer pad commonly uses elastic materials such as silicone or foam to alleviate mechanical impacts during insertion and removal, preventing stress damage caused by hard contact between the RDIMM memory module 1 and the fixing slot 23. It also protects the electronic components and solder joints on the surface of the RDIMM memory module 1 from physical damage caused by the sharp edges of the fixing slot 23. Furthermore, it fills the gap between the fixing slot 23 and the RDIMM memory module 1, preventing slight shaking during use and improving overall stability. In addition, some buffer pads have anti-slip properties, enhancing the fit between the RDIMM memory module 1 and the fixing slot 23 and reducing the risk of displacement.
[0048] In this embodiment, the fixing block 21 is further provided with a limiting groove 212, which communicates with the fixing groove 23 and the through groove 211. The limiting groove 212 limits the compression stroke of the clamping component, preventing the elastic element 8 from being over-compressed and exceeding its elastic limit, thus avoiding permanent deformation or fatigue damage and ensuring the continuous clamping effect of the clamping component. Specifically, the movement of the clamping component is simultaneously guided by both the limiting groove 212 and the through groove 211, providing a clear trajectory for the movement of the clamping component and preventing deviation or jamming during compression. This forms a closed-loop linkage of limiting, compression, and rebound with the clamping component and the elastic element 8, achieving protection of the elastic element 8 and stable clamping force, ensuring consistency in each operation, improving assembly repeatability, and further optimizing the reliability of the RDIMM memory module 1 fixing system.
[0049] In this embodiment, the gripping portion of the fixed handle 3 and / or the movable handle 4 is provided with anti-slip texture or covered with anti-slip material to avoid slippage due to excessive force during the insertion process. At the same time, with the fixation of the auxiliary insertion component, the contact area between the operator and the RDIMM memory module 1 can be further increased, making the insertion operation more convenient and labor-saving.
[0050] In this application, to prevent operators from directly holding the RDIMM memory module 1 during insertion and replacement, which could cause localized wear and slippage, the operator's thumb and palm should grip the fixed handle 3 when inserting the RDIMM memory module 1, aligning the fixing slot 23 of the insertion body 2 with the RDIMM memory module 1. The fixing slot 23 provides initial positioning for the RDIMM memory module 1. Then, the other four fingers should grip the movable handle 4. Since the fixed handle 3 cannot move, when the movable handle 4 is pulled, it will be subject to external force. Under the action of the sliding block 21, the slider 5 moves upward and drives the movable shaft 7 to slide upward along the extension block 22 of the insertion body 2. At the same time, the movable shaft 7 drives the slider 5 to move upward synchronously. Since the slider 5 is slidably connected to the inner wall of the fixed groove 23, the slider 5 can only move vertically inside the fixed groove 23, thus ensuring the stability of the slider 5 in the fixed groove 23. During the operation of the slider 5, the inclined surface of the slider 5 and the inclined surface of the clamping block 6 are slidably fitted. The clamping block 6 simultaneously drives the RDIMM memory stick 1 to move closer to the fixed block 21. Since the clamping block 6 can only move horizontally, the slider 5 moves upward. During the process, the larger diameter inclined surface on slider 5 gradually moves towards the larger diameter inclined surface on clamping block 6. Since slider 5 cannot move horizontally, it pushes clamping block 6, causing the snap-fit protrusion 61 of clamping block 6 to insert into the slot 101 on RDIMM memory module 1, further ensuring the stability of the connection between fixing block 21 and RDIMM memory module 1. Then, the movable handle 4 can be pulled upwards until the inner wall of fixing slot 23 is flush with RDIMM memory module 1, completing the connection and fixation of fixing block 21 and RDIMM memory module 1. At this point, simply pull or push fixing block 21 and the fixing... Handle 3 can assist in the insertion of RDIMM memory module 1. During this process, when inserting another RDIMM memory module 1, in order to ensure that the clamping block 6 does not affect the insertion of the next RDIMM memory module 1, the slider 5 needs to drive the clamping block 6 back to its original position. Therefore, an elastic element 8 is provided inside the through slot 211. When the movable handle 4 is pulled upward, the slider 5 moves upward, and the elastic element 8 will be squeezed. When the movable handle 4 is released, under the rebound action of the elastic element 8, the elastic element 8 will push the slider 5, and the slider 5 will also push the clamping block 6 back to its original position for easy use next time.With the coordinated operation of all components, the operator does not need to directly touch the RDIMM memory module 1 by hand. This increases the contact area between the operator and the RDIMM memory module 11, evenly distributing the operator's force across the RDIMM memory module 1, making it more convenient and effortless. This further ensures the stability of the RDIMM memory module 1 during insertion, preventing damage caused by excessive force concentration. Therefore, it provides stable clamping, even pressure distribution, and guides the correct insertion direction for the RDIMM memory module 1, improving installation efficiency and reliability.
[0051] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.
[0052] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.
[0053] In this application, unless otherwise expressly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.
[0054] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this application. The illustrative expressions of the above terms in this specification should not be construed as necessarily referring to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. In addition, those skilled in the art can combine and integrate the different embodiments or examples described in this specification.
[0055] Obviously, those skilled in the art can make various modifications and variations to this application without departing from the spirit and scope of this application. Since these modifications and variations fall within the scope of the claims and their equivalents, this application also intends to include these modifications and variations.
[0056] The above description describes specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in this application, and these modifications or substitutions should all be covered within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.
Claims
1. A fixture for auxiliary insertion of RDIMM memory modules, characterized in that, include: The connector body has a mounting slot for accommodating RDIMM memory modules; An elastic component includes at least one movable shaft and an elastic element, the elastic element being sleeved on the movable shaft and located within the insertion body; the movable shaft is slidably inserted through the insertion body; A clamping assembly is connected to the movable shaft; The clamping assembly, under the action of the elastic member, clamps or releases the RDIMM memory module in the fixing slot.
2. The auxiliary insertion fixture for RDIMM memory modules according to claim 1, characterized in that, The plug-in body includes an integrally connected fixing block and two extension blocks. The two extension blocks are respectively located on both sides of the fixing block and together with the fixing block form the fixing groove.
3. The auxiliary insertion fixture for RDIMM memory modules according to claim 2, characterized in that, The number of movable shafts is two, and the two movable shafts are respectively slidably inserted through both ends of the fixed block.
4. The auxiliary insertion fixture for RDIMM memory modules according to claim 3, characterized in that, Each end of the fixed block is provided with a through groove, and a movable shaft can slide through each through groove.
5. The auxiliary insertion fixture for RDIMM memory modules according to claim 4, characterized in that, Each of the movable bushings is provided with an elastic element, which is housed in the through groove and its two ends abut against the fixing block and the clamping assembly, respectively.
6. The auxiliary insertion fixture for RDIMM memory modules according to claim 1, characterized in that, The clamping assembly includes: A slider is connected to one end of the movable shaft and is slidably connected to the inner wall of one side of the fixed groove; A clamping block is slidably connected to the slider.
7. The auxiliary insertion fixture for RDIMM memory modules according to claim 6, characterized in that, The slider has a guide protrusion on the side facing the clamping block, and the guide protrusion extends in a direction close to or away from the RDIMM memory module; the clamping block has a corresponding guide groove that matches the guide protrusion. The guide protrusion is inserted into the guide groove so that the slider and the clamping block slide relative to each other in a direction that is close to or away from the RDIMM memory module.
8. The auxiliary insertion fixture for RDIMM memory modules according to claim 7, characterized in that, The clamping block has a snap-fit protrusion on the side facing the RDIMM memory module, which is used to detachably engage with the slot of the RDIMM memory module.
9. The auxiliary insertion fixture for RDIMM memory modules according to claim 2, characterized in that, The elastic component also includes a movable handle, which is connected to one end of each of the two movable shafts opposite to the fixed block, so as to drive the two movable shafts to slide synchronously.
10. The auxiliary insertion fixture for RDIMM memory modules according to any one of claims 2 to 9, characterized in that, It also includes a fixed handle, which is located on the side of the fixed block away from the fixed groove and forms a receiving space between the fixed block and the fixed block.