Memory bank quick release structure and host

The sliding rail bracket and plug-in box design of the memory module quick-release structure solve the problem of difficult disassembly and assembly of memory modules and graphics card motherboards, realizing quick connection and disassembly, improving disassembly and assembly efficiency and reducing production costs.

CN223927782UActive Publication Date: 2026-02-17GUANGZHOUSNGKE INFORMATION TECH
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Patent Information

Application Number
CN202520419456.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-11
Publication Date
2026-02-17
Estimated Expiration
2035-03-11

AI Technical Summary

Technical Problem

The memory modules are difficult to easily plug and unplug on the graphics card motherboard, resulting in low installation and removal efficiency.

Method used

A quick-release memory module structure was designed. Through the cooperation of a slide rail and a plug-in box, the memory module can be blindly inserted and quickly removed from the graphics card motherboard. The plug-in box is used to push, pull and slide on the side of the graphics card motherboard for installation and removal.

Benefits of technology

It enables quick connection and disconnection of memory modules and graphics card motherboard, improving assembly and disassembly efficiency, avoiding space limitations and increased production costs, and ensuring the integrity of the overall appearance.

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Abstract

The utility model relates to a memory bank quick-release structure and a host, the memory bank quick-release structure comprises a slide rail frame, a graphics card mainboard and a plug box, the slide rail frame forms a plug channel, a plug port and a plug port, the plug port and the plug port are oppositely arranged in a first direction and are both communicated with the plug channel, the plug box is slidably connected with the slide rail frame, and the graphics card mainboard is arranged in the plug box. The plugging box can be pushed into or pulled out of the plugging channel through the plugging opening in the first direction, a containing space is formed in the plugging box and comprises a containing channel and a communicating opening, the communicating opening and the plugging opening are oppositely arranged, the containing channel is used for containing the memory bank, and the communicating opening is used for allowing the plugging part of the memory bank arranged in the containing channel to penetrate out of the containing channel; the display card mainboard is arranged on one side of the sliding rail frame, a memory socket is arranged on the side, close to the sliding rail frame, of the display card mainboard, the memory socket is provided with an insertion opening for the insertion part to be inserted, and the insertion opening and the communication opening are oppositely arranged. According to the memory bank quick disassembly structure, the memory bank and the memory socket can be quickly disassembled and assembled in a manner of pushing and pulling the plugging box.
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Description

Technical Field

[0001] This application relates to the field of computer technology, and in particular to a quick-release structure for a memory module and a host computer. Background Technology

[0002] In today's information age, the use of personal computers is increasing daily. RAM is a crucial component of a personal computer, responsible for storing programs and data to ensure its normal operation. Furthermore, installing RAM within the graphics card can effectively improve the graphics card's read and write speeds.

[0003] Generally, when installing memory modules onto a graphics card, they need to be inserted into the memory sockets on the graphics card's motherboard to ensure data exchange between the memory modules and the graphics card. However, when inserting memory modules into the memory sockets on the graphics card's motherboard, it can be difficult to remove and install the memory modules from the sockets. Utility Model Content

[0004] Therefore, it is necessary to provide a quick-release memory module structure and host that can facilitate the easy insertion and removal of memory modules to improve the efficiency of memory module installation and removal, in order to address the above problems.

[0005] The technical solution is as follows:

[0006] Firstly, this application provides a quick-release structure for a memory module, including:

[0007] A slide rail frame having a plug-in channel, a plug-in port, and a plug-in interface; the plug-in port and the plug-in interface are arranged opposite to each other in a first direction and are both connected to the plug-in channel.

[0008] A plug-in / plug-out box is slidably connected to the slide rail. The plug-in / plug-out box can be pushed into or pulled out of the plug-in / plug-out channel along the first direction through the plug-in / plug-out port. The plug-in / plug-out box forms a receiving space, which includes a receiving channel and a connecting port communicating with the receiving channel. The connecting port is disposed opposite to the plug-in interface. The receiving channel is used to install a memory module, and the connecting port is used for the plug-in portion of the memory module installed in the receiving channel to pass through the receiving channel.

[0009] A graphics card motherboard is located on one side of the slide rail bracket. A memory socket is provided on the side of the graphics card motherboard near the slide rail bracket. The memory socket has a slot for inserting the memory module. The slot is positioned opposite to the communication port.

[0010] In the aforementioned quick-release memory module structure, since the graphics card motherboard is located on one side of the slide rail, the plug-in port and the connector are connected to the plug-in channel and are positioned opposite each other in the first direction. The plug-in box can be pushed into or pulled out of the plug-in channel along the first direction through the plug-in port. The memory socket is located on the side of the graphics card motherboard near the slide rail, and the connector of the memory socket is positioned opposite to the connector of the plug-in box. Therefore, the slide rail is located on the side of the graphics card motherboard. When the plug-in box is pushed into or pulled out of the plug-in channel along the first direction through the plug-in port, the plug-in box can be inserted into or removed from the plug-in channel by pushing, pulling and sliding relative to the side of the graphics card motherboard. The memory module mounting box features a channel for installing memory modules and a connecting port for the memory module's connector to pass through the channel. This connecting port is positioned opposite the memory socket's slot. Therefore, when a memory module is installed in the mounting box and pushed towards the motherboard via the connecting port, the connector, passing through the channel, can pass through the connector and insert into the memory socket, enabling blind insertion and connection between the memory module and the motherboard. To disconnect the memory module, simply pull the mounting box away from the motherboard. This quick-release mechanism allows for rapid installation and removal of the memory module and socket by sliding the mounting box relative to the motherboard, solving the problem of difficult memory module and socket installation / removal.

[0011] The technical solution will be further explained below:

[0012] In one embodiment, the plug-in box includes a top cover and a bottom cover, which are movably connected. The top cover has a closed state and an open state. In the closed state, the top cover can close onto the bottom cover to jointly enclose and form the receiving space. In the open state, the top cover opens the receiving space.

[0013] In one embodiment, the bottom cover includes a bottom plate and two first side plates, both extending along the first direction, with the two first side plates disposed opposite to each other on both sides of the bottom plate; the top cover includes a top plate and two second side plates, disposed opposite to each other on opposite sides of the top plate, with the two first side plates rotatably connected to the two second side plates in a one-to-one correspondence; in the closed state, the bottom cover is located between the two second side plates, and the first side plates and second side plates are disposed opposite to each other in a one-to-one correspondence, with the bottom plate, the top plate, the two first side plates, and the two second side plates together enclosing the accommodating space.

[0014] In one embodiment, each of the two first side plates is provided with a first mating part at one end, and each of the two second side plates is provided with a second mating part that rotatably engages with the first mating part. One of the first mating part and the second mating part includes a rotating shaft and the other includes a rotating shaft opening. The rotating shaft is rotatably disposed at the corresponding rotating shaft opening. The top cover can rotate relative to the bottom cover through the rotating shaft to open or close the accommodating space.

[0015] And / or, each of the first side panels is provided with a third mating part, and each of the second side panels is provided with a fourth mating part; wherein, one of the third mating part and the fourth mating part includes a limiting protrusion, and the other includes a limiting notch, and in the closed state, the limiting protrusion is engaged with the limiting notch to restrict the top cover from rotating relative to the bottom cover.

[0016] In one embodiment, the slide rail frame is further provided with a slide groove extending along the first direction, the slide groove communicating with the accommodating space, and the second side plate is provided with a slide rail. In the closed state, the slide rail and the slide groove are slidably engaged.

[0017] In one embodiment, the bottom cover is provided with a first limiting member, which is used to abut against the memory module installed in the accommodating channel to restrict the memory module within the accommodating channel;

[0018] And / or, the slide rail is provided with a second limiting member, which is used to abut against the plug-in box to restrict the plug-in box from sliding relative to the slide rail towards the side closer to the graphics card motherboard.

[0019] In one embodiment, the number of accommodating channels, the number of connecting ports, and the number of memory sockets are all multiple. The multiple accommodating channels are arranged in a direction perpendicular to the first direction. The accommodating channels, the connecting ports, and the memory sockets are arranged in a one-to-one correspondence. A third limiting member is protruding in the accommodating space. The third limiting member is used to separate two adjacent accommodating channels.

[0020] And / or, the slide rail bracket has a first wing and a second wing that are spaced apart at one end near the graphics card motherboard. The first wing and the second wing both extend toward the side near the graphics card motherboard. A positioning groove is formed between the first wing and the second wing, and part of the graphics card motherboard is inserted into the positioning groove.

[0021] In one embodiment, the quick-release structure of the memory module further includes a backplate and a heatsink, the backplate and the heatsink being spaced apart, the graphics card motherboard being disposed between the backplate and the heatsink, the heatsink having a mounting position on the side facing the backplate, the slide rail being mounted on the mounting position, and the heatsink also having a mounting port communicating with the mounting position, the mounting port being disposed opposite to the plug-in port, the mounting port being used for the plug-in box to be pushed into or pulled out of the plug-in channel.

[0022] Secondly, this application provides a host computer including the aforementioned quick-release memory module structure and a memory module, wherein the memory module is installed in the accommodating space, and the insertion portion of the memory module passes through the communication port and the insertion interface and is inserted into the memory socket.

[0023] In the aforementioned host, since the graphics card motherboard is located on one side of the slide rail, the plug-in port and the plug-in interface are connected to the plug-in channel and are positioned opposite each other in the first direction. The plug-in box can be pushed into or pulled out of the plug-in channel in the first direction through the plug-in port. The memory socket is located on the side of the graphics card motherboard near the slide rail, and the socket of the memory socket is positioned opposite to the connection port of the plug-in box. Therefore, the slide rail is located on the side of the graphics card motherboard. When the plug-in box is pushed into or pulled out of the plug-in channel in the first direction through the plug-in port, the plug-in box can be inserted into or removed from the plug-in channel by pushing, pulling and sliding relative to the side of the graphics card motherboard. The memory module mounting box features a channel for installing memory modules and a connecting port for the memory module's connector to pass through the channel. This connecting port is positioned opposite the memory socket's slot. Therefore, when a memory module is installed in the mounting box and pushed towards the motherboard via the connecting port, the connector, passing through the channel, can pass through the connector and insert into the memory socket, allowing for blind insertion and connection between the memory module and the motherboard. To disconnect the memory module, simply pull the mounting box away from the motherboard. This design allows for quick and easy installation and removal of memory modules and sockets by sliding the mounting box relative to the motherboard, solving the problem of difficult memory module and socket installation / removal.

[0024] In one embodiment, thermally conductive adhesive is provided on both opposite sides of the memory module;

[0025] And / or, the memory module is an M.2 memory module. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of the quick-release structure of a memory module in one embodiment.

[0027] Figure 2 for Figure 1The diagram shows an exploded view of the quick-release structure of the memory module.

[0028] Figure 3 for Figure 1 The diagram shows the structure of the quick-release memory module slot when the slide rail is removed.

[0029] Figure 4 This is a partially enlarged structural diagram of the plug-in box installed on the slide rail frame in one embodiment.

[0030] Figure 5 This is a schematic diagram of the plug-in box in one embodiment.

[0031] Figure 6 This is a schematic diagram of the top cover of the plug-in box in one embodiment when it is open.

[0032] Figure 7 This is an exploded view of a memory module installed in a mounting box according to one embodiment.

[0033] Figure 8 for Figure 1 A magnified schematic diagram of the structure at point A in the diagram shown.

[0034] Explanation of reference numerals in the attached figures:

[0035] 100. Quick-release structure for memory modules; 1. Slide rail; 1a. Insertion / removal channel; 1b. Insertion / removal port; 1c. Insertion interface; 1d. Slide groove; 11. Second limiting component; 12. First wing; 13. Second wing; 1e. Positioning groove; 2. Graphics card motherboard; 21. Memory socket; 3. Insertion / removal box; 3a. Accommodation space; 3b. Accommodation channel; 3c. Connecting port; 31. Bottom cover; 311. Base plate; 312. First side plate; 31 21. First mating part; 3122. Third mating part; 32. Top cover; 321. Top plate; 322. Second side plate; 3221. Second mating part; 3222. Fourth mating part; 32a. Slide rail; 33. First limiting member; 34. Third limiting member; 4. Back plate; 5. Heat sink; 51. Mounting port; 52. Mounting position; 200. Memory module; 201. Insertion part; 300. Thermal adhesive; S1. First direction. Detailed Implementation

[0036] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, the specific embodiments of this application are described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0037] In the description of this application, it should be understood that if terms such as "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" appear, these terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this application.

[0038] Furthermore, where the terms "first" and "second" appear, these terms are 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 with "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, where the term "multiple" appears, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0039] 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 fixed 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, unless otherwise expressly limited. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0040] In this application, unless otherwise expressly specified and limited, the use of descriptions such as "above" or "below" the second feature indicates that the first and second features are in direct contact or indirect contact via an intermediate medium. Furthermore, "above," "on top of," and "over" the second feature can mean that the first feature is directly above or diagonally above the second feature, or simply that the first feature is at a higher horizontal level than the second feature. Similarly, "below," "below," and "under" the second feature can mean that the first feature is directly below or diagonally below the second feature, or simply that the first feature is at a lower horizontal level than the second feature.

[0041] It should be noted that if an element is referred to as being "fixed to" or "set on" another element, it can be directly on the other element or there may be an intervening element. If an element is considered to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. If so, the terms "vertical," "horizontal," "upper," "lower," "left," "right," and similar expressions used in this application are for illustrative purposes only and do not represent the only possible implementation.

[0042] See Figures 1 to 6 This application provides an embodiment of a quick-release memory module structure 100, including a slide rail 1, a graphics card motherboard 2, and a plug-in box 3. Wherein:

[0043] The slide rail 1 has a plug-in channel 1a, a plug-in port 1b, and a plug-in interface 1c. The plug-in port 1b and the plug-in interface 1c are arranged opposite to each other in the first direction S1 and are both connected to the plug-in channel 1a. The plug-in box 3 is slidably connected to the slide rail 1. The plug-in box 3 can be pushed into or pulled out of the plug-in channel 1a along the first direction S1 through the plug-in port 1b. The plug-in box 3 has a receiving space 3a, which includes a receiving channel 3b and a connecting port 3c connected to the receiving channel 3b. The connecting port 3c is arranged opposite to the plug-in interface 1c. The receiving channel 3b is used to install the memory module 200. The connecting port 3c is used to allow the plug-in portion 201 of the memory module 200 installed in the receiving channel 3b to pass through the receiving channel 3b. The graphics card motherboard 2 is located on one side of the slide rail 1. A memory socket 21 is provided on the side of the graphics card motherboard 2 closest to the slide rail 1. The memory socket has a socket for inserting the memory stick 200 into the connector 201. The connector is positioned opposite to the communication port 3c.

[0044] In the aforementioned quick-release memory module structure 100, since the graphics card motherboard 2 is located on one side of the slide rail 1, the plug-in port 1b and the plug-in interface 1c are both connected to the plug-in channel 1a and are positioned opposite each other in the first direction S1. The plug-in box 3 can be pushed into or pulled out of the plug-in channel 1a through the plug-in port 1b along the first direction S1. The memory socket 21 is located on the side of the graphics card motherboard 2 near the slide rail 1, and the plug-in interface of the memory socket 21 is positioned opposite to the connecting port 3c. Therefore, the slide rail 1 is located on the side of the graphics card motherboard 2. When the plug-in box 3 is pushed into or pulled out of the plug-in channel 1a through the plug-in port 1b along the first direction S1, the plug-in box 3 can be inserted into or removed from the plug-in channel 1a by pushing, pulling and sliding relative to the side of the graphics card motherboard 2. The memory module 200 is connected to the motherboard 21 by means of a mounting channel 3b for the memory module 200 and a connecting port 3c for the insertion part 201 of the memory module 200 to pass through the mounting channel 3b. The connecting port 3c is positioned opposite the socket of the memory outlet 21. Therefore, when the memory module 200 is mounted in the memory module 200 and pushed into the memory module 200 through the mounting port 1b towards the motherboard 2, the insertion part 201, which passes through the mounting channel 3b via the connecting port 3c, can pass through the mounting port 1c and insert into the socket of the memory outlet 21, thus achieving blind insertion of the memory module 200 and the motherboard 21. When it is necessary to disconnect the memory module 200 from the memory outlet 21, the memory module 200 can be quickly separated from the motherboard 2 by simply pulling the memory module 200 away from the motherboard 2 relative to the slide rail 32a. Therefore, the quick-release structure 100 for the memory module can quickly assemble and disassemble the memory module 200 and the memory socket 21 by sliding and pushing the plug-in box 3 relative to the side of the graphics card motherboard 2, thus solving the problem of difficulty in assembling and disassembling the memory module 200 and the memory socket 21.

[0045] Furthermore, compared to the design where the memory socket 21 is located in the middle of the graphics card motherboard 2, this side-push-pull mounting design for the memory module 200 not only avoids installation difficulties caused by space constraints, but also eliminates the need for hollowing out the graphics card motherboard 2 during manufacturing. This not only improves the production efficiency and reduces the production cost of the graphics card motherboard 2, but also avoids affecting the wiring of the graphics card motherboard 2. Moreover, compared to the design where the memory socket 21 is located on the back of the graphics card motherboard 2, this side-push-pull mounting design for the memory module 200 not only avoids installation difficulties caused by space constraints, but also eliminates the need for a notch on the back of the graphics card motherboard 2, ensuring a clean and aesthetically pleasing back panel appearance.

[0046] Indicatively, the graphics card motherboard 2 extends along the first direction S1.

[0047] In one embodiment, combined Figure 5 , Figure 6 and Figure 7As shown, the plug-in box 3 includes a top cover 32 and a bottom cover 31, which are movably connected. The top cover 32 has a closed state and an open state. In the closed state, the top cover 32 can close onto the bottom cover 31 to jointly enclose and form an accommodating space 3a; in the open state, the top cover 32 opens the accommodating space 3a. In this way, the accommodating space 3a can be conveniently opened by moving the top cover 32 relative to the bottom cover 31, so as to quickly insert the memory module 200 into the accommodating channel 3b or remove the memory module 200 from the accommodating channel 3b, thereby ensuring the efficiency of the installation and removal of the memory module 200 from the memory socket 21.

[0048] As an illustration, the connection between the top cover 32 and the bottom cover 31 can be designed according to actual needs. For example, the connection between the top cover 32 and the bottom cover 31 can be a rotating connection, a sliding connection, or a detachable connection.

[0049] Furthermore, in one embodiment, combined with Figure 5 , Figure 6 and Figure 7 The bottom cover 31 includes a bottom plate 311 and two first side plates 312, both of which extend along the first direction S1. The two first side plates 312 are disposed opposite to each other on both sides of the bottom plate 311. The top cover 32 includes a top plate 321 and two second side plates 322, which are disposed opposite to each other on both sides of the top plate 321. The two first side plates 312 are rotatably connected to the two second side plates 322 in a one-to-one correspondence. In the closed state, the bottom cover 31 is located between the two second side plates 322, and the first side plates 312 and the second side plates 322 are disposed opposite to each other in a one-to-one correspondence. The bottom plate 311, the top plate 321, the two first side plates 312, and the two second side plates 322 together enclose and form an accommodating space 3a. Thus, since the two first side plates 312 are rotatably connected to the two second side plates 322 in a one-to-one correspondence, the top cover 32 can open or close the accommodating space 3a by rotating relative to the bottom cover 31, which ensures the ease of installation between the top cover 32 and the bottom cover 31. In the closed state, the bottom cover 31 is located between the two second side plates 322, and the first side plates 312 and the second side plates 322 are arranged opposite each other in a one-to-one correspondence. Therefore, the top cover 32 is located outside the space enclosed by the bottom cover 31 in both the open and closed states. This allows the memory module 200 to be reliably placed within the space enclosed by the bottom plate 311 and the two first side plates 312, ensuring that the installation and removal of the memory module 200 from the insertion / removal box 3 is not affected by the movement of the top cover 32, thereby guaranteeing that the memory module 200 can be easily installed, removed, and inserted into the insertion / removal box 3.

[0050] Indicatively, in the closed state, the connecting port 3c is formed between the two first side plates 312.

[0051] Indicatively, in the closed state, the first mating part 3121 on the first side plate 312 and the second mating part 3221 on the second side plate 322 are rotatably connected.

[0052] Furthermore, in one embodiment, combined with Figure 6 and Figure 7 As shown, each of the two first side plates 312 has a first mating part 3121 at one end, and each of the two second side plates 322 has a second mating part 3221 at one end that rotatably engages with the first mating part 3121. One of the first mating parts 3121 and the second mating part 3221 includes a pivot, and the other includes a pivot opening. The pivot is rotatably disposed at the corresponding pivot opening. The top cover 32 can rotate relative to the bottom cover 31 via the pivot to open or close the accommodating space 3a. This effectively ensures that the second side plate 322 can rotate relative to the first side plate 312, thereby ensuring that the top cover 32 can open or close the accommodating space 3a by rotating relative to the bottom cover 31, and thus ensuring that the memory module 200 can be easily installed and removed from the insertion / removal box 3.

[0053] Preferably, the first mating part 3121 includes a rotating shaft, and the second mating part 3221 includes a rotating shaft opening.

[0054] Schematic illustration: the pivot member can be a columnar rod. Further, the cross-sectional shape of the rod can be circular, rectangular, etc. The pivot opening can be a notch or hole formed at the end of the first side plate 312 or the end of the second side plate 322. Further, when the pivot opening is a notch, the notch can penetrate through the first side plate 312 or the second side plate 322; when the pivot opening is a hole, the hole can be a blind hole or a through hole.

[0055] Furthermore, in one embodiment, combined with Figure 2 , Figure 4 and Figure 7 As shown, the slide rail 1 also has a slide groove 1d extending along the first direction S1, which communicates with the accommodating space 3a. The second side plate 322 has a slide rail 32a protruding from it. In the closed state, the slide rail 32a slides in conjunction with the slide groove 1d. This ensures that when the top cover 32 is closed on the bottom cover 31, the plug-in box 3 can be reliably slidably connected to the slide rail 1, allowing the plug-in box 3 to be easily pushed into or pulled out of the plug-in channel 1a along the first direction S1. At the same time, the slide groove 1d also has a guiding function to ensure that when the plug-in box 3 is installed in place, the memory module 200 inside the plug-in box 3 can be accurately plugged into the memory socket 21. In addition, since the slide rail 32a is provided on the top cover 32, the side wall of the slide groove 1d can limit the movement of the top cover 32 relative to the bottom cover 31 during the sliding of the plug-in box 3 relative to the slide rail 1, thereby ensuring the reliability of the structure.

[0056] Schematic illustration: a slide rail 32a protrudes from the side of the second side plate 322 opposite to the first side plate 312. Further, each second side plate 322 has at least one slide rail 32a on the side opposite to the other second side plate 322, and the number of slide grooves 1d can be multiple, with each slide rail 32a corresponding to a slide groove 1d. Thus, the slide grooves 1d on both sides of the slide rail frame 1 can, by engaging with the slide rail 32a, confine the plug-in box 3 between the slide grooves 1d on both sides, ensuring that when the plug-in box 3 is installed in place, the memory module 200 inside the plug-in box 3 can be accurately inserted into the memory socket 21. Further, each second side plate 322 has one slide rail 32a on the side opposite to the other second side plate 322.

[0057] In another embodiment, unlike the above embodiment, the slide rail 32a may also be disposed on the bottom cover 31, for example, on the base plate 311.

[0058] Furthermore, in one embodiment, combined with Figure 5 , Figure 6 and Figure 7 As shown, each first side plate 312 is provided with a third mating part 3122, and each second side plate 322 is provided with a fourth mating part 3222. One of the third mating parts 3122 and the fourth mating part 3222 includes a limiting protrusion, and the other includes a limiting notch. In the closed state, the limiting protrusion engages with the limiting notch to restrict the rotation of the top cover 32 relative to the bottom cover 31. This engagement between the limiting protrusion and the limiting notch allows the limiting protrusion to lock the top cover 32 in place when the top cover 32 rotates relative to the bottom cover 31 to close the accommodating space 3a, preventing the top cover 32 from opening without external force and thus ensuring the reliability of the insertion box 3.

[0059] Schematic illustration: a limiting protrusion is provided on the first side plate 312, and a limiting notch is formed on the second side plate 322. The limiting notch can be a through hole, a blind groove, or an opening.

[0060] Indicatively, each first side plate 312 has a third mating part 3122 on the side facing away from the other first side plate 312, and each second side plate 322 has a fourth mating part 3222 on the side facing the other second side plate 322.

[0061] Indicative, such as Figure 6 and Figure 7As shown, the first mating part 3121 and the third mating part 3122 provided on the first side plate 312 are spaced apart, and the second mating part 3221 and the fourth mating part 3222 provided on the second side plate 322 are spaced apart. For example, the first mating part 3121 is located at one end of the first side plate 312 near the graphics card motherboard 2, the third mating part 3122 is located at the other end of the first side plate 312, the second mating part 3221 is located at one end of the second side plate 322 near the graphics card motherboard 2, and the fourth mating part 3222 is located at the other end of the second side plate 322. In this way, when the plug-in box 3 is pulled out from the plug-in channel 1a, the user can easily open the top cover 32 to quickly install or remove the memory module 200. Alternatively, the first mating part 3121 is located at one end of the first side plate 312 near the graphics card motherboard 2, the third mating part 3122 is located in the middle of the first side plate 312, the second mating part 3221 is located at one end of the second side plate 322 near the graphics card motherboard 2, and the fourth mating part 3222 is located in the middle of the second side plate 322.

[0062] In one embodiment, such as Figure 5 ,and Figure 7 As shown, the bottom cover 31 has a protruding first limiting member 33, which abuts against the memory module 200 installed in the receiving channel 3b to restrict the memory module 200 within the receiving channel 3b. Thus, when the memory module 200 is installed in the receiving channel 3b, the first limiting member 33 can abut against the memory module 200 to restrict it within the receiving channel 3b, thereby preventing the memory module 200 from coming out of the communication port 3c during installation, or from coming out of the communication port 3c after installation due to movement relative to the insertion / removal box 3. Therefore, this effectively ensures the reliability of the structure and the convenience of installing the memory module 200. In addition, since the first limiting member 33 can abut against the memory module 200, the abutment between the memory module 200 and the first limiting member 33 can be used to confirm whether the memory module 200 is installed in place, thereby ensuring that the insertion part 201 of the memory module 200 can pass through the accommodating space 3a, and thus ensuring that the memory module 200 can be effectively inserted into the memory socket 21.

[0063] Indicatively, the first limiting member 33 protrudes from the bottom cover 31 near the end of the graphics card motherboard 2. When the memory module 200 is installed in the receiving channel 3b, the first limiting member 33 can abut against the memory module 200 at the edge of the connecting port 3c.

[0064] Indicatively, the first limiting member 33 may be disposed on the first side plate 312 or the bottom plate 311.

[0065] In one embodiment, combined Figure 2 , Figure 3 and Figure 4As shown, the slide rail 1 is equipped with a second limiting member 11, which engages with the insertion / removal box 3 to restrict the insertion / removal box 3 from sliding relative to the slide rail 1 towards the graphics card motherboard 2. Thus, when the insertion / removal box 3 is inserted into the insertion / removal channel 1a, the second limiting member 11 engages with the insertion / removal box 3, confining it within the channel 1a. This prevents the insertion / removal box 3 from excessively moving and colliding with the memory socket 21 or the graphics card motherboard 2 when pushed in, ensuring structural reliability. Simultaneously, because the second limiting member 11 engages with the insertion / removal box 3, the engagement between the insertion / removal box 3 and the second limiting member 11 can be used to confirm whether the insertion / removal box 3 has slid to the installation position when inserting the memory module 200, thereby confirming whether the memory module 200 is properly inserted into the memory socket 21, ensuring the reliability of the connection between the memory module 200 and the memory socket 21.

[0066] Indicatively, the second limiting member 11 is located at one end of the slide rail 1 near the graphics card motherboard 2. Thus, when the plug-in box 3 is inserted into the plug-in channel 1a, the second limiting member 11 can abut against the plug-in box 3 at the edge of the plug-in interface 1c, thereby confining the plug-in box 3 within the plug-in channel 1a.

[0067] Indicatively, the second limiting member 11 can be used to abut against or engage with the bottom cover 31, for example, the second limiting part can abut against or engage with the second side plate 322 in the bottom cover 31.

[0068] In one embodiment, combined Figure 4 , Figure 5 , Figure 6 and Figure 7 As shown, there are multiple accommodating channels 3b, multiple connecting ports 3c, and multiple memory sockets 21. The multiple accommodating channels 3b are arranged in a direction perpendicular to the first direction S1. The accommodating channels 3b, connecting ports 3c, and memory sockets 21 are arranged in a one-to-one correspondence. A third limiting member 34 protrudes from the accommodating space 3a, and the third limiting member 34 is used to separate two adjacent accommodating channels 3b. Thus, the third limiting member 34 located within the accommodating space 3a can divide the accommodating space 3a into multiple accommodating channels 3b, allowing multiple memory modules 200 to be installed simultaneously in one insertion / removal box 3. This enables multiple memory modules 200 to be easily installed and removed from the memory sockets 21 during a single installation / removal process, thereby improving the installation efficiency of the memory modules 200.

[0069] Indicative, combined Figure 7As shown, there can be multiple third limiting members 34, which are arranged at intervals along the first direction S1 to form a partition row. At least one partition row can be provided between two adjacent receiving channels 3b. In this way, the partition row can effectively limit the extension of the memory module 200 along the first direction S1, thereby ensuring that the memory module 200 will not be offset when installed in the receiving channel 3b, so as to ensure that the memory module 200 can be reliably inserted into the memory socket 21.

[0070] Indicatively, multiple receiving channels 3b are arranged in opposite directions along the two first side plates 312.

[0071] In one embodiment, combined Figure 1 , Figure 4 and Figure 8 As shown, the slide rail 1 has a first wing 12 and a second wing 13 protruding at one end near the graphics card motherboard 2. Both the first wing 12 and the second wing 13 extend towards the side near the graphics card motherboard 2, forming a positioning groove 1e between them. Part of the graphics card motherboard 2 is inserted into the positioning groove 1e. This facilitates the connection between the positioning groove 1e and the graphics card motherboard 2, positioning the slide rail 1 and the graphics card motherboard 2, thereby ensuring the stability of the position between the slide rail 1 and the graphics card motherboard 2. This, in turn, ensures that when the expansion box 3 is pushed into the slide rail 1, the memory module 200 installed in the expansion box 3 can be inserted into the memory socket 21.

[0072] In one embodiment, combined Figure 1 , Figure 2 and Figure 3 As shown, the quick-release memory module structure 100 also includes a backplate 4 and a heatsink 5, spaced apart. The graphics card motherboard 2 is positioned between the backplate 4 and the heatsink 5. A mounting position 52 is formed on the side of the heatsink 5 facing the backplate 4. A slide rail 1 is mounted on the mounting position 52. The heatsink 5 also has a mounting opening 51 communicating with the mounting position 52. The mounting opening 51 is opposite to the insertion / removal port 1b, and is used for pushing or pulling the insertion / removal box 3 into or out of the insertion / removal channel 1a. Thus, since the slide rail 1 is positioned at the mounting position 52 of the heatsink 5, and the mounting opening 51 is opposite to the insertion / removal port 1b, the insertion / removal box 3 can be easily pushed into or pulled out of the slide rail 1 through the mounting opening 51. Because the backplate 4 is mounted on the side of the graphics card motherboard 2 away from the heatsink 5, the quick-release memory module structure 100 maintains structural reliability and miniaturization. In addition, the heatsink 5 can effectively dissipate heat from the graphics card motherboard 2 and the memory module 200 to prevent them from being damaged by the high temperature generated during operation.

[0073] See Figures 1 to 6This application also provides a host computer, including a memory module quick-release structure 100 and a memory module 200 as described in any of the above embodiments. The memory module 200 is installed in the accommodating space 3a, and the plug-in portion 201 of the memory module 200 passes through the communication port 3c and the plug-in interface 1c and is plugged into the memory socket 21.

[0074] In the aforementioned host, since the graphics card motherboard 2 is located on one side of the slide rail 1, the plug-in port 1b and the plug-in interface 1c are both connected to the plug-in channel 1a and are positioned opposite each other in the first direction S1. The plug-in box 3 can be pushed into or pulled out of the plug-in channel 1a through the plug-in port 1b along the first direction S1. The memory socket 21 is located on the side of the graphics card motherboard 2 near the slide rail 1, and the plug-in interface of the memory socket 21 is positioned opposite to the connecting port 3c. Therefore, the slide rail 1 is located on the side of the graphics card motherboard 2. When the plug-in box 3 is pushed into or pulled out of the plug-in channel 1a through the plug-in port 1b along the first direction S1, the plug-in box 3 can be inserted into or removed from the plug-in channel 1a by pushing, pulling and sliding relative to the side of the graphics card motherboard 2. The memory module 200 is connected to the motherboard 21 by means of a mounting channel 3b for the memory module 200 and a connecting port 3c for the insertion part 201 of the memory module 200 to pass through the mounting channel 3b. The connecting port 3c is positioned opposite the socket of the memory outlet 21. Therefore, when the memory module 200 is mounted in the memory module 200 and pushed into the memory module 200 through the mounting port 1b towards the motherboard 2, the insertion part 201, which passes through the mounting channel 3b via the connecting port 3c, can pass through the mounting port 1c and insert into the socket of the memory outlet 21, thus achieving blind insertion of the memory module 200 and the motherboard 21. When it is necessary to disconnect the memory module 200 from the memory outlet 21, the memory module 200 can be quickly separated from the motherboard 2 by simply pulling the memory module 200 away from the motherboard 2 relative to the slide rail 32a. Therefore, the host can quickly install and remove the memory module 200 from the memory socket 21 by sliding the push-pull plug-in box 3 relative to the side of the graphics card motherboard 2, thus solving the problem of difficult installation and removal of the memory module 200 from the memory socket 21.

[0075] In one embodiment, combined Figure 7 As shown, thermally conductive adhesive 300 is provided on both opposite sides of the memory module 200. In this way, the heat generated by the memory module 200 during operation can be quickly conducted to the insertion box 3 through the thermally conductive adhesive 300 to achieve rapid heat dissipation.

[0076] Furthermore, combined Figure 6 and Figure 7As shown, when the insertion / removal box 3 opens or closes the accommodating space 3a by rotating and engaging the bottom cover 31 and the top cover 32, the memory module 200 with thermally conductive adhesive 300 can be easily installed and removed from the quick-release box. This also avoids the problem of the thermally conductive adhesive 300 falling off when the memory module 200 is installed or removed by sliding, thus effectively ensuring that the memory module 200 can dissipate heat from both sides.

[0077] Indicative, combined Figure 7 As shown, two thermally conductive adhesives 300 are respectively disposed in the two sides of the memory module 200 opposite to the bottom plate 311 and the top plate 321.

[0078] In one embodiment, the memory module 200 is an M.2 memory module 200. The M.2 memory module 200 has the advantages of high-speed transmission and strong compatibility, which makes it possible to effectively improve the performance of the graphics card when the M.2 memory module 200 is installed in the graphics card.

[0079] The technical features of the above embodiments can be combined in any way. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0080] The embodiments described above are merely illustrative of several implementation methods of this application, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the patent application. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.

Claims

1. A quick-release structure for a memory module, characterized in that, include: A slide rail frame having a plug-in channel, a plug-in port, and a plug-in interface; the plug-in port and the plug-in interface are arranged opposite to each other in a first direction and are both connected to the plug-in channel. A plug-in / plug-out box is slidably connected to the slide rail. The plug-in / plug-out box can be pushed into or pulled out of the plug-in / plug-out channel along the first direction through the plug-in / plug-out port. The plug-in / plug-out box forms a receiving space, which includes a receiving channel and a connecting port communicating with the receiving channel. The connecting port is disposed opposite to the plug-in interface. The receiving channel is used to install a memory module, and the connecting port is used for the plug-in portion of the memory module installed in the receiving channel to pass through the receiving channel. A graphics card motherboard is located on one side of the slide rail bracket. A memory socket is provided on the side of the graphics card motherboard near the slide rail bracket. The memory socket has a slot for inserting the memory module. The slot is positioned opposite to the communication port.

2. The quick-release structure for memory modules according to claim 1, characterized in that, The plug-in box includes a top cover and a bottom cover, which are movably connected. The top cover has a closed state and an open state. In the closed state, the top cover can close to the bottom cover to jointly enclose and form the accommodating space. In the open state, the top cover opens the accommodating space.

3. The quick-release structure for memory modules according to claim 2, characterized in that, The bottom cover includes a bottom plate and two first side plates, both extending along the first direction. The two first side plates are disposed opposite to each other on both sides of the bottom plate. The top cover includes a top plate and two second side plates, disposed opposite to each other on opposite sides of the top plate. The two first side plates are rotatably connected to the two second side plates in a one-to-one correspondence. In the closed state, the bottom cover is located between the two second side plates, and the first side plates and the second side plates are disposed opposite to each other in a one-to-one correspondence. The bottom plate, the top plate, the two first side plates, and the two second side plates together enclose the accommodating space.

4. The quick-release structure for memory modules according to claim 3, characterized in that, Each of the two first side plates has a first mating part at one end, and each of the two second side plates has a second mating part at one end that rotatably engages with the first mating part. One of the first mating part and the second mating part includes a rotating shaft and the other includes a rotating shaft opening. The rotating shaft is rotatably disposed at the corresponding rotating shaft opening. The top cover can rotate relative to the bottom cover through the rotating shaft to open or close the accommodating space. And / or, each of the first side panels is provided with a third mating part, and each of the second side panels is provided with a fourth mating part; wherein, one of the third mating part and the fourth mating part includes a limiting protrusion, and the other includes a limiting notch, and in the closed state, the limiting protrusion is engaged with the limiting notch to restrict the top cover from rotating relative to the bottom cover.

5. The quick-release structure for a memory module according to claim 4, characterized in that, The slide rail frame is also provided with a slide groove extending along the first direction. The slide groove is connected to the accommodating space. The second side plate is provided with a slide rail. In the closed state, the slide rail and the slide groove are slidably engaged.

6. The quick-release structure for a memory module according to claim 2, characterized in that, The bottom cover is provided with a first limiting member, which is used to abut against the memory module installed in the accommodating channel to restrict the memory module within the accommodating channel; And / or, the slide rail is provided with a second limiting member, which is used to abut against the plug-in box to restrict the plug-in box from sliding relative to the slide rail towards the side closer to the graphics card motherboard.

7. The quick-release structure for a memory module according to claim 1, characterized in that, The number of accommodating channels, the number of connecting ports, and the number of memory sockets are all multiple. The multiple accommodating channels are arranged in a direction perpendicular to the first direction. The accommodating channels, the connecting ports, and the memory sockets are arranged in a one-to-one correspondence. A third limiting member is protruding in the accommodating space. The third limiting member is used to separate two adjacent accommodating channels. And / or, the slide rail bracket has a first wing and a second wing that are spaced apart at one end near the graphics card motherboard. The first wing and the second wing both extend toward the side near the graphics card motherboard. A positioning groove is formed between the first wing and the second wing, and part of the graphics card motherboard is inserted into the positioning groove.

8. The quick-release structure for a memory module according to claim 1, characterized in that, The quick-release structure for the memory module also includes a backplate and a heatsink, with the backplate and heatsink spaced apart. The graphics card motherboard is positioned between the backplate and the heatsink. The heatsink has a mounting position on the side facing the backplate, and the slide rail is mounted on the mounting position. The heatsink also has a mounting port communicating with the mounting position. The mounting port is positioned opposite to the plug-in port, and the mounting port is used for the plug-in box to be pushed into or pulled out of the plug-in channel.

9. A host computer, characterized in that, The invention includes a quick-release memory module structure and a memory module as described in any one of claims 1 to 8, wherein the memory module is installed in the accommodating space, and the insertion portion of the memory module passes through the communication port and the insertion interface and is inserted into the memory socket.

10. The host computer according to claim 9, characterized in that, Thermal adhesive is provided on both sides of the memory module; And / or, the memory module is an M.2 memory module.