Computer memory installation structure
By using the design of U-shaped plates and insert pieces, combined with bending adapter cavities and locking parts, the problems of inconvenient and unstable installation of memory in existing technologies are solved, achieving a stable connection and ease of use for the memory, and improving the safety and stability of installation.
Patent Information
- Application Number
- CN202520318853.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-25
- Publication Date
- 2026-02-06
- Estimated Expiration
- 2035-02-25
AI Technical Summary
The installation process of existing computer memory is inconvenient and risky, especially when installed in a confined space, where the sharp edges of the chassis make installation difficult and unstable.
The U-shaped plate design includes a side mounting plate, a bottom mounting section, and a cooling fan mounting section. Through the setting of bent insertion plates and contact mechanisms, combined with auxiliary and positioning mechanisms, the memory can be stably installed. The flexible connection of the bent adapter cavity and locking part ensures the stable fixation of the memory to the chassis.
It improves the stability and ease of operation of the memory installation, reduces the risk of vibration, and enhances the safety and ease of use of the installation.
Smart Images

Figure CN223883967U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to computer technical field, especially a computer memory mounting structure. BACKGROUND
[0002] Computer memory is an important component of computer systems that stores data and programs. According to the function and speed, it can be divided into many types, and each type plays a specific role in the computer architecture.
[0003] The installation mechanism of computer memory mainly refers to the physical installation method of memory modules in computer systems and the connection method between memory and motherboard or other hardware. The design of memory installation mechanism must consider compatibility, ease of use, stability and heat dissipation.
[0004] When the existing memory is installed, the mounting frame needs to be fixedly connected to the computer case first, and then the memory is fixedly connected to the mounting frame through bolts. Most of the single-side openings of the case are small in internal space during installation, and the case is made of bent plate with sharp edges, which is inconvenient to operate and has high risk. INVENTION CONTENTS
[0005] The utility model discloses a computer memory mounting structure, which solves the problems in the background art.
[0006] To achieve the above-mentioned purpose, the utility model provides the following technical scheme: a computer memory mounting structure, comprising:
[0007] The U-shaped plate is integrally formed by two side mounting plates and a bottom mounting part. The bottom of the bottom mounting part is provided with four mounting reserved holes for fixing the whole in the case. One side of the side mounting plate is provided with a heat dissipation fan mounting part. The heat dissipation fan mounting part is detachably provided with a heat dissipation part. The heat dissipation part is provided with an insertion piece. The insertion piece is bent after being inserted into the insertion slot.
[0008] The number of memories is one to multiple. Each memory is provided with an auxiliary mechanism on both sides. The auxiliary mechanism is integrally formed.
[0009] The positioning mechanism is arranged on the supporting table of the inner side wall of the side mounting plate. The positioning mechanism is attached to the auxiliary mechanism. The positioning mechanism is used to lock the auxiliary mechanism.
[0010] Further, the heat dissipation fan mounting part includes two insertion slots. The side mounting plate is provided with a contact mechanism at the position of the heat dissipation fan mounting part.
[0011] In the installation of the heat dissipation part of the memory front end, the insertion piece on the heat dissipation part is directly inserted into the insertion slot, preferably an arc-shaped slot. When the insertion piece is inserted, the insertion piece moves outward along the profile of the insertion slot, and the insertion piece is bent during the insertion process, which facilitates the fixation of the heat dissipation part during operation. In addition, the setting of the contact mechanism makes the elastic state between the upper and lower insertion pieces, reserves a gap, and can effectively support the vibration generated during the operation of the heat dissipation part, thereby improving the stability of the installation.
[0012] Further, the contact mechanism includes four melon-shaped protrusions, each of which is fixedly connected with a silica gel layer.
[0013] Further, the auxiliary mechanism includes a bending adaptation cavity, the inner wall of which is provided with a positioning plate, the bending adaptation cavity is of an open type, and the bending adaptation cavity and the positioning plate are integrally formed. One side of the positioning plate is fixedly connected with a fitting plate, and the fitting plate is fitted with the positioning mechanism.
[0014] By setting the auxiliary mechanism, the U-shaped plate material forms an opening in the length direction of the case, and the length direction of the memory is consistent with the length direction of the case. When installing the memory, first insert the open-type bending adaptation cavity into the guide insertion piece and push it to the position of the heat dissipation part. When the positioning plate and the bending adaptation cavity are fitted with the bending plate, the memory is in a pre-installed state. The bending part is exposed, and after the bending locking part one and the locking part two are bent and locked, the bending part deforms. When the locking part one and the locking part two are fixedly connected to the outside of the fitting plate, the memory can be fixed. At this time, the memory is lapped on the support table.
[0015] Further, the positioning mechanism includes a bending plate, one side of which is fixedly connected with two iron connectors, a reserved docking port is reserved between the two iron connectors, and a stabilizing mechanism is fixedly connected to the ends of the two iron connectors. One end of the stabilizing mechanism is fixedly connected with a guide insertion piece.
[0016] Further, one side of the guide insertion piece is provided with a bending part, which is divided into a locking part one and a locking part two by a transverse slot. After the bending part is separated, the locking part one and the locking part two are in a flexible and bendable state, which facilitates manual bending.
[0017] Further, the slot divides the bending part into two parts.
[0018] Further, the connecting iron is arranged in a bending mode, and the positioning plate is attached to the outer side of the bending plate after penetrating the reserved butt joint, the inner wall of the bending accommodation cavity is attached to the inner side of the bending plate, the outer side of the guide insertion piece is flush with the outer side of the attaching plate, and the heat dissipation fan mounting part is exposed between the attaching plate and the storage.
[0019] The technical effects and advantages of the present application are as follows:
[0020] 1. When installing the heat dissipation part at the front end of the storage, the insertion piece on the heat dissipation part is directly inserted into the insertion slot, and the preferred insertion slot is an arc-shaped slot. When the insertion piece is inserted, the insertion piece moves outward along the profile of the insertion slot, and the insertion piece is bent during the insertion process. This facilitates the fixation of the heat dissipation part during operation. In addition, the setting of the contact mechanism makes the two insertion pieces in an elastic state, leaving a gap and effectively supporting the heat dissipation part. The vibration generated during the operation of the heat dissipation part can be weakened, improving the stability of the installation.
[0021] 2. By setting the auxiliary mechanism, the U-shaped plate forms an opening in the length direction of the case, and the length direction of the storage is consistent with the length direction of the case. When installing the storage, the opening-type bending accommodation cavity is first inserted into the guide insertion piece and pushed to the position of the heat dissipation part. When the positioning plate and the bending accommodation cavity are attached to the bending plate, the storage is in a pre-installed state. The bending part is exposed, and the bending locking part one and the locking part two are bent and locked. The bending part deforms, and the locking part one and the locking part two are fixedly connected to the outer side of the attaching plate. At this time, the storage can be fixed, and the storage is clamped on the support table. BRIEF DESCRIPTION OF DRAWINGS
[0022] Figure 1 It is a computer cross-sectional view of the present application;
[0023] Figure 2 It is a schematic view of the U-shaped plate in the present application;
[0024] Figure 3 It is a local schematic view of the U-shaped plate in the present application;
[0025] Figure 4 It is a side view of the U-shaped plate in the present application;
[0026] Figure 5 It is a schematic view of the positioning mechanism in the present application;
[0027] Figure 6 It is a schematic view of the auxiliary mechanism in the present application.
[0028] In the drawings:
[0029] 1, U-shaped plate; 11, side mounting plate; 12, heat dissipation fan mounting part; 13, bottom mounting part; 131, mounting reserved hole; 14, bent plate; 15, joint; 16, reserved butt joint; 17, guide insertion piece; 18, stabilizing mechanism; 19, insertion slot; 110, melon seed protrusion; 111, silica gel layer; 112, bending part; 113, locking part one; 114, locking part two; 2, heat dissipation part; 3, memory; 31, fitting plate; 32, bending adaptation cavity; 33, positioning plate. DETAILED DESCRIPTION
[0030] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.
[0031] Referring to Figures 1 to 6 a computer memory mounting structure shown in the drawings, comprising:
[0032] The U-shaped plate 1 is integrally formed by the two side mounting plates 11 and the bottom mounting part 13. The bottom of the bottom mounting part 13 is provided with four mounting reserved holes 131 for fixing the whole in the case. One side of the side mounting plate 11 is provided with a heat dissipation fan mounting part 12. The heat dissipation fan mounting part 12 is detachably provided with a heat dissipation part 2. The heat dissipation part 2 is provided with an insertion piece. The insertion piece is bent after being inserted into the insertion slot 19.
[0033] The memory 3 is one to multiple in number. Each memory 3 is provided with an auxiliary mechanism on both sides. The auxiliary mechanism is integrally formed.
[0034] The positioning mechanism is arranged on the supporting table arranged on the inner wall of the side mounting plate 11. The positioning mechanism is in contact with the auxiliary mechanism. The positioning mechanism is used to lock the auxiliary mechanism.
[0035] The heat dissipation fan mounting part 12 includes two insertion slots 19. The side mounting plate 11 is provided with a contact mechanism at the position of the heat dissipation fan mounting part 12.
[0036] When installing the heat dissipation part 2 of the memory front end, the insertion piece on the heat dissipation part 2 is directly inserted into the insertion slot 19, preferably an arc-shaped slot, when the insertion piece is inserted, the insertion piece moves outward along the profile of the insertion slot 19, and the insertion piece is bent during the insertion process, which facilitates the fixation of the heat dissipation part 2 during operation. In addition, the setting of the contact mechanism makes the elastic state between the upper and lower insertion pieces, reserves a gap, and can effectively support the vibration generated during the operation of the heat dissipation part 2, thereby improving the stability of the installation.
[0037] The contact mechanism includes four melon-shaped protrusions 110, and each melon-shaped protrusion 110 is fixedly connected with a silica gel layer 111.
[0038] The auxiliary mechanism includes a bent fitting cavity 32, and the inner wall of the bent fitting cavity 32 is provided with a positioning plate 33. The bent fitting cavity 32 is of an open type, and the bent fitting cavity 32 and the positioning plate 33 are integrally formed. One side of the positioning plate 33 is fixedly connected with a fitting plate 31, and the fitting plate 31 is fitted with the positioning mechanism.
[0039] By setting the auxiliary mechanism, since the U-shaped plate 1 forms an opening in the length direction of the case, the length direction of the memory 3 is consistent with the length direction of the case. Therefore, when installing the memory 3, the open-type bent fitting cavity 32 is first inserted into the guide insertion piece 17 and pushed to the position of the heat dissipation part 2. When the positioning plate 33 and the bent fitting cavity 32 are fitted with the bent plate 14, the memory 3 is in a pre-installed state. The bent portion 112 is exposed, and the bent locking portion one 113 and the locking portion two 114 are bent and locked. The bent portion 112 is deformed, and the locking portion one 113 and the locking portion two 114 are fixedly connected with the outer side of the fitting plate 31. At this time, the memory 3 can be fixed, and the memory 3 is overlapped on the support table.
[0040] The positioning mechanism includes a bent plate 14, and one side of the bent plate 14 is fixedly connected with two iron links 15. The two iron links 15 are provided with a reserved docking port 16 therebetween, and the distal ends of the two iron links 15 are fixedly connected with a stabilizing mechanism 18. One end of the stabilizing mechanism 18 is fixedly connected with a guide insertion piece 17.
[0041] One side of the guide insertion piece 17 is provided with a bent portion 112, and the bent portion 112 is divided into a locking portion one 113 and a locking portion two 114 by a transverse slot. After the bent portion 112 is divided, the locking portion one 113 and the locking portion two 114 are in a flexible and bendable state, which facilitates manual bending.
[0042] The slot divides the bent portion 112 into two parts.
[0043] The iron joint 15 is arranged in a bending mode, the positioning plate 33 is in contact with the outer side of the bending plate 14 after penetrating the reserved butt joint 16, the inner wall of the bending adaptive cavity 32 is in contact with the inner side of the bending plate 14, the outer side of the guide insertion sheet 17 is flush with the outer side of the contact plate 31, and the heat dissipation fan mounting part 12 is exposed between the contact plate 31 and the storage 3.
[0044] Finally, it should be noted that: the above only for the preferred embodiments of the present application, and is not intended to limit the present application, although the foregoing embodiments of the present application have been described in detail, for those skilled in the art, it still can be modified, or part of the technical features of the equivalent replacement, within the spirit and principles of the present application, any modification, equivalent replacement, improvement, etc., should be included within the scope of the present application.
Claims
1. A computer memory mounting structure, characterized by comprising: Include: U-shaped plate (1), the U-shaped plate (1) is integrally formed by two side mounting plates (11) and bottom mounting part (13), the bottom of the bottom mounting part (13) is provided with four mounting reserved holes (131) for fixing the whole in the cabinet, one side of the side mounting plate (11) is provided with a heat dissipation fan mounting part (12), and the heat dissipation fan mounting part (12) is detachably provided with a heat dissipation part (2), the heat dissipation part (2) is provided with an insertion piece, and the insertion piece is bent after being inserted into the insertion slot (19); Memory (3), the number of the memory (3) is one to more, each memory (3) is provided with an auxiliary mechanism on both sides, and the auxiliary mechanism is integrally formed; The positioning mechanism is arranged on the supporting table of the inner side wall of the side mounting plate (11), and the positioning mechanism is attached to the auxiliary mechanism, and the positioning mechanism is used for clamping the auxiliary mechanism.
2. A computer memory mounting structure according to claim 1, wherein The heat dissipation fan mounting part (12) includes two insertion slots (19), and the side mounting plate (11) is provided with a contact mechanism at the position of the heat dissipation fan mounting part (12).
3. A computer memory mounting structure according to claim 2, wherein The contact mechanism includes melon seed protrusions (110), the number of the melon seed protrusions (110) is four, and each melon seed protrusion (110) is fixedly connected with a silica gel layer (111).
4. A computer memory mounting structure according to claim 3, wherein The auxiliary mechanism includes a bent adaptive cavity (32), the inner wall of the bent adaptive cavity (32) is provided with a positioning plate (33), the bent adaptive cavity (32) is of an open type, the bent adaptive cavity (32) and the positioning plate (33) are integrally formed, one side of the positioning plate (33) is fixedly connected with a fitting plate (31), and the fitting plate (31) is attached to the positioning mechanism.
5. A computer memory mounting structure according to claim 4, wherein The positioning mechanism includes a bent plate (14), one side of the bent plate (14) is fixedly connected with two iron bars (15), a reserved docking port (16) is reserved between the two iron bars (15), the distal ends of the two iron bars (15) are fixedly connected with a stabilizing mechanism (18), and one end of the stabilizing mechanism (18) is fixedly connected with a guide insertion piece (17).
6. A computer memory mounting structure according to claim 5, wherein One side of the guide insertion piece (17) is provided with a bent portion (112), the bent portion (112) is divided into a locking portion one (113) and a locking portion two (114) by a transverse slot, so that the locking portion one (113) and the locking portion two (114) are in a flexible and bendable state after being separated, so as to facilitate manual bending.
7. A computer memory mounting structure according to claim 6, wherein The slot divides the bent portion (112) into two parts.
8. A computer memory mounting structure according to claim 7, wherein The iron bar (15) is bent, the positioning plate (33) is attached to the outer side of the bent plate (14) after penetrating through the reserved docking port (16), the inner wall of the bent adaptive cavity (32) is attached to the inner side of the bent plate (14), the outer side of the guide insertion piece (17) is flush with the outer side of the fitting plate (31), and the heat dissipation fan mounting part (12) is exposed between the fitting plate (31) and the memory (3).