Microcomputer with heat dissipation bracket
The design of the quick-installation component enables rapid installation of heat dissipation components for microcomputers, solving the complex installation problems in existing technologies and improving heat dissipation performance and equipment flexibility.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-03-31
AI Technical Summary
Existing microcomputer designs do not take into account the rapid assembly of additional heat dissipation components. When users need to enhance heat dissipation performance, the installation process is complex and time-consuming, making it difficult to meet the requirements for efficient heat dissipation.
A quick-installation component was designed, including a connecting plate, a heat dissipation slot, a card slot, a placement plate, an adapter frame, a spring, a locking block, a cooling fan, and a charging port. The component is fixed by sliding the locking block to align with the card slot, which simplifies the installation process and allows for the rapid exhaust of hot air using the heat dissipation slot.
The heat dissipation components can be quickly installed without tools, significantly improving heat dissipation performance and equipment flexibility, simplifying the installation process, and meeting the needs of efficient heat dissipation.
Smart Images

Figure CN224067192U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of microcomputer technology, and in particular to a microcomputer with a heat dissipation bracket. Background Technology
[0002] A heatsink-mounted microcomputer is a compact computer device that integrates a highly efficient heat dissipation system. It is mainly used in scenarios where high-performance computing is required and space is limited. The device typically consists of a microcomputer host, a heatsink mount, and interface modules. It can maintain a low temperature during high-load operation to ensure stable computing performance.
[0003] Existing microcomputer designs do not consider the rapid assembly of additional heat dissipation components. When users need to enhance heat dissipation performance, the installation process is complex and time-consuming. Due to the lack of standardized interfaces and quick-installation structures, users need to disassemble the original heat dissipation system and use tools to fix it when installing additional heat dissipation components, which is cumbersome and can easily damage the equipment.
[0004] Therefore, given that existing microcomputer designs do not consider the rapid assembly of additional heat dissipation components, and that users face complex and time-consuming installation processes when enhanced heat dissipation performance is required, making it difficult to meet the demand for efficient heat dissipation, there is an urgent need to design a new type of heat dissipation bracket for microcomputers. Utility Model Content
[0005] To overcome the problem that existing microcomputer designs do not consider the rapid assembly of additional heat dissipation components, making the installation process complex and time-consuming when users need to enhance heat dissipation performance, thus failing to meet the requirements for efficient heat dissipation.
[0006] The technical solution of this utility model is as follows: a microcomputer with a heat dissipation bracket, including a host; and a quick-release assembly. The quick-release assembly is provided at the lower end of the host. The quick-release assembly includes a connecting plate, heat dissipation slots, card slots, a placement plate, an adapter frame, a spring, a card block, a cooling fan, a charging port, and a dial plate. The bottom of the host is connected to the connecting plate. The bottom of the connecting plate has multiple heat dissipation slots at equal intervals. The left end of the connecting plate has a card slot. The bottom of the connecting plate is movably connected to the placement plate. The placement plate is concave and matches the connecting plate. The top left side of the placement plate is connected to the adapter frame. A spring is connected inside the adapter frame. The other end of the spring is connected to a card block. The card block is slidably connected to the adapter frame. The card block matches the card slot. The bottom of the placement plate has nine cooling fans at equal intervals. The front end of the placement plate has a charging port. The top left side of the card block is connected to a dial plate. The dial plate is L-shaped.
[0007] Preferably, by setting up a quick-installation component, the main unit is slid into the connecting plate, causing the connecting plate to press against the locking block. The locking block presses against the spring, which slides within the adapter frame until the locking slot aligns with the locking block. At this point, the spring helps the locking block reset and limit its movement. The external power cord is then connected to the charging port, thereby activating the cooling fan and quickly dissipating heat through the heat dissipation slots. This design allows for assembly without tools. This improvement not only enhances heat dissipation performance but also simplifies the installation process, further increasing the flexibility and applicability of the equipment.
[0008] Preferably, support cylinders are connected to the four bottom corners of the placement plate, and four support cylinders are provided.
[0009] Preferably, the support cylinder has an internal threaded connection to a threaded rod, and the bottom of the threaded rod is connected to an anti-slip plate.
[0010] Preferably, the rear end of the placement plate is connected to an auxiliary frame, and a storage box is slidably connected inside the auxiliary frame.
[0011] Preferably, the storage box has a handle at the rear end, and the placement plate has a fixing block at the top rear side.
[0012] Preferably, the rear end of the fixed block is damped by a knob, the outer end of the knob is connected to a baffle, the baffle is movably connected to the storage box, and the front end of the main unit is provided with an adapter slot.
[0013] Preferably, the adapter slot has two connection ports at the front and a power supply port at the rear of the host.
[0014] The beneficial effects of this utility model are:
[0015] 1. By setting up quick-installation components, users only need to slide the host along the connecting plate. The connecting plate will squeeze the locking block, causing the locking block to compress the spring and slide within the adapter frame. When the slot aligns with the locking block, the spring pushes the locking block to reset and achieve limit fixation. Then, connect the external power cord to the charging port to start the cooling fan, which quickly exhausts hot air through the heat dissipation slot. This design can be assembled without tools, which not only significantly improves heat dissipation performance but also simplifies the installation steps, further enhancing the flexibility and applicability of the device. This solves the problem that existing microcomputer designs do not consider the quick assembly of additional heat dissipation components, and that the installation process is complicated and time-consuming when users need to enhance heat dissipation performance, making it difficult to meet the demand for efficient heat dissipation. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of the heat dissipation support for a microcomputer according to this utility model.
[0017] Figure 2 The diagram shown is a three-dimensional rear view of the heat dissipation bracket of this utility model.
[0018] Figure 3 The diagram shown is a three-dimensional top cross-sectional view of the heat dissipation support of this utility model for a microcomputer.
[0019] Figure 4 The diagram shown is a three-dimensional bottom view of the heat dissipation support of this utility model for a microcomputer.
[0020] Explanation of reference numerals in the attached diagram: 1. Main unit; 21. Connecting plate; 22. Heat dissipation slot; 23. Card slot; 24. Placement plate; 25. Adapter frame; 26. Spring; 27. Locking block; 28. Cooling fan; 29. Charging port; 210. Toggle plate; 31. Support cylinder; 32. Threaded rod; 33. Anti-slip plate; 34. Auxiliary frame; 35. Storage box; 36. Handle; 37. Fixing block; 38. Knob; 39. Baffle; 41. Adapter slot; 42. Connection port; 43. Power supply port. Detailed Implementation
[0021] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0022] Please see Figures 1-4 This utility model provides an embodiment of a microcomputer with a heat dissipation bracket, including a host 1; it also includes a quick-release assembly. The quick-release assembly is provided at the lower end of the host 1. The quick-release assembly includes a connecting plate 21, heat dissipation slots 22, a slot 23, a placement plate 24, an adapter frame 25, a spring 26, a locking block 27, a cooling fan 28, a charging port 29, and a dial plate 210. The bottom of the host 1 is connected to the connecting plate 21. The bottom of the connecting plate 21 has multiple heat dissipation slots 22 at equal intervals. The left end of the connecting plate 21 has a slot 23. The bottom of the connecting plate 21 is movably connected to the placement plate 24. The placement plate 24 is concave and matches the connecting plate 21. The top left side of the placement plate 24 is connected to the adapter frame 25. The inside of the adapter frame 25 is connected to the spring 26. The other end of the spring 26 is connected to the locking block 27. The locking block 27 and the adapter frame 28 are connected to the adapter frame 29. 5. Sliding connection: The card block 27 matches the card slot 23. Nine cooling fans 28 are evenly spaced at the bottom of the placement plate 24. A charging port 29 is provided at the front end of the placement plate 24. A lever 210 is connected to the top left of the card block 27. The lever 210 is L-shaped. By setting a quick-installation component, the host 1 is slid into the connecting plate 21 through the connecting plate 21, so that the connecting plate 21 presses the card block 27. The card block 27 presses the spring 26 to slide within the adapter frame 25 until the card slot 23 corresponds to the card block 27. The spring 26 helps the card block 27 to reset and limit the position. The external power cord is connected to the charging port 29, thereby starting the cooling fans 28. The heat is quickly dissipated through the heat dissipation slot 22. This design can be assembled without tools. This improvement not only improves heat dissipation performance, but also simplifies the installation process and further enhances the flexibility and applicability of the equipment.
[0023] Please see Figures 1-4 In this embodiment, support cylinders 31 are connected to the four corners of the bottom of the placement plate 24. There are four support cylinders 31, which are used to support the placement plate 24 and thus play a supporting role. The internal threads of the support cylinders 31 are connected to threaded rods 32, and the bottom of the threaded rods 32 is connected to anti-slip plates 33. The threaded rods 32 can be assembled with the support cylinders 31 to increase the heat dissipation gap and improve the heat dissipation effect. The rear end of the placement plate 24 is connected to an auxiliary frame 34, and a storage box 35 is slidably connected inside the auxiliary frame 34. The storage box 35 can store the connecting wires and improve portability.
[0024] Please see Figures 2-4 In this embodiment, a handle 36 is connected to the rear end of the storage box 35, and a fixing block 37 is connected to the top rear side of the placement plate 24. The handle 36 facilitates pulling the storage box 35 to pull it out. A knob 38 is connected to the rear end of the fixing block 37 with damping. A baffle 39 is connected to the outer end of the knob 38. The baffle 39 is movably connected to the storage box 35. An adapter slot 41 is provided at the front end of the host 1. Rotating the knob 38 causes the baffle 39 to rotate, thereby restricting the storage box 35. Two connection ports 42 are provided at the front end of the adapter slot 41. A power supply port 43 is provided at the rear end of the host 1. The power supply port 43 is used to supply power to the host 1. The connection ports 42 facilitate the connection of peripherals.
[0025] During operation, the connecting plate 21 is slid into the placement plate 24, the connecting plate 21 presses the locking block 27, the locking block 27 compresses the spring 26 and slides within the adapter frame 25 until the locking slot 23 aligns with the locking block 27, the spring 26 pushes the locking block 27 to reset and complete the limit. Moving the lever 210 can drive the locking block 27 to separate from the locking slot 23, thereby releasing the limit. After connecting the external power cable to the charging port 29, the cooling fan 28 is started, and the hot air is quickly discharged through the heat dissipation slot 22, which significantly accelerates heat dissipation and reduces the operating temperature of the equipment. The threaded rod 32 can be assembled with the support cylinder 31 to increase the heat dissipation gap and improve the heat dissipation effect. The anti-slip plate 33 increases the friction with the ground and improves the stability of the equipment. The power supply port 43 is used to power the host 1, the connection port 42 is convenient for connecting peripherals, and the storage box 35 can be pulled out by pulling the handle 36. The storage box 35 is used to store the connecting cable and improve the portability of the equipment.
[0026] Through the above steps, by introducing the quick-installation component, the user only needs to slide the host 1 along the connecting plate 21. The connecting plate 21 will squeeze the locking block 27, causing the locking block 27 to compress the spring 26 and slide within the adapter frame 25. When the slot 23 aligns with the locking block 27, the spring 26 pushes the locking block 27 to reset and achieve limit fixation. Subsequently, the external power cord is connected to the charging port 29, which can start the cooling fan 28 and quickly exhaust hot air through the heat dissipation slot 22. This design can be assembled without tools, which not only significantly improves the heat dissipation performance but also simplifies the installation steps, further enhancing the flexibility and applicability of the device. This solves the problem that existing microcomputer designs do not consider the quick assembly of additional heat dissipation components, and that the installation process is complicated and time-consuming when users need to enhance heat dissipation performance, making it difficult to meet the demand for efficient heat dissipation.
Claims
1. A microcomputer in a heat dissipating holder, comprising a main unit (1); characterized in that: The quick assembly component is arranged at the lower end of the main machine (1), and comprises a connecting plate (21), a heat dissipation groove (22), a clamping groove (23), a placing plate (24), an adaptive frame (25), a spring (26), a clamping block (27), a heat dissipation fan (28), a charging port (29) and a push plate (210).
2. The heat sinked submount microcomputer of claim 1, wherein: The bottom of the connecting plate (21) is provided with a plurality of heat dissipation grooves (22) at equal intervals, the left end of the connecting plate (21) is provided with a clamping groove (23), and the bottom of the connecting plate (21) is movably connected with a placing plate (24).
3. The heat-sinked submount microcomputer of claim 2, wherein: The bottom of the placing plate (24) is provided with nine heat dissipation fans (28) at equal intervals, the front end of the placing plate (24) is provided with a charging port (29), the top left side of the clamping block (27) is connected with a push plate (210), and the push plate (210) is in an L shape.
4. The heat-sinked submount microcomputer of claim 3, wherein: The bottom of the placing plate (24) is provided with four support barrels (31).
5. The heat-sinked submount microcomputer of claim 4, wherein: The inside of the support barrel (31) is threadedly connected with a threaded rod (32), and the bottom of the threaded rod (32) is connected with an anti-skid plate (33).
6. The heat-sinked submount microcomputer of claim 5, wherein: The rear end of the placing plate (24) is connected with an auxiliary frame (34), and the inside of the auxiliary frame (34) is slidably connected with a storage box (35).
7. The heat-sinked submount microcomputer of claim 6, wherein: The rear end of the storage box (35) is connected with a handle (36), and the top rear side of the placing plate (24) is connected with a fixing block (37). The rear end of the fixing block (37) is dampingly connected with a rotary knob (38), the outer end of the rotary knob (38) is connected with a baffle (39), the baffle (39) is movably connected with the storage box (35), and the front end of the main machine (1) is provided with an adaptive groove (41). The front end of the adaptive groove (41) is provided with two connecting ports (42), and the rear end of the main machine (1) is provided with a power supply port (43).