Dynamic wind-liquid composite cooling equipment
By adopting a modular assembly structure and alignment structure, the installation steps of the air-liquid composite cooling equipment are simplified, enabling rapid assembly and improving installation efficiency, thus solving the problem of complex installation process in existing technologies.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-21
- Publication Date
- 2026-03-27
AI Technical Summary
Existing air-liquid hybrid cooling equipment involves cumbersome steps when installed on GPUs, making the installation process complicated.
It adopts a modular assembly and alignment structure, including outer cylinder, slot, air duct, fan assembly, connecting plate, fixing plate, tie rod, mounting plate, fixing rod and fixing bolt. Quick alignment and fixation are achieved through collar, insert plate and insert rod, simplifying the assembly steps.
It enables rapid assembly of air-liquid combined cooling equipment, improves installation efficiency, and enhances the fixed lifespan of the assembly.
Smart Images

Figure CN224054660U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to GPU heat dissipation field, concretely relates to a dynamic wind liquid composite cooling equipment. BACKGROUND
[0002] GPU heat dissipation refers to the heat generated by the graphics processing unit (GPU) in work is effectively dissipated through the heat dissipation system, to ensure that GPU runs in the safe temperature range.GPU heat dissipation is important to maintain system stability, improve performance and prolong hardware life.
[0003] Artificial intelligence needs to dissipate a large amount of heat to GPU when working, so it needs a wind liquid composite cooling device to dissipate heat, and the commonly used cooling device needs to be installed to the GPU through multiple steps, and the wind liquid composite cooling device needs more steps to be installed, making the already complex installation process more troublesome, so there is an urgent need for a wind liquid composite cooling device that can be quickly assembled.
[0004] Therefore, the utility model is provided. UTILITY MODEL CONTENT
[0005] To solve the above-mentioned cooling equipment installation complex technical problem, the basic idea of the technical scheme of the utility model is:
[0006] A dynamic wind liquid composite cooling equipment, comprising:
[0007] The base plate is disc-shaped, the back wall of the base plate is fixedly connected with a backflow plate, the backflow plate is rectangular, the front wall of the base plate is fixedly connected with symmetrical connecting racks, the connecting racks are rectangular plates, symmetrical connecting racks are fixedly connected with cooling cylinders, the back wall of the cooling cylinder is fixedly connected with heat dissipation fins, and the back wall of the cooling cylinder is also fixedly connected with symmetrical through pipes, one end of the through pipe is connected with the backflow plate.
[0008] The assembly structure is arranged on the wall of the base plate and is used for assembling the device, and the assembly structure comprises an outer cylinder, a slot, an air pipe and a fan assembly.
[0009] As an optimal implementation form of the utility model, the outer cylinder is in the shape of a circular tube, the opening size of the rear wall surface of the outer cylinder is consistent with the diameter of the base plate, the insertion slot is in the shape of a rectangle, the insertion slot is symmetrically arranged on the curved surface of the outer cylinder, the air pipe is in the shape of a rectangular tube, the insertion slot on each side is respectively provided with the same air pipe and fan assembly, the air pipe can be inserted into the insertion slot, the fan assembly is composed of a circular tube, a fan and a motor, the fan is located in the cavity of the circular tube, the motor can drive the fan to rotate, and the circular tube of the fan assembly can be fixedly connected with the opening of the air pipe.
[0010] As an optimal implementation form of the utility model, the assembly structure further comprises a connecting plate, a fixing plate, a pull rod, a sticking plate, a fixing rod and a fixing bolt, the connecting plate is symmetrically and fixedly connected on both sides of the rear wall surface of the outer cylinder, the fixing plate is symmetrically and fixedly connected on the two side wall surfaces of the base plate, the pull rod is fixedly connected at the bottom of the air pipe, the sticking plate is fixedly connected at the top of each air pipe, the fixing rod is fixedly connected at the top of each sticking plate, and the fixing bolt is threadedly connected on the symmetric fixing rod wall surface.
[0011] As an optimal implementation form of the utility model, the connecting plate and the fixing plate are half capsule-shaped plates with consistent sizes, the upper and lower wall surfaces of the connecting plate are symmetrically and fixedly connected with rectangular plates, each group of connecting plate and fixing plate is connected through bolts, the pull rod is in the shape of an arc, the two ends of the pull rod are fixedly connected with the bottoms of the symmetric air pipes, the material of the pull rod is rubber, the fixing rod is in the shape of an inverted L-shaped rod, the sticking plate is in the shape of an arc, the inner arc surface of the sticking plate can be attached to the outer arc surface of the outer cylinder, the side wall surface of the fixing rod is provided with screw holes capable of adapting the fixing bolt, and the fixing bolt is connected through the screw holes of the fixing rod wall surface.
[0012] As an optimal implementation form of the utility model, the wall surface of the outer cylinder is provided with an alignment structure, the alignment structure comprises a sleeve ring, an insertion plate and an insertion rod, the sleeve ring is symmetrically and fixedly connected on the curved surface of the outer cylinder, the insertion plate is symmetrically and fixedly connected in the cavity of the air pipe, and the insertion rod is clamped on the wall surface of the fixing rod.
[0013] As an optimal implementation form of the utility model, the sleeve ring is in the shape of a circular ring, the interval of the symmetric sleeve rings can adapt to the width of the air pipe, the interval of the symmetric sleeve rings can also adapt to the width size of the sticking plate, and the symmetric insertion plate of the wall surface of the air pipe can adapt to the opening of the insertion slot.
[0014] As an optimal implementation form of the utility model, the insertion rod is in the shape of a U-shaped rod, the cavity size of the insertion rod can adapt to the size of the symmetric fixing rod, the cavity of the insertion rod can be clamped with the inner corner of the fixing rod, and the side wall surface of the insertion rod is provided with screw holes capable of adapting the fixing bolt.
[0015] Compared with the prior art, the utility model has the following beneficial effects:
[0016] 1. Through the setting assembly structure, the originally required small structure is changed into modularization, so that the originally complex assembly steps are simplified into several steps, and therefore, the scheme can be quickly assembled and used.
[0017] 2. Through the setting alignment structure, the installation position of the air pipe can be quickly aligned, the installation efficiency is improved, the problem of dislocation and sliding of the symmetrical fixed rods is prevented when the fixing bolts are loose, and the fixing life of the assembly is improved.
[0018] The specific embodiments of the utility model will be further described in detail below with reference to the drawings. DRAWINGS
[0019] In the drawings:
[0020] Figure 1 It is a perspective view of the utility model;
[0021] Figure 2 It is a symmetrical air pipe combination perspective view of the utility model;
[0022] Figure 3 It is an exploded view of the outer cylinder and the base plate of the utility model;
[0023] Figure 4 It is an exploded view of the outer cylinder and the air pipe of the utility model;
[0024] Figure 5 It is an exploded view of the fixing bolt and the fixed rod of the utility model.
[0025] In the drawings: 20, base plate; 21, backflow plate; 22, connecting frame; 23, cooling cylinder; 24, heat dissipation fin; 25, through pipe; 30, outer cylinder; 31, connecting plate; 32, fixed plate; 33, insertion slot; 34, sleeve ring; 40, air pipe; 41, fan assembly; 42, insertion plate; 43, pull rod; 44, sticking plate; 45, fixed rod; 46, insertion rod; 47, fixing bolt. DETAILED DESCRIPTION
[0026] In order to make the purpose, technical scheme and advantages of the embodiments of the utility model more clear, the technical scheme in the embodiments will be clearly and completely described below with reference to the drawings in the embodiments of the utility model, and the following embodiments are used to illustrate the utility model.
[0027] As Figure 1 and Figure 3As shown in the figure, a dynamic wind liquid composite cooling device comprises a base plate 20, the base plate 20 is disc-shaped, a back wall surface of the base plate 20 is fixedly connected with a backflow plate 21, the backflow plate 21 is rectangular, a front wall surface of the base plate 20 is fixedly connected with symmetrical connecting frames 22, the connecting frames 22 are rectangular plates, symmetrical connecting frames 22 are fixedly connected with a cooling cylinder 23, a back wall surface of the cooling cylinder 23 is fixedly connected with heat dissipation fins 24, the back wall surface of the cooling cylinder 23 is also fixedly connected with symmetrical through pipes 25, the other end of the through pipes 25 can also communicate with the backflow plate 21, the cooling cylinder 23 is provided with a pump machine, the pump machine can guide the cooling liquid in the cavity of the cooling cylinder 23 to the cavity of the backflow plate 21 and then guide the cooling liquid back to the cavity of the cooling cylinder 23 through another through pipe 25, the cooling cylinder 23, the through pipe 25, the backflow plate 21 and the heat dissipation fins 24 can constitute a conventional liquid cooling device, the pump machine on the wall surface of the cooling cylinder 23 and the cooling machine in the cavity of the cooling cylinder 23 are electrically connected with a power supply, which is the existing technology, so it is not described here.
[0028] As shown in the figure, Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 , an assembly structure is arranged on the wall surface of the base plate 20 for assembling and using the device, the assembly structure comprises an outer cylinder 30, a slot 33, an air pipe 40 and a fan assembly 41, the outer cylinder 30 is detachably connected on the front wall surface of the base plate 20, the slot 33 is symmetrically arranged on the two side wall surfaces of the outer cylinder 30, the air pipe 40 is detachably connected on the two side wall surfaces of the outer cylinder 30, the fan assembly 41 is fixedly connected on the wall surface of each air pipe 40, and the outer cylinder 30 can be assembled with the base plate 20.
[0029] As shown in the figure, Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5As shown, the outer cylinder 30 is a circular tube, the rear wall surface opening size of the outer cylinder 30 is consistent with the diameter of the base plate 20, the slot 33 is a rectangular opening, the slot 33 is symmetrically provided on the arc surface of the outer cylinder 30, the air pipe 40 is a rectangular tube, the same air pipe 40 and fan assembly 41 are respectively arranged on each side of the slot 33, the air pipe 40 can be inserted into the slot 33, the fan assembly 41 is composed of a circular tube, a fan and a motor, the fan is located in the cavity of the circular tube, the motor can drive the fan to rotate, the circular tube of the fan assembly 41 can be fixedly connected with the opening of the air pipe 40, the assembly structure further comprises a connecting plate 31, a fixed plate 32, a pull rod 43, a sticking plate 44, a fixed rod 45 and a fixing bolt 47, the connecting plate 31 is symmetrically and fixedly connected on both sides of the rear wall surface of the outer cylinder 30, the fixed plate 32 is symmetrically and fixedly connected on both sides of the wall surface of the base plate 20, the pull rod 43 is fixedly connected at the bottom of the air pipe 40, the sticking plate 44 is fixedly connected at the top of each air pipe 40, the fixed rod 45 is fixedly connected at the top of each sticking plate 44, the fixing bolt 47 is threadedly connected on the wall surface of the symmetric fixed rod 45, the connecting plate 31 and the fixed plate 32 are half-capsule-shaped plates with the same size, the upper and lower wall surfaces of the connecting plate 31 are symmetrically and fixedly connected with rectangular plates, each group of connecting plate 31 and fixed plate 32 are connected by bolts, the pull rod 43 is an arc-shaped rod, the two ends of the pull rod 43 are respectively and fixedly connected with the bottom of the symmetric air pipe 40, the material of the pull rod 43 is rubber, the fixed rod 45 is a rod with an inverted L-shaped cross section, the sticking plate 44 is an arc-shaped plate, the inner arc surface of the sticking plate 44 can be attached to the outer arc surface of the outer cylinder 30, the side wall surface of the fixed rod 45 is provided with a screw hole which can be matched with the fixing bolt 47, and the fixing bolt 47 is connected through the screw hole in the wall surface of the fixed rod 45;
[0030] In specific use, first, the backflow plate 21 is aligned with the GPU to be cooled and the base plate 20 is installed and fixed, after the base plate 20 is fixed, the outer cylinder 30 is sleeved on the wall surface of the base plate 20 so that the connecting frame 22, the cooling cylinder 23, the heat dissipation fin 24 and the pipe 25 are located in the cavity of the outer cylinder 30, when the outer cylinder 30 and the base plate 20 are connected, the rectangular plates on the wall surface of the connecting plate 31 and the fixed plate 32 are clamped and aligned, then the bolts are threadedly connected with the fixed plate 32 and the connecting plate 31, then the air pipe 40 on each side is aligned with the slot 33 and the inner arc of the symmetric sticking plate 44 is attached to the top of the outer cylinder 30, then the fixing bolt 47 is screwed into the screw hole in the wall surface of the symmetric fixed rod 45, and the installation is completed, then the power supply is connected, the motor of the fan assembly 41 is electrically connected with the power supply, after the power supply is turned on, the fan on one side of the fan assembly 41 can suck air in the cavity of the outer cylinder 30, and the fan on the other side of the fan assembly 41 can suck air out of the cavity of the outer cylinder 30, and the cooling cylinder 23 cooperates with the pump to cool the cooling liquid in the cavity thereof and circulate towards the backflow plate 21, the backflow plate 21 is cooled by the cooling liquid in the cavity thereof so as to cool the GPU;
[0031] In summary, by setting the assembly structure, the originally small structure that needs to be assembled one by one can be changed into a modular assembly, thereby simplifying the originally complex assembly steps into a few steps, so that the scheme can be quickly assembled and used.
[0032] As Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 , the wall surface of the outer cylinder 30 is provided with a positioning structure, the positioning structure includes a sleeve ring 34, an insertion plate 42 and an insertion rod 46, the sleeve ring 34 is fixedly connected symmetrically on the curved surface of the outer cylinder 30, the insertion plate 42 is fixedly connected symmetrically in the cavity of the air pipe 40, and the insertion rod 46 is clamped on the wall surface of the fixed rod 45. The sleeve ring 34 is in the form of a circular ring, the distance between the symmetric sleeve rings 34 can adapt to the width of the air pipe 40, and the distance between the symmetric sleeve rings 34 can also adapt to the width size of the paste plate 44. The symmetric insertion plate 42 on the wall surface of the air pipe 40 can adapt to the opening of the insertion slot 33. The insertion rod 46 is in the form of a U-shaped rod, the inner cavity size of the insertion rod 46 can adapt to the size of the symmetric fixed rod 45, and the inner cavity of the insertion rod 46 can be clamped with the inner angle of the fixed rod 45. The side wall surface of the insertion rod 46 is provided with a screw hole adapted to the fixed bolt 47;
[0033] In specific use, when the air pipe 40 is assembled, the insertion plate 42 and the insertion slot 33 are inserted, and after the symmetric fixed rods 45 are overlapped, the insertion rod 46 is clamped at the inner angle of the symmetric fixed rods 45, and finally the fixed bolt 47 is screwed in;
[0034] In summary, by setting the positioning structure, the installation position of the air pipe 40 can be quickly aligned to improve the installation efficiency, and the problem of dislocation and sliding of the symmetric fixed rods 45 can be prevented when the fixed bolt 47 is loosened, thereby improving the fixed service life of the assembly.
[0035] Working principle: first, align the backflow plate 21 with the GPU to be cooled and install and fix the base plate 20, after the base plate 20 is fixed, the outer cylinder 30 is sleeved on the wall surface of the base plate 20, so that the connecting frame 22, the cooling cylinder 23, the heat dissipation fin 24 and the pipe 25 are located in the cavity of the outer cylinder 30. When the outer cylinder 30 and the base plate 20 are connected, the symmetric rectangular plate on the wall surface of the connecting plate 31 and the fixed plate 32 are clamped and aligned, then the bolt is screwed with the fixed plate 32 and the connecting plate 31, then the air pipe 40 on each side is aligned with the insertion slot 33, and the inner arc of the symmetric paste plate 44 is pasted with the top of the outer cylinder 30, then the fixed bolt 47 is screwed into the screw hole in the wall surface of the symmetric fixed rod 45, and the installation is completed, then the power supply is connected, and the motor of the fan assembly 41 is electrically connected with the power supply.
[0036] It can be understood that the utility model is described through some embodiments, and the person skilled in the art knows that various changes or equivalent replacements can be made to these features and embodiments without departing from the spirit and scope of the utility model. In addition, under the guidance of the utility model, these features and embodiments can be modified to adapt to specific conditions and materials without departing from the spirit and scope of the utility model. Therefore, the utility model is not limited by the specific embodiments disclosed herein, and all embodiments falling within the scope of the claims of the application belong to the scope protected by the utility model.
Claims
1. A dynamic wind-liquid hybrid cooling device, characterized by, The utility model relates to a kind of cooling device, including: Substrate (20), substrate (20) is discoid, back wall surface of substrate (20) is fixedly connected with backflow plate (21), backflow plate (21) is rectangular, front wall surface of substrate (20) is fixedly connected with link frame (22) symmetrically, link frame (22) is rectangular board, cooling cylinder (23) is fixedly connected between symmetric link frame (22), back wall surface of cooling cylinder (23) is fixedly connected with radiating fin (24), back wall surface of cooling cylinder (23) is also fixedly connected with through pipe (25) symmetrically, another end of through pipe (25) can also communicate with backflow plate (21); Assembly structure, assembly structure is arranged on the wall surface of substrate (20) for assembling device use, and assembly structure includes: outer cylinder (30), slot (33), air pipe (40) and fan assembly (41), outer cylinder (30) is detachably connected on the front wall surface of substrate (20), slot (33) is symmetrically opened on the two side wall surfaces of outer cylinder (30), air pipe (40) is detachably connected on the two side wall surfaces of outer cylinder (30), fan assembly (41) is fixedly connected on the wall surface of each air pipe (40), and outer cylinder (30) can be assembled with substrate (20).
2. The dynamic wind-liquid hybrid cooling device according to claim 1, characterized in that, The outer cylinder (30) is circular pipe, the back wall surface opening size of outer cylinder (30) is consistent with the diameter of substrate (20), the slot (33) is rectangular opening, the slot (33) is symmetrically opened on the arc surface of outer cylinder (30), the air pipe (40) is rectangular tube, the same air pipe (40) and fan assembly (41) are respectively arranged in each slot (33), the air pipe (40) can be inserted in the slot (33), the fan assembly (41) is composed of circular tube, fan and motor, the fan is located in the cavity of circular tube, the motor can drive the fan to rotate, and the circular tube of fan assembly (41) can be fixedly connected with the opening of air pipe (40).
3. The dynamic wind-liquid hybrid cooling device according to claim 1, wherein, The assembly structure further includes connecting plate (31), fixed plate (32), pull rod (43), sticking plate (44), fixed rod (45) and fixing bolt (47), the connecting plate (31) is fixedly connected on the two sides of the back wall surface of outer cylinder (30) symmetrically, the fixed plate (32) is fixedly connected on the two side wall surfaces of substrate (20) symmetrically, the pull rod (43) is fixedly connected on the bottom of air pipe (40), the sticking plate (44) is fixedly connected on the top of each air pipe (40), the fixed rod (45) is fixedly connected on the top of each sticking plate (44), and the fixing bolt (47) is threadedly connected on the wall surface of symmetric fixed rod (45).
4. The dynamic wind-liquid hybrid cooling device according to claim 3, characterized in that, The connecting plate (31) and the fixed plate (32) are half-capsule-shaped plates with consistent sizes, the upper and lower walls of the connecting plate (31) are symmetrically and fixedly connected with rectangular plates, each group of the connecting plate (31) and the fixed plate (32) are connected through bolts, the pull rod (43) is an arc-shaped rod, the two ends of the pull rod (43) are fixedly connected with the bottom of the symmetric air pipe (40), the material of the pull rod (43) is rubber, the fixed rod (45) is a rod with an inverted L-shaped section, the sticking plate (44) is an arc-shaped plate, the inner arc surface of the sticking plate (44) can be attached to the outer arc surface of the outer cylinder (30), the side wall surface of the fixed rod (45) is provided with screw holes suitable for fixed bolts (47), and the fixed bolts (47) are connected through the screw holes in the wall surface of the fixed rod (45).
5. The dynamic wind-liquid hybrid cooling device of claim 1, wherein, The wall surface of the outer cylinder (30) is provided with an alignment structure, the alignment structure comprises a sleeve ring (34), an insertion plate (42) and an insertion rod (46), the sleeve ring (34) is symmetrically and fixedly connected on the arc surface of the outer cylinder (30), the insertion plate (42) is symmetrically and fixedly connected in the cavity of the air pipe (40), and the insertion rod (46) is clamped on the wall surface of the fixed rod (45).
6. The dynamic wind-liquid hybrid cooling device according to claim 5, wherein, The sleeve ring (34) is a circular ring, the distance between the symmetric sleeve rings (34) can be adapted to the width of the air pipe (40), the distance between the symmetric sleeve rings (34) can also be adapted to the width size of the sticking plate (44), and the symmetric insertion plates (42) on the wall surface of the air pipe (40) can be adapted to the opening of the insertion groove (33).
7. The dynamic wind-liquid hybrid cooling device according to claim 5, wherein, The insertion rod (46) is a U-shaped rod, the cavity size of the insertion rod (46) can be adapted to the size of the symmetric fixed rod (45), the cavity of the insertion rod (46) can be clamped with the inner corner of the fixed rod (45), and the side wall surface of the insertion rod (46) is provided with screw holes suitable for the fixed bolts (47).