A flow channel processing support table for a liquid cooling plate
By designing a flow channel processing support platform for liquid cooling plates, the problem of inconvenient burr removal of liquid cooling plates was solved, achieving stable placement and angle adjustment, and improving the convenience and safety of burr removal.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- MIANYANG TIANHE MACHINERY MFG
- Filing Date
- 2025-08-27
- Publication Date
- 2026-07-21
AI Technical Summary
The liquid cooling plate has burrs on the channel after processing, and the scraping process is inconvenient, especially due to the large area, which makes operation difficult.
A flow channel processing support platform for liquid cooling plates was designed. Through an adjustable back plate and a limiting mechanism, the liquid cooling plates can be stably placed and their angle adjusted, ensuring the convenience and safety of burr removal.
It provides a convenient environment for deburring, improves the stability and safety of liquid cooling plate placement, and enhances the efficiency of deburring.
Smart Images

Figure CN224526147U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of liquid cooling plate processing technology, and in particular to a flow channel processing support platform for liquid cooling plates. Background Technology
[0002] Liquid cooling plates are used to cool and dissipate heat from heat-generating devices. The microchannels on the liquid cooling plates are machined by machine tools. After machining, there are often many burrs on the channels. These burrs cannot be removed by cleaning, and the burrs are random and their positions are uncertain. Therefore, they are usually removed by operators using scrapers. During the scraping process, the liquid cooling plate is usually placed on a workbench for scraping. However, the liquid cooling plate has a large area, which makes burr removal inconvenient. Utility Model Content
[0003] This utility model provides a flow channel processing support platform for liquid cooling plates, which solves the shortcomings of the prior art and solves the problem of inconvenience in deburring liquid cooling plates, and has strong practicality.
[0004] In order to achieve the purpose of this utility model, the following technology is proposed to be adopted: A flow channel processing support platform for liquid cooling plate includes a rectangular base plate. A protruding plate is welded to both sides of one end of the rectangular base plate. A rotating shaft is rotatably provided on the protruding plate. A pair of back plates are welded on the rotating shaft. The other end of the back plate is connected and fixed by a welded end cross plate. A baffle is welded on the back plate and is located at one end of the rotating shaft. A rotating seat is welded to the lower side of the back plate, and a concave rod is rotatably mounted on the rotating seat. A pair of parallel limiting plates are welded to the rectangular base plate. Multiple slots are formed with an opening at the upper end of the limiting plates, and the horizontal section at the lower end of the concave rod is engaged in the slot.
[0005] Furthermore, a pair of elongated holes are provided on the back plate, through which a movable screw is inserted. An L-shaped limiting member is fitted on the movable screw, located on the upper side of the back plate. A spring is fitted on the movable screw, positioned between the limiting member and the end cap of the movable screw. A top strip is fitted on the movable screw, abutting against the lower side of the back plate. A pair of limiting side plates are welded to both ends of the top strip. An oblong hole is provided on the limiting side plate, within which a movable block is movably installed. A top block is welded to the inner end of the movable block. The lower wall of the inner end of the top block is an inclined wall, extending upward at its inner end. An outer support plate is threaded to the lower end of the movable screw. A downward pushing protrusion is welded to both ends of the upper wall of the outer support plate. An inclined surface is formed on the outer end of the downward pushing protrusion, extending upward at its inner end. The inclined wall of the top block abuts against the inclined surface of the downward pushing protrusion.
[0006] Furthermore, a movable plate is welded to the outer end of the top block. An oblique hole is opened on the movable plate. The oblique hole is inclined and a pressure rod is movable inside the oblique hole. The outer end of the pressure rod is connected to a movable lower plate by a thread. A limiting sleeve is fitted on the movable lower plate and welded to the top bar.
[0007] Furthermore, a lower extension protrusion is welded to one end of the lower wall of the movable lower plate, and a hinge shaft is welded to one end of the limiting sleeve. A rotating top plate is rotatably mounted on the hinge shaft, and one end of the rotating top plate abuts against one side of the lower extension protrusion.
[0008] Furthermore, the end of the rotating top plate that abuts against the lower protruding plate has an arc-shaped structure.
[0009] The advantages of the above technical solution are: This invention features a rotatable and easily adjustable back plate that allows for the placement of a liquid cooling plate. After placement, the tilt angle of the liquid cooling plate can be adjusted, thus facilitating the removal of burrs.
[0010] This invention uses a baffle to limit the lower end of the liquid cooling plate to prevent it from sliding down, and a limiting component to limit the upper end of the liquid cooling plate. This prevents the liquid cooling plate from falling during burr removal, and the limiting component can be locked in place by the relevant mechanism, thereby further improving the stability and safety of the liquid cooling plate after placement. Attached Figure Description
[0011] To make the objectives, technical solutions, and advantages of this utility model clearer, the following will provide a further detailed description of this utility model in conjunction with the accompanying drawings.
[0012] Figure 1 A three-dimensional structure of one embodiment is shown. Figure 1 .
[0013] Figure 2 A three-dimensional structure of one embodiment is shown. Figure 2 .
[0014] Figure 3 A magnified view of point A is shown.
[0015] Figure 4 A magnified view of point B is shown. Detailed Implementation
[0016] like Figures 1-4As shown, a flow channel processing support platform for a liquid cooling plate includes a rectangular base plate 1. Two protruding plates 10 are welded to both sides of one end of the rectangular base plate 1. A rotating shaft 11 is rotatably mounted on the protruding plate 10. A pair of back plates 12 are welded to the rotating shaft 11. The other end of the back plate 12 is connected and fixed by a welded end cross plate 13. A baffle 15 is welded to the back plate 12, located at one end of the rotating shaft 11. A rotating seat 42 is welded to the lower side of the back plate 12. A concave rod 41 is rotatably mounted on the rotating seat 42. A pair of parallel limiting plates 4 are welded to the rectangular base plate 1. The upper end of the limiting plates 4 has multiple slots 40 formed with an opening. The lower horizontal section of the concave rod 41 is engaged within the slots 40.
[0017] A pair of elongated holes 14 are provided on the back plate 12. A movable screw 20 passes through the elongated holes 14. An L-shaped limiting member 2 is fitted on the movable screw 20. The limiting member 2 is located on the upper side of the back plate 12. A spring 21 is fitted on the movable screw 20. The spring 21 is located between the limiting member 2 and the end cap of the movable screw 20. A top strip 24 is fitted on the movable screw 20. The top strip 24 abuts against the lower side of the back plate 12. A pair of limiting side plates 25 are welded to each end of the top strip 24. A waist-shaped hole 26 is provided, and a movable block 27 is movably installed within the waist-shaped hole 26. A top block 28 is welded to the inner end of the movable block 27. The lower wall of the inner end of the top block 28 is an inclined wall, and the inner end of the inclined wall extends upward. The lower end of the movable screw 20 is threadedly connected to an outer support plate 22. The upper walls of the outer support plate 22 are respectively welded to two ends of a downward push protrusion 23. The outer end of the downward push protrusion 23 is formed with an inclined surface, and the inner end of the inclined surface extends upward. The inclined wall of the top block 28 abuts against the inclined surface of the downward push protrusion 23. A movable plate 29 is welded to the outer end of the top block 28. An inclined hole 30 is provided on the movable plate 29. The inclined hole 30 is inclined, and a pressure rod 31 is movably installed within the inclined hole 30. The outer end of the pressure rod 31 is threadedly connected to a movable lower plate 32. A limiting sleeve 33 is fitted on the movable lower plate 32 and is welded to the top bar 24. A lower extension plate 34 is welded to one end of the lower wall of the movable lower plate 32, and a hinge shaft 35 is welded to one end of the limiting sleeve 33. A rotating top plate 36 is rotatably mounted on the hinge shaft 35. One end of the rotating top plate 36 abuts against one side of the lower extension plate 34, and the end of the rotating top plate 36 that abuts against the lower extension plate 34 has an arc-shaped structure.
[0018] In application, this embodiment addresses situations such as... Figure 1 The following is an explanation of the use of a liquid cooling plate with a rectangular structure.
[0019] In use, the operator rotates the back plate 12 around the pivot 11 to tilt the back plate 12 and adjust it to a suitable angle. Then, the operator rotates the concave rod 41 so that the lower end of the concave rod 41 passes through the corresponding slot 40.
[0020] The operator then places the liquid cooling plate on the back plate 12, with the lower end of the liquid cooling plate abutting against the baffle 15. The operator then moves the limiting member 2 so that the inner wall of the limiting member 2 abuts against the other end of the liquid cooling plate. The operator then rotates the rotating top plate 36, and the rotating top plate 36 causes the moving lower plate 32 to move. When the moving lower plate 32 moves, the pressure rod 31 on it will act on the inclined hole 30, thereby causing the moving plate 29 to move along the length of the waist-shaped hole 26. As the moving plate 29 moves, the top block 28 will move. The movement of the top block 28 will cause its inclined wall to abut against the inclined surface of the lower push protrusion 23, thereby causing the outer support plate 22 to move away from the top bar 24 or the back plate 12. During the movement, the spring 21 will be compressed, and the inner wall of the limiting member 2 will abut against the back plate 12, thus fixing the position of the limiting member 2.
[0021] Next, the operator scrapes off the burrs. During the scraping process, the liquid cooling plate is placed at an angle, which makes it easier for the burrs to fall off and for the operator to clean them.
[0022] The above description is merely a preferred embodiment of this utility model and is not intended to limit the scope of this utility model. Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations of this utility model fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.
Claims
1. A flow channel processing support platform for a liquid cooling plate, characterized in that, Includes a rectangular base plate (1), with protruding plates (10) welded to both sides of one end of the rectangular base plate (1), a rotating shaft (11) rotatably mounted on the protruding plate (10), a pair of back plates (12) welded to the rotating shaft (11), the other end of the back plate (12) is connected and fixed by welding a cross plate (13), and a baffle (15) is welded to the back plate (12), the baffle (15) being located at one end of the rotating shaft (11); A rotating seat (42) is welded to the lower side of the back plate (12). A concave rod (41) is rotatably mounted on the rotating seat (42). A pair of parallel limiting plates (4) are welded to the rectangular base plate (1). Multiple slots (40) are formed with an opening at the upper end of the limiting plate (4). The horizontal section at the lower end of the concave rod (41) is locked in the slot (40).
2. The flow channel processing support platform for liquid cooling plates according to claim 1, characterized in that, A pair of elongated holes (14) are provided on the back plate (12). A movable screw (20) is inserted through the elongated holes (14). An L-shaped limiting member (2) is fitted on the movable screw (20). The limiting member (2) is located on the upper side of the back plate (12). A spring (21) is fitted on the movable screw (20). The spring (21) is located between the limiting member (2) and the end cap of the movable screw (20). A top strip (24) is fitted on the movable screw (20). The top strip (24) abuts against the lower side of the back plate (12). A pair of limiting side plates (25) are welded to both ends of the top strip (24). A waist-shaped hole (26) is provided on the side plate (25). A movable block (27) is provided in the waist-shaped hole (26). A top block (28) is welded to the inner end of the movable block (27). The lower wall of the inner end of the top block (28) is a sloping wall. The inner end of the sloping wall extends upward. The lower end of the movable screw (20) is connected to an outer support plate (22) by a thread. The upper walls of the outer support plate (22) are respectively welded to two ends of a push-down protrusion (23). The outer end of the push-down protrusion (23) is formed with a slope. The inner end of the slope extends upward. The sloping wall of the top block (28) abuts against the slope of the push-down protrusion (23).
3. The flow channel processing support platform for liquid cooling plates according to claim 2, characterized in that, A movable plate (29) is welded to the outer end of the top block (28). An oblique hole (30) is provided on the movable plate (29). The oblique hole (30) is set at an angle. A pressure rod (31) is movably provided in the oblique hole (30). A movable lower plate (32) is connected to the outer end of the pressure rod (31) by a thread. A limiting sleeve (33) is fitted on the movable lower plate (32). The limiting sleeve (33) is welded to the top bar (24).
4. The flow channel processing support platform for liquid cooling plates according to claim 3, characterized in that, A lower extension plate (34) is welded to one end of the lower wall of the movable lower plate (32), and a hinge shaft (35) is welded to one end of the limiting sleeve (33). A rotating top plate (36) is rotatably provided on the hinge shaft (35), and one end of the rotating top plate (36) abuts against one side of the lower extension plate (34).
5. The flow channel processing support platform for liquid cooling plates according to claim 4, characterized in that, The end of the rotating top plate (36) that abuts against the lower protruding plate (34) has an arc-shaped structure.