Novel radiator frame structure
By introducing a fixing mechanism and groove design into the radiator frame structure, and using a spring to drive the lifting plate to press down the aluminum column, the problem of poor adhesion between the aluminum column and the high thermal conductivity flat plate is solved, thus improving the heat conduction effect.
Patent Information
- Application Number
- CN202520325898.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-27
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-02-27
AI Technical Summary
In the existing technology, the aluminum column and the high thermal conductivity flat plate are not tightly bonded, resulting in poor heat conduction. The lateral clamping force provided by the second trapezoidal blocks on both sides is insufficient.
A fixing mechanism is adopted, including a support plate assembly and a spring. The spring force drives the lifting plate and the L-shaped fixing plate to press down the aluminum column, so that it fits tightly against the high thermal conductivity flat plate. A groove is set on the top of the high thermal conductivity flat plate to restrict the lateral movement of the aluminum column.
This improved the tightness of the fit between the aluminum column and the high thermal conductivity flat plate, thus enhancing the heat conduction effect.
Smart Images

Figure CN223869896U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a radiator technical field, concretely is a novel radiator frame structure. BACKGROUND
[0002] The utility model discloses a high -strength aluminum radiator, including high -thermal conductivity flat piece, aluminum column, radiating fin, first trapezoidal groove, first trapezoidal block, second trapezoidal groove and clamping assembly, the center of high -thermal conductivity flat piece top movable connection has aluminum column, the top fixed connection of aluminum column has radiating fin, the center of aluminum column bottom is seted up first trapezoidal groove, the inside movable connection of first trapezoidal groove has first trapezoidal block, the bottom of first trapezoidal block is fixedly connected with the top of high -thermal conductivity flat piece, the bottom of aluminum column left and right sides is seted up second trapezoidal groove, the top of high -thermal conductivity flat piece is provided with clamping assembly, the clamping assembly includes concave block, baffle, sliding rod, movable plate, connecting column, second trapezoidal block, mouth, first handle, first fixed block, second fixed block, second handle, movable rod, connecting seat, fixed spring and fixed groove, the left and right sides of high -thermal conductivity flat piece top are fixedly connected with concave block, the inner wall top and bottom of concave block and close to one side of aluminum column are fixedly connected with baffle, the side fixedly connected with sliding rod of baffle away from aluminum column, the side through movable plate sliding connection of two sliding rods and close to baffle, the center of movable plate close to aluminum column one side is fixedly connected with connecting column, the side fixedly connected with second trapezoidal block of connecting column away from movable plate, the side of second trapezoidal block away from connecting column is penetrated second trapezoidal groove and extends to the inside of second trapezoidal groove, the center of concave block away from aluminum column one side is seted up mouth, the center fixedly connected with first handle of movable plate away from connecting column one side, the side of first handle away from movable plate is penetrated mouth and extends to the outside of mouth, the side fixedly connected with first fixed block of first handle top away from aluminum column, the top fixedly connected with second fixed block of concave block away from aluminum column one side, the second handle is seted up above second fixed block, the bottom fixedly connected with two movable rods of second handle, the bottom of movable rod is penetrated second fixed block and extends to the outside of second fixed block, the bottom of two movable rods is fixedly connected with connecting seat, the fixed spring is sleeved with the position between connecting seat and second fixed block of movable rod surface and is located, the fixed groove is seted up in the position of first fixed block of connecting seat bottom, the top of first fixed block is penetrated fixed groove and extends to the inside of fixed groove.The end fixedly connected with the inner wall of concave block of sliding rod away from baffle. The movable connection between movable plate and baffle. The movable connection between the surface of movable plate and the inner wall of concave block. The movable connection between the second trapezoidal block and the second trapezoidal groove. The movable connection between the movable rod and the second fixed block. The movable connection between the first fixed block and the fixed groove.
[0003] The above patent has the following deficiencies:
[0004] The aluminum column is clamped by the second trapezoidal blocks on both sides. However, the second trapezoidal blocks only provide lateral clamping force, and the aluminum column is not subjected to vertical downward force. Therefore, the high thermal conductivity flat plate and the aluminum column are not tightly attached, resulting in a deviation in the heat conduction effect between the high thermal conductivity flat plate and the aluminum column. Utility Model Content
[0005] In view of the problems existing in the current novel radiator frame structure, this utility model is proposed.
[0006] Therefore, the purpose of this utility model is to provide a new type of radiator frame structure, which solves the problem in the above-mentioned patent that the aluminum column is clamped by the second trapezoidal blocks on both sides. However, the second trapezoidal blocks only provide lateral clamping force, and the aluminum column is not subjected to vertical downward force. Therefore, the high thermal conductivity flat plate and the aluminum column are not tightly attached, resulting in a deviation in the heat conduction effect between the high thermal conductivity flat plate and the aluminum column.
[0007] To solve the above-mentioned technical problems, according to one aspect of the present invention, the present invention provides the following technical solution:
[0008] A novel radiator frame structure includes heat dissipation fins, with an aluminum column welded to the bottom of the heat dissipation fins. A high thermal conductivity flat plate is located below the aluminum column, and a fixing mechanism is provided on the high thermal conductivity flat plate. The fixing mechanism fixes the aluminum column and also has a force that drives the aluminum column to press down, so that the aluminum column is pressed tightly against the high thermal conductivity flat plate.
[0009] As a preferred embodiment of the novel radiator frame structure described in this utility model, the top end of the high thermal conductivity flat plate is provided with a groove, and the bottom of the aluminum column is inserted into the groove on the top surface of the high thermal conductivity flat plate.
[0010] As a preferred embodiment of the novel radiator frame structure described in this utility model, the fixing mechanism includes a support plate assembly integrally disposed on both sides of the high thermal conductivity flat plate. The support plate assembly is composed of two parallel vertical support plates. A lifting plate is slidably connected between the two vertical support plates. An elastic element is installed between the bottom of the lifting plate and the high thermal conductivity flat plate. An L-shaped fixing plate is welded to the top of the lifting plate.
[0011] The top of the aluminum column is integrally provided with a raised edge strip, which is inserted into the L-shaped fixing plate.
[0012] As a preferred embodiment of the novel radiator frame structure described in this utility model, the inner side of the vertical support plate is provided with a sliding groove, and sliders are welded on both outer walls of the lifting plate, with the sliders slidably connected to the inner wall of the sliding groove.
[0013] In a preferred embodiment of the novel radiator frame structure described in this utility model, the elastic element is configured as a spring, and the upper and lower ends of the spring are respectively connected to a lifting plate and a high thermal conductivity flat plate.
[0014] In a preferred embodiment of the novel radiator frame structure described in this utility model, a first mounting plate is welded to the bottom of the lifting plate, and a second mounting plate is welded to the top of the spring. Internal threaded holes are provided at corresponding positions of the first and second mounting plates, and the first and second mounting plates are fixed together by bolts.
[0015] As a preferred embodiment of the novel radiator frame structure described in this utility model, a third mounting plate is welded to the bottom of the spring, and internal threaded holes are provided at corresponding positions of the third mounting plate and the high thermal conductivity flat plate. The third mounting plate and the high thermal conductivity flat plate are fixed together by bolts.
[0016] Compared with existing technologies:
[0017] 1. By setting a fixing mechanism, the spring is in a stretched state, and the spring force drives the lifting plate and the L-shaped fixing plate to descend, thereby driving the aluminum column to press down on the high thermal conductivity flat plate, so that the aluminum column and the high thermal conductivity flat plate fit tightly together, resulting in better heat conduction between the aluminum column and the high thermal conductivity flat plate.
[0018] 2. By setting a groove on the top of the high thermal conductivity flat plate, the bottom of the aluminum column is inserted into the groove on the top of the high thermal conductivity flat plate. Therefore, the aluminum column cannot move laterally, and under the downward pressure of the fixing mechanism, the aluminum column can maintain a tight fit with the high thermal conductivity flat plate. Attached Figure Description
[0019] Figure 1 This is a structural schematic diagram of the present invention;
[0020] Figure 2 Provided by this utility model Figure 1 Enlarged view of point A in the middle;
[0021] Figure 3 A cross-sectional view of the fixing mechanism provided by this utility model;
[0022] Figure 4 This is a schematic diagram of the vertical support plate 4 provided by this utility model.
[0023] In the figure: 1. High thermal conductivity flat plate; 2. Aluminum column; 21. Raised edge strip; 3. Heat dissipation fins; 4. Vertical support plate; 41. Slide groove; 5. Lifting plate; 51. Slider; 6. L-shaped fixing plate; 7. First mounting plate; 8. Second mounting plate; 9. Third mounting plate; 10. Spring. Detailed Implementation
[0024] To make the objectives, technical solutions, and advantages of this utility model clearer, the embodiments of this utility model will be described in further detail below with reference to the accompanying drawings.
[0025] This utility model provides a novel radiator frame structure. Please refer to [link / reference]. Figures 1-4 The device includes heat dissipation fins 3, with an aluminum column 2 welded to the bottom of the heat dissipation fins 3. A high thermal conductivity flat plate 1 is located below the aluminum column 2. A groove is provided at the top of the high thermal conductivity flat plate 1. The bottom of the aluminum column 2 is inserted into the groove on the top surface of the high thermal conductivity flat plate 1 and is tightly inserted into the groove. A fixing mechanism is provided on the high thermal conductivity flat plate 1 to fix the aluminum column 2. At the same time, the fixing mechanism has a force to drive the aluminum column 2 to press down, so that the aluminum column 2 is close to the high thermal conductivity flat plate 1.
[0026] The fixing mechanism includes a support plate assembly integrally set on both sides of the high thermal conductivity flat plate 1. The support plate assembly consists of two parallel vertical support plates 4. A lifting plate 5 is slidably connected between the two vertical support plates 4. Specifically, a groove 41 is opened on the inner side of the vertical support plate 4. Slider 51 is welded on both outer walls of the lifting plate 5. Slider 51 is slidably connected to the inner wall of the groove 41. An elastic element is installed between the bottom of the lifting plate 5 and the high thermal conductivity flat plate 1. An L-shaped fixing plate 6 is welded to the top of the lifting plate 5.
[0027] The top of the aluminum column 2 is integrally provided with a raised edge strip 21, which is inserted into the L-shaped fixing plate 6.
[0028] The elastic component is a spring 10. A first mounting plate 7 is welded to the bottom of the lifting plate 5, and a second mounting plate 8 is welded to the top of the spring 10. Internal threaded holes are opened at corresponding positions of the first mounting plate 7 and the second mounting plate 8. The first mounting plate 7 and the second mounting plate 8 are fixed together by bolts. A third mounting plate 9 is welded to the bottom of the spring 10. Internal threaded holes are opened at corresponding positions of the third mounting plate 9 and the high thermal conductivity flat plate 1. The third mounting plate 9 and the high thermal conductivity flat plate 1 are fixed together by bolts. The spring 10 is in a stretched state, so the elastic force of the spring 10 drives the lifting plate 5 and the L-shaped fixing plate 6 to have a downward tendency, thereby driving the aluminum column 2 to press down on the high thermal conductivity flat plate 1, so that the aluminum column 2 and the high thermal conductivity flat plate 1 fit tightly together.
[0029] In practical use, the L-shaped fixing plate 6 is pulled upwards, and the aluminum column 2 is placed between the two L-shaped fixing plates 6, so that the bottom of the aluminum column 2 is inserted into the groove at the top of the high thermal conductivity flat plate 1. The L-shaped fixing plate 6 is then released, and the elastic force of the spring 10 drives the lifting plate 5 and the L-shaped fixing plate 6 to descend until the L-shaped fixing plate 6 presses the aluminum column 2. The spring 10 is in a stretched state, so the elastic force of the spring 10 drives the lifting plate 5 and the L-shaped fixing plate 6 to have a downward tendency, thereby driving the aluminum column 2 to press down on the high thermal conductivity flat plate 1, so that the aluminum column 2 and the high thermal conductivity flat plate 1 fit tightly together, and the heat conduction effect between the aluminum column 2 and the high thermal conductivity flat plate 1 is better.
[0030] Although the present invention has been described above with reference to embodiments, various modifications can be made and components can be replaced with equivalents without departing from the scope of the present invention. In particular, as long as there is no structural conflict, the features in the embodiments disclosed in this invention can be combined with each other in any way. The lack of an exhaustive description of these combinations in this specification is merely for the sake of brevity and resource conservation. Therefore, the present invention is not limited to the specific embodiments disclosed herein, but includes all technical solutions falling within the scope of the claims.
Claims
1. A novel radiator frame structure, comprising heat dissipation fins (3), wherein an aluminum column (2) is welded to the bottom of the heat dissipation fins (3), and a high thermal conductivity flat plate (1) is provided below the aluminum column (2), characterized in that: The high thermal conductivity flat plate (1) is provided with a fixing mechanism, which fixes the aluminum column (2). At the same time, the fixing mechanism has a force to drive the aluminum column (2) to press down, so that the aluminum column (2) is close to the high thermal conductivity flat plate (1). The fixing mechanism includes a support plate assembly integrally set on both sides of the high thermal conductivity flat plate (1). The support plate assembly is composed of two parallel vertical support plates (4). A lifting plate (5) is slidably connected between the two vertical support plates (4). An elastic element is installed between the bottom of the lifting plate (5) and the high thermal conductivity flat plate (1). An L-shaped fixing plate (6) is welded to the top of the lifting plate (5). The top of the aluminum column (2) is integrally provided with a raised edge strip (21), which is inserted into the L-shaped fixing plate (6).
2. The novel radiator frame structure according to claim 1, characterized in that, The top of the high thermal conductivity flat plate (1) is provided with a groove, and the bottom of the aluminum column (2) is inserted into the groove on the top surface of the high thermal conductivity flat plate (1).
3. The novel radiator frame structure according to claim 2, characterized in that, The vertical support plate (4) has a sliding groove (41) on its inner side, and the lifting plate (5) has sliders (51) welded on both outer walls. The inner wall of the sliding groove (41) is slidably connected to the sliders (51).
4. A novel radiator frame structure according to claim 2 or 3, characterized in that, The elastic element is configured as a spring (10), and the upper and lower ends of the spring (10) are respectively connected to the lifting plate (5) and the high thermal conductivity flat plate (1).
5. A novel radiator frame structure according to claim 4, characterized in that, The bottom of the lifting plate (5) is welded with a first mounting plate (7), and the top of the spring (10) is welded with a second mounting plate (8). The first mounting plate (7) and the second mounting plate (8) are provided with internal threaded holes at corresponding positions. The first mounting plate (7) and the second mounting plate (8) are fixed together by bolts.
6. A novel radiator frame structure according to claim 4, characterized in that, The bottom of the spring (10) is welded with a third mounting plate (9). The third mounting plate (9) and the high thermal conductivity flat plate (1) are provided with internal thread holes at corresponding positions. The third mounting plate (9) and the high thermal conductivity flat plate (1) are fixed together by bolts.
Citation Information
Patent Citations
High-strength aluminum radiator
CN217468395U