Multi-station heat pipe performance testing equipment for radiator
By designing a multi-station heat pipe performance testing device, multiple heat pipes can be tested simultaneously, solving the problem of low efficiency of existing equipment and improving the testing efficiency of mass production.
Patent Information
- Application Number
- CN202520189039.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-06
- Publication Date
- 2025-12-16
- Estimated Expiration
- 2035-02-06
AI Technical Summary
Existing heat pipe performance testing equipment can only test one heat pipe at a time, resulting in low work efficiency and failing to meet the needs of mass production.
Design a multi-station heat pipe performance testing device, which includes multiple placement platforms and testing stations. Each testing station is equipped with multiple testing modules to enable simultaneous testing of multiple heat pipes.
It significantly improves testing efficiency, enabling simultaneous testing of multiple heat pipes to meet the needs of mass production. Furthermore, the number of placement platforms and testing stations can be flexibly configured to adapt to different production scales.
Smart Images

Figure CN223678844U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to heat pipe performance testing equipment technical field especially is related to a multi -station heat pipe performance testing equipment for radiator. BACKGROUND
[0002] In the field of radiator manufacturing, the heat dissipation performance of heat pipe has a crucial influence on the overall heat dissipation efficiency. In the heat pipe production process, accurate testing of heat pipe performance is a key step to ensure the quality of the radiator.
[0003] At present, after the production of heat pipe, most of the performance testing equipment is used for testing the performance of heat pipe, and the single heat pipe is placed in the heat pipe performance testing equipment, and then the heat pipe is detected by the testing equipment, so that the performance testing result of the heat pipe is obtained, but the existing heat pipe performance testing equipment can only test one heat pipe at a time, and the working efficiency is relatively low, which cannot meet the demand of mass production.
[0004] Therefore, it is necessary to study a new technical scheme to solve the above problems. UTILITY MODEL CONTENT
[0005] Therefore, the utility model provides a multi -station heat pipe performance testing equipment for radiator.
[0006] In order to achieve the above object, the utility model adopts the following technical scheme:
[0007] A multi -station heat pipe performance testing equipment for radiator, including frame and testing mechanism, at least one group of placing table is equipped on the frame, at least one group of test station is equipped on the placing table, the testing mechanism is equipped on the test station, the testing mechanism is equipped with at least two groups of test module, and multiple groups of test module are distributed on the test station at equal intervals, and are used for the performance detection of heat pipe.
[0008] As further elaboration, the placing table is provided as two groups, and the two groups of placing tables form a stepped structure between them, the test station is provided as four groups, and the four groups of test stations are distributed on the placing table at equal intervals.
[0009] As further elaboration, the placing table is provided as two groups, and the two groups of placing tables form a stepped structure between them, the test station is provided as four groups, and the four groups of test stations are distributed on the placing table at equal intervals.
[0010] As further elaboration, the test module is provided as three groups, and the three groups of test modules are distributed on the test station at equal intervals.
[0011] As a further illustration, the test module comprises a support frame, a first test seat and a second test seat; the support frame is arranged on the test station; the first test seat is fixedly arranged at the bottom end of the support frame; the second test seat is movably arranged at the top end of the support frame, and the second test seat can slide up and down along the extension direction of the support frame; and the first test seat and the second test seat are both provided with test grooves for heat pipe testing.
[0012] As a further illustration, at least one adjusting assembly for adjusting the position of the first test seat is arranged between the first test seat and the support frame.
[0013] As a further illustration, the adjusting assembly comprises a manual handle and a first rotating shaft; the first rotating shaft is rotatably arranged in the support frame, and the top end of the first rotating shaft penetrates through the top end of the support frame and extends to the outside of the support frame; the manual handle is arranged above the support frame and is connected to the top end of the first rotating shaft; the first test seat is fixedly connected to the first rotating shaft; and two groups of first guide columns symmetrically distributed between the first test seat and the support frame are arranged outside the first rotating shaft.
[0014] As a further illustration, the adjusting assembly comprises an adjusting motor and a second rotating shaft; the second rotating shaft is rotatably arranged in the support frame, and the top end of the second rotating shaft penetrates through the top end of the support frame and extends to the outside of the support frame; the adjusting motor is arranged above the support frame, and the output end of the adjusting motor is connected to the top end of the second rotating shaft; the first test seat is fixedly connected to the second rotating shaft; and two groups of second guide columns symmetrically distributed between the second test seat and the support frame are arranged outside the second rotating shaft.
[0015] As a further illustration, a sliding cylinder is arranged between the second test seat and the support frame; the sliding cylinder drives the second test seat to move towards the first test seat along the extension direction of the support frame.
[0016] As a further illustration, at least one locking component is arranged between the first test seat and the support frame; the locking component comprises a locking plate, a first locking screw and a second locking screw; one end of the locking plate is fixed to the first test seat by the first locking screw, and a locking groove is arranged in the locking plate; and the second locking screw penetrates through the locking groove and fixes the other end of the locking plate to the support frame.
[0017] The utility model discloses have obvious advantage and beneficial effect compared with prior art, specifically speaking, from the above technical scheme can know that:
[0018] By setting at least one group of placing tables, and each group of placing tables is provided with a plurality of test stations, and each test station is provided with at least two test modules, the multi-station and multi-module design can test multiple heat pipes at the same time, thereby significantly improving the test efficiency, compared with the traditional equipment which can only test one heat pipe at a time, the working efficiency of the equipment is greatly improved, and the demand of mass production can be better met. Meanwhile, the number of placing tables and test stations of the equipment can be flexibly configured according to actual production needs, whether it is small-scale production or large-scale production, the test demand can be met by adjusting the number of placing tables and test stations to adapt to the requirements of different production scales. BRIEF DESCRIPTION OF DRAWINGS
[0019] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the embodiments or prior art description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0020] Figure 1 The overall structure schematic diagram of the multi-station heat pipe performance test equipment for the radiator is provided.
[0021] Figure 2 The overall structure schematic diagram of the test mechanism is provided.
[0022] Figure 3 The first structure schematic diagram of the test module is provided.
[0023] Figure 4 The second structure schematic diagram of the test module is provided.
[0024] Figure 5 The overall structure schematic diagram of the locking component and the test module is provided.
[0025] Among them, the reference signs in the drawings are:
[0026] 10, rack; 11, placing table; 20, test module; 21, support frame; 22, first test seat; 23, second test seat; 24, test groove; 30, adjusting assembly; 31a, manual handle; 32a, first rotating shaft; 33a, first guide column; 31b, adjusting motor; 32b, second rotating shaft; 33b, second guide column; 34, sliding cylinder; 40, locking component; 41, locking plate; 42, locking groove. DETAILED DESCRIPTION
[0027] In order to make the technical problems, technical solutions and beneficial effects of the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and not to limit the present application.
[0028] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or indirectly connected to the other element.
[0029] It should be understood that the terms "length", "width", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0030] In addition, the terms "first", "second" are only for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise specifically limited.
[0031] In order to make the purpose, technical scheme and advantages of the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments.
[0032] In an embodiment of the present application, as shown in Figures 1-5 A multi-station heat pipe performance testing equipment for a radiator is provided, including a rack 10 and a testing mechanism. The rack 10 is provided with at least one set of placement tables 11. The placement tables 11 are provided with at least one set of test stations. The testing mechanism is arranged on the test stations. The testing mechanism is provided with at least two sets of test modules 20. The multiple sets of test modules 20 are equally spaced on the test stations and are used for performance testing of heat pipes.
[0033] By setting at least one group of placement tables 11, and each group of placement tables 11 is provided with a plurality of test stations, and each test station is equipped with at least two groups of test modules 20, this multi-station, multi-module design enables the device to test multiple heat pipes at the same time, thereby significantly improving the test efficiency. Compared with the traditional device that can only test one heat pipe at a time, the working efficiency of the device has been greatly improved, and the demand for mass production can be better met. At the same time, the number of placement tables 11 and test stations of the device can be flexibly configured according to actual production needs. Whether it is small-scale production or large-scale production, the test demand can be met by adjusting the number of placement tables 11 and test stations to adapt to the requirements of different production scales.
[0034] Preferably, the placement tables 11 are arranged in two groups, and the two groups of placement tables 11 form a stepped structure. The test stations are arranged in four groups, and the four groups of test stations are equally spaced on the placement tables 11. By arranging the placement tables 11 in a stepped structure, the test device can accommodate more test stations in a limited space, and the stepped structure allows the placement tables 11 to be spaced apart, which facilitates the placement of heat pipes and further improves test efficiency. Compared with single-pipe testing devices, the device can better meet the demand for heat pipe performance testing on large-scale production lines.
[0035] In other embodiments, the number of placement tables 11 and the number of test stations can be customized according to actual production needs, such as three groups, four groups, five groups, etc., as long as the production needs can be met.
[0036] Preferably, the placement tables 11 are arranged in two groups. The outer sides of the two groups of placement tables 11 are arranged flush, and the two groups of placement tables 11 form a cabinet structure. The test stations are arranged in four groups, and the four groups of test stations are equally spaced on the placement tables 11. By arranging the placement tables 11 in a cabinet structure, the test device can accommodate more test stations in a limited space, further improving test efficiency. Compared with single-pipe testing devices, the device can better meet the demand for heat pipe performance testing on large-scale production lines.
[0037] In other embodiments, the number of placement tables 11 and the number of test stations can be customized according to actual production needs, such as three groups, four groups, five groups, etc., as long as the production needs can be met.
[0038] Further, the test modules 20 are arranged in three groups, and the three groups of test modules 20 are equally spaced on the test stations. Each test station is provided with three groups of test modules 20, which further increases the number of heat pipes tested at a time, greatly improving test efficiency compared to traditional single-pipe testing, and better meeting the test needs of large-scale production.
[0039] In the remaining embodiments, the number of test modules 20 can be customized according to the actual production needs, such as three groups, four groups, five groups, etc., as long as it can meet the production needs.
[0040] Preferably, the test module 20 comprises a support frame 21, a first test seat 22 and a second test seat 23. The support frame 21 is arranged on the test station. The first test seat 22 is fixedly arranged at the bottom end of the support frame 21. The second test seat 23 is movably arranged at the top end of the support frame 21, and the second test seat 23 can slide up and down along the extension direction of the support frame 21. The test slots 24 for heat pipe testing are arranged between the first test seat 22 and the second test seat 23. During heat pipe testing, the worker places the heat pipe in the test slot 24 of the first test seat 22, and then the second test seat 23 moves downward along the extension direction of the support frame 21 and abuts against the first test seat 22, thereby realizing the performance test of the heat pipe.
[0041] Further, at least one adjustment assembly 30 for adjusting the position of the first test seat 22 is arranged between the first test seat 22 and the support frame 21. By arranging the adjustment assembly 30, the position of the first test seat 22 can be adjusted to adapt to the testing of heat pipes of different specifications, thereby increasing the versatility of the testing equipment.
[0042] In this embodiment, the adjustment assembly 30 used adopts a manual adjustment mode, and the adjustment assembly 30 comprises a manual handle 31a and a first rotating shaft 32a. The first rotating shaft 32a is rotatably arranged in the support frame 21, and the top end of the first rotating shaft 32a penetrates the top end of the support frame 21 and extends to the outside of the support frame 21. The manual handle 31a is arranged above the support frame 21 and is connected to the top end of the first rotating shaft 32a. The first test seat 22 is fixedly connected to the first rotating shaft 32a. Two groups of first guide columns 33a are arranged between the first test seat 22 and the support frame 21. The two groups of first guide columns 33a are arranged outside the first rotating shaft 32a. For the performance test of different heat pipes, the worker rotates the manual handle 31a, which drives the first rotating shaft 32a to rotate, i.e. drives the first test seat 22 to move upward or downward, thereby realizing the position adjustment of the first test seat 22. The position adjustment of the first test seat 22 is simple and fast without complex mechanical operation, and the design of the first guide column 33a ensures the accuracy and stability of the adjustment.
[0043] The adjusting assembly 30 can also adopt an electric adjusting mode. The adjusting assembly 30 comprises an adjusting motor 31b and a second rotating shaft 32b. The second rotating shaft 32b is arranged in the support frame 21 and extends out of the support frame 21 through the top end of the support frame 21. The adjusting motor 31b is arranged above the support frame 21, and the output end of the adjusting motor 31b is connected to the top end of the second rotating shaft 32b. The first test seat 22 is fixedly connected to the second rotating shaft 32b. Two groups of second guide columns 33b are arranged between the second test seat 23 and the support frame 21. The two groups of second guide columns 33b are arranged on the outside of the second rotating shaft 32b. When testing the performance of different heat pipes, the adjusting motor 31b is started to drive the second rotating shaft 32b to rotate, i.e. to drive the first test seat 22 to move upward or downward, so as to automatically adjust the position of the first test seat 22, reduce manual operation, and improve the testing efficiency. At the same time, the design of the second guide columns 33b ensures the accuracy and stability of the adjustment.
[0044] Further, a sliding cylinder 34 is arranged between the second test seat 23 and the support frame 21. The sliding cylinder 34 drives the second test seat 23 to move along the extension direction of the support frame 21 to approach the first test seat 22. By arranging the sliding cylinder 34, the second test seat 23 can quickly and accurately move to the test position, thereby improving the automation degree and efficiency of the test and meeting the test requirements of large-scale production.
[0045] Further, at least one set of locking components 40 is arranged between the first test seat 22 and the support frame 21. The locking components 40 comprise a locking plate 41, a first locking screw (not shown in the figure) and a second locking screw (not shown in the figure). One end of the locking plate 41 is fixed to the first test seat 22 by the first locking screw, and a locking groove 42 is arranged in the locking plate 41. The second locking screw passes through the locking groove 42 and fixes the other end of the locking plate 41 to the support frame 21. By arranging the locking components 40 and fixing the locking plate 41 to the bottom end of the support frame 21 by the second locking screw in the locking components 40, the first test seat 22 is fixedly connected to the bottom end of the support frame 21, which ensures the stability of the first test seat 22 during the test, prevents test errors caused by vibration or misoperation, and further improves the test effect of the heat pipe.
[0046] In the embodiment, the locking components 40 are arranged in two groups, and the two groups of locking components 40 are symmetrically arranged on the two sides of the first test seat 22. The symmetric design of the two groups of locking components 40 enables the two ends of the first test seat 22 to be uniformly stressed, thereby improving the stability of the first test seat 22 during the test and preventing test errors caused by vibration or misoperation.
[0047] The above are only preferred embodiments of the present application, and only the technical principles of the present application are specifically described, and these descriptions are only for explaining the principles of the present application, and cannot be interpreted as limiting the protection scope of the present application in any way. Based on the explanation herein, any modification, equivalent replacement and improvement made within the spirit and principles of the present application, and other specific embodiments of the present application that can be conceived by those skilled in the art without creative labor, should be included in the protection scope of the present application.
Claims
1. A multi-station heat pipe performance testing apparatus for heat spreaders, characterized by, The utility model relates to a heat pipe testing device, including: Rack, at least one group of placement platform is equipped on rack, at least one group of test station is equipped on placement platform; Test mechanism, test mechanism is equipped in test station, test mechanism is equipped with at least two groups of test module, and multiple groups test module are equidistantly distributed on test station, and are used for the performance detection of heat pipe.
2. The multi-station heat pipe performance testing apparatus for heat sinks of claim 1, wherein, The placement platform is provided as two groups, and the two groups of placement platforms form a stepped structure between them. The test station is provided as four groups, and the four groups of test stations are equidistantly distributed on the placement platform.
3. The multi-station heat pipe performance testing apparatus for heat sinks of claim 1, wherein, The placement platform is provided as two groups, and the two groups of placement platforms are flush on the outer side, and form a cabinet structure between them. The test station is provided as four groups, and the four groups of test stations are equidistantly distributed on the placement platform.
4. The multi-station heat pipe performance testing apparatus for heat sinks of claim 1 or 2, wherein, The test module is provided as three groups, and the three groups of test modules are equidistantly provided on the test station.
5. The multi-station heat pipe performance testing apparatus for heat sinks of claim 1, wherein, The test module includes a support frame, a first test seat and a second test seat. The support frame is provided on the test station. The first test seat is fixedly provided at the bottom end of the support frame. The second test seat is movably provided at the top end of the support frame, and can slide up and down along the extension direction of the support frame. The first test seat and the second test seat are both provided with a test groove for heat pipe testing.
6. The multi-station heat pipe performance testing apparatus for heat sinks of claim 5, wherein, The first test seat and the support frame are provided with at least one adjustment assembly for adjusting the position of the first test seat.
7. The multi-station heat pipe performance testing apparatus for heat sinks of claim 6, wherein, The adjustment assembly includes a manual handle and a first rotating shaft. The first rotating shaft is rotatably provided in the support frame, and the top end of the first rotating shaft penetrates the top end of the support frame and extends to the outside of the support frame. The manual handle is provided above the support frame and is connected to the top end of the first rotating shaft. The first test seat is fixedly connected to the first rotating shaft. The first test seat and the support frame are further provided with two symmetrically distributed first guide columns. The two first guide columns are respectively provided on the outside of the first rotating shaft.
8. The multi-station heat pipe performance testing apparatus for heat sinks of claim 6, wherein, The adjustment assembly includes an adjusting motor and a second rotating shaft. The second rotating shaft is rotatably provided in the support frame, and the top end of the second rotating shaft penetrates the top end of the support frame and extends to the outside of the support frame. The adjusting motor is provided above the support frame, and the output end of the adjusting motor is connected to the top end of the second rotating shaft. The first test seat is fixedly connected to the second rotating shaft. The second test seat and the support frame are further provided with two symmetrically distributed second guide columns. The two second guide columns are respectively provided on the outside of the second rotating shaft.
9. The multi-station heat pipe performance testing apparatus for heat sinks of claim 7 or 8, wherein, The second test seat and the support frame are provided with a sliding cylinder. The sliding cylinder drives the second test seat to move towards the first test seat along the extension direction of the support frame.
10. The multi-station heat pipe performance testing apparatus for heat sinks of claim 9, wherein, The first test seat and the support frame are provided with at least one locking component. The locking component includes a locking plate, a first locking screw and a second locking screw. One end of the locking plate is fixed to the first test seat by the first locking screw, and the locking plate has a locking groove. The second locking screw penetrates the locking groove and fixes the other end of the locking plate to the support frame.