An automatic detection device for intelligent converged terminals
By introducing high-temperature and low-temperature barrels into the automated testing device for intelligent fusion terminals, and combining them with rotating clamps and electric push rods, the problems of low button detection efficiency and environmental limitations of intelligent fusion terminals are solved, achieving efficient and automated temperature adaptability testing.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-15
- Publication Date
- 2026-06-23
AI Technical Summary
In existing technologies, the button detection efficiency of intelligent fusion terminals is low and limited to room temperature environments, making it impossible to effectively assess stability and service life under high and low temperatures.
An automated testing device was designed, comprising a high-temperature barrel and a low-temperature barrel. Heating rods and nozzles are used to simulate high-temperature and low-temperature environments, respectively. Automated testing is achieved by combining a rotating clamp and an electric push rod. Stable connection is ensured by clamps and limit wheels. A sealing cover is used to reduce heat loss. A compressor provides cold air to achieve continuous testing.
It improves the detection efficiency and persuasiveness of buttons on intelligent fusion terminals, enables the evaluation of button stability and lifespan at different temperatures, reduces energy consumption, and achieves an automated and efficient detection process.
Smart Images

Figure CN224399585U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of converged terminal testing technology, specifically to an automated testing device for intelligent converged terminals. Background Technology
[0002] The intelligent converged terminal is an intelligent converged terminal device that integrates functions such as power supply and consumption information collection in distribution substations, data collection from electricity meters or collection terminals, equipment status monitoring and communication networking, localized analysis and decision-making, and collaborative computing. The hardware adopts a platform-based design, supports edge computing frameworks, and can achieve flexible functional expansion in a software-defined manner. After the intelligent converged terminal is produced, it needs to be tested by an automated testing device to prevent defective products from entering the market.
[0003] For example, a multi-station intelligent fusion terminal testing stand with the prior art publication number CN219777754U is used. This device facilitates automatic clamping and handling of terminals, which helps to improve the automation level of testing. This device also helps to ensure the safety of terminal output and helps to avoid damage to terminals caused by collisions.
[0004] Currently, intelligent converged terminals often need to work in complex environments, such as outdoor high temperatures and low temperatures in northern winters. The core components of buttons (such as elastic contacts and solder joints) are sensitive to temperature changes. When traditional staff manually press the buttons at room temperature for testing, it is not possible to efficiently test the stability and lifespan of intelligent converged terminal buttons under high and low temperatures, resulting in limitations in testing. Utility Model Content
[0005] Therefore, this utility model provides an automated detection device for intelligent fusion terminals to solve the problems of low button detection efficiency and limited detection in the prior art due to manual operation and a single detection environment.
[0006] To achieve the above objectives, this utility model provides the following technical solution:
[0007] An automated testing device for an intelligent fusion terminal includes a processing table. A high-temperature barrel and a low-temperature barrel are fixedly mounted on the top of the processing table. Detection sockets are fixedly mounted on the inner bottom walls of both the high-temperature barrel and the low-temperature barrel for installing and testing the intelligent fusion terminal. Support plates are fixedly mounted on the inner walls of both the high-temperature barrel and the low-temperature barrel. A fixing block is fixedly mounted on the top of the support plate. Multiple evenly distributed first electric push rods are fixedly inserted through the fixing block. A pressure plate is fixedly mounted at one end of the piston rod of each first electric push rod. A top plate is rotatably mounted at the center of the top of the processing table. Multiple clamps arranged in a circular array are mounted at the bottom of the top plate for conveying the intelligent fusion terminal.
[0008] Furthermore, each of the two support plates is fixedly equipped with a limiting block at its top, and multiple pressure plates pass through the limiting block and extend beyond the outer side of the limiting block to improve the stability of the multiple pressure plates.
[0009] Furthermore, the inner wall of the high-temperature barrel is fixedly provided with a plurality of heating rods arranged in a ring array, and the inner wall of the low-temperature barrel is fixedly embedded with a plurality of nozzles arranged in a ring array.
[0010] Furthermore, both the high-temperature barrel and the low-temperature barrel are fixedly equipped with multiple evenly distributed vertical plates. Each vertical plate is fixed with two vertically distributed limiting wheels, which are in contact with the outer wall of the intelligent fusion terminal. The limiting wheels limit the intelligent fusion terminal, thereby improving the connection stability between the intelligent fusion terminal and the detection socket.
[0011] Furthermore, the clamp includes a second electric push rod fixed to the top of the top plate. The piston rod of each second electric push rod is fitted with a sealing cap on its outer wall to seal the high-temperature barrel and the low-temperature barrel, preventing heat and cold air from dissipating and increasing energy consumption.
[0012] Furthermore, each second electric push rod has a slide rail fixedly installed at the bottom of its piston rod, and a lead screw is rotatably installed inside the slide rail, with two symmetrically distributed clamping plates threaded onto the lead screw.
[0013] Furthermore, a first motor is fixedly installed at the rear end of each slide rail, and the front end of the output shaft of the first motor passes through the slide rail and is fixed to the rear end of the lead screw.
[0014] Furthermore, a through hole is provided at the center of the top of the processing table, and the bottom end of the top plate extends through the through hole and out of the bottom of the processing table. A second motor is fixedly provided at the bottom of the processing table, and the top end of the output shaft of the second motor is fixed to the bottom end of the top plate. The top plate is driven to rotate by the second motor, thereby improving the detection efficiency of the intelligent fusion terminal.
[0015] Furthermore, a compressor is fixedly installed at the rear end of the processing table. The compressor is connected to multiple nozzles through air pipes for automatically delivering cold air, thereby improving the testing efficiency.
[0016] Furthermore, the bottom of the processing table is fixed with multiple support legs arranged in a circular array, and each support leg has a fixing hole at its bottom. The design of multiple fixing holes can improve the stability of the processing table when it is placed.
[0017] This utility model has the following advantages:
[0018] This invention utilizes a rotating top plate and clamps to automatically transport intelligent fusion terminals for continuous testing, thereby improving testing efficiency. High-temperature and low-temperature barrels are installed on the processing table, and pressure plates inside these barrels automatically test the stability and lifespan of the intelligent fusion terminal buttons at different temperatures, thus enhancing the persuasiveness of the testing.
[0019] In addition, by fitting a sealing cover onto the piston rod of the second electric push rod, when the second electric push rod automatically inserts the intelligent fusion terminal into the detection socket, the bottom of the sealing cover contacts the top of the high-temperature barrel and the low-temperature barrel, thus achieving a sealing effect. This reduces the dissipation of heat and cold air, thereby achieving energy saving. Attached Figure Description
[0020] To more clearly illustrate the embodiments of this utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings in the following description are merely exemplary, and those skilled in the art can derive other embodiments based on the provided drawings without creative effort.
[0021] The structures, proportions, sizes, etc. illustrated in this specification are only for the purpose of assisting those skilled in the art in understanding and reading the content disclosed herein, and are not intended to limit the implementation conditions of this utility model. Therefore, they have no substantial technical significance. Any modifications to the structure, changes in the proportions, or adjustments to the size, without affecting the effects and objectives that this utility model can produce, should still fall within the scope of the technical content disclosed in this utility model.
[0022] Figure 1 A schematic diagram of the overall structure of this utility model;
[0023] Figure 2 A cross-sectional view of the high-temperature barrel provided for this utility model;
[0024] Figure 3 A cross-sectional view of the cryogenic tank provided for this utility model;
[0025] Figure 4 This is a schematic diagram of the pressure plate movement detection provided by this utility model;
[0026] Figure 5 A cross-sectional view of the slide rail provided by this utility model;
[0027] Figure 6 A bottom view of the overall structure of this utility model.
[0028] In the diagram: 1. Processing table; 2. High-temperature barrel; 3. Low-temperature barrel; 4. Detection socket; 5. Support plate; 6. Fixing block; 7. First electric push rod; 8. Pressure plate; 9. Top plate; 10. Clamp; 11. Limiting block; 12. Heating rod; 13. Nozzle; 14. Vertical plate; 15. Limiting wheel; 16. Through hole; 17. Second motor; 18. Compressor; 19. Support leg; 20. Fixing hole; 101. Second electric push rod; 102. Sealing cover; 103. Slide rail; 104. Lead screw; 105. Clamping plate; 106. First motor. Detailed Implementation
[0029] The following specific embodiments illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0030] Refer to the instruction manual Figures 1-6 This utility model provides an automated testing device for an intelligent fusion terminal, including a processing table 1. A high-temperature barrel 2 and a low-temperature barrel 3 are fixedly mounted on the top of the processing table 1. Detection sockets 4 are fixedly mounted on the bottom inner walls of both the high-temperature barrel 2 and the low-temperature barrel 3 for installing intelligent fusion terminals for testing. Support plates 5 are fixedly mounted on the inner walls of both the high-temperature barrel 2 and the low-temperature barrel 3. Fixing blocks 6 are fixedly mounted on the top of the support plates 5. Multiple evenly distributed first electric push rods 7 are fixedly passed through the inside of the fixing blocks 6. A pressure plate 8 is fixedly mounted on one end of the piston rod of each first electric push rod 7. Limiting blocks 11 are fixedly mounted on the top of both support plates 5. Multiple pressure plates 8 pass through the limiting blocks 11 and extend outward from the outside of the limiting blocks 11.
[0031] Multiple heating rods 12 arranged in a ring array are fixedly installed on the inner wall of the high-temperature barrel 2. Multiple nozzles 13 arranged in a ring array are fixedly embedded on the inner wall of the low-temperature barrel 3. A compressor refrigeration unit 18 is fixedly installed at the rear end of the processing table 1. The compressor refrigeration unit 18 is connected to the multiple nozzles 13 through a gas pipe. The compressor refrigeration unit 18 relies on the compressor to compress the refrigerant and do work, driving the refrigerant to circulate and change phase in the system, thereby realizing the refrigeration equipment of "absorbing heat from the low-temperature heat source and releasing heat to the high-temperature heat source".
[0032] A top plate 9 is rotatably mounted at the center of the top of the processing table 1. Multiple clamps 10 arranged in a circular array are mounted at the bottom of the top plate 9 for conveying intelligent fusion terminals.
[0033] like Figure 3 and Figure 5As shown, the clamp 10 includes a second electric push rod 101 fixed to the top of the top plate 9. Each second electric push rod 101 has a sealing cover 102 fitted on the outer wall of its piston rod for sealing the high-temperature barrel 2 and the low-temperature barrel 3. Each second electric push rod 101 has a slide rail 103 fixed at the bottom end of its piston rod. A lead screw 104 is rotatably mounted inside the slide rail 103. Two symmetrically distributed clamping plates 105 are threaded onto the lead screw 104. The threads of the two clamping plates 105 and the lead screw 104 are opposite in direction, so that the two clamping plates 105 move synchronously and in opposite directions, thereby adjusting the spacing. A first motor 106 is fixed at the rear end of each slide rail 103. The front end of the output shaft of the first motor 106 passes through the slide rail 103 and is fixed to the rear end of the lead screw 104.
[0034] In actual use, multiple clamps 10 at the bottom of the top plate 9 clamp the intelligent fusion terminal and rotate it on the processing table 1, sequentially conveying multiple intelligent fusion terminals into the high-temperature barrel 2 and the low-temperature barrel 3. When the intelligent fusion terminal is moved into the high-temperature barrel 2 by the clamps 10, the second electric push rod 101 extends to drive the slide rail 103 to move the intelligent fusion terminal down, automatically inserting the interface at the bottom of the intelligent fusion terminal into the detection socket 4, and connecting the intelligent fusion terminal with the detection socket 4. At the same time, the sealing cover 102 on the second electric push rod 101 covers the top of the high-temperature barrel 2 to seal it. Subsequently, multiple heating rods 12 on the inner wall of the high-temperature barrel 2 heat up to increase the temperature inside the high-temperature barrel 2. Meanwhile, the first electric push rod 7 on the fixing block 6 drives the pressure plate 8 to move towards the intelligent fusion terminal, thereby pressing the corresponding button on the intelligent fusion terminal. If the intelligent fusion terminal responds when the button is pressed, it means that the button is normal; otherwise, the button is not normal. By pressing the button multiple times with the first electric push rod 7, the service life of the button can be tested.
[0035] After the test, the intelligent fusion terminal is moved out of the high-temperature tank 2 using the rotating top plate 9, and then moved between the high-temperature tank 2 and the low-temperature tank 3, allowing the temperature of the intelligent fusion terminal to gradually decrease to room temperature. At this time, the next intelligent fusion terminal is moved into the high-temperature tank 2 for testing. Afterward, the intelligent fusion terminal with the decreased temperature is moved into the low-temperature tank 3. Unlike the testing in the high-temperature tank 2, the low-temperature tank 3 uses cold air sprayed from the nozzle 13 to create a low-temperature environment, thereby testing the usability of the intelligent fusion terminal button in a low-temperature environment. In this embodiment, the intelligent fusion terminal is automatically transported by the rotating top plate 9 and the clamp 10, thereby realizing automatic continuous testing, improving testing efficiency, and setting up high-temperature tank 2 and low-temperature tank 3, so as to test the stability and service life of the intelligent fusion terminal button under different temperatures.
[0036] Refer to the instruction manual Figure 2 and Figure 3Both the high-temperature barrel 2 and the low-temperature barrel 3 are fixedly provided with multiple evenly distributed vertical plates 14. Each vertical plate 14 is fixedly provided with two vertically distributed limiting wheels 15, and the limiting wheels 15 are in contact with the outer wall of the intelligent fusion terminal. The limiting wheels 15 play a limiting role for the intelligent fusion terminal, thereby improving the connection stability between the intelligent fusion terminal and the detection socket 4.
[0037] like Figure 6 As shown, a through hole 16 is provided at the center of the top of the processing table 1. The bottom end of the top plate 9 passes through the through hole 16 and extends out of the bottom of the processing table 1. A second motor 17 is fixedly provided at the bottom of the processing table 1. The top end of the output shaft of the second motor 17 is fixed to the bottom end of the top plate 9. The top plate 9 is driven to rotate by the second motor 17, which can improve the detection efficiency of the intelligent fusion terminal.
[0038] The bottom of the processing table 1 is fixed with multiple support legs 19 arranged in a circular array, and each support leg 19 has a fixing hole 20 at its bottom; the design of multiple fixing holes 20 can improve the stability of the processing table 1 when it is placed.
[0039] Although the present invention has been described in detail above with general descriptions and specific embodiments, some modifications or improvements can be made to it, which will be obvious to those skilled in the art. Therefore, all such modifications or improvements made without departing from the spirit of the present invention fall within the scope of protection claimed by the present invention.
Claims
1. An automatic detection device of intelligent converged terminal, comprising a processing table (1), characterized in that, The processing table (1) is fixedly equipped with a high temperature barrel (2) and a low temperature barrel (3) on the top. The bottom inner wall of the high temperature barrel (2) and the bottom inner wall of the low temperature barrel (3) are both fixedly equipped with detection sockets (4) for installing intelligent fusion terminals for detection. The inner walls of the high-temperature barrel (2) and the low-temperature barrel (3) are both fixedly provided with support plates (5). The top of the support plate (5) is fixedly provided with a fixing block (6). Multiple evenly distributed first electric push rods (7) are fixedly passed through the inside of the fixing block (6). A pressure plate (8) is fixedly provided at one end of the piston rod of each first electric push rod (7). The processing table (1) has a top plate (9) at the center of its top, and the bottom of the top plate (9) has multiple clamps (10) arranged in a ring array for conveying intelligent fusion terminals.
2. The automated detection device of the intelligent converged terminal according to claim 1, wherein, Both support plates (5) are fixed with limit blocks (11) at the top, and multiple pressure plates (8) pass through the limit blocks (11) and extend out of the limit blocks (11).
3. The automated detection apparatus of the intelligent converged terminal according to claim 1, wherein, The high-temperature barrel (2) has multiple heating rods (12) arranged in a ring array fixedly on its inner wall, and the low-temperature barrel (3) has multiple nozzles (13) arranged in a ring array fixedly embedded in its inner wall.
4. The automated detection apparatus of the intelligent converged terminal according to claim 1, wherein, Both the high-temperature barrel (2) and the low-temperature barrel (3) are fixedly provided with multiple evenly distributed vertical plates (14). Each vertical plate (14) is fixedly provided with two vertically distributed limiting wheels (15), and the limiting wheels (15) are in contact with the outer wall of the intelligent fusion terminal.
5. The automated detection apparatus of the intelligent converged terminal according to claim 1, wherein, The clamp (10) includes a second electric push rod (101) fixed to the top of the top plate (9). The piston rod outer wall of each second electric push rod (101) is fitted with a sealing cap (102) for sealing the high temperature barrel (2) and the low temperature barrel (3).
6. The automated detection apparatus of the intelligent converged terminal according to claim 5, wherein, Each second electric push rod (101) has a slide rail (103) fixedly installed at the bottom of the piston rod. A lead screw (104) is rotatably installed inside the slide rail (103). Two symmetrically distributed clamps (105) are threaded onto the lead screw (104).
7. The automated detection apparatus of the intelligent converged terminal according to claim 6, wherein, Each slide rail (103) is fixedly equipped with a first motor (106) at its rear end. The front end of the output shaft of the first motor (106) passes through the slide rail (103) and is fixed to the rear end of the lead screw (104).
8. The automated detection device for the intelligent fusion terminal as described in claim 1, characterized in that, A through hole (16) is provided at the center of the top of the processing table (1). The bottom end of the top plate (9) passes through the through hole (16) and extends out of the bottom of the processing table (1). A second motor (17) is fixedly provided at the bottom of the processing table (1). The top end of the output shaft of the second motor (17) is fixed to the bottom end of the top plate (9).
9. The automated detection device for the intelligent fusion terminal as described in claim 3, characterized in that, The processing table (1) is fixedly equipped with a compressor (18) at the rear end, and the compressor (18) is connected to multiple nozzles (13) through an air pipe.
10. The automated detection device for the intelligent fusion terminal as described in claim 1, characterized in that, The bottom of the processing table (1) is fixed with multiple support legs (19) arranged in a ring array, and each support leg (19) has a fixing hole (20) at its bottom.
Citation Information
Patent Citations
Multi-station area intelligent fusion terminal detection rack
CN219777754U