High-temperature detection device
By combining a rotating placement mechanism with a temperature monitoring probe, the problems of uneven heating and low space utilization in the testing of high-temperature resistant materials are solved, achieving uniform heating and real-time temperature monitoring, thus improving testing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CIVIL AVIATION FLIGHT UNIV OF CHINA
- Filing Date
- 2023-10-10
- Publication Date
- 2026-04-24
AI Technical Summary
Existing high-temperature resistant material testing devices suffer from uneven heating due to uneven material placement and low space utilization.
Employing a rotating placement mechanism and a high-temperature resistant temperature monitoring probe, the fan-shaped plate is rotated by a motor-driven shaft. Combined with a stable track and a heating output end, this achieves uniform heating of the material and efficient space utilization.
It achieves uniform heating of materials and efficient space utilization, improves detection efficiency, and monitors temperature in real time through a temperature monitoring probe.
Smart Images

Figure CN224163450U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of high temperature resistance testing technology for composite materials, specifically a high temperature testing device. Background Technology
[0002] High-temperature resistant composite materials are materials that are resistant to high temperatures, oxidation, and corrosion. They are widely used in the aerospace field and are suitable for manufacturing important load-bearing structural components. High-temperature resistant materials include high-temperature alloys, refractory alloys, and ceramic materials.
[0003] When conducting high-temperature resistance tests on high-temperature resistant materials, the materials are placed directly into a simple high-temperature testing tank for testing. However, the space utilization inside the tank is low, and uneven heating is likely to occur when the material is placed statically. Utility Model Content
[0004] In view of the problems existing in the prior art, this utility model discloses a high-temperature detection device. The technical solution adopted includes a heater and a motor, both of which are common devices on the market. The heater is a high-temperature heating device. Other components include a base plate, a detection tank, a right-side bracket, an operating table, a pick-up and drop-off point, a heat insulation enclosure, a rotating mounting base, a rotating placement mechanism, an inner convex plate, a heating mounting frame, a lower V-shaped baffle, a heating output end, a heat insulation mounting chamber, a mounting column, and a high-temperature resistant temperature monitoring probe. The detection tank is located on the left side of the base plate, and the operating table is mounted on the right side via the right-side bracket. The entire base plate is made of heat-insulating material to prevent heat transfer to the right-side bracket from affecting the normal operation of the operating table. A heater is installed on the outer wall of the testing tank, and a motor is installed on the top. There is a pick-up and drop-off point on the front of the testing tank, which is insulated and sealed. This part is detachable for picking up and dropping the material to be tested. A rotating mounting base is fixed at the bottom of the testing tank, and a rotating placement mechanism is installed on it. The rotating placement mechanism is driven by a motor. When the motor starts, the rotating placement mechanism rotates the material placed on it inside the tank to ensure uniform heating. There is an inner convex plate protruding from the inner wall of the testing tank. The inner convex plate is interrupted at the pick-up and drop-off point. Heating mounting frames are evenly distributed on its inner side. The lower surface of the heating mounting frame has an integrally formed lower V-shaped baffle with a downward opening. The heating output end is installed in the heating mounting frame, which is the output end of the heater.
[0005] As a preferred technical solution of this utility model, the heat insulation seal is a double-layer sealed structure, which consists of an inner heat insulation sealing plate and an outer heat insulation sealing plate. A handle is fixed on the outer side of the inner heat insulation sealing plate, and a heat insulation film is fitted on the handle.
[0006] As a preferred technical solution of this utility model, the rotating placement mechanism includes a rotating shaft, an I-shaped rod, a sector plate, a side guard, and a front through hole. The lower end of the rotating shaft is rotatably installed in a rotating mounting base, and the upper end is connected to the motor output end. The upper and lower sides of the rotating shaft are integrally formed with I-shaped rods arranged in a circumferential array. The two sides of the sector plate are located in the recessed part of the I-shaped rod, and a ring of side guards is fixed on its upper surface. The front side guard has a front through hole. By placing the material on the rotating placement mechanism, the space utilization rate inside the tank is improved, and the material is heated evenly under rotation.
[0007] As a preferred technical solution of this utility model, a stable track is integrally formed on the inner wall of the testing tank, and the stable track is partially interrupted at the pick-up and drop-off point.
[0008] As a preferred technical solution of this utility model, a through hole is opened at the outer end of the fan-shaped plate.
[0009] The beneficial effects of this utility model are as follows: the material to be tested is placed on the sector plate, and the space utilization rate inside the test can be greatly improved by the upper and lower layers of sector plates. During the heating process, the drive motor drives the rotating shaft to rotate, so that the sector plate placed in the groove of the I-shaped rod carries the material and rotates in the tank to maintain uniform heating. The rotation is also kept stable by the stable track. At the same time, the high temperature monitoring probe installed inside can also monitor the internal temperature. Attached Figure Description
[0010] Figure 1 This is a schematic diagram of the structure of this utility model;
[0011] Figure 2 This is a schematic diagram of the front structure of this utility model;
[0012] Figure 3 This is a schematic cross-sectional view of the right side of the testing tank of this utility model.
[0013] In the diagram: 1. Base plate; 2. Detection tank; 3. Right side bracket; 4. Operating table; 5. Heater; 6. Motor; 7. Pick-up and drop-off point; 71. Inner heat insulation sealing plate; 72. Handle; 73. Outer heat insulation sealing plate; 8. Heat insulation seal; 9. Rotating shaft; 10. I-shaped rod; 11. Fan-shaped plate; 12. Rotating mounting base; 13. Side protective barrier; 14. Front through hole; 111. Stabilizing rail; 112. Through hole; 15. Inner convex plate; 16. Heating mounting frame; 161. Lower V-shaped baffle; 162. Heating output end; 17. Heat insulation mounting chamber; 18. Mounting column; 19. High temperature resistant temperature monitoring probe. Detailed Implementation
[0014] Example 1
[0015] like Figures 1 to 3As shown, this utility model discloses a high-temperature detection device. The technical solution adopted includes a heater 5 and a motor 6. Other components include a base plate 1, a detection tank 2, a right-side bracket 3, an operating table 4, a pick-up and drop-off area 7, a heat-insulating seal 8, a rotating mounting base 12, a rotating placement mechanism, an inner convex plate 15, a heating mounting frame 16, a lower V-shaped baffle 161, a heating output end 162, a heat-insulating mounting chamber 17, a mounting column 18, and a high-temperature resistant temperature monitoring probe 19. The detection tank 2 is located on the left side of the base plate 1, and the operating table 4 is mounted on the right side via the right-side bracket 3. The outer wall of the detection tank 2... A heater 5 is installed on the top, and a motor 6 is installed on the top. A pick-up and put-away area 7 is opened on the front side of the test tank 2, and a heat insulation seal 8 is set at this point. A rotating mounting base 12 is fixed at the bottom inside the test tank 2, and a rotating placement mechanism is installed on it. The mechanism is driven by the motor 6. An inner convex plate 15 protrudes from the inner wall of the test tank 2. The inner convex plate 15 is interrupted at the pick-up and put-away area 7. Heating mounting frames 16 are evenly distributed on its inner side. A lower V-shaped baffle 161 with a lower opening is integrally formed on the lower surface of the heating mounting frame 16. A heating output end 162 is installed in the heating mounting frame 16, which is the output end of the heater 5.
[0016] As a preferred technical solution of this utility model, the heat insulation seal 8 has a double-layer structure, specifically composed of an inner heat insulation sealing plate 71 and an outer heat insulation sealing plate 73, wherein a handle 72 is fixed on the outer side of the inner heat insulation sealing plate 71.
[0017] As a preferred technical solution of this utility model, the rotating placement mechanism is configured such that the lower end of the rotating shaft 9 is rotatably installed in the rotating mounting base 12, and the upper end is connected to the output end of the motor 6. The upper and lower sides of the rotating shaft 9 are integrally formed with I-shaped rods 10 arranged in a circumferential array. The two sides of the fan-shaped plate 11 are located in the recessed part of the I-shaped rod 10, and a ring of side protective blocks 13 is fixed on its upper surface. The front side protective block 13 has a front through hole 14.
[0018] As a preferred technical solution of this utility model, a stable track 111 is integrally formed on the inner wall of the testing tank 2, and the stable track 111 is interrupted at the pick-up and put-down point 7.
[0019] As a preferred technical solution of this utility model, a through hole 112 is opened at the outer end of the fan-shaped plate 11, so that it can be pulled outward by a hook for easy handling.
[0020] The working principle of this utility model is as follows: When in use, the material to be tested is placed on the sector plate 11. The sector plates 11 arranged in upper and lower layers can greatly improve the space utilization rate inside the test. During the heating process, the drive motor 6 drives the rotating shaft 9 to rotate, so that the sector plate 11 placed in the groove of the I-shaped rod 10 carries the material and rotates inside the tank to maintain uniform heating. The rotation is also maintained by the stable track 111. At the same time, the high temperature monitoring probe 19 installed inside can also monitor the internal temperature.
[0021] Components not described in detail in this article are existing technologies.
[0022] While the specific embodiments of this utility model have been described in detail above, this utility model is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of this utility model. Modifications or variations that do not involve creative labor are still within the protection scope of this utility model.
Claims
1. A high-temperature detection device, comprising a heater (5) and a motor (6), characterized in that: The system includes a base plate (1), a testing tank (2), a right-side bracket (3), an operating table (4), a pick-up and drop-off area (7), a heat-insulating enclosure (8), a rotating mounting base (12), a rotating placement mechanism, an inner convex plate (15), a heating mounting frame (16), a lower V-shaped baffle (161), a heating output end (162), a heat-insulating mounting chamber (17), a mounting column (18), and a high-temperature resistant temperature monitoring probe (19). The left side of the base plate (1) is the testing tank (2), and the right side is mounted on the operating table (4) via the right-side bracket (3). A heater (5) is installed on the outer wall of the testing tank (2), and a motor (6) is installed on the top. The front of the test tank (2) has a pick-up and put-out area (7) and a heat insulation seal (8) is set there; the bottom of the test tank (2) is fixed with a rotating mounting base (12), and a rotating placement mechanism is installed on it, which is driven by a motor (6); the inner wall of the test tank (2) has an inner convex plate (15), which is interrupted at the pick-up and put-out area (7), and a heating mounting frame (16) is evenly distributed on its inner side; the lower surface of the heating mounting frame (16) is integrally formed with a lower V-shaped baffle (161) with a lower opening, and a heating output end (162) is installed in the heating mounting frame (16), which is the output end of the heater (5).
2. The high-temperature detection device according to claim 1, characterized in that: The heat insulation seal (8) consists of an inner heat insulation seal plate (71) and an outer heat insulation seal plate (73), wherein a handle (72) is fixed on the outer side of the inner heat insulation seal plate (71).
3. The high-temperature detection device according to claim 1, characterized in that: The rotating placement mechanism includes a rotating shaft (9), an I-shaped rod (10), a fan-shaped plate (11), a side guard (13), and a front through hole (14); the lower end of the rotating shaft (9) is rotatably installed in the rotating mounting base (12), and the upper end is connected to the output end of the motor (6); the upper and lower sides of the rotating shaft (9) are integrally formed with I-shaped rods (10) arranged in a circumferential array; the two sides of the fan-shaped plate (11) are located in the recessed part of the I-shaped rod (10), and a ring of side guards (13) is fixed on its upper surface, wherein the front side guard (13) has a front through hole (14).
4. The high-temperature detection device according to claim 3, characterized in that: The inner wall of the testing tank (2) is integrally formed with a stable track (111), which is partially interrupted at the pick-up and drop-off point (7).
5. A high-temperature detection device according to claim 3, characterized in that: A through hole (112) is provided at the outer end of the fan-shaped plate (11).