Electron accelerator beam signal monitoring device
By installing a cooling mechanism and air-cooling components on the Faraday cylinder monitor, and utilizing cooling pipes to circulate cold water and fans to blow air, the thermal fatigue and oxidation problems caused by heat accumulation in the Faraday cylinder monitor are solved, thereby improving monitoring accuracy and lifespan.
Patent Information
- Application Number
- CN202520578404.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-31
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2035-03-31
AI Technical Summary
During use, Faraday cylinder monitors suffer from thermal fatigue and oxidation due to heat accumulation, which affects monitoring accuracy and lifespan.
An electron accelerator beam signal monitoring device was designed, which includes a cooling mechanism and an air-cooled component. The device uses a water pump to drive the cooling pipes to circulate cold water and an exhaust fan to blow air, thereby reducing the temperature of the Faraday cylinder monitor.
This effectively reduced the temperature of the Faraday cylinder monitor, improving monitoring accuracy and service life.
Smart Images

Figure CN223978952U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electron accelerator technology, specifically to an electron accelerator beam signal monitoring device. Background Technology
[0002] The beam signal monitoring device for electron accelerators is a key technology in the field of particle accelerators. In particle accelerators, accurate monitoring of the beam signal is crucial to ensuring the stable operation of the accelerator and the accuracy of experimental data.
[0003] Faraday tube monitors, a common device for monitoring beam signals in electron accelerators, are widely used in various particle accelerator systems. They receive beam particles, convert them into current signals, and thus achieve real-time monitoring of beam intensity. However, during use, the Faraday tube monitor generates heat when beam particles impact the inner wall of the Faraday tube. This heat accumulates over time, gradually raising the temperature of the monitor material. This continuous heat accumulation can lead to thermal fatigue of the material. Furthermore, heat accumulation can also trigger oxidation reactions in the material. In high-temperature environments, the monitor material is prone to reacting with oxygen in the air to form oxides. These oxides can not only alter the original properties of the material but also interfere with the measurement accuracy of the monitor.
[0004] Therefore, in order to address the above problems, the applicant needs to design an electron accelerator beam signal monitoring device to solve the problem. Summary of the Invention
[0005] The purpose of this invention is to provide an electron accelerator beam signal monitoring device to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: an electron accelerator beam signal monitoring device, comprising a base, and a Faraday cylinder monitor for monitoring the electron beam current value is disposed above the base.
[0007] It also includes: a cooling mechanism disposed above the base for cooling, the cooling mechanism comprising a water storage tank, and a connecting pipe fixedly connected to one side of the water storage tank, a water pump fixedly connected to the end of the connecting pipe away from the water storage tank, and an extension pipe fixedly connected to the outlet end of the water pump, a cooling pipe fixedly connected to the end of the extension pipe away from the water pump, and the cooling pipe being located above the Faraday cylinder monitor, a return pipe fixedly connected to the end of the cooling pipe away from the extension pipe, and the end of the return pipe away from the cooling pipe being fixedly connected to the water storage tank;
[0008] An air-cooled component is located above the Faraday cylinder monitor and is used to blow air.
[0009] Furthermore, a fixing bracket is fixedly installed on the cooling pipe, and the fixing bracket is fixedly connected to the Faraday cylinder monitor.
[0010] The above structural design allows for easy installation of cooling pipes using a fixed bracket, preventing the cooling pipes from shifting and ensuring strong stability.
[0011] Furthermore, the air-cooling component includes a support plate, which is fixedly connected to a mounting bracket. An exhaust fan is fixedly mounted on the support plate and is used to blow air.
[0012] With the above structural design, the exhaust fan can easily blow air through the protective cover during use, thus improving cooling efficiency.
[0013] Furthermore, a reinforcing frame is fixedly installed on the support plate, and the reinforcing frame is fixedly connected to the fixing frame.
[0014] The above structural design utilizes a reinforcing frame to facilitate support of the support plate, thereby improving the stability of the support plate.
[0015] Furthermore, a protective cover is fixedly installed on the Faraday cylinder monitor, and an air outlet is provided on the protective cover, with a filter screen installed inside the air outlet.
[0016] Through the above structural design, the protective cover can easily protect the internal pipes, and the filter screen can easily prevent external debris from entering the protective cover, thus ensuring high safety.
[0017] Furthermore, a stabilizing base is fixedly installed on the bottom surface of the water pump, and the bottom surface of the stabilizing base is fixedly connected to the top surface of the base.
[0018] The above structural design utilizes a stable base to easily support the water pump, thereby improving the stability and steadiness of the water pump during use.
[0019] Furthermore, a water inlet pipe is fixedly connected to one side of the water storage tank, and the water inlet pipe is connected to an external water source.
[0020] The above structural design allows for easy input of external cold water into the water storage tank via the inlet pipe, facilitating the replenishment of the water inside the tank.
[0021] Compared with the prior art, the beneficial effects of this utility model are: the electron accelerator beam signal monitoring device is easy to cool down, thereby improving the service life and monitoring accuracy of the monitoring device, as detailed below:
[0022] When the electron accelerator beam signal monitoring device is in use, the water pump is started. The water pump draws cold water from the storage tank and enters the extension pipe through the connecting pipe. The cold water in the extension pipe enters the cooling pipe under pressure. The cold water in the cooling pipe enters the storage tank through the return pipe under water pressure, realizing the circulation of cold water. This helps to reduce the temperature around and inside the Faraday cylinder monitor, thereby improving the performance and service life of the Faraday cylinder monitor.
[0023] When the electron accelerator beam signal monitoring device is in use, the exhaust fan is activated simultaneously with the cooling mechanism. The exhaust fan blows air through the protective cover, and the airflow circulates with the outside air through the air outlet, which helps to reduce the ambient temperature around the Faraday cylinder monitor, thereby improving the performance and service life of the Faraday cylinder monitor. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall three-dimensional structure of the present invention;
[0025] Figure 2 This is a schematic diagram of the internal structure of the protective cover of this utility model;
[0026] Figure 3 This is a three-dimensional structural diagram of the cooling mechanism of this utility model;
[0027] Figure 4 This utility model Figure 3 Enlarged structural diagram at point A;
[0028] Figure 5 This is a three-dimensional structural diagram of the air-cooled component of this utility model.
[0029] In the diagram: 1. Base; 2. Cooling mechanism; 3. Air-cooled component; 10. Faraday cylinder monitor; 11. Protective cover; 12. Air outlet; 20. Water tank; 21. Connecting pipe; 22. Water pump; 23. Extension pipe; 24. Cooling pipe; 25. Return pipe; 26. Water inlet pipe; 27. Fixing frame; 230. Stabilizing base; 30. Support plate; 31. Exhaust fan; 32. Reinforcing frame. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0031] like Figures 1-5As shown, this utility model discloses an electron accelerator beam signal monitoring device, including a base 1, with a Faraday cylinder monitor 10 for monitoring the electron beam current value disposed above the base 1. It also includes a cooling mechanism 2 disposed above the base 1 for cooling, comprising a water tank 20, with a connecting pipe 21 fixedly connected to one side of the water tank 20. A water pump 22 is fixedly connected to the end of the connecting pipe 21 away from the water tank 20, and an extension pipe 23 is fixedly connected to the outlet end of the water pump 22. A cooling pipe 24 is fixedly connected to the end of the extension pipe 23 away from the water pump 22, and the cooling pipe 24 is located above the Faraday cylinder monitor 10. The end of the cooling pipe 24 away from the extension pipe 23 is fixedly connected to the return pipe 25, and the end of the return pipe 25 away from the cooling pipe 24 is fixedly connected to the water storage tank 20. A fixing bracket 27 is fixedly installed on the cooling pipe 24, and the fixing bracket 27 is fixedly connected to the Faraday cylinder monitor 10. A protective cover 11 is fixedly installed on the Faraday cylinder monitor 10. An air outlet 12 is provided on the protective cover 11, and a filter screen is provided inside the air outlet 12. A stabilizing base 230 is fixedly installed on the bottom surface of the water pump 22, and the bottom surface of the stabilizing base 230 is fixedly connected to the top surface of the base 1. A water inlet pipe 26 is fixedly connected to one side of the water storage tank 20, and the water inlet pipe 26 is connected to an external water source.
[0032] With the above structural design, when in use, the water pump 22 is started, and the water pump 22 draws cold water from the water storage tank 20 into the extension pipe 23 through the connecting pipe 21. The cold water in the extension pipe 23 enters the cooling pipe 24 under pressure, and the cold water in the cooling pipe 24 enters the water storage tank 20 through the return pipe 25 under water pressure, thus realizing the circulation of cold water. This helps to reduce the temperature around and inside the Faraday cylinder monitor 10, thereby improving the performance and service life of the Faraday cylinder monitor 10.
[0033] The air-cooling component 3 is located above the Faraday cylinder monitor 10 and is used to blow air. The air-cooling component 3 includes a support plate 30 and is fixedly connected to the fixing frame 27. An exhaust fan 31 is fixedly installed on the support plate 30 and is used to blow air. A reinforcing frame 32 is fixedly installed on the support plate 30 and is fixedly connected to the fixing frame 27.
[0034] With the above structural design, when the cooling mechanism 2 is in use, the exhaust fan 31 is activated simultaneously. The exhaust fan 31 blows the air inside the protective cover 11. The flowing air circulates with the outside air through the air outlet 12, which helps to reduce the ambient temperature around the Faraday cylinder monitor 10, thereby improving the performance and service life of the Faraday cylinder monitor 10.
[0035] Working principle: When using the electron accelerator beam signal monitoring device, the water pump 22 is started. The water pump 22 draws cold water from the water storage tank 20 and enters the extension pipe 23 through the connecting pipe 21. Under pressure, the cold water in the extension pipe 23 enters the cooling pipe 24. Under water pressure, the cold water in the cooling pipe 24 enters the water storage tank 20 through the return pipe 25, realizing the circulation of cold water. This helps to reduce the temperature around and inside the Faraday cylinder monitor 10. At the same time, the exhaust fan 31 is started. The exhaust fan 31 blows the air inside the protective cover 11. The flowing air circulates with the outside air through the air outlet 12, which helps to reduce the ambient temperature around the Faraday cylinder monitor 10, thereby improving the performance and service life of the Faraday cylinder monitor 10.
[0036] Based on the above-described preferred embodiments of this utility model, and through the foregoing description, those skilled in the art can make various changes and modifications without departing from the technical concept of this utility model. The technical scope of this utility model is not limited to the contents of the specification, but must be determined according to the scope of the claims.
Claims
1. An electron accelerator beam signal monitoring device, comprising a base (1), and a Faraday cup monitor (10) for monitoring the electron beam current value is arranged above the base (1), characterized in that Further comprising: A cooling mechanism (2) arranged above the base (1) for cooling, the cooling mechanism (2) comprises a water storage tank (20), and one side of the water storage tank (20) is fixedly connected with a connecting pipeline (21), one end of the connecting pipeline (21) away from the water storage tank (20) is fixedly connected with a water pump (22), and the water outlet end of the water pump (22) is fixedly connected with an extension pipeline (23), one end of the extension pipeline (23) away from the water pump (22) is fixedly connected with a cooling pipeline (24), and the cooling pipeline (24) is located above the Faraday cup monitor (10), one end of the cooling pipeline (24) away from the extension pipeline (23) is fixedly connected with a return pipeline (25), and one end of the return pipeline (25) away from the cooling pipeline (24) is fixedly connected with the water storage tank (20); An air cooling component (3) is arranged above the Faraday cup monitor (10), and the air cooling component (3) is used for blowing air flow.
2. An electron accelerator beam signal monitoring device according to claim 1, characterized in that: The cooling pipeline (24) is fixedly provided with a fixing frame (27), and the fixing frame (27) is fixedly connected with the Faraday cup monitor (10).
3. An electron accelerator beam signal monitoring device according to claim 2, wherein: The air cooling component (3) comprises a support plate (30), and the support plate (30) is fixedly connected with the fixing frame (27), and the support plate (30) is fixedly provided with an exhaust fan (31), and the exhaust fan (31) is used for blowing air flow.
4. An electron accelerator beam signal monitoring device according to claim 3, wherein: The support plate (30) is fixedly provided with a reinforcing frame (32), and the reinforcing frame (32) is fixedly connected with the fixing frame (27).
5. An electron accelerator beam signal monitoring device according to claim 4, wherein: The Faraday cup monitor (10) is fixedly provided with a protective cover (11), the protective cover (11) is provided with an air outlet (12), and the air outlet (12) is provided with a filter screen.
6. An electron accelerator beam signal monitoring device according to claim 1, wherein: The bottom surface of the water pump (22) is fixedly provided with a stable seat (230), and the bottom surface of the stable seat (230) is fixedly connected with the top surface of the base (1).
7. An electron accelerator beam signal monitoring device according to claim 1, wherein: One side of the water storage tank (20) is fixedly connected with a water inlet pipeline (26), and the water inlet pipeline (26) is connected with an external water source.