Virus infection real-time monitoring equipment
By designing real-time monitoring equipment for virus infection, using electric heating wire to adjust temperature, fill light fill light and atomizer to adjust humidity, the problem of invading virus cells at different temperatures in the existing technology is solved, and high-precision observation of virus invasion and equipment cleaning is achieved.
Patent Information
- Application Number
- CN202422255253.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2034-09-14
AI Technical Summary
The prior art lacks real-time monitoring of viruses invading cells at different temperatures by changing the temperature of the environment.
A real-time monitoring device for virus infection is designed, including a monitoring box, electric heating wire, electron microscope, electronic camera, ultraviolet lamp and fill light, which can monitor the invasion of viruses at different temperatures in real time, and adjust the temperature through electric heating wire, sterilization of ultraviolet lamps, fill light fill light and atomizer to adjust humidity.
Real-time monitoring of viruses at different temperatures is achieved, observation accuracy is improved, and the equipment is clean and reliable through ultraviolet sterilization and humidity adjustment.
Smart Images

Figure CN223201841U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of monitoring equipment, and more specifically to a real-time monitoring device for virus infection. Background Art
[0002] A virus is a non-cellular life form that contains only one type of nucleic acid and must parasitize within living cells. Its replication, transcription, and translation capabilities are all carried out in host cells. Once inside a host cell, it can use the substances and energy in the cell to complete its life activities and produce a new generation of viruses identical to itself according to the genetic information contained in its own nucleic acid. When monitoring viral infections in real time, an electron microscope is used to magnify and observe the process of virus invasion of cells. However, existing technologies lack the ability to monitor the invasion of viruses into cells at different temperatures in real time by changing the temperature of the environment. Utility Model Content
[0003] The utility model provides a real-time monitoring device for virus infection, which can monitor in real time the situation of viruses invading cells at different temperatures.
[0004] A real-time virus infection monitoring device includes a monitoring box, a box door is rotatably connected to the monitoring box, a plurality of heating wires are fixedly connected inside the monitoring box, a horizontal plate is fixedly connected inside the monitoring box, an electron microscope is installed on the horizontal plate, an observation port of the electron microscope is located at the upper end of the horizontal plate, an electronic camera is provided at the observation port of the electron microscope, a placement table is fixedly connected to the bottom surface of the monitoring box, and a glass piece is placed on the upper end of the placement table.
[0005] The upper end of the electron microscope is fixedly connected with a mounting platform, and the electronic camera is stuck in the mounting platform.
[0006] The mounting platform is threadedly connected to two screw rods, and one end of the two screw rods is rotatably connected to a clamping plate through a bearing.
[0007] The other ends of the two screw rods are fixedly connected with handles.
[0008] An ultraviolet lamp is fixedly connected in the monitoring box.
[0009] Two fill lights are fixedly connected to the lower end of the horizontal plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation methods.
[0011] Figure 1 and Figure 2 This is a schematic diagram of the overall structure of a real-time virus infection monitoring device;
[0012] Figure 3 Schematic diagram of the structure of an ultraviolet lamp;
[0013] Figure 4 It is a structural diagram of the horizontal plate;
[0014] Figure 5 This is a structural diagram of the fill light. DETAILED DESCRIPTION
[0015] See Figure 1 and Figure 4-5 ,
[0016] A real-time monitoring device for virus infection includes a monitoring box 101, a box door 102 is rotatably connected to the monitoring box 101 via a bearing, a plurality of heating wires 103 are fixedly connected to the monitoring box 101 via bolts, a horizontal plate 301 is fixedly connected to the monitoring box 101 via bolts, an electron microscope 302 is mounted on the horizontal plate 301, an observation port of the electron microscope 302 is located at the upper end of the horizontal plate 301, an electronic camera 405 is provided at the observation port of the electron microscope 302, a placement table 201 is bonded to the bottom surface of the monitoring box 101 via an adhesive, and a glass sheet 202 is placed on the upper end of the placement table 201.
[0017] When using the monitoring equipment, the staff first drops the virus culture liquid on the placement table 201, then covers the virus culture liquid with the glass sheet 202, so that the glass sheet 202 and the placement table 201 cooperate to position the virus culture liquid, close the box door 102, and then turn on the electron microscope 302 and the electronic camera 405. The electron microscope 302 can magnify the process of the virus entering the cell, and then use the electronic camera 405 to shoot this process, thereby realizing the function of real-time monitoring of viral infection.
[0018] During the monitoring process, the staff energizes and heats the multiple heating wires 103 to change the temperature inside the monitoring box 101, thereby being able to monitor the invasion of viruses into cells at different temperatures.
[0019] See Figure 4 ,
[0020] The upper end of the electron microscope 302 is fixedly connected to the mounting platform 401 by bolts, and the electronic camera 405 is stuck in the mounting platform 401.
[0021] The mounting platform 401 is used to support the electronic camera 405 so as to keep the electronic camera 405 stable.
[0022] See Figure 4 ,
[0023] Two screw rods 403 are threadedly connected to the mounting platform 401 , and one end of the two screw rods 403 is rotatably connected to the clamping plate 402 through a bearing.
[0024] The staff places the electronic camera 405 on the mounting platform 401, and then rotates the two screws 403 to move the two clamps 402 toward the middle on the mounting platform 401, so that the electronic camera 405 can be clamped and fixed on the mounting platform 401. The above structure facilitates the installation or disassembly of the electronic camera 405.
[0025] In order to align the lens of the electronic camera 405 with the lens of the electron microscope 302 , the staff adjusts the distance between the two screws 403 so that the lens position of the electronic camera 405 after being fixed coincides with the lens of the electron microscope 302 .
[0026] See Figure 4 ,
[0027] The other ends of the two screw rods 403 are fixedly connected to the handles 404 via bolts.
[0028] The handle 404 facilitates the staff to manually adjust the two screw rods 403.
[0029] See Figure 3 ,
[0030] An ultraviolet lamp 104 is fixedly connected to the monitoring box 101 by bolts.
[0031] After using the monitoring equipment, the staff turns on the ultraviolet lamp 104 to sterilize the air and equipment in the monitoring box 101, thereby facilitating the next real-time monitoring of virus infection.
[0032] See Figure 5 ,
[0033] Two fill lights 303 are fixedly connected to the lower end of the horizontal plate 301 .
[0034] The two fill lights 303 are used to fill light for the virus culture solution, thereby facilitating the electron microscope 302 to clearly capture the process of the virus invading the cells.
[0035] See Figure 2 ,
[0036] A nozzle 105 is fixedly connected to the bottom surface of the monitoring box 101, and a vibrating atomizer is connected to the lower end of the nozzle 105.
[0037] Before covering the glass sheet 202, distilled water is added to the vibrating nebulizer and then atomized by the vibrating nebulizer. The atomized water is discharged into the monitoring box 101 through the nozzle 105, which eventually increases the humidity in the monitoring box 101. After the humidity in the monitoring box 101 reaches the requirement, the glass sheet 202 is covered, so that the virus infection can be monitored in real time at different humidity levels.
[0038] See Figure 2 ,
[0039] A fan 106 is rotatably connected to the inner wall of the monitoring box 101 .
[0040] When the atomized water is discharged into the monitoring box 101, the fan 106 is controlled to rotate so that the atomized water is quickly and evenly dispersed, so that the humidity in the monitoring box 101 is uniform, thereby saving time.
[0041] See Figure 3 ;
[0042] The placement table 201 is made of transparent glass, which is convenient for cleaning and disinfection.
[0043] See Figure 2-3 ;
[0044] The electronic camera 405 is connected to an external display, so that the staff can directly understand the process of cell infection with the virus by observing the display.
Claims
1. A real-time virus infection monitoring device, characterized by: The monitoring box (101) comprises a monitoring box (101), a box door (102) is rotatably connected to the monitoring box (101), a plurality of electric heating wires (103) are fixedly connected inside the monitoring box (101), a horizontal plate (301) is fixedly connected inside the monitoring box (101), an electron microscope (302) is installed on the horizontal plate (301), an observation port of the electron microscope (302) is located at the upper end of the horizontal plate (301), an electronic camera (405) is arranged at the observation port of the electron microscope (302), a placement table (201) is fixedly connected to the bottom surface of the monitoring box (101), and a glass sheet (202) is placed on the upper end of the placement table (201).
2. The real-time virus infection monitoring device according to claim 1, characterized in that: The upper end of the electron microscope (302) is fixedly connected to a mounting platform (401), and the electronic camera (405) is stuck in the mounting platform (401).
3. The real-time virus infection monitoring device according to claim 2, characterized in that: Two screw rods (403) are threadedly connected to the mounting platform (401), and one end of the two screw rods (403) is rotatably connected to a clamping plate (402) via a bearing.
4. The real-time virus infection monitoring device according to claim 3, characterized in that: The other ends of the two screw rods (403) are fixedly connected to a handle (404).
5. The real-time virus infection monitoring device according to claim 4, characterized in that: An ultraviolet lamp (104) is fixedly connected inside the monitoring box (101).
6. The real-time virus infection monitoring device according to claim 5, characterized in that: Two fill lights (303) are fixedly connected to the lower end of the horizontal plate (301).
7. The real-time virus infection monitoring device according to claim 6, characterized in that: The inner bottom surface of the monitoring box (101) is fixedly connected with a nozzle (105), and the lower end of the nozzle (105) is connected with a vibrating atomizer.
8. The real-time virus infection monitoring device according to claim 1, characterized in that: A fan (106) is rotatably connected to the inner wall of the monitoring box (101).
9. The real-time virus infection monitoring device according to claim 1, characterized in that: The placement table (201) is made of transparent glass.
10. The real-time virus infection monitoring device according to claim 1, characterized in that: The electronic camera (405) is externally connected to a display.