Living cell scanner convenient for real-time monitoring
By introducing fan and temperature control tubes into live cell scanners, the problem of uncontrolled temperature in the prior art is solved, and effective temperature control of live cells is achieved to ensure the normal operation of the scanner and the healthy state of cells.
Patent Information
- Application Number
- CN202421679105.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-16
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2034-07-16
AI Technical Summary
Existing live cell continuous imagers cannot control the temperature. Too high or too low will affect live cells, resulting in subsequent scans not working properly.
A live cell scanner including a fan, a temperature control tube and a protective rack is designed to control the operation of the fan and the temperature control tube by turning the knob to generate appropriate airflow and temperature, blowing towards the living cells to maintain a suitable temperature.
The temperature control of living cells is achieved, ensuring that living cells are in an appropriate temperature state during the scanning process, avoiding cell damage or death, thereby ensuring the normal operation of the scanner.
Smart Images

Figure CN223006045U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a live cell scanner, in particular to the technical field of a live cell scanner convenient for real-time monitoring. Background Technique
[0002] The live cell scanner is mainly used for microscopic imaging acquisition and timed shooting under the condition of simulating the in-vivo environment in vitro, observing cell proliferation, cell migration, adhesion, etc. of live cells under white light or fluorescence for cell analysis imaging; realizing qualitative and quantitative analysis at the cell level, live cell image processing, and live cell dynamic tracing.
[0003] The patent with the patent authorization announcement number CN214252039U discloses a micro live cell continuous imager. This patent forms a sliding structure through a chute and a sliding plate, which is convenient for driving a T-shaped block to compress a return spring under the action of gravity, achieving a good shock absorption and buffering effect. However, the live cell continuous imager provided by this patent still has deficiencies in the actual use process. When scanning and imaging live cells, the live cells will be affected by the temperature in the surrounding environment. When the temperature is too low, the live cells will be in a dormant state. When the temperature is too high, the cell membrane will rupture and cell organelles will be damaged, resulting in cell death, and ultimately the subsequent live cell scanning cannot work properly.
[0004] Therefore, a live cell scanner capable of controlling temperature is needed. Content of the Utility Model
[0005] In order to overcome the shortcoming that the live cell continuous imager provided by the existing patent cannot control the temperature, and both too high and too low temperatures will affect live cells, resulting in the subsequent live cell scanning not working properly, the utility model provides a live cell scanner capable of controlling temperature.
[0006] In order to achieve the above purpose, the embodiment of the utility model provides the following technical solution: A live cell scanner convenient for real-time monitoring, including a base, a loading plate, a protective frame, a control panel, a support frame, a guide block and a scanner. A loading plate is arranged on the base, a protective frame is fixedly connected to the base, a control panel is installed on the protective frame, a guide block is slidably arranged in the base, a support frame is installed on the guide block, and a scanner is installed on one side of the support frame close to the loading plate. It also includes a fan, a first knob, a temperature control pipe, a second knob and a protective fence. The first knob and the second knob are rotatably arranged on the top of the protective frame, a fan is installed on the inner top of the protective frame, the first knob is electrically connected to the fan, a temperature control pipe is fixedly connected to the inner top of the protective frame, the second knob is electrically connected to the temperature control pipe, the temperature control pipe is located below the fan, and a protective fence is installed on the inner top of the protective frame, and the protective fence is located below the temperature control pipe.
[0007] As an improvement to the above solution, it further includes two connecting blocks installed on both sides inside the protective frame. Two ultraviolet lamps are installed on each of the two connecting blocks, and control switches are provided on both sides of the connecting blocks. The control switches are electrically connected to the ultraviolet lamps.
[0008] As an improvement to the above solution, it further includes slide rails installed on the upper and lower sides of the protective frame. Two sliders are fixedly connected to both the upper and lower sides of the baffle. The baffle is slidably connected to the two slide rails through the sliders, and a glass plate is embedded in the baffle.
[0009] As an improvement to the above solution, it further includes a support block installed on one side of the protective frame. A screw rod is rotatably provided on the support block, and a handwheel is fixedly connected to the screw rod. A sliding block is fixedly connected to the side of the support frame away from the scanner. The sliding block penetrates to the outside of the protective frame, and the sliding block is threadedly connected to the screw rod.
[0010] As an improvement to the above solution, a wiping rod is slidably provided on the baffle.
[0011] As an improvement to the above solution, a protective net is embedded in the air inlet of the fan.
[0012] Compared with the prior art, the live cell scanner provided by the embodiment of the present utility model has the following advantages: 1. By rotating the first knob, the fan operates to generate airflows at corresponding gears. Subsequently, by rotating the second knob, the temperature control tube emits a suitable temperature. Through the airflows generated by the fan, the temperature emitted by the temperature control tube is blown towards the live cells, so that the live cells are at a suitable temperature, achieving the effect of temperature control.
[0013] 2. By pressing the control switch, the ultraviolet lamps on the connecting blocks operate, thereby emitting ultraviolet rays to kill microorganisms and bacteria in the air, achieving the effect of sterilizing the inside of the protective frame.
[0014] 3. By pulling the baffle, the baffle slides along the slide rail through the slider, thereby controlling the opening and closing of the protective frame, and thus achieving the effect of protecting the live cells when using the scanner to monitor the live cells.
[0015] 4. By rotating the handwheel forward and backward, the screw rod is driven to rotate on the support block, and then the sliding block drives the support frame to be adjusted up and down, achieving the effect of lifting the scanner to cope with utensils of different heights, which is convenient for better observing the condition of the live cells. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a three-dimensional structure schematic diagram of the present novelty.
[0017] Figure 2 It is a three-dimensional sectional structure schematic diagram of the base, the carrier plate and the protective frame of the present utility model.
[0018] Figure 3 This is a schematic three-dimensional sectional view of the connecting block, ultraviolet lamp and control switch of the present utility model.
[0019] Figure 4 This is a schematic three-dimensional sectional view of the slide rail, baffle and slider of the present utility model.
[0020] Figure 5 This is a schematic three-dimensional sectional view of the support block, screw rod and handwheel of the present utility model.
[0021] Names of the reference numerals in the figure: 1. Base, 101. Carrying plate, 2. Protective frame, 201. Control panel, 3. Support frame, 301. Guide block, 4. Scanner, 5. Fan, 501. First knob, 6. Temperature control tube, 601. Second knob, 7. Protective fence, 8. Connecting block, 9. Ultraviolet lamp, 10. Control switch, 11. Slide rail, 12. Baffle, 1201. Slider, 13. Glass plate, 14. Support block, 15. Screw rod, 1501. Handwheel, 16. Sliding block, 17. Wiping rod, 18. Protective net. Detailed implementation manners
[0022] The above solution will be further described below in conjunction with specific embodiments. It should be understood that these embodiments are for illustrating the present application and not for limiting the scope of the present application. The implementation conditions adopted in the embodiments can be further adjusted according to the conditions of specific manufacturers, and the implementation conditions not specified are usually the conditions in conventional experiments.
[0023] Embodiment 1: A live cell scanner facilitating real-time monitoring, referring to Figure 1 and Figure 2 as shown, includes a base 1, a carrying plate 101, a protective frame 2, a control panel 201, a support frame 3, a guide block 301 and a scanner 4. A carrying plate 101 for placing live cell vessels is arranged on the base 1. The protective frame 2 is fixedly connected to the base 1 by welding. The control panel 201 for connecting electronic devices is installed on the protective frame 2 by bolt connection. The guide block 301 is longitudinally slidably arranged in the base 1. The support frame 3 is installed on the guide block 301 by welding. The scanner 4 is installed on the upper bottom of the side of the support frame 3 close to the carrying plate 101 by bolt connection. It further includes a fan 5, a first knob 501, a temperature control tube 6, a second knob 601 and a protective fence 7. The first knob 501 and the second knob 601 are rotatably arranged on the top of the protective frame 2. The fan 5 for generating air flow is installed on the inner top of the protective frame 2 by bolt connection. The first knob 501 is electrically connected to the fan 5. The temperature control tube 6 is fixedly connected to the inner top of the protective frame 2 by welding. The second knob 601 is electrically connected to the temperature control tube 6. The temperature control tube 6 is located below the fan 5. The protective fence 7 is installed on the inner top of the protective frame 2 by welding. The protective fence 7 is located below the temperature control tube 6.
[0024] When it is necessary to scan and observe living cells, the staff place the vessel containing the living cells on the stage 101 so that the vessel containing the living cells is aligned with the scanner 4. Subsequently, the scanner 4 is started and connected to a computer or a mobile phone through the control panel 201 to monitor the condition of the living cells in real time through the scanner 4. When the temperature of the surrounding environment is not conducive to scanning the living cells, by rotating the first knob 501, the fan 5 is operated to generate an air flow at the corresponding gear. Subsequently, the second knob 601 is rotated so that the temperature control tube 6 emits an appropriate temperature. The temperature emitted by the temperature control tube 6 is blown towards the living cells through the air flow generated by the fan 5 so that the living cells are at an appropriate temperature and the activity of the living cells is ensured.
[0025] Example 2: On the basis of Example 1, as Figure 3 shown, it further includes two connecting blocks 8 installed on both sides inside the protective frame 2 by welding. Two ultraviolet lamps 9 are installed on both connecting blocks 8 by bolt connection. Control switches 10 for turning on and off the ultraviolet lamps 9 are provided on both sides of the connecting blocks 8. The control switches 10 are electrically connected to the ultraviolet lamps 9.
[0026] When the vessel containing the living cells is placed on the stage 101, the staff presses the control switch 10 to make the ultraviolet lamp 9 on the connecting block 8 operate and emit ultraviolet rays, and the microorganisms and bacteria in the air are killed by the emitted ultraviolet rays to prevent the microorganisms and bacteria from affecting the living cells.
[0027] Refer to Figure 4 shown, it further includes slide rails 11 installed on the upper and lower sides of the protective frame 2 by welding. Two sliders 1201 are fixedly connected to both the upper and lower sides of the baffle 12 by welding. The baffle 12 is slidably connected to the two slide rails 11 through the sliders 1201. A glass plate 13 for observing the internal situation is embedded in the baffle 12.
[0028] When it is necessary to scan the living cells, the staff pull the baffle 12 to make the baffle 12 slide leftward along the slide rail 11 through the slider 1201 to open. At this time, the vessel containing the living cells is placed on the stage 101. Subsequently, the baffle 12 is pulled to slide back to its original position to make the baffle 12 close the protective frame 2, so as to protect the living cells when using the scanner 4 to monitor the living cells.
[0029] Refer to Figure 5As shown in the figure, it further includes a support block 14 installed on one side of the protective frame 2 by welding. A screw rod 15 is rotatably arranged on the support block 14. A hand wheel 1501 is fixedly connected to the screw rod 15 by welding. On the side of the support frame 3 away from the scanner 4, a sliding block 16 is fixedly connected by welding. The sliding block 16 penetrates to the outside of the protective frame 2, and the sliding block 16 is threadedly connected to the screw rod 15.
[0030] When the vessel containing live cells needs to be placed on the carrier plate 101, the staff rotates the hand wheel 1501 forward and backward to drive the screw rod 15 to rotate on the support block 14, so that the sliding block 16 drives the support frame 3 to adjust the height along the base 1 through the guide block 301, so that the scanner 4 can cope with vessels of different heights and better observe the condition of live cells.
[0031] Refer to Figure 2 and Figure 4 As shown in the figure, a wiping rod 17 for cleaning the dirt on the glass plate 13 is slidably arranged on the baffle 12; a protective net 18 for blocking dust and impurities is embedded in the air inlet of the blower 5.
[0032] When there is dust or dirt on the glass plate 13, the wiping rod 17 is pulled to slide on the baffle 12, so that the wiping rod 17 wipes and cleans the glass plate 13; the protective net 18 can protect the air inlet of the blower 5 to prevent dust or foreign objects from entering the blower 5 and affecting its operation.
[0033] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A living cell scanner for real-time monitoring, comprising a base (1), a sample plate (101), a protective frame (2), a control panel (201), a support frame (3), a guide block (301) and a scanner (4), wherein the sample plate (101) is arranged on the base (1), the protective frame (2) is fixedly connected to the base (1), the control panel (201) is mounted on the protective frame (2), a guide block (301) is slidably arranged in the base (1), the support frame (3) is mounted on the guide block (301), and the scanner (4) is mounted on a side of the support frame (3) close to the sample plate (101), wherein: The invention also comprises a fan (5), a first knob (501), a temperature control tube (6), a second knob (601) and a guardrail (7); the top of the protection frame (2) is rotatably provided with the first knob (501) and the second knob (601); the fan (5) is installed at the top of the protection frame (2); the first knob (501) is electrically connected to the fan (5); the top of the protection frame (2) is fixedly connected with the temperature control tube (6); the second knob (601) is electrically connected to the temperature control tube (6); the temperature control tube (6) is located below the fan (5); the top of the protection frame (2) is installed with a guardrail (7); and the guardrail (7) is located below the temperature control tube (6).
2. A living cell scanner for real-time monitoring according to claim 1, characterized in that: It also includes two connection blocks (8) installed on both sides of the inside of the protection frame (2), two ultraviolet lamps (9) are installed on the two connection blocks (8), and control switches (10) are provided on the connection blocks (8) on both sides, and the control switches (10) are electrically connected to the ultraviolet lamps (9).
3. A living cell scanner for real-time monitoring according to claim 1, characterized in that: It also includes slide rails (11) installed on the upper and lower sides of the protection frame (2); two sliders (1201) are fixedly connected to the upper and lower sides of the baffle plate (12); the baffle plate (12) is slidably connected to the two slide rails (11) via the sliders (1201); and a glass plate (13) is embedded and installed on the baffle plate (12).
4. A living cell scanner for real-time monitoring according to claim 1, characterized in that: It also includes a support block (14) installed on one side of the protective frame (2), a screw rod (15) is rotatably arranged on the support block (14), a hand wheel (1501) is fixedly connected to the screw rod (15), a sliding block (16) is fixedly connected to the side of the support frame (3) away from the scanner (4), the sliding block (16) penetrates to the outside of the protective frame (2), and the sliding block (16) is threadedly connected to the screw rod (15).
5. A living cell scanner for real-time monitoring according to claim 3, characterized in that: A wiping rod (17) is slidably arranged on the baffle (12).
6. A living cell scanner for real-time monitoring according to claim 1, characterized in that: A protective net (18) is embedded in the air inlet of the fan (5).