Multifunctional incubator for immune cell culture
By introducing a screw system driven by traction motor and operating motor in the multi-function incubator, the problem of inflexible operation of the existing incubator test tube placement rack is solved, and the efficient movement of the test tube placement rack is achieved and the operation efficiency is improved.
Patent Information
- Application Number
- CN202422222371.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-11
- Publication Date
- 2025-08-01
- Estimated Expiration
- 2034-09-11
AI Technical Summary
The existing multi-functional incubator for immune cell culture has poor operating flexibility when removing and placing test tubes and placing racks, resulting in low working efficiency.
A multi-functional incubator is designed, including a transmission screw driven by a traction motor and a traction screw system driven by an operating motor. Through the cooperation of the sliding block and the traction plate, the flexible movement of the test tube placement rack is achieved, making it easier to remove and place the test tube.
It improves the flexibility and efficiency of operation, facilitates the independent placement and removal of immune cell culture test tubes, and improves work efficiency.
Smart Images

Figure CN223176121U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of biological culture, in particular to a multifunctional incubator for culturing immune cells. Background Technique
[0002] Immune cells refer to cells that participate in or are related to immune responses. They include lymphocytes, dendritic cells, monocytes / macrophages, granulocytes, mast cells, etc. Immune cells can be divided into many types, and various immune cells play important roles in the human body. Immune cells are commonly known as white blood cells, including innate lymphocytes, various phagocytes, etc., and lymphocytes that can recognize antigens and produce specific immune responses.
[0003] Existing immune cells need to be placed inside a multifunctional incubator for culturing. However, the following problems still exist in the existing multifunctional incubator for culturing immune cells during use:
[0004] The existing single test tube rack or multiple test tube racks have poor flexibility in taking out and placing operations from the culture chamber, reducing work efficiency. Therefore, it is very necessary to involve a multifunctional incubator for culturing immune cells in the existing field of biological culture. Content of the Utility Model
[0005] In order to make up for the deficiencies of the existing technology, that is, the existing single test tube rack or multiple test tube racks have poor flexibility in taking out and placing operations from the culture chamber, reducing work efficiency, the utility model proposes a multifunctional incubator for culturing immune cells.
[0006] The technical solution adopted by the utility model to solve its technical problems is: a multifunctional incubator for culturing immune cells, including a multifunctional incubator main body. A plurality of culture chambers are arranged on the multifunctional incubator main body. A rotating cavity is arranged inside the multifunctional incubator main body, and the rotating cavity is located between the plurality of culture chambers. A plurality of traction cavities are arranged on the rotating cavity. Traction grooves are arranged on the sides of the culture chambers, and the traction grooves are communicated with the traction cavities. A traction motor is fixedly assembled on the multifunctional incubator main body. The output end of the traction motor is fixedly assembled with a transmission lead screw. The transmission lead screw movably penetrates into the rotating cavity, and a threaded sleeve is threadedly assembled on the transmission lead screw. A plurality of connecting blocks are fixedly assembled on the threaded sleeve. The connecting blocks are correspondingly movably assembled with the traction cavities. Sliding blocks are fixedly assembled on the connecting blocks. The sliding blocks are correspondingly movably assembled with the traction grooves. One ends of the sliding blocks are fixedly assembled with traction plates, and the traction plates are correspondingly located in the culture chambers.
[0007] Preferably, mounting blocks are symmetrically and fixedly assembled on the sides of the traction plates. Slide rods are symmetrically and fixedly assembled between the two mounting blocks. Operating motors are fixedly assembled on the mounting blocks, and the output ends of the operating motors are fixedly assembled with traction lead screws.
[0008] Preferably, the traction lead screw movably penetrates through the mounting block, guiding blocks are threadedly assembled on the traction lead screw, the guiding blocks are respectively movably assembled with the two slide bars, extension blocks are fixedly assembled on the guiding blocks, the extension blocks are located on one side of the mounting block, vertical blocks are fixedly assembled at one ends of the extension blocks, and bearing plates are fixedly assembled at the bottoms of the vertical blocks.
[0009] Preferably, a plurality of insertion rods are fixedly assembled on the bearing plates, and test tube placement racks are assembled on the bearing plates.
[0010] Preferably, a plurality of fixing blocks are fixedly assembled on the test tube placement racks, insertion holes are provided on the fixing blocks, and the insertion holes on the fixing blocks are inserted corresponding to the insertion rods on the bearing plates.
[0011] Preferably, a box door is assembled on the main body of the multifunctional incubator, and a transparent viewing window is fixedly assembled on the box door.
[0012] The beneficial effects of the present utility model are as follows:
[0013] By starting the traction motor in the present utility model, the transmission lead screw rotates in the threaded sleeve, enabling the connecting block to move on the traction cavity, the sliding blocks respectively move on the traction grooves, and the sliding blocks drive the traction plate to move on the culture chamber, which can drive a plurality of test tube placement racks to be taken out and placed from the culture chamber. By starting the operation motor, the traction lead screw rotates in the guiding block, enabling the guiding block to move on the two slide bars, the guiding block drives the vertical block on the extension block to move, so that the vertical block drives the test tube placement rack on the bearing plate to move, facilitating the independent placement or removal of the test tubes containing immune cell culture on each test tube placement rack, improving the operation practicability and operation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.
[0015] Figure 1 It is a schematic structural diagram of the multifunctional incubator for immune cell culture of the present utility model;
[0016] Figure 2 It is a schematic cross-sectional structural diagram of the multifunctional incubator for immune cell culture of the present utility model;
[0017] Figure 3 It is a schematic structural diagram of the adjustable test tube placement rack of the present utility model;
[0018] Figure 4 This is a schematic structural diagram of the adjustable test tube rack of the present utility model.
[0019] In the figure:
[0020] 10. Main body of the multifunctional incubator; 11. Incubation chamber; 12. Traction groove; 13. Test tube rack;
[0021] 20. Traction motor; 21. Chamber door; 22. Transparent viewing window; 23. Rotation cavity;
[0022] 30. Transmission lead screw; 31. Traction cavity; 32. Threaded sleeve; 33. Connecting block;
[0023] 40. Sliding block; 41. Traction plate; 42. Mounting block; 43. Slide bar;
[0024] 50. Operation motor; 51. Traction lead screw; 52. Guide block; 53. Extension block;
[0025] 60. Vertical block; 61. Bearing plate; 62. Plug rod; 63. Fixed block;
[0026] 70. Jack. Specific implementation manner
[0027] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.
[0028] The following further elaborates on this application in conjunction with the attached Figure 1 —4
[0029] This application embodiment discloses a multifunctional incubator for culturing immune cells. Refer to Figure 1 - Figure 3, a multifunctional incubator for immune cell culture, comprising a multifunctional incubator main body 10, on which a plurality of culture chambers 11 are provided. Inside the multifunctional incubator main body 10, there is a rotating cavity 23 located between the plurality of culture chambers 11. A plurality of traction cavities 31 are provided on the rotating cavity 23. Traction grooves 12 communicating with the traction cavities 31 are provided on the sides of the culture chambers 11. A traction motor 20 is fixedly assembled on the multifunctional incubator main body 10. The output end of the traction motor 20 is fixedly assembled with a transmission lead screw 30. The transmission lead screw 30 movably penetrates into the rotating cavity 23, and a threaded sleeve 32 is threadedly assembled on the transmission lead screw 30. A plurality of connecting blocks 33 moving in the traction cavities 31 are fixedly assembled on the threaded sleeve 32. On each connecting block 33, a sliding block 40 moving in the traction groove 12 is fixedly assembled. One end of each sliding block 40 is fixedly assembled with a traction plate 41 located in the culture chamber 11. A box door 21 is assembled on the multifunctional incubator main body 10, and a transparent window 22 is fixedly assembled on the box door 21. Start the traction motor 20, so that the transmission lead screw 30 rotates in the threaded sleeve 32, making the connecting blocks 33 move on the traction cavities 31, and the sliding blocks 40 move on the traction grooves 12 respectively. The sliding blocks 40 drive the traction plates 41 to move on the culture chambers 11.
[0030] Refer to Figure 4 , mounting blocks 42 are symmetrically and fixedly assembled on the sides of the traction plates 41. Slide bars 43 are symmetrically and fixedly assembled between the two mounting blocks 42. Operating motors 50 are fixedly assembled on the mounting blocks 42. The output ends of the operating motors 50 are fixedly assembled with traction lead screws 51. The traction lead screws 51 movably penetrate the mounting blocks 42. Guide blocks 52 moving on the two slide bars 43 are threadedly assembled on the traction lead screws 51. Extension blocks 53 are fixedly assembled on the guide blocks 52. The extension blocks 53 are located on one side of the mounting blocks 42. Vertical blocks 60 are fixedly assembled at one ends of the extension blocks 53. Carrier plates 61 are fixedly assembled at the bottoms of the vertical blocks 60. A plurality of insertion rods 62 are fixedly assembled on each carrier plate 61. Test tube placement racks 13 are assembled on each carrier plate 61. A plurality of fixing blocks 63 are fixedly assembled on the test tube placement racks 13. Jacks 70 are provided on the fixing blocks 63. The jacks 70 on the fixing blocks 63 are correspondingly inserted with the insertion rods 62 on the carrier plates 61. Start the operating motor 50, so that the traction lead screws 51 rotate in the guide blocks 52, making the guide blocks 52 move on the two slide bars 43. The guide blocks 52 drive the vertical blocks 60 on the extension blocks 53 to move, so that the vertical blocks 60 drive the test tube placement racks 13 on the carrier plates 61 to move, facilitating the independent placement or removal of test tubes containing immune cell culture on the test tube placement racks 13.
[0031] Working principle: Start the traction motor 20, so that the transmission lead screw 30 rotates in the threaded sleeve 32, enabling the connecting block 33 to move on the traction cavity 31, and the sliding block 40 moves on the traction groove 12 respectively. The sliding block 40 drives the traction plate 41 to move on the culture chamber 11, and can drive multiple test tube racks 13 to be taken out of and placed into the culture chamber 11. Start the operation motor 50, so that the traction lead screw 51 rotates in the guiding block 52, enabling the guiding block 52 to move on the two slide bars 43. The guiding block 52 drives the vertical block 60 on the extension block 53 to move, so that the vertical block 60 drives the test tube rack 13 on the bearing plate 61 to move, facilitating the placement or removal of the test tubes containing immune cell culture on each test tube rack 13 independently, improving the operation practicability and operation efficiency.
[0032] The above shows and describes the basic principle, main features and advantages of the present utility model. Those skilled in the art should understand that the present utility model is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed.
Claims
1. A multifunctional incubator for culturing immune cells, characterized in that: It includes a multi-functional incubator main body (10). A plurality of culture chambers (11) are provided on the multi-functional incubator main body (10). A rotating cavity (23) is arranged inside the multi-functional incubator main body (10). The rotating cavity (23) is located between the plurality of culture chambers (11). A plurality of traction cavities (31) are provided on the rotating cavity (23). Traction grooves (12) are provided on the sides of the culture chambers (11). The traction grooves (12) communicate with the traction cavities (31). A traction motor (20) is fixedly assembled on the multi-functional incubator main body (10). The output end of the traction motor (20) is fixedly assembled with a transmission lead screw (30). The transmission lead screw (30) movably penetrates into the rotating cavity (23). And a threaded sleeve (32) is threadedly assembled on the transmission lead screw (30). A plurality of connecting blocks (33) are fixedly assembled on the threaded sleeve (32). The connecting blocks (33) are movably assembled corresponding to the traction cavities (31). Sliding blocks (40) are fixedly assembled on the connecting blocks (33). The sliding blocks (40) are movably assembled corresponding to the traction grooves (12). One ends of the sliding blocks (40) are fixedly assembled with traction plates (41). The traction plates (41) are correspondingly located in the culture chambers (11).
2. The multifunctional incubator for culturing immune cells according to claim 1, wherein: Mounting blocks (42) are symmetrically and fixedly assembled on the sides of the traction plates (41). Slide bars (43) are symmetrically and fixedly assembled between the two mounting blocks (42). Operating motors (50) are fixedly assembled on the mounting blocks (42). The output ends of the operating motors (50) are fixedly assembled with traction lead screws (51).
3. The multifunctional incubator for immune cell culture according to claim 2, characterized in that: The traction lead screws (51) movably penetrate through the mounting blocks (42). Guide blocks (52) are threadedly assembled on the traction lead screws (51). The guide blocks (52) are movably assembled with the two slide bars (43) respectively. Extension blocks (53) are fixedly assembled on the guide blocks (52). The extension blocks (53) are located on one side of the mounting blocks (42). Vertical blocks (60) are fixedly assembled at one ends of the extension blocks (53). Bearing plates (61) are fixedly assembled at the bottoms of the vertical blocks (60).
4. A multifunctional incubator for culturing immune cells according to claim 3, characterized in that: A plurality of insertion rods (62) are fixedly assembled on the bearing plates (61). Test tube racks (13) are assembled on the bearing plates (61).
5. A multifunctional incubator for culturing immune cells according to claim 4, characterized in that: A plurality of fixing blocks (63) are fixedly assembled on the test tube racks (13). Insertion holes (70) are provided on the fixing blocks (63). The insertion holes (70) on the fixing blocks (63) are correspondingly inserted with the insertion rods (62) on the bearing plates (61).
6. The multifunctional incubator for immune cell culture according to claim 1, characterized in that: A box door (21) is assembled on the multi-functional incubator main body (10). A transparent viewing window (22) is fixedly assembled on the box door (21).