Low-temperature incubator capable of being observed remotely
Through the design of components such as perspective block sliding structure, fill light and high-definition camera, the existing low-temperature cultivation devices are solved in the waste of resources and differences in the effect when the lighting conditions are normal, and the sealing and lighting conditions are achieved, providing remote observation and multi-environment cultivation capabilities.
Patent Information
- Application Number
- CN202422282388.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-19
- Publication Date
- 2025-08-08
- Estimated Expiration
- 2034-09-19
AI Technical Summary
The existing low-temperature cultivation devices require additional resources to supply fill lights when the lighting conditions are normal, and the natural light effect and fill light effect are very different, which affects the bacterial culture effect.
Components such as perspective block sliding structure, fill light, high-definition camera and atomizing nozzle have been designed to achieve that the perspective block does not affect the sealing when there is sufficient light. The fill light provides fill light when there is insufficient light. The high-definition camera is remotely observed, and the atomizing nozzle provides humidity control.
While ensuring sealing and light conditions, it reduces resource waste, improves the effect of strain cultivation, and provides remote observation and multi-environment cultivation capabilities.
Smart Images

Figure CN223201833U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of incubators, in particular to a low-temperature incubator capable of remote observation. Background Art
[0002] Bacteria are currently widely used in many related fields such as food, medicine, industry and agriculture, and environmental protection. At the same time, strain selection and breeding is the key to determining the industrial value of fermentation products and the success or failure of fermentation projects. Low-temperature resistant breeding equipment is required in the process of strain selection and breeding.
[0003] Publication No. CN218649455U discloses a low-temperature seedling cultivation device capable of remote observation, which has the following defects during use:
[0004] The utility model provides a low-temperature seedling cultivation device that can be remotely observed, which can well control and monitor various environmental parameters in the incubator, such as temperature, humidity and light. In actual use, although the fill light can also perform fill light operations on rainy days, when the lighting conditions are normal, on the one hand, additional resources will be spent to provide for the use of the fill light, and on the other hand, there is a large gap between the actual lighting effect and natural light. For this reason, we propose a low-temperature incubator that can be remotely observed. Utility Model Content
[0005] In response to the deficiencies in the prior art, the present invention provides a low-temperature incubator that can be remotely observed, which solves the problem that, during actual use, although the fill light can also be used for fill light operation on rainy days, when the lighting conditions are normal, on the one hand, additional resources will be spent to provide the fill light for use, and on the other hand, there is a large gap between the actual lighting effect and natural light.
[0006] The above technical objectives of the present invention are achieved through the following technical solutions:
[0007] A low-temperature incubator that can be remotely observed includes an incubator body, a door on one side of the incubator body, the incubator body and the door being connected together by a hinge, a first slide groove being provided on one side of the door, a first fixing hole being provided on one side of the interior of the first slide groove, a perspective block being fixedly installed inside the first fixing hole, a second slide groove being provided on the inner bottom surface and the inner top surface of the first slide groove, a sliding block being provided inside the first slide groove, a first fixing block being fixedly installed on the top and bottom surfaces of the sliding block, and the sliding block being clamped into the interior of the first slide groove through the second slide groove and the first fixing block.
[0008] Preferably, a fixing plate is fixedly installed inside the incubator body, and fixing bars are fixedly installed on both sides of the fixing plate and both sides of the interior of the incubator body, and two opposite fixing bars form a group. A plurality of placement plates are provided inside the incubator body, and a third slide groove is provided on one side of the fixing bar, and second fixing blocks are fixedly installed on both sides of the placement plate, and the placement plate is clamped between a group of fixing bars through the third slide groove and the second fixing block.
[0009] Preferably, a fixing groove is provided on the top surface of the placement plate, absorbent paper is fixedly installed on the inner bottom surface of the fixing groove, and a placement net is fixedly installed inside the fixing groove.
[0010] Preferably, two second fixing holes are provided on one side of the fixing plate, a fixing sleeve is fixedly installed inside the second fixing hole, two high-definition cameras are fixedly installed inside the fixing sleeve, and the high-definition cameras are respectively arranged at both ends of the fixing sleeve.
[0011] Preferably, the incubator body has first connecting pipes on both sides, the first connecting pipes are connected to the interior of the incubator body, the outer wall of the first connecting pipes is provided with a sealing cover, and fill lights are fixedly installed on both sides of the interior of the incubator body.
[0012] Preferably, the top surface of the incubator body is provided with two through holes, the top surface of the incubator body is provided with a second connecting pipe, the second connecting pipe is composed of a vertical pipe and two L-shaped pipes connected on the outer wall surface, the top surface of the incubator body is provided with a connecting block, the top surface and both sides of the connecting block are provided with through holes connected to each other, the second connecting pipe is located inside the connecting block, the second connecting pipe is limited by the through holes and the connecting block, the top surface of the connecting block is provided with a water tank, the water tank is connected to the vertical pipe of the second connecting pipe, an atomizing nozzle is fixedly installed inside the second connecting pipe, and the atomizing nozzle is respectively located at both ends of the two L-shaped pipes of the second connecting pipe.
[0013] In summary, the present invention has the following beneficial effects:
[0014] 1. By setting the sliding block, when the light conditions are sufficient, the sliding block can be slid to make the perspective block leak out, ensuring sufficient light conditions while not destroying the original sealing and avoiding the impact on some anaerobic bacteria. When the light conditions are insufficient, it can also be slid back to its original position to reduce the actual occupied space;
[0015] 2. The design of the fill light can provide a certain degree of fill light to the interior of the device when the lighting conditions are insufficient, thereby ensuring the practicality of the device. The design of the first connecting pipe allows the first connecting pipes on different sides to be connected to the refrigeration equipment, so that two different culture environments, normal temperature and low temperature, can be formed inside the device. The two sides separated by the fixed plate can cultivate two different bacterial colonies. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is a schematic diagram of the three-dimensional structure of the utility model;
[0017] Figure 2 This is a schematic diagram of the split structure of the utility model;
[0018] Figure 3 This is a schematic diagram of the structure of the incubator body of the present utility model;
[0019] Figure 4 It is a schematic diagram of the box door structure of the present utility model.
[0020] Figure numerals: 1. incubator body; 2. box door; 3. first slide; 4. first fixing hole; 5. perspective block; 6. sliding block; 7. first fixing block; 8. second slide; 9. fixing plate; 10. fixing bar; 11. placement plate; 12. third slide; 13. second fixing block; 14. fixing groove; 15. absorbent paper; 16. placement net; 17. second fixing hole; 18. fixing sleeve; 19. high-definition camera; 20. first connecting pipe; 21. sealing cover; 22. fill light; 23. through hole; 24. second connecting pipe; 25. connecting block; 26. water tank; 27. atomizing nozzle. DETAILED DESCRIPTION
[0021] The following will be combined with the accompanying drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0022] refer to Figures 1-4The foldable incubator 1 is a kind of incubator that can be observed remotely, comprising an incubator body 1, a door 2 on one side of the incubator body 1, and the incubator body 1 and the door 2 are connected together by a hinge. A first slide groove 3 is opened on one side of the door 2, and a first fixing hole 4 is opened on one side of the interior of the first slide groove 3. A perspective block 5 is fixedly installed inside the first fixing hole 4, and a second slide groove 8 is opened on the inner bottom surface and the inner top surface of the first slide groove 3. A sliding block 6 is arranged inside the first slide groove 3, and a first fixing block 7 is fixedly installed on the top and bottom surfaces of the sliding block 6. The sliding block 6 is clamped in the interior of the first slide groove 3 through the second slide groove 8 and the first fixing block 7. By setting the sliding block 6, when the light conditions are sufficient, the sliding block 6 can be slid to make the perspective block 5 leak out, ensuring that the light conditions are sufficient while not destroying the original sealing, avoiding affecting some anaerobic bacteria, and when the light conditions are insufficient, it can also be slid back to its original position, reducing the actual occupied space;
[0023] A fixing plate 9 is fixedly installed inside the incubator body 1, and fixing strips 10 are fixedly installed on both sides of the fixing plate 9 and the inner sides of the incubator body 1. The two opposite fixing strips 10 form a group. A plurality of placement plates 11 are provided inside the incubator body 1, and a third slide groove 12 is opened on one side of the fixing strip 10. Second fixing blocks 13 are fixedly installed on both sides of the placement plate 11. The placement plate 11 is clamped between a group of the fixing strips 10 through the third slide groove 12 and the second fixing block 13. The design of the third slide groove 12 and the second fixing block 13 can facilitate the placement plate 11 to be pulled out at any time, detect the specific situation of the culture dish placed thereon, ensure the normal growth of the internal cultured organisms, and place A fixing groove 14 is provided on the top surface of the plate 11, and an absorbent paper 15 is fixedly installed on the inner bottom surface of the fixing groove 14. A placement net 16 is fixedly installed inside the fixing groove 14. The design of the placement net 16 can ensure that the culture dish is placed at the same time, and through the leakage hole design thereon, the water droplets connected to the inside of the incubator body 1 can leak into the absorbent paper 15 for absorption, thereby reducing the interference of condensed water droplets on the culture. Two second fixing holes 17 are provided on one side of the fixing plate 9, and a fixing sleeve 18 is fixedly installed inside the second fixing hole 17. Two high-definition cameras 19 are fixedly installed inside the fixing sleeve 18. The high-definition cameras 19 are respectively arranged at both ends of the fixing sleeve 18. The design of the high-definition camera 19 can make the worker The operator can remotely observe the situation inside the incubator body 1, making the use of the device more convenient and avoiding the frequent opening and closing of the device to contaminate the culture dish. The incubator body 1 has first connecting pipes 20 on both sides. The first connecting pipes 20 are connected to the interior of the incubator body 1. The outer wall of the first connecting pipe 20 is provided with a sealing cover 21. Filling lights 22 are fixedly installed on both sides of the interior of the incubator body 1. Through the design of the filling lights 22, a certain degree of filling light operation can be performed on the interior of the device when the lighting conditions are insufficient, thereby ensuring the practicality of the device. Through the design of the first connecting pipe 20, the first connecting pipes 20 on different sides can be connected to the refrigeration equipment, so that the interior of the device can form two temperatures: normal temperature and low temperature. Different culture environments, two sides separated by the fixed plate 9 can cultivate two bacterial colonies with different properties. The top surface of the incubator body 1 is provided with two through holes 23. The top surface of the incubator body 1 is provided with a second connecting pipe 24. The second connecting pipe 24 consists of a vertical pipe and two L-shaped pipes connected to the outer wall. The top surface of the incubator body 1 is provided with a connecting block 25. The top surface and both sides of the connecting block 25 are provided with through holes that are connected to each other. The second connecting pipe 24 is located inside the connecting block 25. The second connecting pipe 24 is limited by the through hole 23 and the connecting block 25. The top surface of the connecting block 25 is provided with a water tank 26. The water tank 26 is connected to the vertical pipe of the second connecting pipe 24.A misting nozzle 27 is fixedly installed inside the second connecting pipe 24. The misting nozzle 27 is located at both ends of the two L-shaped pipes of the second connecting pipe 24. The design of the misting nozzle 27 can pressurize and atomize the water inside the second connecting pipe 24. During the cultivation process of some bacterial colonies, the interior of the incubator body 1 can be continuously replenished with water.
[0024] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A low-temperature incubator capable of remote observation, comprising an incubator body (1), characterized in that: One side of the incubator body (1) is provided with a door (2), and the incubator body (1) and the door (2) are connected together by a hinge. A first slide groove (3) is provided on one side of the door (2), and a first fixing hole (4) is provided on one side of the interior of the first slide groove (3). A perspective block (5) is fixedly installed inside the first fixing hole (4), and a second slide groove (8) is provided on the inner bottom surface and the inner top surface of the first slide groove (3). A sliding block (6) is provided inside the first slide groove (3), and a first fixing block (7) is fixedly installed on the top and bottom surfaces of the sliding block (6). The sliding block (6) is clamped inside the first slide groove (3) through the second slide groove (8) and the first fixing block (7).
2. A remotely observable low-temperature incubator according to claim 1, characterized in that: A fixing plate (9) is fixedly installed inside the incubator body (1), and fixing strips (10) are fixedly installed on both sides of the fixing plate (9) and both sides of the inside of the incubator body (1), and two opposite fixing strips (10) form a group. A plurality of placement plates (11) are provided inside the incubator body (1), and a third sliding groove (12) is provided on one side of the fixing strip (10). Second fixing blocks (13) are fixedly installed on both sides of the placement plate (11), and the placement plate (11) is clamped between a group of the fixing strips (10) through the third sliding groove (12) and the second fixing block (13).
3. A low-temperature incubator capable of remote observation according to claim 2, characterized in that: A fixing groove (14) is provided on the top surface of the placement plate (11), a water-absorbing paper (15) is fixedly installed on the inner bottom surface of the fixing groove (14), and a placement net (16) is fixedly installed inside the fixing groove (14).
4. A remotely observable low-temperature incubator according to claim 3, characterized in that: Two second fixing holes (17) are provided on one side of the fixing plate (9), a fixing sleeve (18) is fixedly installed inside the second fixing hole (17), two high-definition cameras (19) are fixedly installed inside the fixing sleeve (18), and the high-definition cameras (19) are respectively arranged at both ends of the fixing sleeve (18).
5. The low-temperature incubator capable of remote observation according to claim 1, characterized in that: The incubator body (1) has first connecting pipes (20) on both sides, the first connecting pipes (20) are in communication with the interior of the incubator body (1), the outer wall of the first connecting pipe (20) is sleeved with a sealing cover (21), and fill lights (22) are fixedly installed on both sides of the interior of the incubator body (1).
6. The low-temperature incubator capable of remote observation according to claim 1, characterized in that: The top surface of the incubator body (1) is provided with two through holes (23), and the top surface of the incubator body (1) is provided with a second connecting pipe (24), which is composed of a vertical pipe and two L-shaped pipes connected on the outer wall. The top surface of the incubator body (1) is provided with a connecting block (25), and the top surface and both sides of the connecting block (25) are provided with through holes connected to each other. The second connecting pipe (24) is located inside the connecting block (25), and the second connecting pipe (24) is limited by the through holes (23) and the connecting block (25). The top surface of the connecting block (25) is provided with a water storage tank (26), and the water storage tank (26) is connected to the vertical pipe of the second connecting pipe (24). An atomizing nozzle (27) is fixedly installed inside the second connecting pipe (24), and the atomizing nozzle (27) is respectively located at the two ends of the two L-shaped pipes of the second connecting pipe (24).
Citation Information
Patent Citations
Low-temperature seedling cultivation device capable of being remotely observed
CN218649455U