Remote monitoring device for diamond cultivation
By introducing a sealing mechanism into the monitoring device, and using a combination of movable plate, rack and pinion, and transmission gear, the sealing sleeve is automatically adjusted to fill the gaps, thus solving the problem of monitor sealing failure under high temperature and high pressure conditions and achieving monitor protection.
Patent Information
- Application Number
- CN202520242597.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-17
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2035-02-17
AI Technical Summary
Existing monitoring devices are prone to seal failure due to shell deformation under high temperature and high pressure environments, which can damage the monitor.
A monitoring device including a sealing mechanism was designed. By using a combination of a movable plate, a rack and pinion, and a transmission gear, the sealing sleeve is automatically adjusted to fill the gap between the monitor mounting shell and the monitor body, ensuring a tight seal.
This effectively avoids sealing failure caused by high temperature and high pressure deformation of the monitor housing, protecting the monitor body and preventing direct damage.
Smart Images

Figure CN223660289U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of diamond cultivation equipment, and in particular to a remote monitoring device for diamond cultivation. Background Technology
[0002] Diamonds can be artificially grown under high temperature and pressure. In order to monitor the diamond growing process, a remote monitoring device is installed inside the growing chamber.
[0003] Because the environment inside the cultivation chamber is high temperature and high pressure, existing monitoring devices are equipped with a shell to prevent the high temperature and high pressure from affecting the device. However, under long-term high temperature and high pressure, the shell is prone to deformation, which can cause gaps between the shell and the monitor. This can easily damage the monitor due to the high temperature and high pressure environment, making it inconvenient to use. Utility Model Content
[0004] To address the aforementioned technical problems, this utility model proposes a remote monitoring device for grown diamonds, which can automatically seal the inside of the monitor mounting shell, preventing the monitor mounting shell from deforming due to high temperature and pressure, thus avoiding direct damage to the monitor body caused by high pressure.
[0005] The technical solution to achieve the purpose of this utility model is as follows: a remote monitoring device for grown diamond, including a monitor body, a monitor mounting shell, and a growing chamber for mounting the monitor body and the monitor mounting shell. The monitor mounting shell is fixedly installed inside the growing chamber, the monitor body is movably installed inside the growing chamber, the monitoring probe of the monitor body passes through the inside of the monitor mounting shell and is located inside the growing chamber, a sealing sleeve is fixedly fitted on the monitoring probe of the monitor body, and a sealing mechanism is provided on the monitor mounting shell.
[0006] The sealing mechanism includes:
[0007] The movable tube and the movable plate are fixedly installed on the top of the monitor mounting housing and movably installed inside the movable tube.
[0008] The first rack and the second rack are fixedly installed on the bottom wall of the movable plate. The bottom of the first rack passes through the movable tube and the side wall of the monitor mounting shell and is located inside the monitor mounting shell. The second rack is fixedly installed on the side wall of the monitor body.
[0009] The mounting shaft and transmission gear are installed horizontally and movably inside the monitor mounting housing. The transmission gear is movably sleeved on the mounting shaft at the positions corresponding to the first rack and the second rack, and the transmission gear meshes with the first rack and the second rack respectively for transmission.
[0010] In some embodiments, the sealing sleeve is a hollow frustum-shaped structure, gradually decreasing in size towards the monitor mounting housing, and is made of rubber.
[0011] In some embodiments, a mounting rod is fixedly installed at the bottom of the movable plate, the mounting rod extending downward through the side wall of the monitor body and the monitor mounting shell, and a mounting spring located inside the movable tube is sleeved on the mounting rod.
[0012] In some embodiments, the mounting rod has an exhaust port inside, which passes through the movable tube and the interior of the cultivation chamber.
[0013] In some embodiments, the culture chamber is equipped with a door that is movably installed via a hinge, and the interior of the culture chamber is provided with a culture platform.
[0014] In some embodiments, a booster is installed inside the culture chamber, and a booster pipe is installed on the output end of the booster, which is connected to the interior of the culture chamber.
[0015] Compared with existing technologies, the significant advantages of this invention are:
[0016] This invention, through the sealing mechanism, allows the movable plate to move inwards under pressure, which in turn drives the first rack downwards. The first rack meshes with the transmission gear, causing the transmission gear to rotate. Simultaneously, the transmission gear meshes with the second rack, and the rotation of the transmission gear drives the second rack to move. The second rack is mounted on the monitor body, and the monitor body, carrying the sealing sleeve, moves inwards towards the monitor mounting housing. At this point, the sealing sleeve and the monitor mounting housing are pressed against each other, filling the gap between the monitor mounting housing and the monitor body. This automatically seals the inside of the monitor mounting housing, preventing the housing from deforming due to high temperature and pressure, thus avoiding damage to the monitor body from high pressure. Attached Figure Description
[0017] The present invention will be further explained below with reference to the accompanying drawings and embodiments:
[0018] Figure 1 This is a schematic diagram of the internal structure provided in one embodiment of the present invention;
[0019] Figure 2 This utility model provides in one embodiment Figure 1 Enlarged view of point A in the middle;
[0020] Figure 3 This utility model provides in one embodiment Figure 2 Enlarged view at point B in the middle;
[0021] Figure 4 This is a schematic diagram of the overall structure of the present invention in one embodiment.
[0022] Explanation of reference numerals in the attached figures:
[0023] 1. Incubation chamber; 2. Monitor body; 3. Monitor mounting shell; 4. Chamber door; 5. Intensifier; 6. Intensifier pipe; 7. Sealing sleeve; 8. Movable pipe; 9. Movable plate; 10. First rack; 11. Second rack; 12. Mounting shaft; 13. Transmission gear; 14. Mounting rod; 15. Mounting spring; 16. Exhaust port; 17. Incubation table. Detailed Implementation
[0024] The present invention will now be described in detail, and the technical solutions in the embodiments of the present invention will be clearly and completely described. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present invention.
[0025] This utility model provides an improved remote monitoring device for grown diamonds. The technical solution of this utility model is as follows:
[0026] like Figures 1 to 4 As shown, a remote monitoring device for cultured diamonds includes a monitor body 2, a monitor mounting shell 3, and a culture chamber 1 on which the monitor body 2 and the monitor mounting shell 3 are mounted. The monitor body 2 is a detector that can monitor temperature and pressure. The monitor mounting shell 3 is a hollow structure and is fixedly installed inside the culture chamber 1. The monitor body 2 is movably installed inside the culture chamber 1. The monitoring probe of the monitor body 2 passes through the inside of the monitor mounting shell 3 and is located inside the culture chamber 1. A sealing sleeve 7 is fixedly fitted on the monitoring probe of the monitor body 2. The sealing sleeve 7 is a hollow frustum-shaped structure. The sealing sleeve 7 gradually decreases in size towards the monitor mounting shell 3 and is made of rubber. A sealing mechanism is provided on the monitor mounting shell 3.
[0027] The cultivation chamber 1 is equipped with a door 4 that is movably installed on the door via a hinge. The cultivation chamber 1 is equipped with a cultivation table 17 inside, which is used to place diamonds. The cultivation chamber 1 is equipped with a booster 5 inside, and a booster pipe 6 is installed on the output end of the booster 5. The booster pipe 6 is connected to the inside of the cultivation chamber 1. A high-pressure environment can be set inside the cultivation chamber 1 through the booster 5 and the booster pipe 6.
[0028] The sealing mechanism includes a movable tube 8, a movable plate 9, a first rack 10, a second rack 11, a mounting shaft 12, and a transmission gear 13. The movable tube 8 is a hollow cylindrical structure and is fixedly installed on the top of the monitor mounting shell 3. The movable plate 9 is a circular plate with the same size as the inside of the movable tube 8 and is movably installed inside the movable tube 8. The first rack 10 is a long strip structure and is fixedly installed on the bottom wall of the movable plate 9. The bottom of the first rack 10 passes through the movable tube 8 and the side wall of the monitor mounting shell 3 and is located inside the monitor mounting shell 3. The second rack 11 is fixedly installed on the side wall of the monitor body 2. The mounting shaft 12 is a cylindrical structure and is horizontally movably installed inside the monitor mounting shell 3. The transmission gear 13 is movably sleeved on the mounting shaft 12 at the positions corresponding to the first rack 10 and the second rack 11, and the transmission gear 13 meshes with the first rack 10 and the second rack 11 respectively for transmission. When the booster 5 and the booster pipe 6 pressurize the inside of the cultivation chamber 1... When the environment becomes high pressure, the movable plate 9 moves towards the interior of the movable tube 8 under pressure due to the sealing mechanism. This causes the first rack 10 to move downwards. The first rack 10 meshes with the transmission gear 13, which in turn rotates the transmission gear 13. Simultaneously, the transmission gear 13 meshes with the second rack 11, and the rotation of the transmission gear 13 causes the second rack 11 to move. The second rack 11 is mounted on the monitor body 2, and the monitor body 2, along with the sealing sleeve 7, moves towards the interior of the monitor mounting shell 3. At this time, the sealing sleeve 7 and the monitor mounting shell 3 are pressed against each other, filling the gap between the monitor mounting shell 3 and the monitor body 2. This seals the interior of the monitor mounting shell 3, preventing it from deforming due to high temperature and pressure and losing its seal. This also prevents the high pressure from directly damaging the monitor body 2.
[0029] A mounting rod 14 is fixedly installed at the bottom of the movable plate 9. The mounting rod 14 is a cylindrical structure that extends downward through the side wall of the monitor body 2 and the monitor mounting shell 3. A mounting spring 15 is sleeved on the mounting rod 14 and located inside the movable tube 8. When the movable plate 9 moves downward, the mounting spring 15 can be compressed. After compression, the mounting spring 15 stores energy. When the high-pressure environment inside the incubation chamber 1 disappears, the mounting spring 15 will release its elastic force to drive the movable plate 9 to reset. An exhaust port 16 is opened inside the mounting rod 14. The exhaust port 16 is an "L"-shaped groove. The exhaust port 16 connects the movable tube 8 and the inside of the incubation chamber 1. When the movable plate 9 moves, the gas inside the movable tube 8 is transferred to the inside of the incubation chamber 1 through the exhaust port 16.
[0030] The specific working method is as follows:
[0031] With the sealing mechanism in place, the movable plate 9 moves towards the interior of the movable tube 8 under pressure, which in turn drives the first rack 10 to move downwards. The first rack 10 meshes with the transmission gear 13, which in turn drives the transmission gear 13 to rotate. At the same time, the transmission gear 13 meshes with the second rack 11, and the rotation of the transmission gear 13 drives the second rack 11 to move. The second rack 11 is mounted on the monitor body 2, and the monitor body 2, along with the sealing sleeve 7, moves towards the interior of the monitor mounting shell 3. At this time, the sealing sleeve 7 and the monitor mounting shell 3 are pressed against each other, which fills the gap between the monitor mounting shell 3 and the monitor body 2, thereby sealing the interior of the monitor mounting shell 3. This prevents the monitor mounting shell 3 from deforming due to high temperature and pressure, which could cause the interior of the monitor mounting shell 3 to lose its seal, and thus avoids direct damage to the monitor body 2 caused by high pressure.
[0032] The technical means disclosed in this utility model are not limited to those described above, but also include technical solutions composed of equivalent substitutions of the above technical features. Matters not covered in this utility model are common knowledge to those skilled in the art.
Claims
1. A remote monitoring device for grown diamonds, comprising a monitor body (2), a monitor mounting shell (3), and a growing chamber (1) for mounting the monitor body (2) and the monitor mounting shell (3), wherein the monitor mounting shell (3) is fixedly installed inside the growing chamber (1), and the monitor body (2) is movably installed inside the growing chamber (1), characterized in that: The monitoring probe of the monitor body (2) passes through the inside of the monitor mounting shell (3) and is located inside the cultivation chamber (1). A sealing sleeve (7) is fixedly fitted on the monitoring probe of the monitor body (2), and a sealing mechanism is provided on the monitor mounting shell (3). The sealing mechanism includes: The movable tube (8) and the movable plate (9) are fixedly installed on the top of the monitor mounting housing (3) and the movable plate (9) is movably installed inside the movable tube (8). The first rack (10) and the second rack (11) are fixedly installed on the bottom wall of the movable plate (9). The bottom of the first rack (10) passes through the movable tube (8) and the side wall of the monitor mounting shell (3) and is located inside the monitor mounting shell (3). The second rack (11) is fixedly installed on the side wall of the monitor body (2). The mounting shaft (12) and the transmission gear (13) are installed horizontally inside the monitor mounting housing (3). The transmission gear (13) is movably sleeved on the mounting shaft (12) at the position corresponding to the first rack (10) and the second rack (11), and the transmission gear (13) meshes with the first rack (10) and the second rack (11) respectively.
2. The remote monitoring device for grown diamonds according to claim 1, characterized in that: The sealing sleeve (7) is a hollow frustum structure. The sealing sleeve (7) gradually decreases in size towards the monitor mounting shell (3), and the sealing sleeve (7) is made of rubber.
3. The remote monitoring device for cultured diamonds according to claim 1, characterized in that: A mounting rod (14) is fixedly installed at the bottom of the movable plate (9). The mounting rod (14) passes through the side wall of the monitor body (2) and the monitor mounting shell (3) downwards. A mounting spring (15) located inside the movable tube (8) is sleeved on the mounting rod (14).
4. The remote monitoring device for grown diamonds according to claim 3, characterized in that: The mounting rod (14) has an exhaust port (16) inside, which passes through the movable tube (8) and the interior of the cultivation chamber (1).
5. The remote monitoring device for cultured diamonds according to claim 1, characterized in that: The cultivation chamber (1) is equipped with a door (4) that is movably installed on the chamber via a hinge, and a cultivation table (17) is provided inside the cultivation chamber (1).
6. The remote monitoring device for grown diamonds according to claim 5, characterized in that: The cultivation chamber (1) is equipped with a booster (5), and a booster pipe (6) is installed on the output end of the booster (5). The booster pipe (6) is connected to the interior of the cultivation chamber (1).