Intelligent full-automatic standardization and cultivation room

The design of the intelligent fully automated curing room enables the automated placement and removal of test blocks, solving the problems of temperature and humidity fluctuations and increased labor intensity caused by frequent operation by laboratory personnel in the existing technology, and improving the stability and convenience of test block curing.

CN120422343BActive Publication Date: 2026-07-21THE SECOND CONSTRUCTION CO LTD OF CHINA CONSTRUCTION THIRD ENGINEERING BUREAU
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
THE SECOND CONSTRUCTION CO LTD OF CHINA CONSTRUCTION THIRD ENGINEERING BUREAU
Filing Date
2025-07-07
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

In the existing intelligent curing room, the curing process of concrete test blocks requires frequent entry and exit of laboratory personnel, which leads to fluctuations in temperature and humidity, increases the labor intensity of personnel, and poses a risk of human error.

Method used

An intelligent, fully automated standard curing chamber was designed, which uses a placement window and a retrieval window, combined with placement components, connection components and conveying components, to realize the automated placement and retrieval of test blocks. The stability and humidity control of the test blocks are ensured by drive components and humidification components.

Benefits of technology

It reduces the workload of laboratory personnel, avoids temperature and humidity fluctuations, improves the convenience of placing and retrieving test blocks, ensures the stability and humidity uniformity of test blocks, and reduces the risk of human error.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of test block maintenance, and discloses an intelligent full-automatic standard maintenance room, which comprises a maintenance room, a mounting ring arranged in the maintenance room, a placing window arranged on one side of the maintenance room, a taking window arranged on the other side of the maintenance room, a placing assembly, a plurality of placing tables arranged in the mounting ring, containing grooves arranged on the placing tables and placing plates sliding in the containing grooves and used for bearing test blocks, a connecting assembly, fixed blocks fixed to the top sides of the two ends of the placing tables, connecting columns fixed to the outer sides of the fixed blocks and mounting arms rotationally connected to the tail ends of the connecting columns and fixed to the inner walls of the mounting ring. The application can conveniently maintain the concrete test blocks by experimenters, has high working performance, can sequentially sort the test blocks placed in the maintenance room, is convenient for the experimenters to take the test blocks, can self-adaptively clamp the placed test blocks and has high stability.
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Description

Technical Field

[0001] This invention relates to the field of test block curing technology, specifically to an intelligent, fully automated curing room. Background Technology

[0002] Concrete test blocks are important components used to reflect the strength of concrete structures. Before being prepared and sent for testing, concrete test blocks need to be placed in a curing room for curing and monitoring.

[0003] A patent application with application number CN2021209307186 and publication date of 2021-12-03 discloses an intelligent curing room, including a curing chamber, a placement rack, and a control cabinet. Temperature and humidity sensors are installed on one side of the inner wall of the curing chamber. The placement rack includes a support frame, inside which a placement plate is installed. The surface of the placement plate has evenly distributed grooves, each containing a contact switch. The control cabinet contains a timer and a controller. Each timer corresponds to one of the contact switches, and the signal receiving end of the timer is communicatively connected to the signal output end of each contact switch. The signal output ends of the temperature sensor, humidity sensor, and timer are all communicatively connected to the signal receiving end of the controller. With this device, personnel can monitor the condition of the concrete curing test blocks inside the curing chamber in real time without needing to be present. Abnormalities inside the curing chamber can be detected and addressed promptly, or test blocks that meet the testing standards can be sent for testing immediately.

[0004] Although the standard curing room can cure concrete test blocks, the process requires laboratory personnel to frequently enter and exit the curing room to pick up and place the concrete test blocks. This not only causes frequent fluctuations in the temperature and humidity of the curing environment, but also significantly increases the labor intensity of personnel and the risk of human error. Therefore, we propose an intelligent fully automatic standard curing room. Summary of the Invention

[0005] The purpose of this invention is to overcome the above-mentioned shortcomings and provide an intelligent, fully automated standard maintenance room.

[0006] To solve the above-mentioned technical problems, the present invention adopts the following technical solution: The present invention is achieved by the following technical solution: an intelligent fully automatic curing room, including a curing room, an installation ring set in the curing room, a placement window on one side of the curing room and a retrieval window on the other side of the curing room. Through the placement window, the experimenter can conveniently place the test block into the curing room, and through the retrieval window, the experimenter can conveniently retrieve the test block inside the curing room.

[0007] The placement assembly includes multiple placement platforms disposed inside the mounting ring, receiving grooves formed on the placement platforms, and a placement plate that slides inside the receiving grooves to support the test blocks. The operation of the placement assembly allows the test blocks inside the curing chamber to be supported.

[0008] The connecting assembly includes fixed blocks at both ends of the top side of the placement platform, connecting columns fixed to the outside of the fixed blocks, and mounting arms rotatably connected to the tail end of the connecting columns and fixed to the inner wall of the mounting ring. Through the operation of the connecting assembly, the placement platform can be rotatably connected to the inside of the mounting ring.

[0009] The conveying assembly includes mounting blocks on both sides above the placement plate, a guide plate inside the mounting blocks for guiding the displacement of the test blocks, and drive wheels at both ends of the guide plate for driving the test blocks to move. By operating the conveying assembly, the test blocks inside the curing chamber can be conveyed out of the curing chamber.

[0010] As a further improvement to the above solution, the placement platform is provided with a driving assembly for driving the mounting block to move. The driving assembly includes symmetrically arranged grooves at both ends of the placement platform, a driving plate that slides through the grooves, multiple through holes on the driving plate, and a driving rod that slides through the through holes. One end of the driving rod is fixed to an adjacent mounting block, and the other end of the driving rod is fixed with a limiting block to prevent the driving rod from detaching from the through hole. A connecting spring fixed between the driving plate and the mounting block is movably sleeved on the outside of the driving rod. Lead screws with opposite thread directions are provided below both ends of the placement platform. The driving plate below the placement platform has threaded holes that mate with the adjacent lead screws. Multiple gears are fixedly sleeved on the outer wall of the lead screws below the placement plate. A rack plate is fixed to the bottom side of the placement plate on the outside of each gear for driving the gear to rotate. Through the operation of the above components, the test block can be clamped on the placement plate, which can cause the test block on the placement plate to move.

[0011] As a further improvement to the above solution, a drive shaft is fixedly inserted through the middle of the drive wheel. One end of the drive shaft is connected to a motor for driving the drive shaft to rotate. The other end of the drive shaft passes through to the bottom of the placement platform and is fixed with a transmission plate. The movable end of the transmission plate is hinged to a transmission plate two, and the movable end of the transmission plate two is hinged to a transmission plate three. The inner walls on both sides of the mounting ring are provided with limiting grooves that slide with the transmission plate three to restrict the deflection of the placement platform. The placement platform can be locked by the operation of the above components.

[0012] As a further improvement to the above solution, the placement platform is provided with a sliding groove that slides with the drive shaft, the mounting block is provided with a rotating hole that rotates with the drive shaft, and multiple fixed posts are fixed between the mounting block and the guide plate. The two ends of the lead screw are rotatably connected to positioning plates fixed on the bottom side of the placement platform for supporting the lead screw. The sliding groove can prevent the placement platform from interfering with the displacement of the drive shaft. The fixed posts can fix the guide plate on the mounting block. The positioning plates can install the lead screw on the bottom side of the placement platform.

[0013] As a further improvement to the above solution, the outer wall of the mounting ring is fixedly fitted with multiple gear rings for driving the mounting ring to rotate. A connecting shaft is provided on one side of the gear ring, and multiple gears are fixedly fitted on the outer wall of the connecting shaft to drive the gear ring to rotate. The mounting ring is equipped with a humidification component, which includes a rotating shaft inside the curing chamber, a loading block fixedly fitted on the outer wall of the rotating shaft, and an infusion pipe located below the loading block. Multiple nozzles fixed to the bottom side of the loading block for spraying water mist are installed on the infusion pipe. A half gear for driving the rotating shaft to rotate is fixedly fitted on the outer wall of the rotating shaft, and a rack plate fixed inside the mounting ring for driving the half gear to rotate is provided on the outer side of the half gear. Through the operation of the above components, the humidity inside the curing chamber can be increased, which can drive the loading block to deflect and make the water mist sprayed by the nozzles evenly distributed inside the curing chamber.

[0014] As a further improvement to the above solution, an annular groove is provided on the outer side of the mounting ring, and a support block for supporting the mounting ring is slidably inserted into the annular groove and fixed inside the curing chamber. Through the cooperation of the support block and the annular groove, the mounting ring can be confined inside the curing chamber.

[0015] As a further improvement to the above solution, one end of the connecting shaft extends through to the outside of the curing chamber and is connected to a motor two fixed outside the curing chamber. The other end of the connecting shaft is rotatably connected to the inner wall of the curing chamber. A rotating hole is provided on the support block near the connecting shaft to cooperate with the rotation of the connecting shaft. The connecting shaft can be driven to rotate by the operation of the motor two.

[0016] As a further improvement to the above solution, the infusion tube is a flexible tube that can be bent. One end of the infusion tube is closed, and the other end of the infusion tube extends to the outside of the curing chamber. The infusion tube, being a flexible tube, can rotate along with the loading block when it rotates.

[0017] As a further improvement to the above solution, a guide groove is provided on the side of the transmission plate three near the transmission plate two. A guide block is slidably inserted into the guide groove and fixed to the bottom side of the placement platform to limit the displacement direction of the transmission plate two. Through the cooperation of the guide groove and the guide block, the displacement of the transmission plate three can be limited, so as to prevent the transmission plate three from deflecting during the displacement process.

[0018] As a further improvement to the above solution, both the placement window and the retrieval window are provided with a shelf fixed to the outside of the curing chamber for placing the test block. Both the placement window and the retrieval window are provided with a sealing plate that slides on the top side of the adjacent shelf. The top side of the sealing plate is provided with a sliding groove. A sliding column fixed to the outside of the curing chamber slides through the sliding groove. The end of the sliding column away from the curing chamber is fixed with a stop to prevent the sealing plate from separating from the sliding column. The placement window and the retrieval window can be closed or opened through the sealing plate.

[0019] Compared with the prior art, the beneficial effects of the present invention are as follows: 1. This invention facilitates the curing of concrete test blocks by laboratory personnel, avoiding the need for frequent entry and exit from the curing chamber when placing and retrieving concrete test blocks, thus reducing the workload of laboratory personnel. It has high working performance, allowing test blocks placed inside the curing chamber to be sorted sequentially for easy access by laboratory personnel, preventing the mistaken removal of test blocks that have not reached the curing period. It can adaptively clamp the placed test blocks, not only applicable to concrete test blocks of different sizes, but also preventing the test blocks from shifting during transportation. It has high stability performance, and when the drive component wears, it can cause the drive component to abut against the test block, preventing the drive component from failing to drive the test block to move. It also has strong continuous working capability.

[0020] 2. This invention can limit the placement component inside the curing chamber when the experimental personnel place or retrieve the test blocks, thereby improving the stability of the placement component and preventing the placement component from deflecting during the process of placing or retrieving the test blocks, which would prevent the experimental personnel from placing the test blocks smoothly. The humidity inside the curing chamber can be adjusted according to the curing requirements, which can promote the uniform distribution of water mist sprayed by the nozzle inside the curing chamber, resulting in high working performance. Attached Figure Description

[0021] The accompanying drawings, which form part of this application, are used to provide a further understanding of the invention. The illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an undue limitation of the invention. In the drawings: Figure 1 This is a structural diagram of an intelligent, fully automated standard curing room; Figure 2 This is a schematic diagram of the structure for installing rings in an intelligent, fully automated standard curing room; Figure 3 This is a schematic diagram of an annular trough in an intelligent, fully automated standard curing room; Figure 4 This is a schematic diagram of the structure of a fixed block in an intelligent fully automated standard curing room; Figure 5 This is a schematic diagram of the structure of an installation block in an intelligent, fully automated standard curing room; Figure 6 This is a schematic diagram of a lead screw in an intelligent, fully automated standard curing room; Figure 7 This is a schematic diagram of the structure of a placement platform in an intelligent, fully automated standard curing room; Figure 8 This is a schematic diagram of the drive wheels in an intelligent, fully automated standard maintenance room; Figure 9 A schematic diagram of a half gear in an intelligent, fully automated standard curing room; Figure 10 This is a schematic diagram of an intelligent, fully automated standard curing room; Figure 11 for Figure 2 Enlarged structural diagram at point A; Figure 12 for Figure 10 Enlarged structural diagram at point B.

[0022] In the diagram: 1. Curing chamber; 2. Mounting ring; 3. Placement platform; 4. Receiving groove; 5. Placement plate; 6. Fixing block; 7. Connecting column; 8. Mounting arm; 9. Mounting block; 10. Drive shaft; 11. Drive wheel; 12. Guide plate; 13. Drive plate; 14. Drive rod; 15. Connecting spring; 16. Limiting block; 17. Lead screw; 18. Positioning plate; 19. Gear 1; 20. Rack plate 1; 21. Slide groove; 22. Fixing column; 23. Transmission plate one; 24. Transmission plate two; 25. Transmission plate three; 26. Guide block; 27. Guide groove; 28. Rotating shaft; 29. ​​Half gear; 30. Rack plate two; 31. Loading block; 32. Infusion tube; 33. Nozzle; 34. Limiting groove; 35. Sealing plate; 36. Shelf plate; 37. Sliding groove; 38. Stop block; 39. Annular groove; 40. Support block; 41. Gear ring; 42. Connecting shaft; 43. Gear two. Detailed Implementation

[0023] The technical solutions of the present invention will be clearly and completely described below with reference to the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of the embodiments. Unless otherwise specified, the embodiments and features in the embodiments of this application can be combined with each other. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0024] Example 1: Combination Figure 1 , Figure 2 and Figure 7 An intelligent fully automatic standard curing room according to this embodiment includes a curing room 1, an installation ring 2 disposed in the curing room 1, a placement window opened on one side of the curing room 1 and a retrieval window opened on the other side of the curing room 1. An air conditioner and a humidity sensor are installed in the curing room 1. The placement component includes multiple placement platforms 3 disposed inside the installation ring 2, a receiving groove 4 opened on the placement platform 3, and a placement plate 5 sliding inside the receiving groove 4 for carrying the test block. The connecting assembly includes a fixing block 6 fixed to both ends of the top side of the placement platform 3, a connecting post 7 fixed to the outside of the fixing block 6, and a mounting arm 8 rotatably connected to the tail end of the connecting post 7 and fixed to the inner wall of the mounting ring 2. The conveying assembly includes mounting blocks 9 disposed on both sides above the placement plate 5, a guide plate 12 disposed inside the mounting blocks 9 for guiding the displacement of the test block, and drive wheels 11 disposed at both ends of the guide plate 12 for driving the test block to move.

[0025] The implementation principle of an intelligent fully automatic standard curing room in this application embodiment is as follows: When a test block needs to be cured, it can be placed on the placement plate 5 inside the placement platform 3 through the placement window. The rotation of the drive wheel 11 causes the test block on the placement plate 5 to shift, moving it towards the retrieval window. The guide plate 12 guides the shifting test block, preventing it from shifting during the shift. Afterwards, other test blocks can be placed. The curing cycle for the test blocks is generally 28 days. The number of test blocks is determined by the number of placement platforms 3 inside the mounting ring 2. If the number of placement platforms 3 inside the mounting ring 2 is 4, any placement platform 3 can be set as the initial placement platform 5. Placement platform 3 is used as the initial placement platform. Then, 7 test blocks are placed on the placement plate 5 within the initial placement platform 3. The installation ring 2 is then rotated, causing the initial placement platform 3 to rotate as well. This causes the remaining placement platforms 3 without test blocks to align with the placement windows. In turn, 7 test blocks are placed on the placement plates 5 within the other placement platforms 3 inside the installation ring 2. This process is repeated until all remaining test blocks are placed. The temperature inside the curing chamber 1 can be regulated by the operation of the air conditioner. When the test blocks inside the curing chamber 1 reach the 28-day curing period, the rotation of the installation ring 2 causes the test blocks on the placement platform 3 to rotate. When the test blocks on the placement platform 3 align with the retrieval window, the experimenter can retrieve the test blocks on the placement platform 3 that have reached the curing period.

[0026] Example 2: Combination Figure 4 , Figure 5 , Figure 6 and Figure 8 This embodiment, based on embodiment 1, further improves upon the following: The placement platform 3 is provided with a driving assembly for displacing the mounting blocks 9. The driving assembly includes symmetrically arranged grooves 21 at both ends of the placement platform 3, a driving plate 13 slidably passing through the grooves 21, multiple through holes on the driving plate 13, and a driving rod 14 slidably passing through the through holes. One end of the driving rod 14 is fixed to an adjacent mounting block 9, and the other end of the driving rod 14 is fixed with a limiting block 16 to prevent the driving rod 14 from detaching from the through hole. A connecting spring 15, fixed between the driving plate 13 and the mounting block 9, is movably sleeved on the outside of the driving rod 14. Lead screws 17 with opposite thread directions are provided below both ends of the placement platform 3. The driving plate 13 below the placement platform 3 has threaded holes that thread-mate with the adjacent lead screws 17. The drive rod 17 below the placement plate 5... Multiple gears 19 are fixedly sleeved on the outer wall of the lead screw 17. A rack plate 20 is fixed to the bottom side of the placement plate 5 on the outer side of the gears 19 to drive the gears 19 to rotate. When the test block is placed on the placement plate 5, the test block on the placement plate 5 will press down on the placement plate 5, causing the placement plate 5 to move, causing the rack plate 20 to move vertically, causing the gears 19 to rotate, and causing the lead screw 17 to rotate. Through the threaded engagement between the lead screw 17 and the drive plate 13, the drive plate 13 is moved towards the test block, causing the mounting block 9 to move towards the test block, and causing the drive wheel 11 and guide plate 12 to move towards the test block. When the drive wheel 11 and guide plate 12 abut against the test block, the test block is clamped on the placement plate 5. Through the rotation of the drive wheel 11, the test block on the placement plate 5 can be moved.

[0027] Example 3: Combination Figure 11This embodiment, based on embodiment 1, further improves upon the following: a drive shaft 10 is fixedly inserted through the middle of the drive wheel 11. One end of the drive shaft 10 is connected to a motor 1 for driving the drive shaft 10 to rotate. The motor 1 is a forward and reverse stepper motor. The other end of the drive shaft 10 extends through to the bottom of the placement platform 3 and is fixed with a transmission plate 1 23. The movable end of the transmission plate 1 23 is hinged to a transmission plate 24, and the movable end of the transmission plate 24 is hinged to a transmission plate 3 25. The inner walls on both sides of the mounting ring 2 are provided with limiting grooves 34 that slide with the transmission plate 3 25 to restrict the deflection of the placement platform 3. The drive shaft 10 can rotate, which in turn drives the drive wheel 11 to rotate. When the drive shaft 10 rotates, it will drive the transmission plate 1 23 to rotate, drive the transmission plate 24 to deflect, and drive the transmission plate 3 25 to move back and forth. When placing the test block, the drive shaft 10 near the retrieval window does not rotate, and when retrieving the test block, the drive shaft 10 near the placement window does not rotate. At this time, the transmission plate 3 25 will always be inserted into the limiting slot 34, thereby locking the placement platform 3 and preventing the placement platform 3 from deflecting during the process of placing the test block, which would prevent the experimenter from successfully placing the test block.

[0028] The placement platform 3 has a sliding groove that slides with the drive shaft 10, and the mounting block 9 has a rotating hole that rotates with the drive shaft 10. Multiple fixing posts 22 are fixed between the mounting block 9 and the guide plate 12. The two ends of the lead screw 17 are rotatably connected to positioning plates 18 fixed on the bottom side of the placement platform 3 to support the lead screw 17. The sliding groove can prevent the placement platform 3 from interfering with the displacement of the drive shaft 10. The fixing posts 22 can fix the guide plate 12 on the mounting block 9. The positioning plates 18 can install the lead screw 17 on the bottom side of the placement platform 3.

[0029] Example 4: Combination Figure 9This embodiment, based on Embodiment 1, further improves upon the following: Multiple gear rings 41 for driving the mounting ring 2 to rotate are fixedly sleeved on the outer wall of the mounting ring 2. A connecting shaft 42 is provided on one side of the gear ring 41. Multiple gears 43 corresponding to the gear ring 41 and used to drive the gear ring 41 to rotate are fixedly sleeved on the outer wall of the connecting shaft 42. A humidification assembly is provided inside the mounting ring 2. The humidification assembly includes a rotating shaft 28 rotating inside the curing chamber 1, a loading block 31 fixedly sleeved on the outer wall of the rotating shaft 28, and an infusion pipe 32 located below the loading block 31. Multiple nozzles 33 for spraying water mist are installed on the infusion pipe 32 and fixed to the bottom side of the loading block 31. A half-gear 29 for driving the rotating shaft 28 to rotate is fixedly sleeved on the outer wall of the rotating shaft 28. A half-gear 29 fixed inside the mounting ring 2 is provided on the outer side of the half-gear 29. The rack plate 30, which drives the half gear 29 to rotate, can deliver sufficient water to the nozzle 33 through the infusion pipe 32. The water mist sprayed by the nozzle 33 can increase the humidity inside the curing chamber 1. The rotation of the connecting shaft 42 can drive the gear 43 to rotate, which in turn drives the mounting ring 2 to rotate. When it is not necessary to place or remove the test block, the connecting shaft 42 can rotate intermittently in both directions, which in turn drives the mounting ring 2 to rotate intermittently in both directions, which in turn drives the rack plate 30 to rotate, which drives the half gear 29 to rotate back and forth, which drives the rotating shaft 28 to deflect, which drives the loading block 31 and the infusion pipe 32 to deflect, which drives the nozzle 33 to deflect. At this time, the range of water sprayed by the nozzle 33 can be increased, so that the water mist sprayed by the nozzle 33 is evenly distributed inside the curing chamber 1.

[0030] Example 5: Combination Figure 3 Based on Embodiment 1, this embodiment is further improved in that: an annular groove 39 is provided on the outer side of the mounting ring 2, and a support block 40 fixed inside the curing chamber 1 for supporting the mounting ring 2 is slidably inserted inside the annular groove 39. Through the cooperation of the support block 40 and the annular groove 39, the mounting ring 2 can be confined inside the curing chamber 1.

[0031] One end of the connecting shaft 42 extends through to the outside of the curing chamber 1 and is connected to a motor 2 fixed on the outside of the curing chamber 1. The motor 2 is a forward and reverse stepper motor. The other end of the connecting shaft 42 is rotatably connected to the inner wall of the curing chamber 1. The support block 40 near the connecting shaft 42 has a rotating hole that rotatably engages with the connecting shaft 42. The operation of the motor 2 can drive the connecting shaft 42 to rotate.

[0032] The infusion tube 32 is a flexible tube that can be bent. One end of the infusion tube 32 is closed, and the other end of the infusion tube 32 extends to the outside of the curing chamber 1. When it is necessary to use the infusion tube 32 to transport water, the infusion tube 32 located outside the curing chamber 1 is connected to a water supply device, such as a water pump, so that sufficient water can be transported to the infusion tube 32.

[0033] A guide groove 27 is provided on the side of the transmission plate 25 near the transmission plate 24. A guide block 26, which is fixed to the bottom side of the placement platform 3, is slidably inserted into the guide groove 27 to limit the displacement direction of the transmission plate 24. Through the cooperation of the guide groove 27 and the guide block 26, the displacement of the transmission plate 25 can be limited, so as to prevent the transmission plate 25 from deflecting during the displacement process.

[0034] Example 6: Combination Figure 10 and Figure 12 This embodiment, based on embodiment 1, further improves upon the following: Below both the placement window and the retrieval window, there is a shelf 36 fixed to the outside of the curing chamber 1 for placing the test block. On the outside of both the placement window and the retrieval window, there is a sealing plate 35 that slides on the top side of the adjacent shelf 36. A sliding groove 37 is provided on the top side of the sealing plate 35. A sliding column fixed to the outside of the curing chamber 1 slides through the sliding groove 37. At the end of the sliding column away from the curing chamber 1, a stop block 38 is fixed to prevent the sealing plate 35 from separating from the sliding column. The diameter of the stop block 38 is larger than the width of the opening of the sliding groove 37. The sealing plate 35 can close the placement window and the retrieval window. When it is necessary to open the placement window or the retrieval window, the sealing plate 35 can be pulled. Through the cooperation of the sliding column and the sliding groove 37, the sealing plate 35 can be moved, thereby opening the placement window or the retrieval window.

[0035] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within the present invention.

Claims

1. An intelligent fully automatic standard curing room, comprising a curing room (1), an installation ring (2) disposed within the curing room (1), a placement window on one side of the curing room (1), and a retrieval window on the other side of the curing room (1), characterized in that: The placement assembly includes multiple placement platforms (3) disposed inside the mounting ring (2), a receiving groove (4) opened on the placement platform (3), and a placement plate (5) sliding inside the receiving groove (4) for carrying the test block. The connecting assembly includes a fixing block (6) fixed to both ends of the top side of the placement platform (3), a connecting post (7) fixed to the outside of the fixing block (6), and a mounting arm (8) rotatably connected to the tail end of the connecting post (7) and fixed to the inner wall of the mounting ring (2). The conveying assembly includes mounting blocks (9) disposed on both sides above the placement plate (5), a guide plate (12) disposed inside the mounting block (9) for guiding the displacement of the test block, and drive wheels (11) disposed at both ends of the guide plate (12) for driving the test block to move. Multiple gear rings (41) for driving the mounting ring (2) to rotate are fixedly sleeved on the outer wall of the mounting ring (2). A connecting shaft (42) is provided on one side of the gear ring (41). Multiple gears (43) for driving the gear ring (41) to rotate are fixedly sleeved on the outer wall of the connecting shaft (42). The interior is equipped with a humidification component, which includes a rotating shaft (28) that rotates inside the curing chamber (1), a loading block (31) that is fixedly sleeved on the outer wall of the rotating shaft (28), and an infusion pipe (32) set below the loading block (31). Multiple nozzles (33) for spraying water mist are installed on the infusion pipe (32) and fixed on the bottom side of the loading block (31). A half gear (29) for driving the rotating shaft (28) to rotate is fixedly sleeved on the outer wall of the rotating shaft (28). A rack plate (30) fixed inside the mounting ring (2) for driving the half gear (29) to rotate is provided on the outside of the half gear (29).

2. The intelligent fully automated standard curing room as described in claim 1, characterized in that, The placement platform (3) is provided with a driving assembly for driving the mounting block (9) to move. The driving assembly includes a sliding groove (21) symmetrically arranged at both ends of the placement platform (3), a driving plate (13) slidably passing through the sliding groove (21), multiple through holes on the driving plate (13), and a driving rod (14) slidably passing through the through holes. One end of the driving rod (14) is fixed to the adjacent mounting block (9), and the other end of the driving rod (14) is fixed with a limiting block (16) to prevent the driving rod (14) from detaching from the through hole. The external movable sleeve is provided with a connecting spring (15) fixed between the drive plate (13) and the mounting block (9). The bottom of both ends of the placement platform (3) is provided with screws (17) with opposite thread directions at both ends. The drive plate (13) located below the placement platform (3) is provided with threaded holes that are threaded to the adjacent screws (17). Multiple gears (19) are fixedly sleeved on the outer wall of the screws (17) located below the placement plate (5). The outer side of the gears (19) is provided with rack plates (20) fixed on the bottom side of the placement plate (5) for driving the gears (19) to rotate.

3. The intelligent fully automated standard curing room as described in claim 2, characterized in that, A drive shaft (10) is fixedly inserted through the middle of the drive wheel (11). One end of the drive shaft (10) is connected to a motor for driving the drive shaft (10) to rotate. The other end of the drive shaft (10) passes through the bottom of the placement platform (3) and is fixed with a transmission plate (23). The movable end of the transmission plate (23) is hinged to a transmission plate (24). The movable end of the transmission plate (24) is hinged to a transmission plate (35). The inner walls on both sides of the mounting ring (2) are provided with limiting grooves (34) that slide with the transmission plate (35) to restrict the deflection of the placement platform (3).

4. The intelligent fully automatic standard curing room as described in claim 3, characterized in that, The placement platform (3) has a sliding groove that slides with the drive shaft (10), the mounting block (9) has a rotating hole that rotates with the drive shaft (10), and multiple fixed posts (22) are fixed between the mounting block (9) and the guide plate (12). The two ends of the lead screw (17) are rotatably connected to positioning plates (18) fixed on the bottom side of the placement platform (3) for supporting the lead screw (17).

5. The intelligent fully automated standard curing room as described in claim 1, characterized in that, An annular groove (39) is provided on the outer side of the mounting ring (2), and a support block (40) fixed inside the curing chamber (1) is slidably inserted inside the annular groove (39) to support the mounting ring (2).

6. The intelligent fully automated standard curing room as described in claim 5, characterized in that, One end of the connecting shaft (42) extends through the outside of the curing chamber (1) and is connected to a motor 2 fixed on the outside of the curing chamber (1). The other end of the connecting shaft (42) is rotatably connected to the inner wall of the curing chamber (1). The support block (40) near the connecting shaft (42) has a rotating hole that rotatably engages with the connecting shaft (42).

7. The intelligent fully automatic standard curing room as described in claim 1, characterized in that, The infusion tube (32) is a flexible tube that can be bent. One end of the infusion tube (32) is closed, and the other end of the infusion tube (32) extends to the outside of the maintenance room (1).

8. The intelligent fully automatic standard curing room as described in claim 3, characterized in that, The transmission plate three (25) has a guide groove (27) on the side near the transmission plate two (24). A guide block (26) fixed to the bottom of the placement platform (3) is slidably inserted inside the guide groove (27) to limit the displacement direction of the transmission plate two (24).

9. The intelligent fully automatic standard curing room as described in claim 1, characterized in that, Below the placement window and the retrieval window, there is a shelf (36) fixed to the outside of the curing chamber (1) for placing test blocks. On the outside of the placement window and the retrieval window, there is a sealing plate (35) that slides on the top side of the adjacent shelf (36). A sliding groove (37) is opened on the top side of the sealing plate (35). A sliding column fixed to the outside of the curing chamber (1) slides through the inside of the sliding groove (37). A stop block (38) is fixed at the end of the sliding column away from the curing chamber (1) to prevent the sealing plate (35) from separating from the sliding column.