Automatic control system and control method for factory production of pilose antler mushroom

By introducing a storage box and knob design into the control box for the industrial production of deer antler mushrooms, automatic fire extinguishing and rapid opening in case of spontaneous combustion are achieved, solving the problems of flame spread and key hole failure in the existing technology, and ensuring equipment safety and rapid operation of the control box.

CN120113542BActive Publication Date: 2026-04-21GUIZHOU GUIWANG BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
GUIZHOU GUIWANG BIOTECHNOLOGY CO LTD
Filing Date
2023-12-08
Publication Date
2026-04-21

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Abstract

This invention discloses an automated control system and method for the industrial production of deer antler mushrooms, relating to the field of control box technology. The system includes a control box with a storage tank fixedly connected to its top. Symmetrically fixed air-blowing pipes are connected to the bottom of the storage tank, all penetrating the top of the control box. Rotating shafts are rotatably connected to the outer surfaces of the air-blowing pipes, also penetrating their outer surfaces. When spontaneous combustion occurs inside the control box, the high temperature generated by the combustion pushes a piston upwards, triggering the rotation of the rotating shafts and rotating plates. The air-blowing pipes then open, allowing carbon dioxide from the left chamber of the storage tank to be ejected through the air-blowing pipes and H-shaped pipes. The carbon dioxide surrounds the combustion point, isolating it from oxygen and quickly extinguishing the combustion. This prevents the spontaneous combustion from expanding and ultimately damaging the power supply to the equipment inside the control box if the fire is not detected in time, thus avoiding further losses.
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Description

Technical Field

[0001] This invention relates to the field of control box technology, specifically to an automated control system and control method for the industrial production of deer antler mushrooms. Background Technology

[0002] Deer antler mushroom is a delicious edible fungus, scientifically known as coral fungus. It looks like a young deer antler, hence the name. With the continuous improvement of people's living standards and science and technology, deer antler mushrooms have achieved automated production in factories. In automated production, in order to facilitate the control of the operation of multiple production equipment, the switch panels for controlling each piece of equipment are mostly installed in the control box, which is the control system. The operation of each production equipment is then controlled through the control box.

[0003] Currently, most control boxes are designed with explosion-proof technology. This is mainly to isolate the explosion or flame inside the box in case of a short circuit and the resulting high temperature that causes spontaneous combustion. This prevents the high-temperature gas or flame from spreading outside the box and causing a larger disaster. However, since there is no fire extinguishing device inside the control box, if the internal power supply spontaneously combusts due to a short circuit and is not detected in time, it can only be allowed to burn inside the box. This may eventually damage the power supply of all the equipment inside the box, resulting in serious losses.

[0004] Meanwhile, most existing control boxes have lock holes on their doors, which require a key to open. This means that if the key is lost or the lock hole is damaged, the control box cannot be opened immediately, thus preventing timely control of the power supply to various devices, affecting their normal use, and failing to meet people's needs.

[0005] In view of this, the present invention proposes an automated control system and control method for the industrial production of deer antler mushrooms. Summary of the Invention

[0006] (a) Technical problems to be solved

[0007] To address the shortcomings of existing technologies, this invention provides an automated control system and method for the industrial production of deer antler mushrooms, solving the problems mentioned in the background section.

[0008] (II) Technical Solution

[0009] To achieve the above objectives, the present invention provides the following technical solution: an automated control system and method for the industrial production of deer antler mushrooms, comprising a control box, a storage box fixedly connected to the top of the control box, air blowing pipes symmetrically fixedly connected to the bottom of the storage box, the air blowing pipes all penetrating the top of the control box, a rotating shaft rotatably connected to the outer surface of each air blowing pipe, the rotating shafts all penetrating the outer surface of the air blowing pipes, a rotating plate rotatably connected to the inner surface of each air blowing pipe, the rotating plates all fixedly connected to the rotating shafts, and push plates fixedly connected to the outer surface of each rotating shaft, the air blowing... Each tube has a fixed sleeve fixedly connected to its outer surface. Each fixed sleeve is slidably connected to a limit rod on the side away from the air blowing tube. Each limit rod has a triangular block fixedly connected to its lower surface. Each control box has a connecting cylinder fixedly connected through it to its top. Each connecting cylinder has a piston slidably connected to its inner surface. Each piston has a sliding column fixedly connected to its top. The sliding column is slidably connected to the top of the connecting cylinder. Each sliding column has a push rod fixedly connected to its top. A cooling groove is provided on the wall of the control box. An H-shaped tube is fixedly connected to the top of the inner wall of the control box. The two air blowing tubes are respectively connected to the cooling groove and the H-shaped tube.

[0010] Preferably, the limiting rod is engaged with the push plate, the connecting cylinder is located between the storage box and the control box, the push rod is inclined on the side near the triangular block, and the outer surface of the rotating plate is in contact with the inner surface of the air blowing pipe.

[0011] Preferably, a liquid outlet pipe is fixedly connected to the right side of the control box, and the liquid outlet pipe is connected to the cooling tank.

[0012] Preferably, a fixing box is symmetrically fixedly connected to the outer surface of the connecting cylinder, and a sliding block is slidably connected between the inner walls of the fixing box. A return spring is fixedly connected between the sliding block and the fixing box, and a pull ring is fixedly connected to the side of the sliding block away from the connecting cylinder.

[0013] Preferably, the sliding block and the outer surface of the connecting cylinder are slidably connected through each other, the side of the sliding block away from the return spring is inclined, and the pull ring and the fixing box are slidably connected through each other.

[0014] Preferably, a mounting plate is provided on the front side of the control box, a card plate is fixedly connected to the rear side of the mounting plate, and a card slot is provided on the right side of the control box.

[0015] Preferably, a knob is rotatably connected to the right side of the card plate, and an arc-shaped card block is symmetrically fixedly connected to the outer surface of the knob. A connecting block is slidably connected to the side of the mounting plate near the arc-shaped card block, and a pressure block is fixedly connected to the side of the connecting block near the arc-shaped card block. Two compression springs are fixedly connected between the pressure block and the mounting plate.

[0016] Preferably, the pressure block is arc-shaped on the side near the arc-shaped locking block, the connecting block is fixedly connected to a locking rod on the side away from the arc-shaped locking block, and a protective box is slidably connected to the right side of the control box.

[0017] The control method of the automated control system for the factory production of deer antler mushrooms, as described above, includes the following steps:

[0018] Preferred infrastructure construction:

[0019] Ensure that the production site has temperature, humidity and lighting control equipment. The power supply and control panel of the control equipment are installed in the control box. The control box is equipped with a storage box and mounting plate to ensure the safety of the control equipment during use.

[0020] Light control:

[0021] Deer antler mushrooms require specific light cycles to grow normally. A control box is used to control an intelligent lighting system. From day 1 to 12, the light intensity is 10-100 lux for 5-7 hours per day; from day 13 to 15, the light intensity is 300-500 lux for 10-13 hours per day; and from day 16 to 21, the light intensity is 100-200 lux for 2-4 hours per day.

[0022] Preferred temperature and humidity control:

[0023] The environment is monitored using temperature and humidity sensors, and the corresponding equipment is controlled through the control box. The temperature is set to 15-17℃ and the humidity to 96-100% for 1-12 days; the temperature is set to 14-18℃ and the humidity to 98-100% for 13-15 days; and the temperature is set to 16-18℃ and the humidity to 94-98% for 16-21 days.

[0024] Ventilation and carbon dioxide control:

[0025] The ventilation equipment and carbon dioxide control device can be automatically controlled and adjusted, and monitored simultaneously.

[0026] The carbon dioxide concentration is 1000-2000 ppm for days 1-12, 1500-1800 ppm for days 13-15, and 2300-2600 ppm for days 16-21.

[0027] (III) Beneficial Effects

[0028] The automated control system and method for the industrial production of deer antler mushrooms provided by this invention have the following beneficial effects:

[0029] 1. When spontaneous combustion occurs inside the control box, the high temperature generated by the spontaneous combustion pushes the piston upward, thereby triggering the rotating shaft and rotating plate to rotate. Then, the air blowing pipe is opened, allowing carbon dioxide in the left chamber of the storage box to be sprayed out through the air blowing pipe and H-shaped pipe. The carbon dioxide surrounds the area around the combustion point, isolating the oxygen at the combustion point, thereby quickly extinguishing the combustion point. This prevents the spontaneous combustion point from expanding if the staff cannot detect the spontaneous combustion phenomenon in time, and ultimately damaging all the power supplies of the equipment inside the control box, thus avoiding the expansion of losses.

[0030] 2. By allowing water to flow in the cooling tank, the cooling tank effectively exchanges heat with the control box, thereby effectively reducing the internal temperature of the control box and preventing the temperature inside the control box from becoming too high when the staff opens the control box for maintenance, which would affect the maintenance work.

[0031] 3. The sliding block supports the piston, preventing it from resetting due to the temperature drop inside the control chamber before staff arrives. This ensures a continuous output of carbon dioxide and water from the air blowing pipe, preventing the flame inside the control chamber from reigniting before staff arrive. This improves the continuity and temperature control of the flame inside the control chamber. Furthermore, the limit rod prevents the push plate from rotating due to vibration or other external forces when the control chamber is in normal operation. This prevents the air blowing pipe from opening and ensures the safety of carbon dioxide and water use.

[0032] 4. The installation and removal of the mounting plate and control box can be completed by rotating the knob each time. If the lock hole on the mounting plate is damaged or the key is lost, the mounting plate can be removed in time, so that the control box can be opened quickly. This prevents the inability to control the power of each device in time due to the inability to open the control box immediately. The disassembly and installation can be completed by simply rotating the knob, making the operation simple and quick. Attached Figure Description

[0033] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0034] Figure 2 For the present invention Figure 1 Schematic diagram of the top-middle section structure;

[0035] Figure 3 For the present invention Figure 2 Schematic diagram of a partial three-dimensional structure;

[0036] Figure 4 For the present invention Figure 3 Schematic diagram of partial cross-section of the structure;

[0037] Figure 5 For the present invention Figure 2 A schematic diagram of the structure viewed from below in the middle section;

[0038] Figure 6 For the present invention Figure 5 Schematic diagram of partial cross-section of the structure;

[0039] Figure 7 For the present invention Figure 6 Enlarged structural diagram at point A in the middle;

[0040] Figure 8 This is a schematic cross-sectional view of the control box structure of the present invention;

[0041] Figure 9 This is a side view of the structure of the present invention;

[0042] Figure 10 For the present invention Figure 9 Enlarged structural diagram at point B;

[0043] Figure 11 For the present invention Figure 9 Schematic diagram of partial cross-section of the structure;

[0044] Figure 12 This is a schematic diagram of the structure of the mounting plate of the present invention when it is moved;

[0045] Figure 13 This is a schematic diagram of the automated control process structure for the mushroom deer antler mushroom according to the present invention.

[0046] In the diagram: 1. Control box; 2. Storage box; 3. Air blowing pipe; 4. Connecting cylinder; 5. Rotating shaft; 6. Rotating plate; 7. Push plate; 8. Fixing sleeve; 9. Limiting rod; 10. Triangular block; 11. Push rod; 12. Sliding column; 13. Piston; 14. H-shaped tube; 15. Cooling tank; 16. Liquid outlet pipe; 17. Fixing box; 18. Sliding block; 19. Return spring; 20. Pull ring; 21. Mounting plate; 22. Clamping plate; 23. Clamping slot; 24. Knob; 25. Arc-shaped clamping block; 26. Connecting block; 27. Pressure block; 28. Compression spring; 29. ​​Clamping rod; 30. Protective box. Detailed Implementation

[0047] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. 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 scope of protection of the present invention.

[0048] This invention provides a technical solution:

[0049] Example

[0050] Please see Figures 1 to 8 An automated control system and method for the industrial production of deer antler mushrooms includes a control box 1. A storage box 2 is fixedly connected to the top of the control box 1. Air blowing pipes 3 are symmetrically fixedly connected to the bottom of the storage box 2. All air blowing pipes 3 pass through the top of the control box 1. Rotating shafts 5 are rotatably connected to the outer surface of each air blowing pipe 3. All rotating shafts 5 pass through the outer surface of each air blowing pipe 3. Rotating plates 6 are rotatably connected to the inner surface of each air blowing pipe 3. All rotating plates 6 are fixedly connected to the rotating shafts 5. Push plates 7 are fixedly connected to the outer surface of each rotating shaft 5. Fixing sleeves 8 are fixedly connected to the outer surface of each air blowing pipe 3. Limiting rods 9 are slidably connected to the side of each fixing sleeve 8 away from the air blowing pipe 3. Triangular... Block 10 and the top of the control box 1 are both fixedly connected to a connecting cylinder 4. A piston 13 is slidably connected to the inner surface of the connecting cylinder 4. A sliding column 12 is fixedly connected to the top of the piston 13. The sliding column 12 is slidably connected to the top of the connecting cylinder 4. A push rod 11 is fixedly connected to the top of the sliding column 12. A cooling groove 15 is opened on the wall of the control box 1. An H-shaped tube 14 is fixedly connected to the top of the inner wall of the control box 1. Two air blowing pipes 3 are respectively connected to the cooling groove 15 and the H-shaped tube 14. The storage box 2 is divided into two inner cavities, left and right. The left cavity of the storage box 2 is filled with carbon dioxide, and the right cavity of the storage box 2 is filled with water. The pressure in the inner cavity of the storage box 2 is greater than the pressure when combustion occurs in the control box 1.

[0051] Limiting rod 9 is engaged with push plate 7. Connecting cylinder 4 is located between storage box 2 and control box 1. Push rod 11 is inclined on the side near triangular block 10. The outer surface of rotating plate 6 is in contact with the inner surface of air pipe 3. Liquid outlet pipe 16 is fixedly connected to the right side of control box 1. Liquid outlet pipe 16 is connected to cooling tank 15. Fixed box 17 is symmetrically fixedly connected to the outer surface of connecting cylinder 4. Sliding block 18 is slidably connected between the inner walls of fixed box 17. Return spring 19 is fixedly connected between sliding block 18 and fixed box 17. Pull ring 20 is fixedly connected to the side of sliding block 18 away from connecting cylinder 4. Sliding block 18 and outer surface of connecting cylinder 4 are slidably connected. The side of sliding block 18 away from return spring 19 is inclined. Pull ring 20 is slidably connected to fixed box 17.

[0052] Compared with the prior art, this embodiment can immediately spray carbon dioxide to the burning flames when spontaneous combustion occurs inside the control box 1, and simultaneously introduce water into the walls of the control box 1 to cool it down, thereby extinguishing the flames immediately and preventing the fire from spreading and burning all the facilities inside the control box 1, thus reducing losses. In the prior art, the control box 1 does not have a fire extinguishing device. When the power supply inside the box spontaneously combusts due to a short circuit, if it cannot be detected in time, it can only be allowed to burn inside the control box 1, which may eventually damage the power supply of all the equipment inside the box, resulting in serious losses.

[0053] Further embodiments

[0054] Please see Figures 9 to 12 An automated control system and control method for the industrial production of deer antler mushrooms. The control box 1 has an installation plate 21 on the front side and a card plate 22 fixedly connected to the rear side of the installation plate 21. The control box 1 has a card slot 23 on the right side. The right side of the card plate 22 is rotatably connected to a knob 24. The outer surface of the knob 24 is symmetrically fixedly connected to an arc-shaped card block 25. The arc-shaped card block 25 is engaged with the card slot 23 through a card hole one. The installation plate 21 is slidably connected to a connecting block 26 near the arc-shaped card block 25. The connecting block 26 is fixedly connected to a pressure block 27 near the arc-shaped card block 25. Two compression springs 28 are fixedly connected between the pressure block 27 and the installation plate 21. The pressure block 27 is arc-shaped near the arc-shaped card block 25. The connecting block 26 is fixedly connected to a card rod 29 away from the arc-shaped card block 25. The card rod 29 can be engaged with the control box 1 through a card hole two. The right side of the control box 1 is slidably connected to a protective box 30.

[0055] Compared with the prior art, this embodiment can open the control box 1 immediately even if the lock hole on the box door is damaged or the lock key is lost, and operate the control power supply inside the control box 1 in a timely manner, so as to prevent the control box 1 from not being able to open immediately and the power supply of each device from not being able to be controlled in a timely manner, thus affecting the use of the equipment.

[0056] Further embodiments

[0057] The control method of the automated control system for the factory production of deer antler mushrooms, as described above, includes the following steps:

[0058] Infrastructure construction:

[0059] Ensure that the production site has temperature, humidity and lighting control equipment. The power supply and control panel of the control equipment are installed in the control box 1. The storage box 2 and the mounting plate 21 are installed on the control box 1 to ensure the safety of the control equipment during use.

[0060] Light control:

[0061] Deer antler mushrooms require specific light cycles to grow normally. The intelligent lighting system is controlled by control box 1. From day 1 to 12, the light intensity is 10-100 lux for 5-7 hours per day; from day 13 to 15, the light intensity is 300-500 lux for 10-13 hours per day; and from day 16 to 21, the light intensity is 100-200 lux for 2-4 hours per day.

[0062] Temperature and humidity control:

[0063] The environment is monitored using temperature and humidity sensors, and the corresponding equipment is controlled through control box 1. The temperature is set to 15-17℃ and the humidity to 96-100% for days 1-12; the temperature is set to 14-18℃ and the humidity to 98-100% for days 13-15; and the temperature is set to 16-18℃ and the humidity to 94-98% for days 16-21.

[0064] Ventilation and carbon dioxide control:

[0065] The ventilation equipment and carbon dioxide control device can be automatically controlled and adjusted, and monitored simultaneously.

[0066] The carbon dioxide concentration is 1000-2000 ppm for days 1-12, 1500-1800 ppm for days 13-15, and 2300-2600 ppm for days 16-21.

[0067] The following is the complete working process of the above embodiments:

[0068] During operation, when a short circuit occurs in the circuit inside the control box 1, the resulting high temperature may cause spontaneous combustion. At this time, the increased temperature inside the control box 1 leads to increased pressure. This increased pressure pushes the piston 13 upwards through the connecting cylinder 4. As the piston 13 slides upwards, it causes the sliding column 12 and push rod 11 to move upwards. When the push rod 11 moves upwards, one side of its inclined surface approaches the triangular block 10, causing the inclined surface of the push rod 11 to push the inclined surface of the triangular block 10, moving the triangular block 10 in the opposite direction to the push rod 11. This causes the triangular block 10 to simultaneously move the limiting rod 9 in the opposite direction to the push rod 11. The limiting rod 9 slides into the inner cavity of the fixed sleeve 8. As the push rod 11 moves upward, it pushes the triangular block 10 and the limiting rod 9 to move in the opposite direction to the push rod 11, thus moving the limiting rod 9 and the triangular block 10 away from the push rod 11. This causes the limiting rod 9 to disengage from the push plate 7. At the same time, the push rod 11 contacts the bottom of the push plate 7 and begins to push the push plate 7 to rotate upward around the rotating shaft 5. When the push plate 7 rotates upward, it drives the rotating shaft 5 to start rotating, which in turn drives the rotating plate 6 to rotate. This causes the outer surface of the rotating plate 6 to no longer adhere to the inner surface of the air blowing pipe 3. At this time, both air blowing pipes 3 open simultaneously, and the carbon dioxide in the left cavity of the storage box 2 enters the H-shaped pipe 14 from the left air blowing pipe 3, and then... The carbon dioxide ejected through the H-shaped tube 14, upon encountering the open flame inside the control box 1, surrounds the combustion point, isolating the surrounding oxygen and extinguishing the flame. When spontaneous combustion occurs inside the control box 1, the resulting high temperature, due to the connection between the bottom of the connecting cylinder 4 and the control box 1, pushes the piston 13 upwards, triggering the rotation of the rotating shaft 5 and the rotating plate 6. This opens the air blowing pipe 3, allowing the carbon dioxide in the left chamber of the storage tank 2 to be ejected through the air blowing pipe 3 and the H-shaped tube 14, surrounding the combustion point and extinguishing the flame. Oxygen is isolated, thus quickly extinguishing the combustion point and preventing the spontaneous combustion from expanding if the staff cannot detect it in time, which could eventually damage all the equipment power supply in the control box 1 and prevent further damage. When both air pipes 3 are opened at the same time, the water in the right cavity of the storage box 2 enters the cooling tank 15 through the right air pipe 3, and then is discharged from the outlet pipe 16 through the cooling tank 15. The flow of water in the cooling tank 15 enables the cooling tank 15 to effectively exchange heat with the control box 1, thereby effectively reducing the internal temperature of the control box 1. This prevents the temperature inside the control box 1 from being too high when the staff opens the control box 1 for maintenance, which would affect the maintenance work.

[0069] Simultaneously, as piston 13 slides upward within the inner cavity of connecting cylinder 4, piston 13 gradually approaches the inclined surface of one side of sliding block 18. Then, piston 13 presses against the inclined surface of one side of sliding block 18, causing sliding block 18 to move away from piston 13. The return spring 19 enters a compressed state under the thrust of sliding block 18. Then, as piston 13 continues to slide upward, piston 13 shifts away from the inclined surface of sliding block 18 and moves away from piston 13, thus releasing the pressing force on sliding block 18. This allows the return spring 19 to return to its original position. When the springback of 9 pushes the sliding block 18 back to its original position, if the piston 13 descends due to the decrease in temperature inside the control chamber 1, it will fall above the sliding block 18 due to the limit on the top plane of the sliding block 18, preventing the piston 13 from resetting. This allows the push rod 11 to continue supporting the push plate 7, and the air blowing pipe 3 remains open. Furthermore, the support of the sliding block 18 prevents the piston 13 from resetting due to the decrease in temperature inside the control chamber 1 before personnel arrive, thus ensuring the carbon dioxide in the storage tank 2 is contained. Water is continuously output from the air blowing pipe 3, thus preventing the flame inside the control box 1 from reigniting due to the cessation of carbon dioxide and water output before personnel arrive. This improves the continuity and temperature control of the flame inside the control box 1. Furthermore, the limit rod 9, when the control box 1 is in normal operation, prevents the push plate 7 from rotating due to vibration or other external forces, thereby preventing the air blowing pipe 3 from opening and avoiding accidental release of carbon dioxide and water from the storage tank 2. This phenomenon ensures the safety of carbon dioxide and water use. When the control box 1 is under maintenance, the pull ring 20 can be pulled to drive the sliding block 18 to slide towards the pull ring 20, so that the piston 13 loses the support of the sliding block 18 and then resets. At the same time, the push rod 11 is reset. After losing the support of the push rod 11, the rotating shaft 5 and the push plate 7 can be rotated to make the rotating plate 6 re-fit with the inner surface of the air blowing pipe 3. Then, the limit rod 9 is slid towards the push plate 7 to make the limit rod 9 re-engage with the push plate 7 and restore it to its initial state.

[0070] Furthermore, when the lock hole on the mounting plate 21 is damaged or the key is lost, the sliding protective box 30 can open the slot 23. At this time, the knob 24 can be rotated 90 degrees. The rotation of the knob 24 drives the arc-shaped locking block 25 to rotate, causing the arc-shaped locking block 25 to disengage from the slot 23. At the same time, through rotation, the arc surface of the arc-shaped locking block 25 presses against the arc surface of the pressure block 27, causing the pressure block 27 to move towards the mounting plate 21 under the pressure of the arc-shaped locking block 25. Then, driven by the pressure block 27, the pressure block 27 and the lock... When lever 29 moves away from knob 24, spring 28 is compressed, causing lever 29 to disengage from slot 23 in control box 1. At this point, arc-shaped locking block 25 disengages from slot 23, and lever 29 disengages from control box 1. Mounting plate 21 can then be pulled to slide to the right, disengaging it from the control box 1 opening and allowing operation of the internal power supply. Furthermore, when installation is required, [the mechanism can be adjusted]. Slide the mounting plate 21 to the left, inserting the locking plate 22 into the slot 23. Then rotate the knob 24 90 degrees, causing the knob 24 to rotate the arc-shaped locking block 25 90 degrees, so that the arc-shaped locking block 25 engages with the upper and lower sides of the slot 23. At the same time, as the arc-shaped locking block 25 rotates away from the pressure block 27, it is no longer squeezed by the pressure block 27. At this time, the return of the compression spring 28 causes the pressure block 27, the connecting block 26, and the locking rod 29 to move simultaneously towards the knob 24. At this time, the locking rod 29 re-engages with the control box 1. The mounting plate 21 is snapped together, thus completing the installation between the mounting plate 21 and the control box 1. The mounting plate 21 is installed and removed from the control box 1 by rotating the knob 24 90 degrees each time. When the lock hole on the box door of the mounting plate 21 is damaged or the key is lost, the mounting plate 21 can be removed in time, so that the control box 1 can be opened quickly. This prevents the inability to control the power of each device in time due to the inability to open the control box 1 immediately. Moreover, the disassembly and installation are completed by simply rotating the knob, making the operation simple and quick.

[0071] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An automated control system for the industrial production of deer antler mushrooms, comprising a control box (1), characterized in that: The top of the control box (1) is fixedly connected to a storage box (2). The bottom of the storage box (2) is symmetrically connected to an air blowing pipe (3). The air blowing pipes (3) all penetrate the top of the control box (1). The outer surface of each air blowing pipe (3) is rotatably connected to a rotating shaft (5). The rotating shafts (5) all penetrate the outer surface of the air blowing pipes (3). The inner surface of each air blowing pipe (3) is rotatably connected to a rotating plate (6). The rotating plates (6) are all fixedly connected to the rotating shafts (5). The outer surface of each rotating shaft (5) is fixedly connected to a push plate (7). The outer surface of each air blowing pipe (3) is fixedly connected to a fixing sleeve (8). The side of the fixing sleeve (8) away from the air blowing pipe (3) is slidably connected to a... The limit rod (9) has a triangular block (10) fixedly connected to its lower surface. The top of the control box (1) is fixedly connected to a connecting cylinder (4). The inner surface of the connecting cylinder (4) is slidably connected to a piston (13). The top of the piston (13) is fixedly connected to a sliding column (12). The sliding column (12) is slidably connected to the top of the connecting cylinder (4). The top of the sliding column (12) is fixedly connected to a push rod (11). The control box (1) has a cooling groove (15) on its wall. The top of the inner wall of the control box (1) is fixedly connected to an H-shaped tube (14). The two air blowing pipes (3) are connected to the cooling groove (15) and the H-shaped tube (14) respectively.

2. The automated control system for the industrialized production of deer antler mushrooms according to claim 1, characterized in that: The limiting rod (9) is engaged with the push plate (7), the connecting cylinder (4) is located between the storage box (2) and the control box (1), the push rod (11) is inclined on the side near the triangular block (10), and the outer surface of the rotating plate (6) is in contact with the inner surface of the air blowing pipe (3).

3. The automated control system for the industrialized production of deer antler mushrooms according to claim 1, characterized in that: The control box (1) is fixedly connected to the right side of the liquid outlet pipe (16), which is connected to the cooling tank (15).

4. The automated control system for the industrialized production of deer antler mushrooms according to claim 1, characterized in that: The outer surface of the connecting cylinder (4) is symmetrically fixedly connected to a fixing box (17). Sliding blocks (18) are slidably connected between the inner walls of the fixing boxes (17). A return spring (19) is fixedly connected between the sliding block (18) and the fixing box (17). A pull ring (20) is fixedly connected to the side of the sliding block (18) away from the connecting cylinder (4).

5. The automated control system for the industrialized production of deer antler mushrooms according to claim 4, characterized in that: The sliding block (18) and the outer surface of the connecting cylinder (4) are slidably connected through each other. The side of the sliding block (18) away from the return spring (19) is inclined. The pull ring (20) and the fixed box (17) are slidably connected through each other.

6. The automated control system for the industrialized production of deer antler mushrooms according to claim 1, characterized in that: The control box (1) has a mounting plate (21) on the front side, a card plate (22) is fixedly connected to the rear side of the mounting plate (21), and a card slot (23) is provided on the right side of the control box (1).

7. The automated control system for the industrialized production of deer antler mushrooms according to claim 6, characterized in that: A knob (24) is rotatably connected to the right side of the card plate (22). An arc-shaped card block (25) is symmetrically fixedly connected to the outer surface of the knob (24). A connecting block (26) is slidably connected to the side of the mounting plate (21) near the arc-shaped card block (25). A pressure block (27) is fixedly connected to the side of the connecting block (26) near the arc-shaped card block (25). Two compression springs (28) are fixedly connected between the pressure block (27) and the mounting plate (21).

8. The automated control system for the industrialized production of deer antler mushrooms according to claim 7, characterized in that: The pressure block (27) is arc-shaped on the side near the arc-shaped card block (25), and the connecting block (26) is fixedly connected to the card rod (29) on the side away from the arc-shaped card block (25). The control box (1) is slidably connected to the protective box (30).

9. An automated control method for the industrial production of *Mucuna arvensis*, applied to the automated control system for the industrial production of *Mucuna arvensis* as described in any one of claims 1-8, characterized in that, Includes the following steps: Infrastructure construction: Ensure that the production site has temperature, humidity and lighting control equipment. The power supply and control panel of the control equipment are installed in the control box (1). The storage box (2) and mounting plate (21) are installed on the control box (1) to ensure the safety of the control equipment during use. Light control: The antler mushroom requires specific light cycles to grow normally. The intelligent lighting system is controlled by the control box (1). The light intensity is 10-100 lux for 5-7 hours per day from day 1 to 12, 300-500 lux for 10-13 hours per day from day 13 to 15, and 100-200 lux for 2-4 hours per day from day 16 to 21.

10. The automated control method for the industrial production of *Deer Antler Mushroom* according to claim 9, characterized in that: Temperature and humidity control: The environment is monitored using temperature and humidity sensors, and the corresponding equipment is controlled by the control box (1). The temperature is set to 15-17℃ and the humidity is set to 96-100% for 1-12 days; the temperature is set to 14-18℃ and the humidity is set to 98-100% for 13-15 days; and the temperature is set to 16-18℃ and the humidity is set to 94-98% for 16-21 days. Ventilation and carbon dioxide control: The ventilation equipment and carbon dioxide control device are automatically controlled and adjusted, and monitoring is performed simultaneously. The carbon dioxide concentration is 1000-2000 ppm for days 1-12, 1500-1800 ppm for days 13-15, and 2300-2600 ppm for days 16-21.

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