Microecological preparation preparation device with multi-parameter regulation and control function

The microecological preparation device with multi-parameter control function adopts a frame, reaction vessel, cabinet, control console, heat pump component, stirring rod, mesh tray and I-shaped tube in conjunction with ring tooth plate, which solves the problems of carbon source agglomeration and waste gas accumulation, realizes the full mixing of carbon source and concentrated bacterial solution and the protection of microbial community, and improves preparation efficiency and product quality.

CN121896069APending Publication Date: 2026-04-21XIAMEN LINGDI ELECTRIC APPLIANCE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
XIAMEN LINGDI ELECTRIC APPLIANCE CO LTD
Filing Date
2025-12-09
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

In existing microecological preparation devices, carbon source agglomeration leads to insufficient fermentation reaction, waste gas accumulation inside the carbon source causes microbial contamination and death, and parts are prone to deformation, resulting in unstable equipment operation.

Method used

The system employs a frame, reaction vessel, cabinet, control console, heat pump assembly, solenoid valve one, solenoid valve two, servo motor, stirring rod, mesh tray, and I-shaped tube in conjunction with a toothed ring plate. The servo motor's shaft drives the stirring rod to rotate clockwise, agitating and mixing the concentrated bacterial solution and carbon source. The stirring rod also drives the I-shaped tube to rotate clockwise within the mesh tray, which in turn drives the toothed ring plate to rotate clockwise. The toothed ring plate breaks up any clumps of carbon source, preventing the central portion of the clumps from failing to contact the concentrated bacterial solution. An exhaust device is used to control the process. The ring block, inclined plate, and ring tube work together with the vertical rod. The I-shaped tube drives the ring block to rotate clockwise, the ring block drives the inclined plate to rotate clockwise, the inclined plate drives the ring tube to rotate clockwise, and the ring tube drives the vertical rod to rotate clockwise. The vertical rod stirs the carbon source for fermentation, preventing a large amount of waste gas from accumulating inside the carbon source. The connecting ring, short rod, and plate of the limiting device work together with the concave ring. The ring plate drives the connecting ring to rotate clockwise, the connecting ring drives the short rod to rotate clockwise, the short rod drives the plate to rotate clockwise, and the plate rotates clockwise within the concave ring. The concave ring limits the plate and prevents large amplitude vibrations of the internal parts.

Benefits of technology

This process ensures thorough mixing of the carbon source and concentrated bacterial solution, preventing microbial contamination by exhaust gases, reducing component vibration and deformation, and improving preparation efficiency and product quality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a microecological preparation preparation device with a multi-parameter regulation and control function, and relates to the technical field of microecological preparation preparation.The microecological preparation preparation device comprises a frame, a reaction tank and a cabinet are arranged at the bottom end of the interior of the frame, the reaction tank is located on the left side of the cabinet, and a feeding port is formed in the top face of the reaction tank; a discharge port is formed in the bottom of the left side of the reaction tank, the heat pump assembly is arranged in the middle of the interior of the cabinet, the bacterium injection assembly is arranged at the bottom end of the interior of the cabinet, the servo motor is fixedly mounted in the middle of the top surface of the reaction tank, and the stirring rod penetrates through and is rotationally mounted in the middle of the top surface of the reaction tank. According to the device disclosed by the invention, a caked carbon source is stirred away through the annular toothed plate, so that the problem that the fermentation reaction of a microecological preparation is insufficient due to the fact that the middle part of the caked carbon source is not easy to contact with concentrated bacterial liquid is avoided.
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Description

Technical Field

[0001] This invention relates to the field of microecological preparation technology, specifically to a microecological preparation device with multi-parameter regulation function. Background Technology

[0002] Functional microbial preparations, as a novel feed additive with strong adaptability, safety, greenness, significant effects, and relatively low cost, currently have many general-purpose products on the market. However, there are few personalized products with outstanding efficacy developed for different animal breeds, different physiological parts, and different stages of use. Users need to purchase accessories and assemble fermentation equipment themselves, but most farmers lack the assembly ability, resulting in unusable products. Some assembled equipment has unstable functions and high labor costs due to differences in accessories. The main function of a microecological preparation device with multi-parameter control is to intelligently control the preparation of microbial agents, automatically complete the processes of material addition and detection, and improve the preparation efficiency.

[0003] Patent CN222446342U discloses a reaction device for preparing microecological preparations, including a reaction vessel. A heating tank is fixedly connected to the outer surface of the reaction vessel, and heating rods are fixedly connected to the bottom of both sides of the inner cavity of the heating tank. This patent, by setting up a heating tank, heating rods, temperature sensor, relay, PLC controller, acid-base sensor, fan, exhaust pipe, nozzle, air inlet pipe, and filter cover, can facilitate uniform heating of the reaction vessel. At the same time, the acid-base sensor can monitor the acidity and alkalinity of the inner cavity of the reaction vessel. By setting up a rotating shaft, stirring plate, and drive assembly, it can facilitate uniform stirring of the microecological preparation. With the above structure, it is possible to uniformly heat the raw materials of the microecological preparation, thereby meeting the needs of customers and avoiding affecting the quality and speed of the microecological preparation reaction.

[0004] However, current reaction devices for preparing microecological preparations have the following problems: during the preparation process, the middle part of the agglomerated carbon source is not easy to contact the concentrated bacterial solution, which leads to insufficient fermentation of the microecological preparation. At the same time, a large amount of waste gas accumulates inside the carbon source during fermentation, which makes the microbial community susceptible to pollution and death. Furthermore, during the agitation and degassing process, the internal parts are prone to large amplitude vibrations, which leads to deformation of the parts in the preparation device. Therefore, we propose a microecological preparation device with multi-parameter control function. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides a microecological preparation device with multi-parameter regulation function, which solves the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution: a microecological preparation device with multi-parameter control function, comprising: a frame, wherein a reaction tank and a cabinet are disposed at the bottom of the frame, the reaction tank is located on the left side of the cabinet, an inlet is provided on the top surface of the reaction tank, and an outlet is provided at the bottom left side of the reaction tank; a heat pump assembly is disposed in the middle of the cabinet; a bacterial injection assembly is disposed at the bottom of the cabinet; a servo motor is fixedly installed in the middle of the top surface of the reaction tank; and a stirring rod is installed through and rotatably in the middle of the top surface of the reaction tank, with the bottom end of the stirring rod connected to... The reaction vessel is rotatably connected to the bottom of the interior. The top of the stirring rod is fixedly connected to the bottom surface of the servo motor's shaft. A mesh tray is fixed above the inner wall of the reaction vessel. An I-shaped tube is fixed to the outer wall of the stirring rod, and the outer wall of the I-shaped tube is rotatably connected to the inner wall of the mesh tray. A toothed ring is fixed above the outer wall of the I-shaped tube, and the bottom surface of the toothed ring slides in contact with the top surface of the mesh tray. The servo motor's shaft drives the stirring rod to rotate forward, stirring the concentrated bacterial solution and carbon source for mixing. The stirring rod drives the I-shaped tube to rotate forward, rotating within the mesh tray. The I-shaped tube also drives the toothed ring to rotate forward, and the toothed ring is used to sweep and filter the carbon source.

[0007] According to the above technical solution, the system includes a control console, which is located inside the cabinet at the top, and a touch screen is provided in the center of the front of the control console; a heat pump assembly is used to heat the reaction vessel; a solenoid valve one, which penetrates and is fixed to the bottom surface of the reaction vessel, and is used to discharge wastewater; and a solenoid valve two, which penetrates and is fixed to the top surface of the reaction vessel, and is used to inject a fixed amount of water.

[0008] According to the above technical solution, the inoculation assembly includes: an inoculation tank, an inlet pipe, a pump, and an inoculation pipe. The inoculation tank is fixedly installed at the bottom of the cabinet. The inlet pipe passes through and is fixed to the right side of the top surface of the inoculation tank. The inlet pipe passes through and is fixedly connected to the left side of the inner wall of the cabinet. The pump is fixedly installed at the bottom of the inoculation tank. An inoculation pipe is fixedly installed in the middle of the top surface of the pump. The end of the inoculation pipe away from the pump passes through and is fixedly connected to the top surface of the reaction tank.

[0009] According to the above technical solution, the inoculation assembly further includes: a ring straight plate, a temperature monitoring rod, and a pH monitor. The ring straight plate is fixed on the outer wall of the inoculation tube. The temperature monitoring rod is fixedly installed on the front of the ring straight plate and is used to monitor the internal temperature of the reaction vessel. The pH monitor is fixedly installed on the back of the ring straight plate and is used to monitor the pH value of the microbial preparation.

[0010] According to the above technical solution, the feed inlet of the reaction vessel is located to the left of the servo motor, the inoculation pipe is located in front of the servo motor, and the second solenoid valve is located behind the servo motor.

[0011] According to the above technical solution, an exhaust device is provided below the outer wall of the I-shaped tube. The exhaust device is used to accelerate the discharge of waste gas from the microbial preparation. A limiting device is provided on the top surface of the exhaust device. The limiting device is used to reduce the vibration amplitude when the exhaust device rotates.

[0012] According to the above technical solution, the exhaust device includes: a ring block fixed below the outer wall of an I-shaped tube; several inclined plates fixed on the outer wall of the ring block; a circular hole opened at the bottom of the outer wall of each inclined plate; a ring tube fixed on the inner wall of the circular hole of each inclined plate; and several vertical rods fixed on the bottom surface of the ring tube. The I-shaped tube drives the ring block to rotate clockwise, the ring block drives the inclined plates to rotate clockwise, the inclined plates drive the ring tube to rotate clockwise, and the ring tube drives the vertical rods to rotate clockwise. The vertical rods are used to stir the carbon source and concentrated bacterial solution in the reaction and accelerate the exhaust gas in the carbon source and concentrated bacterial solution.

[0013] According to the above technical solution, a ring plate is embedded in the top surface of the inclined plates, and a number of strips are fixed to the outer wall of the ring plate. A round tube is fixed to the end of each strip away from the ring plate. The inner wall of the round tube is fixedly connected to the outer wall of each vertical rod. The inclined plates drive the ring plate to rotate clockwise, the ring plate drives the strips to rotate clockwise, the strips drive the round tubes to rotate clockwise, and the round tubes support the rotation of the vertical rod.

[0014] According to the above technical solution, the limiting device includes: a plurality of connecting rings, the plurality of connecting rings being fixed on the top surface of the ring plate; short rods, the short rods being fixed on the inner wall of each connecting ring; plates, the plates being embedded in the end of each short rod away from each connecting ring; and a concave ring, the concave ring being fixed on the inner wall of the reaction vessel. The ring plate drives the connecting rings to rotate clockwise, the connecting rings drive the short rods to rotate clockwise, the short rods drive the plates to rotate clockwise, and the plates rotate clockwise within the concave ring. The inner wall of the concave ring is rotatably connected to the outer wall of each plate. The concave ring is used to limit the rotation of the plates and reduce the vibration amplitude when the ring tube rotates.

[0015] According to the above technical solution, an L-shaped plate is fixed to the top surface of each of the several plates, a concave block is fixed to the bottom surface of each of the several L-shaped plates, and a chamfer plate is fixed to the inner wall of each concave block. The plates drive the L-shaped plates to rotate clockwise, the L-shaped plates drive the concave blocks to rotate clockwise, and the concave blocks drive the chamfer plates to rotate clockwise. Each chamfer plate is used to scrape the microecological preparation at the concave ring angle.

[0016] This invention provides a microecological preparation device with multi-parameter regulation function. It has the following beneficial effects:

[0017] (1) The present invention uses a frame, reaction vessel, cabinet, control console, heat pump assembly, bacterial injection assembly, solenoid valve one, solenoid valve two, servo motor, stirring rod, mesh tray and I-shaped tube in conjunction with a toothed plate. The rotating shaft of the servo motor drives the stirring rod to rotate forward. The rotating shaft of the stirring rod stirs the concentrated bacterial liquid and carbon source to mix. The stirring rod drives the I-shaped tube to rotate forward. The I-shaped tube rotates forward in the mesh tray. The I-shaped tube drives the toothed plate to rotate forward. During the rotation, the toothed plate stirs up the clumps of carbon source to prevent the middle part of the clumps of carbon source from not being able to contact the concentrated bacterial liquid, resulting in insufficient fermentation reaction of the microecological preparation.

[0018] (2) By setting up an exhaust device, the present invention enables the ring block, inclined plate and ring pipe to work together with the vertical rod. The I-shaped pipe drives the ring block to rotate forward, the ring block drives the inclined plate to rotate forward, the inclined plate drives the ring pipe to rotate forward, the ring pipe drives the vertical rod to rotate forward, and the vertical rod stirs the carbon source of fermentation, preventing a large amount of waste gas from accumulating inside the carbon source of fermentation, which would cause the microbial community to be easily polluted and die by the waste gas.

[0019] (3) By setting up an exhaust device, the present invention enables the ring plate and the strip plate to cooperate with the round tube. The inclined plate drives the ring plate to rotate in the forward direction, the ring plate drives the strip plate to rotate in the forward direction, the strip plate drives the round tube to rotate in the forward direction, and the round tube supports the rotation of the vertical rod, preventing the vertical rod that stirs the fermentation carbon source from easily breaking and causing the vertical rod to break and be damaged.

[0020] (4) By setting a limiting device, the present invention enables the connecting ring, the short rod and the plate to cooperate with the concave ring. The ring plate drives the connecting ring to rotate in the forward direction, the connecting ring drives the short rod to rotate in the forward direction, the short rod drives the plate to rotate in the forward direction, and the plate rotates in the forward direction in the concave ring. The concave ring limits the plate and prevents the internal parts from generating large amplitudes that could cause deformation of the parts in the preparation device.

[0021] (5) By setting the limiting device, the L-shaped plate and the concave block cooperate with the chamfering plate. The plate drives the L-shaped plate to rotate forward, the L-shaped plate drives the concave block to rotate forward, and the concave block drives the chamfering plate to rotate forward. The chamfering plate scrapes off the carbon source at the concave ring corner, preventing the carbon source from accumulating at the concave ring corner and causing unqualified fermentation above the carbon source. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the entire invention;

[0023] Figure 2 This is a schematic diagram of the internal components of the present invention;

[0024] Figure 3 For the present invention Figure 2 A magnified view of a portion of point A in the middle;

[0025] Figure 4 This is a cross-sectional schematic diagram of the reaction vessel of the present invention;

[0026] Figure 5 This is a schematic diagram of the exhaust device of the present invention;

[0027] Figure 6 For the present invention Figure 5 A magnified view of a portion of point B in the middle;

[0028] Figure 7 This is a schematic diagram of the limiting device of the present invention;

[0029] Figure 8 For the present invention Figure 7 A magnified view of a portion of point C.

[0030] In the diagram: 1. Frame; 2. Reaction vessel; 3. Cabinet; 4. Control console; 5. Heat pump assembly; 6. Inoculation assembly; 601. Inoculum tank; 602. Inlet pipe; 603. Pump; 604. Inoculation pipe; 605. Ring plate; 606. Temperature monitoring rod; 607. pH monitor; 7. Solenoid valve one; 8. Solenoid valve two; 9. Servo motor; 10. Stirring rod; 11. Mesh tray; 12. I-shaped tube; 13. Ring toothed plate; 14. Exhaust device; 141. Ring block; 142. Inclined plate; 143. Ring pipe; 144. Vertical rod; 145. Ring plate; 146. Strip plate; 147. Round tube; 15. Limiting device; 151. Connecting ring; 152. Short rod; 153. Plate; 154. Concave ring; 155. L-shaped plate; 156. Concave block; 157. Chamfered plate. Detailed Implementation

[0031] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.

[0032] Please see Figures 1-8One embodiment of the present invention is: a microecological preparation device with multi-parameter control function, comprising: a frame 1, a reaction tank 2 and a cabinet 3 disposed at the bottom of the frame 1, the reaction tank 2 being located on the left side of the cabinet 3, an inlet on the top surface of the reaction tank 2, and an outlet at the bottom left side of the reaction tank 2; a heat pump assembly 5 disposed in the middle of the cabinet 3; and a bacterial injection assembly 6 disposed at the bottom of the cabinet 3. The bacterial injection assembly 6 comprises: a bacterial tank 601, an inlet pipe 602, a pump 603, and an injection pipe 604. The bacterial tank 601 is fixedly installed at the bottom of the cabinet 3, and the inlet pipe 602 passes through and is fixed to the right side of the top surface of the bacterial tank 601. The inlet pipe 602 is connected to the cabinet 3. The inner wall is penetrated and fixedly connected on the left side. The liquid pump 603 is fixedly installed at the bottom of the inside of the inoculum tank 601. The inoculum injection tube 604 is fixedly installed in the middle of the top surface of the liquid pump 603. The end of the inoculum injection tube 604 away from the liquid pump 603 penetrates and is fixedly connected to the top surface of the reaction tank 2. The inoculum injection assembly 6 also includes: a ring straight plate 605, a temperature monitoring rod 606 and a pH value monitor 607. The ring straight plate 605 is fixed on the outer wall of the inoculum injection tube 604. The temperature monitoring rod 606 is fixedly installed on the front of the ring straight plate 605. The temperature monitoring rod 606 is used to monitor the internal temperature of the reaction tank 2. The pH value monitor 607 is fixedly installed on the back of the ring straight plate 605. The pH value monitor 607 is used to monitor the pH value of the microbial preparation.

[0033] A microecological preparation device with multi-parameter control function includes a control console 4, which is located inside the cabinet 3 and above it. A touch screen is provided in the center of the front of the control console 4. A heat pump assembly 5 is used to heat the reaction vessel 2. A solenoid valve 7 is inserted through and fixed to the bottom surface of the reaction vessel 2 and is used to discharge wastewater. A solenoid valve 8 is inserted through and fixed to the top surface of the reaction vessel 2 and is used to inject a quantitative amount of water.

[0034] Servo motor 9 is fixedly installed in the middle of the top surface of reaction tank 2. Stirring rod 10 is installed through and rotatably in the middle of the top surface of reaction tank 2. The bottom end of stirring rod 10 is rotatably connected to the bottom of the inside of reaction tank 2. The top end of stirring rod 10 is fixedly connected to the bottom surface of the rotating shaft of servo motor 9. Screen 11 is fixed above the inner wall of reaction tank 2. I-shaped tube 12 is fixed on the outer wall of stirring rod 10. The outer wall of I-shaped tube 12 is rotatably connected to the inner wall of screen 11. Ring toothed plate 13 is fixed above the outer wall of I-shaped tube 12. The bottom surface of ring toothed plate 13 is in sliding contact with the top surface of screen 11. Ring toothed plate 13 is used to sweep carbon source filtration. The feed inlet of reaction tank 2 is located to the left of servo motor 9. Injection tube 604 is located in front of servo motor 9. Solenoid valve 2 is located behind servo motor 9.

[0035] When using this device, the operator sets various parameters of the preparation device via control console 4, intelligently starts the device, and activates solenoid valve 8. Solenoid valve 8 delivers a measured amount of water into reaction tank 2. Frame 1 supports reaction tank 2. Solenoid valve 8 closes, and control console 4 activates heat pump assembly 5. Heat pump assembly 5 blows hot air into reaction tank 2 for heating. Temperature monitoring rod 606 monitors the temperature in reaction tank 2 in real time. When the temperature in reaction tank 2 reaches the set value, heat pump assembly 5 in cabinet 3 shuts down. The feeding process in reaction tank 2... The carbon source is delivered via a pipe. Simultaneously, the control console 4 activates the inoculation assembly 6, and the pump 603 draws concentrated bacterial solution from the inoculation tank 601. The concentrated bacterial solution enters the inoculation pipe 604, which then feeds the concentrated bacterial solution into the reaction tank 2. The inlet pipe 602 is used to add concentrated bacterial solution into the inoculation tank 601. The control console 4 activates the servo motor 9, and the shaft of the servo motor 9 begins to rotate forward. The shaft of the servo motor 9 drives the stirring rod 10 to rotate forward, stirring the concentrated bacterial solution and carbon source together. At the same time, the stirring rod 10 drives the I-shaped tube 1... 2. Forward rotation: The I-shaped tube 12 rotates forward within the mesh tray 11, driving the toothed ring plate 13 to rotate forward. During rotation, the toothed ring plate 13 breaks up any clumps of carbon source, thus preventing incomplete fermentation of the microecological preparation due to the difficulty of the central part of the clumped carbon source coming into contact with the concentrated bacterial solution. After stirring is complete, the preparation device is left to stand for a period of time. The pH monitor 607 on the ring plate 605 monitors the fermentation carbon source in real time, and the control console 4 periodically starts the servo motor. Machine 9, with stirring rod 10 stirring the fermenting carbon source at regular intervals. After the carbon source has fermented, the operator opens the outlet of reaction tank 2, and the fermented carbon source is discharged from the outlet of reaction tank 2. Solenoid valve 2 delivers a quantitative amount of water into reaction tank 2. Disinfectant is added to the inlet of reaction tank 2. Control console 4 starts servo motor 9, and stirring rod 10 stirs the water and disinfectant in reaction tank 2 for cleaning. Control console 4 opens solenoid valve 7 to discharge wastewater. This solves the problems of cumbersome manual operation, difficult equipment assembly, high cost and pollution risk in traditional preparation.

[0036] An exhaust device 14 is provided on the lower part of the outer wall of the I-shaped tube 12. The exhaust device 14 is used to accelerate the discharge of waste gas from the microbial preparation. A limit device 15 is provided on the top surface of the exhaust device 14. The limit device 15 is used to reduce the vibration amplitude when the exhaust device 14 rotates.

[0037] Working principle: The parameters of the preparation device are set via control console 4. Electromagnetic valve 2 (8) delivers a quantitative amount of water into reaction tank 2. Heat pump assembly 5 blows hot air into reaction tank 2 for heating. Temperature monitoring rod 606 monitors the temperature in reaction tank 2 in real time. Carbon source is delivered through the feed pipe of reaction tank 2. Liquid pump 603 extracts concentrated bacterial solution from bacterial tank 601. The concentrated bacterial solution enters injection pipe 604, which then enters reaction tank 2. Servo motor 9 drives stirring rod 10 to rotate forward, mixing the concentrated bacterial solution and carbon source. Stirring rod 10 also drives I-shaped tube 12 to rotate forward, which rotates within mesh tray 11. 12 drives the ring tooth plate 13 to rotate forward, and the ring tooth plate 13 stirs up the clumps of carbon source. When the stirring is completed, the preparation device is left to stand for a period of time. The pH value monitor 607 on the ring straight plate 605 monitors the fermenting carbon source in real time. The control console 4 starts the servo motor 9 at regular intervals, so that the stirring rod 10 stirs the fermenting carbon source at regular intervals. When the carbon source ferments, the outlet of the reaction tank 2 is opened, and the fermented carbon source is discharged from the outlet of the reaction tank 2. The solenoid valve 2 delivers a certain amount of water into the reaction tank 2. Disinfectant is put into the inlet of the reaction tank 2. The control console 4 starts the servo motor 9, and the stirring rod 10 stirs the water and disinfectant in the reaction tank 2 for cleaning. The control console 4 opens the solenoid valve 17 to discharge the sewage.

[0038] Please see Figures 1-8 Based on the above embodiments, in another embodiment of the present invention, the exhaust device 14 includes: a ring block 141, which is fixed below the outer wall of the I-shaped tube 12; a plurality of inclined plates 142, which are respectively fixed on the outer wall of the ring block 141, and a circular hole is opened at the bottom of the outer wall of each of the inclined plates 142; a ring tube 143, which is fixed on the inner wall of the circular hole of each inclined plate 142; and a plurality of vertical rods 144, which are fixed on the bottom surface of the ring tube 143. The vertical rods 144 are used to stir the carbon source and concentrated bacterial solution of the reaction and accelerate the exhaust gas in the carbon source and concentrated bacterial solution.

[0039] While the I-shaped tube 12 drives the ring tooth plate 13 to rotate clockwise, the I-shaped tube 12 drives the ring block 141 to rotate clockwise, the ring block 141 drives the inclined plate 142 to rotate clockwise, the inclined plate 142 drives the ring tube 143 to rotate clockwise, and the ring tube 143 drives the vertical rod 144 to rotate clockwise. During the rotation, the vertical rod 144 stirs the carbon source of fermentation, allowing the carbon source of fermentation to be discharged upwards as waste gas. This avoids the problem that a large amount of waste gas accumulates inside the carbon source of fermentation during the preparation of microbial preparations, which can easily cause the microbial community to be contaminated and die due to waste gas pollution.

[0040] A ring plate 145 is embedded in the top surface of several inclined plates 142. Several strips 146 are fixed to the outer wall of the ring plate 145. A round tube 147 is fixed to one end of each strip 146 away from the ring plate 145. The inner wall of the several round tubes 147 is fixedly connected to the outer wall of each vertical rod 144.

[0041] While the inclined plate 142 drives the ring tube 143 to rotate in the forward direction, the inclined plate 142 drives the ring plate 145 to rotate in the forward direction, the ring plate 145 drives the strip plate 146 to rotate in the forward direction, the strip plate 146 drives the round tube 147 to rotate in the forward direction, and the round tube 147 supports the rotation of the vertical rod 144. This avoids the problem that the vertical rod 144, which stirs the fermentation carbon source, is prone to breakage and damage during the preparation of the microecological preparation device.

[0042] The limiting device 15 includes: a plurality of connecting rings 151, which are fixed on the top surface of the ring plate 145; short rods 152, which are fixed on the inner wall of each connecting ring 151; plates 153, which are embedded in the end of each short rod 152 away from each connecting ring 151; and concave rings 154, which are fixed on the inner wall of the reaction vessel 2. The inner wall of the concave rings 154 is rotatably connected to the outer wall of each plate 153. The concave rings 154 are used to limit the rotation of the plates 153 and reduce the vibration amplitude when the ring tube 143 rotates.

[0043] While the ring plate 145 drives the strip plate 146 to rotate clockwise, the ring plate 145 drives the connecting ring 151 to rotate clockwise, the connecting ring 151 drives the short rod 152 to rotate clockwise, the short rod 152 drives the plate 153 to rotate clockwise, and the plate 153 rotates clockwise within the concave ring 154. Under the limitation of the concave ring 154, the vibration amplitude of the ring plate 145 during rotation is reduced, thereby avoiding the problem that the internal parts of the microecological preparation device are prone to large amplitude vibration during preparation, causing deformation of the parts in the preparation device.

[0044] An L-shaped plate 155 is fixed to the top surface of several plates 153, and a concave block 156 is fixed to the bottom surface of several L-shaped plates 155. A chamfer plate 157 is fixed to the inner wall of each concave block 156. Each chamfer plate 157 is used to scrape the microecological preparation at the included angle of the concave ring 154.

[0045] While the short rod 152 drives the plate 153 to rotate forward, the plate 153 drives the L-shaped plate 155 to rotate forward, the L-shaped plate 155 drives the concave block 156 to rotate forward, and the concave block 156 drives the chamfered plate 157 to rotate forward. The chamfered plate 157 scrapes away the carbon source at the corner of the concave ring 154, thereby avoiding the problem of unqualified fermentation above the carbon source caused by the carbon source accumulating at the corner of the concave ring 154 during the preparation of the microecological preparation device.

[0046] Working principle: I-shaped tube 12 drives ring block 141 to rotate clockwise, ring block 141 drives inclined plate 142 to rotate clockwise, inclined plate 142 drives ring tube 143 to rotate clockwise, ring tube 143 drives vertical rod 144 to rotate clockwise, and vertical rod 144 stirs the carbon source for fermentation.

[0047] Inclined plate 142 drives ring plate 145 to rotate clockwise, ring plate 145 drives strip plate 146 to rotate clockwise, strip plate 146 drives round tube 147 to rotate clockwise, and round tube 147 supports the rotation of vertical rod 144.

[0048] The ring plate 145 drives the connecting ring 151 to rotate clockwise, the connecting ring 151 drives the short rod 152 to rotate clockwise, the short rod 152 drives the plate 153 to rotate clockwise, and the plate 153 rotates clockwise in the concave ring 154;

[0049] Plate 153 drives L-shaped plate 155 to rotate forward, L-shaped plate 155 drives concave block 156 to rotate forward, concave block 156 drives chamfer plate 157 to rotate forward, and chamfer plate 157 scrapes off the carbon source at the angle of concave ring 154.

[0050] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A microecological preparation device with multi-parameter regulation function, characterized in that, include: The frame (1) has a reaction tank (2) and a cabinet (3) at the bottom inside. The reaction tank (2) is located to the left of the cabinet (3). The top surface of the reaction tank (2) has a feed inlet, and the bottom left side of the reaction tank (2) has a discharge outlet. A heat pump assembly (5) is located in the middle of the cabinet (3) and is used to heat the reaction vessel (2). The bacteria injection component (6) is located at the bottom of the cabinet (3); Servo motor (9), the servo motor (9) is fixedly installed in the middle of the top surface of the reaction vessel (2); A stirring rod (10) is installed through and rotatably in the middle of the top surface of the reaction vessel (2). The bottom end of the stirring rod (10) is rotatably connected to the bottom end inside the reaction vessel (2). The top end of the stirring rod (10) is fixedly connected to the bottom surface of the rotating shaft of the servo motor (9). A mesh tray (11) is fixed above the inner wall of the reaction vessel (2); I-shaped tube (12), the I-shaped tube (12) is fixed on the outer wall of the stirring rod (10), and the outer wall of the I-shaped tube (12) is rotatably connected to the inner wall of the mesh plate (11); A toothed ring plate (13) is fixed above the outer wall of the I-shaped tube (12). The bottom surface of the toothed ring plate (13) slides in contact with the top surface of the mesh disk (11). The toothed ring plate (13) is used to sweep the carbon source for filtration.

2. The microecological preparation device with multi-parameter regulation function according to claim 1, characterized in that: Also includes: The console (4) is located inside the cabinet (3) at the top, and a touch screen is provided in the center of the front of the console (4); Solenoid valve 1 (7) is inserted through and fixed to the bottom surface of the reaction vessel (2). Solenoid valve 1 (7) is used to discharge wastewater. Solenoid valve 2 (8) is inserted through and fixed on the top surface of the reaction vessel (2). Solenoid valve 2 (8) is used to inject a fixed amount of water.

3. The microecological preparation device with multi-parameter regulation function according to claim 2, characterized in that: The inoculation assembly (6) includes: a culture tank (601), an inlet pipe (602), a pump (603), and an inoculation pipe (604). The culture tank (601) is fixedly installed inside the bottom of the cabinet (3). The inlet pipe (602) passes through and is fixed on the right side of the top surface of the culture tank (601). The inlet pipe (602) passes through and is fixedly connected to the left side of the inner wall of the cabinet (3). The pump (603) is fixedly installed inside the bottom of the culture tank (601). The inoculation pipe (604) is fixedly installed in the middle of the top surface of the pump (603). The end of the inoculation pipe (604) away from the pump (603) passes through and is fixedly connected to the top surface of the reaction vessel (2).

4. The microecological preparation device with multi-parameter regulation function according to claim 3, characterized in that: The inoculation assembly (6) further includes: a ring plate (605), a temperature monitoring rod (606), and a pH monitor (607). The ring plate (605) is fixed on the outer wall of the inoculation tube (604). The temperature monitoring rod (606) is fixedly installed on the front of the ring plate (605) and is used to monitor the internal temperature of the reaction vessel (2). The pH monitor (607) is fixedly installed on the back of the ring plate (605) and is used to monitor the pH value of the microbial preparation.

5. The microecological preparation device with multi-parameter regulation function according to claim 4, characterized in that: The feed inlet of the reaction vessel (2) is located to the left of the servo motor (9), the inoculation tube (604) is located in front of the servo motor (9), and the solenoid valve (8) is located behind the servo motor (9).

6. The microecological preparation device with multi-parameter regulation function according to claim 5, characterized in that: An exhaust device (14) is provided below the outer wall of the I-shaped tube (12), and the exhaust device (14) is used to accelerate the discharge of waste gas from the microbial preparation; The top surface of the exhaust device (14) is provided with a limiting device (15), which is used to reduce the vibration amplitude when the exhaust device (14) rotates.

7. The microecological preparation device with multi-parameter regulation function according to claim 6, characterized in that: The exhaust device (14) includes: a ring block (141), which is fixed below the outer wall of the I-shaped tube (12); A plurality of inclined plates (142) are fixed on the outer wall of the ring block (141), and a circular hole is opened at the bottom of the outer wall of each of the inclined plates (142); A ring tube (143) is fixed on the inner wall of the circular hole of each inclined plate (142); A number of vertical rods (144) are fixed to the bottom surface of the ring pipe (143). The number of vertical rods (144) are used to stir the carbon source and concentrated bacterial solution of the reaction, and to accelerate the waste gas in the carbon source and concentrated bacterial solution.

8. The microecological preparation device with multi-parameter regulation function according to claim 7, characterized in that: A ring plate (145) is embedded in the top surface of several inclined plates (142). Several strips (146) are fixed to the outer wall of the ring plate (145). A round tube (147) is fixed to one end of each strip (146) away from the ring plate (145). The inner wall of the round tubes (147) is fixedly connected to the outer wall of each vertical rod (144).

9. The microecological preparation device with multi-parameter regulation function according to claim 8, characterized in that: The limiting device (15) includes: a plurality of connecting rings (151), which are fixed on the top surface of the ring plate (145); Short rods (152) are fixed to the inner wall of each connecting ring (151); Plates (153) are respectively embedded in one end of each short rod (152) away from each connecting ring (151); A concave ring (154) is fixed on the inner wall of the reaction vessel (2). The inner wall of the concave ring (154) is rotatably connected to the outer wall of each plate (153). The concave ring (154) is used to limit the rotation of the plate (153) and reduce the vibration amplitude when the ring tube (143) rotates.

10. A microecological preparation device with multi-parameter regulation function according to claim 9, characterized in that: An L-shaped plate (155) is fixed to the top surface of each of the several plates (153), and a concave block (156) is fixed to the bottom surface of each of the several L-shaped plates (155). A chamfer plate (157) is fixed to the inner wall of each concave block (156), and each chamfer plate (157) is used to scrape the microecological preparation at the corner of the concave ring (154).

Citation Information

Patent Citations

  • Microecological preparation adding device

    CN222446342U