Continuous sludge humification treatment equipment
By designing a continuous sludge humification treatment device and adopting automated control and real-time monitoring and adjustment, the problem of intermittent operation of sludge humification treatment equipment was solved, achieving efficient sludge humification treatment, improving equipment utilization and reducing energy consumption.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- XI'AN POLYTECHNIC UNIVERSITY
- Filing Date
- 2025-08-14
- Publication Date
- 2026-07-21
AI Technical Summary
Existing sludge humification treatment equipment requires waiting for the previous batch of raw materials to be fully decomposed before a new batch can be added, resulting in intermittent operation and severely restricting the operating efficiency of the treatment equipment.
A continuous sludge humification treatment device is designed. By optimizing the treatment process and energy utilization, the device adopts automated control of the fermentation chamber, pretreatment tank, fermentation tank and conveying components to achieve continuous operation of the sludge humification process. The control panel is used to monitor and provide feedback on the parameters of the heating components and turning components in real time to ensure the continuity and efficiency of the sludge humification process.
This enables the continuous operation of the sludge humification process, significantly improves equipment utilization, substantially reduces unit energy consumption, and enhances the practical value of the equipment.
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Figure CN224530798U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of humification treatment technology, and in particular to a continuous sludge humification treatment device. Background Technology
[0002] With the acceleration of urbanization and the increase in sewage treatment volume, sludge treatment has become an important issue in the field of environmental protection.
[0003] Current methods for treating sludge through humification mainly include landfill, incineration, and composting. However, these methods suffer from problems such as low treatment efficiency, low resource utilization, and secondary pollution. In particular, in the sludge composting process, the treatment equipment needs to wait for the previous batch of raw materials to be fully decomposed before adding a new batch of sludge raw materials, which significantly prolongs the decomposition cycle. The entire treatment process is forced to adopt an intermittent operation mode, which severely restricts the operating efficiency of the treatment equipment.
[0004] Therefore, in view of the fact that existing sludge humification treatments can only operate intermittently, a continuous sludge humification treatment equipment can be designed. By optimizing the treatment process and energy utilization, the continuous operation of the sludge humification process can be achieved, which not only greatly improves the equipment utilization rate, but also significantly reduces the unit treatment energy consumption, thereby effectively enhancing the practical value of the equipment. Utility Model Content
[0005] In order to overcome the problem that most humification treatment equipment requires waiting for the previous batch of raw materials to be fully decomposed before a new batch of sludge raw materials can be added, the entire treatment process is forced to adopt an intermittent operation mode, which seriously restricts the operating efficiency of the treatment equipment, this utility model is proposed.
[0006] The technical solution of this utility model is as follows: a continuous sludge humification treatment device, including a fermentation chamber, a control panel is set at the top of the fermentation chamber, and the operating parameters of each electrical component in the turning component and heating component are controlled by the control panel. The fermentation chamber is connected to the fermentation tank at the top through the feeding component, and the fermentation tank is connected to the pretreatment tank above through the conveying component. The fermentation tank is placed horizontally and the pretreatment tank is placed vertically, realizing the full-process automated control of sludge from pretreatment to humification fermentation.
[0007] Preferably, the sludge raw material is homogenized in a pretreatment tank, and then the primary humification reaction is completed in a fermentation tank. Finally, the sludge is deeply stabilized in the fermentation chamber. At the same time, the control panel precisely controls the working parameters of the heating components and the operating frequency of the turning components through real-time monitoring and feedback adjustment, thereby realizing the continuous operation of the sludge humification process. This not only greatly improves the equipment utilization rate, but also significantly reduces the unit processing energy consumption, enhancing the practical value of the equipment.
[0008] Preferably, the material-turning assembly includes a first rotating shaft, a first motor, blades, a second rotating shaft, a second motor, and turning plates. The first rotating shaft is rotatably connected to the top inner side of the pretreatment tank, and the first motor is located at the top outer side of the pretreatment tank. The output end of the first motor is connected to the first rotating shaft. Multiple sets of blades are arranged in a circumferential array on the outer side of the first rotating shaft. The second rotating shaft is rotatably connected to both ends of the inner side of the fermentation tank, and the second motor is located at one end of the outer side of the fermentation tank. The output end of the second motor is connected to the second rotating shaft. Multiple sets of turning plates are arranged in a circumferential array on the outer side of the second rotating shaft. The top of the turning plates is bent at 90°. The first motor and the second motor are electrically connected to the control panel, so that the control panel controls the first motor and the second motor to drive the first rotating shaft and the second rotating shaft to rotate, respectively.
[0009] Preferably, the material turning assembly also includes a linear drive mechanism, a movable plate, connecting rods, a turntable, and material turning claws. Two sets of linear drive mechanisms are symmetrically arranged on the left and right sides inside the fermentation chamber. The linear drive mechanisms are electrically connected to the control panel. A movable plate is arranged on the outside of the linear drive mechanism. The movable plate moves linearly through the linear drive mechanism. Multiple sets of connecting rods are equidistantly arranged at the bottom front end of the movable plate. The bottom end of the connecting rod is rotatably connected to the turntable. Multiple sets of material turning claws are distributed on the outer circumference of the turntable. The bottom end of the material turning claws abuts against the inner bottom surface of the fermentation chamber.
[0010] Preferably, the heating assembly includes a first heating wire, a temperature sensor, a second heating wire, a first temperature and humidity sensor, an electric heating plate, and a second temperature and humidity sensor. The first heating wire and the second heating wire are respectively wrapped around the inner side of the outer wall of the pretreatment tank and the fermentation tank. A temperature sensor is provided at the bottom of the hopper-shaped pretreatment tank. The first temperature and humidity sensor and the second temperature and humidity sensor are respectively provided on the inner wall of the fermentation tank and the fermentation chamber. An electric heating plate is provided at the bottom inner side of the fermentation chamber. The detected temperature and humidity data are transmitted to the control panel in real time, so that the control panel controls the first heating wire, the second heating wire, and the electric heating plate to achieve precise heating.
[0011] Preferably, the conveying assembly includes a feed hopper and a conveying auger. The feed hopper is located at the top of the pretreatment tank, and the conveying auger is inclined at the bottom of the hopper of the pretreatment tank. The bottom of the conveying auger is connected to the top of the fermentation tank. The operation of the conveying auger transports the sludge in the pretreatment tank to the fermentation tank.
[0012] Preferably, the feeding assembly also includes a first electric door, a second electric door, a ramp, an electric telescopic rod, and a pusher plate. Two sets of first electric doors are symmetrically arranged at the top of the fermentation chamber. The opening and closing of the first electric doors enables flexible connection between the fermentation chamber and the fermentation tank. A second electric door is arranged at the front end of the fermentation chamber, which allows for flexible opening and closing of the fermentation chamber. A ramp is arranged at the front outer side of the fermentation chamber. Two sets of electric telescopic rods are symmetrically arranged at the rear bottom of the movable plate. A pusher plate is arranged at the outer telescopic end of the electric telescopic rod. When the electric telescopic rod is extended to its limit, the bottom end of the pusher plate abuts against the inner bottom wall of the fermentation chamber.
[0013] As a preferred option, the tops of the fermentation chamber, pretreatment tank, and fermentation tank are all equipped with interconnected ventilation ducts, thereby forming an integrated aeration system to ensure uniform oxygen supply and exhaust gas emissions during the sludge humification process.
[0014] The beneficial effects of this utility model are:
[0015] During the humification process, the sludge raw material is first poured into a pretreatment tank. Inside the pretreatment tank, the raw material is cut and homogenized. Simultaneously, the raw material in the pretreatment tank is preheated. Once the raw material reaches a certain temperature, it is discharged into the fermentation tank. After discharge, a new batch of raw material is poured into the pretreatment tank. The raw material injected into the fermentation tank undergoes a primary humification reaction. Ultimately, the sludge achieves deep stabilization in the fermentation chamber. Meanwhile, the control panel precisely heats the raw material through real-time monitoring and feedback adjustment. This addresses the problem that most humification treatment equipment requires waiting for the previous batch of raw material to fully decompose before adding a new batch of sludge, forcing the entire process into an intermittent operation mode, severely restricting the operating efficiency of the treatment equipment and enhancing the practical value of the equipment. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of a continuous sludge humification treatment device according to this utility model.
[0017] Figure 2 The diagram shown is a three-dimensional cross-sectional view of the pretreatment tank of a continuous sludge humification treatment device according to this utility model.
[0018] Figure 3 The diagram shown is a three-dimensional cross-sectional view of the fermentation tank of a continuous sludge humification treatment device according to this utility model.
[0019] Figure 4 The diagram shown is a three-dimensional structural schematic of the turning plate of a continuous sludge humification treatment device according to this utility model.
[0020] Figure 5 The diagram shown is a three-dimensional cross-sectional view of the fermentation chamber of a continuous sludge humification treatment device according to this utility model.
[0021] Figure 6 The diagram shown is a three-dimensional structural schematic of the turning claw of a continuous sludge humification treatment device according to this utility model.
[0022] Explanation of reference numerals in the attached drawings: 1. Fermentation chamber; 101. Linear drive mechanism; 102. Movable plate; 103. Connecting rod; 104. Turntable; 105. Turning claw; 106. Electric heating plate; 107. Second temperature and humidity sensor; 108. Second electric door; 109. Ramp; 110. Electric telescopic rod; 111. Pushing plate; 2. Control panel; 3. Pretreatment tank; 301. First rotating shaft; 302. First motor; 303. Blade; 304. First heating wire; 305. Temperature sensor; 306. Feed hopper; 307. Conveying auger; 4. Fermentation tank; 401. Second rotating shaft; 402. Second motor; 403. Turning plate; 404. Second heating wire; 405. First temperature and humidity sensor; 406. First electric door; 5. Ventilation duct. Detailed Implementation
[0023] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0024] Please see Figure 1 This utility model provides an embodiment: a continuous sludge humification treatment device, including a fermentation chamber 1, a control panel 2 at the top of the fermentation chamber 1, and the operating parameters of each electrical component in the turning component and heating component are controlled by the control panel 2. The fermentation chamber 1 is connected to the fermentation tank 4 at the top through the feeding component, and the fermentation tank 4 is connected to the pretreatment tank 3 above through the conveying component. The fermentation tank 4 is placed horizontally, and the pretreatment tank 3 is placed vertically, realizing the full-process automated control of sludge from pretreatment to humification fermentation.
[0025] Please see Figure 2 , Figure 3 and Figure 4In this embodiment, the material-turning assembly includes a first rotating shaft 301, a first motor 302, blades 303, a second rotating shaft 401, a second motor 402, and turning plates 403. The first rotating shaft 301 is rotatably connected to the top inner side of the pretreatment tank 3, and the first motor 302 is located at the top outer side of the pretreatment tank 3. The output end of the first motor 302 is connected to the first rotating shaft 301. Multiple sets of blades 303 are arranged in a circumferential array on the outer side of the first rotating shaft 301. The second rotating shaft 401 is rotatably connected to both ends of the inner side of the fermentation tank 4, and the second motor 402 is located at one end of the outer side of the fermentation tank 4. The output end of the second motor 402 is connected to the second rotating shaft 401, and multiple sets of turning plates 403 are arranged in a circumferential array on the outer side of the second rotating shaft 401. The turning plates 403... The top is set to be bent at 90°. The first motor 302 and the second motor 402 are electrically connected to the control panel 2, so that the control panel 2 controls the first motor 302 and the second motor 402 to drive the first rotating shaft 301 and the second rotating shaft 401 to rotate respectively. The control panel 2 controls the first motor 302 to drive the first rotating shaft 301 to rotate. The rotation of the first rotating shaft 301 drives the blade 303 to rotate. The rotating blade 303 cuts the sludge raw material poured into the pretreatment tank 3 to prevent the raw material from clumping together and affecting the subsequent reaction. The control panel 2 controls the second motor 402 to drive the second rotating shaft 401 to rotate. The rotation of the second rotating shaft 401 drives the turning plate 403 to continuously turn. The turning plate 403 turns the raw material in the fermentation tank 4 to turn.
[0026] Please see Figure 5 and Figure 6 In this embodiment, the material turning assembly further includes a linear drive mechanism 101, a movable plate 102, connecting rods 103, a turntable 104, and turning claws 105. Two sets of linear drive mechanisms 101 are symmetrically arranged on the left and right sides inside the fermentation chamber 1. The linear drive mechanisms 101 are electrically connected to the control panel 2. A movable plate 102 is arranged on the outer side of the linear drive mechanism 101. The movable plate 102 moves linearly via the linear drive mechanism 101. Multiple sets of connecting rods 103 are equidistantly arranged at the bottom front end of the movable plate 102. The bottom end of 103 is rotatably connected to a turntable 104. Multiple sets of turning claws 105 are distributed on the outer circumference of the turntable 104. The bottom end of the turning claws 105 abuts against the inner bottom surface of the fermentation chamber 1. The linear drive mechanism 101 is controlled by the control panel 2 to drive the movable plate 102 to move back and forth. The movable plate 102 is connected to the fixed connecting rod 103. The turntable 104 is rotatably connected through the connecting rod 103. Rotating the turntable 104 drives the turning claws 105 to rotate, thereby using the turning claws 105 to turn the raw materials inside the fermentation chamber 1.
[0027] Please see Figure 2 , Figure 3 and Figure 5In this embodiment, the heating assembly includes a first heating wire 304, a temperature sensor 305, a second heating wire 404, a first temperature and humidity sensor 405, an electric heating plate 106, and a second temperature and humidity sensor 107. The first heating wire 304 and the second heating wire 404 are respectively wrapped around the inner sides of the outer walls of the pretreatment tank 3 and the fermentation tank 4. The temperature sensor 305 is provided at the bottom of the hopper-shaped pretreatment tank 3. The first temperature and humidity sensor 405 and the second temperature and humidity sensor 107 are respectively provided on the inner walls of the fermentation tank 4 and the fermentation chamber 1. The electric heating plate 106 is provided on the inner side of the bottom of the fermentation chamber 1. The detected temperature and humidity data are transmitted to the control panel in real time. The control panel 2 controls the first heating wire 304, the second heating wire 404, and the electric heating plate 106 to achieve precise heating. The temperature sensor 305 monitors the temperature inside the pretreatment tank 3 in real time, the first temperature and humidity sensor 405 monitors the temperature and humidity inside the fermentation tank 4 in real time, and the second temperature and humidity sensor 107 monitors the temperature and humidity inside the fermentation chamber 1 in real time. The monitored values are transmitted to the control panel 2, which controls the first heating wire 304 to raise the temperature inside the pretreatment tank 3, controls the second heating wire 404 to raise the temperature inside the fermentation tank 4, and then controls the electric heating plate 106 to raise the temperature inside the fermentation chamber 1.
[0028] The conveying assembly includes a feed hopper 306 and a conveying auger 307. The feed hopper 306 is located at the top of the pretreatment tank 3, and the conveying auger 307 is inclinedly installed at the bottom of the hopper-shaped pretreatment tank 3. The bottom of the conveying auger 307 is connected to the top of the fermentation tank 4. The conveying auger 307 transports the sludge from the pretreatment tank 3 to the fermentation tank 4. The sludge raw material is poured into the pretreatment tank 3 through the feed hopper 306. After the raw material in the pretreatment tank 3 is heated to a set temperature, the conveying auger 307 is controlled by the control panel 2 to operate, utilizing the conveying auger... The conveying unit 307 transports the raw materials from the pretreatment tank 3 to the fermentation tank 4. The conveying assembly also includes a first electric door 406, a second electric door 108, a ramp 109, an electric telescopic rod 110, and a pusher plate 111. Two sets of first electric doors 406 are symmetrically arranged at the top of the fermentation chamber 1, allowing for flexible connection between the fermentation chamber 1 and the fermentation tank 4. A second electric door 108 is located at the front end of the fermentation chamber 1, enabling flexible opening and closing of the fermentation chamber 1. A ramp 109 is located at the outer front end of the fermentation chamber 1. 09. Two sets of electric telescopic rods 110 are symmetrically arranged at the bottom rear end of the movable plate 102. A pusher plate 111 is provided at the outer telescopic end of the electric telescopic rod 110. When the electric telescopic rod 110 is extended to its limit, the bottom end of the pusher plate 111 abuts against the inner bottom wall of the fermentation chamber 1. The bottom of the fermentation tank 4 is closed by the first electric door 406. After the raw materials in the fermentation tank 4 have been processed for a period of time and the humidity in the fermentation tank 4 has decreased to the set value, the control panel 2 controls the first electric door 406 to open the bottom of the fermentation tank 4, allowing the raw materials in the fermentation tank 4 to be released. The raw materials are poured into fermentation chamber 1. After the raw materials are completely processed in fermentation chamber 1 and the humidity in fermentation chamber 1 drops to the set value, control panel 2 controls the second electric door 108 to open, the electric telescopic rod 110 extends and the pusher plate 111 moves down, and the pusher plate 111 moves to push the raw materials in fermentation chamber 1 out. The pushed raw materials are discharged naturally through the ramp 109. The top of fermentation chamber 1, pretreatment tank 3 and fermentation tank 4 are all equipped with interconnected ventilation pipes 5, thus forming an integrated aeration system to ensure uniform oxygen supply and exhaust gas emission during the sludge humification process.
[0029] During processing, the temperature inside the pretreatment tank 3 is monitored by the temperature sensor 305 and transmitted to the control panel 2. The control panel 2 controls the first heating wire 304 to raise the internal temperature of the pretreatment tank 3. The sludge raw material is poured into the pretreatment tank 3 through the feed hopper 306. At the same time, the control panel 2 controls the first motor 302 to drive the first rotating shaft 301 to rotate. The rotation of the first rotating shaft 301 drives the blade 303 to rotate and cut the sludge raw material poured into the pretreatment tank 3 to prevent the raw material from clumping together and affecting the subsequent reaction. When the temperature sensor 305 detects that the raw material in the pretreatment tank 3 has reached the set temperature, the control panel 2 controls the conveying auger 307 to operate and uses the conveying auger 307 to transport the raw material in the pretreatment tank 3 to the fermentation tank 4.
[0030] Before the raw materials are delivered to the fermentation tank 4, the temperature inside the fermentation tank 4 is monitored by the first temperature and humidity sensor 405. The second heating wire 404 is controlled by the control panel 2 to raise the internal temperature of the fermentation tank 4. At the same time, the second motor 402 is controlled by the control panel 2 to drive the second rotating shaft 401 to rotate. The rotation of the second rotating shaft 401 drives the turning plate 403 to continuously turn. The raw materials enter the fermentation tank 4 and fall onto the first electric door 406. The turning plate 403 turns the raw materials in the fermentation tank 4. When the first temperature and humidity sensor 405 detects that the humidity inside the fermentation tank 4 is lower than the set value, the control panel 2 controls the first electric door 406 to open the bottom of the fermentation tank 4 and pour the raw materials in the fermentation tank 4 into the fermentation chamber 1.
[0031] Before the raw materials are transported to the fermentation chamber 1, the temperature inside the fermentation chamber 1 is monitored by the second temperature and humidity sensor 107. The electric heating plate 106 is controlled by the control panel 2 to raise the internal temperature of the fermentation chamber 1. After the raw materials are poured into the fermentation chamber 1, the movable plate 102 is driven to move back and forth by the linear drive mechanism 101, so that the turning claw 105 rotates around the connecting rod 103 via the turntable 104 to continuously move the raw materials. When the second temperature and humidity sensor 107 detects that the humidity inside the fermentation chamber 1 is lower than the set value, the processing is completed. In addition, during the processing, an integrated aeration system is formed through the ventilation duct 5 to ensure uniform oxygen supply and exhaust gas emission during the sludge humification process.
[0032] Finally, the movable plate 102 moves to the rear end of the linear drive mechanism 101, extends the electric telescopic rod 110 to lower the height of the pusher plate 111, and after opening the second electric door 108, the pusher plate 111 is moved forward by the linear drive mechanism 101 to push the raw material to the ramp 109 for discharge.
[0033] Through the above steps, the sludge raw material is homogenized by the pretreatment tank 3, and then the primary humification reaction is completed by the fermentation tank 4. Finally, the sludge is deeply stabilized in the fermentation chamber 1. At the same time, the control panel 2 accurately controls the working parameters of the heating components and the operating frequency of the turning components through real-time monitoring and feedback adjustment, so as to realize the continuous operation of the sludge humification process. This not only greatly improves the equipment utilization rate, but also significantly reduces the unit processing energy consumption.
[0034] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. A continuous sludge humification treatment device, comprising a fermentation chamber (1), characterized in that: It also includes a control panel (2). The top of the fermentation chamber (1) is equipped with a control panel (2). The control panel (2) controls the operating parameters of each electrical component in the turning component and heating component. The fermentation chamber (1) is connected to the fermentation tank (4) at the top through the feeding component. The fermentation tank (4) is connected to the pretreatment tank (3) above through the conveying component. The fermentation tank (4) is placed horizontally and the pretreatment tank (3) is placed vertically, realizing the full-process automated control of sludge from pretreatment to humification fermentation.
2. The continuous sludge humification treatment equipment according to claim 1, characterized in that: The material turning assembly includes a first rotating shaft (301), a first motor (302), blades (303), a second rotating shaft (401), a second motor (402), and a turning plate (403). The first rotating shaft (301) is rotatably connected to the top inner side of the pretreatment tank (3), and the first motor (302) is installed at the top outer side of the pretreatment tank (3). The output end of the first motor (302) is connected to the first rotating shaft (301). Multiple sets of blades (303) are arranged in a circular array on the outer side of the first rotating shaft (301). The second rotating shaft (403) is rotatably connected to both ends of the inner side of the fermentation tank (4). 01), A second motor (402) is provided at one end of the outer side of the fermentation tank (4). The output end of the second motor (402) is connected to the second rotating shaft (401). Multiple sets of turning plates (403) are distributed in a circular array on the outer side of the second rotating shaft (401). The top of the turning plate (403) is set to be bent at 90°. The first motor (302) and the second motor (402) are electrically connected to the control panel (2) so that the control panel (2) controls the first motor (302) and the second motor (402) to drive the first rotating shaft (301) and the second rotating shaft (401) to rotate respectively.
3. The continuous sludge humification treatment equipment according to claim 2, characterized in that: The material turning assembly also includes a linear drive mechanism (101), a movable plate (102), a connecting rod (103), a turntable (104), and material turning claws (105). Two sets of linear drive mechanisms (101) are symmetrically arranged on the left and right sides inside the fermentation chamber (1). The linear drive mechanism (101) is electrically connected to the control panel (2). A movable plate (102) is arranged on the outside of the linear drive mechanism (101). The movable plate (102) moves linearly through the linear drive mechanism (101). Multiple sets of connecting rods (103) are equidistantly arranged at the bottom front end of the movable plate (102). The bottom end of the connecting rod (103) is rotatably connected to the turntable (104). Multiple sets of material turning claws (105) are distributed on the outer circumference of the turntable (104). The bottom end of the material turning claws (105) abuts against the inner bottom surface of the fermentation chamber (1).
4. The continuous sludge humification treatment equipment according to claim 1, characterized in that: The heating assembly includes a first heating wire (304), a temperature sensor (305), a second heating wire (404), a first temperature and humidity sensor (405), an electric heating plate (106), and a second temperature and humidity sensor (107). The inner sides of the outer walls of the pretreatment tank (3) and the fermentation tank (4) are respectively wrapped with the first heating wire (304) and the second heating wire (404). The bottom of the pretreatment tank (3) is provided with a temperature sensor (305). The inner walls of the fermentation tank (4) and the fermentation chamber (1) are respectively provided with the first temperature and humidity sensor (405) and the second temperature and humidity sensor (107). The inner side of the bottom of the fermentation chamber (1) is provided with an electric heating plate (106). The detected temperature and humidity data are transmitted to the control panel (2) in real time, so that the control panel (2) controls the first heating wire (304), the second heating wire (404), and the electric heating plate (106) to achieve precise heating.
5. The continuous sludge humification treatment equipment according to claim 3, characterized in that: The conveying assembly includes a feed hopper (306) and a conveying auger (307). The feed hopper (306) is provided at the top of the pretreatment tank (3), and the conveying auger (307) is inclined at the bottom of the bucket of the pretreatment tank (3). The bottom of the conveying auger (307) is connected to the top of the fermentation tank (4). The conveying auger (307) transports the sludge in the pretreatment tank (3) to the fermentation tank (4) when it operates.
6. The continuous sludge humification treatment equipment according to claim 5, characterized in that: The material conveying assembly also includes a first electric door (406), a second electric door (108), a ramp (109), an electric telescopic rod (110), and a pusher plate (111). Two sets of first electric doors (406) are symmetrically arranged at the top of the fermentation chamber (1). The opening and closing of the first electric doors (406) enables flexible connection between the fermentation chamber (1) and the fermentation tank (4). A second electric door (108) is arranged at the front end of the fermentation chamber (1). The fermentation chamber (1) is flexibly opened and closed through the second electric door (108). A ramp (109) is arranged at the front end of the outer side of the fermentation chamber (1). Two sets of electric telescopic rods (110) are symmetrically arranged at the bottom rear end of the movable plate (102). A pusher plate (111) is arranged at the outer telescopic end of the electric telescopic rod (110). When the electric telescopic rod (110) is extended to its limit, the bottom end of the pusher plate (111) abuts against the inner bottom wall of the fermentation chamber (1).
7. The continuous sludge humification treatment equipment according to claim 1, characterized in that: The top of the fermentation chamber (1), the pretreatment tank (3) and the fermentation tank (4) are all equipped with interconnected ventilation pipes (5), thus forming an integrated aeration system to ensure uniform oxygen supply and exhaust gas discharge during the sludge humification process.