Lifting control device of integrated equipment
By optimizing the power utilization of rural sewage treatment equipment through PLC controllers and frequency converters, the problems of power waste and battery storage limitations have been solved, achieving efficient sewage treatment and equipment protection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI JBM ENVIRONMENTAL PROTECTION SCI & TECH CO LTD
- Filing Date
- 2025-05-23
- Publication Date
- 2026-04-24
AI Technical Summary
Rural sewage treatment equipment suffers from problems such as power waste and difficulty in obtaining power, and the limited storage capacity of batteries leads to high project costs.
A PLC controller is used to detect the battery pack voltage, and a frequency converter is used to control the water pump operation to achieve variable frequency speed regulation. Combined with photovoltaic panels and an integrated processing box, power utilization is optimized, while protecting the electrical modules from rain.
Effectively utilize battery power to reduce engineering costs, ensure that wastewater treatment meets discharge standards, and improve the protection and operational stability of electrical equipment.
Smart Images

Figure CN224160524U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wastewater treatment technology, specifically to an integrated equipment lifting control device. Background Technology
[0002] In rural sewage treatment environmental protection facilities, the aeration equipment for rural sewage treatment uses AC mains power and is a brick structure. This sewage treatment method has obvious disadvantages: on the one hand, it wastes power, and on the other hand, it is difficult to obtain power, as the rural sewage treatment terminal is far from the power supply. At the same time, the brick structure is greatly affected by rainy days, making construction difficult. In the photovoltaic sewage treatment aeration power supply system, batteries are used to store energy, but the storage capacity of batteries is also limited. That is, the capacity of batteries is fixed, and using excessively high storage configurations such as larger battery capacities will bring higher costs to the project.
[0003] Therefore, this utility model provides an integrated lifting control device for equipment. Utility Model Content
[0004] To address the shortcomings of existing technologies, the purpose of this utility model is to provide an integrated lifting control device for equipment, thereby solving the problems mentioned in the background art. This utility model uses electrical modules such as a PLC controller to detect the voltage of the battery pack and uses a frequency converter to control the operation of the water pump, achieving variable frequency speed regulation. This allows for full utilization of the battery pack's power without the need to add a battery pack configuration. At the same time, it facilitates the treatment of sewage through an integrated treatment box, ensuring that the water quality meets discharge standards.
[0005] To achieve the above objectives, this utility model provides the following technical solution: an integrated equipment lifting control device, comprising an integrated processing box, a Z-shaped mounting frame fixedly mounted on the top of the integrated processing box, an adjustment plate with a photovoltaic panel mounted on top mounted on the top of the mounting frame via an adjustment mechanism, an installation groove inside the bottom end of the mounting frame, a movable frame mounted on the installation groove via a limiting mechanism, the movable frame comprising a movable plate, a charging inverter integrated machine and a fixed box fixedly mounted on the top two sides of the movable plate respectively, an electrical module installed inside the fixed box, a movable plate movably mounted on the front end of the movable plate via a shaft, a ventilation hole inside the inner wall of one side of the mounting groove, a groove inside the bottom end of the movable plate, and the movable plate positioned in front of the charging inverter integrated machine and the fixed box.
[0006] Furthermore, the interior of the integrated treatment tank is provided with an elevation tank, a multi-functional regulating tank, an anaerobic tank, an anoxic tank, an aerobic tank, and a sedimentation tank from left to right. The bottom of the elevation tank is connected to a water pump that is fixedly connected to the interior of the integrated treatment tank. The inlet of the water pump is fixedly located on the outside of the integrated treatment tank.
[0007] Furthermore, a transfer pump is fixedly connected to the top of the multifunctional regulating tank, anaerobic tank, anoxic tank, and aerobic tank. A fixed pipe is fixedly installed on one side of the transfer pump corresponding to the top of the multifunctional regulating tank, anaerobic tank, anoxic tank, and aerobic tank. From left to right, the outlet of the transfer pump is fixedly connected to the anaerobic tank, anoxic tank, aerobic tank, and sedimentation tank.
[0008] Furthermore, a filter screen is fixedly installed at an angle inside the sedimentation tank. A sealing door is movably installed on one side of the sedimentation tank via a hinge at the top of one end of the filter screen, corresponding to one side of the sedimentation tank. A drain outlet is provided on one side of the bottom of the sedimentation tank. A lock is provided between the bottom of the sealing door and the integrated treatment box.
[0009] Furthermore, guide rails are symmetrically fixedly arranged on the bottom inner side of the mounting groove, and a sliding groove is opened at the bottom of the movable plate corresponding to the position of the guide rail, and the guide rails are slidably installed inside the sliding groove.
[0010] Furthermore, the limiting mechanism includes a slot, which is located at the top of one end of the mounting bracket. An insertion hole is provided at the top of the movable plate and inside the slot. A "T"-shaped locking rod is inserted into the slot and the insertion hole. A pin hole is provided inside the locking rod and the slot.
[0011] Furthermore, the adjustment mechanism includes a lifting plate, an adjusting screw, a fixing block, a sliding rod, and a fixing rod. The adjusting screw is rotatably mounted inside the other end of the mounting frame. The lifting plate is mounted inside the other end of the mounting frame through a screw connection with the adjusting screw. The fixing blocks are symmetrically fixed on the front and rear sides of the top of one end of the mounting frame. The fixing rod is fixed between two fixing blocks on the same rear and front sides. The sliding rod is slidably mounted on the outside of the fixing rod. The top ends of the sliding rod and the lifting plate are movably connected to the bottom end of the adjusting plate through shafts.
[0012] Furthermore, the electrical module includes a PLC controller, a DC voltage transmitter, and a frequency converter. A battery pack is provided on the rear side of the mounting slot corresponding to the mounting bracket. The battery pack is electrically connected to the charging inverter and the DC voltage transmitter via wires. The DC voltage transmitter, the charging inverter, and the frequency converter are electrically connected to the PLC controller. The frequency converter is electrically connected to the water pump.
[0013] The beneficial effects of this utility model are as follows: The integrated equipment lifting control device of this utility model detects the voltage of the battery pack through an electrical module such as a PLC controller, and controls the operation of the water pump through a frequency converter to achieve variable frequency speed regulation. This allows for full utilization of the battery pack's power without the need for additional battery pack configuration. It also facilitates wastewater treatment through an integrated treatment box, ensuring that the water quality meets discharge standards. By installing the integrated charging inverter, fixed box, and electrical modules inside the mounting slot using a movable frame, protection for these components is enhanced. This prevents rainwater from affecting them. Furthermore, the ventilation holes and grooves facilitate ventilation and heat dissipation, ensuring the normal operation of the integrated charging inverter, fixed box, and electrical modules. This device is highly practical. Attached Figure Description
[0014] Figure 1 This is a structural diagram of a lifting control device for an integrated equipment according to the present invention;
[0015] Figure 2 This is a front cross-sectional view of an integrated equipment lifting control device according to the present invention;
[0016] Figure 3 This utility model relates to an integrated lifting control device for equipment. Figure 2 Enlarged view of point A in the middle;
[0017] Figure 4 This utility model presents a structural diagram of an integrated processing box and mounting frame for an integrated lifting control device.
[0018] Figure 5 This utility model relates to an integrated lifting control device for equipment. Figure 4 Enlarged view at point B in the middle;
[0019] Figure 6 This is a structural diagram of the moving frame of an integrated equipment lifting control device according to the present invention;
[0020] In the diagram: 1. Integrated treatment box; 2. Mounting frame; 3. Adjustment plate; 4. Photovoltaic panel; 5. Adjustment mechanism; 6. Movable frame; 7. Sealed door; 8. Drain outlet; 9. Water pump; 10. Lifting tank; 11. Multifunctional adjustment tank; 12. Anaerobic tank; 13. Anoxic tank; 14. Aerobic tank; 15. Sedimentation tank; 16. Filter screen; 17. Adjustment screw; 18. Lifting plate; 19. Fixing block; 20. Fixing rod; 21. Sliding rod; 22. Mounting slot; 23. Movable plate; 24. Integrated charging inverter; 25. Fixed box; 26. Ventilation hole; 27. Guide rail; 28. Card slot; 29. Card rod; 30. Movable plate. Detailed Implementation
[0021] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0022] Please see Figures 1 to 6 This utility model provides a technical solution: an integrated equipment lifting control device, including an integrated processing box 1. A Z-shaped mounting frame 2 is fixedly installed on the top of the integrated processing box 1. An adjusting plate 3 with a photovoltaic panel 4 mounted on its top is provided on the top of the mounting frame 2 via an adjusting mechanism 5. An installation groove 22 is provided inside the bottom of the mounting frame 2. A movable frame 6 is installed in the installation groove 22 via a limiting mechanism. The movable frame 6 includes a movable plate 23. A charging inverter integrated machine 24 and a fixed box 25 are fixedly installed on the top two sides of the movable plate 23, respectively. The fixed box 25 contains... The electrical module has a movable plate 30 movably mounted on the front end of the movable plate 23 via a shaft. Ventilation holes 26 are provided inside the inner wall of one side of the mounting groove 22. A groove is provided inside the bottom end of the movable plate 30. The movable plate 30 is positioned in front of the charging inverter 24 and the fixed box 25. Through the movable plate 30 and the movable plate 23, the charging inverter 24 and the fixed box 25 can be installed inside the mounting groove 22, thereby increasing the protection of the charging inverter 24, the fixed box 25, and the electrical module, and preventing rainwater from affecting them.
[0023] In this embodiment, the integrated treatment tank 1 has, from left to right, a lifting tank 10, a multi-functional regulating tank 11, an anaerobic tank 12, an anoxic tank 13, an aerobic tank 14, and a sedimentation tank 15. A water pump 9 is fixedly connected to the bottom of the lifting tank 10, corresponding to the interior of the integrated treatment tank 1. The inlet of the water pump 9 is fixedly located on the outside of the integrated treatment tank 1. A transfer pump is fixedly connected to the top of each of the multi-functional regulating tank 11, anaerobic tank 12, anoxic tank 13, and aerobic tank 14. A fixed pipe is fixedly installed on one side of each transfer pump, corresponding to the top of the multi-functional regulating tank 11, anaerobic tank 12, anoxic tank 13, and aerobic tank 14. From left to right, the outlet of the transfer pump is fixedly connected to each of the following tanks: anaerobic tank 12, anoxic tank 13, aerobic tank 14, and sedimentation tank 15. The sedimentation tank 15... A filter screen 16 is fixedly installed at an incline inside the sedimentation tank 15. A sealing door 7 is installed on one side of the sedimentation tank 15 via a hinge at the top of one end of the filter screen 16. A drain port 8 is provided on one side of the bottom of the sedimentation tank 15. A lock is provided between the bottom of the sealing door 7 and the integrated treatment box 1. Sewage can be drawn out by the water pump 9 and discharged into the interior of the lifting tank 10. The treated sewage inside the multi-functional regulating tank 11, anaerobic tank 12, anoxic tank 13 and aerobic tank 14 can be drawn out and discharged in sequence by the transfer pump, etc., to facilitate sewage treatment. The filter screen 16 can separate solids and liquids in the sewage, which is convenient for subsequent recycling and treatment of liquid sewage. It can also discharge sewage. The sealing door 7 can discharge the solids on the top of the filter screen 16.
[0024] In this embodiment, guide rails 27 are symmetrically fixedly arranged on the bottom inner side of the mounting groove 22. A sliding groove is formed on the bottom of the movable plate 23 corresponding to the guide rails 27. The guide rails 27 are slidably installed inside the sliding groove. The limiting mechanism includes a slot 28, which is formed on the top of one end of the mounting bracket 2. Insertion holes are formed on the top of the movable plate 30 and inside the slot 28. A "T"-shaped locking rod 29 is inserted into the slot 28 and the insertion hole. Pin holes are formed inside the locking rod 29 and the slot 28. The guide rails 27 and the sliding groove... The movable plate 23 can be limited, which facilitates the movement of the movable plate 23, the charging inverter 24, and the fixed box 25, and also makes it easy to remove them from the inside of the mounting slot 22. By rotating the movable plate 30, it is easy to test the electrical modules in the charging inverter 24 and the fixed box 25. The operation is simple. By inserting the bottom end of the clamp 29 into the socket and installing the clamp 29 in the clamp slot 28, the movable plate 30 can be limited, which can improve the stability of the movable frame 6. The pin hole can be used to install pins to fix the clamp 29.
[0025] In this embodiment, the adjustment mechanism 5 includes a lifting plate 18, an adjusting screw 17, a fixing block 19, a sliding rod 21, and a fixing rod 20. The adjusting screw 17 is rotatably mounted inside the other end of the mounting frame 2. The lifting plate 18 is mounted inside the other end of the mounting frame 2 through a screw connection with the adjusting screw 17. The fixing block 19 is symmetrically fixed on the front and rear sides of the top of one end of the mounting frame 2. The fixing rod 20 is fixedly mounted between two fixing blocks 19 on the same rear and front sides. The sliding rod 21 is slidably mounted on the outside of the fixing rod 20. The top ends of the sliding rod 21 and the lifting plate 18 are movably connected to the bottom end of the adjustment plate 3 through shafts. By adjusting the rotation of the adjusting screw 17 and the screw connection between the adjusting screw 17 and the lifting plate 18, the lifting plate 18 can be easily adjusted upwards. The lifting plate 18 can press the adjustment plate 3 and the photovoltaic panel 4. At the same time, the other end of the adjustment plate 3 drives the sliding rod 21 to slide on the fixing rod 20, which can adjust the tilt angle of the photovoltaic panel 4 and improve the power generation efficiency of the photovoltaic panel 4.
[0026] In this embodiment, the electrical module includes a PLC controller, a DC voltage transmitter, and a frequency converter. A battery pack is installed on the rear side of the mounting slot 22 corresponding to the mounting bracket 2. The battery pack is electrically connected to the charging inverter 24 and the DC voltage transmitter via wires. The DC voltage transmitter, the charging inverter 24, and the frequency converter are electrically connected to the PLC controller. The frequency converter is electrically connected to the water pump 9. The DC voltage transmitter can detect the voltage of the battery pack, and the PLC controller controls the frequency converter to transmit the corresponding frequency command to the water pump 9, enabling the water pump 9 to adjust its speed by frequency conversion, thus making full use of the battery pack's power.
[0027] When using the lifting control device of this integrated equipment, the photovoltaic panel 4 is electrically connected to the charging inverter integrated machine 24 via a cable. The movable plate 23 is installed inside the mounting groove 22 through the action of the guide rail 27 and the slide groove. The movable plate 23 and the movable plate 30 are pushed into the mounting groove 22. The movable plate 30 is rotated at the front end of the movable plate 23 so that the movable plate 30 and the movable plate 23 are perpendicular to each other. After the movable plate 30 enters the mounting groove 22, the locking rod 29 is inserted into the slot 28 and the insertion hole. The locking rod 29 and the slot 28 and the insertion hole can limit the movable plate 30. The pin is installed inside the pin hole to improve the locking mechanism. The stability of the lever 29 and the movable plate 30 facilitates the protection of the charging inverter 24 and electrical modules via the movable frame 6 and the mounting slot 22, while also providing rain protection to prevent rainwater from affecting the charging inverter 24 and electrical modules. The lever 29 can also be disassembled to easily remove the movable frame 6 from the mounting slot 22, allowing for maintenance of the charging inverter 24 and electrical equipment. The integrated processing box 1 is buried underground, and the mounting frame 2 is placed on the ground. Rotating the handwheel at the bottom of the adjusting screw 17 raises the lifting plate 18 through the screw connection between the adjusting screw 17 and the lifting plate 18. The lifting plate 18 is adjusted upwards via the shaft. One end of the upper compression adjusting plate 3 is rotated on the top of the slide rod 21, causing the slide rod 21 to slide on the fixed rod 20. This facilitates the adjustment of the angle between the adjusting plate 3 and the photovoltaic panel 4, enabling the photovoltaic panel 4 to generate electricity. A DC voltage transmitter detects the voltage of the battery pack and transmits the signal to the PLC controller. The PLC controller controls the frequency converter to transmit the corresponding frequency command to the water pump 9, causing the water pump 9 to operate at the corresponding frequency, achieving variable frequency speed regulation. This allows for full utilization of the battery pack's power without the need for additional battery pack configuration. A through hole is provided between the top of the lifting tank 10 and the multi-functional adjusting tank 11, allowing the water pump 9 to pump sewage into the interior of the lifting tank 10. Wastewater is discharged into the multi-functional regulating tank 11 through the through-hole for treatment. The wastewater is then pumped sequentially into the anaerobic tank 12, the anoxic tank 13, and the aerobic tank 14 for further treatment. Finally, the treated wastewater is discharged into the sedimentation tank 15, filtered through the filter screen 16, and solids and liquids are discharged through the sealing door 7 and the drain port 8, respectively. A fan is installed on the outer wall of the ventilation hole 26. The ventilation hole 26 and the groove facilitate ventilation and heat dissipation for the charging inverter 24, the fixed box 25, and the electrical modules, ensuring the normal operation of the charging inverter 24, the fixed box 25, and the electrical modules, making it highly practical.
[0028] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A lifting control device for an integrated equipment, comprising an integrated processing box (1), characterized in that, The top of the integrated processing box (1) is fixedly provided with a mounting bracket (2) configured as "Z". The top of the mounting bracket (2) is provided with an adjustment plate (3) on which a photovoltaic panel (4) is mounted via an adjustment mechanism (5). The bottom of the mounting bracket (2) is provided with an installation groove (22). The installation groove (22) is provided with a movable frame (6) via a limiting mechanism. The movable frame (6) includes a movable plate (23). The top two sides of the movable plate (23) are respectively fixedly installed with a charging inverter integrated machine (24) and a fixed box (25). The fixed box (25) is provided with an electrical module. The front end of the movable plate (23) is movably installed with a movable plate (30) via a shaft. The inner wall of one side of the mounting groove (22) is provided with a ventilation hole (26). The bottom of the movable plate (30) is provided with a groove. The movable plate (30) is located on the front side of the charging inverter integrated machine (24) and the fixed box (25).
2. The lifting control device for an integrated equipment according to claim 1, characterized in that: The integrated treatment box (1) has an elevation tank (10), a multi-functional regulating tank (11), an anaerobic tank (12), an anoxic tank (13), an aerobic tank (14), and a sedimentation tank (15) arranged from left to right inside. The bottom of the elevation tank (10) is connected to a water pump (9) which is fixedly connected to the inside of the integrated treatment box (1). The inlet of the water pump (9) is fixedly located on the outside of the integrated treatment box (1).
3. The lifting control device for an integrated equipment according to claim 2, characterized in that: The top of the multifunctional regulating tank (11), anaerobic tank (12), anoxic tank (13) and aerobic tank (14) are all fixedly connected to a conveying pump. A fixed pipe is fixedly installed on one side of the conveying pump corresponding to the top of the multifunctional regulating tank (11), anaerobic tank (12), anoxic tank (13) and aerobic tank (14). From left to right, the outlet of the conveying pump is fixedly connected to the anaerobic tank (12), anoxic tank (13), aerobic tank (14) and sedimentation tank (15).
4. The lifting control device for an integrated equipment according to claim 3, characterized in that: The sedimentation tank (15) is fixedly and inclined inside by a filter screen (16). A sealing door (7) is installed on the top of one end of the filter screen (16) corresponding to one side of the sedimentation tank (15) by a hinge. A drain port (8) is opened on one side of the bottom end of the sedimentation tank (15). A lock is provided between the bottom end of the sealing door (7) and the integrated treatment box (1).
5. The lifting control device for an integrated equipment according to claim 1, characterized in that: The bottom of the inner side of the mounting groove (22) is symmetrically fixed with guide rails (27), and the bottom of the moving plate (23) is provided with a sliding groove corresponding to the position of the guide rail (27). The guide rail (27) is slidably installed inside the sliding groove.
6. The lifting control device for an integrated equipment according to claim 5, characterized in that: The limiting mechanism includes a slot (28), which is located at the top of one end of the mounting bracket (2). The top of the movable plate (30) and the inside of the slot (28) are provided with insertion holes. A "T" shaped locking rod (29) is inserted into the slot (28) and the insertion holes. A pin hole is provided inside the locking rod (29) and the slot (28).
7. The lifting control device for an integrated equipment according to claim 1, characterized in that: The adjustment mechanism (5) includes a lifting plate (18), an adjusting screw (17), a fixing block (19), a sliding rod (21), and a fixing rod (20). The adjusting screw (17) is rotatably mounted inside the other end of the mounting frame (2). The lifting plate (18) is mounted inside the other end of the mounting frame (2) by screwing with the adjusting screw (17). The fixing block (19) is symmetrically fixed on the front and rear sides of the top of one end of the mounting frame (2). The fixing rod (20) is fixedly mounted between two fixing blocks (19) on the same rear and front sides. The sliding rod (21) is slidably mounted on the outside of the fixing rod (20). The top ends of the sliding rod (21) and the lifting plate (18) are movably connected to the bottom end of the adjustment plate (3) through shafts.
8. The lifting control device for an integrated equipment according to claim 1, characterized in that: The electrical module includes a PLC controller, a DC voltage transmitter and a frequency converter. A battery pack is provided on the rear side of the mounting slot (22) corresponding to the mounting bracket (2). The battery pack is electrically connected to the charging inverter integrated machine (24) and the DC voltage transmitter via wires. The DC voltage transmitter, the charging inverter integrated machine (24) and the frequency converter are electrically connected to the PLC controller. The frequency converter is electrically connected to the water pump (9).