A regional water resource optimal scheduling device based on digital twinning

By designing a regional water resource optimization scheduling device based on digital twins, the problems of insufficient manual operation and environmental adaptability in existing technologies have been solved. The device has achieved automated scheduling, self-powered operation and efficient heat dissipation, thereby improving the operational reliability and scheduling efficiency of the device.

CN122121091APending Publication Date: 2026-05-29HOHAI UNIV

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
HOHAI UNIV
Filing Date
2025-12-09
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing optimized scheduling devices require manual operation and face problems such as difficulty in connecting to the mains power supply, large changes in ambient temperature and humidity, and poor equipment heat dissipation leading to easy failure, which affect the continuous and stable operation of the equipment and the cost of use.

Method used

The design incorporates a regional water resource optimization and scheduling device based on digital twins, including an optimization and scheduling electrical control box, solar panels, a heat dissipation and protection box, and multi-level heat dissipation modes. Combined with temperature sensors and semiconductor cooling chips, it achieves automated scheduling and self-powered operation, and possesses environmental adaptability and reliability.

Benefits of technology

It has achieved automated operation, self-powered operation and efficient heat dissipation of the equipment, which has improved the reliability and scheduling efficiency of the device in complex environments and reduced the cost of use.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a regional water resource optimal scheduling device based on digital twinning, and relates to the technical field of intelligent scheduling equipment. The beneficial effects of the application are as follows: the optimal scheduling electric control box, the solar panel and the heat dissipation protection box are arranged, the temperature sensor monitors the temperature in the box in real time, the natural heat dissipation of the heat dissipation gap is relied on in normal times, the multi-stage adjustable heat dissipation mode is adopted, the flexible switching during operation is facilitated, and the cost consumption during daily operation is reduced, the charging controller is connected with the solar panel through a plurality of fourth positioning bolts, so that the specification of the solar panel is convenient to replace, the moisture-proof bottom plate is used for moisture-proof and protection treatment of the bottom of the optimal scheduling electric control box, the power supply mechanism and the power storage bin are reinforced and connected through the auxiliary positioning plate and the third positioning bolt, and the installation stability of the equipment is improved.
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Description

Technical Field

[0001] This invention relates to the field of intelligent scheduling equipment technology, specifically a regional water resource optimization scheduling device based on digital twins. Background Technology

[0002] In the field of water resources and water management, the so-called digital twin model of water resources is a virtual entity that is highly coupled with physical water bodies and infrastructure such as river basins, lakes and reservoirs, river networks, water supply systems, and sewage systems on a digital platform. This model not only has static geometric or structural mapping, but also integrates real-time or near real-time monitoring data, model simulation, early warning systems, and decision support. Regional water resource scheduling is a core task for ensuring urban and rural water supply, agricultural irrigation, ecological balance, and flood control safety.

[0003] Chinese Patent Publication No. CN 119542948A discloses a power load-side resource optimization scheduling device, including a fixed base with a fixed groove; a control box installed inside a movable box, movably installed in the fixed groove; a movable base movably installed on top of the fixed base; a display mechanism rotatably installed inside the movable base, with an adjustable tilt angle; and a control component movably installed on top of the movable box. The bottom of the display mechanism is in a limiting engagement with the control component. When the display mechanism rotates to a non-limited state relative to the control component, the movable base and control component are moved in opposite directions, causing the display mechanism to move from the first side to the second side of the control component. This positions the display mechanism's operating interface in front of the control component, preventing accidental contact with the control component while operating the display mechanism's interface. The rotation and tilt angle adjustment functions of the display mechanism, as well as the relative movement mechanism with the control component, of this invention can be freely adjusted according to needs, solving the technical problem of inconvenient operation of existing equipment.

[0004] However, the above solution still has the following problems: Optimized scheduling devices typically require manual operation one by one, which affects the final scheduling efficiency and thus fails to meet the needs of normal use. Optimized scheduling devices often need to be deployed in the field or remote areas, facing problems such as difficulty in accessing mains power, large changes in ambient temperature and humidity, and poor heat dissipation that makes the equipment prone to failure. These issues seriously affect the continuous and stable operation and life cycle of core computing equipment and increase the overall cost of use.

[0005] Therefore, the present invention needs to design a regional water resource optimization and scheduling device based on digital twins to solve the above-mentioned problems. Summary of the Invention

[0006] The purpose of this invention is to provide a regional water resource optimization and scheduling device based on digital twins, which is an integrated device capable of equipment protection, equipment self-powering, and intelligent decision-making, while also possessing environmental adaptability and reliability, in order to solve the problems mentioned in the background art.

[0007] To achieve the above objectives, the present invention provides the following technical solution: a regional water resource optimization scheduling device based on digital twins, comprising an optimization scheduling electrical control box, and further comprising: The optimized scheduling control box has a regional water resources data storage compartment inside, and equidistantly distributed tag recording boards inside the regional water resources data storage compartment. A handheld scheduling device is installed on the outside of the optimized scheduling control box. The top of the optimized scheduling control box is equipped with a power supply mechanism, which includes an energy storage compartment. The energy storage compartment is fixedly connected to the top of the optimized scheduling control box. Two symmetrically distributed bottom support frames are installed on the top of the energy storage compartment. A fixed frame is rotatably connected above the two bottom support frames. An inverter is rotatably connected inside the fixed frame. A charging controller is installed on one side of the inverter. A solar panel is fixedly connected to the other end of the charging controller. The optimized scheduling control box is fixedly connected to a heat dissipation protection box on the side adjacent to the handheld scheduling device. An isolation baffle is fixedly connected inside the heat dissipation protection box. A semiconductor cooling chip is fixedly connected inside the isolation baffle. One end of the semiconductor cooling chip is fixedly connected to a semiconductor cooling end. A first fan is installed on one side of the heat dissipation protection box.

[0008] In a preferred embodiment of the present invention, a semiconductor heating end is fixedly connected to the other end of the semiconductor cooling chip, and equidistant conductive plates are fixedly connected to the outer side of the semiconductor cooling end, while equidistant heat dissipation fins are fixedly connected to the outer side of the semiconductor heating end.

[0009] In a preferred embodiment of the present invention, a first fan mounting bracket extending into the interior of the optimization scheduling control box is fixedly connected to one side of the heat dissipation protection box. The first fan is located inside the first fan mounting bracket. The outer side of the first fan mounting bracket is threaded with first positioning bolts that are evenly distributed and extend into the inner wall of the heat dissipation protection box. A second fan mounting bracket is installed on the side of the heat dissipation protection box away from the optimization scheduling control box. A second fan is fixedly connected inside the second fan mounting bracket.

[0010] In a preferred embodiment of the present invention, an internal mounting plate is fixedly connected inside the optimized scheduling control box. The top of the internal mounting plate is connected to the bottom of the regional water resources data storage compartment. An internal fixing frame is fixedly connected inside the optimized scheduling control box and above the internal mounting plate. A temperature sensor is fixedly connected inside the internal fixing frame. A backup battery is fixedly connected inside the optimized scheduling control box and below the internal mounting plate. A model chamber is fixedly connected to one side of the backup battery. A regional water resources digital twin model is installed inside the model chamber.

[0011] In a preferred embodiment of the present invention, a first drive motor is fixedly connected to one side of the fixed frame, the output end of the first drive motor extends into the fixed frame and is fixedly connected to a first rotating shaft, and one end of the first rotating shaft is fixedly connected to one end of the inverter.

[0012] In a preferred embodiment of the present invention, a motor mounting plate is fixedly connected inside the bottom support frame, a second drive motor is fixedly connected to the bottom of the motor mounting plate, a second rotating shaft extending to the top of the bottom support frame is fixedly connected to the output end of the second drive motor, and the top end of the second rotating shaft is fixedly connected to the bottom of the fixed frame.

[0013] In a preferred embodiment of the present invention, a control panel is fixedly connected to the outside of the optimized scheduling control box and below the handheld scheduling device. A control switch is fixedly connected to the outside of the control panel. A display screen is fixedly connected to the outside of the optimized scheduling control box and to one side of the handheld scheduling device. The handheld scheduling device, display screen, control switch, energy storage compartment, solar panel, charging controller, first drive motor, second drive motor, inverter, first fan, second fan, semiconductor cooling end, semiconductor heating end, backup battery, model room, regional water resource digital twin model, and temperature sensor are all electrically connected to the control panel.

[0014] In a preferred embodiment of the present invention, the inner wall of the optimized scheduling control box is equipped with symmetrically distributed side insulating plates, and the bottom of the optimized scheduling control box is fixedly connected with a moisture-proof base plate, and the bottom of the moisture-proof base plate is fixedly connected with support feet on all four sides.

[0015] In a preferred embodiment of the present invention, a side inspection cover is installed on one side of the optimized scheduling control box and below the heat dissipation protection box, and equidistant heat dissipation slits are provided on the outer side of the optimized scheduling control box and below the control panel.

[0016] In a preferred embodiment of the present invention, the outer side of the bottom support frame is fixedly connected with equidistant auxiliary positioning plates, and the inner side of each auxiliary positioning plate is threaded with a third positioning bolt extending to the inner wall of the top of the battery compartment.

[0017] Compared with the prior art, the beneficial effects of the present invention are: 1. Equipped with an optimized scheduling control box, solar panels, and heat dissipation protection box, staff can view recommended schemes and simulation results through the control panel, control switch, or handheld scheduling device to achieve automated scheduling execution.

[0018] 2. Through multi-level adjustable heat dissipation modes, the temperature sensor monitors the temperature inside the box in real time. Under normal conditions, it relies on the heat dissipation gaps for natural heat dissipation. When the temperature rises, the first fan is activated to assist in exhaust. When the temperature is high, the semiconductor cooling chip is activated, the first fan reverses to send in cold air, and the second fan dissipates the heat generated by the semiconductor heating end, forming an efficient heat dissipation closed loop.

[0019] 3. Driven by the first and second drive motors, the solar panels automatically track the sun's position to maximize light energy collection. The electrical energy is stored in the battery compartment after being managed by the charging controller, or converted into AC power by the inverter to power some equipment. The backup battery ensures continuous operation when there is no sunlight. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of a regional water resource optimization and scheduling device based on digital twins according to the present invention. Figure 1 ; Figure 2 This is a schematic diagram of the overall structure of a regional water resource optimization and scheduling device based on digital twins according to the present invention. Figure 2 ; Figure 3 This is a schematic diagram of the internal structure of the optimized scheduling control box of a regional water resource optimized scheduling device based on digital twins according to the present invention; Figure 4 This is an enlarged schematic diagram of the internal structure of the heat dissipation and protection box of a regional water resource optimization and scheduling device based on digital twins according to the present invention; Figure 5 This is an enlarged schematic diagram of the power supply mechanism of a regional water resource optimization scheduling device based on digital twin according to the present invention; Figure 6 for Figure 3 Enlarged schematic diagram of the structure at point A in the diagram; Figure 7 for Figure 4 Enlarged schematic diagram of the structure at point B in the diagram.

[0021] In the picture: 1. Optimized dispatch control box; 11. Side inspection cover; 12. Control panel; 13. Handheld dispatch device; 14. Display screen; 15. Control switch; 16. Ventilation gap; 17. Moisture-proof base plate; 18. Support feet; 19. Battery storage compartment; 2. Solar panel; 21. Bottom support frame; 22. Fixing frame; 23. Charging controller; 24. First rotating shaft; 25. First drive motor; 26. Motor mounting plate; 27. Second drive motor; 28. Second rotating shaft; 29. ​​Inverter; 3. Heat dissipation protection box; 31. First fan mounting bracket; 32. First fan; 33. First positioning bolt; 34. Second fan mounting bracket; 35. Second fan; 36. Second positioning bolt; 37. Isolation baffle; 38. Semiconductor cooling end; 39. Semiconductor heating end; 4. Backup battery; 41. Model room; 42. Regional water resources digital twin model; 43. Internal mounting plate; 44. Regional water resources data storage compartment; 45. Tag recording board; 46. Internal fixing frame; 47. Temperature sensor; 48. Side insulation plate; 5. Auxiliary positioning plate; 51. Third positioning bolt. Detailed Implementation

[0022] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0023] Please see Figures 1-7 The present invention provides a technical solution: a regional water resource optimization scheduling device based on digital twins, including an optimization scheduling electrical control box 1, and further comprising: The internal fixed connection of the optimized dispatch control box 1 is an internal mounting plate 43. The top of the internal mounting plate 43 is fixedly connected to a regional water resources data storage compartment 44. The internal storage compartment 44 is equipped with equidistantly distributed label recording boards 45. The regional water resources data storage compartment 44 is used to classify and store regional water resources materials. The label recording boards 45 are used to mark the corresponding areas for easy and quick retrieval. A handheld dispatch device 13 is installed on the outside of the optimized dispatch control box 1. The top of the optimized scheduling control box 1 is equipped with a power supply mechanism, which includes a battery storage compartment 19. The battery storage compartment 19 is fixedly connected to the top of the optimized scheduling control box 1. Two symmetrically distributed bottom support frames 21 are installed on the top of the battery storage compartment 19. A fixed frame 22 is rotatably connected above the two bottom support frames 21. An inverter 29 is rotatably connected inside the fixed frame 22. A charging controller 23 is installed on one side of the inverter 29. A solar panel 2 is fixedly connected to the other end of the charging controller 23. The optimized dispatch control box 1 is located on the opposite side of the handheld dispatch device 13 and is fixedly connected to a heat dissipation protection box 3. An isolation baffle 37 is fixedly connected inside the heat dissipation protection box 3. A semiconductor cooling chip is fixedly connected inside the isolation baffle 37. A semiconductor cooling end 38 is fixedly connected to one end of the semiconductor cooling chip, and a semiconductor heating end 39 is fixedly connected to the other end of the semiconductor cooling chip. A first fan mounting bracket 31 extending into the interior of the optimized dispatch control box 1 is fixedly connected to one side of the heat dissipation protection box 3. A first fan 32 is fixedly connected inside the first fan mounting bracket 31.

[0024] Please see Figures 1-4 , Figures 6-7 In this scheme, the outer side of the semiconductor cooling end 38 is fixedly connected with equidistant conductive plates, and the outer side of the semiconductor heating end 39 is fixedly connected with equidistant heat dissipation fins.

[0025] In this scheme, an internal mounting bracket 46 is fixedly connected inside the optimized scheduling control box 1 and above the internal mounting plate 43. A temperature sensor 47 is fixedly connected inside the internal mounting bracket 46. The temperature sensor 47 is used to monitor and process the temperature changes inside the optimized scheduling control box 1 in real time. A backup battery 4 is fixedly connected inside the optimized scheduling control box 1 and below the internal mounting plate 43. A model chamber 41 is fixedly connected to one side of the backup battery 4. A regional water resource digital twin model 42 is installed inside the model chamber 41. The backup battery 4 is used to provide the power resources required for equipment operation.

[0026] In this design, the outer side of the first fan mounting bracket 31 is threaded with equal-spaced first positioning bolts 33 extending to the inner wall of the heat dissipation protection box 3. Multiple first positioning bolts 33 are used to reinforce the connection between the first fan mounting bracket 31 and the heat dissipation protection box 3. A second fan mounting bracket 34 is installed on the side of the heat dissipation protection box 3 away from the optimization scheduling control box 1. A second fan 35 is fixedly connected inside the second fan mounting bracket 34. The outer side of the second fan mounting bracket 34 is threaded with equal-spaced second positioning bolts 36 extending to the inner wall of the heat dissipation protection box 3. Multiple second positioning bolts 36 are used to reinforce the connection between the second fan 35 and the heat dissipation protection box 3, thus facilitating the disassembly, assembly, and maintenance of local equipment. Both the second fan 35 and the first fan 32 are bidirectional fans. The interior of the isolation baffle 37 has a matching slot for mounting a semiconductor cooling chip, thereby controlling the high-temperature gas inside and cooling the system. The gas is isolated to avoid affecting the normal cooling efficiency. Temperature sensor 47 monitors the internal temperature changes of the optimized scheduling control box 1 in real time. During normal heat dissipation, the multiple heat dissipation slits 16 on the outside of the optimized scheduling control box 1 are sufficient for self-heating. When the internal temperature rises, the first fan 32 can be rotated in the forward direction to assist in the exhaust of the high-temperature gas inside. When the internal temperature is high, the semiconductor cooling chip operates, and the first fan 32 rotates in the reverse direction to deliver the cooling gas into the optimized scheduling control box 1 for rapid heat dissipation. At this time, the heat generated by the semiconductor cooling chip is exhausted through the semiconductor heating end 39 and the heat dissipation fins, and is exhausted to the outside of the heat dissipation protection box 3 by the second fan 35 rotating in the reverse direction, thereby protecting the internal equipment. The multi-level adjustable heat dissipation mode not only facilitates flexible switching during operation, but also reduces the cost of daily operation.

[0027] Please see Figures 1-7 In this design, a first drive motor 25 is fixedly connected to one side of the fixed frame 22. The output end of the first drive motor 25 extends into the fixed frame 22 and is fixedly connected to a first rotating shaft 24. One end of the first rotating shaft 24 is fixedly connected to one end of the inverter 29. The first drive motor 25 rotates, causing the first rotating shaft 24 to rotate inside the fixed frame 22, thereby causing the inverter 29 to rotate and the charging controller 23 on one side to rotate. This facilitates the adjustment of the installation angle of the solar panel 2 and the size of the solar panel 2. The size can be changed as needed during operation. The charging controller 23 is connected to the solar panel 2 through multiple fourth positioning bolts, which facilitates the replacement of the specifications of the solar panel 2.

[0028] In this design, a motor mounting plate 26 is fixedly connected inside the bottom support frame 21. A second drive motor 27 is fixedly connected to the bottom of the motor mounting plate 26. A second rotating shaft 28 extending to the top of the bottom support frame 21 is fixedly connected to the output end of the second drive motor 27. The top end of the second rotating shaft 28 is fixedly connected to the bottom of the fixed frame 22. The second drive motor 27 drives the second rotating shaft 28 to rotate inside the bottom support frame 21, thereby driving the fixed frame 22 at the top to rotate and adjust its orientation until it is in the optimal position for collecting solar resources with the solar panel 2, thus improving the flexibility of the equipment.

[0029] In this scheme, a control panel 12 is fixedly connected to the outside of the optimized dispatch control box 1 and below the handheld dispatch device 13. A control switch 15 is fixedly connected to the outside of the control panel 12. A display screen 14 is fixedly connected to the outside of the optimized dispatch control box 1 and to one side of the handheld dispatch device 13. The display screen 14 is used for normal data display. The control panel 12 and the control switch 15 are used to assist manual optimized dispatch operations. The components include the handheld dispatch device 13, display screen 14, control switch 15, energy storage compartment 19, solar panel 2, charging controller 23, first drive motor 25, second drive motor 27, inverter 29, first fan 32, second fan 35, semiconductor cooling end 38, semiconductor heating end 39, backup battery 4, model room 41, and regional water resources. Both the source digital twin model 42 and the temperature sensor 47 are electrically connected to the control panel 12. The control panel 12 is used to control the operation of the handheld dispatching device 13, the display screen 14, the control switch 15, the battery storage compartment 19, the solar panel 2, the charging controller 23, the first drive motor 25, the second drive motor 27, the inverter 29, the first fan 32, the second fan 35, the semiconductor cooling end 38, the semiconductor heating end 39, the backup battery 4, the model room 41, the regional water resource digital twin model 42, and the temperature sensor 47, realizing unified management of power equipment. The temperature sensor 47 measures environmental parameters, converts them into signals, and sends them to the control panel 12. The control panel 12 receives the signals and processes them, generating corresponding control signals according to the preset control algorithm.

[0030] Please see Figures 1-6 In this scheme, the inner wall of the optimized scheduling control box 1 is equipped with symmetrically distributed side insulation plates 48. The side insulation plates 48 are all made of epoxy resin, which improves the insulation protection effect during equipment use. The bottom of the optimized scheduling control box 1 is fixedly connected to a moisture-proof base plate 17. Support feet 18 are fixedly connected to the bottom of the moisture-proof base plate 17. The four support feet 18 are used to support the overall equipment. The moisture-proof base plate 17 is used to provide moisture protection for the bottom of the optimized scheduling control box 1.

[0031] In this scheme, a side inspection cover 11 is installed on one side of the optimized scheduling control box 1 and below the heat dissipation protection box 3. On the outside of the optimized scheduling control box 1 and below the control panel 12, there are equidistant heat dissipation slits 16. The side inspection cover 11 is used to facilitate the opening of the interior of the optimized scheduling control box 1 for normal maintenance. The multiple heat dissipation slits 16 are used to assist in heat dissipation.

[0032] Please see Figures 1-3 In this scheme, auxiliary positioning plates 5 are fixedly connected to the outer side of the bottom support frame 21 at equal intervals. The auxiliary positioning plates 5 are threaded with third positioning bolts 51 extending to the inner wall of the top of the battery storage compartment 19. The auxiliary positioning plates 5 and the third positioning bolts 51 work together to reinforce the connection between the power supply mechanism and the battery storage compartment 19, thereby improving the installation stability of the equipment.

[0033] Please see Figures 1-7 The working principle of this invention is as follows: The system is equipped with an optimized scheduling control box 1, a solar panel 2, and a heat dissipation protection box 3. When in use, the control panel 12 is opened. The control panel 12 has an IoT interface on its outside, which receives real-time data from a sensor network covering the entire area, including but not limited to reservoir water level, river flow, rainfall, water quality parameters, meteorological information, and water user demand. The control panel 12 has a core processing unit that summarizes and processes the above data. Based on the received real-time data, the core processing unit receives data through the regional water resources digital twin model 42, supported by basic geographic information, engineering parameters, and historical operation data stored in the regional water resources data storage warehouse 44. The regional water resources digital twin model 42 reflects the real state of the regional water system in real time and can perform forward-looking simulation and deduction of different scheduling schemes, predict their impact on water flow, water level, water quality, and supply and demand balance. Based on the simulation of the digital twin model, a recommended scheduling scheme with the highest comprehensive benefits is generated and displayed on the display screen 14.

[0034] Staff can view recommended schemes and simulation results through control panel 12, control switch 15, or handheld dispatching device 13, and make fine adjustments or confirmations based on expert experience. Once the scheme is confirmed, control commands are sent to remote water conservancy facilities via actuators such as the regional water resources digital twin model 42 or through communication networks to achieve automated dispatching. Temperature sensor 47 monitors the internal temperature in real time. Under normal conditions, it relies on natural heat dissipation through heat dissipation slits 16. When the temperature rises, the first fan 32 is activated to assist in ventilation. At high temperatures, the semiconductor cooling chip is activated, the first fan 32 reverses to send in cold air, and the second fan 35 dissipates the heat generated by the semiconductor heating end 39, forming a cooling effect. A highly efficient heat dissipation closed loop is formed. Driven by the first drive motor 25 and the second drive motor 27, the solar panel 2 automatically tracks the sun's position to maximize light energy collection. Electrical energy, managed by the charging controller 23, is stored in the battery storage compartment 19, or converted to AC power by the inverter 29 to power some equipment. The backup battery 4 ensures continuous operation in the absence of sunlight, improving the intelligence level and scientific basis of water resource management. It also ensures long-term reliable operation of the device in complex field environments. Through multi-level adjustable heat dissipation modes, it facilitates flexible switching during operation and reduces daily operating costs. The first drive motor 25 drives the first rotating shaft 24 to rotate in a fixed position. The frame 22 rotates internally, thereby driving the inverter 29 to rotate, which in turn drives the charging controller 23 on one side to rotate, thus facilitating the adjustment of the installation angle of the solar panel 2. The size of the solar panel 2 can be replaced as needed during operation. The charging controller 23 is connected to the solar panel 2 through multiple fourth positioning bolts, thus facilitating the replacement of the specifications of the solar panel 2. The control panel 12 is used to control the handheld dispatching device 13, the display screen 14, the control switch 15, the battery compartment 19, the solar panel 2, the charging controller 23, the first drive motor 25, the second drive motor 27, the inverter 29, the first fan 32, the second fan 35, the semiconductor cooling end 38, and the half-cell battery. The operation of the heat-conducting end 39, backup battery 4, model chamber 41, regional water resource digital twin model 42, and temperature sensor 47 enables unified management of power equipment. The temperature sensor 47 measures environmental parameters, converts them into signals, and sends them to the control panel 12. The control panel 12 receives and processes the signals, and generates corresponding control signals according to the preset control algorithm. Four support feet 18 are used to support the overall equipment. The moisture-proof bottom plate 17 is used to protect the bottom of the optimized scheduling control box 1 from moisture. The auxiliary positioning plate 5 and the third positioning bolt 51 work together to reinforce the connection between the power supply mechanism and the energy storage compartment 19, improving the installation stability of the equipment.

[0035] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A regional water resource optimization scheduling device based on digital twins, comprising an optimization scheduling electrical control box (1), characterized in that, Also includes: The optimized scheduling control box (1) is equipped with a regional water resources data storage compartment (44), and the regional water resources data storage compartment (44) is equipped with equidistantly distributed label recording boards (45). A handheld scheduling device (13) is installed on the outside of the optimized scheduling control box (1). The top of the optimized scheduling control box (1) is equipped with a power supply mechanism, which includes a battery storage compartment (19). The battery storage compartment (19) is fixedly connected to the top of the optimized scheduling control box (1). Two symmetrically distributed bottom support frames (21) are installed on the top of the battery storage compartment (19). A fixed frame (22) is rotatably connected above the two bottom support frames (21). An inverter (29) is rotatably connected inside the fixed frame (22). A charging controller (23) is installed on one side of the inverter (29). A solar panel (2) is fixedly connected to the other end of the charging controller (23). The optimized scheduling control box (1) is located on the side adjacent to the handheld scheduling device (13) and is fixedly connected to a heat dissipation protection box (3). An isolation baffle (37) is fixedly connected inside the heat dissipation protection box (3). A semiconductor cooling chip is fixedly connected inside the isolation baffle (37). A semiconductor cooling end (38) is fixedly connected to one end of the semiconductor cooling chip. A first fan (32) is installed on one side of the heat dissipation protection box (3).

2. The regional water resource optimization and scheduling device based on digital twins according to claim 1, characterized in that: The other end of the semiconductor cooling chip is fixedly connected to a semiconductor heating end (39), and the outside of the semiconductor cooling end (38) is fixedly connected to equidistant conductive plates, and the outside of the semiconductor heating end (39) is fixedly connected to equidistant heat dissipation fins.

3. A regional water resource optimization and scheduling device based on digital twins according to claim 2, characterized in that: A first fan mounting bracket (31) extending into the interior of the optimization scheduling control box (1) is fixedly connected to one side of the heat dissipation protection box (3). The first fan (32) is located inside the first fan mounting bracket (31). The outer side of the first fan mounting bracket (31) is threaded with first positioning bolts (33) that are evenly distributed and extend into the inner wall of the heat dissipation protection box (3). A second fan mounting bracket (34) is installed on the side of the heat dissipation protection box (3) away from the optimization scheduling control box (1). A second fan (35) is fixedly connected inside the second fan mounting bracket (34).

4. A regional water resource optimization and scheduling device based on digital twins according to claim 3, characterized in that: The optimized scheduling control box (1) is fixedly connected to an internal mounting plate (43). The top of the internal mounting plate (43) is connected to the bottom of the regional water resources data storage compartment (44). An internal mounting frame (46) is fixedly connected inside the optimized scheduling control box (1) and above the internal mounting plate (43). A temperature sensor (47) is fixedly connected inside the internal mounting frame (46). A spare battery (4) is fixedly connected inside the optimized scheduling control box (1) and below the internal mounting plate (43). A model room (41) is fixedly connected to one side of the spare battery (4). A regional water resources digital twin model (42) is installed inside the model room (41).

5. A regional water resource optimization and scheduling device based on digital twins according to claim 4, characterized in that: A first drive motor (25) is fixedly connected to one side of the fixed frame (22). The output end of the first drive motor (25) extends into the fixed frame (22) and is fixedly connected to a first rotating shaft (24). One end of the first rotating shaft (24) is fixedly connected to one end of the inverter (29).

6. A regional water resource optimization and scheduling device based on digital twins according to claim 5, characterized in that: The bottom support frame (21) is internally fixedly connected to a motor mounting plate (26), and the bottom of the motor mounting plate (26) is fixedly connected to a second drive motor (27). The output end of the second drive motor (27) is fixedly connected to a second rotating shaft (28) extending to the top of the bottom support frame (21), and the top end of the second rotating shaft (28) is fixedly connected to the bottom of the fixed frame (22).

7. A regional water resource optimization and scheduling device based on digital twins according to claim 6, characterized in that: A control panel (12) is fixedly connected to the outside of the optimized scheduling control box (1) and below the handheld scheduling device (13). A control switch (15) is fixedly connected to the outside of the control panel (12). A display screen (14) is fixedly connected to the outside of the optimized scheduling control box (1) and to one side of the handheld scheduling device (13). The handheld scheduling device (13), display screen (14), control switch (15), battery storage compartment (19), solar panel (2), charging controller (23), first drive motor (25), second drive motor (27), inverter (29), first fan (32), second fan (35), semiconductor cooling end (38), semiconductor heating end (39), backup battery (4), model room (41), regional water resource digital twin model (42), and temperature sensor (47) are all electrically connected to the control panel (12).

8. A regional water resource optimization and scheduling device based on digital twins according to claim 6, characterized in that: The inner wall of the optimized scheduling control box (1) is equipped with symmetrically distributed side insulating plates (48), and the bottom of the optimized scheduling control box (1) is fixedly connected with a moisture-proof base plate (17). Support feet (18) are fixedly connected around the bottom of the moisture-proof base plate (17).

9. A regional water resource optimization and scheduling device based on digital twins according to claim 8, characterized in that: A side inspection cover (11) is installed on one side of the optimized scheduling control box (1) and below the heat dissipation protection box (3). Equally spaced heat dissipation slits (16) are provided on the outside of the optimized scheduling control box (1) and below the control panel (12).

10. A regional water resource optimization and scheduling device based on digital twins according to claim 7, characterized in that: The bottom support frame (21) is fixedly connected with equidistant auxiliary positioning plates (5) on its outer side, and the auxiliary positioning plates (5) are threaded with third positioning bolts (51) extending to the inner wall of the top of the battery compartment (19).