An online simulator and its analysis method for real-time kinetic energy analysis in smart power plants

By designing a detachable simulator structure and an efficient heat dissipation system, the problems of inconvenient device maintenance and poor cooling effect in the existing technology have been solved, realizing a simulator that is easy to maintain and can operate stably.

CN114297825BActive Publication Date: 2025-10-31SHANXI SANHESHENG IND TECH +1
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Patent Information

Application Number
CN202111465898.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-12-03
Publication Date
2025-10-31
Estimated Expiration
2041-12-03

AI Technical Summary

Technical Problem

Existing power distribution network fault simulation systems are inconvenient for inspection and maintenance when equipment fails, and their cooling effect is poor, which can easily lead to danger due to high temperature.

Method used

An online simulator for real-time energy analysis of a smart power plant was designed. The top plate, bottom plate and side plate are detachably connected by connecting bolts, and the structure of movable blocks and levers facilitates maintenance. Cooling is achieved by a combination of cooling pipes, cooling fans and pumps. Metal aluminum heat sinks and motor-driven cooling fans are used for efficient heat dissipation, and the display angle is adjusted by a support frame.

Benefits of technology

It enables convenient device maintenance and efficient heat dissipation, ensuring stable operation of the simulator for a long time and avoiding dangers caused by high temperature.

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Abstract

This invention discloses an online simulator for real-time energy analysis of smart power plants, relating to the technical field of simulation systems. It includes a top plate and a bottom plate, with a side plate movably connected between them. The upper surface of the bottom plate has multiple first slots arranged in a rectangular array. The bottom end of the side plate has a threaded groove and a second slot. The invention also discloses an analysis method for the online simulator, including: A) Wiring: Connecting the device to the location to be analyzed via a connecting cable, thereby inputting the collected data into the analyzer. This invention uses connecting bolts to connect the top plate, bottom plate, and side plate. By pushing the movable block upwards, it can overcome the spring force of the second spring and move inside the second movable cavity, thereby disengaging the limiting plate from the first slot.
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Description

Technical Field

[0001] This invention relates to the technical field of simulation systems, and in particular to an online simulator and analysis method for real-time kinetic energy analysis of smart power plants. Background Technology

[0002] With the technological advancements in the power industry and the rapid development of urban power distribution network construction, the scale of power distribution networks is increasing and the network structure is becoming more complex. As a result, power plants need to continuously generate electricity. However, during the power generation process, it is also necessary to monitor and analyze the kinetic energy in real time to avoid some problems. Therefore, a real-time kinetic energy analysis simulator for power plants and its analysis methods are needed to solve this problem.

[0003] Chinese invention patent application number CN201210254483.9 discloses a distribution network fault simulation system and its simulation method. Although the two parts of the entire project organically and orderly design, development and combination of the dispatching work involved in the regional distribution network from the aspects of real-time application and training management, adapting to the new form of distribution network development and filling the gap in this field of domestic distribution network dispatching, the distribution network fault simulation system and its simulation method still have disadvantages in use. When the device fails, it is not convenient to inspect and repair its internal parts. In addition, the cooling effect is not good, and the device is prone to high temperature during long-term operation, which may lead to danger.

[0004] Therefore, it is necessary to propose an online simulator and its analysis method for real-time energy analysis of smart power plants to solve the above problems. Summary of the Invention

[0005] To address the shortcomings of existing technologies, this invention provides an online simulator and analysis method for real-time energy analysis of smart power plants. This solves the problems of distribution network fault simulation systems and methods, which still have drawbacks such as difficulty in inspecting and maintaining the internal components when a fault occurs, poor cooling effect, and the risk of high temperatures and potential dangers during prolonged operation.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] An online simulator for real-time energy analysis of a smart power plant includes a top plate and a bottom plate, with a side plate movably connected between them. The upper surface of the bottom plate has multiple first slots arranged in a rectangular array. The bottom end of the side plate has a threaded groove and a second slot. Multiple connecting bolts, arranged in a rectangular array, are movably connected through the interior of both the top and bottom plates. One end of each connecting bolt is fitted into the threaded groove. A first movable cavity is formed inside one side of the side plate. A first spring is fixedly connected inside the first movable cavity. A movable rod is fixedly connected to the top of the first spring. A connecting block and a lever are fixedly connected to one side of the movable rod. The connecting block is adapted to a second slot. A second movable cavity is opened in the middle of the side plate. A second spring is fixedly connected to the top of the second movable cavity. A movable block is fixedly connected to the bottom of the second spring. A limit plate is fixedly connected to the bottom of the movable block. The bottom of the limit plate is adapted to the first slot. A plurality of legs arranged in a rectangular array are fixedly connected to the bottom of the base plate.

[0008] Optionally, an analyzer is fixedly connected to the upper surface of the base plate, a connecting line is fixedly connected to the bottom end of the analyzer, and the other end of the connecting line passes through and is fixedly connected to the base plate.

[0009] Optionally, a cooling plate is fixedly connected to one side of the analyzer, a cooling pipe is fixedly connected inside the cooling plate, and a pump is fixedly connected through the top of the cooling pipe.

[0010] Optionally, a heat sink is fixedly connected to the top of the cooling pipe, and a plurality of support columns are fixedly connected to the bottom of the heat sink, the plurality of support columns being distributed in a rectangular array, and a heat sink fin is fixedly connected to the lower end of the heat sink, the heat sink fin being made of aluminum.

[0011] Optionally, a cooling fan is fixedly connected to the upper surface of the heat sink, and a motor is fixedly installed inside the cooling fan. One end of the output shaft of the motor is fixedly connected to a fan blade.

[0012] Optionally, a protective box is movably connected to the upper surface of the top plate. Multiple heat dissipation holes are provided at the upper end of the protective box. A signal output cable is passed through and fixedly connected to the top of the top plate. A display is fixedly connected to the top of the signal output cable, and a support frame is fixedly connected to the bottom of the display.

[0013] An analysis method using an online simulator for real-time kinetic energy analysis in smart power plants includes the following steps:

[0014] A: Wiring: The device can be connected to the location that needs to be analyzed via a connecting cable, thereby inputting the collected data into the analyzer;

[0015] B: Maintenance: By simultaneously moving the movable block upwards and the toggle block downwards, the limiting position between any side plate and the top and bottom plates can be disconnected, thereby opening the side plate to facilitate maintenance of the device;

[0016] C: Heat dissipation: The pump pressurizes the coolant in the cooling pipes inside the cooling plate, causing it to flow. The heat sink and cooling fan are matched to dissipate heat from the cooling plate, thereby cooling the coolant and thus dissipating heat from the analyzer.

[0017] D: Analysis: The analyzer can perform real-time analysis and simulation of information received via the connection line, and simultaneously display the simulation information on the monitor via the signal output line.

[0018] Optionally, the number of active blocks in step B is multiple, and the multiple active blocks are distributed in a rectangular array, and the active blocks are L-shaped.

[0019] Optionally, the cooling pipe inside the cooling plate in step C is made of copper and is S-shaped.

[0020] Optionally, the display in step D can be angled according to usage.

[0021] This invention provides an online simulator and analysis method for real-time kinetic energy analysis of smart power plants, which has the following beneficial effects:

[0022] 1. This invention enables the connection of the top plate, bottom plate, and side plate via a connecting bolt. By pushing the movable block upwards, it can overcome the elastic force of the second spring and move inside the second movable cavity, thereby disengaging the limiting plate from the first slot. By pushing the lever downwards, it can move the movable rod inside the first movable cavity, overcoming the first spring, thereby disengaging the connecting block from the second slot. This allows the side plate to rotate around the connecting bolt, enabling the opening and closing of the side plate and facilitating internal maintenance of the device.

[0023] 2. This invention supports the heat sink plate with support columns and the motor with cooling fans, so that the motor drives the fan blades to rotate. At the same time, the heat sink can dissipate heat from the heat sink plate, thereby cooling the coolant inside the cooling pipe. Then, the pump makes the coolant flow in the cooling pipe, which can cool the analyzer through the cooling plate, thus ensuring that the analyzer can operate for a long time.

[0024] 3. The present invention can provide stable support for the device through multiple support feet at the bottom of the base plate, so that it is less likely to shake during use and is more stable.

[0025] 4. The present invention allows for adjustment of the display angle via a support frame, making it more convenient to view during use. Attached Figure Description

[0026] Figure 1 This is a three-dimensional schematic diagram of the structure of the present invention;

[0027] Figure 2 This is a first three-dimensional sectional view of the structure of the present invention;

[0028] Figure 3 This is a second three-dimensional cross-sectional view of the structure of the present invention;

[0029] Figure 4 The structure of this invention Figure 2 Enlarged schematic diagram of the structure in area A;

[0030] Figure 5 The structure of this invention Figure 3 Enlarged schematic diagram of the structure in region B;

[0031] Figure 6 The structure of this invention Figure 3 Enlarged schematic diagram of the structure in region C;

[0032] Figure 7 This is a schematic diagram of the analysis method for the structure of the present invention.

[0033] In the diagram: 1. Top plate; 2. Bottom plate; 3. Side plate; 4. First slot; 5. Threaded groove; 6. Second slot; 7. Connecting bolt; 8. First movable cavity; 9. First spring; 10. Movable rod; 11. Connecting block; 12. Second movable cavity; 13. Second spring; 14. Movable block; 15. Limiting plate; 16. Pulley; 17. Support leg; 18. Analyzer; 19. Connecting line; 20. Cooling plate; 21. Cooling pipe; 22. Pump; 23. Display; 24. Heat sink; 25. Support column; 26. Heat sink; 27. Cooling fan; 28. Motor; 29. ​​Fan blade; 30. Protective box; 31. Heat dissipation hole; 32. Signal output line; 33. Support frame. Detailed Implementation

[0034] 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.

[0035] According to such Figure 1-7 As shown, the present invention provides a technical solution:

[0036] An online simulator for real-time energy analysis of a smart power plant includes a top plate 1 and a bottom plate 2, with a side plate 3 movably connected between them. The upper surface of the bottom plate 2 has multiple first slots 4 arranged in a rectangular array. The bottom end of the side plate 3 has threaded grooves 5 and second slots 6. Multiple connecting bolts 7, arranged in a rectangular array, are movably connected through the interiors of both the top plate 1 and the bottom plate 2. One end of each connecting bolt 7 is fitted into a threaded groove 5. A first movable cavity 8 is formed inside one side of the side plate 3. A first spring 9 is fixedly connected to the top of the first spring 9. A movable rod 10 is fixedly connected to the top of the first spring 9. A connecting block 11 and a lever 16 are fixedly connected to one side of the movable rod 10. The connecting block 11 is adapted to the second slot 6. A second movable cavity 12 is opened in the middle of the interior of the side plate 3. A second spring 13 is fixedly connected to the top of the interior of the second movable cavity 12. A movable block 14 is fixedly connected to the bottom of the second spring 13. A limiting plate 15 is fixedly connected to the bottom of the movable block 14. The bottom of the limiting plate 15 is adapted to the first slot 4. A plurality of legs 17 arranged in a rectangular array are fixedly connected to the bottom of the base plate 2.

[0037] As an optional technical solution of the present invention: an analyzer 18 is fixedly connected to the upper surface of the base plate 2, a connecting line 19 is fixedly connected to the bottom end of the analyzer 18, and the other end of the connecting line 19 passes through and is fixedly connected to the base plate 2.

[0038] As an optional technical solution of the present invention: a cooling plate 20 is fixedly connected to one side of the analyzer 18, a cooling pipe 21 is fixedly connected inside the cooling plate 20, and a pump 22 is fixedly connected through the top end of the cooling pipe 21.

[0039] As an optional technical solution of the present invention: a heat sink 24 is fixedly connected to the top end of the cooling pipe 21, a plurality of support columns 25 are fixedly connected to the bottom end of the heat sink 24, the plurality of support columns 25 are distributed in a rectangular array, and a heat sink 26 is fixedly connected to the lower end of the heat sink 24, the heat sink 26 being made of aluminum.

[0040] As an optional technical solution of the present invention: a cooling fan 27 is fixedly connected to the upper surface of the heat sink 24, a motor 28 is fixedly installed inside the cooling fan 27, and a fan blade 29 is fixedly connected to one end of the output shaft of the motor 28.

[0041] As an optional technical solution of the present invention: a protective box 30 is movably connected to the upper surface of the top plate 1, a plurality of heat dissipation holes 31 are opened at the upper end of the protective box 30, a signal output line 32 is connected through and fixedly connected to the top of the top plate 1, a display 23 is fixedly connected to the top of the signal output line 32, and a support frame 33 is fixedly connected to the bottom of the display 23.

[0042] An analysis method using an online simulator for real-time kinetic energy analysis in smart power plants includes the following steps:

[0043] A: Wiring: The device can be connected to the location that needs to be analyzed via the connecting cable 19, thereby inputting the collected data into the analyzer 18;

[0044] B: Maintenance: By simultaneously moving the movable block 14 upward and the toggle block 16 downward, the limiting position between any side plate 3 and the top plate 1 and the bottom plate 2 can be disconnected, thereby opening the side plate 3 to facilitate maintenance of the device.

[0045] C: Heat dissipation: The pump 22 can pressurize the coolant in the cooling pipe 21 inside the cooling plate 20 and make it flow. The heat sink 26 and the cooling fan 27 are matched to dissipate heat from the heat sink 24, thereby cooling the coolant and thus dissipating heat from the analyzer 18.

[0046] D: Analysis: The analyzer 18 can perform real-time analysis and simulation of the information connected via the connection line 19, and the simulation information can be displayed on the display 23 via the signal output line 32.

[0047] As an optional technical solution of the present invention: the number of active blocks 14 in step B is multiple, the multiple active blocks 14 are distributed in a rectangular array, and the active blocks 14 are L-shaped.

[0048] As an optional technical solution of the present invention: the internal cooling pipe 21 of the cooling plate 20 in step C is made of copper and the cooling pipe 21 is arranged in an S-shape.

[0049] As an optional technical solution of the present invention: the display 23 in step D can be adjusted in angle according to the usage situation.

[0050] In summary: the connecting bolt 7 connects the top plate 1, bottom plate 2, and side plate 3. Pushing the movable block 14 upwards overcomes the spring force of the second spring 13, causing it to move inside the second movable cavity 12. This disengages the limiting plate 15 from the first slot 4. Pushing the lever 16 downwards moves the movable rod 10 inside the first movable cavity 8, overcoming the first spring 9. This disengages the connecting block 11 from the second slot 6, allowing the side plate 3 to rotate around the connecting bolt 7, thus opening and closing the side plate 3 for easy internal maintenance. The support column 25 allows for the support of the heat sink 24. The support system includes a cooling fan 27 that supports the motor 28, allowing the motor 28 to drive the fan blades 29 to rotate. Simultaneously, the heat sink 26 dissipates heat from the heat sink 24, thus cooling the coolant inside the cooling pipe 21. The pump 22 then circulates the coolant within the cooling pipe 21, allowing the analyzer 18 to cool through the cooling plate 20, ensuring the analyzer 18 can operate for extended periods. Multiple feet 17 at the bottom of the base plate 2 provide stable support, preventing wobbling during use and ensuring greater stability. The support frame 33 allows for adjustment of the display 23's angle, making it easier to view during use.

[0051] Finally, it should be noted that the above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. An online simulator for real-time kinetic energy analysis in a smart power plant, comprising a top plate (1) and a bottom plate (2), characterized in that: A side plate (3) is movably connected between the top plate (1) and the bottom plate (2). The upper surface of the bottom plate (2) has multiple first slots (4), arranged in a rectangular array. The bottom end of the side plate (3) has a threaded groove (5) and a second slot (6). Multiple connecting bolts (7) are movably connected through the interior of both the top plate (1) and the bottom plate (2), arranged in a rectangular array. One end of each connecting bolt (7) is fitted into the threaded groove (5). A first movable cavity (8) is formed inside one side of the side plate (3), and a first spring (9) is fixedly connected inside the first movable cavity (8). The top of the first spring (9) is fixedly connected to a movable rod (10), and a connecting block (11) and a lever (16) are fixedly connected to one side of the movable rod (10). The connecting block (11) is adapted to the second slot (6). The middle of the side plate (3) is provided with a second movable cavity (12). The top of the second movable cavity (12) is fixedly connected to a second spring (13). The bottom of the second spring (13) is fixedly connected to a movable block (14). The bottom of the movable block (14) is fixedly connected to a limiting plate (15). The bottom of the limiting plate (15) is adapted to the first slot (4). The bottom of the base plate (2) is fixedly connected to a plurality of legs (17) arranged in a rectangular array. An analyzer (18) is fixedly connected to the upper surface of the base plate (2), and a connecting line (19) is fixedly connected to the bottom end of the analyzer (18). The other end of the connecting line (19) passes through and is fixedly connected to the base plate (2). A cooling plate (20) is fixedly connected to one side of the analyzer (18), and a cooling pipe (21) is fixedly connected inside the cooling plate (20). A pump (22) is fixedly connected through the top of the cooling pipe (21). The top end of the cooling pipe (21) is fixedly connected to a heat sink plate (24), and the bottom end of the heat sink plate (24) is fixedly connected to a plurality of support columns (25). The plurality of support columns (25) are arranged in a rectangular array. The bottom end of the heat sink plate (24) is fixedly connected to a heat sink fin (26), which is made of aluminum. A cooling fan (27) is fixedly connected to the upper surface of the heat sink (24), and a motor (28) is fixedly installed inside the cooling fan (27). One end of the output shaft of the motor (28) is fixedly connected to a fan blade (29).

2. The online simulator for real-time kinetic energy analysis of a smart power plant according to claim 1, characterized in that: A protective box (30) is movably connected to the upper surface of the top plate (1). The upper end of the protective box (30) is provided with multiple heat dissipation holes (31). A signal output line (32) is connected through and fixedly connected to the top of the top plate (1). A display (23) is fixedly connected to the top of the signal output line (32). A support frame (33) is fixedly connected to the bottom of the display (23).

3. An analysis method using an online simulator for real-time kinetic energy analysis of a smart power plant as described in any one of claims 1-2, characterized in that, Includes the following steps: A: Wiring: The device can be connected to the place to be analyzed via the connecting cable (19), so that the data collected thereon can be input into the analyzer (18); B: Inspection: By simultaneously moving the movable block (14) upward and the movable block (16) downward, the limit between any side plate (3) and the top plate (1) and the bottom plate (2) can be disconnected, thereby opening the side plate (3) to facilitate the inspection of the device; C: Heat dissipation: The pump (22) can pressurize the coolant in the cooling pipe (21) inside the cooling plate (20) and make it flow. The heat sink (26) and the cooling fan (27) are matched to dissipate heat from the heat sink (24), thereby cooling the coolant and thus dissipating heat from the analyzer (18). D: Analysis: The analysis machine (18) can perform real-time analysis and simulation of the information connected via the connection line (19), and at the same time, the simulation information is displayed on the display (23) via the signal output line (32).

4. The analysis method of an online simulator for real-time kinetic energy analysis of a smart power plant according to claim 3, characterized in that: The number of active blocks (14) in step B is multiple, and the multiple active blocks (14) are distributed in a rectangular array. The active blocks (14) are L-shaped.

5. The analysis method of an online simulator for real-time kinetic energy analysis of a smart power plant according to claim 3, characterized in that: The cooling pipe (21) inside the cooling plate (20) in step C is made of copper and is S-shaped.

6. The analysis method of an online simulator for real-time kinetic energy analysis of a smart power plant according to claim 3, characterized in that: The display (23) in step D can be angled according to usage.

Citation Information

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