An energy management and control system for smart parks
By setting up rainwater treatment units and protection networks in the energy control system of the smart park, the problems of rainwater resources recycling, treatment and reuse are solved, efficient purification and storage of rainwater are achieved, and the purification burden and cost are reduced.
Patent Information
- Application Number
- CN202111633525.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-12-29
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2041-12-29
AI Technical Summary
The existing park energy intelligent monitoring system has failed to effectively solve the problem of recycling, processing and reuse of rainwater resources. In traditional methods, rainwater collection devices are prone to accumulation of dust, resulting in increased purification burden.
A smart park energy control system is designed, including a power monitoring module, a room monitoring module, a room monitoring module and a data server. A rainwater treatment unit is set up in the room monitoring module, and a rotatable sealing seat and inclined drainage holes are used to receive rainwater and purify and store it. The protective net is set to prevent debris from being blocked and the burden on the purifier is reduced.
It improves the utilization rate of rainwater, reduces the waste of water resources, reduces the work burden and use cost of purification and treatment, has a simple structure and is easy to use.
Smart Images

Figure CN114355811B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the field of energy control, and specifically relates to an energy management and control system for a smart park. Background Art
[0002] With the rapid development of the national economy, various energy sources are also being consumed rapidly. In order to achieve the coordinated development of energy, economy and environment, smart park energy management and control has become a development trend of ecological parks.
[0003] A Chinese patent with publication number CN 112467879A discloses a smart park energy monitoring system, method, and equipment. These systems collect and analyze energy data from a park's photovoltaic power stations, wind power stations, energy storage systems, charging piles, power room electricity usage, and sewage treatment systems. The system then displays the results of the data analysis on a display screen. This system is no longer limited to analyzing data from photovoltaic and wind power systems, resolving the technical issue that existing park energy management and control methods are unable to provide comprehensive and intelligent monitoring and analysis of park energy.
[0004] There are still some problems with the above-mentioned park energy intelligent monitoring system, method and equipment. In the park's energy management, water resources are also an important part. The management of water resources includes the recovery, treatment and reuse of rainwater resources. How to better recycle rainwater resources and reduce the burden of rainwater treatment is also a difficulty. The traditional rainwater utilization method is to receive rainwater through devices such as buckets and purify the rainwater through water purifiers. Buckets are placed outdoors for a long time, and dust is easily accumulated in the buckets, resulting in an increase in the subsequent rainwater purification burden. The above-mentioned park energy intelligent monitoring system, method and equipment have not effectively solved this problem.
[0005] To this end, the present invention provides an energy management and control system for a smart park. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve its technical problem is: the energy management and control system for a smart park described in the present invention includes a power monitoring module, an electrical room monitoring module, a water room monitoring module and a data server;
[0008] The power monitoring module is used to monitor the power supply and safety operation indicators in the park and send the monitoring data to the data server;
[0009] The power room monitoring module is used to monitor the operating parameters of the power room, including real-time voltage, current, power, frequency, load, current imbalance and total power consumption, and send the monitoring data to the data server;
[0010] The water room monitoring module is used to monitor the water storage volume, daily water consumption and total water consumption in the park, and send the monitoring data to the data server. The water room monitoring module is provided with a rainwater treatment unit to collect and purify rainwater, and store and use the treated rainwater. The rainwater treatment unit is provided with a mechanism for preliminary cleaning of the receiving device for receiving rainwater. By providing the rainwater treatment unit, rainwater in the park is collected, purified and reused, thereby improving the utilization rate of rainwater, reducing the waste of water resources, and saving energy and protecting the environment.
[0011] The data server is used to collect and analyze the received park energy data and display the analysis results on a display screen.
[0012] Preferably, the rainwater treatment unit includes a treatment box, a water collecting trough is provided at the top of the treatment box, a treatment chamber is provided inside the treatment box, the water collecting trough is connected to the treatment chamber, a water purifier is installed in the treatment chamber, a sealing seat is rotatably installed on the top of the treatment box and covers the outside of the water collecting trough, a drainage hole is provided inside the top of the sealing seat, the drainage hole is inclined to pass through from left to right, an open groove for receiving rainwater is provided on the top of the drainage hole, a support plate is fixedly installed on the top of the treatment box, an upper sealing plate is installed on the support plate to block the drainage hole, and an inner sealing plate inserted into the drainage hole is fixedly installed on the bottom of the upper sealing plate. During operation, the treatment box is installed outdoors to facilitate the collection of rainwater. The sealing seat is rotatably installed on the top of the treatment box through the installation shaft, and the water collection tank is blocked by the sealing seat and the upper sealing plate. In the initial state, the inside of the drain hole is separated by the partition, and the top of the drain hole is blocked by the upper sealing plate and the partition. Therefore, the water collection tank is completely isolated from the outside world, further improving the sealing of the water collection tank; only the opening groove on the drain hole of this device is exposed to the outside. After long-term use, dust and other debris will accumulate inside the drain hole; when it rains, rainwater falls into the drain hole through the opening groove. When the rainfall is small, the rainwater can be discharged directly from the bottom of the drain hole to the outside, flushing and cleaning the drain hole, improving the problem that dust and debris in the drain hole also enter the treatment room together with the rainwater, resulting in an increased workload of the water purifier; when the rainfall is large, the drainage capacity of the bottom end of the drain hole is limited by designing the two port sizes of the drain hole. Therefore, water will gather in the drainage hole. By designing the center of gravity of the sealing seat and the position of the mounting axis, when the water flow in the drainage hole increases, the center of gravity of the sealing seat changes, and then the sealing seat deflects, and the end of the drainage hole close to the support plate deflects to the bottom. At this time, rainwater can flow into the sump and the treatment chamber along the drainage hole; this device not only realizes the function of receiving rainwater and sending it into the treatment chamber for purification and storage, but also, when it is not raining, the sump is closed, which improves the problem that external dust and other impurities directly fall into the sump and the treatment chamber, affecting the quality of the stored water. In addition, when receiving rainwater, the initial rainfall is used to clean the drainage hole, and then the drainage hole is tilted to transport the rainwater to the sump, further reducing the workload of the treatment chamber, and no additional power mechanism is required to control the cleaning and angle adjustment of the drainage hole, thereby reducing the cost of use, and the structure is simple and easy to use.
[0013] Preferably, a protective plate is installed on the sealing seat at the end of the drain hole away from the support plate. The front and back sides of the sealing seat are both provided with curved side panels, and the front and back sides of the support plate are both provided with curved baffles corresponding to the curved baffles. During operation, the provision of the curved side panels and curved baffles ensures that the sealing seat and the support plate remain in a sealed state. The provision of the protective plate also reduces the risk of external dust easily entering the drain hole from the bottom end.
[0014] Preferably, a rotating disc is rotatably mounted within the sealing seat, the rotating disc being located on the inner top wall of the drain hole. A driven plate is fixedly mounted on the bottom end of the rotating disc, a partition is fixedly mounted on the upper end of the rotating disc, and a block for blocking the partition is provided on the inner bottom wall of the drain hole. During operation, rainwater flowing within the drain hole pushes the driven plate to deflect. After the driven plate deflects, the partition moves downward, blocking the bottom end of the drain hole, allowing rainwater to accumulate more easily within the drain hole. When the accumulated rainwater in the drain hole increases, the sealing seat and the drain hole deflect, allowing the rainwater to flow into the sump for collection.
[0015] Preferably, an inclined elastic telescopic member is installed between the turntable and the inner top wall of the drain hole, and the elastic telescopic member includes a telescopic rod, the ends of the telescopic rod being movably hinged to the turntable and the sealing seat respectively, and a support compression spring is provided on the telescopic rod. During operation, in the initial state, the telescopic rod maintains a stable tilt under the push of the support compression spring, and keeps the turntable and the driven plate stable. When more rainwater enters the drain hole, the impact force of the rainwater on the driven plate increases, and the turntable begins to rotate. After the turntable rotates, the tilt direction of the elastic telescopic member changes. During this process, the support compression spring is first compressed and shortened, and then releases energy and lengthens. The support compression spring causes the turntable to rotate more and faster, thereby causing the partition to deflect faster, blocking the bottom end of the drain hole.
[0016] Preferably, the outer side of the turntable is provided with teeth, and a clamping plate for clamping the turntable is movably inserted into the sealing seat. The clamping plate is provided with teeth corresponding to the teeth, and a push rod for pushing the clamping plate is slidably mounted inside the sealing seat. The push rod is provided with two wedge-shaped plates, and the clamping plate has through slots corresponding to the wedge plates. During operation, the push rod is moved, and the push rod drives the clamping plate up and down via the wedge plates, thereby fixing and loosening the turntable. After the turntable deflects, the clamping plate moves downward, clamping the turntable via the teeth and teeth, thereby improving the stability of the turntable after deflection.
[0017] Preferably, a connecting rod is fixedly mounted on the top of the elastic telescopic member, which is movably connected to the push rod. During operation, in the initial state, the clamping plate and the turntable are staggered up and down. After the water flow in the drainage hole pushes the driven plate and the turntable to deflect, the elastic telescopic member deflects accordingly and drives the push rod to move through the connecting rod. After the push rod moves, the clamping plate is squeezed downward by the wedge block to clamp the turntable, thereby improving the stability of the turntable and the partition. After the sealing seat and the drainage hole are tilted, since the upper end of the drainage hole is blocked by the partition, rainwater will accumulate inside the drainage hole and below the partition, and flow into the water collection tank through the end of the drainage hole close to the support plate, which can further improve the stability of the state of the drainage hole after tilting. At the same time, the protective plate prevents rainwater from falling directly from the top of the drainage hole and reduces the pressure of rainwater on the upper part of the partition. The structure is simple and the use is more reliable.
[0018] Preferably, a protective net is rotatably mounted on the inner sealing plate, and the protective net covers the opening groove of the drainage hole. When working, the protective net is provided to improve the problem that large debris such as fallen leaves directly fall into the drainage hole and block the drainage hole.
[0019] Preferably, the protective net is movably connected to an arc plate, and a guide rail corresponding to the arc plate is fixedly mounted on the top of the upper sealing plate. A first magnet is fixedly mounted on the top of the arc plate, and a second magnet is fixedly mounted inside the guide rail. The magnetism of the first and second opposing surfaces is opposite. During operation, after the sealing seat deflects, the top of the sealing seat squeezes the protective net, causing it to deflect, bringing the first magnet closer to the second magnet. The opposite attraction between the two magnets acts to pull the protective net, reducing the squeezing force of the protective net on the sealing seat and improving the problem of the protective net's gravity acting entirely on the sealing seat, which affects the positional stability of the sealing seat after deflection.
[0020] The beneficial effects of the present invention are as follows:
[0021] 1. The energy management and control system for a smart park described in the present invention has the function of receiving rainwater and sending it into a processing room for purification and storage by providing a rotatable sealing seat and an inclined drainage hole. When it is not raining, the water collection tank is closed, which improves the problem that external dust and other impurities directly fall into the water collection tank and affect the quality of stored water. The drainage holes are cleaned by the initial rainfall, and then the drainage holes are tilted to transport rainwater into the water collection tank, which further reduces the workload of the processing room. There is no need to set up an additional power mechanism to control the drainage holes, which reduces the cost of use, has a simple structure, and is easy to use.
[0022] 2. The energy management and control system for a smart park described in the present invention improves the problem of large debris such as fallen leaves falling directly into the drainage hole and clogging the drainage hole by setting a protective net. After the sealing seat squeezes the protective net and deflects it, the suction force between the first magnetic block and the second magnetic block pulls the arc plate to move, so that the paddle plate paddles the impact rod, and the impact rod vibrates off the fallen leaves and other debris attached to the surface of the protective net, thereby improving the use effect of the protective net. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The present invention will be further described below with reference to the accompanying drawings.
[0024] Figure 1 It is a system framework diagram of the present invention;
[0025] Figure 2 It is a three-dimensional diagram of the processing box of the present invention;
[0026] Figure 3 This is an expanded view of the connection structure of the processing box of the present invention;
[0027] Figure 4 It is a front sectional view of the processing box of the present invention;
[0028] Figure 5 This invention Figure 4 A partial enlarged view of part A;
[0029] Figure 6 This invention Figure 5 A partial enlarged view of part B;
[0030] Figure 7 This invention Figure 4 A partial enlarged view of part C in the middle;
[0031] In the figure: 1. Processing box; 101. Water collecting tank; 102. Processing chamber; 2. Sealing seat; 201. Protective plate; 3. Drain hole; 4. Support plate; 5. Upper sealing plate; 6. Inner sealing plate; 7. Turntable; 8. Follower plate; 9. Partition; 10. Block; 11. Elastic telescopic member; 12. Card; 13. Push rod; 14. Connecting rod; 15. Protective net; 16. Arc plate; 17. Guide rail; 18. Magnetic block 1; 19. Magnetic block 2; 20. Impact rod; 21. Limiting plate; 22. Dial plate. DETAILED DESCRIPTION
[0032] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0033] The energy management and control system for a smart park described in the present invention includes a power monitoring module, an electrical room monitoring module, a water room monitoring module, and a data server;
[0034] The power monitoring module is used to monitor the power supply and safety operation indicators in the park and send the monitoring data to the data server;
[0035] The power room monitoring module is used to monitor the operating parameters of the power room, including real-time voltage, current, power, frequency, load, current imbalance and total power consumption, and send the monitoring data to the data server;
[0036] The water room monitoring module is used to monitor the water storage volume, daily water consumption and total water consumption in the park, and send the monitoring data to the data server. The water room monitoring module is provided with a rainwater treatment unit to collect and purify rainwater, and store and use the treated rainwater. The rainwater treatment unit is provided with a mechanism for preliminary cleaning of the receiving device for receiving rainwater. By providing the rainwater treatment unit, rainwater in the park is collected, purified and reused, thereby improving the utilization rate of rainwater, reducing the waste of water resources, and saving energy and protecting the environment.
[0037] The data server is used to collect and analyze the received park energy data and display the analysis results on a display screen.
[0038] Example 1
[0039] like Figures 2 to 4As shown, the rainwater treatment unit includes a treatment box 1, a water collecting trough 101 is provided at the top of the treatment box 1, a treatment chamber 102 is provided inside the treatment box 1, the water collecting trough 101 is connected to the treatment chamber 102, a water purifier is installed in the treatment chamber 102, a sealing seat 2 is rotatably installed on the top of the treatment box 1 and covers the outside of the water collecting trough 101, a drainage hole 3 is provided inside the top of the sealing seat 2, the drainage hole 3 is inclined to pass through from left to right, and an open groove for receiving rainwater is provided on the top of the drainage hole 3, a support plate 4 is fixedly installed on the top of the treatment box 1, an upper sealing plate 5 is installed on the support plate 4 to block the top of the drainage hole 3, and an inner sealing plate 6 inserted into the drainage hole 3 is fixedly installed on the bottom of the upper sealing plate 5. During operation, the treatment box 1 is installed outdoors to facilitate the collection of rainwater. The sealing seat 2 is rotatably installed on the top of the treatment box 1 through the installation shaft. The water collection tank 101 is blocked by the sealing seat 2 and the upper sealing plate 5. In the initial state, the inside of the drainage hole 3 is separated by the partition 9, and the top of the drainage hole 3 is blocked by the upper sealing plate 5 and the partition 9. Therefore, the water collection tank 101 is completely isolated from the outside, further improving the sealing performance of the water collection tank 101; in this device, only the opening groove on the drainage hole 3 is exposed to the outside, and it is not easy to be used for a long time. After that, dust and other debris will also accumulate inside the drainage hole 3; when it rains, rainwater falls into the drainage hole 3 through the open groove. When the rainfall is light, the rainwater can be directly discharged outward from the bottom end of the drainage hole 3 to flush and clean the drainage hole 3, thereby improving the problem that the dust and debris in the drainage hole 3 also enter the processing chamber 102 together with the rainwater, resulting in an increased workload of the water purifier; when the rainfall is heavy, the two port sizes of the drainage hole 3 are designed to make the drainage capacity of the bottom end of the drainage hole 3 limited, so , water will gather in the drainage hole 3. By designing the center of gravity of the sealing seat 2 and the position of the mounting axis, when the water flow in the drainage hole 3 increases, the center of gravity of the sealing seat 2 changes, and then the sealing seat 2 is deflected, and the end of the drainage hole 3 close to the support plate 4 is deflected to the bottom. At this time, rainwater can flow into the sump 101 and the treatment chamber 102 along the drainage hole 3; the device not only realizes the function of receiving rainwater and sending it into the treatment chamber 102 for purification and storage, but also, when it is not raining, the sump 101 is closed, which improves the problem that external dust and other impurities directly fall into the sump 101 and the treatment chamber 102, affecting the quality of the stored water. In addition, when receiving rainwater, the drainage hole 3 is cleaned by the initial rainfall, and then the drainage hole 3 is tilted to transport the rainwater to the sump 101, further reducing the workload of the treatment chamber 102, and no additional power mechanism is required to control the cleaning and angle adjustment of the drainage hole 3, thereby reducing the use cost, and the structure is simple and easy to use.
[0040] like Figures 2 to 4As shown, a protective plate 201 is installed on the sealing seat 2 at the end of the drain hole 3 away from the support plate 4. Curved side panels are provided on the front and back of the sealing seat 2, and curved baffles corresponding to the curved baffles are provided on the front and back of the support plate 4. During operation, the curved side panels and curved baffles ensure that the sealing seat 2 and the support plate 4 remain in a sealed state. The protective plate 201 also reduces the risk of external dust from easily entering the drain hole 3 from the bottom end.
[0041] like Figures 4 to 6 As shown, a rotary disk 7 is rotatably mounted inside the sealing seat 2. The rotary disk 7 is located on the inner top wall of the drain hole 3. A driven plate 8 is fixedly mounted on the bottom end of the rotary disk 7. A partition 9 is fixedly mounted on the upper end of the rotary disk 7. A block 10 is provided on the inner bottom wall of the drain hole 3 to block the partition 9. During operation, when rainwater flows inside the drain hole 3, it pushes the driven plate 8 to deflect. After the driven plate 8 deflects, the partition 9 moves downward, blocking the bottom end of the drain hole 3, allowing rainwater to accumulate more easily in the drain hole 3. When the rainwater accumulated in the drain hole 3 increases, the sealing seat 2 and the drain hole 3 deflect, and the rainwater can flow into the sump 101 for collection.
[0042] like Figure 6 As shown, an inclined elastic telescopic member 11 is installed between the turntable 7 and the inner top wall of the drain hole 3. The elastic telescopic member 11 includes a telescopic rod, the two ends of which are respectively hinged to the turntable 7 and the sealing seat 2, and a supporting compression spring is provided on the telescopic rod. During operation, in the initial state, the telescopic rod maintains a stable tilt under the push of the supporting compression spring, and keeps the turntable 7 and the driven plate 8 stable. When more rainwater enters the drain hole 3, the impact force of the rainwater on the driven plate 8 increases, and the turntable 7 begins to rotate. After the turntable 7 rotates, the tilt direction of the elastic telescopic member 11 changes. In this process, the supporting compression spring is first compressed and shortened, and then releases energy and lengthens. The supporting compression spring will increase the rotation amplitude and speed of the turntable 7, thereby causing the partition 9 to deflect faster, blocking the bottom end of the drain hole 3.
[0043] like Figure 6 As shown, the outer side of the turntable 7 is provided with teeth, and a clamping plate 12 is movably inserted into the interior of the sealing seat 2 to clamp the turntable 7. The clamping plate 12 is provided with teeth corresponding to the teeth. A push rod 13 is slidably mounted inside the sealing seat 2 to push the clamping plate 12. The push rod 13 is provided with two wedge-shaped plates, and the interior of the clamping plate 12 has through grooves corresponding to the wedge plates. During operation, the push rod 13 is moved, and the push rod 13 drives the clamping plate 12 up and down via the wedge plates, thereby fixing and loosening the turntable 7. After the turntable 7 deflects, the clamping plate 12 moves downward, locking the turntable 7 via the teeth and teeth, thereby improving the stability of the turntable 7 after deflection.
[0044] like Figure 6 As shown, a connecting rod 14 is fixedly mounted on the top of the elastic member 11, and the connecting rod 14 is movably connected to the push rod 13. During operation, in the initial state, the clamping plate 12 and the turntable 7 are staggered up and down. After the water flow in the drain hole 3 pushes the driven plate 8 and the turntable 7 to deflect, the elastic member 11 deflects accordingly and drives the push rod 13 to move through the connecting rod 14. After the push rod 13 moves, it squeezes the clamping plate 12 downward through the wedge block, clamping the turntable 7, thereby improving the stability of the turntable 7 and the partition 9. After the sealing seat 2 and the drain hole 3 tilt, since the upper end of the drain hole 3 is blocked by the partition 9, rainwater will accumulate inside the drain hole 3 and below the partition 9, and flow into the sump 101 through the end of the drain hole 3 close to the support plate 4, which can further improve the stability of the state of the drain hole 3 after tilting. At the same time, the protective plate 201 prevents rainwater from falling directly from the top of the drain hole 3 and reduces the pressure of rainwater on the upper part of the partition 9. The structure is simple and more reliable.
[0045] like Figures 4 to 7 As shown, a protective net 15 is rotatably mounted on the inner sealing plate 6, and the protective net 15 covers the opening groove of the drainage hole 3. During operation, the provision of the protective net 15 improves the problem that large debris such as fallen leaves directly fall into the drainage hole 3 and block the drainage hole 3.
[0046] like Figure 7 As shown, the protective net 15 is movably connected to an arc plate 16. A guide rail 17 corresponding to the arc plate 16 is fixedly installed on the top of the upper sealing plate 5. A magnet 18 is fixedly installed on the top of the arc plate 16, and a magnet 2 19 is fixedly installed inside the guide rail 17. The magnetism of the opposite side of the magnet 18 and the magnet 2 19 is opposite. During operation, after the sealing seat 2 deflects, the top of the sealing seat 2 squeezes the protective net 15, causing it to deflect, bringing the magnet 18 closer to the magnet 2 19. The opposite attraction between the two magnets acts to pull the protective net 15, reducing the squeezing force of the protective net 15 on the sealing seat 2. This improves the problem that the gravity of the protective net 15 acts on the sealing seat 2, affecting the positional stability of the sealing seat 2 after deflection.
[0047] Example 2
[0048] like Figure 7As shown, compared with Example 1, another embodiment of the present invention is: a striker 20 is movably installed at the bottom of the protective net 15, a tension spring is installed between the striker 20 and the protective net 15, a limiting plate 21 is installed on the outer side of the arc plate 16, and a movable groove corresponding to the limiting plate 21 is opened inside the protective net 15, and the width of the movable groove is greater than the width of the limiting plate 21, and a shift plate 22 for shifting the striker 20 is provided at the bottom of the arc plate 16. During operation, the arc plate 16 can move inside the protective net 15 by setting the limit plate 21; the sealing seat 2 squeezes the protective net 15 to cause it to deflect, and after the magnetic block 18 approaches the magnetic block 2 19, the opposite attraction between the two magnetic blocks can pull the arc plate 16 to move inside the protective net 15. After the arc plate 16 moves, the striker 20 is moved by the shift plate 22, and the tension spring is stretched to store energy. After the shift plate 22 and the striker 20 are offset, the striker 20 hits the protective net 15 under the pull of the tension spring, which can vibrate off debris such as fallen leaves attached to the surface of the protective net 15, thereby improving the use effect of the protective net 15.
[0049] Working principle:
[0050] The treatment box 1 is installed outdoors to facilitate the collection of rainwater. The sealing seat 2 is rotatably installed on the top of the treatment box 1 through the installation shaft. The water collection tank 101 is blocked by the sealing seat 2 and the upper sealing plate 5. In the initial state, the inside of the drainage hole 3 is separated by the partition 9, and the top of the drainage hole 3 is blocked by the upper sealing plate 5 and the partition 9. Therefore, the water collection tank 101 is completely isolated from the outside, further improving the sealing performance of the water collection tank 101; in this device, only the opening groove on the drainage hole 3 is exposed to the outside. After long-term use, the drainage tank 101 is completely isolated from the outside. Dust and other debris will also accumulate inside the water hole 3; when it rains, rainwater falls into the drainage hole 3 through the open groove. When the rainfall is light, the rainwater can be directly discharged outward from the bottom end of the drainage hole 3 to flush and clean the drainage hole 3, thereby improving the problem that the dust and debris in the drainage hole 3 also enter the processing chamber 102 together with the rainwater, resulting in an increased workload of the water purifier; when the rainfall is heavy, the two port sizes of the drainage hole 3 are designed to make the drainage capacity of the bottom end of the drainage hole 3 limited. Water will gather in the water hole 3. By designing the center of gravity of the sealing seat 2 and the position of the mounting axis, when the water flow in the drainage hole 3 increases, the center of gravity of the sealing seat 2 changes, and then the sealing seat 2 is deflected, and the end of the drainage hole 3 close to the support plate 4 is deflected to the bottom. At this time, rainwater can flow into the sump 101 and the treatment chamber 102 along the drainage hole 3; the device not only realizes the function of receiving rainwater and sending it into the treatment chamber 102 for purification and storage, but also, when it is not raining, the sump 101 is closed, improving the problem that external dust and other impurities directly fall into the sump 101 and the treatment chamber 102, affecting the quality of the stored water. In addition, when receiving rainwater, the drainage hole 3 is cleaned by the initial rainfall, and then the drainage hole 3 is tilted to transport the rainwater to the sump 101, further reducing the workload of the treatment chamber 102, and no additional power mechanism is required to control the cleaning and angle adjustment of the drainage hole 3, thereby reducing the cost of use, and the structure is simple and easy to use.
[0051] By setting up the arc-shaped side plates and the arc-shaped baffle, the sealing seat 2 can always maintain a closed state with the support plate 4. By setting up the protective plate 201, the situation in which external dust easily enters the drainage hole 3 from the bottom end is improved.
[0052] When rainwater flows inside the drainage hole 3, it will push the driven plate 8 to deflect. After the driven plate 8 deflects, the partition 9 moves downward to block the bottom end of the drainage hole 3, so that rainwater can accumulate more easily in the drainage hole 3. When the amount of rainwater accumulated in the drainage hole 3 becomes more, the sealing seat 2 and the drainage hole 3 deflect, and the rainwater can flow into the sump 101 for collection.
[0053] In the initial state, the telescopic rod maintains a stable tilt under the push of the supporting compression spring, and keeps the turntable 7 and the driven plate 8 stable. When there is more rainwater in the drainage hole 3, the impact force of the rainwater on the driven plate 8 becomes greater, and begins to push the turntable 7 to rotate. After the turntable 7 rotates, the tilt direction of the elastic telescopic part 11 is reversed. In this process, the supporting compression spring is first compressed and shortened, and then releases energy to lengthen. The supporting compression spring will increase the rotation amplitude and speed of the turntable 7, thereby causing the partition 9 to deflect faster, blocking the bottom end of the drainage hole 3.
[0054] Move the push rod 13, which drives the clamping plate 12 to move up and down through the wedge plate, thereby fixing and loosening the turntable 7. After the turntable 7 is deflected, the clamping plate 12 moves down and clamps the turntable 7 through the clamping teeth and teeth, which can improve the stability of the turntable 7 after deflection.
[0055] In the initial state, the card plate 12 and the turntable 7 are staggered up and down. After the water flow in the drainage hole 3 pushes the driven plate 8 and the turntable 7 to deflect, the elastic telescopic part 11 deflects accordingly and drives the push rod 13 to move through the connecting rod 14. After the push rod 13 moves, the card plate 12 is squeezed downward by the wedge block to jam the turntable 7, thereby improving the stability of the turntable 7 and the partition 9; after the sealing seat 2 and the drainage hole 3 are tilted, since the upper end of the drainage hole 3 is blocked by the partition 9, rainwater will accumulate inside the drainage hole 3 and below the partition 9, and flow into the sump 101 through the end of the drainage hole 3 close to the support plate 4, which can further improve the state stability of the drainage hole 3 after tilting; at the same time, the protective plate 201 prevents rainwater from falling directly from the top of the drainage hole 3 and reduces the squeezing of rainwater on the upper side of the partition 9. It has a simple structure and is more reliable to use.
[0056] The provision of the protective net 15 improves the problem that larger debris such as fallen leaves directly fall into the drainage hole 3 and clog the drainage hole 3 .
[0057] After the sealing seat 2 is deflected, the top of the sealing seat 2 squeezes the protective net 15 and deflects it, so that the magnetic block 18 is close to the magnetic block 2 19. The anisotropic attraction between the two magnetic blocks can pull the protective net 15, reducing the squeezing force of the protective net 15 on the sealing seat 2, and improving the problem that the gravity of the protective net 15 acts on the sealing seat 2, affecting the position stability of the sealing seat 2 after deflection.
[0058] By setting the limit plate 21, the arc plate 16 can move inside the protective net 15; the sealing seat 2 squeezes the protective net 15 to cause it to deflect, and after the magnetic block 18 approaches the magnetic block 2 19, the opposite attraction between the two magnetic blocks can pull the arc plate 16 to move inside the protective net 15. After the arc plate 16 moves, the striker 20 is moved by the shift plate 22, and the tension spring is stretched to store energy. After the shift plate 22 and the striker 20 are offset, the striker 20 hits the protective net 15 under the pull of the tension spring, and can vibrate off debris such as fallen leaves attached to the surface of the protective net 15, thereby improving the use effect of the protective net 15.
[0059] The above-mentioned front, back, left, right, up and down are all based on the Figure 1 As a benchmark, according to the person's observation perspective, the side of the device facing the observer is defined as the front, the left side of the observer is defined as the left, and so on.
[0060] In the description of the present invention, it should be understood that the terms "center", "longitudinal", "lateral", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside", "outside", etc., indicating the orientation or position relationship, are based on the orientation or position relationship shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as limiting the scope of protection of the present invention.
[0061] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An energy management and control system for a smart park, characterized by: Including power monitoring module, power room monitoring module, water room monitoring module and data server; The power monitoring module is used to monitor the power supply and safety operation indicators in the park and send the monitoring data to the data server; The power room monitoring module is used to monitor the operating parameters of the power room, including real-time voltage, current, power, frequency, load, current imbalance and total power consumption, and send the monitoring data to the data server; The water room monitoring module is used to monitor the water storage, daily water consumption and total water consumption in the park, and send the monitoring data to the data server. The water room monitoring module is provided with a rainwater processing unit to collect and purify rainwater, and store and use the treated rainwater. The rainwater processing unit is provided with a mechanism for preliminarily cleaning the receiving device for receiving rainwater; The data server is used to collect and analyze the received park energy data and display the analysis results on the display screen; The rainwater treatment unit comprises a treatment box (1), a water collecting trough (101) is provided at the top of the treatment box (1), a treatment chamber (102) is provided inside the treatment box (1), the water collecting trough (101) is communicated with the treatment chamber (102), a water purifier is installed in the treatment chamber (102), a sealing seat (2) is rotatably installed on the top of the treatment box (1) and covers the outside of the water collecting trough (101), a drainage hole (3) is provided inside the top of the sealing seat (2), the drainage hole (3) is in an inclined shape that passes through from left to right, and an opening groove for receiving rainwater is provided at the top of the drainage hole (3), a support plate (4) is fixedly installed at the top of the treatment box (1), an upper sealing plate (5) is installed on the support plate (4) and blocks the drainage hole (3), and an inner sealing plate (6) is fixedly installed at the bottom of the upper sealing plate (5) and is inserted into the drainage hole (3); The sealing seat (2) is provided with a protective plate (201) at one end of the drainage hole (3) away from the support plate (4), the front and back sides of the sealing seat (2) are provided with arc-shaped side plates, and the front and back sides of the support plate (4) are provided with arc-shaped baffles corresponding to the arc-shaped baffles; A turntable (7) is rotatably mounted inside the sealing seat (2), the turntable (7) being located on the inner top wall of the drainage hole (3), a driven plate (8) being fixedly mounted on the bottom end of the turntable (7), a partition (9) being fixedly mounted on the upper end of the turntable (7), and a stopper (10) for blocking the partition (9) being provided on the inner bottom wall of the drainage hole (3); An inclined elastic telescopic member (11) is installed between the rotating disk (7) and the inner top wall of the drain hole (3), and the elastic telescopic member (11) includes a telescopic rod, the two ends of which are respectively movably hinged to the rotating disk (7) and the sealing seat (2), and a supporting compression spring is provided on the telescopic rod; The outer side of the turntable (7) is provided with teeth, and a clamping plate (12) for clamping the turntable (7) is movably inserted into the interior of the sealing seat (2), and the clamping plate (12) is provided with teeth corresponding to the teeth. A push rod (13) for pushing the clamping plate (12) is slidably installed inside the sealing seat (2), and two wedge-shaped plates are provided on the push rod (13). A through groove corresponding to the wedge-shaped plates is opened inside the clamping plate (12); A connecting rod (14) is fixedly mounted on the top end of the elastic telescopic member (11), and the connecting rod (14) is movably connected to the push rod (13).
2. The energy management and control system for a smart park according to claim 1, characterized in that: A protective net (15) is rotatably mounted on the inner sealing plate (6), and the protective net (15) covers the opening groove of the drainage hole (3).
3. The energy management and control system for a smart park according to claim 2, characterized in that: The protective net (15) is movably connected to an arc plate (16), the top of the upper sealing plate (5) is fixedly installed with a guide rail (17) corresponding to the arc plate (16), the top of the arc plate (16) is fixedly installed with a magnetic block 1 (18), and the inside of the guide rail (17) is fixedly installed with a magnetic block 2 (19), and the magnetism of the opposite side of the magnetic block 1 (18) and the magnetic block 2 (19) is opposite.
4. The energy management and control system for a smart park according to claim 3 is characterized by: A striker (20) is movably mounted on the bottom of the protective net (15), a tension spring is mounted between the striker (20) and the protective net (15), a limit plate (21) is mounted on the outer side of the arc plate (16), a movable groove corresponding to the limit plate (21) is provided inside the protective net (15), and the width of the movable groove is greater than the width of the limit plate (21), and a dial plate (22) for moving the striker (20) is provided at the bottom of the arc plate (16).
Citation Information
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