A smart power load energy storage dispatching device
Patent Information
- Application Number
- CN202211341779.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-27
- Publication Date
- 2026-09-01
- Estimated Expiration
- 2042-10-27
AI Technical Summary
[0005]为了解决上述背景技术中存在的技术问题,本发明提供一种智能电力负荷储能调度装置,解决现有技术中存在储能箱上散热结构不方便进行清理的缺点
[0019]1、清理装置中的刮块通过转动刮除纱网表面的灰尘,转动时,刮块尖端一侧会撑起纱网的部分区域,同时内部空腔中的气体沿着预留槽吹出,预留槽贴合在纱网被支撑区域的表面,有利于纱网孔隙中灰尘的挤出;进一步的,硬质刷毛会扎入纱网的孔隙中,实现对纱网内部的二次深度清理工作,提高了对纱网内壁的清理效果,预留槽增大了硬质刷毛和纱网内壁之间的摩擦力,间接的提高对纱网内壁的清理效果。
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Figure CN115579927B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of power energy storage technology, specifically to an intelligent power load energy storage and dispatching device. Background Technology
[0002] The statements in this section are merely background information related to the present invention and do not necessarily constitute prior art.
[0003] Intelligent power load energy storage dispatching devices utilize energy storage boxes that temporarily store electricity in conjunction with corresponding controllers to cope with different power load demands. Energy storage boxes typically use energy storage batteries connected in series and parallel in specific ways to form different capacities and specifications to meet the power load requirements.
[0004] The energy storage box needs to dissipate heat during operation. The inner walls of the heat dissipation holes on the heat dissipation plate of the energy storage box are prone to clogging with mud, ash and other debris. This mud and ash clogging the inner walls of the heat dissipation holes on the heat dissipation plate is inconvenient to clean, which can reduce the heat dissipation effect of the energy storage box, thereby reducing the performance of the energy storage box and affecting its normal use. Summary of the Invention
[0005] In order to solve the technical problems existing in the background art, the present invention provides an intelligent power load energy storage dispatching device, which solves the disadvantage of the heat dissipation structure on the energy storage box being inconvenient to clean in the prior art.
[0006] To achieve the above objectives, the present invention adopts the following technical solution:
[0007] The first aspect of the present invention provides an intelligent power load energy storage dispatching device, comprising:
[0008] The energy storage box contains an energy storage battery and a controller connected to the energy storage battery, and the side walls are equipped with a cooling fan and a cleaning device.
[0009] The cleaning device includes a mounting bracket connected to the outlet of the cooling fan, on which a screen and a dust blowing device are mounted; the dust blowing device includes a rotating tube rotatably connected to the center of the mounting bracket, with one end of the rotating tube connected to a fixed tube, and the side wall of the rotating tube rotatably connected to a scraper; the scraper is hollow inside, with one side being a pointed tip and the other side being a flat surface, the pointed side abutting against the surface of the screen and supporting the area of the screen from the center to the edge, and a reserved groove with a V-shaped cross-section is opened inside the scraper, which is connected to the inner cavity of the scraper;
[0010] The surface of the rotating tube is provided with an auxiliary collection and cleaning structure, which includes a collection box connected to the side wall of the rotating tube. The port of the collection box is detachably connected to a baffle, which faces the tip of the scraper. The surface of the baffle is provided with two rows of hard bristles, which are V-shaped. The two rows of hard bristles are arranged in pairs, with the side away from the baffle forming an 8-shaped structure.
[0011] The side wall of the energy storage box is equipped with an air pump, which is connected to an air pipe. The air pipe is connected to a fixed pipe through a connector. The side wall of the rotating pipe is rotatably connected to a scraper through a rotating block.
[0012] The surface of the barrier is provided with multiple sets of equally spaced fabric tubes.
[0013] The surface of the energy storage battery is equipped with an anti-detachment device, which includes a mounting strip connected to the surface of the energy storage battery. A slider is slidably connected to the surface of the mounting strip, a support rod is connected to the surface of the slider, a slide rod is slidably connected inside the support rod, and a U-shaped limit block is connected to the lower end of the slide rod. A bolt is threaded through the internal thread of the slider.
[0014] A spring is fitted onto the surface of the slide rod, and the two ends of the spring are fixedly connected to the support rod and the limiting block, respectively.
[0015] Both ends of the mounting strip are fixedly mounted with auxiliary blocks, and the planar structure on the side where the two auxiliary blocks are far apart from each other gradually decreases in size.
[0016] The inner wall of the limiting block is provided with a clamping component, which includes an arc-shaped strip. The arc-shaped strip is fixedly connected to the inner wall of the limiting block. Several spikes are evenly fixedly connected to the side wall of the arc-shaped strip. The upper surfaces of the arc-shaped strip and the spikes are both provided with arc-shaped surfaces.
[0017] The surface of the energy storage box is rotatably connected to the cabinet door, which is equipped with a display screen connected to the controller.
[0018] Compared with existing technologies, one or more of the above technical solutions have the following beneficial effects:
[0019] 1. The scraper in the cleaning device removes dust from the surface of the mesh by rotating. When rotating, one side of the scraper tip supports part of the mesh, while the gas in the internal cavity is blown out along the reserved groove. The reserved groove fits against the surface of the supported area of the mesh, which helps to squeeze out the dust from the mesh pores. Furthermore, the hard bristles penetrate into the pores of the mesh, achieving a secondary deep cleaning of the mesh interior, improving the cleaning effect on the inner wall of the mesh. The reserved groove increases the friction between the hard bristles and the inner wall of the mesh, indirectly improving the cleaning effect on the inner wall of the mesh.
[0020] 2. The cleaning device facilitates the cleaning of the heat dissipation area of the energy storage box, ensuring the cleanliness of the heat dissipation vents as much as possible. This reduces the problem of dirt and grime clogging the inner walls of the heat dissipation holes on the heat dissipation plate, which is difficult to clean and can easily reduce the heat dissipation effect of the energy storage box, thereby reducing its performance. This device ensures the normal operation of the energy storage box as much as possible.
[0021] 3. By setting up an anti-detachment device, the occurrence of slippage between the wires and the energy storage battery is reduced, thereby improving the stability of the energy storage equipment during use. Attached Figure Description
[0022] The accompanying drawings, which form part of this invention, are used to provide a further understanding of the invention. The illustrative embodiments of the invention and their descriptions are used to explain the invention and do not constitute an improper limitation of the invention.
[0023] Figure 1 A three-dimensional structural schematic diagram of an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0024] Figure 2 A schematic diagram of the internal structure of an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0025] Figure 3 A partial structural schematic diagram of an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0026] Figure 4 A schematic diagram of the mounting frame in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0027] Figure 5 A schematic diagram of the auxiliary collection and cleaning structure in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0028] Figure 6 Another structural schematic diagram of the auxiliary collection and cleaning structure in the intelligent power load energy storage scheduling device provided in one or more embodiments of the present invention;
[0029] Figure 7 A schematic diagram of the scraper block in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0030] Figure 8 A partial structural diagram of the auxiliary collection and cleaning structure in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0031] Figure 9 A schematic diagram of the structure of the energy storage battery in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0032] Figure 10 A partial structural diagram of the energy storage battery in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0033] Figure 11 A schematic diagram of the clamping component in an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0034] Figure 12A schematic diagram of the functional architecture of an intelligent power load energy storage dispatching device provided in one or more embodiments of the present invention;
[0035] In the diagram: 1. Energy storage box; 2. Cabinet door; 3. Display screen; 4. Cleaning device; 41. Mesh screen; 42. Dust blowing device; 421. Air pipe; 422. Air pump; 423. Connector; 424. Scraper; 425. Rotary pipe; 426. Fixed pipe; 427. Reserved slot; 43. Mounting bracket; 44. Rotary block; 45. Auxiliary collection and cleaning structure; 451. Collection box; 452. Protective cloth; 453. Cloth tube; 454. Hard bristles; 455. Rectangular slot; 5. Energy storage battery; 6. Controller; 7. Anti-detachment device; 71. Mounting strip; 72. Slider; 73. Support rod; 74. Bolt; 75. Auxiliary block; 76. Limiting block; 77. Slide rod; 78. Spring; 79. Clamping component; 791. Arc-shaped strip; 792. Spike; 793. Arc-shaped surface; 8. Cooling fan. Detailed Implementation
[0036] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0037] It should be noted that the following detailed descriptions are exemplary and intended to provide further illustration of the invention. Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains.
[0038] It should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the scope of exemplary embodiments according to the invention. As used herein, the singular form is intended to include the plural form as well, unless the context clearly indicates otherwise. Furthermore, it should be understood that when the terms "comprising" and / or "including" are used in this specification, they indicate the presence of features, steps, operations, devices, components, and / or combinations thereof.
[0039] As described in the background section, the inner walls of the heat dissipation holes of the heat dissipation plate in the energy storage box of the intelligent power load energy storage dispatching device are prone to blockage by mud, ash, and other debris. This mud and ash blockage on the inner walls of the heat dissipation holes on the heat dissipation plate is inconvenient to clean, which can reduce the heat dissipation effect of the energy storage box, thereby reducing the performance of the energy storage box and affecting its normal operation.
[0040] Fans are typically installed on heat sinks to draw in ambient air to remove heat from the energy storage tank, or to expel hot air from inside. Regardless of the method, the cool air entering the tank contains dust and impurities, affecting the heat sink's efficiency. To address dust, filters are installed at the air inlets. However, over time, dust and impurities accumulate in the mesh, causing a rapid and unnoticed decline in the energy storage tank's cooling performance. This is especially problematic in humid environments, where moisture in the air is absorbed by the filter and combines with dust to form stubborn grime that severely impedes heat transfer.
[0041] Therefore, the following embodiments provide an intelligent power load energy storage scheduling device, which solves the shortcomings of the prior art where the heat dissipation structure on the energy storage box is inconvenient to clean.
[0042] Example 1:
[0043] like Figure 1-12 As shown, an intelligent power load energy storage dispatching device includes an energy storage box 1, a cabinet door 2 rotatably mounted on the surface of the energy storage box 1, a plurality of energy storage batteries 5 uniformly fixedly mounted on the inner wall of the energy storage box 1, a controller 6 fixedly mounted on the upper side of the energy storage box 1, a cooling fan 8 mounted on the side wall of the energy storage box 1, a display screen 3 fixedly mounted on the surface of the cabinet door 2, a cleaning device 4 provided on the side wall of the energy storage box 1, and an anti-detachment device 7 provided on the surface of the energy storage batteries 5.
[0044] The specific settings and functions of the cleaning device 4 and the anti-detachment device 7 are as follows.
[0045] like Figures 1-8 As shown, the cleaning device 4 includes a mesh screen 41 to prevent impurities from falling into the energy storage box 1, a mounting bracket 43 to support the mesh screen 41, and a dust-blowing device 42 for dust removal. By providing the cleaning device 4, cleaning of the heat dissipation areas of the energy storage box 1 is facilitated, ensuring the cleanliness of the heat dissipation vents as much as possible. This reduces the difficulty of cleaning the inner walls of the heat dissipation holes on the heat dissipation plate due to dirt and grime, which can easily reduce the heat dissipation effect of the energy storage box 1 and thus its performance. Therefore, the cleaning device 4 ensures the normal operation of the energy storage box 1 as much as possible.
[0046] Mounting bracket 43 is fixedly installed on the energy storage box 1 near the cooling fan 8. Mesh 41 is fixedly installed on the surface of mounting bracket 43. Mounting bracket 43 is composed of a ring and a support. Dust blowing device 42 is installed on the surface of mounting bracket 43. Dust blowing device 42 includes a rotating tube 425, which is rotatably installed inside mounting bracket 43. A fixed tube 426 is connected to one end of the rotating tube 425, and a scraper block 424 is connected to the side wall of the rotating tube 425. The scraper block 424 has a hollow internal structure. One side of 424 is a pointed structure and the other side is a flat structure. The scraper 424 has a reserved groove 427 with a "V" shaped cross-section inside. The reserved groove 427 is connected to the inner cavity of the scraper 424. An air pump 422 is fixedly installed on the side wall of the energy storage box 1. An air pipe 421 is connected to the surface of the air pump 422. A connector 423 is fixedly installed on the end side of the air pipe 421. The connector 423 and the surface of the fixed pipe 426 are threadedly connected. A rotating block 44 is fixedly installed on the side wall of the rotating pipe 425.
[0047] Installing the mesh screen 41 on the surface of the mounting bracket 43 provides protection for the heat dissipation vents of the energy storage box 1. The pointed side of the scraper block 424 supports the mesh screen 41. When a lot of dust accumulates on the mesh screen 41, connecting the fixing pipe 426 to the connector 423 enables communication between the flexible hose and the adapter pipe 425. At this time, rotating the rotating block 44 will cause the scraper block 424 to rotate. During the rotation of the rotating block 44, the air pump 422 is activated, and the air in the air pump 422 blows towards... The air inside the scraper block 424 is blown out along the reserved groove 427. During the scraping of the screen 41, the position of the screen 41 near the scraper block 424 is supported into a "V" shape, which facilitates the extrusion of dust from the pores of the screen 41. In addition, the air inside the scraper block 424 is blown along the reserved groove 427 to the support position of the screen 41, which facilitates the cleaning of dust and other debris from the pores of the screen 41 and improves the permeability of the screen 41 during use.
[0048] The surface of the rotating tube 425 is provided with an auxiliary collection and cleaning structure 45, which includes a collection box 451. The collection box 451 is fixedly connected to the side wall of the rotating tube 425, and a baffle 452 is detachably installed at the port of the collection box 451. During the start-up of the air pump 422, impurities flow into the inner wall of the collection box 451 through the holes on the baffle 452, facilitating the collection of dust and impurities and reducing the spread of dust and impurities. Several cloth cylinders 453 are connected to the surface of the baffle 452. The inner diameter of the cloth cylinders 453 decreases from one end to the other, then increases again, then decreases again, repeating the above arrangement of inner diameter dimensions. The uneven inner diameter of the cloth cylinders 453 reduces the phenomenon of impurities blown into the collection box 451 being blown up again. Two rows of stiff bristles 454 are glued to the surface of the baffle 452. The stiff bristles 454 have a "V" shaped structure, and the two rows of stiff bristles 454 are arranged in pairs, with the side away from the baffle 452 forming an "V" shape. The stiff bristles 454 will penetrate into the inner wall of the mesh 41, which can achieve a secondary deep cleaning of the inside of the mesh 41, improving the cleaning effect on the inner wall of the mesh 41. The reserved groove 427 increases the friction between the stiff bristles 454 and the inner wall of the mesh 41, further improving the cleaning effect on the inner wall of the mesh 41.
[0049] like Figures 9-11 As shown, the anti-detachment device 7 includes a mounting strip 71, which is fixedly mounted on the surface of the energy storage battery 5. A slider 72 is slidably mounted on the surface of the mounting strip 71, and a support rod 73 is fixedly mounted on the surface of the slider 72. A sliding rod 77 is slidably mounted inside the support rod 73, and a U-shaped limiting block 76 is fixedly mounted at the lower end of the sliding rod 77. A bolt 74 is threaded through the inside of the slider 72. After connecting the energy storage batteries 5 in series using connecting wires, the sliding limiting block 76 is fitted onto the surface of the mounting strip 71, improving the flexibility of the anti-detachment structure. By sliding the limiting block 76 to the position where the connecting wire needs to be limited, and rotating the bolt 74 to press it against the mounting strip 71, the position of the limiting block 76 after movement can be fixed. By clamping the limiting block 76 onto the outer surface of the wire, the initial limiting of the wire can be achieved. A spring 78 is fitted onto the surface of the sliding rod 77, and the two ends of the spring 78 are fixedly connected to the support rod 73 and the limiting block 76, respectively. The limiting block 76 is held in place by the spring force 78 on the support rod 73, thus achieving initial limiting of the wire. Auxiliary blocks 75 are fixedly installed at both ends of the mounting strip 71, with the planar structure of the two auxiliary blocks 75 decreasing in size on the side furthest from each other. This decreasing size of the auxiliary blocks 75 facilitates the flexible insertion and removal of the limiting block 76 onto the mounting strip 71.
[0050] The inner wall of the limiting block 76 is provided with a clamping element 79, which includes an arc-shaped strip 791. The arc-shaped strip 791 is fixedly connected to the inner wall of the limiting block 76. Several spikes 792 are evenly fixedly connected to the side wall of the arc-shaped strip 791. The upper surface of both the arc-shaped strip 791 and the spikes 792 is provided with an arc-shaped surface 793. Both the clamping element 79 and the limiting block 76 are made of insulating material. When the wire is subjected to tensile force, the wire sheath will penetrate the surface of the arc-shaped strip 791 with the arc-shaped surface 793 and the spikes 792, thereby preventing the wire from slipping off the inner wall of the limiting block 76 and improving the stability of the energy storage battery 5 during use. The use of insulating material for the limiting block 76 and the clamping element 79 improves the safety of the anti-detachment structure during use.
[0051] like Figure 12 As shown, the above-mentioned device can form an intelligent power load energy storage dispatching system, including an energy storage module, power load, dispatching module, power grid, and photovoltaic power generation system. The output terminals of the photovoltaic power generation system, power load, and power grid are all electrically connected to the input terminal of the energy storage module, and the output terminal of the energy storage module is electrically connected to the input terminal of the dispatching module. The energy storage module includes a control unit, an energy storage unit, and a display unit. The control unit and the energy storage unit are connected by a bus, and the energy storage unit and the display unit are also connected by a bus. By setting up an intelligent power load energy storage dispatching system, the power load from some electrical equipment, the power from the power grid, and the power from the photovoltaic power generation system will all charge the energy storage module. By setting up a control unit, users can control the energy storage module in real time, while the display unit facilitates the acquisition of power information inside the energy storage module, allowing users to intuitively read the power information in the energy storage module. The energy storage unit facilitates the energy storage operation. After the energy storage module is charged, users can dispatch the power through the control unit. The setting of the dispatching module facilitates the real-time dispatching of power in the energy storage module.
[0052] The overall working principle is as follows: The mesh screen 41 is installed on the surface of the mounting bracket 43 to protect the heat dissipation vent of the energy storage box 1. The scraper block 424 is supported on the pointed side of the mesh screen 41. When a lot of dust accumulates on the mesh screen 41, the fixing tube 426 is connected to the connector 423 to connect the flexible tube and the rotating tube 425. At this time, rotating the rotating block 44 will drive the scraper block 424 to rotate. During the rotation of the rotating block 44, the air pump 422 is activated, and the air in the air pump 422 will blow towards the scraper block. The air inside the scraper block 424 is blown out along the pre-reserved groove 427. During the scraping of the mesh 41, the area of the mesh 41 near the scraper block 424 is supported into a "V" shape, facilitating the extrusion of dust from the mesh 41's pores. Furthermore, the air inside the scraper block 424 is blown along the pre-reserved groove 427 towards the support position of the mesh 41, thus facilitating the cleaning of dust and other debris from the mesh 41's pores and improving the permeability of the mesh 41 during use. Simultaneously, while rotating the rotating tube 425... The collection box 451 rotates with the rotating tube 425, and the stiff bristles 454 penetrate the inner wall of the mesh 41, enabling a secondary deep cleaning of the mesh 41 and improving the cleaning effect on the inner wall of the mesh 41. The reserved groove 427 increases the friction between the stiff bristles 454 and the inner wall of the mesh 41, further improving the cleaning effect on the inner wall of the mesh 41. During the start of the air pump 422, impurities flow along the cloth tube 453 into the inner wall of the collection box 451, facilitating the collection of dust and impurities. The use of different inner diameters of the cloth tubes 453 reduces the phenomenon of impurities blown into the collection box 451 being blown up again. The cleaning device 4 facilitates the cleaning of the heat dissipation area of the energy storage box 1, ensuring the cleanliness of the heat dissipation vents of the energy storage box 1 as much as possible. This reduces the problem of dirt and ash clogging the inner walls of the heat dissipation holes on the heat dissipation plate, which is inconvenient to clean and can easily reduce the heat dissipation effect of the energy storage box 1, thereby reducing the performance of the energy storage box 1. This ensures the normal operation of the energy storage box 1 as much as possible.
[0053] After connecting the energy storage batteries 5 in series using connecting wires, the sliding limit block 76 is fitted onto the surface of the mounting strip 71. The auxiliary blocks 75 become smaller on the side that is further away from each other, which facilitates the flexible fitting of the limit block 76 onto the mounting strip 71 and improves the flexibility of the anti-detachment structure. Sliding the limit block 76 to the position where the connecting wire needs to be limited, and rotating the bolt 74 to press it onto the mounting strip 71, can achieve the fixed work of the position of the limit block 76 after movement. When the limit block 76 is clamped onto the outer surface of the wire, the limit block 76 will be clamped onto the wire by the elastic force of the spring 78 on the support rod 73. The surface of the device allows for initial positioning of the wire. When the wire is subjected to tensile force, the wire sheath will embed into the surface with the arc-shaped strip 791 and the spike 792 on the arc-shaped surface 793, thereby preventing the wire from slipping off the inner wall of the limiting block 76 and improving the stability of the energy storage battery 5 during use. The limiting block 76 and the clamping part 79 are made of insulating material, which improves the safety of the anti-detachment structure during use. By setting the anti-detachment device 7, the slippage between the wire and the energy storage battery 5 is reduced, and the stability of the energy storage device during use is improved.
[0054] The above description is merely a preferred embodiment of the present invention and is not intended to limit the invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
Claims
1. An intelligent power load energy storage dispatching device, characterized in that: include: The energy storage box contains an energy storage battery and a controller connected to the energy storage battery, and the side walls are equipped with a cooling fan and a cleaning device. The cleaning device includes a mounting bracket connected to the outlet of the cooling fan, on which a screen and a dust blowing device are mounted; the dust blowing device includes a rotating tube rotatably connected to the center of the mounting bracket, with one end of the rotating tube connected to a fixed tube, and the side wall of the rotating tube rotatably connected to a scraper; the scraper is hollow inside, with one side being a pointed tip and the other side being a flat surface, the pointed side abutting against the surface of the screen and supporting the area of the screen from the center to the edge, and a reserved groove with a V-shaped cross-section is opened inside the scraper, which is connected to the inner cavity of the scraper; The surface of the rotating tube is provided with an auxiliary collection and cleaning structure, which includes a collection box connected to the side wall of the rotating tube. The port of the collection box is detachably connected to a baffle, which faces the tip of the scraper. The surface of the baffle is provided with two rows of hard bristles, which are V-shaped. The two rows of hard bristles are arranged in pairs, with the side away from the baffle forming an 8-shaped structure. The surface of the energy storage battery is provided with an anti-detachment device, which includes a mounting strip connected to the surface of the energy storage battery. The surface of the mounting strip is slidably connected to a slider, the surface of the slider is connected to a support rod, the inside of the support rod is slidably connected to a slide rod, the lower end of the slide rod is connected to a U-shaped limiting block, and the internal thread of the slider is threaded with a bolt. A spring is fitted onto the surface of the slide rod, and the two ends of the spring are fixedly connected to the support rod and the limiting block, respectively.
2. The intelligent power load energy storage dispatching device as described in claim 1, characterized in that: The energy storage box is equipped with an air pump on its side wall. The air pump is connected to an air pipe, which is connected to a fixed pipe through a connector. The side wall of the rotating pipe is rotatably connected to a scraper through a rotating block.
3. The intelligent power load energy storage dispatching device as described in claim 1, characterized in that: The surface of the baffle cloth is provided with multiple sets of cloth tubes arranged at equal intervals.
4. The intelligent power load energy storage dispatching device as described in claim 1, characterized in that: Both ends of the mounting strip are fixedly mounted with auxiliary blocks, and the planar structure on the side where the two auxiliary blocks are far apart from each other gradually decreases in size.
5. The intelligent power load energy storage dispatching device as described in claim 1, characterized in that: The inner wall of the limiting block is provided with a clamping element, which includes an arc-shaped strip.
6. The intelligent power load energy storage dispatching device as described in claim 5, characterized in that: The inner walls of the arc-shaped strip and the limiting block are fixedly connected, and several spikes are evenly fixedly connected to the side wall of the arc-shaped strip. The upper surfaces of the arc-shaped strip and the spikes are both provided with arc-shaped surfaces.
7. The intelligent power load energy storage dispatching device as described in claim 1, characterized in that: The surface of the energy storage box is rotatably connected to a cabinet door, and the cabinet door is equipped with a display screen connected to the controller.
Citation Information
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