scheduling device
By designing a housing and storage device, efficient connection between the main unit of the power dispatching equipment and multiple devices is achieved, solving the problem of low connection efficiency in the existing technology and improving operational efficiency and the service life of the connection lines.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- STATE GRID BEIJING ELECTRIC POWER CO
- Filing Date
- 2024-12-19
- Publication Date
- 2026-05-12
Smart Images

Figure CN119765031B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of power technology, and more specifically, to a dispatching device. Background Technology
[0002] Currently, demand-side resources (flexible loads, energy storage, electric vehicles, etc.) are rapidly developing due to their advantages in market participation, such as low carbon emissions, high flexibility, and fast response speed. Compared with traditional response resources, they not only better maintain the stable operation of the power grid but also bring certain economic benefits. Most demand-side resources are characterized by dispersion, diversity, and varied characteristics, making direct regulation difficult. Therefore, to fully utilize demand-side resources, improve the absorption of distributed resources, and fully explore the response characteristics of response resources, resource aggregation technology has emerged. Aggregation refers to integrating multiple demand-side resources with single characteristics and small power output into one or more aggregates with certain flexible scheduling capabilities and better coordinated system scheduling based on characteristic assessment and certain aggregation principles. Demand-side resource aggregation response entities can act as intermediaries between demand-side users and the electricity market. Demand-side resource aggregation response entities and supply-side power operators jointly participate in electricity market transactions, providing energy, capacity, and ancillary services in various types of electricity markets, including day-ahead, reserve, and real-time markets. While ensuring their own economic interests, they can also improve overall social benefits.
[0003] In existing technologies, in order to meet the needs of demand-side resource aggregation, power dispatching equipment usually adopts a form of communication connection between a host and multiple devices, so that the aggregation entity can collect, analyze and manage information and operation instructions of dispersed demand-side resources.
[0004] However, when connecting the host to multiple devices, staff need to plug the host's connection cable into the corresponding communication interface of each device. This process is not only time-consuming and labor-intensive, but also prone to wiring confusion when connecting multiple devices, increasing operational complexity and error rates. Especially in situations requiring rapid response or emergency dispatch, this traditional connection method severely restricts the response speed and operational efficiency of the aggregation entity, failing to meet the high dynamism and high reliability demands of the modern power market. Summary of the Invention
[0005] The main objective of this invention is to provide a scheduling device to solve the problem of low connection efficiency between the host and multiple devices in the existing power scheduling equipment.
[0006] To achieve the above objectives, the present invention provides a scheduling device comprising: a receiving device having a receiving cavity for receiving a host device; a plurality of display devices disposed on the receiving device, the plurality of display devices being spaced apart along a preset direction; and a storage device including a fixing component and a storage component, the storage component being slidably engaged with the fixing component, the fixing component being disposed on the host device; wherein, there are multiple storage devices, each storage device being disposed in correspondence with a plurality of display devices, the plurality of storage components being used to store multiple sets of connection lines of the host device, each storage component having an initial state and a delivery state; when the storage component is in the initial state, the storage component is located within the receiving cavity; when the storage component is in the delivery state, at least a portion of the storage component slides out of the receiving cavity to connect each set of connection lines to the corresponding display device.
[0007] Furthermore, the display device includes: a main body assembly disposed on the receiving device, the main body assembly having a receiving cavity; and a display assembly disposed on the main body assembly; wherein the display assembly has a display state and a receiving state, when the display assembly is in the display state, the display assembly is located outside the receiving cavity; and when the display assembly is in the receiving state, at least a portion of the display assembly is located inside the receiving cavity.
[0008] Furthermore, the scheduling device also includes a drive unit, which is mounted on the main component and is driven to connect with the storage component to drive the storage component to switch between an initial state and a delivery state; and / or, the drive unit is driven to connect with the display component to drive the display component to switch between a display state and a receiving state.
[0009] Furthermore, the main body component has a sliding hole, and the driving device includes: a driving component, rotatably mounted on the main body component; a mating component, sleeved on the driving component and threadedly engaged with the driving component; and a transmission component, mounted on the main body component and located within the receiving cavity, one end of the transmission component passing through the sliding hole and connected to the mating component, and the other end of the transmission component being connected to the receiving component; wherein, the driving component and the mating component are drivenly connected, and during the process of the driving component driving the mating component to move along the extension direction of the driving component, the mating component drives the receiving component to move toward or away from the main body device through the transmission component.
[0010] Furthermore, the display device also includes a support component, which is disposed on the main body component for rotatably mounting the display component; the driving device also includes a connecting component, one end of which is rotatably connected to the end of the transmission component away from the mating component, and the other end of which is rotatably connected to the display component; wherein, during the process of the mating component driving the transmission component to move along the extension direction of the driving component, the transmission component drives the display component to rotate through the connecting component.
[0011] Further, the supporting component includes: a supporting structure on which the display component is rotatably mounted, the supporting structure having a connecting hole communicating with a receiving cavity and located on the side of the display component away from the driving component, for at least a portion of the receiving component to pass through; a cover structure covering the connecting hole; at least two opposing elastic structures forming a receiving space between them for accommodating at least a portion of the receiving component, one end of the elastic structure being connected to the supporting structure and the other end being connected to the cover structure; wherein, when the receiving component is in a delivered state, at least a portion of the receiving component passes through the connecting hole, causing the cover structure to separate from the connecting hole; when the receiving component is in an initial state, the elastic structure causes the cover structure to cover the connecting hole.
[0012] Furthermore, the storage component includes: a joining structure slidably disposed on the fixed component, the joining structure having a joining recess; a storage structure disposed on the joining structure and located within the joining recess for winding each set of connecting wires; and a shielding structure rotatably disposed on the joining structure for shielding at least a portion of the joining recess; wherein there are multiple storage structures, and the multiple storage structures are spaced apart along a preset direction.
[0013] Further, the receiving device includes: a receiving structure comprising a first plate and a second plate connected to each other, wherein there are two first plates, which are disposed opposite to each other at both ends of the second plate, and the two first plates and the second plate surround each other to form a receiving cavity; the first plate has a plurality of first heat dissipation holes, which are spaced apart along the length or width direction of the first plate, and each first heat dissipation hole communicates with the receiving cavity; the second plate has a plurality of second heat dissipation holes, which are spaced apart along the length or width direction of the second plate, and each second heat dissipation hole communicates with the receiving cavity; a shielding structure, which is rotatably disposed on one of the first plates to shield the receiving cavity; and a heat dissipation structure, disposed on the first plate and / or the second plate to dissipate heat from the host device.
[0014] Furthermore, the receiving device also includes: multiple covering structures disposed on the first plate, with each of the multiple covering structures corresponding to a multiple first heat dissipation holes. Each covering structure includes a driving part and a covering part, with the driving part and the covering part being drivenly connected to drive the covering part to move toward or away from the driving part. The driving part is electrically connected to the display component. When the display component is in the display state, the driving part drives the covering part to move away from the driving part to avoid the first heat dissipation holes. When the display component is in the receiving state, the driving part drives the covering part to move toward the driving part to cover the first heat dissipation holes.
[0015] Furthermore, the scheduling device also includes: a power strip device, comprising a power strip assembly and a cover assembly, the power strip assembly being disposed on the side of the display assembly away from the drive assembly, for connecting a portion of the connection lines of each group of connection lines when the display assembly is in display mode; the cover assembly being movably disposed on the power strip assembly for covering the power strip assembly; and a communication device disposed on the drive assembly, the communication device being slidably engaged with the drive assembly for connecting another portion of the connection lines of each group of connection lines when the display assembly is in display mode.
[0016] According to the technical solution of this invention, the receiving device of the scheduling equipment has a receiving cavity for receiving the host device. Multiple display devices are disposed on the receiving device, and the multiple display devices are spaced apart along a preset direction. The storage device includes a fixing component and a storage component, the storage component and the fixing component being slidably engaged, and the fixing component being disposed on the host device. There are multiple storage devices, each corresponding to one of the multiple display devices. The multiple storage components are used to store multiple sets of connecting wires of the host device. Each storage component has an initial state and a delivery state. When the storage component is in the initial state, it is located within the receiving cavity. When the storage component is in the delivery state, at least a portion of the storage component slides out of the receiving cavity to connect each set of connecting wires to the corresponding display device. In this way, multiple storage devices correspond to multiple display devices, each storing the connection cables of the main unit. When workers need to install the main unit and multiple devices, the storage component of the storage device delivers a set of connection cables from the main unit, allowing workers to directly plug the connection cables from the storage component into the corresponding display device. This reduces the complexity of operations, improves work efficiency, and solves the problem of low connection efficiency between the main unit and multiple devices in existing power dispatching equipment. Furthermore, after work, workers can return the connection cables to the storage device, protecting them from external environmental influences and extending their lifespan. Attached Figure Description
[0017] The accompanying drawings, which form part of this application, 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 undue limitation of the invention. In the drawings:
[0018] Figure 1 A perspective view of the overall structure of an embodiment of the scheduling device according to the present invention is shown;
[0019] Figure 2 It shows Figure 1 A magnified view of a portion of the image;
[0020] Figure 3 It shows Figure 1The front view of the scheduling equipment without the obscuring structure;
[0021] Figure 4 It shows Figure 1 Another perspective diagram of the removal of the obscuring structure from the scheduling equipment in the diagram;
[0022] Figure 5 It shows Figure 1 Another perspective diagram of the removal of the obscuring structure from the scheduling equipment in the diagram;
[0023] Figure 6 It shows Figure 1 Another perspective diagram of the removal of the obscuring structure from the scheduling equipment in the diagram;
[0024] Figure 7 It shows Figure 6 A magnified view from another perspective.
[0025] The above figures include the following reference numerals:
[0026] 10. Receiving device; 11. Receiving structure; 111. First plate; 1111. First heat dissipation hole; 112. Second plate; 1121. Second heat dissipation hole; 12. Shielding structure; 13. Covering structure; 131. Driving part; 132. Covering part; 14. Receiving cavity;
[0027] 20. Main unit;
[0028] 30. Display device; 31. Main body assembly; 311. Receiving cavity; 312. Sliding hole; 32. Display component; 33. Supporting component; 331. Supporting structure; 3311. Communicating hole; 332. Covering structure; 333. Elastic structure; 3331. Accommodating space;
[0029] 40. Storage device; 41. Fixing component; 42. Storage component; 421. Joining structure; 4211. Joining recess; 422. Storage structure; 423. Covering structure;
[0030] 50. Drive unit; 51. Drive assembly; 52. Mating assembly; 53. Transmission assembly; 54. Connecting assembly;
[0031] 60. Power strip assembly; 61. Power strip assembly; 62. Cover assembly;
[0032] 70. Communication device. Detailed Implementation
[0033] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0034] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0035] In this invention, unless otherwise stated, directional terms such as "up" and "down" are generally used in relation to the direction shown in the accompanying drawings, or in relation to the vertical, perpendicular, or gravitational direction; similarly, for ease of understanding and description, "left" and "right" are generally used in relation to the left and right shown in the accompanying drawings; "inner" and "outer" refer to the inner and outer contours of each component itself, but the above directional terms are not intended to limit this invention.
[0036] To address the problem of low connection efficiency between the host and multiple devices in existing power dispatching equipment, this application provides a dispatching device.
[0037] like Figures 1 to 7 As shown, the scheduling device includes a receiving device 10, multiple display devices 30, and a storage device 40. The receiving device 10 has a receiving cavity 14 for receiving a host device 20. The multiple display devices 30 are disposed on the receiving device 10 and are spaced apart along a preset direction. The storage device 40 includes a fixing component 41 and a storage component 42, which are slidably engaged with the fixing component 41, which is disposed on the host device 20. Multiple storage devices 40 are provided, each corresponding to one of the multiple display devices 30. The multiple storage components 42 are used to store multiple sets of connecting wires of the host device 20. Each storage component 42 has an initial state and a delivery state. When the storage component 42 is in the initial state, it is located within the receiving cavity 14; when the storage component 42 is in the delivery state, at least a portion of it slides out of the receiving cavity 14 to connect each set of connecting wires to the corresponding display device 30.
[0038] Applying the technical solution of this embodiment, the accommodating device 10 of the scheduling device has an accommodating cavity 14 for accommodating the host device 20. Multiple display devices 30 are disposed on the accommodating device 10, and the multiple display devices 30 are spaced apart along a preset direction. The storage device 40 includes a fixing component 41 and a storage component 42, the storage component 42 being slidably engaged with the fixing component 41, and the fixing component 41 being disposed on the host device 20. There are multiple storage devices 40, each corresponding to one of the multiple display devices 30. The multiple storage components 42 are used to store multiple sets of connecting wires of the host device 20. Each storage component 42 has an initial state and a delivery state. When the storage component 42 is in the initial state, it is located within the accommodating cavity 14. When the storage component 42 is in the delivery state, at least a portion of the storage component 42 slides outside the accommodating cavity 14 to connect each set of connecting wires to the corresponding display device 30. In this way, multiple storage devices 40 correspond to multiple display devices 30 to accommodate the connection cables of the main unit 20. When the operator needs to install the main unit and multiple devices, the storage component 42 of the storage device 40 delivers a set of connection cables from the main unit 20, allowing the operator to directly insert the connection cables from the storage component 42 into the display device 30 corresponding to the storage device 40. This reduces the complexity of the operator's operation, improves the operator's work efficiency, and solves the problem of low connection efficiency between the main unit and multiple devices in existing power dispatching equipment. Furthermore, after the work is completed, the operator puts the connection cables back into the storage device 40, allowing the storage device 40 to return to the receiving cavity 14, which also protects the connection cables from external environmental influences, thereby extending the service life of the connection cables.
[0039] In this embodiment, the receiving device 10 is rectangular, and the display device 30 is disposed on the top plate of the receiving device 10. The top plate of the receiving device 10 is rectangular, and multiple display devices 30 are spaced apart along the length of the top plate.
[0040] In this embodiment, five display devices 30 are provided.
[0041] It should be noted that the number of display devices 30 is not limited to this and can be adjusted according to the working conditions and usage requirements. Optionally, the number of display devices 30 may be three, four, seven, eight, nine, or more.
[0042] In this embodiment, the host device has multiple sets of connection lines, and each set of connection lines has multiple connection lines.
[0043] Specifically, the connection cable of the main unit 20 will be reserved to accommodate the movement of the storage component 42.
[0044] like Figures 1 to 7As shown, the display device 30 includes a main body component 31 and a display component 32. The main body component 31 is disposed on the receiving device 10 and has a receiving cavity 311. The display component 32 is disposed on the main body component 31. The display component 32 has a display state and a receiving state. When the display component 32 is in the display state, it is located outside the receiving cavity 311. When the display component 32 is in the receiving state, at least a portion of it is located within the receiving cavity 311. This arrangement allows the operator to quickly adjust the state of the display component 32 according to usage needs. When the operator needs to connect the host device 20 to the display component 32, they adjust the display component 32 to the display state to provide visual display. After use, the operator can adjust the display component 32 to the receiving state, storing it inside the receiving cavity 311, preventing external dust from accumulating on the surface of the display component 32 and ensuring its cleanliness. Meanwhile, the arrangement of the display component 32 within the accommodating cavity 311 can protect the display component 32 from external impacts and damage during non-use periods, thus extending its service life. On the other hand, it can reduce the space occupied by the display device 30, making the structure of the scheduling equipment more compact and ensuring the miniaturization of the scheduling equipment.
[0045] In this embodiment, the display component 32 is a display screen.
[0046] like Figures 1 to 6 As shown, the scheduling device also includes a drive unit 50, which is mounted on the main component 31. The drive unit 50 is driven to connect with the storage component 42 to switch the storage component 42 between an initial state and a delivery state; and / or, the drive unit 50 is driven to connect with the display component 32 to switch the display component 32 between a display state and a receiving state. In this way, the operator can adjust the storage component 42 and the display component 32 through the drive unit 50, reducing the operator's workload and improving their work efficiency.
[0047] In this embodiment, the driving device 50 can drive the storage component 42 to switch between the initial state and the delivery state, and can also drive the display component 32 to switch between the display state and the containment state. This eliminates the need for staff to manually adjust the states of the storage component 42 and the display component 32, simplifying the staff's operation steps and further improving their work efficiency.
[0048] like Figure 2As shown, the main body component 31 has a sliding hole 312, and the driving device 50 includes a driving component 51, a mating component 52, and a transmission component 53. The driving component 51 is rotatably mounted on the main body component 31. The mating component 52 is sleeved on the driving component 51 and threadedly engaged with it. The transmission component 53 is mounted on the main body component 31 and located within the receiving cavity 311. One end of the transmission component 53 passes through the sliding hole 312 and connects to the mating component 52, while the other end connects to the receiving component 42. The driving component 51 and the mating component 52 are driven together. During the movement of the mating component 52 along the extension direction of the driving component 51, the mating component 52, through the transmission component 53, drives the receiving component 42 to move towards or away from the main device 20. In this way, the operator can adjust the receiving component 42 simply by rotating the driving component 51, simplifying the operation and improving work efficiency. Meanwhile, the transmission component 53 is disposed within the receiving cavity 14 and connected to the mating component 52 via a sliding hole 312, ensuring that the movement of the transmission component 53 and the movement of the mating component 52 do not interfere with each other, thus guaranteeing the operational reliability of the drive device 50. Furthermore, the above arrangement makes the drive device 50 more compact, further ensuring the miniaturization design of the scheduling equipment.
[0049] In this embodiment, the drive component 51 is a screw.
[0050] Specifically, the main component 31 is provided with a bearing seat, and the screw is rotatably mounted on the bearing seat. The operator drives the cooperating component 52 to move by rotating the screw.
[0051] In this embodiment, both the mating component 52 and the transmission component 53 are rod-shaped.
[0052] In this embodiment, the sliding hole 312 is a strip-shaped hole, and its extension direction is parallel to the extension direction of the drive component 51. The mating component 52 drives the transmission component 53 to slide along the extension direction of the sliding hole 312. At the same time, the hole wall of the sliding hole 312 limits and stops the transmission component 53, thereby ensuring that the rotational motion of the mating component 52 can be converted into linear motion along the extension direction of the drive component 51, thus ensuring the operational reliability of the drive device 50.
[0053] In this embodiment, there are two transmission components 53, which are arranged opposite to each other on the main body component 31 to ensure the transmission stability of the transmission components 53.
[0054] like Figure 2 and Figure 6As shown, the display device 30 also includes a support component 33, which is disposed on the main body component 31 for rotatably mounting the display component 32. The driving device 50 also includes a connecting component 54, one end of which is rotatably connected to the end of the transmission component 53 away from the mating component 52, and the other end of which is rotatably connected to the display component 32. During the movement of the transmission component 53 along the extension direction of the driving component 51 driven by the mating component 52, the transmission component 53 drives the display component 32 to rotate via the connecting component 54. Thus, the driving component 51 drives the transmission component 53 along the extension direction of the driving component 51 by driving the mating component 52, thereby driving the connecting component 54 to rotate, and further driving the display component 32 to rotate, allowing the display component 32 to rotate into and out of the receiving cavity 311, realizing the switching of the display component 32 between the receiving state and the display state.
[0055] In this embodiment, there are two connecting components 54. The two connecting components 54 are rotatably connected to both ends of the display component 32 to provide balanced support for the display component 32 and ensure the connection stability of the connecting components 54, thereby achieving the rotational reliability of the display component 32.
[0056] like Figure 6 and Figure 7As shown, the supporting component 33 includes a supporting structure 331, a cover structure 332, and at least two opposing elastic structures 333. The display component 32 is rotatably mounted on the supporting structure 331, which has a connecting hole 3311 communicating with the receiving cavity 14 and located on the side of the display component 32 away from the driving component 51, for at least a portion of the receiving component 42 to pass through. The cover structure 332 covers the connecting hole 3311. At least two elastic structures 333 surround each other to form a receiving space 3331 for accommodating at least a portion of the receiving component 42. One end of each elastic structure 333 is connected to the supporting structure 331, and the other end is connected to the cover structure 332. When the receiving component 42 is in the extended state, at least a portion of the receiving component 42 passes through the connecting hole 3311, causing the cover structure 332 to separate from the connecting hole 3311. When the storage component 42 is in its initial state, the elastic structure 333 drives the cover structure 332 to cover the connecting hole 3311. In this way, the display component 32 is connected to the support component 33 via the support structure 331, and the storage component 42 connects its internal connecting wires to the display component 32 by extending out of the connecting hole 3311. Simultaneously, after the storage component 42 extends out of the connecting hole 3311, it lifts the cover structure 332 covering the connecting hole 3311. At this time, the elastic structure 333 is stretched. After the storage component 42 moves into the receiving cavity 14, the rebound force of the elastic structure 333 drives the cover structure 332 to reset, thus re-covering the connecting hole 3311. This prevents external dust and other impurities from entering the receiving cavity 14 through the connecting hole 3311, which could damage the main unit 20, thereby extending the service life of the main unit 20 and ensuring the cleanliness of the receiving cavity 14. Meanwhile, the elastic structure 333 can also help buffer external impacts, protect the cover structure 332, and extend the service life of the cover structure 332.
[0057] In this embodiment, the cover structure 332 is plate-shaped.
[0058] In this embodiment, the display component 32 is mounted on the support structure 331 via a pivot and a torsion spring.
[0059] In this embodiment, two elastic structures 333 are provided.
[0060] It should be noted that the number of elastic structures 333 is not limited to this and can be adjusted according to working conditions and usage requirements. Optionally, the number of elastic structures 333 can be three, four, seven, eight, nine, or more.
[0061] like Figure 7As shown, the storage assembly 42 includes a connecting structure 421, a storage structure 422, and a shielding structure 423. The connecting structure 421 is slidably disposed on the fixing assembly 41 and has a connecting recess 4211. The storage structure 422 is disposed on the connecting structure 421 and located within the connecting recess 4211 for each set of connecting wires to be wound around. The shielding structure 423 is rotatably disposed on the connecting structure 421 to shield at least a portion of the connecting recess 4211. Multiple storage structures 422 are provided, spaced apart along a predetermined direction. Thus, the storage assembly 42 is slidably disposed with the fixing assembly 41 via the connecting structure 421, the connecting recess 421 provides for accommodating the connecting wires, the storage structure 422 provides for orderly storage of the connecting wires, and the shielding structure 423 isolates the connecting wires from the outside environment, preventing damage to the connecting wires and extending their service life. Meanwhile, multiple storage structures 422 respectively store multiple connecting wires in a set of connecting wires, avoiding confusion and tangling of multiple connecting wires, improving the neatness of the connecting wires, shortening the time for staff to plug and connect the connecting wires, and improving the work efficiency of the staff.
[0062] In this embodiment, the storage structure 422 is a wire loop.
[0063] Specifically, the top of the connecting wire is snapped into the inside of the wire loop.
[0064] In this embodiment, four storage structures 422 are provided.
[0065] It should be noted that the number of storage structures 422 is not limited to this and can be adjusted according to working conditions and usage requirements. Optionally, the number of storage structures 422 can be three, five, seven, eight, nine, or more.
[0066] like Figure 3 and Figure 4As shown, the receiving device 10 includes a receiving structure 11, a shielding structure 12, and a heat dissipation structure. The receiving structure 11 includes two interconnected first plates 111 and second plates 112. Two first plates 111 are positioned opposite each other at the ends of the second plate 112, forming a receiving cavity 14 between them. Each first plate 111 has multiple first heat dissipation holes 1111, spaced apart along its length or width, and each hole communicates with the receiving cavity 14. Each second plate 112 has multiple second heat dissipation holes 1121, spaced apart along its length or width, and each hole communicates with the receiving cavity 14. The shielding structure 12 is rotatably mounted on one of the first plates 111 to shield the receiving cavity 14. A heat dissipation structure is provided on the first plate 111 and / or the second plate 112 to dissipate heat from the main unit 20. This arrangement of the shielding structure 12 allows operators to rotate it to access the main unit 20, while also preventing damage to the main unit 20 from external impurities, thus extending its service life. Simultaneously, the arrangement of the first heat dissipation hole 1111, the second heat dissipation hole 1121, and the heat dissipation structure enhances the heat dissipation efficiency of the main unit 20, ensuring its operational reliability.
[0067] In this embodiment, the heat dissipation structure is a heat dissipation fin.
[0068] Optionally, the housing 10 is also equipped with a fan to further improve heat dissipation efficiency.
[0069] like Figure 1 and Figure 4As shown, the housing device 10 also includes multiple covering structures 13. The multiple covering structures 13 are disposed on the first plate 111, and each covering structure 13 corresponds to a multiple first heat dissipation through-holes 1111. Each covering structure 13 includes a driving part 131 and a covering part 132. The driving part 131 and the covering part 132 are driven together to drive the covering part 132 to move toward or away from the driving part 131. The driving part 131 is electrically connected to the display component 32. When the display component 32 is in display mode, the driving part 131 drives the covering part 132 to move away from the driving part 131 to avoid the first heat dissipation through-holes 1111. When the display component 32 is in the housing mode, the driving part 131 drives the covering part 132 to move toward the driving part 131 to cover the first heat dissipation through-holes 1111. Thus, when the host device 20 is connected to the display device 30 and the display component 32 is in display mode, the cover structure 13 drives the cover part 132 through the drive part 131 to avoid the first heat dissipation hole 1111, thereby ensuring the heat dissipation efficiency of the display component 32. When the display device 30 is not working, the cover structure 13 drives the cover part 132 through the drive part 131 to cover the first heat dissipation hole 1111, thereby preventing external dust and other impurities from entering the receiving cavity 14 through the first heat dissipation hole 1111, thus protecting the host device 20 and extending its lifespan. At the same time, the way the cover structure 13 is set up means that the first heat dissipation hole 1111 corresponding to the unused display component 32 does not need to be opened, which not only ensures heat dissipation but also further prevents the entry of external dust and other impurities, realizing the intelligent setting of the receiving device 10.
[0070] In this embodiment, the drive unit 131 is an electric push rod.
[0071] In this embodiment, the covering portion 132 is plate-shaped.
[0072] like Figure 7As shown, the scheduling device also includes a power strip device 60 and a communication device 70. The power strip device 60 includes a power strip assembly 61 and a cover assembly 62. The power strip assembly 61 is disposed on the side of the display assembly 32 away from the drive assembly 51, so as to connect to a portion of the connecting lines of each group of connecting lines when the display assembly 32 is in the display state. The cover assembly 62 is movably disposed on the power strip assembly 61 for covering the power strip assembly 61. The communication device 70 is disposed on the transmission assembly 53 and slides with the transmission assembly 53 to connect to another portion of the connecting lines of each group of connecting lines when the display assembly 32 is in the display state. Thus, when the display assembly 32 is in the display state, the display assembly 32 is connected to the storage assembly 42 via the connecting line of the power strip assembly 61, simplifying the connection process, further improving the convenience of plugging and unplugging for operators, and increasing the work efficiency of operators. Simultaneously, the communication device 70 slides along the transmission assembly 53 to the display assembly 32 and connects to the connecting line of the storage assembly 42, thereby completing the connection between the host device 20 and multiple devices. Meanwhile, the way the cover component 62 is set up allows it to cover the power strip component 61 when the display component 32 is not in use, preventing external impurities from damaging the power strip component 61 and extending the service life of the power strip component 61.
[0073] Specifically, the power strip assembly 61 has a socket for connecting cables.
[0074] Specifically, based on the connection status between the host device 20 and multiple devices, the operator rotates the drive component 51 to move the cooperating component 52. The cooperating component 52, through the transmission component 53, drives the storage component 42 to slide along the fixed component 41. When the storage component 42 extends through the connecting hole 3311, it lifts the cover structure 332. At the same time, the connecting component 54 drives the display component 32 to rotate out of the accommodating cavity 311 until the display component 32 is perpendicular to the supporting structure 331. The operator then opens the cover component 62 of the plug-in device 60 on the back of the display component and slides the communication device 70 to the display component 32. Then, the connecting wires in the storage component 42 are connected to the communication device 70 and the plug-in component 61 respectively, thus completing the connection between the host device 20 and multiple devices. Simultaneously, the drive part 131 of the cover structure 13 drives the cover part 132 to avoid the first heat dissipation hole 1111. At this time, the first heat dissipation hole 1111, the second heat dissipation hole 1121, and the heat dissipation structure together ensure the heat dissipation of the scheduling device.
[0075] In this embodiment, the scheduling equipment has a power demand-side resource aggregation model scheduling method, which includes the following steps:
[0076] Step 1: Data preparation is obtained through the measured flexibility resource parameter acquisition module within the host device 20, including electricity market price data, basic constraints and operating parameter information of different demand-side load equipment, etc., and stored in the storage module inside the host device 20. The processing unit executes various functional applications and data processing by running the program stored in the system memory, thereby realizing the determination method of the precise aggregation model scheduling strategy of demand-side resources in the context of the electricity market. Under the premise of fully considering the feasible domain of various demand-side flexibility resources, the high-dimensional and large-scale aggregation of demand-side resources is realized, and decision-making and scheduling are carried out in the context of the electricity market. This not only improves the economic benefits of load aggregators but also effectively encourages flexible users to respond to demand.
[0077] Step 2: For the single-time flexibility constraints and multi-time coupling constraints of distributed flexibility resources, the feasible operating domain of a single device is characterized based on the Chino polyhedron;
[0078] Step 3: Based on the bottom-up aggregation approach, the feasible domains of individual devices are aggregated through MinkowskiSum operation to obtain a precise aggregated response model for demand-side resources;
[0079] Step 4: The aggregation model is handed over to the demand response aggregator. The measured parameters of the target flexible resource are input into the target decision model through the measured flexible resource scheduling output module in the host device 20 to obtain the scheduling output of the measured flexible resource. It directly participates in the wholesale market competition and establishes a bidding strategy optimization scheduling model with the goal of maximizing the aggregator's profits.
[0080] Step 5: Connect the host device 20 to the corresponding number of display components 32 and communication devices 70. Taking into full account the feasible domain of various demand-side flexibility resources, realize the high-dimensional and large-scale aggregation of demand-side resources, and make decision-making and scheduling in the context of the power market. While improving the economic benefits of load aggregators, it effectively encourages flexible users to respond to demand.
[0081] The host device 20 includes one or more processors or processing units, system memory, and a bus connecting different system components, including the system memory and processing units.
[0082] The host device 20 also includes a computer storage medium, which can be any combination of one or more computer-readable media. The computer-readable medium can be a computer-readable signal medium or a computer-readable storage medium. The computer-readable storage medium can be, for example, but not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or any combination thereof. More specific examples of computer-readable storage media (a non-exhaustive list) include: an electrical connection with one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof. In this document, a computer-readable storage medium can be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, device, or apparatus. A computer-readable signal medium can include a data signal propagated in baseband or as part of a carrier wave, carrying computer-readable program code. Such propagated data signals can take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. A computer-readable signal medium can also be a computer-readable storage medium. Any computer-readable medium other than a media that can send, propagate, or transmit a program for use by or in connection with an instruction execution system, apparatus, or device, wherein the program code contained on the computer-readable medium can be transmitted using any suitable medium, including but not limited to wireless, wire, optical fiber, RF, or any suitable combination thereof, and may be written in one or more programming languages or combinations thereof for performing the operations of the present invention, including object-oriented programming languages such as Java, Smalltalk, and C++, and conventional procedural programming languages such as the "C" language or similar programming languages, wherein the program code may be executed entirely on the user's computer, partially on the user's computer, as a stand-alone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server, wherein in the case of a remote computer, the remote computer may be connected to the user's computer via any kind of network including a local area network (LAN) or a wide area network (WAN), or may be connected to an external computer (e.g., via the Internet using an Internet service provider) to perform relevant operations in the method for determining the scheduling strategy of the demand-side resource precise aggregation model in the context of the provided electricity market.
[0083] As can be seen from the above description, the embodiments of the present invention achieve the following technical effects:
[0084] The receiving device of the scheduling equipment has a receiving cavity for accommodating the host device. Multiple display devices are disposed on the receiving device, spaced apart along a preset direction. The storage device includes a fixing component and a storage component, which slides in conjunction with the fixing component. The fixing component is disposed on the host device. Multiple storage devices are provided, each corresponding to one of the multiple display devices. The multiple storage components are used to store multiple sets of connection cables from the host device. Each storage component has an initial state and a delivery state. When the storage component is in the initial state, it is located within the receiving cavity. When the storage component is in the delivery state, at least a portion of the storage component slides out of the receiving cavity to connect each set of connection cables to the corresponding display device. In this way, multiple storage devices correspond to multiple display devices, each storing the connection cables of the main unit. When workers need to install the main unit and multiple devices, the storage component of the storage device delivers a set of connection cables from the main unit, allowing workers to directly plug the connection cables from the storage component into the corresponding display device. This reduces the complexity of operations, improves work efficiency, and solves the problem of low connection efficiency between the main unit and multiple devices in existing power dispatching equipment. Furthermore, after work, workers can return the connection cables to the storage device, protecting them from external environmental influences and extending their lifespan.
[0085] 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 exemplary embodiments according to this application. 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.
[0086] It should be noted that the terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that the embodiments of this application described herein can be implemented in sequences other than those illustrated or described herein.
[0087] 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. A scheduling device, characterized in that, include: The receiving device (10) has a receiving cavity (14) for receiving the main unit (20). Multiple display devices (30) are disposed on the receiving device (10), and the multiple display devices (30) are spaced apart along a preset direction; The storage device (40) includes a fixing component (41) and a storage component (42), wherein the storage component (42) is slidably engaged with the fixing component (41), and the fixing component (41) is disposed on the main unit (20); The storage device (40) is multiple, and the multiple storage devices (40) are arranged one-to-one with the multiple display devices (30). The multiple storage components (42) are used to store multiple sets of connecting wires of the host device (20). Each storage component (42) has an initial state and a delivery state. When the storage component (42) is in the initial state, the storage component (42) is located in the receiving cavity (14). When the storage component (42) is in the delivery state, at least part of the storage component (42) slides to the outside of the receiving cavity (14) to connect each set of connecting wires to the corresponding display device (30). The storage component (42) includes: A joining structure (421) is slidably disposed on the fixing component (41), the joining structure (421) having a joining recess (4211). A storage structure (422) is provided on the joint structure (421) and located within the joint recess (4211) for each set of the connecting wires to be wound around; A shielding structure (423) is rotatably disposed on the joining structure (421) for shielding at least part of the joining recess (4211). The storage structure (422) is multiple, and the multiple storage structures (422) are spaced apart along the preset direction.
2. The scheduling device according to claim 1, characterized in that, The display device (30) includes: The main body assembly (31) is disposed on the receiving device (10), and the main body assembly (31) has a receiving cavity (311). Display component (32) is disposed on the main component (31); The display component (32) has a display state and a receiving state. When the display component (32) is in the display state, the display component (32) is located outside the receiving cavity (311). When the display component (32) is in the receiving state, at least a portion of the display component (32) is located inside the receiving cavity (311).
3. The scheduling device according to claim 2, characterized in that, The scheduling device further includes a driving device (50) disposed on the main body component (31), the driving device (50) being driven connected to the storage component (42) to drive the storage component (42) to switch between the initial state and the delivery state; and / or, the driving device (50) being driven connected to the display component (32) to drive the display component (32) to switch between the display state and the containment state.
4. The scheduling device according to claim 3, characterized in that, The main body component (31) has a sliding hole (312), and the driving device (50) includes: A drive assembly (51) is rotatably mounted on the main body assembly (31); The mating component (52) is sleeved on the drive component (51) and threadedly engaged with the drive component (51); A transmission assembly (53) is disposed on the main body assembly (31) and located in the receiving cavity (311). One end of the transmission assembly (53) passes through the sliding hole (312) and is connected to the mating assembly (52). The other end of the transmission assembly (53) is connected to the storage assembly (42). The driving component (51) is driven to connect with the mating component (52). During the process of the driving component (51) driving the mating component (52) to move along the extension direction of the driving component (51), the mating component (52) drives the storage component (42) to move toward or away from the host device (20) through the transmission component (53).
5. The scheduling device according to claim 4, characterized in that, The display device (30) further includes a support component (33), which is disposed on the main body component (31) for rotatably mounting the display component (32); The drive device (50) further includes a connecting component (54), one end of which is rotatably connected to the end of the transmission component (53) away from the mating component (52), and the other end of which is rotatably connected to the display component (32); During the process of the mating component (52) driving the transmission component (53) to move along the extension direction of the driving component (51), the transmission component (53) drives the display component (32) to rotate through the connecting component (54).
6. The scheduling device according to claim 5, characterized in that, The carrier component (33) includes: The support structure (331) on which the display component (32) is rotatably disposed has a connecting hole (3311) communicating with the receiving cavity (14) and located on the side of the display component (32) away from the driving component (51) for at least a portion of the receiving component (42) to pass through. A cover structure (332) is provided on the connecting hole (3311); At least two opposing elastic structures (333) are arranged to form a receiving space (3331) between the at least two elastic structures (333) for receiving at least a portion of the storage component (42), one end of the elastic structure (333) is connected to the supporting structure (331), and the other end of the elastic structure (333) is connected to the cover structure (332). When the storage component (42) is in the delivery state, at least a portion of the storage component (42) passes through the connecting hole (3311) and causes the cover structure (332) to separate from the connecting hole (3311); when the storage component (42) is in the initial state, the elastic structure (333) causes the cover structure (332) to cover the connecting hole (3311).
7. The scheduling device according to claim 2, characterized in that, The receiving device (10) includes: The receiving structure (11) includes a first plate (111) and a second plate (112) connected to each other. There are two first plates (111), which are disposed opposite to each other at both ends of the second plate (112). The two first plates (111) and the second plate (112) surround each other to form the receiving cavity (14). The first plate (111) has a plurality of first heat dissipation holes (1111), which are spaced apart along the length or width direction of the first plate (111), and each first heat dissipation hole (1111) is connected to the receiving cavity (14). The second plate (112) has a plurality of second heat dissipation holes (1121), which are spaced apart along the length or width direction of the second plate (112), and each second heat dissipation hole (1121) is connected to the receiving cavity (14). A shielding structure (12) is rotatably disposed on one of the first plates (111) for shielding the receiving cavity (14). A heat dissipation structure is provided on the first plate (111) and / or the second plate (112) to dissipate heat from the host device (20).
8. The scheduling device according to claim 7, characterized in that, The receiving device (10) further includes: Multiple covering structures (13) are disposed on the first plate (111). The multiple covering structures (13) are disposed one-to-one with the multiple first heat dissipation holes (1111). Each of the covering structures (13) includes a driving part (131) and a covering part (132). The driving part (131) and the covering part (132) are drivenly connected to drive the covering part (132) to move toward or away from the driving part (131). The driving unit (131) is electrically connected to the display component (32). When the display component (32) is in the display state, the driving unit (131) drives the covering part (132) to move away from the driving unit (131) to avoid the first heat dissipation hole (1111). When the display component (32) is in the receiving state, the driving unit (131) drives the covering part (132) to move toward the driving unit (131) to cover the first heat dissipation hole (1111).
9. The scheduling device according to claim 5, characterized in that, The scheduling device also includes: The power strip device (60) includes a power strip assembly (61) and a cover assembly (62). The power strip assembly (61) is disposed on the side of the display assembly (32) away from the drive assembly (51) to connect to a portion of the connecting lines of each set of connecting lines when the display assembly (32) is in the display state. The cover assembly (62) is movably disposed on the power strip assembly (61) for covering the power strip assembly (61). A communication device (70) is disposed on the transmission assembly (53), the communication device (70) being slidably engaged with the transmission assembly (53) to connect to another portion of the connecting lines of each set of connecting lines when the display assembly (32) is in the display state.