User-side carbon emissions aggregation management system
By designing a user-side carbon emission aggregation management system, the system utilizes drive components and adaptive support legs to achieve stable removal and comprehensive maintenance of the computing module, thus solving the problem of computational failure in user-side carbon emission management, improving maintenance and repair efficiency, and ensuring the stable operation of the computing module through an air-cooling system.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- ZHEJIANG HUAYUN ELECTRIC POWER ENG DESIGN CONSULTATION CO LTD
- Filing Date
- 2025-10-31
- Publication Date
- 2026-05-07
AI Technical Summary
Existing technologies for managing carbon emissions on the user side have problems such as the instantaneous allocation of electricity and carbon emission sharing not conforming to the conservation of electricity and carbon emissions, leading to calculation failures, and lacking a management system that is easy to maintain and repair.
A user-side carbon emission aggregation management system was designed. Through the cooperation of drive components and adaptive support legs, the computing module can be stably removed and fully inspected. Equipped with a rotating mechanism and air-cooling system, the stability of the computing module and the efficiency of maintenance are ensured.
It enables the stable removal and comprehensive overhaul of the computing module, improving maintenance and repair efficiency, ensuring stable operation of the computing module after overhaul, and enhancing the operational stability of the computing module through air cooling.
Smart Images

Figure CN2025131670_07052026_PF_FP_ABST
Abstract
Description
A user-side carbon emission aggregation management system Technical Field
[0001] This invention relates to the field of low-carbon power technology, and more specifically, to a user-side carbon emission aggregation management system. Background Technology
[0002] With the deepening of electricity trading, electricity users can choose to trade directly with power plants. Although there are currently no explicit regulations in electricity trading, the indirect carbon emissions of the power system, as a parameter attached to electricity, should be traded along with the electricity. This introduces two problems for user-side carbon emissions. First, user electricity consumption is a cumulative process, while trading is an instantaneous process; how to allocate the instantaneously traded electricity to the user's actual electricity consumption? Second, directly allocating the carbon emissions corresponding to the traded electricity to users will violate the principles of energy conservation and carbon emission conservation at all relevant nodes, causing the calculation of carbon emission factor propagation to fail.
[0003] In the prior art, for example, the invention patent with patent application publication number CN117273766B discloses a method and apparatus for calculating the carbon emission allocation on the user side of a power system. The method includes: determining the user's indirect carbon emission factor based on the indirect carbon emission factor of the power plant trading within a predetermined time period, and determining the user's corresponding user transaction carbon emission amount within the predetermined time period based on the user's accumulated electricity consumption; calculating the on-grid transaction electricity of the power plant, including grid losses, within the predetermined time period, and determining the non-transactional electricity of the power plant based on the power plant's accumulated electricity consumption within the predetermined time period; using a carbon emission flow algorithm to calculate the user-side carbon emission factor based on the non-transactional electricity of the power plant; determining the user-side indirect carbon emission amount within the predetermined time period based on the user-side carbon emission factor and the user's electricity consumption; and determining the user-side carbon emission allocation amount within the predetermined time period based on the user's user transaction carbon emission amount and user-side indirect carbon emission amount.
[0004] Patent application publication number CN115330089B discloses a method for dynamic carbon monitoring and analysis of enterprise users based on big data in the power sector. The method includes: acquiring power carbon emission correction data, power activity description data, and power consumption change data corresponding to power operation data; obtaining user-side power carbon emission data based on self-generated power carbon emission correction data, regional power carbon emission correction data, self-generated power consumption change data, and input power consumption change data; obtaining user-side industrial carbon emission data based on fuel carbon emission correction data, industrial process carbon emission correction data, and power activity description data; and normalizing and integrating the power operation data based on user-side power carbon emission data, user-side industrial carbon emission data, self-generated power consumption change data, and input power consumption change data to obtain user-side per-unit electricity carbon emission correction data. This method ensures the compatibility and interoperability of data from different sources, promotes carbon emission correction tailored to industry characteristics, and improves the accuracy of enterprise carbon accounting.
[0005] All of the aforementioned existing technologies require the establishment of a management system to ensure stable operation of the computing system in terms of user-side carbon emissions. The management system needs to be equipped with management devices to facilitate maintenance, thereby ensuring that the entire system maintains stable and accurate operation.
[0006] Therefore, a user-side carbon emission aggregation management system that is easy to maintain and repair and ensures stable operation is proposed. Summary of the Invention
[0007] To overcome the aforementioned deficiencies of the prior art, the present invention provides a user-side carbon emission aggregation management system to solve the problems mentioned in the background art.
[0008] To achieve the above objectives, the present invention provides the following technical solution: a user-side carbon emission aggregation management system, comprising a cabinet and a cabinet door, wherein the cabinet door is provided on the front side of the cabinet, a bottom box is provided at the bottom of the cabinet, a top box is provided at the top of the cabinet, support frames are symmetrically installed inside the cabinet, and a slidingly mounted mobile platform is jointly supported at the top of the two support frames, a rotating mechanism is installed on the mobile platform, a computing module is supported at the top of the rotating mechanism, a drive component is installed on each support frame, and both drive components are connected to the bottom of the mobile platform, and adaptive support legs are symmetrically installed at the front end of the mobile platform.
[0009] When inspecting the computing module, after opening the cabinet door, the two drive components operate synchronously, and the meshing gear plates rotate simultaneously, causing the two gear plates to move synchronously. Meanwhile, the connecting parts on both sides of the moving platform drag the sliders along the slide rails, thus moving the moving platform out of the cabinet. During the movement of the moving platform, the adaptive legs automatically detect the distance to the ground and automatically extend, bringing the bottom of the adaptive legs into contact with the ground. This, in conjunction with the support frame, supports the moving platform, preventing instability of the overall center of gravity and ensuring the stability of the computing module during removal. It also prevents significant tilting forces between the moving platform and the support frame, and between the connecting parts and the slide rails, improving the smoothness of the sliding. After the moving platform is removed from the cabinet, the computing module is outside the cabinet, allowing technicians to directly inspect and maintain it, improving maintenance efficiency. Simultaneously, the rotation mechanism changes the orientation angle of the computing module, facilitating comprehensive inspection and ensuring thorough maintenance, thus guaranteeing stable operation of the computing module after inspection.
[0010] Preferably, each of the support frames is equipped with a slide rail on one side top, and multiple sliders are slidably mounted on each slide rail. Each slider has a connector bolted to its top, and the top of each connector is bolted to the moving platform.
[0011] Preferably, toothed plates are symmetrically mounted on the bottom of the mobile platform, and each toothed plate is engaged with a corresponding drive component.
[0012] Preferably, the rotating mechanism includes a first motor mounted on the bottom of the moving platform; a first rotating rod, the bottom of which is connected to the output end of the first motor, and the top of which extends through the moving platform and onto the top of the moving platform; and a turntable mounted on the top of the first rotating rod, with the computing module mounted on the turntable.
[0013] Preferably, the drive assembly includes a second motor mounted on one side of the support frame; a second rotating rod, one end of which is connected to the output end of the second motor; and a drive gear coaxially mounted on the second rotating rod, and the drive gear meshing with the bottom end of the corresponding gear plate.
[0014] Preferably, the drive assembly, toothed plate, slide rail, slider, and connector constitute a moving mechanism, which is used to move the moving platform.
[0015] Preferably, the adaptive outrigger includes a sleeve installed at the bottom of one end of the moving platform; a support rod inserted into the bottom end of the sleeve; a roller installed at the bottom end of the support rod; a rangefinder installed at the bottom of the front end of the sleeve; an electric actuator installed on one side of the bottom end of the sleeve; and a connecting block welded to one side of the support rod and connected to the bottom end of the telescopic arm of the electric actuator.
[0016] Preferably, the sleeve has a square internal structure, and the support rod is slidably inserted into the sleeve.
[0017] Preferably, an air intake fan facing the cabinet is installed in the bottom box, and an exhaust fan is installed in the top box, and both the bottom box and the top box are connected to the interior of the cabinet.
[0018] Preferably, the cabinet door has a through hole at the bottom, the corresponding bottom box has an air inlet window at the front end, and the top box has an exhaust window at the rear.
[0019] The technical effects and advantages of this invention are as follows: By configuring a first motor, a first rotating rod, a turntable, a second motor, a second rotating rod, a drive gear, a toothed plate, a slide rail, a slider, a connector, and a moving platform, compared with the prior art, the operation of the second motor enables the toothed plate to be subjected to a meshing force, thereby allowing the moving platform to move in and out of the cabinet under the guidance of the slide rail. This allows the computing module to be moved out of the cabinet, providing ample maintenance space around the computing module for easy maintenance. Furthermore, the operation of the first motor causes the turntable to rotate, which in turn causes the computing module to rotate, facilitating comprehensive inspection, ensuring thorough maintenance, and improving maintenance efficiency. By incorporating a sleeve, support rod, one-way roller, rangefinder, electric actuator, and connecting block, this technology, compared to existing technologies, allows the rangefinder to measure the distance to the ground. When the distance to the ground is significant, the electric actuator extends, causing the support rod connected to the connecting block to descend, thus enabling the roller to contact the ground. This ensures the mobile platform is supported by two adaptive outriggers and two support frames, guaranteeing its stability and preventing it from tilting forward due to an unstable center of gravity. Furthermore, each adaptive outrigger can be individually extended and retracted according to the ground structure, allowing it to adapt to any terrain and provide stable support for the mobile platform. Attached Figure Description
[0020] Figure 1 is a schematic diagram of the overall structure of the present invention.
[0021] Figure 2 is a side-view three-dimensional structural schematic diagram of the present invention.
[0022] Figure 3 is a schematic diagram of the connection structure of the computing module of the present invention.
[0023] Figure 4 is a schematic diagram of the mobile station connection structure of the present invention.
[0024] Figure 5 is a schematic diagram of the rotating mechanism of the present invention.
[0025] Figure 6 is a schematic diagram of the connection and cooperation structure between the drive component and the bottom of the mobile station of the present invention.
[0026] Figure 7 is a schematic diagram of the sliding connection structure on both sides of the mobile platform of the present invention.
[0027] Figure 8 is a schematic diagram of the adaptive support leg of the present invention.
[0028] Figure 9 is a schematic diagram of the operation structure of the computing module of the present invention.
[0029] The attached diagram is labeled as follows: 1. Cabinet body; 2. Cabinet door; 3. Bottom box; 4. Top box; 5. Support frame; 6. Moving platform; 7. Rotating mechanism; 701. First motor; 702. First rotating rod; 703. Turntable; 8. Calculation module; 9. Drive assembly; 901. Second motor; 902. Second rotating rod; 903. Drive gear; 10. Adaptive support leg; 1001. Sleeve; 1002. Support rod; 1003. Roller; 1004. Rangefinder; 1005. Electric actuator; 1006. Connecting block; 11. Slide rail; 12. Toothed plate; 13. Slider; 14. Connecting component. Detailed Implementation
[0030] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0031] As shown in Figures 1-9, a user-side carbon emission aggregation management system includes a cabinet 1 and a cabinet door 2. The cabinet door 2 is located on the front side of the cabinet 1. A bottom box 3 is located at the bottom of the cabinet 1, and a top box 4 is located at the top of the cabinet 1. Support frames 5 are symmetrically installed inside the cabinet 1. The tops of the two support frames 5 jointly support a slidingly mounted mobile platform 6. A rotating mechanism 7 is installed on the mobile platform 6. A computing module 8 is supported at the top of the rotating mechanism 7. A drive component 9 is installed on each support frame 5. Both drive components 9 are connected to the bottom of the mobile platform 6. Adaptive support legs 10 are symmetrically installed on the front end of the mobile platform 6. A slide rail 11 is installed on one side of the top of each support frame 5. Multiple sliders 13 are slidably installed on each slide rail 11. A connector 14 is bolted to the top of each slider 13. The top of each connector 14 is bolted to the mobile platform 6. Toothed plates 12 are symmetrically installed at the bottom of the mobile platform 6. Each toothed plate 12 is engaged with a corresponding drive component 9.
[0032] In specific implementation, when the computing module 8 is being inspected, after the cabinet door 2 is opened, the two drive components 9 operate synchronously, and the meshing toothed plate 12 rotates, so that the two toothed plates 12 move synchronously. Meanwhile, the connecting parts 14 on both sides of the moving platform 6 drag the slider 13 to move on the slide rail 11, thereby moving the moving platform 6 out of the cabinet 1. During the process of moving the moving platform 6 out, the adaptive support leg 10 automatically detects the distance between itself and the ground and automatically extends, so that the bottom of the adaptive support leg 10 contacts the ground, thereby cooperating with the support frame 5 to support the moving platform 6, avoiding instability of the overall center of gravity of the moving platform 6, thus ensuring the stability of the computing module 8 when it is moved out, avoiding large tilting forces between the moving platform 6 and the support frame 5, and between the connecting parts 14 and the slide rail 11, and improving the smoothness of sliding. After the mobile platform 6 is moved out of the cabinet 1, the computing module 8 is placed outside the cabinet 1, which makes it convenient for technicians to directly inspect and maintain the computing module 8, improving the efficiency of maintenance and inspection. At the same time, the rotation mechanism 7 can change the orientation angle of the computing module 8, which makes it easier for technicians to carry out all-round inspection of the computing module 8, ensuring that the inspection of the computing module 8 is thorough and that the computing module 8 can operate stably after inspection.
[0033] As shown in Figure 5, the rotating mechanism 7 includes a first motor 701, which is mounted on the bottom of the moving platform 6; a first rotating rod 702, the bottom of which is connected to the output end of the first motor 701, and the top end of which extends through the moving platform 6 and onto the top of the moving platform 6; and a turntable 703, which is mounted on the top end of the first rotating rod 702, and the computing module 8 is mounted on the turntable 703.
[0034] When inspecting and repairing the computing module 8 from multiple angles, the first motor 701 can be operated to drive the first rotating rod 702 to rotate the turntable 703, thereby causing the computing module 8 installed on the turntable 703 to rotate as well. This facilitates comprehensive inspection, ensures thorough repair, and improves maintenance efficiency.
[0035] As shown in Figures 3 and 6, the drive assembly 9 includes a second motor 901, which is mounted on one side of the support frame 5; a second rotating rod 902, one end of which is connected to the output end of the second motor 901; and a drive gear 903, which is coaxially mounted on the second rotating rod 902 and meshes with the bottom end of the corresponding toothed plate 12.
[0036] The drive assembly 9, toothed plate 12, slide rail 11, slider 13 and connecting member 14 constitute a moving mechanism, which is used to move the moving platform 6.
[0037] In specific implementation, the second motor 901 in the two drive components 9 runs synchronously, causing the second rotating rod 902 to rotate, thereby driving the drive gear 903 to mesh with the toothed plate 12 to rotate, so that the toothed plate 12 can drag the moving platform 6 under the guidance of the two slide rails 11, thereby moving the moving platform 6 out or in the cabinet 1.
[0038] As shown in Figure 8, the adaptive outrigger 10 includes a sleeve 1001, which is installed at the bottom of one end of the moving platform 6; a support rod 1002, which is inserted into the bottom end of the sleeve 1001; a roller 1003, which is installed at the bottom end of the support rod 1002; a rangefinder 1004, which is installed at the bottom of the front end of the sleeve 1001; an electric actuator 1005, which is installed on one side of the bottom end of the sleeve 1001; and a connecting block 1006, which is welded to one side of the support rod 1002 and connected to the bottom end of the telescopic arm of the electric actuator 1005.
[0039] The sleeve 1001 has a square internal structure, and the support rod 1002 is slidably inserted into the sleeve 1001.
[0040] In practice, during the process of moving the mobile platform 6 out of or into the cabinet 1, the rangefinder 1004 measures the distance to the ground. When the distance to the ground is far, the electric push rod 1005 extends, causing the support rod 1002 connected to the connecting block 1006 to descend, so that the roller 1003 can contact the ground. This ensures that the mobile platform 6 is supported by two adaptive support legs 10 and two support frames 5, ensuring the stability of the mobile platform 6 and preventing the mobile platform 6 from tilting forward due to an unstable center of gravity.
[0041] As shown in Figures 1 and 2, an air intake fan facing the cabinet 1 is installed in the bottom box 3, and an exhaust fan is installed in the top box 4. Both the bottom box 3 and the top box 4 are connected to the interior of the cabinet 1. A through hole is opened at the bottom of the cabinet door 2, and an air intake window is opened at the front end of the bottom box 3. An exhaust window is provided on the rear side of the top box 4.
[0042] In practice, when the computing module 8 is running, the intake fan in the bottom box 3 and the exhaust fan in the top box 4 operate synchronously, allowing outside air to enter the air inlet window through the through hole and then enter the bottom box 3 through the air inlet window. Under the action of the intake fan, the air is blown into the cabinet 1, thereby absorbing the heat generated by the computing module 8. Under the action of the exhaust fan, the heat-absorbing air enters the top box 4 and is discharged from the exhaust window, forming a one-way air duct, improving the air cooling effect, thereby avoiding the impact of temperature on the operation of the computing module 8 and further improving the stability of the operation of the computing module 8.
[0043] As shown in Figure 9, when the calculation module 8 is running, it acquires the target user's electricity load, transformer topology, and electricity transaction information of the power grid in real time; calculates the network loss information of the transformer area where the target user is located based on the transformer topology of the target user; calculates the dynamic carbon emission factor based on the electricity transaction information, network loss information, and preset carbon emission factor; and finally calculates the target user's carbon emissions based on the dynamic carbon emission factor and the electricity load.
[0044] Finally, several points should be noted: First, in the description of this invention, it should be noted that, unless otherwise specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly, and can refer to mechanical or electrical connections, or internal communication between two components, or direct connection. Terms such as "upper," "lower," "left," and "right" are only used to indicate relative positional relationships; when the absolute position of the described object changes, the relative positional relationship may change. Second, the accompanying drawings of the embodiments disclosed in this invention only involve structures relevant to the embodiments disclosed in this invention. Other structures can refer to common designs. Where there is no conflict, the same embodiment and different embodiments of this invention can be combined with each other. Finally, the above descriptions are merely preferred embodiments of this invention and are not intended to limit this invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this invention should be included within the scope of protection of this invention.
Claims
1. A user-side carbon emission aggregation management system, comprising a cabinet (1) and a cabinet door (2), wherein the cabinet (1) has a cabinet door (2) on its front side, characterized in that: The cabinet (1) has a bottom box (3) at the bottom and a top box (4) at the top. Support frames (5) are symmetrically installed inside the cabinet (1). The tops of the two support frames (5) jointly support a sliding platform (6). A rotating mechanism (7) is installed on the platform (6). A computing module (8) is supported at the top of the rotating mechanism (7). A drive component (9) is installed on each support frame (5). The two drive components (9) are connected to the bottom of the platform (6). Adaptive support legs (10) are symmetrically installed at the front end of the platform (6).
2. The user-side carbon emission aggregation management system according to claim 1, characterized in that: Each of the support frames (5) has a slide rail (11) installed on one side top, and multiple sliders (13) are slidably installed on each slide rail (11). Each slider (13) has a connector (14) bolted to its top, and each connector (14) has its top bolted to the moving platform (6).
3. The user-side carbon emission aggregation management system according to claim 2, characterized in that: The bottom end of the mobile platform (6) is symmetrically equipped with toothed plates (12), and each toothed plate (12) is engaged with the corresponding drive assembly (9).
4. The user-side carbon emission aggregation management system according to claim 3, characterized in that: The rotating mechanism (7) includes a first motor (701), which is mounted on the bottom of the moving platform (6); The first rotating rod (702) has its bottom end connected to the output end of the first motor (701), and its top end extends through the moving platform (6) to the top end of the moving platform (6). A turntable (703) is mounted on the top of the first rotating rod (702), and the computing module (8) is mounted on the turntable (703).
5. The user-side carbon emission aggregation management system according to claim 4, characterized in that: The drive assembly (9) includes a second motor (901), which is mounted on one side of the support frame (5); The second rotating rod (902) has one end connected to the output end of the second motor (901); A drive gear (903) is coaxially mounted on the second rotating rod (902), and the drive gear (903) meshes with the bottom end of the corresponding toothed plate (12).
6. The user-side carbon emission aggregation management system according to claim 5, characterized in that: The drive assembly (9), toothed plate (12), slide rail (11), slider (13) and connector (14) constitute a moving mechanism, which is used to move the moving platform (6).
7. The user-side carbon emission aggregation management system according to claim 6, characterized in that: The adaptive outrigger (10) includes a sleeve (1001), which is installed at the bottom of one end of the moving platform (6); Support rod (1002), said support rod (1002) is inserted into the bottom end of sleeve (1001); A roller (1003) is mounted on the bottom end of a support rod (1002); A rangefinder (1004) is mounted on the bottom front end of the sleeve (1001); An electric actuator (1005) is mounted on one side of the bottom end of a sleeve (1001); A connecting block (1006) is welded to one side of the support rod (1002) and is connected to the bottom end of the telescopic arm of the electric actuator (1005).
8. The user-side carbon emission aggregation management system according to claim 7, characterized in that: The sleeve (1001) has a square internal structure, and the support rod (1002) is slidably inserted into the sleeve (1001).
9. The user-side carbon emission aggregation management system according to claim 8, characterized in that: The bottom box (3) is equipped with an air intake fan facing the cabinet (1), and the top box (4) is equipped with an exhaust fan. Both the bottom box (3) and the top box (4) are connected to the interior of the cabinet (1).
10. A user-side carbon emission aggregation management system according to claim 9, characterized in that: The cabinet door (2) has a through hole at the bottom, the bottom box (3) has an air inlet window at the front, and the top box (4) has an exhaust window at the rear.
Citation Information
Patent Citations
User side carbon emission polymerization management system
CN119584474A
Reactive compensation cabinet convenient to overhaul
CN216289657U
JP cabinet convenient to overhaul
CN221080727U
Electrical power distribution cabinet
CN221380109U