Digitalized electric energy metering mobile detection platform
By designing transmission, shock absorption, and fixing components, the mobility and convenience issues of the digital power metering and testing platform were resolved, enabling accurate testing and convenient relocation.
Patent Information
- Application Number
- CN202510281757.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-11
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2045-03-11
AI Technical Summary
Existing digital electricity metering and testing platforms are generally fixed and cannot be moved, which leads to increased testing errors and inconvenience in relocation.
A digital power metering mobile detection platform was designed, comprising a transmission component, a shock absorption component, a fixing component, and a folding structure. The transmission component enables horizontal displacement, the shock absorption component reduces the impact of vibration, the fixing component provides stability, and the folding structure facilitates the application of force.
This has improved the mobility and detection accuracy of the digital power metering and testing platform, reduced detection errors, and increased the ease of equipment movement.
Smart Images

Figure CN120122052B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of mobile detection, and in particular relates to a digital energy metering mobile detection platform. Background Technology
[0002] A digital mobile energy metering platform is a system that uses digital technology and mobile devices to detect and manage energy metering. This platform typically combines modern information technology, communication technology, and power measurement technology to improve the accuracy and efficiency of energy metering. The following are some key components and functional characteristics:
[0003] 1. Key components
[0004] a. Mobile detection equipment:
[0005] Portable electricity meter tester: used to test the accuracy and performance of electricity meters;
[0006] Smart terminals, such as tablets or mobile phones, are equipped with detection software to record and analyze detection data.
[0007] b. Digital electricity meters:
[0008] Smart meters integrate digital technology, enabling them to record electricity data in real time and transmit the data to a central system via a communication interface.
[0009] c. Data acquisition and transmission system:
[0010] Wireless communication modules, such as GSM, 3G / 4G, and Wi-Fi, are used for real-time data transmission.
[0011] Data processing platform: A central server or cloud platform used to store, analyze, and manage data.
[0012] d. Analysis and reporting tools:
[0013] Data analysis software: performs statistical analysis on the collected data and generates detailed reports;
[0014] Visualization tools: Charts and dashboards are used to display electricity usage and monitoring results.
[0015] 2. Functional characteristics
[0016] a. Real-time monitoring and detection:
[0017] It can acquire the meter readings in real time and detect the meter's operating status and accuracy.
[0018] During the testing process, multiple parameters of the meter can be monitored, such as voltage, current, and power factor.
[0019] b. Data collection and recording:
[0020] It automatically records data from each test, including meter readings, test time, location, and other information.
[0021] Generate historical data records for easy tracking and analysis.
[0022] c. Remote management and maintenance:
[0023] Remote detection and management are supported through wireless communication technology;
[0024] It allows for remote configuration, calibration, and troubleshooting of electricity meters.
[0025] d. Data analysis and report generation:
[0026] Statistical analysis of the collected data is performed to identify anomalies;
[0027] Generate detailed test reports, including accuracy assessments and performance analyses of the electricity meters.
[0028] e. Improve inspection efficiency:
[0029] Mobile testing platforms can significantly improve the efficiency of electricity meter inspection and reduce manual inspection time;
[0030] Supports batch testing, increasing the testing coverage.
[0031] A digital energy metering mobile testing platform, disclosed in publication number CN208172237U, includes a vehicle body fixing plate, an L-shaped shock-absorbing frame, anti-vibration connectors, an equipment cabinet, and a testing operation table. The vehicle body fixing plate is used for rigid fixation between the platform and the transport vehicle. The L-shaped shock-absorbing frame is installed on the upper surface of the vehicle body fixing plate through rear and front fixing parts. The equipment cabinet and testing operation table are installed on the L-shaped shock-absorbing frame. The equipment cabinet and testing operation table are supported on the L-shaped shock-absorbing frame through anti-vibration connectors to achieve good vibration resistance for the core equipment. The bottom of the L-shaped shock-absorbing frame is also equipped with a forklift forklift structure and support casters to facilitate the use of forklift handling equipment and manual handling equipment.
[0032] Existing digital mobile energy metering and detection platforms still have the following shortcomings:
[0033] 1. Since electricity is used in a wide range of places, the locations that require electricity metering will also be different. However, digital electricity metering and testing platforms are generally set up as fixed ones, requiring components to be sent to the testing site for testing. They cannot move the device to test the components on site.
[0034] 2. The testing standards for digital energy metering and testing platforms are required to be very precise, so the design of their internal testing components is also quite sophisticated. During the movement of the digital energy metering and testing platform, various situations may occur, leading to equipment vibration and increasing the testing error of the digital energy metering and testing platform.
[0035] 3. Due to its size, the digital power metering and testing platform is difficult to move, which makes it inconvenient to move the equipment. Summary of the Invention
[0036] The purpose of this invention is to address the problem that the digital energy metering and testing platforms mentioned in the background art are generally fixed, requiring components to be transported to the testing site for testing, and cannot be moved to test components on-site. During the movement of the digital energy metering and testing platform, various situations may occur, leading to equipment vibration, which can easily increase the testing error of the digital energy metering and testing platform. Due to the size of the digital energy metering and testing platform, it is not easy to apply force to it during movement, thus causing inconvenience in moving the equipment. Therefore, this invention provides a mobile digital energy metering and testing platform.
[0037] To achieve the above objectives, the present invention adopts the following technical solution: a digital energy metering mobile detection platform, comprising a carriage, two slide rails fixedly connected to the inner bottom surface of the carriage, baffles fixedly connected to the sides of the slide rails, a slide plate disposed above the slide rails, the protruding end of the lower end of the slide plate being slidably connected to the slide rails, a transmission assembly disposed on the inner side of the carriage, a detection device disposed above the carriage, a shock-absorbing assembly disposed on the lower surface of the detection device, a fixing assembly disposed above the detection device, and a folding assembly disposed on the side of the detection device.
[0038] Furthermore, the transmission assembly includes a driving gear and a driven gear, both of which are rotatably connected to the inner side of the carriage. A transmission track is provided on the outer side of the driving gear and the driven gear. The driving gear and the driven gear are connected to the inner side of the transmission track by serrated meshing, and the serrated teeth are fixedly connected to the inner side of the transmission track.
[0039] Furthermore, a No. 1 motor is fixedly connected to the inner bottom surface of the carriage. The output end of the No. 1 motor is fixedly connected to the side of the driving gear. A reciprocating screw is fixedly connected to the side of the driven gear. The end of the reciprocating screw is fixedly connected to the side of the baffle. The reciprocating screw passes through and is threaded into the slide plate.
[0040] Furthermore, the shock absorption assembly includes shock absorption air rods, four of which are fixedly connected to the bottom surface of the detection device. A fixing plate is fixedly connected to the bottom surface of each shock absorption air rod, and a spring is fixedly connected between the fixing plate and the detection device. A turntable is rotatably connected to the lower surface of the fixing plate, and a base frame is fixedly connected to the lower surface of the turntable. Rollers are rotatably connected to the inner side of the base frame.
[0041] Furthermore, the fixing assembly includes two top frames, which are fixedly connected to the inner top surface of the carriage. The top frames are located on the side of the carriage near the exit end. A hydraulic press is rotatably connected inside the top frames. A second motor is arranged between the two top frames. The second motor is fixedly connected to the inner top surface of the carriage. The two output ends of the second motor pass through the sides of the top frames and are fixedly connected to the sides of the hydraulic press.
[0042] Furthermore, two No. 1 fixing frames are fixedly connected to the upper surface of the detection device, and a hydraulic rod is fixedly connected to the output end of the hydraulic press. The end of the hydraulic rod is rotatably connected to the inside of the No. 1 fixing frame.
[0043] Furthermore, vertical grooves are provided on both sides of the detection device, and two arc-shaped grooves are provided on the side of the grooves. The inner diameters of the two arc-shaped grooves are equal, but the arc lengths of the two arc-shaped grooves are different.
[0044] Furthermore, the folding structure includes an arc-shaped side plate, and two connecting columns are slidably connected in the groove. The diameter of the connecting columns is equal to the width of the arc-shaped groove. The outer side of the connecting columns is fixedly connected to the side of the arc-shaped side plate, and a fixing rod is fixedly connected between the two arc-shaped side plates.
[0045] Compared with existing technologies, the advantages of this digital mobile power metering and detection platform are:
[0046] 1. This invention sets up a transmission assembly inside the carriage. A No. 1 motor controls the rotation of the drive gear, which in turn drives the driven gear and reciprocating screw to rotate via the transmission track. The reciprocating screw then controls the displacement of the slide plate within the carriage, thereby controlling the horizontal displacement of the detection device. A fixing assembly is set above the detection device. When the detection device is stored in the carriage, it is fixed by a hydraulic rod. When the detection device is moved and transported, the extension length of the hydraulic rod can be controlled, and the hydraulic press can also rotate freely inside the top frame. When the detection device is moved out of the carriage, the hydraulic press and hydraulic rod can provide additional auxiliary pulling force for the detection device. After the detection device is moved out of the carriage, it is only necessary to move the hydraulic rod out of the No. 1 fixing frame to achieve free movement of the detection device.
[0047] 2. By setting a shock-absorbing component below the detection device, when the detection device is moved, the turntable, base frame and rollers set below facilitate the turning and movement of the detection device. The shock-absorbing air rod and spring can absorb the vibration potential energy, thereby reducing the impact of vibration on the detection device.
[0048] 3. By setting up a folding structure, when the detection device needs to be moved, the fixed rod can be pulled upward to move the arc-shaped side plate, thereby controlling the connecting column to slide in the groove. Then, the fixed rod can be pulled horizontally to control the upper connecting column to slide into the arc-shaped groove, thereby realizing the unfolding of the fixed rod, which makes it easier to apply force during the movement of the detection device. Attached Figure Description
[0049] Figure 1 This is a schematic diagram of the front structure of a digital energy metering mobile detection platform provided by the present invention;
[0050] Figure 2 This is a structural schematic diagram of the interior cross-section of a digital energy metering mobile detection platform provided by the present invention.
[0051] Figure 3 yes Figure 2 Enlarged view of section A;
[0052] Figure 4 This is a schematic diagram of the bottom transmission component of a digital energy metering mobile detection platform provided by the present invention;
[0053] Figure 5 This is a schematic diagram of the side slide groove of a digital energy metering mobile detection platform provided by the present invention;
[0054] Figure 6 yes Figure 5 Enlarged view of section B.
[0055] In the diagram, 1 is the carriage, 2 is the slide rail, 3 is the baffle, 4 is the drive gear, 5 is the driven gear, 6 is the transmission track, 7 is the saw tooth, 8 is the No. 1 motor, 9 is the reciprocating lead screw, 10 is the sliding plate, 11 is the top frame, 12 is the hydraulic press, 13 is the No. 2 motor, 14 is the No. 1 fixed frame, 15 is the hydraulic rod, 16 is the detection device, 17 is the slide groove, 18 is the arc groove, 19 is the connecting column, 20 is the arc side plate, 21 is the fixed rod, 22 is the shock absorber air rod, 23 is the fixed plate, 24 is the spring, 25 is the turntable, 26 is the base frame, and 27 is the roller. Detailed Implementation
[0056] The following examples are for illustrative purposes only and are not intended to limit the scope of the invention.
[0057] like Figures 1-6As shown, a digital energy metering mobile testing platform includes a carriage 1. Two slide rails 2 are fixedly connected to the inner bottom surface of the carriage 1. Baffles 3 are fixedly connected to the sides of the slide rails 2. A sliding plate 10 is provided above the slide rails 2. The protruding end of the lower end of the sliding plate 10 is slidably connected to the slide rail 2. A transmission component is provided on the inner side of the carriage 1. A testing device 16 is provided above the carriage 1. A shock-absorbing component is provided on the lower surface of the testing device 16. A fixing component is provided above the testing device 16. A folding component is provided on the side of the testing device.
[0058] The transmission assembly includes a drive gear 4 and a driven gear 5. Both the drive gear 4 and the driven gear 5 are rotatably connected to the inner side of the carriage 1. A transmission track 6 is provided on the outer side of the drive gear 4 and the driven gear 5. The drive gear 4 and the driven gear 5 are meshed with the inner side of the transmission track 6 through serrations 7. The serrations 7 are fixedly connected to the inner side of the transmission track 6.
[0059] A No. 1 motor 8 is fixedly connected to the inner bottom surface of the carriage 1. The output end of the No. 1 motor 8 is fixedly connected to the side of the drive gear 4. A reciprocating screw 9 is fixedly connected to the side of the driven gear 5. The end of the reciprocating screw 9 is fixedly connected to the side of the baffle 3. The reciprocating screw 9 passes through and is threaded into the slide plate 10. By setting a transmission assembly inside the carriage 1, the No. 1 motor 8 controls the drive gear 4 to rotate, which in turn drives the driven gear 5 and the reciprocating screw 9 to rotate by the transmission track 6. Thus, the reciprocating screw 9 controls the displacement of the slide plate 10 inside the carriage 1, thereby realizing the horizontal displacement of the control detection device 16.
[0060] The shock absorption assembly includes shock absorption air rods 22, four of which are fixedly connected to the bottom surface of the detection device 16. A fixing plate 23 is fixedly connected to the bottom surface of each shock absorption air rod 22. A spring 24 is fixedly connected between the fixing plate 23 and the detection device 16. A turntable 25 is rotatably connected to the lower surface of the fixing plate 23. A base frame 26 is fixedly connected to the lower surface of the turntable 25. A roller 27 is rotatably connected to the inner side of the base frame 26.
[0061] The fixing assembly includes two top frames 11, which are fixedly connected to the inner top surface of the carriage 1. The top frames 11 are located on the side of the carriage 1 near the exit end. A hydraulic press 12 is rotatably connected inside the top frames 11. A second motor 13 is arranged between the two top frames 11. The second motor 13 is fixedly connected to the inner top surface of the carriage 1. The output ends of the second motor 13 pass through the sides of the top frames 11 and are fixedly connected to the sides of the hydraulic press 12. By setting a shock-absorbing assembly below the detection device 16, when the detection device 16 is pushed, the turntable 25, the base frame 26 and the rollers 27 set below facilitate the turning and movement of the detection device 16. The vibration potential energy can be absorbed by the shock-absorbing air rod 22 and the spring 24, thereby reducing the impact of vibration on the detection device 16.
[0062] The upper surface of the detection device 16 is fixedly connected to two first fixing frames 14. The output end of the hydraulic press 12 is fixedly connected to a hydraulic rod 15. The end of the hydraulic rod 15 is rotatably connected to the inside of the first fixing frame 14. By setting a fixing component above the detection device 16, when the detection device is stored in the carriage, the hydraulic rod 15 fixes the detection device 16. When the detection device 16 is moved and transported, the extension length of the hydraulic rod 15 can be controlled, and the hydraulic press 12 can also rotate freely inside the top frame 11. When the detection device 16 is moved out of the carriage, the hydraulic press 12 and the hydraulic rod 15 can also provide additional auxiliary pulling force for the detection device. After the detection device 16 is moved out of the carriage 1, it is only necessary to move the hydraulic rod 15 out of the first fixing frame 14 to realize the free movement of the detection device.
[0063] The detection device 16 has vertical grooves 17 on both sides, and two arc-shaped grooves 18 are provided on the side of the grooves 17. The inner diameters of the two arc-shaped grooves 18 are equal, and the arc lengths of the two arc-shaped grooves 18 are different.
[0064] The folding structure includes an arc-shaped side plate 20. Two connecting columns 19 are slidably connected within the groove 17. The diameter of the connecting column 19 is equal to the width of the arc-shaped groove 18. The outer side of the connecting column 19 is fixedly connected to the side of the arc-shaped side plate 20. A fixing rod 21 is fixedly connected between the two arc-shaped side plates 20. By setting the folding structure, when it is necessary to move the detection device 16, the fixing rod 21 can be pulled upward to move the arc-shaped side plate 20, thereby controlling the connecting column 19 to slide within the groove 17. Then, the fixing rod 21 can be pulled horizontally to control the upper connecting column 19 to slide into the arc-shaped groove 18, thereby unfolding the fixing rod 21. This facilitates the application of force during the movement of the detection device 16.
[0065] The working principle of this invention is as follows:
[0066] By setting the transmission assembly inside the carriage 1, the drive gear 4 is rotated by the No. 1 motor 8, which in turn drives the driven gear 5 and the reciprocating screw 9 to rotate by the transmission track 6. The reciprocating screw 9 then controls the slide plate 10 to move within the carriage 1, thereby achieving the horizontal displacement of the control detection device 16.
[0067] By setting a fixing component above the detection device 16, the detection device 16 is fixed by the hydraulic rod 15 when the detection device is stored in the carriage. When the detection device 16 is moved and transported, the extension length of the hydraulic rod 15 can be controlled, and the hydraulic press 12 can also rotate freely inside the top frame 11. When the detection device 16 is moved out of the carriage, the hydraulic press 12 and the hydraulic rod 15 can also provide additional auxiliary pulling force for the detection device. After the detection device 16 is moved out of the carriage 1, the hydraulic rod 15 only needs to be moved out of the first fixing frame 14 to realize the free movement of the detection device.
[0068] By installing shock-absorbing components below the detection device 16, when the detection device 16 is pushed, the turntable 25, base frame 26 and roller 27 installed below facilitate the turning and movement of the detection device 16. The shock-absorbing air rod 22 and spring 24 can absorb the vibration potential energy, thereby reducing the impact of vibration on the detection device 16.
[0069] By setting up a folding structure, when the detection device 16 needs to be moved, the fixing rod 21 can be pulled upward to move the arc-shaped side plate 20, thereby controlling the connecting column 19 to slide in the slide groove 17. Then, the fixing rod 21 can be pulled horizontally to control the upper connecting column 19 to slide into the arc-shaped groove 18, thereby realizing the unfolding of the fixing rod 21, which makes it easier to apply force during the process of moving the detection device 16.
[0070] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A digital mobile energy metering and detection platform, characterized in that, The system includes a carriage (1), with two slide rails (2) fixedly connected to the inner bottom surface of the carriage (1), baffles (3) fixedly connected to the sides of the slide rails (2), a slide plate (10) provided above the slide rails (2), the protruding end of the lower end of the slide plate (10) being slidably connected to the slide rails (2), a transmission assembly provided on the inner side of the carriage (1), a detection device (16) provided above the carriage (1), a shock-absorbing assembly provided on the lower surface of the detection device (16), a fixing assembly provided above the detection device (16), and a folding assembly provided on the side of the detection device. The fixing assembly includes two top frames (11), which are fixedly connected to the inner top surface of the carriage (1). The top frames (11) are located on the side of the carriage (1) near the exit end. A hydraulic press (12) is rotatably connected inside the top frame (11). A second motor (13) is arranged between the two top frames (11). The second motor (13) is fixedly connected to the inner top surface of the carriage (1). The output ends of the second motor (13) pass through the sides of the top frame (11) and are fixedly connected to the sides of the hydraulic press (12). Two first fixing frames (14) are fixedly connected to the upper surface of the detection device (16). A hydraulic rod (15) is fixedly connected to the output end of the hydraulic press (12). The end of the hydraulic rod (15) is rotatably connected to the inside of the first fixing frame (14). When the detection device is removed, the hydraulic press (12) and the hydraulic rod (15) provide additional auxiliary pulling force for the detection device.
2. The digital energy metering mobile detection platform according to claim 1, characterized in that, The transmission assembly includes a drive gear (4) and a driven gear (5). The drive gear (4) and the driven gear (5) are rotatably connected to the inner side of the carriage (1). A transmission track (6) is provided on the outer side of the drive gear (4) and the driven gear (5). The drive gear (4) and the driven gear (5) are connected to the inner side of the transmission track (6) by meshing through saw teeth (7). The saw teeth (7) are fixedly connected to the inner side of the transmission track (6).
3. The digital energy metering mobile detection platform according to claim 2, characterized in that, A No. 1 motor (8) is fixedly connected to the inner bottom surface of the carriage (1). The output end of the No. 1 motor (8) is fixedly connected to the side of the driving gear (4). A reciprocating screw (9) is fixedly connected to the side of the driven gear (5). The end of the reciprocating screw (9) is fixedly connected to the side of the baffle (3). The reciprocating screw (9) passes through and is threaded into the slide plate (10).
4. The digital energy metering mobile detection platform according to claim 1, characterized in that, The shock absorption assembly includes shock absorption air rods (22), four of which are fixedly connected to the bottom surface of the detection device (16). A fixing plate (23) is fixedly connected to the bottom surface of the shock absorption air rods (22). A spring (24) is fixedly connected between the fixing plate (23) and the detection device (16). A turntable (25) is rotatably connected to the lower surface of the fixing plate (23). A base frame (26) is fixedly connected to the lower surface of the turntable (25). A roller (27) is rotatably connected to the inner side of the base frame (26).
5. The digital energy metering mobile detection platform according to claim 1, characterized in that, The detection device (16) has vertical grooves (17) on both sides, and two arc-shaped grooves (18) are provided on the side of the grooves (17). The inner diameters of the two arc-shaped grooves (18) are equal, and the arc lengths of the two arc-shaped grooves (18) are different.
6. The digital energy metering mobile detection platform according to claim 5, characterized in that, The folding assembly includes an arc-shaped side plate (20), and two connecting posts (19) are slidably connected in the groove (17). The diameter of the connecting post (19) is equal to the width of the arc-shaped groove (18). The outer side of the connecting post (19) is fixedly connected to the side of the arc-shaped side plate (20), and a fixing rod (21) is fixedly connected between the two arc-shaped side plates (20).
Citation Information
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