Electric power production process picture free configuration system

By designing the first and second adjustment components, combined with the drive component, the problem of inconvenient angle adjustment of the LED display screen was solved, ensuring the efficient acquisition of power production information.

CN224065188UActive Publication Date: 2026-03-31BEIJING JINGNENG CLEAN ENERGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-02
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing LED displays for power production processes suffer from inconvenient angle adjustment due to bolted connections, making it difficult to guarantee optimal visibility and impacting information acquisition efficiency.

Method used

The display screen is adjusted by using a first adjustment component and a second adjustment component, and by cooperating with the first drive component and the second drive component. The design of components such as the arc ring, fixing component, push rod motor and motor ensures that the display screen can adapt to changes in ambient light and personnel position.

Benefits of technology

It achieves optimal visibility of the display screen under different lighting and location conditions, improving the efficiency of acquiring power production information.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an electric power production process picture free configuration system, which consists of a plurality of groups of display screens and a plurality of groups of mounting plates, the first adjusting assembly is arranged on the mounting plate and used for adjusting the pitching angle of each display screen, and the second adjusting assembly is arranged on the mounting plate and used for adjusting the side pitching angle of each display screen. According to the electric power production process picture free configuration system of the utility model, through the arrangement of the fixing assembly, the installation firmness of the display screen is ensured, and the pitching and side pitching angle adjustment of the display screen is realized by using the first adjusting assembly and the second adjusting assembly under the cooperation effect of the first driving assembly and the second driving assembly; therefore, the display screen adapts to the change of the ambient light intensity and the personnel position, the picture of the LED display screen is ensured to be in an optimal visual state, and the efficiency of acquiring the power production information is improved.
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Description

Technical Field

[0001] This utility model relates to the field of power production monitoring technology, specifically a power production process screen free configuration system. Background Technology

[0002] During the visualization of the power production process, users open the configuration editing software and create a screen layout on the LED display screen according to the logical structure of the production process and the display requirements. The screen can be divided into different areas, such as equipment operation monitoring area, data statistical analysis area, alarm information display area, etc. Based on the screen layout, users can drag and drop the required visualization elements from the component library to the corresponding areas, such as adding equipment icons representing generators, transformers, and transmission lines, and adjusting their size, position, and color to match the appearance of the actual equipment.

[0003] LED displays serve as a crucial visual medium for power production processes, playing a vital supporting role in image presentation. Existing LED displays primarily rely on bolts to connect to mounting frames. While this ensures secure installation, adjusting the display's viewing angle to suit ambient light and personnel positioning is inconvenient due to the bolted connection. This makes it difficult to maintain optimal image visibility, thus impacting the efficiency of acquiring power production information. Therefore, a freely configurable system for power production process visuals is urgently needed to address these issues. Utility Model Content

[0004] To achieve the above objectives, the present invention provides the following technical solution: a power production process screen free configuration system, the system comprising multiple sets of display screens and multiple sets of mounting plates, and further comprising a first adjustment component disposed on the mounting plate for adjusting the pitch angle of each display screen and a second adjustment component disposed on the mounting plate for adjusting the side tilt angle of each display screen;

[0005] The first adjustment component includes an adjustment frame disposed on the side of the mounting plate near the display screen. The adjustment frame is rotatably connected to multiple sets of arc rings. Each arc ring is equidistant from the others. Each arc ring is provided with a fixing component for fixing the display screen. The adjustment frame is provided with a first driving component for driving each arc ring.

[0006] The second adjustment component includes two symmetrically arranged fixed plates fixedly connected to the mounting plate near the adjustment frame. An adjustment plate is connected between the two fixed plates via a rotating shaft. One end of the adjustment plate is connected to the adjustment frame. The mounting plate is provided with a second driving component for driving the adjustment plate.

[0007] The first driving assembly includes a first driving rod rotatably connected to the adjustment frame. The first driving rod is fixedly connected to multiple sets of gears on the inner side wall of the adjustment frame. Each of the arc-shaped rings is fixedly connected to an arc-shaped gear ring on its side wall. Each of the gears and the arc-shaped gear rings are meshed with each other. A motor is provided on the side of the adjustment frame away from the adjustment plate. The output end of the motor is connected to the first driving rod.

[0008] The second drive assembly includes a push rod motor fixedly connected to the side of the mounting plate away from the adjustment frame. The output end of the push rod motor is connected to a second drive rod. The end of the second drive rod away from the push rod motor is rotatably connected to a rotating ball. The rotating ball is connected to the adjustment frame through a connecting assembly.

[0009] The push rod motor is positioned close to the motor.

[0010] The connecting assembly includes two symmetrically arranged guide rails fixedly connected to the side of the adjustment frame near the mounting plate. The two guide rails are slidably connected to a connecting rod, and the end of the connecting rod away from the adjustment frame is connected to a rotating ball.

[0011] The fixing component includes strip plates fixedly connected to both ends of the arc-shaped ring, and the two strip plates are threadedly connected with multiple sets of bolts.

[0012] Compared with the prior art, the beneficial effects of this utility model are:

[0013] This utility model's power production process display free configuration system, through the setting of fixed components, ensures the firmness of the display screen installation. Utilizing the first and second adjustment components, and with the cooperation of the first and second drive components, it achieves tilt and lateral angle adjustment of the display screen. This allows the display screen to adapt to changes in ambient light intensity and personnel position, ensuring the LED display screen image is in optimal visibility, thereby improving the efficiency of acquiring power production information. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0015] Figure 2 This is a schematic diagram of the second adjustment component of this utility model;

[0016] Figure 3 This is a schematic diagram of the structure of the first adjustment component and the first drive component of this utility model;

[0017] Figure 4 This is a schematic diagram of the second driving component and the connecting component of this utility model.

[0018] In the diagram: 101, display screen; 102, mounting plate; 201, adjusting frame; 202, arc-shaped ring; 301, strip plate; 302, bolt; 401, fixing plate; 402, adjusting plate; 501, push rod motor; 502, second drive rod; 503, rotating ball; 601, guide rail; 602, connecting rod; 701, first drive rod; 702, gear; 703, arc-shaped gear ring; 704, motor. Detailed Implementation

[0019] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0020] Example 1

[0021] Please see Figures 1-4 The figure shows a free configuration system for a power production process screen. The system consists of multiple sets of display screens 101 and multiple sets of mounting plates 102. It also includes a first adjustment component set on the mounting plate 102 for adjusting the pitch angle of each display screen 101 and a second adjustment component set on the mounting plate 102 for adjusting the side tilt angle of each display screen 101.

[0022] The first adjustment component includes an adjustment frame 201 disposed on the side of the mounting plate 102 near the display screen 101. The adjustment frame 201 is rotatably connected to multiple sets of arc rings 202. Each arc ring 202 is equidistantly arranged. Each arc ring 202 is provided with a fixing component for fixing the display screen 101. The adjustment frame 201 is provided with a first driving component for driving each arc ring 202.

[0023] The second adjustment assembly includes two symmetrically arranged fixed plates 401 fixedly connected to the mounting plate 102 near the adjustment frame 201. An adjustment plate 402 is connected between the two fixed plates 401 by a rotating shaft. One end of the adjustment plate 402 is connected to the adjustment frame 201. The mounting plate 102 is provided with a second drive assembly for driving the adjustment plate 402.

[0024] It should be noted that: through the setting of the first adjustment component and the second adjustment component, the tilt and lateral angles of the display screen 101 are adjusted under the action of the first drive component and the second drive component, thereby enabling the display screen 101 to adapt to changes in ambient light intensity and personnel position, ensuring that the LED display screen 101 is in the best viewing state, and thus improving the efficiency of obtaining power production information.

[0025] Please see Figure 3 The first drive assembly shown in the figure includes a first drive rod 701 rotatably connected to the adjustment frame 201. The first drive rod 701 is located inside the side wall of the adjustment frame 201 and is fixedly connected to multiple sets of gears 702. Each arc ring 202 is fixedly connected to an arc gear ring 703 on its side wall. Each gear 702 and the arc gear ring 703 are meshed with each other. A motor 704 is provided on the side of the adjustment frame 201 away from the adjustment plate 402. The output end of the motor 704 is connected to the first drive rod 701.

[0026] It should be noted here that the first drive component is configured to enable synchronous rotation of each arc ring 202.

[0027] Please see Figure 4 The second drive assembly shown in the figure includes a push rod motor 501 fixedly connected to the side of the mounting plate 102 away from the adjustment frame 201. The output end of the push rod motor 501 is connected to a second drive rod 502. The end of the second drive rod 502 away from the push rod motor 501 is rotatably connected to a rotating ball 503. The rotating ball 503 is connected to the adjustment frame 201 through a connecting assembly.

[0028] It should be noted here that the second drive component is used to push one end of the adjustment frame 201 to lift or lower.

[0029] Please see Figure 4 The push rod motor 501 in the diagram is positioned close to the motor 704;

[0030] It should be noted that by positioning the push rod motor 501 close to the motor 704, the tilt angle of the display screen 101 can be adjusted by raising or lowering one end of the adjustment frame 201.

[0031] Please see Figure 4 The connecting components shown in the figure include two symmetrically arranged guide rails 601 fixedly connected to the side of the adjustment frame 201 near the mounting plate 102. The two guide rails 601 are slidably connected to a connecting rod 602. The end of the connecting rod 602 away from the adjustment frame 201 is connected to the rotating ball 503.

[0032] It should be noted here that the connection component is designed to provide guidance and limit for raising or lowering one end of the adjustment frame 201.

[0033] Working principle: When using the display screen 101 (LED display screen) to visualize the power production process, the display screen 101 is first installed on one side of the mounting plate 102 using a fixing component. Then, various sensors and smart meters at the power production site are used to monitor the operating status of the equipment in real time. These sensors convert physical quantities into electrical signals or digital signals, which are transmitted to the data acquisition terminal through signal cables.

[0034] After the data acquisition terminal performs preliminary processing and caching on the acquired data, it transmits the data to the server cluster via industrial Ethernet, wireless communication, and other means. At the same time, the transmitted data is encrypted to prevent it from being stolen or tampered with during transmission.

[0035] Then, the user opens the configuration editing software and first creates a screen layout on the display screen 101 according to the logical structure of the production process and the display requirements. The screen can be divided into different areas, such as the equipment operation monitoring area, the data statistics and analysis area, and the alarm information display area.

[0036] Furthermore, based on the screen layout, users can drag and drop the required visual elements from the component library to the corresponding area, add equipment icons representing generators, transformers, and transmission lines, and adjust their size, position, and color to match the appearance of the actual equipment.

[0037] To enable visualization elements to reflect the equipment's operating status and data changes in real time, users need to define data connections. Through the attribute setting function of the configuration editing software, the equipment icons and chart components are associated with the corresponding data points. The generator icon is connected to data points such as the generator's speed, temperature, and power. When the server receives this data, it will update the display status of the generator icon and related data charts in real time.

[0038] Therefore, through the freely configurable production process screen, staff can understand the equipment operating status in real time and comprehensively, promptly detect equipment abnormalities and handle them. For example, in a thermal power plant, when abnormal fluctuations in boiler water level are detected, relevant equipment parameters can be quickly viewed through the screen to determine the cause of the fault, take corresponding measures to prevent the fault from escalating, ensure stable boiler operation, and thus improve power generation efficiency.

[0039] Meanwhile, when a power system fault occurs, the free configuration device can quickly locate the fault location and cause. When a transmission line fault occurs, the screen will automatically highlight the faulty line and display relevant fault information, such as fault type and fault time. Staff can use this information to quickly organize maintenance personnel for emergency repairs, shorten power outage time, and reduce the impact on users.

[0040] Furthermore, when using the display screen 101 to visualize the power production process, if it is necessary to adjust the tilt angle of the display screen 101, the motor 704 can be started to drive the multiple sets of gears 702 on the side wall of the first drive rod 701 to rotate. Then, under the meshing transmission action of each gear 702 and the arc-shaped gear ring 703, each arc-shaped ring 202 will be driven to rotate. Subsequently, under the rotation action of each arc-shaped ring 202, each display screen 101 will be driven to adjust the tilt angle.

[0041] When it is necessary to adjust the tilt angle of the display screen 101, the push rod motor 501 can be activated to push the second drive rod 502 to move closer to or away from the adjustment frame 201. Then, under the pushing force of the second drive rod 502 and the guiding action of the connecting component, the end of the adjustment frame 201 near the motor 704 can be raised or lowered. Thus, under the rotation of the adjustment plate 402, the tilt angle of the display screen 101 can be adjusted.

[0042] Therefore, by setting the first adjustment component and the second adjustment component, the tilt and lateral angles of the display screen 101 are adjusted under the action of the first drive component and the second drive component, thereby enabling the display screen 101 to adapt to changes in ambient light intensity and personnel position, ensuring that the LED display screen 101 is in the best viewing state, and thus improving the efficiency of obtaining power production information.

[0043] Example 2

[0044] Please see Figure 3 This embodiment further illustrates Example 1. The fixing component shown in the figure includes strip plates 301 fixedly connected to both ends of the arc ring 202. The two strip plates 301 are threadedly connected to multiple sets of bolts 302.

[0045] It should be noted here that the fixing components are used to install and fix the display screen 101, thereby ensuring the installation of the display screen 101 firmly.

[0046] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.

Claims

1. A power production flow picture free configuration system, the system is composed of multiple sets of display screens (101) and multiple sets of mounting plates (102); characterized in that, Also include: The first adjusting assembly is arranged on the mounting plate (102) and used for adjusting the pitch angle of each display screen (101); The second adjusting assembly is arranged on the mounting plate (102) and used for adjusting the side tilt angle of each display screen (101); The first adjusting assembly includes an adjusting frame (201) arranged on the mounting plate (102) near the display screen (101), a plurality of arc-shaped rings (202) are rotatably connected to the adjusting frame (201), each arc-shaped ring (202) is equidistantly arranged, each arc-shaped ring (202) is provided with a fixing assembly for fixing the display screen (101), and the adjusting frame (201) is provided with a first driving assembly for driving each arc-shaped ring (202). The second adjusting assembly includes two fixed plates (401) fixedly connected to the mounting plate (102) near the adjusting frame (201) and arranged symmetrically to each other, and an adjusting plate (402) is rotatably connected between the two fixed plates (401), one end of the adjusting plate (402) is connected with the adjusting frame (201), and the mounting plate (102) is provided with a second driving assembly for driving the adjusting plate (402).

2. A power production flow picture free configuration system according to claim 1, characterized in that: The first driving assembly includes a first driving rod (701) rotatably connected to the adjusting frame (201), a plurality of gears (702) are fixedly connected to the inner side wall of the adjusting frame (201), each arc-shaped ring (202) is fixedly connected with an arc-shaped gear ring (703), each gear (702) and the arc-shaped gear ring (703) are arranged in meshing relationship, and a motor (704) is arranged on the side of the adjusting frame (201) away from the adjusting plate (402), and the output end of the motor (704) is connected with the first driving rod (701).

3. A power production flow picture free configuration system according to claim 2, characterized in that: The second driving assembly includes a push rod motor (501) fixedly connected to the mounting plate (102) away from the adjusting frame (201), the output end of the push rod motor (501) is connected with a second driving rod (502), one end of the second driving rod (502) away from the push rod motor (501) is rotatably connected with a rotating ball (503), and the rotating ball (503) is connected with the adjusting frame (201) through a connecting assembly.

4. The power production flow picture free configuration system of claim 3, wherein: The push rod motor (501) is arranged near the motor (704).

5. The power production flow picture free configuration system of claim 4, wherein: The connecting assembly includes two guide rails (601) fixedly connected to the adjusting frame (201) near the mounting plate (102) and arranged symmetrically to each other, and a connecting rod (602) is slidably connected between the two guide rails (601), and one end of the connecting rod (602) away from the adjusting frame (201) is connected with the rotating ball (503).

6. The power production flow picture free configuration system according to claim 5, wherein: The fixing assembly includes two strip plates (301) fixedly connected to both ends of the arc-shaped ring (202), and a plurality of bolts (302) are threadedly connected to the two strip plates (301).