Energy scene interactive monitoring device

By designing the installation board and wiring mechanism in the energy scene interactive monitoring device, the wiring is sorted and heat dissipated, and the problems of complex circuit connections and untimely heat dissipation in existing devices are solved, and the reliability and safety of the device are improved.

CN222916314UActive Publication Date: 2025-05-27ZHONGCHENG DIGITAL INTELLIGENCE INFORMATION TECH NANJING CO LTD
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Patent Information

Application Number
CN202421404653.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-19
Publication Date
2025-05-27
Estimated Expiration
2034-06-19

AI Technical Summary

Technical Problem

The internal circuit connections of existing energy scenario interactive monitoring devices are complicated and cannot be dissipated in time, resulting in the circuit aging too quickly and a fire may occur.

Method used

An energy scene interactive monitoring device is designed, and the wiring board and wiring mechanism are arranged on the inner wall of the box, including a wave boss, a rotating wheel and a wiring duct, to realize the finishing and heat dissipation of the line.

Benefits of technology

Through line finishing and heat dissipation measures, line stacking and aging are reduced, fire risks caused by untimely heat dissipation are avoided, and the reliability and safety of the device are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy scene interactive monitoring device, which comprises a box body and a mounting plate, the mounting plate is connected with a monitoring device body used for energy scene interactive monitoring, the side surface of the monitoring device body is provided with a wiring end, the mounting plate is provided with a wiring mechanism corresponding to the wiring end, and the wiring mechanism is connected with the mounting plate. The wiring mechanism comprises a wave boss, the wave boss is provided with a through hole, a rotating wheel is rotatably connected in the through hole, and a plurality of wiring grooves are formed in the rotating peripheral surface of the rotating wheel. According to the utility model, the wave boss is arranged on the adhesive plate, so that the position is convenient to change, the rotating wheel is arranged, and the wiring grooves are formed in the side surface of the rotating wheel, so that an operator places different lines in the independent wiring grooves by rotating the rotating wheel, the independent wiring quantity of the lines is increased, the arrangement of the lines is realized, and the working efficiency is improved. And the problems of fire disasters and the like caused by aging of the lines due to untimely heat dissipation caused by stacking of the lines are reduced.
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Description

Technical Field

[0001] The utility model belongs to the technical field of energy scenarios, and particularly relates to an interactive monitoring device for energy scenarios. Background Art

[0002] An energy scenario generally refers to the specific situation or environment formed by activities such as energy production, transmission, distribution, storage, and consumption at a specific time, place, and condition. Analyzing and studying energy scenarios helps to optimize the planning, management, and operation of the energy system, improve energy utilization efficiency, and promote the sustainable development of energy.

[0003] Most of the interactive monitoring devices for energy scenarios can simultaneously monitor the usage and related parameters of electricity, coal, petroleum, natural gas, and renewable energy (such as solar energy, wind energy, water energy, etc.). It has real-time data acquisition and processing functions. For example, it can collect various data in the energy production, transmission, distribution, and consumption links in real time, including voltage, current, power, flow rate, temperature, pressure, etc.; analyze and process the collected data, such as calculating key indicators such as energy consumption rate, efficiency, and cost, and identifying abnormal energy consumption patterns.

[0004] Due to the need for a large amount of data acquisition and processing in the existing interactive monitoring devices for energy scenarios, the number of wiring is very large, which leads to complex internal wiring of the device and insufficient heat dissipation in time, resulting in the problem of too fast aging of the wiring and causing fires. Therefore, improvement is needed. Summary of the Utility Model

[0005] The purpose of the utility model is to provide an interactive monitoring device for energy scenarios to solve the technical problems that the internal wiring of the existing interactive monitoring device for energy scenarios is complex, there is no timely heat dissipation, and the wiring ages too fast, resulting in fires.

[0006] To achieve the above purpose, the utility model provides the following technical solutions:

[0007] The utility model provides an interactive monitoring device for energy scenarios, which includes a box body. An installation plate is connected to the inner wall of the box body, and a monitoring device body for interactive monitoring of energy scenarios is connected to the installation plate;

[0008] A wiring terminal for wiring is arranged on the side of the monitoring device body. The installation plate is provided with a wiring mechanism corresponding to the wiring terminal. The wiring mechanism includes a wavy boss. The wavy boss is provided with a through hole, and a rotating wheel is rotatably connected in the through hole. A plurality of wire grooves for wire routing are formed on the outer peripheral surface of the rotating wheel when it rotates.

[0009] The wave-shaped protrusions are provided on the adhesive plate to facilitate the change of position. By providing a rotating wheel and a number of wire grooves on the side surface of the rotating wheel, the operator can place different wires in separate wire grooves by rotating the rotating wheel, increasing the amount of separate wire routing, realizing the arrangement of wires, and reducing problems such as wire aging and fire caused by untimely heat dissipation due to wire stacking.

[0010] Optionally, the wave-shaped protrusions are provided with an adhesive plate adhered to the mounting plate. The wave-shaped protrusions are composed of a number of arc-shaped protrusions connected to form a whole wave-shaped protrusion structure, and each wave-shaped protrusion is correspondingly provided with a through hole in an arc shape. The rotating wheel is provided with fixing rods before and after the through hole to realize rotation. Each wave-shaped protrusion is provided with a notch at the topmost end for guiding the wire to be clamped in the wire groove.

[0011] Optionally, the wiring terminals are a number of them located on a pair of side surfaces of the monitoring device body, and the inner wall of the box is correspondingly provided with a wiring board for wire routing. The wiring board is provided with a number of wiring horizontal grooves and wiring vertical grooves for facilitating wire routing.

[0012] Optionally, the wiring horizontal grooves are grooves opened in an arc shape structure, and a wire bundling clip is correspondingly provided at the top of each wiring horizontal groove. The wire bundling clip is made of rubber material and is a wire bundling clip with elastic characteristics.

[0013] By providing the wiring horizontal grooves and wiring vertical grooves, the overall routing of the wires inside the box is realized, facilitating the later inspection and troubleshooting of the wires, and reducing the problem of untimely heat dissipation caused by wire stacking. And by providing elastic wire bundling clips, it is convenient to clamp and remove the wires from the wiring horizontal grooves and wiring vertical grooves.

[0014] Optionally, an installation partition for separating the inner wall of the box is provided between the mounting plate and the box. There is a partition layer inside the box. The monitoring device body is located above the partition layer, and a control center is provided below the partition layer. And a heat dissipation mechanism is provided in the control center. The heat dissipation mechanism is provided with a heat dissipation pipe, and the heat dissipation pipe is provided with heat dissipation branch pipes communicating to the inside of the monitoring device body. By providing the installation partition and the installation connection cross plate, the gap between the inner wall of the box is increased, avoiding the influence of the high-temperature environment in summer on the monitoring device body. And by providing the heat dissipation mechanism, the heat dissipation pipe and the heat dissipation branch pipes communicating to the inside of the monitoring device body, targeted heat dissipation is realized. Among them, the heat dissipation mechanism in this technical solution can adopt a heat dissipation fan in the prior art to realize blowing and heat dissipation inside the monitoring device body.

[0015] Optionally, the monitoring device body is provided with an installation connection cross plate connected to the mounting plate to increase the gap with the inner wall of the box, and the monitoring device body is provided with a display screen for displaying various monitoring data and a regulation button for controlling the operation of the device.

[0016] Optionally, the box body is further provided with a box door for closing the box body. The box door is provided with a visualization window corresponding to the display screen for facilitating data reading outside the box body, and the bottom of the box body is further provided with fixing bolts for connection and fixation.

[0017] The beneficial effects and advantages of the present utility model:

[0018] The energy scenario interactive monitoring device has the following benefits:

[0019] By arranging wave-shaped bosses on the adhesive plate, it is convenient to change the position. And by arranging a rotating wheel and a plurality of wire grooves on the side surface of the rotating wheel, the operator can place different wires in separate wire grooves by rotating the rotating wheel, increasing the amount of separate wire routing of the wires, realizing the arrangement of the wires, and reducing problems such as wire aging and fire caused by untimely heat dissipation due to the wires being stacked together.

[0020] By arranging a horizontal wire groove and a vertical wire groove, the overall routing of the wires inside the box body is realized, which is convenient for later wire maintenance and troubleshooting, and reduces the problem of untimely heat dissipation caused by wire stacking. And by arranging elastic wire clamping pieces, it is convenient to clamp and take out the wires from the horizontal wire groove and the vertical wire groove. By arranging an installation partition plate and an installation connecting cross plate, the gap between the box body inner wall is increased, avoiding the influence of high temperature environment in summer on the monitoring device body. And by arranging a heat dissipation mechanism, heat dissipation pipes and heat dissipation branch pipes communicating to the inside of the monitoring device body, targeted heat dissipation is realized. Among them, the heat dissipation mechanism in this technical solution can adopt a heat dissipation fan in the prior art to realize blowing and heat dissipation inside the monitoring device body. Description of the Drawings

[0021] Figure 1 is a structural schematic diagram of the present utility model;

[0022] Figure 2 is a front structural schematic diagram of the present utility model;

[0023] Figure 3 is an enlarged structural schematic diagram of the wiring mechanism of the present utility model;

[0024] Figure 4 is an enlarged structural schematic diagram of the wiring board of the present utility model.

[0025] In the figure: 1 - box body, 2 - partition layer, 3 - mounting plate, 31 - mounting partition, 4 - monitoring device body, 41 - mounting connection cross plate, 42 - terminal, 43 - display screen, 44 - regulation button, 5 - wiring mechanism, 51 - adhesive plate, 52 - wave convex platform, 53 - through hole, 54 - fixing rod, 55 - rotating wheel, 56 - wiring groove, 6 - wiring board, 61 - horizontal wiring groove, 62 - vertical wiring groove, 63 - wire clamping piece, 7 - control center, 71 - heat dissipation pipe, 72 - heat dissipation branch pipe, 8 - box door, 9 - fixing bolt, 10 - visualization window. Detailed implementation manner

[0026] The present utility model will be further described below in conjunction with the accompanying drawings. The following embodiments are only used to more clearly illustrate the technical solution of the present utility model, and cannot be used to limit the protection scope of the present utility model.

[0027] An embodiment is as Figures 1 to 4 shown. This embodiment provides an energy scenario interactive monitoring device, including a box body 1, a partition layer 2 welded inside the box body 1 for layering, wherein a monitoring device body 4 is arranged above the partition layer 2 inside the box body 1, and a control center 7 is arranged below the partition layer 2 inside the box body 1;

[0028] Referring to Figure 1 and Figure 2 shown, in this embodiment, a mounting partition 31 is fixedly installed on the inner wall of the box body 1 by welding technology or bolts in the prior art, wherein a mounting plate 3 is fixed to the mounting partition 31 by bolts in the prior art. In this embodiment, the monitoring device body 4 is fixedly connected to the mounting plate 3 through bolts in the prior art by the mounting and fixing surface of the monitoring device body 4. In this embodiment, a pair of side surfaces of the monitoring device body 4 are provided with terminals 42, and a corresponding wiring mechanism 5 is arranged on the mounting plate 3 corresponding to the terminals 42. In this embodiment, a wiring board 6 is arranged on the inner wall of the box body 1 corresponding to the terminals 42. In this embodiment, the box body 1 is also provided with a box door 8 through a hinge in the prior art, and a fixing bolt 9 is threadedly connected to the mounting surface of the box body 1 for mounting and fixing.

[0029] In this embodiment, the control center 7 includes a data acquisition module in the prior art for real-time data acquisition and transmission of the monitoring device body 4, a data analysis module for analyzing and processing the data acquired by the monitoring device body 4, and a monitoring control module for remotely monitoring and controlling the monitoring device body 4 after analysis.

[0030] In this embodiment, the monitoring device body 4 includes a display screen 43 for displaying various monitoring data and a control button 44 for controlling the operation of the device. In this embodiment, a visualization window 10 corresponding to the display screen 43 is also embedded in the box door 8. The visualization window 10 is preferably made of acrylic sheet in the prior art. In this embodiment, a heat dissipation mechanism is provided in the control center 7. The heat dissipation mechanism 7 is preferably a heat dissipation fan in the prior art. A heat dissipation pipe 71 is condensed at the output end of the heat dissipation mechanism. The output end of the heat dissipation pipe 71 is connected to a heat dissipation branch pipe 72 that communicates with the inside of the monitoring device body 4.

[0031] During use, the operator installs and connects the cables inside the box body 1 to the inner wall of the box body 1 through the wire routing board 6 to make the overall appearance beautiful. After connecting the wire routing board 6, it is connected to the wiring mechanism 5 and then connected to the monitoring device body 4. In this embodiment, by installing the partition plate 31 and the installation connection cross plate 41, the gap between the monitoring device body 4 and the inner wall of the box body 1 is increased, avoiding the influence of the high-temperature environment in summer on the monitoring device body 4, and targeted heat dissipation is achieved through the heat dissipation mechanism 7, the heat dissipation pipe 71 and the heat dissipation branch pipe 72 communicating with the inside of the monitoring device body 4.

[0032] Reference Figure 3 and Figure 4 As shown, in this embodiment, the wiring mechanism 5 includes a wavy convex platform 52. The wavy convex platform 52 is preferably composed of a plurality of arc-shaped convex platforms connected to form an overall wavy convex platform structure. Each wavy convex platform 52 is correspondingly provided with a through hole 53 in an arc shape. A notch for guiding the cable to be clamped is provided at the top of each wavy convex platform 52. Fixed rods 54 are fixed at the front and rear ends of each through hole 53. A rotating wheel 55 is movably connected to the front and rear fixed rods 54 of each through hole 53. A plurality of wire grooves 56 for wire routing are provided on the outer circumferential surface of each rotating wheel 55 when it rotates. In this embodiment, the wavy convex platform 52 is glued to the mounting plate 3 with an adhesive plate 51 by glue in the prior art;

[0033] In this embodiment, the wiring terminals 42 are located on a pair of sides of the monitoring device body 4. The wire routing board 6 is fixed to the inner wall of the box body 1 corresponding to the wiring terminals 42. The wire routing board 6 is provided with a plurality of wire routing horizontal grooves 61 and wire routing vertical grooves 62. The wire routing horizontal grooves 61 are grooves formed in an arc shape structure, and a wire bundling clip 63 is correspondingly provided at the top of each wire routing horizontal groove 61. The wire bundling clip 63 is preferably made of rubber material in the prior art and is a wire bundling clip 63 with elastic characteristics.

[0034] During use, the operator places different cables in separate wire grooves 56 by rotating the rotating wheel 55, increasing the amount of separate wire routing, achieving wire arrangement, and reducing problems such as wire aging and fire caused by untimely heat dissipation due to wire stacking. By setting the horizontal wire groove 61 and the vertical wire groove 62, overall wire routing planning for the wires inside the box body 1 is realized, facilitating later wire inspection and troubleshooting, and reducing the problem of untimely heat dissipation caused by wire stacking. Moreover, by setting the elastic wire clamping pieces 63, it is convenient to clamp and remove the wires.

[0035] The embodiments of the present invention have been described above in conjunction with the accompanying drawings. However, the present invention is not limited to the above specific embodiments. The above specific embodiments are merely illustrative and not restrictive. Under the inspiration of the present invention, those of ordinary skill in the art can also make many forms without departing from the purpose of the present invention and the scope protected by the claims. All of these are within the protection scope of the present invention.

Claims

1. An interactive monitoring device for energy scenarios, characterized in that: It comprises a box body (1), the inner wall of which is connected to a mounting plate (3), and the mounting plate (3) is connected to a monitoring device body (4) for interactive monitoring of energy scenarios; A wiring terminal (42) for line connection is arranged on the side of the monitoring device body (4), and a wiring mechanism (5) for wiring is arranged on the mounting plate (3) corresponding to the wiring terminal (42), the wiring mechanism (5) comprising a wave boss (52), the wave boss (52) being provided with a through hole (53), a rotating wheel (55) being rotatably connected in the through hole (53), and a plurality of wiring grooves (56) for wiring are arranged on the rotating outer peripheral surface of the rotating wheel (55).

2. The interactive monitoring device for energy scenarios according to claim 1, characterized in that: The wave boss (52) is provided with an adhesive plate (51) glued to the mounting plate (3); the wave boss (52) is a plurality of arc-shaped bosses connected to form an overall wave-shaped boss structure; each wave boss (52) is provided with a through hole (53) corresponding to the arc-shaped circle; the rotating wheel (55) is provided with a fixing rod (54) before and after the through hole (53) to realize rotation; and a notch for guiding a line to be clamped in a wiring groove (56) is provided at the top end of each wave boss (52).

3. The interactive monitoring device for energy scenarios according to claim 1, characterized in that: The wiring terminals (42) are a plurality of terminals located on a pair of side surfaces of the monitoring device body (4), and a wiring board (6) for wiring is provided on the inner wall of the box body (1) corresponding to the wiring terminals (42), and the wiring board (6) is provided with a plurality of wiring transverse grooves (61) and wiring vertical grooves (62) for facilitating wiring.

4. The interactive monitoring device for energy scenarios according to claim 3, characterized in that: The wiring transverse groove (61) is a groove with an arc-shaped structure, and a wiring clamp (63) is correspondingly arranged at the top of each wiring transverse groove (61). The wiring clamp (63) is made of rubber material and has elastic properties.

5. The interactive monitoring device for energy scenarios according to claim 1, characterized in that: An installation partition (31) for separating the inner wall of the box body (1) is provided between the installation plate (3) and the box body (1); a partition (2) is provided inside the box body (1); the monitoring device body (4) is located above the partition (2); a control center (7) is provided below the partition (2); a heat dissipation mechanism is provided in the control center (7); the heat dissipation mechanism is provided with a heat dissipation pipe (71); and the heat dissipation pipe (71) is provided with a heat dissipation branch pipe (72) connected to the inside of the monitoring device body (4).

6. The interactive monitoring device for energy scenarios according to claim 5, characterized in that: The monitoring device body (4) is provided with a mounting connection transverse plate (41) connected to the mounting plate (3) to increase the gap with the inner wall of the box body (1), and the monitoring device body (4) is provided with a display screen (43) for displaying various monitoring data, and a control button (44) for controlling the operation of the device.

7. The interactive monitoring device for energy scenarios according to claim 6, characterized in that: The box body (1) is further provided with a box door (8) for closing the box body (1); the box door (8) is provided with a visual window (10) corresponding to the display screen (43) for facilitating data reading outside the box door (8); and the bottom of the box body (1) is further provided with fixing bolts (9) for connection and fixing.