Real-time monitoring device for carbon emission of transformer substation

By designing a real-time carbon emission monitoring device for substations that automatically adjusts the display angle and automatically opens the USB-C interface, the problem of cumbersome operation of the data acquisition box in outdoor environments has been solved, improving data export efficiency and monitoring accuracy, and extending equipment life.

CN121577076APending Publication Date: 2026-02-27SHENZHEN POWER SUPPLY PLANNING DESIGN INST
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Patent Information

Application Number
CN202511445008.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-10-10
Publication Date
2026-02-27

AI Technical Summary

Technical Problem

Existing substation carbon emission data acquisition boxes are cumbersome to operate in outdoor environments, have low data export efficiency, and are susceptible to dust and rain erosion, affecting monitoring accuracy and equipment lifespan.

Method used

A real-time carbon emission monitoring device for substations was designed, comprising an adjustment drive mechanism and an auxiliary output mechanism. It automatically adjusts the display screen angle, provides rain protection, and automatically opens the USB-C interface, simplifying the operation process and enhancing the stability and protection of the equipment.

Benefits of technology

It improves the efficiency of data export, enhances the applicability and durability of the equipment in outdoor environments, ensures monitoring accuracy, extends the service life of the equipment, and reduces the risk of misoperation.

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Abstract

The invention provides a transformer substation carbon emission real-time monitoring device, and relates to the field of carbon emission monitoring equipment, and the transformer substation carbon emission real-time monitoring device comprises a monitoring support frame, a data acquisition box body, a monitoring display screen, an adjustment driving motor, a monitoring connection box, a monitoring connection sliding block, a leading-out operation panel, an adjustment driving mechanism and a leading-out auxiliary mechanism. The data acquisition box body is fixedly connected above the monitoring support frame; the monitoring display screen is hinged to the upper end of the monitoring support frame; the adjusting driving motor is fixedly connected to the right side of the adjusting driving box; the monitoring connection box is fixedly connected to the lower part of the data acquisition box body; the adjusting driving mechanism is arranged at the upper end of the monitoring support frame; the export auxiliary mechanism is arranged on the inner side of the monitoring connection box, so that a detector can export monitored and collected data conveniently, the data export efficiency is improved, and the problem that in the prior art, a worker needs to open a data collection box, then a computer is connected with a detection port of a data box through a USB-C interface, and operation is tedious is solved.
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Description

Technical Field

[0001] This invention relates to the field of carbon emission monitoring equipment technology, and in particular to a real-time carbon emission monitoring device for substations. Background Technology

[0002] With increasing global attention to climate change, reducing carbon emissions has become a global consensus. Substations, as a crucial component of the power system, generate carbon emissions during operation. Real-time carbon emission monitoring in substations revolves around data acquisition, transmission, processing, and analysis. High-precision current and voltage transformers collect equipment energy consumption data, while gas sensors using laser absorption spectroscopy monitor the leakage concentration of greenhouse gases such as SF6. Simultaneously, temperature, humidity, and air pressure sensors collect environmental parameters. The collected data is transmitted wirelessly via 5G or wired via industrial Ethernet to the processing unit. In the data processing and analysis module, the raw data is first cleaned, denoised, and missing values ​​are filled. Then, combined with local carbon emission factors, power and carbon emission calculation formulas are used to convert energy consumption and gas leakage into carbon emissions. Finally, trend and comparative analysis is used to determine if carbon emissions are abnormal. If a preset threshold is exceeded, an immediate warning is issued via sound, light, and SMS, thus achieving real-time and accurate monitoring of substation carbon emissions.

[0003] The existing publication number is CN118130719B. This invention provides an online carbon emission monitoring system and method, relating to the field of online carbon emission monitoring technology. The online carbon emission monitoring device includes a base, with a support column fixedly connected to the center of the upper surface of the base. Multiple mounting slots are formed on the outer wall of the support column. A first support plate is fixedly connected to the upper surface of the support column. An air collection box is provided at the lower end of the support column. Protective slots are formed on the four outer walls of the air collection box. Three fixed semi-circular slots are formed at the end of each protective slot near the center of the air collection box. Small air collection hoods are fixedly connected inside each of the fixed semi-circular slots. A first connecting pipe is fixedly connected inside each of the mounting slots. This invention provides an online carbon emission monitoring system and method, which has advantages such as real-time monitoring, automated control, digital data processing, remote monitoring and operation, and higher accuracy and reliability.

[0004] However, existing substation carbon emission data acquisition boxes are generally located outdoors. These boxes typically monitor outdoor carbon emissions. After collecting data for a period of time, workers need to use a computer to read the data. When exporting the data, workers need to open the data acquisition box and then connect the computer to the box's detection port using a USB-C interface. This makes the operation cumbersome and affects the efficiency of exporting carbon emission data. Summary of the Invention

[0005] In view of this, the present invention provides a real-time carbon emission monitoring device for substations, which improves the applicability, durability, and monitoring accuracy of the device in outdoor environments, enabling the equipment to carry out substation carbon emission monitoring work more stably and accurately. It facilitates the export of monitoring data by monitoring personnel, improves the efficiency of data export, automatically opens the sealing baffle and exposes the USB-C interface, avoiding the cumbersome steps of manually opening the sealing cover, and ensures that the interface is always sealed and protected when not exporting data. It simplifies the operation process while enhancing structural stability and reducing the risk of misoperation. It is especially suitable for the need for rapid data export in substations in outdoor or dusty environments, and combines waterproof and dustproof features with convenience, extending the service life of the equipment.

[0006] This invention provides a real-time carbon emission monitoring device for substations, specifically including a monitoring support frame, a data acquisition box, a monitoring display screen, an adjustment drive box, an adjustment drive motor, a monitoring connection box, a monitoring connection slider, an export operation panel, an adjustment drive mechanism, and an export auxiliary mechanism. The data acquisition box is fixedly connected to the top of the monitoring support frame. The monitoring display screen is hinged to the upper end of the monitoring support frame. The adjustment drive box is fixedly connected to the upper end of the monitoring support frame, and a humidity sensor is installed on the outer side of the adjustment drive box. The adjustment drive motor is a self-locking motor structure, fixedly connected to the right side of the adjustment drive box, and the humidity sensor in the adjustment drive box is electrically connected to the control circuit of the adjustment drive motor. The monitoring connection box is fixedly connected to the bottom of the data acquisition box. The monitoring connection slider is slidably connected inside the monitoring connection box, and a USB-C interface is provided above the monitoring connection slider. The export operation panel is slidably connected to the lower outer side of the monitoring support frame. The adjustment drive mechanism is located at the upper end of the monitoring support frame. The export auxiliary mechanism is located inside the monitoring connection box.

[0007] Furthermore, the adjustment drive mechanism includes: an adjustment drive gear, an adjustment transmission gear, and an adjustment reversing gear; the adjustment drive gear is an incomplete gear structure, and is coaxially fixedly connected to the outside of the rotating shaft of the monitoring display screen; the adjustment transmission gear is rotatably connected to the upper part of the adjustment drive box, and meshes with the adjustment drive gear, and the adjustment drive motor is drively connected to the adjustment transmission gear; the adjustment reversing gear is rotatably connected to the inside of the adjustment drive box, and meshes with the adjustment transmission gear.

[0008] Furthermore, the adjustment drive mechanism also includes: adjustment limit plates; a total of eight sets of adjustment limit plates are provided, four sets of adjustment limit plates are fixedly connected to the upper end of the monitoring support frame, and the other four sets of monitoring support frames are fixedly connected to the lower end of the monitoring display screen. The four sets of adjustment limit plates in the front limit the vertical direction of the monitoring display screen, and the four sets of adjustment limit plates in the rear limit the backward tilt of the monitoring display screen.

[0009] Furthermore, the adjustment drive mechanism also includes: a rain-shielding drive gear and a rain-shielding drive rack; the rain-shielding drive gear is provided in two sets, and the two sets of rain-shielding drive gears are coaxially fixedly connected to the left and right sides of the adjustment reversing gear; the rain-shielding drive rack is provided in two sets, and the two sets of rain-shielding drive racks are slidably connected inside the adjustment drive box, and the two sets of rain-shielding drive racks mesh with the rain-shielding drive gears respectively.

[0010] Furthermore, the adjustment drive mechanism also includes a rain shield; the rain shield is slidably connected to the upper end of the monitoring support frame, and the rain shield is fixedly connected to the rain shield drive rack.

[0011] Furthermore, the auxiliary discharge mechanism includes a drain hole; multiple sets of drain holes are provided, and all sets of drain holes are located on the inner front end of the monitoring connection box.

[0012] Furthermore, the export auxiliary mechanism also includes: an operation guide rod and an operation support spring; two sets of operation guide rods are provided, and the two sets of operation guide rods are respectively fixedly connected to the lower end of the monitoring support frame, and both sets of operation guide rods are slidably connected to the export operation plate; the operation support spring is fixedly connected to the lower end of the export operation plate, and the lower end of the operation support spring is fixedly connected to the monitoring support frame.

[0013] Furthermore, the export auxiliary mechanism also includes: a first guide wheel, a second guide wheel, an operating drive rope, and an operating reset spring; the first guide wheel is rotatably connected to the upper side inside the monitoring connection box; the second guide wheel is rotatably connected to the rear end of the monitoring connection box; the operating drive rope is wrapped around the outer circumference of the first and second guide wheels, the upper end of the operating drive rope is fixedly connected to the monitoring connection slider, and the lower end of the operating drive rope is fixedly connected to the export operation plate; the operating reset spring is fixedly connected to the rear end of the monitoring connection slider, and the rear end of the operating reset spring is fixedly connected to the monitoring connection box.

[0014] Furthermore, the export auxiliary mechanism also includes: a sealing baffle, a sealing drive rod, and a sealing transmission rod; the sealing baffle is hinged to the front end of the monitoring connection box, and a rubber block structure is fixedly connected to the lower end of the sealing baffle; two sets of sealing drive rods are provided, and the two sets of sealing drive rods are slidably connected to the left and right sides inside the monitoring connection box; two sets of sealing transmission rods are provided, and the two sets of sealing transmission rods are hinged to the left and right sides behind the sealing baffle, and the rear ends of the two sets of sealing transmission rods are respectively hinged to the sealing drive rod.

[0015] Furthermore, the export auxiliary mechanism also includes: a sealing connecting spring and a sealing limiting rod; two sets of sealing connecting springs are provided, and the two sets of sealing connecting springs are respectively fixedly connected to the rear end of the sealing drive rod, and the rear end of the two sets of sealing connecting springs is fixedly connected to the monitoring connection box; two sets of sealing limiting rods are provided, and the two sets of sealing limiting rods are respectively fixedly connected to the upper left and right sides of the monitoring connection slider, and the two sets of sealing limiting rods overlap the front end of the sealing drive rod. Beneficial effects

[0016] This invention adjusts the angle of the monitoring display screen by adjusting the setting of the drive mechanism. When the humidity sensor of the drive box detects rain, the drive motor is turned on, which drives the transmission gear to rotate. The rotation of the transmission gear drives the drive gear to rotate, which in turn drives the monitoring display screen to rotate. The monitoring display screen stops rotating when the four sets of adjustment limit plates at the rear contact each other. At the same time, the drive gear disengages from the transmission gear, thus adjusting the angle of the monitoring display screen. This makes it easier for rainwater to wash the surface of the monitoring display screen and reduces the adhesion of dust.

[0017] This invention adjusts the drive mechanism, causing the transmission gear to rotate, which in turn drives the reversing gear. This reversing gear, in turn, drives the rain-shielding drive gear, which in turn moves the rain-shielding drive rack forward. This forward movement of the rain-shielding drive rack then moves the rain-shielding baffle forward, effectively protecting the data acquisition box from rain and reducing its erosion. After the rain stops, the rain-shielding baffle and monitoring display screen reset under the drive of the adjusting motor, preventing the rain-shielding baffle from obstructing the data acquisition box on sunny days. This ensures air circulation, improves the outdoor carbon emission monitoring accuracy of the data acquisition box, and enhances the device's applicability, durability, and monitoring accuracy in outdoor environments. This allows the equipment to conduct substation carbon emission monitoring more stably and accurately.

[0018] This invention, through the setting of an auxiliary export mechanism, allows the operator to stand above the export operation panel. The export operation panel is pressed downwards, pulling the operation drive rope. Guided by the first and second guide wheels, the operation drive rope moves the monitoring connection slider forward. This forward movement of the monitoring connection slider moves the sealing limit rod forward, which no longer limits the sealing drive rod. Under the action of the sealing connection spring, the sealing drive rod moves forward, driving the sealing transmission rod forward. This forward movement of the sealing transmission rod opens the sealing baffle. Simultaneously, the forward movement of the monitoring connection slider facilitates the user's connection to the USB-C interface, enabling convenient export of monitored data and improving data export efficiency. The automatic opening of the sealing baffle and exposure of the USB-C interface avoids the cumbersome step of manually opening the sealing cover. It also ensures that the interface remains sealed and protected when not exporting data. This simplifies the operation process while enhancing structural stability and reducing the risk of misoperation. It is particularly suitable for the rapid data export needs of substations in outdoor or dusty environments, combining waterproofing, dustproofing, and convenience, and extending the equipment's service life. Attached Figure Description

[0019] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings of the embodiments will be briefly described below.

[0020] The accompanying drawings described below are only related to some embodiments of the invention and are not intended to limit the invention.

[0021] In the attached diagram: Figure 1 This is a schematic diagram of the overall structure of an embodiment of the present invention.

[0022] Figure 2 This is a schematic diagram of the rain shield structure according to an embodiment of the present invention.

[0023] Figure 3 This is a schematic diagram of the rain-shielding drive rack structure according to an embodiment of the present invention.

[0024] Figure 4 This is a schematic diagram of the rain-shielding drive gear structure according to an embodiment of the present invention.

[0025] Figure 5 This is a schematic diagram of the adjustment drive gear structure according to an embodiment of the present invention.

[0026] Figure 6 This is a schematic diagram of the operation drive rope structure according to an embodiment of the present invention.

[0027] Figure 7 This is a schematic diagram of the sealing baffle structure according to an embodiment of the present invention.

[0028] Figure 8This is a schematic diagram of the sealing and limiting rod structure according to an embodiment of the present invention.

[0029] List of reference numerals 1. Monitoring support frame; 2. Data acquisition box; 3. Monitoring display screen; 4. Adjustment drive box; 5. Adjustment drive motor; 501. Adjustment drive gear; 502. Adjustment transmission gear; 503. Adjustment reversing gear; 504. Adjustment limit plate; 505. Rainproof drive gear; 506. Rainproof drive rack; 507. Rainproof baffle; 6. Monitoring connection box; 601. Drain hole; 602. Operation guide rod; 603. Operation support spring; 604. First guide wheel; 605. Second guide wheel; 606. Operation drive rope; 607. Operation reset spring; 608. Sealing baffle; 609. Sealing drive rod; 610. Sealing transmission rod; 611. Sealing connection spring; 612. Sealing limit rod; 7. Monitoring connection slider; 8. Outgoing operation panel. Detailed Implementation Example 1

[0030] Please refer to Figures 1 to 5 As shown: This invention provides a real-time carbon emission monitoring device for substations, comprising a monitoring support frame 1, a data acquisition box 2, a monitoring display screen 3, an adjustment drive box 4, an adjustment drive motor 5, a monitoring connection box 6, a monitoring connection slider 7, an export operation plate 8, and an adjustment drive mechanism. The data acquisition box 2 is fixedly connected to the upper part of the monitoring support frame 1. The monitoring display screen 3 is hinged to the upper end of the monitoring support frame 1. The adjustment drive box 4 is fixedly connected to the upper end of the monitoring support frame 1, and a humidity sensor is provided on the outer side of the adjustment drive box 4. The adjustment drive motor 5 is a self-locking motor structure and is fixedly connected to the right side of the adjustment drive box 4. The humidity sensor in the adjustment drive box 4 is electrically connected to the control circuit of the adjustment drive motor 5. The monitoring connection box 6 is fixedly connected to the lower part of the data acquisition box 2. The monitoring connection slider 7 is slidably connected inside the monitoring connection box 6, and a USB-C interface is provided on the upper part of the monitoring connection slider 7. The export operation plate 8 is slidably connected to the lower outer side of the monitoring support frame 1. The adjustment drive mechanism is located at the upper end of the monitoring support frame 1.

[0031] The adjustment drive mechanism includes: an adjustment drive gear 501, an adjustment transmission gear 502, and an adjustment reversing gear 503; the adjustment drive gear 501 is an incomplete gear structure, and is coaxially fixedly connected to the outside of the rotating shaft of the monitoring display screen 3; the adjustment transmission gear 502 is rotatably connected to the upper part of the inside of the adjustment drive box 4, and meshes with the adjustment drive gear 501, and the adjustment drive motor 5 is connected to the adjustment transmission gear 502; the adjustment reversing gear 503 is rotatably connected to the inside of the adjustment drive box 4, and meshes with the adjustment transmission gear 502.

[0032] The adjustment drive mechanism also includes: adjustment limit plates 504; a total of eight sets of adjustment limit plates 504 are provided, four sets of adjustment limit plates 504 are fixedly connected to the upper end of the monitoring support frame 1, and the other four sets of monitoring support frame 1 are fixedly connected to the lower end of the monitoring display screen 3. The four sets of adjustment limit plates 504 in the front limit the vertical direction of the monitoring display screen 3, and the four sets of adjustment limit plates 504 in the rear limit the backward tilt of the monitoring display screen 3.

[0033] The adjustment drive mechanism also includes: a rain-shielding drive gear 505 and a rain-shielding drive rack 506; two sets of rain-shielding drive gears 505 are provided, and the two sets of rain-shielding drive gears 505 are coaxially fixedly connected to the left and right sides of the adjustment reversing gear 503; two sets of rain-shielding drive racks 506 are provided, and the two sets of rain-shielding drive racks 506 are slidably connected inside the adjustment drive box 4, and the two sets of rain-shielding drive racks 506 mesh with the rain-shielding drive gears 505 respectively.

[0034] The adjustment drive mechanism also includes a rain shield 507; the rain shield 507 is slidably connected to the upper end of the monitoring support frame 1, and the rain shield 507 is fixedly connected to the rain shield drive rack 506.

[0035] The specific usage and function of this embodiment: When the humidity sensor of the adjustment drive box 4 detects rain, the adjustment drive motor 5 is turned on. The adjustment drive motor 5 drives the adjustment transmission gear 502 to rotate, which in turn drives the adjustment drive gear 501 to rotate. The adjustment drive gear 501 then drives the monitoring display screen 3 to rotate. The monitoring display screen 3 stops rotating when it contacts the four sets of adjustment limit plates 504 at the rear. At the same time, the adjustment drive gear 501 disengages from the adjustment transmission gear 502, thus adjusting the angle of the monitoring display screen 3. This makes it easier for rainwater to wash the surface of the monitoring display screen 3, reducing dust adhesion. The rotation of the adjustment transmission gear 502 drives... The reversing gear 503 rotates, which in turn drives the rainproof drive gear 505 to rotate. The rotation of the rainproof drive gear 505 drives the rainproof drive rack 506 to move forward, which in turn drives the rainproof baffle 507 to move forward. The forward movement of the rainproof baffle 507 provides rain protection for the data acquisition box 2, reducing the erosion of the data acquisition box 2 by rainwater. When the rain stops, the rainproof baffle 507 and the monitoring display screen 3 are reset under the drive of the adjusting drive motor 5, preventing the rainproof baffle 507 from blocking the data acquisition box 2 on sunny days, ensuring the circulation of outside air, and improving the monitoring accuracy of outdoor carbon emissions of the data acquisition box 2. Example 2

[0036] like Figures 1 to 8 As shown: The present invention provides a real-time carbon emission monitoring device for substations. Based on the first embodiment, it further includes an auxiliary export mechanism, which is located inside the monitoring connection box 6.

[0037] The auxiliary mechanism for output includes: a drain hole 601; multiple sets of drain holes 601 are provided, and all sets of drain holes 601 are located on the inner front end of the monitoring connection box 6.

[0038] The export auxiliary mechanism also includes: an operation guide rod 602 and an operation support spring 603; two sets of operation guide rods 602 are provided, and the two sets of operation guide rods 602 are fixedly connected to the lower end of the monitoring support frame 1, and both sets of operation guide rods 602 are slidably connected to the export operation plate 8; the operation support spring 603 is fixedly connected to the lower end of the export operation plate 8, and the lower end of the operation support spring 603 is fixedly connected to the monitoring support frame 1.

[0039] The export auxiliary mechanism further includes: a first guide wheel 604, a second guide wheel 605, an operation drive rope 606, and an operation reset spring 607; the first guide wheel 604 is rotatably connected to the upper side inside the monitoring connection box 6; the second guide wheel 605 is rotatably connected to the rear end of the monitoring connection box 6; the operation drive rope 606 is wrapped around the outer periphery of the first guide wheel 604 and the second guide wheel 605, the upper end of the operation drive rope 606 is fixedly connected to the monitoring connection slider 7, and the lower end of the operation drive rope 606 is fixedly connected to the export operation plate 8; the operation reset spring 607 is fixedly connected to the rear end of the monitoring connection slider 7, and the rear end of the operation reset spring 607 is fixedly connected to the monitoring connection box 6.

[0040] The auxiliary export mechanism also includes: a sealing baffle 608, a sealing drive rod 609, and a sealing transmission rod 610; the sealing baffle 608 is hinged to the front end of the monitoring connection box 6, and a rubber block structure is fixedly connected to the lower end of the sealing baffle 608; two sets of sealing drive rods 609 are provided, and the two sets of sealing drive rods 609 are slidably connected to the left and right sides inside the monitoring connection box 6; two sets of sealing transmission rods 610 are provided, and the two sets of sealing transmission rods 610 are hinged to the left and right sides behind the sealing baffle 608, and the rear ends of the two sets of sealing transmission rods 610 are respectively hinged to the sealing drive rods 609.

[0041] The auxiliary mechanism for export also includes: a sealing connection spring 611 and a sealing limit rod 612; two sets of sealing connection springs 611 are provided, and the two sets of sealing connection springs 611 are fixedly connected to the rear end of the sealing drive rod 609, and the rear end of the two sets of sealing connection springs 611 are fixedly connected to the monitoring connection box 6; two sets of sealing limit rods 612 are provided, and the two sets of sealing limit rods 612 are fixedly connected to the upper left and right sides of the monitoring connection slider 7, and the two sets of sealing limit rods 612 overlap the front end of the sealing drive rod 609.

[0042] The specific usage and function of this embodiment are as follows: When it is necessary to export the data inside the data acquisition box 2, the operator stands above the export operation plate 8. The export operation plate 8 is squeezed and moved downwards. The downward movement of the export operation plate 8 pulls the operation drive rope 606. Under the guidance of the first guide wheel 604 and the second guide wheel 605, the operation drive rope 606 drives the monitoring connection slider 7 to move forward. The forward movement of the monitoring connection slider 7 drives the sealing limit rod 612 to move forward. The forward movement of the sealing limit rod 612 no longer limits the sealing drive rod 609. The sealing drive rod 609 moves forward under the action of the sealing connection spring 611. The forward movement of the sealing drive rod 609 drives the sealing transmission rod 610 to move forward. The forward movement of the sealing transmission rod 610 opens the sealing baffle 608. At the same time, the forward movement of the monitoring connection slider 7 facilitates the user to connect the computer to the USB-C interface, making it convenient for the testing personnel to export the monitoring and acquisition data and improving the efficiency of data export. Finally, when the data export is completed, the monitoring connection slider 7 is reset under the action of the operation support spring 603 and the operation reset spring 607.

Claims

1. A substation carbon emission real-time monitoring device, characterized in that: Including monitoring support frame (1), data acquisition box (2), monitoring display screen (3), adjusting drive box (4), adjusting drive motor (5), monitoring connection box (6), monitoring connection sliding block (7), export operation board (8), adjusting drive mechanism and export auxiliary mechanism;The data acquisition box (2) is fixedly connected above the monitoring support frame (1);The monitoring display screen (3) is hingedly connected to the upper end of the monitoring support frame (1);The adjusting drive box (4) is fixedly connected to the upper end of the monitoring support frame (1), and the outer side of the adjusting drive box (4) is provided with a humidity sensor;The adjusting drive motor (5) is a self-locking motor structure, the adjusting drive motor (5) is fixedly connected to the right side of the adjusting drive box (4), and the humidity sensor of the adjusting drive box (4) is electrically connected with the control circuit of the adjusting drive motor (5);The monitoring connection box (6) is fixedly connected below the data acquisition box (2);The monitoring connection sliding block (7) is slidably connected in the monitoring connection box (6), and the export operation board (8) is slidably connected below the outer side of the monitoring support frame (1);The adjusting drive mechanism is arranged on the upper end of the monitoring support frame (1);The export auxiliary mechanism is arranged in the inner side of the monitoring connection box (6).

2. The real time monitoring device for carbon emission of a substation as claimed in claim 1 wherein: The adjusting drive mechanism comprises: adjusting drive gear (501), adjusting transmission gear (502) and adjusting reversing gear (503);The adjusting drive gear (501) is an incomplete gear structure, and the adjusting drive gear (501) is coaxially fixedly connected to the outer side of the rotating shaft of the monitoring display screen (3);The adjusting transmission gear (502) is rotatably connected to the upper side in the adjusting drive box (4), the adjusting transmission gear (502) is engaged with the adjusting drive gear (501), and the adjusting drive motor (5) is in transmission connection with the adjusting transmission gear (502);The adjusting reversing gear (503) is rotatably connected in the adjusting drive box (4), and the adjusting reversing gear (503) is engaged with the adjusting transmission gear (502).

3. The substation carbon emission real-time monitoring device of claim 2, wherein: The adjusting drive mechanism further comprises: adjusting limit plate (504);The adjusting limit plate (504) is provided with eight groups, four groups of adjusting limit plate (504) are fixedly connected to the upper end of the monitoring support frame (1), and the other four groups of monitoring support frame (1) are fixedly connected to the lower end of the monitoring display screen (3), the front four groups of adjusting limit plate (504) realize the limiting of the monitoring display screen (3) in the vertical direction, and the rear four groups of adjusting limit plate (504) realize the limiting of the monitoring display screen (3) to the rear inclination.

4. The substation carbon emission real-time monitoring device of claim 3, wherein: The adjusting drive mechanism further comprises: rainproof drive gear (505) and rainproof drive rack (506);The rainproof drive gear (505) is provided with two groups, and the two groups of rainproof drive gear (505) are coaxially fixedly connected to the left and right sides of the adjusting reversing gear (503);The rainproof drive rack (506) is provided with two groups, and the two groups of rainproof drive rack (506) are slidably connected in the adjusting drive box (4), and the two groups of rainproof drive rack (506) are engaged with the rainproof drive gear (505).

5. The substation carbon emission real time monitoring device as claimed in claim 4, wherein: The adjusting drive mechanism further comprises a rain-shielding baffle (507), which is slidingly connected to the upper end of the monitoring support frame (1) and fixedly connected with the rain-shielding drive rack (506).

6. The substation carbon emission real time monitoring device as claimed in claim 1, wherein: The guiding auxiliary mechanism comprises a plurality of drain holes (601), which are arranged on the inner front end of the monitoring connection box (6).

7. The substation carbon emission real time monitoring device as claimed in claim 6, wherein: The guiding auxiliary mechanism further comprises two groups of operation guide rods (602) and operation support springs (603), wherein the two groups of operation guide rods (602) are fixedly connected to the lower end of the monitoring support frame (1) and slidingly connected with the guiding operation plate (8), and the operation support springs (603) are fixedly connected to the lower end of the guiding operation plate (8) and fixedly connected with the monitoring support frame (1).

8. The substation carbon emission real time monitoring device as claimed in claim 7, wherein: The guiding auxiliary mechanism further comprises a first guide wheel (604), a second guide wheel (605), an operation drive rope (606) and an operation reset spring (607), wherein the first guide wheel (604) is rotatably connected to the inner upper side of the monitoring connection box (6), the second guide wheel (605) is rotatably connected to the rear end of the monitoring connection box (6), the operation drive rope (606) is arranged around the outer periphery of the first guide wheel (604) and the second guide wheel (605), the upper end of the operation drive rope (606) is fixedly connected with the monitoring connection slider (7), the lower end of the operation drive rope (606) is fixedly connected with the guiding operation plate (8), and the operation reset spring (607) is fixedly connected to the rear end of the monitoring connection slider (7) and fixedly connected with the monitoring connection box (6).

9. The substation carbon emission real time monitoring device as claimed in claim 8, wherein: The guiding auxiliary mechanism further comprises a sealing baffle (608), sealing drive rods (609) and sealing transmission rods (610), wherein the sealing baffle (608) is hingedly connected to the front end of the monitoring connection box (6) and fixedly connected with a rubber block structure at the lower end, the two groups of sealing drive rods (609) are slidingly connected to the inner left and right sides of the monitoring connection box (6), and the two groups of sealing transmission rods (610) are hingedly connected to the rear left and right sides of the sealing baffle (608) and hingedly connected with the sealing drive rods (609) at the rear ends.

10. The substation carbon emission real time monitoring device as claimed in claim 9, wherein: The derived auxiliary mechanism further comprises sealing connection springs (611) and sealing limiting rods (612); the sealing connection springs (611) are provided in two groups, and the two groups of sealing connection springs (611) are fixedly connected to the rear ends of the sealing driving rods (609) respectively, and the rear ends of the two groups of sealing connection springs (611) are fixedly connected to the monitoring connection box (6); the sealing limiting rods (612) are provided in two groups, and the two groups of sealing limiting rods (612) are fixedly connected to the upper left and right sides of the monitoring connection sliding block (7), and the two groups of sealing limiting rods (612) are overlapped on the front ends of the sealing driving rods (609).

Citation Information

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