A remote monitoring device for power monitoring

By setting up guide rail mechanisms and moving mechanisms on the outside of the power station, combined with auxiliary and cleaning mechanisms, the problem that traditional power monitoring devices cannot be monitored without blind spots is solved, and the effect of no blind spots is achieved, reducing costs and self-cleaning is achieved.

CN116154953BActive Publication Date: 2025-07-04SHUHENGYUAN IND CHENGDU CO LTD
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Patent Information

Application Number
CN202211556639.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-06
Publication Date
2025-07-04
Estimated Expiration
2042-12-06

AI Technical Summary

Technical Problem

Traditional power monitoring devices cannot monitor overlapping control equipment without blind spots, occupy power station space and maintain difficulties, which increases the cost of power station construction.

Method used

A remote monitoring device including a guide rail mechanism, a moving mechanism, an auxiliary mechanism, a protective mechanism and a cleaning mechanism is designed. The rail mechanism is set up on the outside of the power station through the guide rail mechanism, and the mobile mechanism and an auxiliary mechanism are used to achieve blind spot monitoring. The protection mechanism provides extreme weather protection and the cleaning mechanism is self-cleaned.

Benefits of technology

It realizes blind spot monitoring, reduces the space occupied by the power station, reduces construction costs, and provides protection and self-cleaning functions in extreme weather, improving monitoring effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of power monitoring equipment, and specifically to a remote monitoring device for power monitoring, which includes a guide rail mechanism. A moving mechanism is movable on the guide rail mechanism, and an auxiliary mechanism is provided at the top of the moving mechanism; through the setting of the guide rail mechanism, the track is erected outside the power station, without occupying the internal space of the power station, and the maintenance of the monitoring equipment is relatively simple, without interfering with the internal operation of the power station. The moving mechanism and the auxiliary mechanism are mainly used to drive the monitoring main body to move along the track, facilitating the staggered observation of overlapping power control equipment and providing a non-blind-spot monitoring of various equipment. In addition, the procurement cost is reduced, and the construction cost of the power station is lowered; through the protection mechanism, a shelter is provided for the monitoring main body, providing a temporary protection function for the monitoring equipment in extreme weather and enhancing its survivability. The moving mechanism is used to adjust the spacing of the cylinder brushes in the cleaning mechanism, and the outer side of the monitoring main body is cleaned and dusted by the cylinder brushes, making the monitoring effect of the monitoring main body better.
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Description

Technical Field

[0001] The present invention relates to the field of power monitoring equipment, and more particularly to a remote monitoring device for power monitoring. Background Art

[0002] Electricity is the main driving force behind the Second Industrial Revolution. At present, in order to achieve power transmission, substations for stepping up and down voltages are built at certain intervals to improve the transmission capacity and deliver electricity to enterprises and thousands of households. In power stations and other units, special monitoring devices are used to monitor various control devices. However, traditional detection devices have a fixed angle, and some rotate at a fixed point to monitor. However, there are many controllers in the power station, which overlap with each other. The monitoring equipment cannot directly observe the control devices behind the overlap, and cannot accurately monitor the usage of the devices behind. If a large number of professional monitoring devices are widely deployed, it will occupy a part of the space in the power station and greatly increase the construction cost of the power station. In addition, the maintenance of the monitoring equipment in the power station is also a major problem. Summary of the Invention

[0003] In view of the problems in the prior art, the present invention provides a remote monitoring device for power monitoring.

[0004] The technical solution adopted by the present invention to solve its technical problems is: a remote monitoring device for power monitoring, including a guide rail mechanism, on which a moving mechanism is movable, an auxiliary mechanism is provided at the top of the moving mechanism, the auxiliary mechanism and the moving mechanism cooperate with each other, a protection mechanism is installed on the guide rail mechanism, an active mechanism is provided inside the protection mechanism, and a cleaning mechanism is installed on the active mechanism.

[0005] Specifically, the guide rail mechanism includes a track, on which a plurality of columns are fixedly connected, the columns play a horizontal supporting role for the track, a slot is respectively opened on both sides of the track, the slot is arranged at an inclined angle, and a protection plate is respectively provided on both sides of the track, and the protection plate is installed on the track through the slot.

[0006] Specifically, the track is integrally in a rectangular ring shape, and the cross section of the track is in an I shape, and a protective sleeve is engaged with a rabbet on the bottom plate.

[0007] Specifically, the moving mechanism includes a bottom plate. The bottom end of the track is provided with a bottom plate. The top end of the bottom plate is fixedly connected with a plurality of limiting rods. The plurality of limiting rods are symmetrically arranged in pairs. A fixed rod sleeve is sleeved on the limiting rod. The fixed rod sleeve is fixedly connected to the limiting rod. A first support shaft is vertically welded on the fixed rod sleeve. A shaft sleeve is rotatably connected between two corresponding first support shafts. One active wheel is fixedly connected to each end of the shaft sleeve. The active wheels are in rolling connection with the bottom end of the track. A moving motor is installed on the bottom plate. A second synchronous pulley is fixedly connected to the motor shaft of the moving motor. A first synchronous pulley is fixedly connected to the shaft sleeve. A first synchronous belt is meshed between the first synchronous pulley and the second synchronous pulley. A monitoring main body is installed at the bottom end of the bottom plate.

[0008] Specifically, the auxiliary mechanism includes a movable rod sleeve. A movable rod sleeve is slidably connected to the limiting rod. The movable rod sleeve and the fixed rod sleeve cross and overlap. A first spring is wound between the movable rod sleeve and the fixed rod sleeve. The first spring abuts between the movable rod sleeve and the fixed rod sleeve. A second support shaft is vertically welded on the movable rod sleeve. A driven wheel is rotatably connected to the second support shaft. And a deviation correction wheel is rotatably connected to the end of the second support shaft. The driven wheel and the deviation correction wheel are respectively in rolling connection with the track.

[0009] Specifically, the protection mechanism includes a protection box. A protection box is fixedly connected to one of the columns. A through notch is opened at the top end of the protection box. A liquid supply assembly is installed inside the protection box. A plurality of spray pipes are arranged inside the protection box. The spray pipes are connected to the liquid supply assembly. A water supply pipe and a liquid discharge pipe are fixedly connected to the column. The water supply pipe is connected to the liquid supply assembly. The liquid discharge pipe is used for discharging waste water.

[0010] Specifically, the movable mechanism includes a gear box. Four gear boxes are arranged inside the protection box. The plurality of gear boxes are in pairs. A second fixing frame is fixedly connected between two corresponding gear boxes. A first fixing frame is arranged at the top end of the second fixing frame. A first rotating shaft is rotatably connected to each end of the first fixing frame. The gear box and the first fixing frame are rotatably connected by a first rotating shaft. The bottom end of the first rotating shaft is rotatably connected to an extension shaft.

[0011] Specifically, two cross rods are cross-rotatably connected to the bottom end of the protection box. The end of the cross rod is slidably connected to the corresponding extension shaft. A sector gear is fixedly connected to one of the cross rods. An extension motor is installed at the bottom end of the protection box. A first gear is fixedly connected to the motor shaft of the extension motor. The first gear meshes with the sector gear. Two deflecting members are rotatably connected to the bottom end of the protection box. A connecting rod is rotatably connected between the deflecting member and each of the two cross rods.

[0012] Specifically, the cleaning mechanism includes a second rotating shaft. A second rotating shaft is provided between the two gearboxes. The second rotating shaft is movably connected to the two extension shafts. A first cylindrical brush is installed on the second rotating shaft. A second bevel gear is slidably connected to each end of the second rotating shaft. A first bevel gear is fixedly connected to the bottom end of the first rotating shaft. The first bevel gear meshes with the second bevel gear. A cleaning motor is installed inside the protective box, and the cleaning motor drives one of the second rotating shafts.

[0013] Specifically, the cleaning mechanism further includes a third rotating shaft. A plurality of third rotating shafts are rotatably connected between the first fixing frame and the second fixing frame. Second cylindrical brushes are respectively installed on the third rotating shaft and the first rotating shaft. Third synchronous pulleys are respectively installed on the third rotating shaft and the first rotating shaft. A second synchronous belt meshes between the plurality of third synchronous pulleys. A plurality of limiting rollers are installed on both sides of the first fixing frame. The limiting rollers are in rolling connection with the second synchronous belt. A plurality of auxiliary rods are rotatably connected inside the protective box.

[0014] The beneficial effects of the present invention are as follows:

[0015] 1. For the remote monitoring device for power monitoring of the present invention, through the setting of the guide rail mechanism, the track is erected outside the power station, without occupying the internal space of the power station. The maintenance of the monitoring equipment is relatively simple and will not interfere with the internal operation of the power station. The moving mechanism and the auxiliary mechanism are mainly used to drive the monitoring main body to move along the track, facilitating the misaligned observation of overlapping power control equipment and providing a non-blind-spot monitoring of various equipment. In addition, the procurement cost is reduced, and the construction cost of the power station is lowered.

[0016] 2. For the remote monitoring device for power monitoring of the present invention, the protection mechanism provides a shelter for the monitoring main body, providing a temporary protection function for the monitoring equipment in extreme weather and enhancing its survival ability. The moving mechanism is used to adjust the distance between the cylindrical brushes in the cleaning mechanism, and the outer side of the monitoring main body is cleaned and dusted by the cylindrical brushes, making the monitoring effect of the monitoring main body better. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The present invention will be further described below with reference to the drawings and embodiments.

[0018] Figure 1 It is a schematic structural diagram of the overall structure of a preferred embodiment of the remote monitoring device for power monitoring provided by the present invention;

[0019] Figure 2 For Figure 1 the connection structural diagram of the guide rail mechanism and the moving mechanism shown;

[0020] Figure 3 For Figure 2 the unfolded schematic diagram shown;

[0021] Figure 4 The Figure 3 exploded view shown;

[0022] Figure 5 The Figure 1 schematic diagram of the connection structure of the guide rail mechanism and the protection mechanism shown;

[0023] Figure 6 The Figure 5 schematic diagram of the connection structure of the protection mechanism, the moving mechanism and the cleaning mechanism shown;

[0024] Figure 7 The Figure 6 schematic diagram of another angle shown;

[0025] Figure 8 The Figure 6 schematic diagram of the connection structure of the moving mechanism and the cleaning mechanism shown;

[0026] Figure 9 The Figure 8 schematic diagram of another angle shown.

[0027] In the figure:,, guide rail mechanism; 11, track; 12, column; 13, slot; 14, protection plate; 2, moving mechanism; 21, bottom plate; 22, limit rod; 23, fixed rod sleeve; 24, first support shaft; 25, bushing; 26, driving wheel; 27, first synchronous pulley; 28, moving motor; 29, second synchronous pulley; 291, first synchronous belt; 292, monitoring main body; 293, protective sleeve; 3, auxiliary mechanism; 31, movable rod sleeve; 32, first spring; 33, second support shaft; 34, driven wheel; 35, deviation correction wheel; 4, protection mechanism; 41, protection box; 42, liquid supply assembly; 43, spray pipe; 44, water supply pipe; 45, drain pipe; 46, through notch; 5, moving mechanism; 51, gear box; 52, first fixing frame; 53, second fixing frame; 54, first rotating shaft; 55, extension shaft; 56, cross bar; 57, sector gear; 58, extending motor; 59, first gear; 591, deflecting member; 592, connecting rod; 6, cleaning mechanism; 61, limiting roller; 62, first bevel gear; 63, second rotating shaft; 64, first cylindrical brush; 65, second bevel gear; 66, cleaning motor; 67, auxiliary rod; 68, second cylindrical brush; 69, third synchronous pulley; 691, second synchronous belt; 692, third rotating shaft. Specific Embodiments

[0028] In order to make the technical means, creative features, achieved purposes and effects of the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments.

[0029] As Figure 1 - Figure 9As shown in the figure, a remote monitoring device for power monitoring according to the present invention includes a guide rail mechanism 1, a moving mechanism 2 is movable on the guide rail mechanism 1, an auxiliary mechanism 3 is provided at the top of the moving mechanism 2, the auxiliary mechanism 3 and the moving mechanism 2 cooperate with each other, a protection mechanism 4 is installed on the guide rail mechanism 1, an active mechanism 5 is provided inside the protection mechanism 4, and a cleaning mechanism 6 is installed on the active mechanism 5.

[0030] Specifically, the guide rail mechanism 1 includes a track 11, a plurality of columns 12 are fixedly connected to the track 11, the columns 12 play a role in horizontally supporting the track 11, a slot 13 is respectively opened on both sides of the track 11, the slot 13 is arranged at an inclined angle, and a protection plate 14 is respectively provided on both sides of the track 11, and the protection plate 14 is installed on the track 11 through the slot 13; the track 11 is integrally rectangular ring-shaped, and the cross-section of the track 11 is I-shaped, and a protective sleeve 293 is engaged with a rabbet on the bottom plate 21; as Figure 1 shown, the track 11 is used to provide a moving channel for the monitoring main body 292, and the length and width of the track 11 can be replaced according to the size of the power station. The plurality of columns 12 play a role in horizontally supporting the track 11. The slots 13 with inclined angles are provided on both sides of the track 11. The slots 13 facilitate the quick installation of the protection plates 14 and improve the anti-entrapment function. The two protection plates 14 can protect the moving mechanism 2 and the auxiliary mechanism 3, prevent rain and snow, and avoid affecting the movement of the monitoring main body 292.

[0031] Specifically, the moving mechanism 2 includes a bottom plate 21, the bottom plate 21 is provided at the bottom end of the track 11, a plurality of limiting rods 22 are fixedly connected to the top end of the bottom plate 21, the plurality of limiting rods 22 are arranged in pairs symmetrically, a fixed rod sleeve 23 is sleeved on the limiting rods 22, the fixed rod sleeve 23 is fixedly connected to the limiting rods 22, a first support shaft 24 is vertically welded on the fixed rod sleeve 23, a shaft sleeve 25 is rotatably connected between two corresponding first support shafts 24, a driving wheel 26 is fixedly connected to each end of the shaft sleeve 25, the driving wheel 26 is in rolling connection with the bottom end of the track 11, a moving motor 28 is installed on the bottom plate 21, a second synchronous pulley 29 is fixedly connected to the motor shaft of the moving motor 28, a first synchronous pulley 27 is fixedly connected to the shaft sleeve 25, and a first synchronous belt 291 is engaged between the first synchronous pulley 27 and the second synchronous pulley 29. A monitoring main body 292 is installed at the bottom end of the bottom plate 21; as Figures 2 - 4As shown, when driving the movement of the monitoring body 292, the movement motor 28 is started. The movement motor 28 drives the second synchronous pulley 29 to rotate. The first synchronous belt 291 drives the two first synchronous pulleys 27 to rotate synchronously. The shaft sleeve 25 synchronously drives the driving wheels 26 at both ends to rotate. The driving wheels 26 roll at the bottom end of the track 11, so as to reversely drive the movement of the bottom plate 21, that is, drive the monitoring body 292 installed at the bottom end of the bottom plate 21 to move.

[0032] Specifically, the auxiliary mechanism 3 includes a movable rod sleeve 31. The movable rod sleeve 31 is slidably connected to the limiting rod 22. The movable rod sleeve 31 and the fixed rod sleeve 23 cross and overlap with each other. A first spring 32 is wound between the movable rod sleeve 31 and the fixed rod sleeve 23. The first spring 32 abuts between the movable rod sleeve 31 and the fixed rod sleeve 23. A second support shaft 33 is vertically welded to the movable rod sleeve 31. A driven wheel 34 is rotatably connected to the second support shaft 33. And a deviation rectifying wheel 35 is rotatably connected to the end of the second support shaft 33. The driven wheel 34 and the deviation rectifying wheel 35 are respectively in rolling connection with the track 11; as Figure 4 shown, the movable rod sleeve 31 is slidably connected to the limiting rod 22. The movable rod sleeve 31 and the fixed rod sleeve 23 have the same size and dimension, and cross and overlap with each other. And they are under the abutting action of the first spring 32, so that the first support shaft 24 and the second support shaft 33 are clamped on both sides of the track 11. The second support shaft 33 drives the driven wheel 34 to closely fit the side wall of the track 11. The first support shaft 24 drives the driving wheel 26 to closely fit the bottom end of the track 11. In addition, the deviation rectifying wheel 35 is in rolling connection with the rib plate of the track 11, so as to improve the movement effect while facilitating turning along the rounded corner of the track 11, and greatly improve the passing performance.

[0033] Specifically, the protection mechanism 4 includes a protection box 41. The protection box 41 is fixedly connected to one of the columns 12. A through notch 46 is opened at the top end of the protection box 41. A liquid supply assembly 42 is installed inside the protection box 41. A plurality of spray pipes 43 are arranged inside the protection box 41. The spray pipes 43 are connected to the liquid supply assembly 42. A water supply pipe 44 and a liquid discharge pipe 45 are fixedly connected to the column 12. The water supply pipe 44 is connected to the liquid supply assembly 42. The liquid discharge pipe 45 is used for discharging waste water; as Figures 5 - 6As shown, a protection box 41 is installed on one of the columns 12. A through notch 46 is provided on the protection box 41. The through notch 46 facilitates the monitoring main body 292 to enter the interior of the protection box 41. The protection box 41 can play a good protective role for the monitoring main body 292 and provide a temporary shelter in extreme weather. The liquid supply assembly 42 extracts cleaning liquid through the water supply pipe 44 and discharges it through the spray pipe 43 to be sprayed onto the first cylindrical brush 64 and the second cylindrical brush 68. The drain pipe 45 is used to drain the waste liquid into a special storage container to avoid polluting the environment.

[0034] Specifically, the moving mechanism 5 includes a gear box 51. Four gear boxes 51 are provided inside the protection box 41. A plurality of the gear boxes 51 are in pairs. A second fixing frame 53 is fixedly connected between two corresponding gear boxes 51. A first fixing frame 52 is provided at the top of the second fixing frame 53. A first rotating shaft 54 is rotatably connected to each end of the first fixing frame 52. The gear box 51 and the first fixing frame 52 are rotatably connected by a first rotating shaft 54. The bottom end of the first rotating shaft 54 is rotatably connected to an extension shaft 55. Two cross bars 56 are cross-rotatably connected to the bottom end of the protection box 41. The end of the cross bar 56 is slidably connected to the corresponding extension shaft 55. A sector gear 57 is fixedly connected to one of the cross bars 56. An extension motor 58 is installed at the bottom end of the protection box 41. A first gear 59 is fixedly connected to the motor shaft of the extension motor 58. The first gear 59 meshes with the sector gear 57. Two deflecting members 591 are rotatably connected to the bottom end of the protection box 41. A connecting rod 592 is rotatably connected between the deflecting member 591 and each of the two cross bars 56. As Figure 7 shown, when cleaning the monitoring main body 292, first, the moving motor 28 is started to transfer the monitoring main body 292 into the interior of the protection box 41. The extension motor 58 is started. The first gear 59 meshes with the sector gear 57 to drive one of the cross bars 56 to deflect. Then, through the deflecting member 591 and the connecting rod 592, the other cross bar 56 is driven to rotate in the opposite direction. The two cross bars 56 act on the corresponding extension shafts 55. The extension shafts 55 drive the two rows of second cylindrical brushes 68 to approach the monitoring main body 292, preliminarily completing the preparation work before cleaning.

[0035] Specifically, the cleaning mechanism 6 includes a second rotating shaft 63, a second rotating shaft 63 is provided between the two gear boxes 51, the second rotating shaft 63 and the two extension shafts 55 are movably connected, a first cylinder brush 64 is installed on the second rotating shaft 63, and a second bevel tooth 65 is slidably connected at both ends of the second rotating shaft 63, and a first bevel tooth 62 is fixedly connected to the bottom end of the first rotating shaft 54, and the first bevel tooth 62 and the second bevel tooth 65 are meshed with each other. A cleaning motor 66 is installed inside the protective box 41, and the cleaning motor 66 drives one of the second rotating shafts 63; the cleaning machine The structure 6 also includes a third rotating shaft 692, a plurality of third rotating shafts 692 are rotatably connected between the first fixed frame 52 and the second fixed frame 53, a second barrel brush 68 is respectively installed on the third rotating shaft 692 and the first rotating shaft 54, a third synchronous wheel 69 is respectively installed on the third rotating shaft 692 and the first rotating shaft 54, a second synchronous belt 691 is meshed between the plurality of third synchronous wheels 69, a plurality of limiting rollers 61 are installed on both sides of the first fixed frame 52, the limiting rollers 61 are rollingly connected to the second synchronous belt 691, and a plurality of auxiliary rods 67 are rotatably connected to the inside of the protective box 41; Figures 8 - 9 As shown, the spray pipe 43 releases the cleaning liquid, and the cleaning motor 66 drives one of the second rotating shafts 63. Then, the first bevel gear 62 and the second bevel gear 65 are meshed with each other, and the power transmission effect of the third synchronous wheel 69 and the second synchronous belt 691 drives the first barrel brush 64 and the second barrel brush 68 to rotate synchronously, so as to contact and clean the monitoring body 292 to help the monitoring body 292 to be better monitored. The monitoring body 292 rotates so that the barrel brush can clean the monitoring body 292 without dead angles. After the cleaning is completed, the extension motor 58 is driven to reverse so that the second barrel brush 68 squeezes the auxiliary rod 67 during rolling, squeezes out the sewage inside the barrel brush, and plays a dehydration and purification role. A plurality of limiting rollers 61 are provided on both sides of the first fixed frame 52. The limiting rollers 61 limit the second synchronous belt 691, so that the second synchronous belt 691 and the plurality of third synchronous wheels 69 maintain a good driving effect. The second rotating shaft 63 can be slidably or rotatably connected to the extension shaft 55.

[0036] When the present invention is used, Figure 1 As shown, the track 11 is used to provide a moving channel for the monitoring body 292. The length and width of the track 11 can be changed according to the size of the power station. The multiple columns 12 play a role of horizontal support for the track 11. Both sides of the track 11 are provided with slots 13 at an inclined angle. The slots 13 facilitate the quick installation of the protective plates 14 to enhance the anti-escaping effect. The two protective plates 14 can protect the mobile mechanism 2 and the auxiliary mechanism 3, block rain and snow, and avoid affecting the movement of the monitoring body 292; Figures 2 - 4As shown in the figure, when driving the movement of the monitoring main body 292, the moving motor 28 is started. The moving motor 28 drives the second synchronous wheel 29 to rotate. The two first synchronous wheels 27 are driven by the first synchronous belt 291 to rotate synchronously. The bushing 25 drives the driving wheels 26 at both ends to rotate synchronously. The driving wheels 26 roll at the bottom end of the track 11, so as to realize the reverse driving of the bottom plate 21 to move, that is, drive the monitoring main body 292 installed at the bottom end of the bottom plate 21 to move; as Figure 4 shown, a movable rod sleeve 31 is slidably connected to the limiting rod 22. The movable rod sleeve 31 and the fixed rod sleeve 23 have the same size and dimension. The two overlap with each other and are resisted by the first spring 32, so that the first support shaft 24 and the second support shaft 33 are clamped on both sides of the track 11. The second support shaft 33 drives the driven wheel 34 to closely fit the side wall of the track 11, and the first support shaft 24 drives the driving wheel 26 to closely fit the bottom end of the track 11. In addition, the deviation correction wheel 35 is in rolling connection with the rib plate of the track 11, so as to improve the moving effect and facilitate turning along the rounded corner of the track 11, greatly improving the passability; as Figures 5 - 6 shown, a protective box 41 is installed on one of the columns 12. The protective box 41 is provided with a through slot 46. The through slot 46 facilitates the monitoring main body 292 to enter the interior of the protective box 41. The protective box 41 can play a good protective role for the monitoring main body 292 and can provide a temporary shelter in extreme weather. The liquid supply assembly 42 extracts the cleaning liquid through the water supply pipe 44 and discharges it through the spray pipe 43 to be sprayed on the first cylinder brush 64 and the second cylinder brush 68. The drain pipe 45 is used to lead the waste liquid to a special storage container to avoid polluting the environment; as Figure 7 shown, when cleaning the monitoring main body 292, first, the moving motor 28 is started to transfer the monitoring main body 292 into the protective box 41. The stretching motor 58 is started, and the first gear 59 meshes with the sector gear 57 to drive one of the cross rods 56 to deflect. Then, through the deflecting member 591 and the connecting rod 592, the other cross rod 56 is driven to rotate in the reverse direction. The two cross rods 56 act on the corresponding extension shafts 55, and the extension shafts 55 drive the two rows of second cylinder brushes 68 to approach the monitoring main body 292, preliminarily completing the preparation work before cleaning; as Figures 8 - 9As shown, the spray pipe 43 releases the cleaning liquid, and the cleaning motor 66 drives one of the second rotating shafts 63. Then, through the meshing of the first bevel gear 62 and the second bevel gear 65, and the power transmission of the third synchronous pulley 69 and the second synchronous belt 691, the first cylindrical brush 64 and the second cylindrical brush 68 are driven to rotate synchronously to perform contact cleaning and descaling on the monitoring main body 292, helping the monitoring main body 292 to monitor better. The monitoring main body 292 rotates itself, enabling the cylindrical brush to clean the monitoring main body 292 without dead angles. After the cleaning is completed, the driving extension motor 58 rotates in reverse, causing the second cylindrical brush 68 to squeeze the auxiliary rod 67 during rolling, squeezing out the sewage inside the cylindrical brush, playing a role in dehydration and purification. A plurality of limiting rollers 61 are provided on both sides of the first fixing frame 52, and the limiting rollers 61 limit the second synchronous belt 691, enabling the second synchronous belt 691 and the plurality of third synchronous pulleys 69 to maintain a good driving effect. The second rotating shaft 63 is both slidably and rotatably connected to the extension shaft 55.

[0037] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be regarded as limiting the claims involved.

[0038] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A remote monitoring device for power monitoring, characterized in that, It includes a guide rail mechanism (1), on which a moving mechanism (2) is movable. An auxiliary mechanism (3) is provided at the top of the moving mechanism (2). The auxiliary mechanism (3) and the moving mechanism (2) cooperate with each other. A protection mechanism (4) is installed on the guide rail mechanism (1). An active mechanism (5) is provided inside the protection mechanism (4). A cleaning mechanism (6) is installed on the active mechanism (5); The protection mechanism (4) provides a shelter for the monitoring body (292), and the active mechanism (5) is used to adjust the distance between the second cylinder brushes (68) in the cleaning mechanism (6). The guide rail mechanism (1) includes a track (11), and a plurality of columns (12) are fixedly connected to the track (11). The columns (12) play a horizontal supporting role for the track (11). A slot (13) is respectively opened on both sides of the track (11). The slot (13) is arranged at an inclined angle. A protection plate (14) is respectively provided on both sides of the track (11). The protection plate (14) is installed on the track (11) through the slot (13). The moving mechanism (2) includes a bottom plate (21). The bottom plate (21) is provided at the bottom end of the track (11). A plurality of limit rods (22) are fixedly connected to the top end of the bottom plate (21). The plurality of limit rods (22) are arranged in pairs symmetrically. A fixed rod sleeve (23) is sleeved on the limit rod (22). The fixed rod sleeve (23) is fixedly connected to the limit rod (22). A first support shaft (24) is vertically welded to the fixed rod sleeve (23). A shaft sleeve (25) is rotatably connected between two corresponding first support shafts (24). An active wheel (26) is fixedly connected to each end of the shaft sleeve (25). The active wheel (26) is in rolling connection with the bottom end of the track (11). A moving motor (28) is installed on the bottom plate (21). A second synchronous wheel (29) is fixedly connected to the motor shaft of the moving motor (28). A first synchronous wheel (27) is fixedly connected to the shaft sleeve (25). A first synchronous belt (291) is engaged between the first synchronous wheel (27) and the second synchronous wheel (29). A monitoring body (292) is installed at the bottom end of the bottom plate (21). The auxiliary mechanism (3) includes a movable rod sleeve (31). The movable rod sleeve (31) is slidably connected to the limit rod (22). The movable rod sleeve (31) and the fixed rod sleeve (23) cross and overlap. A first spring (32) is wound between the movable rod sleeve (31) and the fixed rod sleeve (23). The first spring (32) abuts between the movable rod sleeve (31) and the fixed rod sleeve (23). A second support shaft (33) is vertically welded to the movable rod sleeve (31). A driven wheel (34) is rotatably connected to the second support shaft (33). And a deviation correction wheel (35) is rotatably connected to the end of the second support shaft (33). The driven wheel (34) and the deviation correction wheel (35) are respectively in rolling connection with the track (11).

2. The remote monitoring device for power monitoring according to claim 1, characterized in that, The track (11) is integrally in a rectangular ring shape, and the cross-section of the track (11) is in an I-shaped, and a protective sleeve (293) is engaged with a rabbet on the bottom plate (21).

3. A remote monitoring device for power monitoring according to claim 1, characterized in that, The protection mechanism (4) includes a protection box (41), and a protection box (41) is fixedly connected to one of the columns (12). A through notch (46) is opened at the top end of the protection box (41). A liquid supply assembly (42) is installed inside the protection box (41). A plurality of spray pipes (43) are provided inside the protection box (41). The spray pipes (43) are connected to the liquid supply assembly (42). A water supply pipe (44) and a drain pipe (45) are fixedly connected to the column (12). The water supply pipe (44) is connected to the liquid supply assembly (42). The drain pipe (45) is used for draining waste water.

4. The remote monitoring device for power monitoring according to claim 3, characterized in that, The movable mechanism (5) includes a gear box (51). Four gear boxes (51) are provided inside the protection box (41). The plurality of gear boxes (51) are in pairs. A second fixing frame (53) is fixedly connected between two corresponding gear boxes (51). A first fixing frame (52) is provided at the top end of the second fixing frame (53). A first rotating shaft (54) is rotatably connected to each end of the first fixing frame (52). The gear box (51) and the first fixing frame (52) are rotatably connected by a first rotating shaft (54). The bottom end of the first rotating shaft (54) is rotatably connected to an extension shaft (55).

5. A remote monitoring device for power monitoring according to claim 4, characterized in that, Two cross bars (56) are cross-rotatably connected to the bottom end of the protection box (41). The ends of the cross bars (56) are slidably connected to the corresponding extension shafts (55). A sector gear (57) is fixedly connected to one of the cross bars (56). An extension motor (58) is installed at the bottom end of the protection box (41). A first gear (59) is fixedly connected to the motor shaft of the extension motor (58). The first gear (59) meshes with the sector gear (57). Two deflecting members (591) are rotatably connected to the bottom end of the protection box (41). A connecting rod (592) is rotatably connected between the deflecting member (591) and each of the two cross bars (56).

6. The remote monitoring device for power monitoring according to claim 5, characterized in that, The cleaning mechanism (6) includes a second rotating shaft (63). A second rotating shaft (63) is provided between the two gear boxes (51). The second rotating shaft (63) is movably connected to the two extension shafts (55). A first cylindrical brush (64) is installed on the second rotating shaft (63). A second bevel gear (65) is slidably connected to each end of the second rotating shaft (63). A first bevel gear (62) is fixedly connected to the bottom end of the first rotating shaft (54). The first bevel gear (62) meshes with the second bevel gear (65). A cleaning motor (66) is installed inside the protection box (41). The cleaning motor (66) drives one of the second rotating shafts (63).

7. A remote monitoring device for power monitoring according to claim 6, characterized in that, The cleaning mechanism (6) further includes a third rotating shaft (692). A plurality of third rotating shafts (692) are rotatably connected between the first fixing frame (52) and the second fixing frame (53). Second cylinder brushes (68) are respectively installed on the third rotating shaft (692) and the first rotating shaft (54). Third synchronous pulleys (69) are respectively installed on the third rotating shaft (692) and the first rotating shaft (54). A second synchronous belt (691) meshes between the plurality of third synchronous pulleys (69). A plurality of limiting rollers (61) are installed on both sides of the first fixing frame (52). The limiting rollers (61) are in rolling connection with the second synchronous belt (691). A plurality of auxiliary rods (67) are rotatably connected inside the protection box (41).

Citation Information

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