A remote-controlled intelligent control center monitoring console
Through the active detection and automatic replenishment mechanism of conductive coating damage, combined with the deployment of temporary shielding layer, the problem of electromagnetic shielding performance degradation caused by conductive coating damage is solved, and the automatic detection and timely replenishment of the monitoring console are realized to ensure stable operation of the equipment.
Patent Information
- Application Number
- CN202511025058.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-24
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2045-07-24
Smart Images

Figure CN120529530B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of electrical equipment casings, and in particular relates to an intelligent control center monitoring console based on remote control. Background Art
[0002] As the wave of digitalization and intelligence sweeps across various industries, remote-controlled intelligent control center monitoring consoles have become key facilities for achieving efficient management and precise control. They break geographical restrictions and allow operators to remotely monitor and control various equipment and systems in real time. They are widely used in energy, transportation, industrial manufacturing and other fields. For example, the patent with patent announcement number CN118741904A proposes a remote-controlled intelligent control center monitoring console.
[0003] The shell of the monitoring console is made of high-strength metal material, and the surface is treated with anti-static and anti-corrosion to ensure the stable operation of the equipment in complex environments. A layer of conductive coating is usually sprayed on the surface of the shell. The setting of the conductive coating can block the influence of external high-frequency electromagnetic interference (such as inverters, radars, and wireless signals) on the internal circuit of the console, avoiding control signal distortion, data transmission errors or component malfunctions. The conductive coating can quickly guide the static electricity accumulated on the surface of the shell (such as human contact and friction) to the grounding system to prevent electrostatic discharge from damaging sensitive electronic components. However, in actual use, when the shell of the monitoring console is subjected to collision, friction, or aging corrosion, the conductive coating will be damaged and fall off, thereby affecting the electromagnetic shielding performance of the monitoring console. At present, manual regular inspection of whether the conductive coating is damaged is not only time-consuming and labor-intensive, but also the long inspection interval leads to untimely inspection and inconvenient processing, affecting the stability of the entire monitoring console. Summary of the Invention
[0004] The purpose of the present invention is to provide a remote control-based intelligent control center monitoring console to address the above problems.
[0005] To achieve the above objectives, the present invention adopts the following technical solutions: a remote-controlled intelligent control center monitoring console, comprising a cabinet, the outer surface of which is sprayed with a conductive coating, an intelligent control console mounted on the upper end of the cabinet, an intelligent control display mounted on the rear side of the upper end of the intelligent control console, and further comprising:
[0006] Four sets of conductive coating damage active detection mechanisms are fixedly installed on four sides of the cabinet;
[0007] The conductive coating automatic replenishing mechanism is fixedly mounted on the mobile end of the conductive coating damage active detection mechanism and is electrically connected to the PLC controller. The PLC controller controls the operation of the conductive coating automatic replenishing mechanism based on the conductive coating damage signal fed back by the conductive coating damage active detection mechanism.
[0008] A single detection damage area statistics mechanism is fixedly mounted on the conductive coating damage active detection mechanism;
[0009] Four sets of temporary shielding layer deployment mechanisms are fixedly installed on four sides of the inner wall of the cabinet and are electrically connected to the PLC controller. The PLC controller controls the operation of the temporary shielding layer deployment mechanisms based on the signal fed back by the single detection damage area statistics mechanism;
[0010] Four groups of power supply mechanisms are fixedly installed at the lower end of the cabinet and are respectively connected to the four groups of conductive coating damage active detection mechanisms and temporary shielding layer deployment mechanisms.
[0011] In the above-mentioned remote-controlled intelligent control center monitoring console, the conductive coating damage active detection mechanism includes two horizontal plates symmetrically fixedly installed on one side of the cabinet, a reciprocating screw is rotatably connected between the two horizontal plates, the rod wall of the reciprocating screw is threadedly sleeved with a lifting seat, a longitudinal electric slide is fixedly installed on the side of the lifting seat close to the cabinet, the moving end of the longitudinal electric slide is fixedly connected to a mounting plate, and an electromagnetic radiation detector is fixedly installed on the side of the mounting plate close to the cabinet.
[0012] In the above-mentioned remote-controlled intelligent control center monitoring console, the conductive coating automatic replenishment mechanism includes two micro-electric slides symmetrically fixedly installed on the side walls of the mounting plate, the moving ends of the micro-electric slides are fixedly connected to extension rods, and the ends of the two extension rods away from the micro-electric slides are fixedly connected to the same buffer tube, and the side of the buffer tube close to the cabinet is evenly fixedly connected to multiple spray heads, and a storage box is fixedly installed on the upper end of the lifting seat, and the storage box and the buffer tube are fixedly connected through a feeding pipe, and a feeding pump is installed on the feeding pipe, and the feeding pump is fixedly installed on the side wall of the mounting plate, and the feeding pipe is an elastic telescopic tube.
[0013] In the above-mentioned remote-controlled intelligent control center monitoring console, the single-detection damage area statistics mechanism includes a statistical circular shell fixedly installed at the rear end of the lifting seat, and a rotating shaft is rotatably connected at the center of the inner wall of the statistical circular shell. A trigger switch is fixedly installed on one side of the inner wall of the statistical circular shell, and a connecting rod is fixedly connected to the shaft wall of the rotating shaft. The end of the connecting rod away from the rotating shaft is fixedly connected to an arc-shaped trigger block corresponding to the position of the trigger switch. A servo motor for driving the rotating shaft to rotate is fixedly installed on the outer wall of the statistical circular shell, and the output end of the servo motor and one end of the rotating shaft are connected through a first magnetic connection component. A torsion reset spring is fixedly installed outside the rotating shaft between the first magnetic connection component and the statistical circular shell.
[0014] In the above-mentioned remote-controlled intelligent control center monitoring console, the temporary shielding layer deployment mechanism includes a bidirectional screw rotatably connected to the inner wall of the cabinet, and the rod wall of the bidirectional screw is symmetrically threaded with two movable plates, and the movable plate and the opposite side of the cabinet are fixedly connected to an emergency shielding net with an elastic structure.
[0015] In the above-mentioned remote-controlled intelligent control center monitoring console, the power supply mechanism includes a plurality of bearing seats fixedly installed on the cabinet and the lower side of the horizontal plate, the inner walls of the plurality of bearing seats are rotatably sleeved with a transmission shaft through ball bearings, and the lower end of the cabinet is also fixedly installed with a driving motor for driving the transmission shaft to rotate. The lower end of the horizontal plate is fixedly installed with a first U-shaped positioning plate corresponding to the position of the reciprocating screw, and the horizontal part of the first U-shaped positioning plate is rotatably sleeved with a first linkage shaft, and the lower end of the cabinet is fixedly installed with a second U-shaped positioning plate corresponding to the position of the bidirectional screw, and the horizontal part of the second U-shaped positioning plate is rotatably sleeved with a second linkage shaft, the upper end of the first linkage shaft is transmission-connected to the lower end of the reciprocating screw through a second magnetic connection assembly, the upper end of the second linkage shaft and the lower end of the bidirectional screw are transmission-connected through a third magnetic connection assembly, the transmission shaft and the first linkage shaft are transmission-connected through a first bevel gear assembly, and the transmission shaft and the second linkage shaft are transmission-connected through a second bevel gear assembly.
[0016] In the above-mentioned remote-controlled intelligent control center monitoring console, a plurality of limit slide bars are fixedly connected between the upper and lower horizontal plates, and a plurality of limit slide holes slidably connected to the limit slide bars are provided on the surface of the lifting seat.
[0017] In the above-mentioned remote-controlled intelligent control center monitoring console, the side wall of the movable plate is fixedly connected to a limit slider, and the inner wall of the cabinet is provided with a limit slot that matches and slides with the limit slider.
[0018] Compared with the existing technology, the beneficial effects of the present invention are:
[0019] By setting up the active detection mechanism for conductive coating damage and the power supply mechanism, the degree of damage of the conductive coating on the outer surface of the cabinet can be detected quickly and automatically according to usage requirements, and further strengthened support can be formed on the outside of the cabinet to improve the structural stability of the entire monitoring console, and it can effectively block and protect, reduce the damage to the conductive coating on the outer surface of the monitoring console caused by collision and friction, and provide better protection.
[0020] By setting up an automatic conductive coating replenishment mechanism, when the conductive coating is detected to be damaged on the outer surface of the cabinet, the conductive coating can be automatically replenished and sprayed without manual operation, making the replenishment of the conductive coating more timely and convenient, and the replenishment amount of the conductive coating can be automatically adjusted based on the degree of damage of the conductive coating, making the replenishment of the conductive coating more accurate.
[0021] By setting up a single detection damage area statistics mechanism, a temporary shielding layer deployment mechanism, and a power supply mechanism, it is possible to perform statistical calculations on the damaged area of the conductive coating during the detection of the conductive coating on the outer surface of the cabinet. When it is detected that the damaged area of the conductive coating reaches a threshold, the temporary shielding layer deployment mechanism is quickly started to temporarily restore the electromagnetic shielding effectiveness of the cabinet, and promptly alert the staff to deal with the problem of large-area conductive coating damage and confirm the source of the problem. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a schematic diagram of the three-dimensional structure of the present invention;
[0023] Figure 2 It is a schematic diagram of the front cross-sectional structure of the present invention;
[0024] Figure 3 yes Figure 2 Enlarged view of part A;
[0025] Figure 4 It is a structural schematic diagram of the conductive coating automatic replenishing mechanism of the present invention;
[0026] Figure 5 yes Figure 4 Schematic diagram of the three-dimensional structure of the connection between the middle mounting plate and the buffer tube;
[0027] Figure 6 It is a schematic cross-sectional view of the single detection damage area statistics mechanism of the present invention.
[0028] In the figure: 1 cabinet, 2 conductive coating damage active detection mechanism, 21 horizontal plate, 22 reciprocating screw, 23 lifting seat, 24 longitudinal electric slide, 25 mounting plate, 26 electromagnetic radiation detector, 27 limit slide, 3 conductive coating automatic replenishment mechanism, 31 micro electric slide, 32 extension rod, 33 buffer tube, 34 spray head, 35 storage box, 36 feed pipe, 37 feed pump, 4 single detection damage area statistics mechanism, 41 statistical round shell, 42 rotating shaft, 43 trigger switch, 44 connecting rod, 45 arc trigger block, 46 Servo motor, 47 first magnetic connection assembly, 48 torsion return spring, 5 temporary shielding layer deployment mechanism, 51 bidirectional screw, 52 movable plate, 53 emergency shielding net, 6 power supply mechanism, 61 bearing seat, 62 transmission shaft, 63 drive motor, 64 first U-shaped positioning plate, 65 first linkage shaft, 66 second U-shaped positioning plate, 67 second linkage shaft, 68 second magnetic connection assembly, 69 third magnetic connection assembly, 610 first bevel gear assembly, 611 second bevel gear assembly, 7 intelligent control console, 8 intelligent control display screen. DETAILED DESCRIPTION
[0029] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0030] like Figures 1-6 As shown, a remote-controlled intelligent control center monitoring console includes a cabinet 1, the outer surface of the cabinet 1 is sprayed with a conductive coating, an intelligent control console 7 is installed at the upper end of the cabinet 1, and an intelligent control display screen 8 is installed on the upper rear side of the intelligent control console 7. The console 7 also includes:
[0031] Four groups of conductive coating damage active detection mechanisms 2 are respectively fixedly installed on the four sides of the cabinet 1. The conductive coating damage active detection mechanism 2 includes two horizontal plates 21 symmetrically fixedly installed on one side of the cabinet 1. A reciprocating screw rod 22 is rotatably connected between the two horizontal plates 21. The rod wall of the reciprocating screw rod 22 is threadedly sleeved with a lifting seat 23. A longitudinal electric slide rail 24 is fixedly installed on the side of the lifting seat 23 close to the cabinet 1. The moving end of the longitudinal electric slide rail 24 is fixedly connected to a mounting plate 25. An electromagnetic radiation detector 26 is fixedly installed on the side of the mounting plate 25 close to the cabinet 1. A plurality of limit slide rods 27 are also fixedly connected between the upper and lower horizontal plates 21. A plurality of limit slide holes that are slidably sleeved with the limit slide rods 27 are opened on the surface of the lifting seat 23.
[0032] The conductive coating automatic replenishing mechanism 3 is fixedly mounted on the mobile end of the conductive coating damage active detection mechanism 2 and is electrically connected to the PLC controller. The PLC controller controls the action of the conductive coating automatic replenishing mechanism 3 based on the conductive coating damage signal fed back by the conductive coating damage active detection mechanism 2. The conductive coating automatic replenishing mechanism 3 includes two micro electric slides 31 symmetrically fixedly mounted on the side wall of the mounting plate 25. The mobile end of the micro electric slide 31 is fixedly connected to an extension rod 32. The two extension rods 32 are fixedly connected to the same buffer tube 33 at one end away from the micro electric slide 31. The buffer tube 33 is evenly fixedly connected to a plurality of spray heads 34 on the side close to the cabinet 1. A storage box 35 is fixedly mounted on the upper end of the lifting seat 23. The storage box 35 and the buffer tube 33 are fixedly connected through a feeding pipe 36. A feeding pump 37 is installed on the feeding pipe 36. The feeding pump 37 is fixedly mounted on the side wall of the mounting plate 25. The feeding pipe 36 is an elastic telescopic tube.
[0033] The single detection damage area statistics mechanism 4 is fixedly mounted on the conductive coating damage active detection mechanism 2, and the single detection damage area statistics mechanism 4 includes a statistical circular shell 41 fixedly mounted on the rear end of the lifting seat 23, and a rotating shaft 42 is rotatably connected at the center of the inner wall of the statistical circular shell 41. A trigger switch 43 is fixedly mounted on one side of the inner wall of the statistical circular shell 41, and a connecting rod 44 is fixedly connected to the shaft wall of the rotating shaft 42. The end of the connecting rod 44 away from the rotating shaft 42 is fixedly connected to an arc-shaped trigger block 45 corresponding to the position of the trigger switch 43. A servo motor 46 for driving the rotating shaft 42 to rotate is fixedly mounted on the outer wall of the statistical circular shell 41, and the output end of the servo motor 46 and one end of the rotating shaft 42 are connected through a first magnetic connection component 47. A torsion reset spring 48 is fixedly mounted outside the rotating shaft 42 between the first magnetic connection component 47 and the statistical circular shell 41.
[0034] Four groups of temporary shielding layer deployment mechanisms 5 are fixedly installed on the four sides of the inner wall of the cabinet 1 and are electrically connected to the PLC controller. The PLC controller controls the action of the temporary shielding layer deployment mechanism 5 based on the signal feedback from the single detection damage area statistics mechanism 4. The temporary shielding layer deployment mechanism 5 includes a bidirectional screw 51 rotatably connected to the inner wall of the cabinet 1. The rod wall of the bidirectional screw 51 is symmetrically threaded with two movable plates 52. The movable plate 52 and the opposite side of the cabinet 1 are fixedly connected to an emergency shielding net 53 with an elastic structure. The side wall of the movable plate 52 is fixedly connected to a limiting slider. The inner wall of the cabinet 1 is provided with a limiting groove that matches the limiting slider.
[0035] Four groups of power supply mechanisms 6 are fixedly installed at the lower end of the cabinet 1 and are respectively connected to the four groups of conductive coating damage active detection mechanisms 2 and temporary shielding layer deployment mechanisms 5. The power supply mechanism 6 includes a plurality of bearing seats 61 fixedly installed on the cabinet 1 and the lower side of the cross plate 21. The inner walls of the plurality of bearing seats 61 are rotatably sleeved with a transmission shaft 62 through a ball bearing. The lower end of the cabinet 1 is also fixedly installed with a drive motor 63 for driving the transmission shaft 62 to rotate. The lower end of the cross plate 21 is fixedly installed with a first U-shaped positioning plate 64 corresponding to the position of the reciprocating screw 22. The horizontal part of the first U-shaped positioning plate 64 is rotatably sleeved with The first linkage shaft 65, the lower end of the cabinet 1 is fixedly installed with a second U-shaped positioning plate 66 corresponding to the position of the bidirectional screw 51, the horizontal part of the second U-shaped positioning plate 66 is rotatably sleeved with the second linkage shaft 67, the upper end of the first linkage shaft 65 and the lower end of the reciprocating screw 22 are transmission-connected by the second magnetic connection assembly 68, the upper end of the second linkage shaft 67 and the lower end of the bidirectional screw 51 are transmission-connected by the third magnetic connection assembly 69, the transmission shaft 62 and the first linkage shaft 65 are transmission-connected by the first bevel gear assembly 610, and the transmission shaft 62 and the second linkage shaft 67 are transmission-connected by the second bevel gear assembly 611.
[0036] The operating principle of the present invention is described as follows: the operating frequency of the conductive coating damage active detection mechanism 2 is determined according to the use environment of the entire monitoring console. The greater the impact of the use environment on the conductive coating, the higher the set detection frequency. When performing detection, the PLC controller controls the drive motor 63 to work, and controls the power supply equipment to supply power to the second magnetic connection component 68, so that the drive motor 63 drives the transmission shaft 62 to rotate, and the transmission shaft 62 drives the first linkage shaft 65 to rotate synchronously through the first bevel gear component 610, and the first linkage shaft 65 then drives the reciprocating screw 22 to rotate synchronously through the second magnetic connection component 68, and then the reciprocating screw 22 and the lifting seat 23 are rotated. The threaded sleeve effect and the limiting and guiding effect of the limiting slide rod 27 on the lifting seat 23 enable the lifting seat 23 to drive the electromagnetic radiation monitor to move up and down, and quickly adjust the detection height of the electromagnetic radiation detector 26. The longitudinal electric slide rail 24 can drive the electromagnetic radiation detector 26 to adjust the longitudinal position, thereby enabling the electromagnetic radiation detector 26 to perform comprehensive detection work on the conductive coating on the outer surface of the cabinet 1. During the specific detection, the electromagnetic radiation detector 26 is first driven to a certain height by the lifting seat 23, and then the electromagnetic radiation detector 26 is driven to move at intervals by the longitudinal electric slide rail 24 to complete the comprehensive detection of the conductive coating.
[0037] The electromagnetic radiation detector 26 is specifically composed of a spectrum analyzer and a near-field probe for detection. The near-field probe is close to the surface of the cabinet 1 and scans point by point. The spectrum analyzer records the field strength value of each point and compares it with the surrounding normal area. If the radiation value of a certain area is significantly higher than the surrounding area, it indicates that the conductive coating is damaged. At this time, the PLC controller controls the conductive coating automatic replenishment mechanism 3 to start working, and the feeding pump 37 cooperates with the feeding pipe 36 to transport the conductive spray liquid stored in the storage box 35 to the buffer tube 33 and spray it through the spray head 34. The micro-electric slide 31 drives the buffer tube 33 and the spray head 34 to move the position, and the conductive coating at the damaged position is quickly replenished. The PLC controller automatically adjusts the working power of the feeding pump 37 based on the difference in radiation values fed back by the electromagnetic radiation detector 26. The larger the radiation difference, the greater the degree of damage to the conductive coating. In addition, the working power of the feeding pump 37 is increased to increase the spraying amount within the limited spraying time, so that the replenishment amount of the conductive coating is more accurate.
[0038] When detecting the damage of the conductive coating, when damage is detected, the PLC controller controls the servo motor 46 to drive the rotating shaft 42 to rotate a fixed angle, thereby driving the arc trigger block 45 to move a fixed distance in the statistical shell 41. At this time, the first magnetic connection component 47 is energized, so that the servo motor 46 can drive the rotating shaft 42 to rotate synchronously. When the single detection damage area statistical mechanism 4 feedbacks that the proportion of the conductive coating damage area exceeds the threshold (such as 10%), the arc trigger block 45 will press on the trigger switch 43, indicating that there is a big problem of large-area conductive coating damage. The PLC controller transmits a signal to the staff's wireless receiving terminal to remind the staff to conduct manual observation and processing, and the PLC controller synchronously controls the drive motor 63 to work for a fixed time, and controls the power supply equipment to cut off the power supply to the second magnetic connection component 68, and enables the third magnetic connection component 69 to be powered, so that the second linkage shaft 67 and the bidirectional screw 51 The two-way screw 51 is connected together, and the bidirectional screw 51 is driven to rotate by the power of the driving motor 63, and then the threaded connection between the bidirectional screw 51 and the movable plate 52 allows the emergency shielding net 53 to be quickly deployed in the cabinet 1. The emergency shielding net 53 is specifically a silver-plated nylon film. The emergency shielding net 53 is deployed to cover the damaged area of the conductive coating, and the conductive properties of the emergency shielding net 53 are used to temporarily restore the shielding effectiveness, so as to avoid the problem of large-area conductive coating being damaged. The supplementary conductive coating alone cannot meet the electromagnetic shielding performance. The emergency shielding net 53 is used to quickly fill the gap to avoid electromagnetic leakage affecting the internal circuit of the monitoring console, and to avoid using the emergency shielding net 53 from the beginning, because the monitoring console needs to transmit specific signals (such as Wi-Fi, Bluetooth) to the outside. The shielding net deployed at the beginning will excessively shield normal signals or block the heat dissipation path, resulting in a decrease in equipment performance (such as wireless connection interruption, internal overheating). The emergency shielding net 53 is only used when needed, which can reduce interference with normal functions.
[0039] When the trigger switch 43 is pressed and triggered or the detection of a single conductive coating is completed, the PLC controller cuts off the power supply to the first magnetic connection component 47, so that the output end of the servo motor 46 is disconnected from the rotating shaft 42, and then the arc-shaped trigger block 45 is reset to the initial position under the action of the torsion reset spring 48, waiting for the next use.
[0040] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A remote-controlled intelligent control center monitoring console, comprising a cabinet (1), wherein the outer surface of the cabinet (1) is sprayed with a conductive coating, an intelligent control console (7) is installed at the upper end of the cabinet (1), and an intelligent control display screen (8) is installed at the rear side of the upper end of the intelligent control console (7), characterized in that: Also includes: Four sets of conductive coating damage active detection mechanisms (2) are respectively fixedly mounted on four sides of the cabinet (1); The conductive coating automatic replenishing mechanism (3) is fixedly mounted on the mobile end of the conductive coating damage active detection mechanism (2) and is electrically connected to the PLC controller. The PLC controller controls the operation of the conductive coating automatic replenishing mechanism (3) based on the conductive coating damage signal fed back by the conductive coating damage active detection mechanism (2); A single detection damage area statistics mechanism (4) is fixedly mounted on the conductive coating damage active detection mechanism (2); Four sets of temporary shielding layer deployment mechanisms (5) are fixedly installed on four sides of the inner wall of the cabinet (1) and are electrically connected to the PLC controller. The PLC controller controls the operation of the temporary shielding layer deployment mechanisms (5) based on the signal fed back by the single detection damage area statistics mechanism (4); Four groups of power supply mechanisms (6) are fixedly mounted at the lower end of the cabinet (1) and are respectively connected in transmission with the four groups of the conductive coating damage active detection mechanisms (2) and the temporary shielding layer deployment mechanisms (5); The conductive coating damage active detection mechanism (2) comprises two horizontal plates (21) symmetrically fixedly mounted on one side of the cabinet (1) in an upper and lower direction, a reciprocating screw rod (22) being rotatably connected between the two horizontal plates (21), a lifting seat (23) being threadedly sleeved on the rod wall of the reciprocating screw rod (22), a longitudinal electric slide rail (24) being fixedly mounted on the side of the lifting seat (23) close to the cabinet (1), a movable end of the longitudinal electric slide rail (24) being fixedly connected to a mounting plate (25), and an electromagnetic radiation detector (26) being fixedly mounted on the side of the mounting plate (25) close to the cabinet (1).
2. The remote control-based intelligent control center monitoring console according to claim 1, characterized in that: The conductive coating automatic replenishing mechanism (3) includes two micro electric slide rails (31) symmetrically fixedly mounted on the side wall of the mounting plate (25) in an upper and lower direction, the movable end of the micro electric slide rail (31) is fixedly connected to an extension rod (32), and one end of the two extension rods (32) away from the micro electric slide rail (31) is fixedly connected to the same buffer tube (33), and a plurality of spray heads (34) are evenly fixedly connected to the side of the buffer tube (33) close to the cabinet (1), and a storage box (35) is fixedly mounted on the upper end of the lifting seat (23), and the storage box (35) and the buffer tube (33) are fixedly connected through a feeding tube (36), and a feeding pump (37) is mounted on the feeding tube (36), and the feeding pump (37) is fixedly mounted on the side wall of the mounting plate (25), and the feeding tube (36) is an elastic telescopic tube.
3. The remote control-based intelligent control center monitoring console according to claim 1, characterized in that: The single detection damaged area statistics mechanism (4) includes a statistics circular shell (41) fixedly mounted on the rear end of the lifting seat (23), a rotating shaft (42) is rotatably connected at the center of the inner wall of the statistics circular shell (41), a trigger switch (43) is fixedly mounted on one side of the inner wall of the statistics circular shell (41), a connecting rod (44) is fixedly connected to the shaft wall of the rotating shaft (42), an end of the connecting rod (44) away from the rotating shaft (42) is fixedly connected to an arc-shaped trigger block (45) corresponding to the position of the trigger switch (43), a servo motor (46) for driving the rotating shaft (42) to rotate is fixedly mounted on the outer wall of the statistics circular shell (41), an output end of the servo motor (46) and one end of the rotating shaft (42) are transmission-connected via a first magnetic connection component (47), and a torsion return spring (48) sleeved on the outside of the rotating shaft (42) is fixedly mounted between the first magnetic connection component (47) and the statistics circular shell (41).
4. The remote control-based intelligent control center monitoring console according to claim 1, characterized in that: The temporary shielding layer deployment mechanism (5) comprises a bidirectional screw (51) rotatably connected to the inner wall of the cabinet (1), two movable plates (52) being symmetrically threadedly sleeved on the rod wall of the bidirectional screw (51), and an emergency shielding net (53) with an elastic structure being fixedly connected to the movable plate (52) and the cabinet (1) on the opposite side.
5. The remote control-based intelligent control center monitoring console according to claim 4 is characterized in that: The power supply mechanism (6) includes a plurality of bearing seats (61) fixedly mounted on the lower side of the cabinet (1) and the transverse plate (21), the inner walls of the plurality of bearing seats (61) being rotatably sleeved with a transmission shaft (62) via a ball bearing, a driving motor (63) for driving the transmission shaft (62) to rotate is also fixedly mounted on the lower end of the cabinet (1), a first U-shaped positioning plate (64) corresponding to the position of the reciprocating screw (22) is fixedly mounted on the lower end of the transverse plate (21), a first linkage shaft (65) being rotatably sleeved on the horizontal portion of the first U-shaped positioning plate (64), and a first linkage shaft (65) being fixedly mounted on the lower end of the cabinet (1) A second U-shaped positioning plate (66) is provided at a corresponding position, and the horizontal portion of the second U-shaped positioning plate (66) is rotatably sleeved with a second linkage shaft (67). The upper end of the first linkage shaft (65) is transmission-connected to the lower end of the reciprocating screw (22) via a second magnetic connection assembly (68), the upper end of the second linkage shaft (67) is transmission-connected to the lower end of the bidirectional screw (51) via a third magnetic connection assembly (69), the transmission shaft (62) is transmission-connected to the first linkage shaft (65) via a first bevel gear assembly (610), and the transmission shaft (62) is transmission-connected to the second linkage shaft (67) via a second bevel gear assembly (611).
6. The remote control-based intelligent control center monitoring console according to claim 1, characterized in that: A plurality of limiting slide bars (27) are fixedly connected between the upper and lower transverse plates (21), and a plurality of limiting slide holes for slidingly sleeved with the limiting slide bars (27) are provided on the surface of the lifting seat (23).
7. The remote control-based intelligent control center monitoring console according to claim 4, characterized in that: The side wall of the movable plate (52) is fixedly connected to a limiting slider, and the inner wall of the cabinet (1) is provided with a limiting sliding groove that matches and slides with the limiting slider.
Citation Information
Patent Citations
Intelligent control center monitoring operation table based on remote control
CN118741904A
Mining monitor capable of automatically cleaning screen
CN113263008A
Electric automobile energy monitoring and swapping network in remote monitoring of cloud computing network architecture
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