A power plant state multi-parameter cooperative monitor and a method of using the same
By employing a composite buffer mechanism and intelligent dustproof design, the shortcomings of power generation equipment condition monitors in terms of protection and maintenance are addressed, achieving highly efficient shock resistance and dustproof effects, and improving the reliability and ease of maintenance of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SICHUAN HUANENG FUJIANG HYDROPOWER CO LTD
- Filing Date
- 2026-03-23
- Publication Date
- 2026-06-23
AI Technical Summary
Existing power generation equipment condition monitors are inadequate in terms of physical protection, especially in terms of simple protective structure, outdated buffer design, and easily damaged heat dissipation holes, resulting in untimely impact response and inconvenient maintenance.
It adopts a composite buffer mechanism, including the collaborative design of a vacuum box and a sliding frame, which combines air damping and mechanical friction to consume impact energy. It also intelligently closes the heat dissipation holes when the monitor falls, and controls the heat dissipation blades to flip through the motor driven by the sensing components.
It effectively mitigates damage to internal components from external impacts, improves the equipment's drop and impact resistance, reduces the risk of damage to precision components, and enables rapid dust prevention and convenient maintenance.
Smart Images

Figure CN122258977A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of power transmission line technology, and in particular to a multi-parameter collaborative monitoring device for the status of power generation equipment and its usage method. Background Technology
[0002] The multi-parameter collaborative monitor for power generation equipment is an intelligent device that integrates multiple types of sensors. It can collect key parameters such as vibration, temperature, pressure, and current of power generation equipment in real time. Through data fusion analysis and fault model comparison, it can realize operation status monitoring, anomaly warning and fault location, covering thermal power, hydropower, nuclear power and new energy power generation fields.
[0003] However, existing monitors have significant shortcomings in practical applications, especially in terms of physical protection. These shortcomings are mainly manifested in the following ways: the protective structure is simplistic, relying heavily on traditional passive buffering designs and lacking a composite buffering mechanism, resulting in a delayed impact response and difficulty in dynamically adapting to impacts of varying intensities. Furthermore, the equipment's heat dissipation vents easily become channels for dust and liquid intrusion during impacts, and lack intelligent closure mechanisms. The buffer components have low modularity, making maintenance inconvenient, and the protective materials are prone to aging under long-term high-impact vibration environments, leading to a decline in buffering performance. Summary of the Invention
[0004] The purpose of this invention is to provide a multi-parameter collaborative monitor for the status of power generation equipment and its usage method, which can effectively mitigate the damage to internal components caused by external impacts, and intelligently close the heat dissipation holes to prevent dust intrusion in the event of accidents such as drops, while having a modular structure for easy installation and maintenance.
[0005] According to one objective of the present invention, a multi-parameter collaborative monitoring device for the status of power generation equipment is provided, comprising a monitor, a control mechanism fixedly connected to the front end of the monitor, connecting mechanisms fixedly connected to both sides, a heat dissipation mechanism fixedly connected to the top, and an external mechanism fixedly connected to the rear end; a buffer mechanism is slidably connected inside the connecting mechanism; the buffer mechanism includes a vacuum box, a compression block, a sliding frame, a sliding block, a connecting rod, a fixing rod, and a sensing component; one side of the vacuum box is fixedly connected to the outside of the connecting mechanism, and the compression block is slidably connected inside the vacuum box; the sliding frame is fixedly connected to both the upper and lower ends of the vacuum box, and the sliding block is slidably connected inside the sliding frame; both sides of the sliding block are rotatably connected to the fixing rod through the connecting rod, and the sensing component is fixedly connected to both ends of the fixing rod.
[0006] Furthermore, the sensing assembly includes a buffer plate and a sensing block; the inner side of the buffer plate is fixedly connected to both ends of the fixing rod, and at least one sensing block is fixedly connected to the outer side of the buffer plate; the end of the squeezing block away from the vacuum box is fixedly connected to the inner side of the buffer plate.
[0007] Furthermore, the connecting mechanism includes a fixing plate, a connecting plate, and a limiting plate; the inner side of the fixing plate is fixedly connected to the outer side of the monitor, and the connecting plate is slidably connected inside the fixing plate; the limiting plate is slidably connected inside the connecting plate, and the end of the vacuum box away from the extrusion block is fixedly connected to the outer side of the connecting plate.
[0008] Furthermore, multiple connecting grooves are provided on both sides of the limiting plate, and a locking tenon that matches the connecting groove is provided on the inner side of the fixing plate. When the limiting plate slides to a predetermined position, the locking tenon is inserted into the connecting groove to achieve mechanical locking.
[0009] Furthermore, a sliding plate is fixedly connected to the top of the limiting plate, and the bottom of the sliding plate is slidably connected to the top of the fixed plate.
[0010] Furthermore, the heat dissipation mechanism includes a fixed frame, a motor, a rotating disk, a driving plate, a driving block, a rotating block, and heat dissipation blades; the fixed frame is fixedly connected inside the monitor, and the motor is located inside the fixed frame; the driving end of the motor is fixedly connected to the rotating disk, and the rotating disk is connected to the driving plate to drive the driving plate to translate; the driving plate is linked with the heat dissipation blades through multiple driving blocks and rotating blocks to control the opening and closing of the heat dissipation blades.
[0011] Furthermore, the two sides of the heat dissipation blades are rotatably connected inside the fixed frame, and the two ends of the driving plate are slidably connected inside the fixed frame.
[0012] Furthermore, the sensing block is signal-connected to the motor and is configured to send a control signal to the motor when an impact is sensed, thereby driving the heat dissipation blades to close.
[0013] Furthermore, the external connection mechanism includes an interface and a power plug; the interface is fixedly connected inside the monitor, and the power plug is slidably connected inside the interface.
[0014] According to another objective of the present invention, the present invention provides a method for using the above-mentioned multi-parameter collaborative monitoring device for power generation equipment, comprising the following steps: Impact sensing steps: When the monitor is dropped or collided, the sensing components of the buffer mechanism first come into contact with the impact surface, and the sensing block senses the impact signal. Signal transmission and response steps: The sensing block transmits the impact signal to the motor of the control mechanism and / or the heat dissipation mechanism; Composite buffering steps: The impact force drives the buffer plate to move, simultaneously pushing the squeezing block to compress the air in the vacuum box to form damping buffer, and driving the fixed rod to push the sliding block to slide in the sliding frame through the connecting rod, thus consuming the impact kinetic energy through friction; Intelligent dust prevention steps: After receiving a signal, the motor starts and drives the heat dissipation blades to quickly flip and close, blocking the heat dissipation holes, through the linkage of the rotating disk, the driving plate, the driving block and the rotating block. Energy attenuation step: Through the synergistic effect of air compression and friction energy dissipation in the composite buffering step, the impact energy transmitted to the main body of the monitor is greatly attenuated, thus completing the buffering protection.
[0015] When the equipment is subjected to external impact, the impact force is simultaneously transmitted through the sensing components to two energy dissipation paths: the vacuum box and the sliding frame. The compression block compresses the air inside the vacuum box, utilizing the gas damping effect to form a flexible buffer that efficiently absorbs and disperses the impact energy. The impact kinetic energy is converted into frictional heat energy between the sliding block and the sliding frame via a linkage mechanism, achieving rigid dissipation. This dual-path collaborative buffering design significantly attenuates the impact force transmitted to the core components inside the monitor, effectively improving the equipment's drop and impact resistance, and significantly reducing the risk of damage to precision components due to accidental collisions or drops. This enhances the overall reliability and service life of the equipment in complex industrial environments. Attached Figure Description
[0016] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0017] Figure 1 This is a schematic diagram of the structure of an embodiment of the present invention; Figure 2 This is a schematic diagram of the buffer plate according to an embodiment of the present invention; Figure 3 This is a schematic diagram of the control buttons according to an embodiment of the present invention; Figure 4 This is an embodiment of the present invention. Figure 3 Enlarged view of point A; Figure 5 This is a schematic diagram of the sliding frame according to an embodiment of the present invention; Figure 6 This is an embodiment of the present invention. Figure 5 Enlarged view of point B; Figure 7 This is a schematic diagram of the fixed frame according to an embodiment of the present invention; Figure 8 This is an embodiment of the present invention. Figure 7 Enlarged view of point B.
[0018] In the diagram: 1. Monitor; 2. Control mechanism; 21. Display panel; 22. Control button; 3. Buffer mechanism; 31. Vacuum box; 32. Squeezing block; 33. Sensing component; 331. Buffer plate; 332. Sensing block; 34. Fixed rod; 35. Connecting rod; 36. Sliding block; 37. Sliding frame; 4. Connecting mechanism; 41. Fixed plate; 42. Connecting plate; 43. Limiting plate; 44. Sliding plate; 45. Connecting groove; 5. Heat dissipation mechanism; 51. Fixed frame; 52. Motor; 53. Rotating disk; 54. Driving plate; 55. Driving block; 56. Rotating block; 57. Heat dissipation blade; 6. External mechanism; 61. Interface; 62. Power supply head. Detailed Implementation
[0019] The technical solution of the present invention will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," "outer," "clockwise," and "counterclockwise," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limiting this invention.
[0021] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of the stated features. In the description of this invention, "a plurality of" means two or more, unless otherwise explicitly specified. Furthermore, the terms "installed," "connected," and "linked" should be interpreted broadly; for example, they may refer to a fixed connection, a detachable connection, or an integral connection; they may refer to a mechanical connection or an electrical connection; they may refer to a direct connection or an indirect connection through an intermediate medium; and they may refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0022] Example 1 like Figures 1-8 As shown, a multi-parameter collaborative monitoring device for the status of power generation equipment mainly includes a monitor 1, a control mechanism 2, a buffer mechanism 3, a connection mechanism 4, a heat dissipation mechanism 5, and an external mechanism 6. The monitor 1 serves as the core carrier, with the control mechanism 2 integrated at its front end, including a display panel 21 and multiple control buttons 22 for status display and human-machine interaction. The external mechanism 6 is located at the rear end, including an interface 61 and a power plug 62 for data transmission and power supply.
[0023] The two sides of the monitor 1 are connected to the buffer mechanism 3 via the connecting mechanism 4. The connecting mechanism 4 includes a fixing plate 41 fixed to the outside of the monitor 1. The buffer mechanism 3 mainly includes a vacuum box 31, a compression block 32, a sliding frame 37, a sliding block 36, a connecting rod 35, a fixing rod 34, and a sensing component 33.
[0024] During installation, first insert the connecting plate 42 into the groove of the fixing plate 41, then slide the limiting plate 43 into the gap between the connecting plate 42 and the fixing plate 41, so that the latches on the inner side of the fixing plate 41 are inserted into the connecting grooves 45 on both sides of the limiting plate 43, thus completing the mechanical locking. One end of the vacuum box 31 is fixed to the outer side of the connecting plate 42, and one end of the compression block 32 is fixed to the inner side of the buffer plate 331 of the sensing component 33.
[0025] When the monitor 1 falls and the buffer plate 331 impacts the ground, the impact force is transmitted in two paths: one path pushes the compression block 32 to compress the air in the vacuum box 31, forming air damping buffer; the other path pushes the sliding block 36 to slide within the sliding frame 37 through the fixed rod 34 and connecting rod 35, consuming the impact kinetic energy through friction. The two work together to achieve efficient decomposition and attenuation of impact energy.
[0026] The top of the monitor 1 is equipped with a heat dissipation mechanism 5, which includes a fixed frame 51, a motor 52, a rotating disk 53, a drive plate 54, a drive block 55, a rotating block 56, and heat dissipation blades 57. During normal operation, the heat dissipation blades 57 are deployed to ensure heat dissipation efficiency.
[0027] When the monitor 1 falls and the sensing block 332 on the sensing assembly 33 touches the ground, it immediately sends a signal to the motor 52. The motor 52 starts, driving the rotating disk 53 to rotate, which in turn drives the drive plate 54 to move horizontally. The drive plate 54 pulls the heat dissipation blades 57 through the drive block 55 and the rotating block 56, causing them to quickly flip and close within the fixed frame 51, blocking the heat dissipation holes and preventing dust from entering.
[0028] When the present invention is in operation, it effectively absorbs and disperses the drop impact through its unique composite buffer mechanism (vacuum box damping + mechanical friction) to protect the internal precision components. At the same time, it uses the impact signal to intelligently trigger the closing action of the heat dissipation mechanism, realizing the linkage between impact protection and dust prevention. Its modular connection design makes the core buffer components easy to disassemble, assemble and maintain, significantly improving the practicability and reliability of the device.
[0029] Embodiment 2 As Figures 1-8 shown, a multi-parameter collaborative monitor for the state of a power generation device in this embodiment includes a monitor 1. A control mechanism 2 is fixedly connected to the front end of the monitor 1. The control mechanism 2 can transmit signals outward and drive the components to operate, realizing the intelligent impact response and state regulation of the monitor 1. Connecting mechanisms 4 are fixedly connected to both sides of the monitor 1. They can be guided by the chute and locked by the tenon, providing stable modular installation for the parts, facilitating rapid assembly and disassembly. A buffer mechanism 3 is slidably connected inside the connecting mechanism 4. When the monitor 1 is impacted, the impact force is transmitted from one part to another part, and composite buffering is achieved by using air compression damping and the friction of the parts, reducing the impact on the internal components. A heat dissipation mechanism 5 is fixedly connected to the top of the monitor 1. The heat dissipation port remains open during normal operation to ensure the heat dissipation efficiency. When the monitor 1 drops, the heat dissipation holes can be quickly closed through the driving section to prevent dust particles from invading. An external connection mechanism 6 is fixedly connected to the rear end of the monitor 1, for communication lines or other devices, ensuring the stable data transmission and power supply between the monitor 1 and external devices and supporting its continuous operation; The buffer mechanism 3 includes a vacuum box 31. One side of the vacuum box 31 is fixedly connected to the outside of the connecting mechanism 4. The vacuum box 31 provides a closed air compression space for the buffer mechanism 3. When the monitor 1 is impacted, a damping force can be generated through the compression and expansion of the internal air to offset part of the impact force. An extrusion block 32 is slidably connected inside the vacuum box 31. The extrusion block 32 can slide back and forth in the vacuum box 31. When the buffer plate 331 contacts the impact surface, the extrusion block 32 is pushed to compress the air inside the vacuum box 31, and a flexible buffer is formed by using the air reaction force, reducing the damage to the monitor 1 caused by rigid impact. Sliding frames 37 are fixedly connected to the upper and lower ends of the vacuum box 31 to ensure the stability of the impact conduction path and avoid deviation or jamming during the buffering process.
[0030] A sliding block 36 is slidably connected inside the sliding frame 37. Within the sliding frame 37, the sliding block 36 dissipates impact kinetic energy through friction. When the fixed rod 34 pushes the connecting rod 35, the sliding block 36 slides along the frame to its end, further absorbing impact energy through stroke limiting, thus reducing the impact speed of the buffer plate 331. Two connecting rods 35 are rotatably connected to both sides of the sliding block 36. These multiple connecting rods 35 form a linkage mechanism, converting the linear motion of the fixed rod 34 into the translational force of the sliding block 36. This leverage principle amplifies the buffering force, improving the efficiency of impact energy dispersion. The multiple connecting rods 35 move away from the sliding block 36. One end of block 36 is rotatably connected to a fixed rod 34, which is linked to the buffer plate 331. When the buffer plate 331 is impacted and squeezed inward, the fixed rod 34 moves synchronously and pushes the connecting rod 35 to form a mechanical transmission link, ensuring that the impact force can be effectively transmitted to the sliding block 36 and the vacuum box 31. Both ends of the fixed rod 34 are fixedly connected to sensing components 33, which are used to sense impact signals. When the buffer plate 331 contacts the ground, the sensing components 33 trigger a control signal, which synchronously starts the closing procedure of the heat dissipation mechanism 5 and the energy absorption process of the buffer mechanism 3, realizing the coordinated response of multiple protections.
[0031] The sensing component 33 includes a buffer plate 331, which serves as the first contact surface for impact. When the sensor 1 is impacted, its outer side directly receives the impact force and deforms inward, providing initial triggering power for the internal buffer mechanism 3. The end of the compression block 32 away from the vacuum box 31 is fixedly connected to the inner side of the buffer plate 331. When the buffer plate 331 is impacted, it synchronously pushes the compression block 32 to slide into the vacuum box 31, forming damping buffer by compressing the air inside the vacuum box 31, converting the impact energy into air compression energy. The inner side of the buffer plate 331 is fixedly connected to a solid... When the buffer plate 331 moves inward at both ends of the fixed rod 34, it drives the fixed rod 34 to move synchronously, so that the fixed rod 34 pushes the sliding block 36 to slide in the sliding frame 37 through the connecting rod 35. The sliding friction further dissipates the impact kinetic energy. Four sensor blocks 332 are fixedly connected to the outside of the buffer plate 331. The sensor blocks 332 are used to sense the impact signal in real time. When the monitor 1 falls to the ground, the sensor block 332 triggers an electrical signal and transmits it to the control mechanism 2, which drives the heat dissipation mechanism 5 to quickly close the heat dissipation hole, blocking the dust intrusion path and realizing the linkage response of impact protection and dust prevention.
[0032] The control mechanism 2 includes a display panel 21, which is fixedly connected to the outside of the monitor 1. The display panel 21 is used to display the equipment operating parameters collected by the monitor 1 in real time, so that the operation and maintenance personnel can intuitively grasp the equipment status and detect abnormal fluctuations in a timely manner. Multiple control buttons 22 are fixedly connected inside the monitor 1. The control buttons 22 support local interactive operation and can be used to set monitoring thresholds, calibrate sensor parameters, or manually trigger functional tests. Together with the display panel 21, they realize human-machine interaction and improve the convenience and flexibility of equipment operation.
[0033] like Figure 1 and Figure 6 As shown, the connecting mechanism 4 includes a fixed plate 41. The outer side of the sliding frame 37 is slidably connected to the outer side of the fixed plate 41. The fixed plate 41 provides an installation reference for the sliding frame 37, ensuring that the sliding track of the buffer mechanism 3 is vertically aligned with the main body of the monitor 1, thus ensuring the accuracy of the impact transmission path. The inner side of the fixed plate 41 is fixedly connected to the outer side of the monitor 1. The fixed plate 41 rigidly connects the buffer mechanism 3 to both sides of the monitor 1, forming a supporting foundation for the protective structure and enhancing the overall impact resistance. The inner side of the fixed plate 41 is slidably connected to a connecting plate 42. The connecting plate 42 can be inserted or removed along the guide groove of the fixed plate 41, enabling rapid assembly of the buffer mechanism 3 and the monitor 1. Modular installation can be completed without tools, improving assembly efficiency. The end of the vacuum box 31 away from the extrusion block 32 is fixedly connected to the outer side of the connecting plate 42. The connecting plate 42 serves as a connecting carrier between the vacuum box 31 and the fixed plate 41, ensuring that the vacuum box 31 can move synchronously with the connecting plate 42 during the sliding process of the buffer mechanism 3, maintaining the stability of the buffer function.
[0034] A limiting plate 43 is slidably connected inside the connecting plate 42. The limiting plate 43 can slide in the gap between the connecting plate 42 and the fixed plate 41. Its positional movement locks or releases the connecting plate 42, providing an adjustable mechanical fixing method for the buffer mechanism 3. The outer side of the limiting plate 43 is slidably connected inside the fixed plate 41. The limiting plate 43 cooperates with the inner sliding groove of the fixed plate 41 to guide its sliding trajectory, ensuring precise alignment of the locking groove 45 and the locking tenon of the fixed plate 41 when locked, preventing the buffer mechanism 3 from shaking after installation. A sliding plate 44 is fixedly connected to the top of the limiting plate 43. The bottom of the sliding plate 44 is slidably connected to the top of the fixed plate 41. The sliding plate 44 provides the operating force point for the limiting plate 43. The limiting plate 43 can be easily moved by pushing and pulling the sliding plate 44, which simplifies the installation and disassembly process of the buffer mechanism 3. The bottom of the sliding plate 44 is slidably connected to the top of the fixed plate 41. Multiple connecting grooves 45 are provided on both sides of the limiting plate 43. The connecting grooves 45 cooperate with the protruding tenons on the inner side of the fixed plate 41. When the limiting plate 43 slides into the designated position, the tenons are embedded in the connecting grooves 45 to form a mechanical lock, which firmly fixes the connecting plate 42 in the fixed plate 41 and prevents the buffer mechanism 3 from loosening during the impact.
[0035] like Figure 2 , Figure 7 and Figure 8 As shown, the heat dissipation mechanism 5 includes a fixed frame 51. The outer side of the fixed frame 51 is fixedly connected to the inside of the monitor 1. The fixed frame 51 provides a stable installation base for the heat dissipation mechanism 5, ensuring that the components maintain a stable relative position during operation and preventing structural loosening due to vibration. A motor 52 is fixedly connected inside the fixed frame 51. The motor 52 serves as a power source. After receiving the trigger signal from the sensor block 332, it can quickly start and output driving force to accurately control the action response of the heat dissipation mechanism 5. A rotating disk 53 is fixedly connected to the drive section of the motor 52. The rotating disk 53 rotates under the drive of the motor 52. Through the special structure of its edge, it forms a mechanical linkage with the driving plate 54, converting the rotational motion of the motor 52 into the linear translation of the driving plate 54.
[0036] A driving plate 54 is fixedly connected to the top of the rotating disk 53. Driven by the rotating disk 53, the driving plate 54 moves along the track inside the fixed frame 51. Through its own movement, it drives multiple driving blocks 55 to realize the transmission of force and the conversion of the direction of motion. Both ends of the driving plate 54 are slidably connected inside the fixed frame 51. The fixed frame 51 provides guidance and limit for the sliding of the driving plate 54 to ensure that it will not deviate during the movement and to ensure the accuracy of the closing action of the heat dissipation blades 57. Multiple driving blocks 55 are rotatably connected inside the driving plate 54. The driving blocks 55 and the driving plate 54 are rotatably connected and can produce an angle change when the driving plate 54 moves, thereby driving the rotating blocks 56 to move and providing power for the flipping of the heat dissipation blades 57. Two rotating blocks 56 are rotatably connected to the end of the driving block 55 away from the driving plate 54. The rotating blocks 56 rotate under the pull of the driving blocks 55. Their rotational motion directly acts on the heat dissipation blades 57 to realize the opening and closing action of the heat dissipation blades 57.
[0037] Heat dissipation blades 57 are fixedly connected to the outer sides of the two rotating blocks 56. The heat dissipation blades 57 are rotated by the drive of the rotating blocks 56. During normal operation, they are unfolded to ensure the heat dissipation needs of the monitor 1. When the monitor 1 falls, they are quickly closed to block the heat dissipation holes and prevent dust from entering. One end of the heat dissipation blade 57 is slidably connected to the top of the drive block 55. The slidable connection between the end of the heat dissipation blade 57 and the drive block 55 allows the heat dissipation blade 57 to flexibly adjust its angle during rotation, ensuring a tight fit when closed and effectively preventing dust. Both sides of the heat dissipation blade 57 are rotatably connected to the inside of the fixed frame 51. The fixed frame 51 provides a support shaft for the rotation of the heat dissipation blade 57, ensuring that the heat dissipation blade 57 runs smoothly during opening and closing and avoiding shaking or jamming.
[0038] The external mechanism 6 includes an interface 61, which is fixedly connected to the inside of the monitor 1. The interface 61 serves as the hub for connecting the monitor 1 with external devices, providing a stable physical connection port for functions such as data transmission and power access. A power adapter 62 is slidably connected inside the interface 61. The power adapter 62 can be smoothly inserted into or removed from the interface 61, and power transmission is achieved through close contact, providing a continuous and stable power supply to the monitor 1 and ensuring uninterrupted power supply during operation.
[0039] Working principle: When the staff needs to install the monitor 1 in the designated position, they can first slide the connecting plate 42 into the inside of the fixed plate 41. Then, the limiting plate 43 is slid into the inside of the connecting plate 42. The connecting plate 42 and the fixed plate 41 are connected by multiple connecting slots 45 on the outside of the limiting plate 43. This restricts the connecting plate 42 inside the fixed plate 41, while the vacuum box 31 is connected to the outside of the connecting plate 42.
[0040] When the monitor 1 accidentally falls to the ground, the sensor block 332 will send a control command to the motor 52 when it touches the ground. This will cause the motor 52 to drive the rotating disk 53 slightly, causing the rotating disk 53 to slide to one side. This will cause the rotating disk 53 to drive the driving plate 54 as well. After the driving plate 54 slides to one side, it will pull multiple driving blocks 55 to one side. This will drive the rotating block 56 together through the driving blocks 55, so that the heat dissipation blades 57 are inside the fixed frame 51. This will enable the control of multiple heat dissipation blades 57, so that the heat dissipation holes will be completely closed when the device lands, thereby preventing external particles and dust from entering the monitor 1.
[0041] When the buffer plate 331 contacts the ground, it simultaneously presses the compression block 32 inward, causing the compression block 32 to press into the vacuum box 31. While pressing into the vacuum box 31, the buffer plate 331 also moves the fixing rod 34, causing the fixing rod 34 to push the connecting rod 35 to one side. The connecting rod 35 pushes the sliding block 36 forward. When the sliding block 36 slides to the bottom inside the sliding frame 37, it stops the impact of the buffer plate 331 inward. After the compression block 32 slides to a certain extent inside the vacuum box 31, the vacuum inside the vacuum box 31 is compressed to a certain extent, and the compression block 32 is ejected outward, thereby reducing the impact of the monitor 1 after landing.
[0042] This invention provides a composite buffer with strong impact resistance. Through the synergistic effect of air compression damping in the vacuum box and friction loss in the sliding frame, a composite buffer mechanism that combines rigidity and flexibility is formed, which significantly attenuates impact energy, improves the equipment's drop resistance, and reduces the risk of damage to internal components.
[0043] This invention features intelligent dust prevention and rapid response. When the monitor is dropped, the sensor block triggers a signal, which drives the motor to quickly close the heat dissipation blades, effectively preventing dust from entering the interior through the heat dissipation holes and ensuring the internal safety of the equipment in harsh environments.
[0044] This invention adopts a modular design, which is convenient to maintain. The connection mechanism adopts a sliding groove guide and a locking structure, which enables the buffer mechanism to be quickly installed and disassembled, greatly improving the assembly efficiency of the equipment and the convenience of subsequent maintenance, and enhancing the flexibility and maintainability of the structure.
[0045] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.
Claims
1. A multi-parameter collaborative monitoring device for the status of power generation equipment, characterized in that, The device includes a monitor, with a control mechanism fixedly connected to its front end, connecting mechanisms fixedly connected to both sides, a heat dissipation mechanism fixedly connected to its top, and an external mechanism fixedly connected to its rear end. A buffer mechanism is slidably connected inside the connecting mechanism. The buffer mechanism includes a vacuum box, a compression block, a sliding frame, a sliding block, a connecting rod, a fixing rod, and a sensing component. One side of the vacuum box is fixedly connected to the outside of the connecting mechanism, and the compression block is slidably connected inside the vacuum box. The sliding frame is fixedly connected to both the top and bottom ends of the vacuum box, and the sliding block is slidably connected inside the sliding frame. Both sides of the sliding block are rotatably connected to the fixing rod via the connecting rod, and the sensing component is fixedly connected to both ends of the fixing rod.
2. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 1, characterized in that, The sensing assembly includes a buffer plate and a sensing block; the inner side of the buffer plate is fixedly connected to both ends of the fixing rod, and at least one sensing block is fixedly connected to the outer side of the buffer plate; the end of the squeezing block away from the vacuum box is fixedly connected to the inner side of the buffer plate.
3. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 2, characterized in that, The connecting mechanism includes a fixed plate, a connecting plate, and a limiting plate; the inner side of the fixed plate is fixedly connected to the outer side of the monitor, and the connecting plate is slidably connected inside the fixed plate; the limiting plate is slidably connected inside the connecting plate, and the end of the vacuum box away from the extrusion block is fixedly connected to the outer side of the connecting plate.
4. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 3, characterized in that, Multiple connecting slots are provided on both sides of the limiting plate, and a locking tenon is provided on the inner side of the fixing plate to match the connecting slot. When the limiting plate slides to a predetermined position, the locking tenon is inserted into the connecting slot to achieve mechanical locking.
5. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 3, characterized in that, A sliding plate is fixedly connected to the top of the limiting plate, and the bottom of the sliding plate is slidably connected to the top of the fixed plate.
6. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 2, characterized in that, The heat dissipation mechanism includes a fixed frame, a motor, a rotating disk, a drive plate, a drive block, a rotating block, and heat dissipation blades. The fixed frame is fixedly connected inside the monitor, and the motor is located inside the fixed frame. The drive end of the motor is fixedly connected to the rotating disk, and the rotating disk is connected to the drive plate to drive the drive plate to translate. The drive plate is linked with the heat dissipation blades through multiple drive blocks and rotating blocks to control the opening and closing of the heat dissipation blades.
7. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 6, characterized in that, The two sides of the heat dissipation fins are rotatably connected inside the fixed frame, and the two ends of the drive plate are slidably connected inside the fixed frame.
8. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 6, characterized in that, The sensor block is connected to the motor signal and is configured to send a control signal to the motor when it senses an impact, thereby driving the heat dissipation blades to close.
9. The multi-parameter collaborative monitoring device for power generation equipment status according to claim 1, characterized in that, The external connection includes an interface and a power plug; the interface is fixedly connected inside the monitor, and the power plug is slidably connected inside the interface.
10. The method of using the multi-parameter collaborative monitoring device for the status of power generation equipment according to any one of claims 1-9, characterized in that, Includes the following steps: Impact sensing steps: When the monitor is dropped or collided, the sensing components of the buffer mechanism first come into contact with the impact surface, and the sensing block senses the impact signal. Signal transmission and response steps: The sensing block transmits the impact signal to the motor of the control mechanism and / or the heat dissipation mechanism; Composite buffering steps: The impact force drives the buffer plate to move, simultaneously pushing the squeezing block to compress the air in the vacuum box to form damping buffer, and driving the fixed rod to push the sliding block to slide in the sliding frame through the connecting rod, thus consuming the impact kinetic energy through friction; Intelligent dust prevention steps: After receiving a signal, the motor starts and drives the heat dissipation blades to quickly flip and close, blocking the heat dissipation holes, through the linkage of the rotating disk, the driving plate, the driving block and the rotating block. Energy attenuation step: Through the synergistic effect of air compression and friction energy dissipation in the composite buffering step, the impact energy transmitted to the main body of the monitor is greatly attenuated, thus completing the buffering protection.