An intelligent monitoring device for a power plant

CN224718492UActive Publication Date: 2026-09-04QINAN JINNENG NEW ENERGY DEVELOPMENT CO LTD
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Patent Information

Application Number
CN202522749486.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-12-25
Publication Date
2026-09-04
Estimated Expiration
2035-12-25

AI Technical Summary

Technical Problem

[0003]现有的监控装置在使用时,其一般是固定安装在立杆顶部处于高位使用的,不具备升降和调节摄像头朝向的结构,从而导致监控装置在后续维护过程中,工作人员需要登高作业,需要借助额外器械,灵活性较差,实用性不高

Benefits of technology

监控摄像头能够处于高位使用,对风电现场进行监控使用,且定位机构具备升降模式和转向模式,其中升降模式能够带动监控摄像头在固定立柱的外部升降改变使用高度,从而方便后续对监控摄像头的维护等操作,无需登高作业和借助外部器械,转向模式能够带动监控摄像头三百六十度转动,从而改变了监控摄像头的使用朝向,以保障其处于合适的监控朝向,提高了该装置的灵活性、适应性和实用性。

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Abstract

The utility model provides a kind of power plant intelligent monitoring device, it is related to monitoring device technical field, comprising: monitoring component, the monitoring component is composed of positioning mechanism and monitoring camera, positioning mechanism has lift mode and steering mode, wherein lift mode can drive monitoring camera to change use height in the outside of fixed stand column, to facilitate subsequent maintenance etc. Operation of monitoring camera, without climbing operation and with the aid of external instrument, steering mode can drive monitoring camera to rotate 360 degrees, to change the use orientation of monitoring camera, to ensure that it is in proper monitoring orientation, solve the existing monitoring device generally is in high position use, without the structure of lifting and adjusting camera orientation, to cause monitoring device in subsequent maintenance process, staff needs climbing operation, needs the operation of additional instrument.
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Description

Technical Field

[0001] This utility model relates to the field of monitoring device technology, and in particular to an intelligent monitoring device for power plants. Background Technology

[0002] In the field of wind power maintenance, monitoring systems are a key component in ensuring the safe and stable operation of wind turbines. Monitoring cameras, as a core element, are widely used at wind power sites. Wind farms are often located in outdoor environments with complex terrain and variable weather, and the turbines are dispersed. Therefore, real-time monitoring of the equipment's appearance and surrounding environment is crucial for providing a basis for remote inspections and maintenance decisions. With the development of intelligent technologies, existing monitoring cameras now possess intelligent control functions, enabling automatic focusing, infrared night vision, multi-angle adjustment, and abnormal image recognition. This eliminates the need for manual on-site operation, effectively adapting to the monitoring needs of wind power sites and improving maintenance efficiency and the comprehensiveness of monitoring coverage.

[0003] Existing surveillance devices are generally fixed at the top of a pole and used at a high position. They do not have the structure to raise, lower or adjust the direction of the camera. As a result, during subsequent maintenance, staff need to climb to a height and use additional equipment, which is not flexible and practical. Utility Model Content

[0004] This utility model relates to an intelligent monitoring device for a power plant, which has a monitoring component. The monitoring camera can be used at a high position to monitor the wind power site. The positioning mechanism has a lifting mode and a turning mode. The lifting mode can move the monitoring camera up and down outside the fixed column to change the usage height, thereby facilitating subsequent maintenance and other operations of the monitoring camera without the need for climbing or using external equipment. The turning mode can rotate the monitoring camera 360 degrees, thereby changing the usage orientation of the monitoring camera to ensure that it is in a suitable monitoring orientation. It has extremely high flexibility, adaptability and practicality.

[0005] This utility model provides an intelligent monitoring device for a power plant, specifically including: a support component and a monitoring component, wherein the monitoring component consists of a positioning mechanism and a monitoring camera; The support assembly includes a fixed column, a drive motor, and a positioning screw. The drive motor is fixedly installed inside the fixed column, and the positioning screw is rotatably connected inside the fixed column. The shaft of the drive motor and the bottom end of the positioning screw are connected in a transmission manner. The positioning mechanism includes a positioning seat, a mounting seat, a control seat, a switching seat, and an electromagnet. The positioning seat is inserted into the interior of the fixed column, and the rod of the positioning screw passes through the interior of the positioning seat. The mounting seat is rotatably connected to the exterior of the positioning seat, and a monitoring camera is detachably mounted on the side of the mounting seat. The control seat is rotatably connected to the interior of the positioning seat, and the positioning screw is threaded into the interior of the control seat. The switching seat is inserted into the interior of the positioning seat, and the electromagnet is fixedly installed inside the positioning seat. The electromagnet, the switching seat, and the control seat are arranged sequentially from bottom to top inside the positioning seat.

[0006] Furthermore, the side of the switching seat is provided with a locking top spring, and the two ends of the locking top spring abut against the bottom of the switching seat and the inside of the positioning seat, respectively.

[0007] Furthermore, the top of the switching seat is provided with a control gear, and the bottom of the control seat is provided with a control tooth groove. When the electromagnet is not energized, the control gear is inserted into the control tooth groove under the action of the locking top spring.

[0008] Furthermore, the bottom of the switching base is provided with a switching magnetic ring, which will be magnetically attracted when the electromagnet is energized.

[0009] Furthermore, the positioning seat has a transmission gear inside, and the control seat has a drive gear on its side. The mounting seat has a rotating tooth groove inside, and the teeth on both sides of the transmission gear mesh with the drive gear and the rotating tooth groove respectively.

[0010] This utility model provides an intelligent monitoring device for power plants, which has the following beneficial effects: The surveillance camera can be used at a high position to monitor wind power sites. The positioning mechanism has a lifting mode and a turning mode. The lifting mode can move the surveillance camera up and down outside the fixed column to change the operating height, which facilitates subsequent maintenance and other operations without the need for climbing or external equipment. The turning mode can rotate the surveillance camera 360 degrees, thereby changing the orientation of the surveillance camera to ensure that it is in a suitable monitoring position, which improves the flexibility, adaptability and practicality of the device. Attached Figure Description

[0011] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings of the embodiments will be briefly described below.

[0012] The accompanying drawings described below are only related to some embodiments of the present invention and are not intended to limit the scope of the present invention.

[0013] In the attached diagram: Figure 1 A schematic diagram of the structure of this utility model is shown.

[0014] Figure 2 The diagram shows the internal structure of the positioning mechanism of this utility model when it is in lifting mode.

[0015] Figure 3 A schematic diagram of the disassembled positioning mechanism of this utility model is shown.

[0016] Figure 4 A schematic diagram of the internal structure of the positioning mechanism of this utility model when it is in steering mode is shown.

[0017] Figure 5 This utility model is shown Figure 2 Enlarged structural diagram of part A in the middle.

[0018] List of reference numerals 1. Support components; 101. Fixed column; 102. Drive motor; 103. Positioning screw; 2. Positioning mechanism; 201. Positioning seat; 2011. Transmission gear; 202. Mounting seat; 2021. Rotating gear groove; 203. Control seat; 2031. Control gear groove; 2032. Drive gear; 204. Switching seat; 2041. Locking top spring; 2042. Control gear; 2043. Switching magnetic ring; 205. Electromagnet; 3. Surveillance cameras. Detailed Implementation

[0019] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions of the embodiments of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. Based on the described embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0020] Please refer to Figures 1 to 5 Example 1: This utility model proposes an intelligent monitoring device for a power plant, comprising: a support component 1 and a monitoring component, wherein the monitoring component consists of a positioning mechanism 2 and a monitoring camera 3; The support assembly 1 includes a fixed column 101, a drive motor 102 and a positioning screw 103. The drive motor 102 is fixedly installed inside the fixed column 101, and the positioning screw 103 is rotatably connected inside the fixed column 101. The rotating shaft of the drive motor 102 and the bottom end of the positioning screw 103 are connected in a transmission connection. The positioning mechanism 2 includes a positioning seat 201, a mounting seat 202, a control seat 203, a switching seat 204, and an electromagnet 205. The positioning seat 201 is inserted into the interior of the fixed column 101, and the rod of the positioning screw 103 passes through the interior of the positioning seat 201. The mounting seat 202 is rotatably connected to the exterior of the positioning seat 201, and a monitoring camera 3 is detachably mounted on the side of the mounting seat 202. The control seat 203 is rotatably connected to the interior of the positioning seat 201, and the positioning screw 103 is screwed into the interior of the control seat 203 through a threaded rod. The switching seat 204 is inserted into the interior of the positioning seat 201, and the electromagnet 205 is fixedly installed inside the positioning seat 201. The electromagnet 205, the switching seat 204, and the control seat 203 are arranged sequentially from bottom to top inside the positioning seat 201.

[0021] The bottom of the switching base 204 is equipped with a switching magnetic ring 2043. When the electromagnet 205 is energized, it will magnetically attract the switching magnetic ring 2043. In use, the positioning mechanism 2 has two operating modes: lifting mode and turning mode, which can be switched as needed. When the electromagnet 205 is not energized, the positioning mechanism 2 is in lifting mode, which can adjust the height of the monitoring camera 3. When the electromagnet 205 is energized, the positioning mechanism 2 is in turning mode, which allows the mounting base 202 to rotate 360 ​​degrees, thereby changing the orientation of the monitoring camera 3 to adapt to different monitoring needs. It is highly flexible, adaptable and practical.

[0022] The switching seat 204 has a locking spring 2041 on its side, with both ends of the locking spring 2041 abutting against the bottom of the switching seat 204 and the inside of the positioning seat 201, respectively. The top of the switching seat 204 has a control gear 2042, and the bottom of the control seat 203 has a control tooth groove 2031. When the electromagnet 205 is not energized, the control gear 2042 is inserted into the control tooth groove 2031 under the action of the locking spring 2041. In use, in lifting mode, because the electromagnet 205 is not energized, the control gear 2042 is inserted into the control tooth groove 2031 under the action of the locking spring 2041. Because the switching seat 204... 4. Since it cannot rotate inside the positioning seat 201, the control seat 203 also cannot be inside the positioning seat 201. After that, the drive motor 102 is powered on and rotates, which can drive the monitoring camera 3 to rise and fall to change the usage height. In the lifting mode, the drive motor 102 can drive the positioning screw 103 to rotate when it rotates. When the positioning screw 103 rotates, it can drive the control seat 203 to move up and down through the screw thread. When the control seat 203 moves, it can drive the positioning mechanism 2 and the monitoring camera 3 to move synchronously as a whole, thereby realizing the function of adjusting and changing the usage height of the monitoring camera 3. The adjustment is quick and convenient, and it is also convenient for subsequent maintenance and other operations of the monitoring components.

[0023] The positioning seat 201 has a transmission gear 2011 inside, and the control seat 203 has a drive gear 2032 on its side. The mounting seat 202 has a rotating tooth groove 2021 inside. The teeth on both sides of the transmission gear 2011 mesh with the drive gear 2032 and the rotating tooth groove 2021 respectively. In use, in steering mode, the electromagnet 205 is energized. After being energized, the electromagnet 205 can magnetically attract the switching magnetic ring 2043 and drive the switching seat 204 to move downward. When the switching seat 204 moves downward, the control gear 2042 disengages from the control tooth groove 2031 and compresses the locking spring 2041, thereby releasing the control seat 203 from being locked inside the positioning seat 201 (preventing it from rotating). In the steering mode, when the drive motor 102 is powered on and rotates, it can drive the mounting base 202 to rotate, changing the orientation of the monitoring camera 3. When the drive motor 102 drives the positioning screw 103 to rotate, the control base 203 can rotate inside the positioning base 201. Thus, when the positioning screw 103 rotates, it can drive the control base 203 to rotate synchronously. When the control base 203 rotates, the drive gear 2032 can drive the transmission gear 2011 to rotate. When the transmission gear 2011 rotates, it can drive the mounting base 202 to rotate independently of the positioning base 201 through the rotating tooth groove 2021, thereby changing the orientation of the monitoring camera 3 and ensuring that it can be in the optimal monitoring orientation. The adjustment is convenient and flexible.

[0024] The working principle of this embodiment: The positioning mechanism 2 has two operating modes: lifting mode and turning mode, which can be switched as needed. When the electromagnet 205 is not energized, the positioning mechanism 2 is in lifting mode, which allows for adjustment of the height of the monitoring camera 3. When the electromagnet 205 is energized, the positioning mechanism 2 is in turning mode, in which the mounting base 202 can rotate 360 ​​degrees, thereby changing the orientation of the monitoring camera 3 to adapt to different monitoring needs. In lifting mode, since the electromagnet 205 is not energized, the locking spring... Under the action of 2041, the control gear 2042 is inserted into the control gear slot 2031. Since the switching seat 204 cannot rotate inside the positioning seat 201, the control seat 203 also cannot be inside the positioning seat 201 at this time. After that, the drive motor 102 is powered on and rotates, which can drive the monitoring camera 3 to rise and fall to change the operating height. In the lifting mode, when the drive motor 102 rotates, it can drive the positioning screw 103 to rotate. When the positioning screw 103 rotates, it can drive the control seat 203 to move up and down through the screw thread. When the control seat 203 moves, it can drive the positioning mechanism 2 and the monitoring... Camera 3 moves synchronously, thus enabling the adjustment and change of the operating height of the surveillance camera 3. In the turning mode, electromagnet 205 is energized. After being energized, electromagnet 205 magnetically attracts and attaches the switching magnetic ring 2043, causing the switching seat 204 to move downwards. When the switching seat 204 moves downwards, the control gear 2042 disengages from the control tooth groove 2031 and compresses the locking top spring 2041, thereby releasing the locking (non-rotational) state of the control seat 203 inside the positioning seat 201. After the drive motor 102 is energized and rotates, it can drive the mounting seat 202 to rotate and change the operating height of the surveillance camera. Regarding the orientation of camera 3, when the drive motor 102 drives the positioning screw 103 to rotate in the steering mode, the control seat 203 can rotate inside the positioning seat 201. As a result, the positioning screw 103 can drive the control seat 203 to rotate synchronously when it rotates. When the control seat 203 rotates, the drive gear 2032 can drive the transmission gear 2011 to rotate. When the transmission gear 2011 rotates, it can drive the mounting seat 202 to rotate independently of the positioning seat 201 through the rotating tooth groove 2021. This changes the orientation of the surveillance camera 3, ensuring that it can be in the optimal monitoring orientation.

Claims

1. A smart monitoring device for a power plant, characterized in that, include: Support component (1) and monitoring component, wherein the monitoring component consists of a positioning mechanism (2) and a monitoring camera (3); The support assembly (1) includes a fixed column (101), a drive motor (102), and a positioning screw (103). The drive motor (102) is fixedly installed inside the fixed column (101), and the positioning screw (103) is rotatably connected inside the fixed column (101). The shaft of the drive motor (102) and the bottom end of the positioning screw (103) are connected in a transmission connection. The positioning mechanism (2) includes a positioning seat (201), a mounting seat (202), a control seat (203), a switching seat (204), and an electromagnet (205). The positioning seat (201) is inserted into the interior of the fixed column (101), and the rod of the positioning screw (103) passes through the interior of the positioning seat (201). The mounting seat (202) is rotatably connected to the exterior of the positioning seat (201), and a monitoring camera is detachably mounted on the side of the mounting seat (202). (3) The control seat (203) is rotatably connected to the inside of the positioning seat (201), and the positioning screw (103) is screwed into the inside of the control seat (203) through the rod body thread. The switching seat (204) is inserted into the inside of the positioning seat (201), and the electromagnet (205) is fixedly installed inside the positioning seat (201). The electromagnet (205), the switching seat (204) and the control seat (203) are arranged sequentially from bottom to top inside the positioning seat (201).

2. The intelligent monitoring device for a power plant according to claim 1, characterized in that, The side of the switching seat (204) is provided with a locking top spring (2041), and the two ends of the locking top spring (2041) abut against the bottom of the switching seat (204) and the inside of the positioning seat (201), respectively.

3. The intelligent monitoring device for a power plant according to claim 2, characterized in that, The top of the switching seat (204) is provided with a control gear (2042), and the bottom of the control seat (203) is provided with a control tooth groove (2031). When the electromagnet (205) is not energized, the control gear (2042) is inserted into the inside of the control tooth groove (2031) under the action of the locking top spring (2041).

4. The intelligent monitoring device for a power plant according to claim 3, characterized in that, The bottom of the switching base (204) is provided with a switching magnetic ring (2043), which will magnetically attract the switching magnetic ring (2043) when the electromagnet (205) is energized.

5. The intelligent monitoring device for a power plant according to claim 4, characterized in that, The positioning seat (201) is provided with a transmission gear (2011) inside, and the control seat (203) is provided with a drive gear (2032) on the side. The mounting seat (202) is provided with a rotating tooth groove (2021) inside. The teeth on both sides of the transmission gear (2011) mesh with the drive gear (2032) and the rotating tooth groove (2021) respectively.