Field monitoring device for oil field construction
By introducing a combination of cleaning sponge rollers and atomizing nozzles into the oilfield construction monitoring device, the problem of camera contamination under severe weather conditions was solved, the data acquisition accuracy and device stability were improved, and the monitoring effect was enhanced.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-31
- Publication Date
- 2026-04-03
AI Technical Summary
Existing oilfield construction monitoring technologies are susceptible to camera obstruction by rain and snow in extremely harsh environments, affecting image acquisition accuracy and reducing monitoring effectiveness.
A field monitoring device for oilfield construction was designed, comprising a high-definition camera, an infrared imager, a ring-shaped glass cover, a cleaning sponge roller, and a drive assembly. The drive assembly drives the cleaning sponge roller to rotate and wipe the surface of the glass cover to remove dirt, and sprays cleaning fluid with atomizing nozzles when necessary to keep the glass cover clean.
The system improves the data acquisition accuracy of high-definition cameras and infrared imagers under adverse weather conditions, enhancing the monitoring effect. Furthermore, the stable fixation of the support rods improves the stability and service life of the device.
Smart Images

Figure CN224083600U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of monitoring device technology, and in particular to a field monitoring device for oilfield construction. Background Technology
[0002] With the continuous growth of global energy demand, the development of oil resources has become particularly important. Oilfield construction environments are complex and variable, involving numerous operational stages, including drilling, oil production, and storage and transportation, all of which place extremely high demands on safety and efficiency. To ensure the safety of oilfield construction and improve operational efficiency, the application of on-site monitoring technology has become crucial. Effective monitoring devices can monitor the construction site in real time, promptly identify and address potential safety risks, reduce accidents, optimize construction processes, and improve operational efficiency.
[0003] Currently, oilfield construction monitoring technology primarily relies on video surveillance systems and sensor networks. Video surveillance systems are implemented through fixed cameras or mobile drone patrols. Fixed camera monitoring solutions are widely used for long-term monitoring of fixed areas due to their low cost and simple maintenance. They can provide continuous video streams, helping monitoring personnel observe the construction site in real time. Mobile drone patrols, with their high flexibility and wide coverage, are particularly suitable for inspection work in large-area oilfields. In addition, sensor networks can monitor environmental parameters such as temperature, pressure, and gas concentration, providing important data support for the monitoring system.
[0004] While existing oilfield construction monitoring technologies meet monitoring needs to some extent, they still face numerous challenges in practical applications. First, fixed cameras, due to their fixed viewing angle, have limitations in providing comprehensive monitoring of complex terrain and cannot fully cover the construction area. Second, while drone patrols offer high flexibility, they are heavily dependent on weather conditions and have limited endurance and payload capacity, making them unsuitable for prolonged continuous operation. Furthermore, regardless of whether it's a fixed camera or a drone patrol, in extreme environments such as rain or snow, the camera surface is easily obscured, affecting the accuracy of image acquisition and reducing monitoring effectiveness. Utility Model Content
[0005] The purpose of this application is to address the problem that existing oilfield construction monitoring technologies are prone to image acquisition accuracy and reduced monitoring effectiveness in extreme environments such as rain and snow, where the camera surface is easily obscured by rain and snow. This application provides an on-site monitoring device for oilfield construction.
[0006] To achieve the above objectives, this application specifically adopts the following technical solution:
[0007] A field monitoring device for oilfield construction includes a column, with an H-shaped truncated cone fixedly connected to the top of the column. Multiple high-definition cameras are uniformly fixedly connected inside the H-shaped truncated cone, arranged in a circular pattern. Multiple infrared imagers are also uniformly fixedly connected inside the H-shaped truncated cone, arranged in a circular pattern. An annular glass cover is fixedly connected to the periphery of the H-shaped truncated cone. A wireless communication module is fixedly connected to the top of the H-shaped truncated cone. An L-shaped mounting platform is rotatably connected to one end of the column, and a cleaning sponge roller is rotatably connected to one end of the L-shaped mounting platform. The cleaning sponge roller is fitted against the outer side of the annular glass cover. A drive assembly for driving the cleaning sponge roller to rotate around the annular glass cover is installed at one end of the H-shaped truncated cone.
[0008] By adopting the above technical solution, and by setting up the driving component and the cleaning sponge roller to work together, when the surface of the annular glass cover is contaminated due to severe weather, activating the driving component can drive the L-shaped mounting platform to rotate the cleaning sponge roller around the periphery of the annular glass cover. This allows the cleaning sponge roller to wipe away the stains on the outer surface of the annular glass cover, thereby maintaining the cleanliness of the surface and improving the data acquisition accuracy of the high-definition camera and infrared imager, thus enhancing the monitoring effect.
[0009] Furthermore, the drive assembly includes a bevel gear one fixedly connected to the top of the L-shaped mounting platform, a drive motor fixedly connected to the bottom of the I-shaped frustum, and a bevel gear two meshing with the bevel gear one fixedly connected to the output end of the drive motor.
[0010] By adopting the above technical solution, and by setting the bevel gear one and bevel gear two to work together, the starting drive motor can drive bevel gear two to mesh with bevel gear one, and cause bevel gear one to drive the L-shaped mounting platform to rotate, thereby facilitating the rotation of the L-shaped mounting platform and effectively improving the practicality of the device.
[0011] Furthermore, a pressure tank is fixedly connected to one end of the L-shaped mounting platform, an electric control valve is fixedly connected to the output end of the pressure tank, an atomizing nozzle is fixedly connected to one end of the L-shaped mounting platform, the output port of the atomizing nozzle faces the outer surface of the annular glass cover, and the output end of the pressure tank is fixedly connected to the atomizing nozzle through a pipe.
[0012] By adopting the above technical solution and using the combination of the electronically controlled valve and the atomizing nozzle, when the acquisition accuracy of the high-definition camera and infrared imager is affected, the cleaning fluid inside the pressure tank can be quickly atomized and sprayed onto the outer surface of the annular glass cover by opening the electronically controlled valve, thereby improving the cleaning efficiency of the cleaning sponge roller on the surface of the annular glass cover and enhancing the practicality of the device.
[0013] Furthermore, a transmission gear ring is fixedly connected to the bottom of the I-shaped truncated cone, and a transmission gear that meshes with the transmission gear ring is fixedly connected to one end of the cleaning sponge roller.
[0014] By adopting the above technical solution, and by setting the transmission gear ring and the transmission gear to work together, when the L-shaped mounting platform drives the cleaning sponge roller to rotate around the periphery of the annular glass cover, the transmission gear and the transmission gear ring are engaged, and the transmission gear drives the cleaning sponge roller to rotate, thereby further improving the cleaning efficiency of the cleaning sponge roller on the surface of the annular glass cover.
[0015] Furthermore, a protective cover is fixedly connected to the top of the I-shaped truncated cone, and the wireless communication module is installed inside the protective cover.
[0016] By adopting the above technical solution, and by using a protective cover in conjunction with the wireless communication module, it is easy to form a protective layer on the surface of the wireless communication module, thereby extending the service life of the wireless communication module.
[0017] Furthermore, four adjusting grooves are evenly provided at one end of the column, and adjusting sliders are slidably connected inside the adjusting grooves. A support rod is hinged to one end of the adjusting slider, and an adjusting component for fixing the adjusting slider is installed at one end of the adjusting groove.
[0018] By adopting the above technical solution, and by setting the adjustment component and the support rod to work together, it is easy to insert the bottom of the support rod into the ground after the traction support rod drives the adjustment slider to move along the length of the adjustment groove to a suitable position. At the same time, tightening the adjustment component fixes the adjustment slider inside the adjustment groove. This makes it easier to use multiple support rods to form a stable fixed support around the column, thus improving the stability of the device.
[0019] Furthermore, the adjustment assembly includes multiple pairs of adjustment holes evenly spaced at one end of the adjustment slide, and one end of the adjustment slider is provided with a fixing hole adapted to the adjustment hole. A locking screw is inserted into the adjustment hole, and one end of the locking screw is threadedly connected to a locking nut.
[0020] By adopting the above technical solution, and by setting the adjustment hole and the fixing hole, the locking screw and the locking nut to work together, it is convenient to drive the adjustment slider to align the fixing hole with the matching adjustment hole along the adjustment groove. Then, the locking screw passes through the adjustment hole and the fixing hole, and the locking nut is tightened, so that a fixed connection is formed between the adjustment slider and the column, which effectively improves the practicality of the device.
[0021] Furthermore, the surfaces of both the column and the support rod are coated with an organosilicon waterproof coating.
[0022] By adopting the above technical solution and setting an organosilicon waterproof coating, the corrosion resistance of the device is effectively improved and the service life of the device is extended.
[0023] In summary, this application includes at least one of the following beneficial effects:
[0024] 1. By setting up the drive assembly in conjunction with the cleaning sponge roller, when the surface of the annular glass cover becomes contaminated due to inclement weather, activating the drive assembly can drive the L-shaped mounting platform to rotate the cleaning sponge roller around the periphery of the annular glass cover. This allows the cleaning sponge roller to wipe away the stains on the outer surface of the annular glass cover, maintaining its cleanliness, improving the data acquisition accuracy of the high-definition camera and infrared imager, and enhancing the monitoring effect.
[0025] 2. By setting up the adjustment component and the support rod to work together, it is easy to move the adjustment slider along the length of the adjustment groove to a suitable position after the traction support rod drives it, so that the bottom of the support rod is inserted into the ground. At the same time, tightening the adjustment component fixes the adjustment slider inside the adjustment groove. This makes it easy to use multiple support rods to form a stable fixed support around the column, thus improving the stability of the device. Attached Figure Description
[0026] Figure 1 This is a three-dimensional structural diagram of the main body of the device in this application.
[0027] Figure 2 This is a schematic diagram of the internal structure of the I-shaped truncated cone in this application.
[0028] Figure 3 This is an exploded view of the internal structure of the adjusting groove in this application.
[0029] Explanation of reference numerals in the attached figures:
[0030] 1. Column; 2. I-shaped truncated cone; 3. High-definition camera; 4. Infrared imager; 5. Circular glass cover; 6. Wireless communication module; 7. L-shaped mounting platform; 8. Cleaning sponge roller; 9. Bevel gear one; 10. Drive motor; 11. Bevel gear two; 12. Pressure tank; 13. Electrically controlled valve; 14. Atomizing nozzle; 15. Transmission gear ring; 16. Transmission gear; 17. Protective cover; 18. Adjusting slide; 19. Adjusting slider; 20. Support rod; 21. Adjusting hole; 22. Fixing hole; 23. Locking screw; 24. Locking nut. Detailed Implementation
[0031] The following is in conjunction with the appendix Figure 1 —3 provides further detailed description of this application.
[0032] This application discloses an on-site monitoring device for oilfield construction.
[0033] Reference Figure 1 - Figure 2 An on-site monitoring device for oilfield construction includes a column 1, an I-shaped truncated cone 2 fixedly connected to the top of the column 1, multiple high-definition cameras 3 uniformly fixedly connected inside the I-shaped truncated cone 2, the multiple high-definition cameras 3 arranged in a circle inside the I-shaped truncated cone 2, multiple infrared imagers 4 uniformly fixedly connected inside the I-shaped truncated cone 2, the multiple infrared imagers 4 arranged in a circle inside the I-shaped truncated cone 2, an annular glass cover 5 fixedly connected to the periphery of the I-shaped truncated cone 2, a wireless communication module 6 fixedly connected to the top of the I-shaped truncated cone 2, an L-shaped mounting platform 7 rotatably connected to one end of the column 1, a cleaning sponge roller 8 rotatably connected to one end of the L-shaped mounting platform 7, the cleaning sponge roller 8 fitting against the outer side of the annular glass cover 5, and a drive component for driving the cleaning sponge roller 8 to rotate around the annular glass cover 5 installed at one end of the I-shaped truncated cone 2.
[0034] The drive assembly includes a bevel gear 9 fixedly connected to the top of the L-shaped mounting platform 7, a drive motor 10 fixedly connected to the bottom of the I-shaped frustum 2, and a bevel gear 11 that meshes with the bevel gear 9 fixedly connected to the output end of the drive motor 10.
[0035] Furthermore, a pressure tank 12 is fixedly connected to one end of the L-shaped mounting platform 7, an electric control valve 13 is fixedly connected to the output end of the pressure tank 12, an atomizing nozzle 14 is fixedly connected to one end of the L-shaped mounting platform 7, the output port of the atomizing nozzle 14 faces the outer surface of the annular glass cover 5, and the output end of the pressure tank 12 is fixedly connected to the atomizing nozzle 14 through a pipe.
[0036] Furthermore, a transmission gear ring 15 is fixedly connected to the bottom of the I-shaped truncated cone 2, and a transmission gear 16 that meshes with the transmission gear ring 15 is fixedly connected to one end of the cleaning sponge roller 8.
[0037] Furthermore, a protective cover 17 is fixedly connected to the top of the I-shaped truncated cone 2, and the wireless communication module 6 is installed inside the protective cover 17.
[0038] In use, firstly, the column 1 is fixed in the monitoring area along with the I-shaped truncated cone 2 to ensure that there are no obstructions in the field of view. Then, the equipment is started, so that the high-definition camera 3 begins to record images of the surrounding environment, and the infrared imager 4 simultaneously collects thermal imaging data. The data collected by the high-definition camera 3 and the infrared imager 4 are remotely transmitted to the remote server through the wireless communication module 6. Then, when the surface of the annular glass cover 5 is contaminated due to severe weather, which affects the data collected by the high-definition camera 3 and the infrared imager 4, the drive motor 10 is started to drive the bevel gear 11 to mesh with the bevel gear 9, and drive the L-shaped mounting platform 7 to rotate. At the same time, the electric control valve 13 is opened, so that the cleaning fluid stored in the pressure tank 12 is atomized and sprayed onto the surface of the annular glass cover 5 through the atomizing nozzle 14, and the cleaning fluid is used to accelerate the removal of dirt from the surface of the annular glass cover 5.
[0039] Then, the L-shaped mounting platform 7 drives the cleaning sponge roller 8 to rotate around the periphery of the annular glass cover 5. The cleaning sponge roller 8, in conjunction with the cleaning liquid on the surface of the annular glass cover 5, wipes away the stains, thereby quickly removing the stains from the surface of the annular glass cover 5. This improves the accuracy of data acquisition by the high-definition camera 3 and the infrared imager 4. While the L-shaped mounting platform 7 drives the cleaning sponge roller 8 to rotate around the periphery of the annular glass cover 5, the cleaning sponge roller 8 drives the transmission gear 16 to mesh with the transmission gear ring 15. The transmission gear 16 then drives the cleaning sponge roller 8 to rotate on its own axis. This allows the cleaning sponge roller 8 to both revolve around the annular glass cover 5 and rotate on its own axis, effectively improving the cleaning efficiency of the cleaning sponge roller 8 on the surface of the annular glass cover 5 and enhancing the practicality of the device.
[0040] Reference Figure 1 - Figure 3 Four adjusting grooves 18 are evenly provided at one end of the column 1. Adjusting sliders 19 are slidably connected inside the adjusting grooves 18. A support rod 20 is hinged to one end of the adjusting slider 19. An adjusting component for fixing the adjusting slider 19 is installed at one end of the adjusting groove 18.
[0041] The adjustment assembly includes multiple pairs of adjustment holes 21 evenly spaced at one end of the adjustment slide 18. One end of the adjustment slider 19 is provided with a fixing hole 22 that matches the adjustment hole 21. A locking screw 23 is inserted into the adjustment hole 21, and a locking nut 24 is threaded onto one end of the locking screw 23.
[0042] In use, the support rod 20 is first manually pulled to move the adjusting slider 19 along the length of the adjusting groove 18. At the same time, the support rod 20 rotates around the hinge axis to create an angle between it and the column 1. Then, the adjusting slider 19 moves the fixing hole 22 along the length of the adjusting groove 18 until it is aligned with the matching adjusting hole 21. The bottom of the support rod 20 is pushed into the ground. Then, one end of the locking screw 23 is pulled through the adjusting hole 21 and the fixing hole 22, and the locking nut 24 is tightened so that the locking nut 24 and the locking screw 23 form a threaded connection, so that the adjusting slider 19 and the column 1 are fixedly connected. This makes it easier to use multiple support rods 20 to form a stable fixed support around the column 1, thus improving the stability of the device.
[0043] Reference Figure 1 and Figure 2 Both the surface of column 1 and support rod 20 are coated with an organosilicon waterproof coating.
[0044] During use, by coating the surfaces of the column 1 and the support rod 20 with an organic silicone waterproof coating, a layer of rust resistance is formed on the surfaces of the column 1 and the support rod 20, extending the service life of the device.
[0045] The implementation principle of the field monitoring device for oilfield construction in this embodiment is as follows: First, the column 1 is moved to the monitoring area to ensure that there are no obstructions in the field of view. Then, the support rod 20 is manually pulled to drive the adjusting slider 19 to move along the length direction of the adjusting groove 18. At the same time, the support rod 20 is rotated around the hinge axis to generate an angle between it and the column 1. Then, when the adjusting slider 19 drives the fixing hole 22 to move along the length direction of the adjusting groove 18 to align with the matching adjusting hole 21, the bottom of the support rod 20 is pushed into the ground. Then, one end of the locking screw 23 is pulled through the adjusting hole 21 and the fixing hole 22, and the locking nut 24 is tightened so that the locking nut 24 and the locking screw 23 form a threaded connection, so that the adjusting slider 19 and the column 1 form a fixed connection. Thus, multiple support rods 20 form a stable fixed support around the column 1.
[0046] Then, the equipment is started, so that the high-definition camera 3 begins to record images of the surrounding environment, the infrared imager 4 simultaneously collects thermal imaging data, and the data collected by the high-definition camera 3 and the infrared imager 4 are remotely transmitted to the remote server through the wireless communication module 6. Then, when the surface of the annular glass cover 5 is contaminated due to severe weather, which affects the data collected by the high-definition camera 3 and the infrared imager 4, the drive motor 10 is started to drive the bevel gear 11 to mesh with the bevel gear 9, and drive the L-shaped mounting platform 7 to rotate. At the same time, the electric control valve 13 is opened, so that the cleaning fluid stored in the pressure tank 12 is atomized and sprayed onto the surface of the annular glass cover 5 through the atomizing nozzle 14, and the cleaning fluid is used to accelerate the removal of dirt from the surface of the annular glass cover 5.
[0047] Next, the L-shaped mounting platform 7 drives the cleaning sponge roller 8 to rotate around the periphery of the annular glass cover 5. The cleaning sponge roller 8, in conjunction with the cleaning liquid on the surface of the annular glass cover 5, wipes away the stains, thereby quickly removing the stains from the surface of the annular glass cover 5. This improves the accuracy of data acquisition by the high-definition camera 3 and the infrared imager 4. While the L-shaped mounting platform 7 drives the cleaning sponge roller 8 to rotate around the periphery of the annular glass cover 5, the cleaning sponge roller 8 drives the transmission gear 16 to mesh with the transmission gear ring 15. The transmission gear 16 then drives the cleaning sponge roller 8 to rotate on its own axis. This allows the cleaning sponge roller 8 to both revolve around the annular glass cover 5 and rotate on its own axis, effectively improving the cleaning efficiency of the cleaning sponge roller 8 in removing stains from the surface of the annular glass cover 5.
Claims
1. An on-site monitoring device for oilfield operations, comprising a column (1), characterised in that: The top of the column (1) is fixedly connected with an I-shaped circular table (2), a plurality of high-definition cameras (3) are uniformly fixedly connected in the I-shaped circular table (2), the plurality of high-definition cameras (3) are circularly arranged in the I-shaped circular table (2), a plurality of infrared imagers (4) are uniformly fixedly connected in the I-shaped circular table (2), the plurality of infrared imagers (4) are circularly arranged in the I-shaped circular table (2), an annular glass cover (5) is fixedly connected to the periphery of the I-shaped circular table (2), a wireless communication module (6) is fixedly connected to the top of the I-shaped circular table (2), one end of the column (1) is rotatably connected with an L-shaped mounting table (7), one end of the L-shaped mounting table (7) is rotatably connected with a cleaning sponge roller (8), the cleaning sponge roller (8) is attached to the outer side of the annular glass cover (5), and one end of the I-shaped circular table (2) is provided with a driving assembly for driving the cleaning sponge roller (8) to rotate around the annular glass cover (5).
2. An on-site monitoring device for oilfield operations as defined in claim 1, characterized in that: The driving assembly comprises a bevel gear I (9) fixedly connected to the top of the L-shaped mounting table (7), a driving motor (10) fixedly connected to the bottom of the I-shaped circular table (2), and a bevel gear II (11) fixedly connected to the output end of the driving motor (10) and engaged with the bevel gear I (9).
3. The field monitoring device for oilfield operations of claim 1, wherein: One end of the L-shaped mounting table (7) is fixedly connected with a pressure storage tank (12), the output end of the pressure storage tank (12) is fixedly connected with an electric control valve (13), one end of the L-shaped mounting table (7) is fixedly connected with an atomizing nozzle (14), the output port of the atomizing nozzle (14) faces the outer surface of the annular glass cover (5), and the output end of the pressure storage tank (12) is fixedly connected with the atomizing nozzle (14) through a pipeline.
4. The field monitoring device for oilfield operations of claim 1, wherein: The bottom of the I-shaped circular table (2) is fixedly connected with a transmission gear ring (15), and one end of the cleaning sponge roller (8) is fixedly connected with a transmission gear (16) engaged with the transmission gear ring (15).
5. The field monitoring device for oilfield operations of claim 1, wherein: The top of the I-shaped circular table (2) is fixedly connected with a protective cover (17), and the wireless communication module (6) is mounted in the protective cover (17).
6. The field monitoring device for oilfield operations of claim 1, wherein: Four adjusting sliding grooves (18) are uniformly formed in one end of the column (1), adjusting sliding blocks (19) are slidably connected in the adjusting sliding grooves (18), supporting rods (20) are hingedly connected to one end of the adjusting sliding blocks (19), and adjusting assemblies for fixing the adjusting sliding blocks (19) are mounted at one end of the adjusting sliding grooves (18).
7. An on-site monitoring device for oilfield operations as defined in claim 6, wherein: The adjusting assembly comprises a plurality of pairs of adjusting holes (21) uniformly formed at one end of the adjusting sliding groove (18), a fixing hole (22) adapted to the adjusting hole (21) is formed at one end of the adjusting sliding block (19), a locking screw (23) is inserted into the adjusting hole (21), and a locking nut (24) is threadedly connected to one end of the locking screw (23).
8. The field monitoring device for oilfield operations of claim 6, wherein: The surfaces of the column (1) and the supporting rod (20) are coated with an organic silicon waterproof coating.