Shoreside wind speed and wind direction monitoring system

By designing concrete seats, support pole groups and smooth mechanisms in the shore wind speed and direction monitoring system, the problem of data deviation caused by equipment shaking in strong wind environments is solved, and higher stability and data accuracy are achieved.

CN119983077AInactive Publication Date: 2025-05-13BEIJING HAIZHOU SAIWEI TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510381090.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2025-05-13
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing shore wind speed and wind direction monitoring system is prone to data deviations and hardware damage to the anemometer and wind direction meter due to the swing of the support rod in a strong wind environment.

Method used

A shore wind speed and wind direction monitoring system is designed, using a concrete seat and a support rod group, combining a stabilizing mechanism, including a mounting frame, a stabilizing plate and a locking chain. Through the synergy of these components, the stability of the support table is enhanced and the system's wind resistance is improved through the locking chain.

Benefits of technology

It effectively limits the positional offset of the support rod group, reduces the shaking of the anemometer and the wind direction instrument in strong wind environments, ensures the accuracy and continuity of the measurement data, and improves the operating reliability of the equipment in bad weather conditions.

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Abstract

The invention relates to a shoreside wind speed and direction monitoring system which comprises a concrete base, a supporting rod set is arranged on the concrete base, a supporting table is vertically arranged on the supporting rod set in a sliding mode, and an anemograph and an anemoscope are arranged on the supporting table corresponding to the supporting rod set and used for shoreside monitoring. And the stabilizing mechanism comprises a mounting frame fixed to the lower end of the middle of the supporting table, a stabilizing clamping plate and a plurality of locking chains, and the high-position stability of the supporting rod set is improved. According to the invention, stable support of the anemograph and the anemoscope during high-altitude monitoring is realized.
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Description

Technical Field

[0001] The present application relates to the technical field of monitoring equipment, and in particular to a shore wind speed and direction monitoring system. Background Art

[0002] At present, wind speed and direction monitoring systems are widely used in meteorological observation, environmental protection and other fields. Especially in coastal areas, accurate monitoring of shore wind speed and direction is of great significance for preventing natural disasters and ensuring the safety of offshore operations. In recent years, with the deepening of climate change research and the increased attention to extreme weather events, the demand for wind speed and direction monitoring equipment has increased, which has promoted the development and improvement of related technologies. Such equipment not only needs to have high-precision data collection capabilities, but also needs to adapt to complex and changing working environments to ensure long-term stable operation and play an important role in practical applications.

[0003] When encountering severe windy environment at the coast, it often has an impact on the monitoring equipment. In the existing technology, the installation of monitoring equipment is often fixed on a longer support pole. However, when encountering a strong wind environment, although the bottom of the support pole is stable, it is long and easy for the support pole to swing with the wind in a strong wind environment. Therefore, when the anemometer and wind vane are at a higher position to carry out monitoring tasks, due to the lack of an effective support system specifically for high-altitude areas, the entire structure is easily affected by severe shaking, which in turn causes data deviation and even hardware damage.

[0004] In view of the above-mentioned related technologies, it is necessary to propose a shore wind speed and direction monitoring system to solve one of the above-mentioned technical problems. Summary of the invention

[0005] In order to solve one of the above-mentioned technical problems, the present application provides a shore wind speed and direction monitoring system.

[0006] The present application provides a shore wind speed and direction monitoring system that adopts the following technical solutions: A shore wind speed and direction monitoring system, comprising: A concrete seat, wherein a support rod group is disposed on the concrete seat, a support platform is vertically slidably disposed on the support rod group, and an anemometer and a wind vane are disposed on the support rod group corresponding to the support platform for shore monitoring; and The stabilizing mechanism comprises a mounting frame fixed at the lower middle end of the support platform, a stabilizing clamping plate and a plurality of locking chains. The bottom two sides of the mounting frame are penetrated with a rotating groove. The top end of the stabilizing clamping plate is rotatably arranged in the rotating groove. The end of the stabilizing clamping plate is provided with an arc-shaped clamping hole for clamping the rod body of the support rod group. One end of a plurality of the locking chains is fixed to the concrete seat, and the other end is fixedly connected to the mounting frame after position adjustment. When protecting against wind on the shore, the support rod group is clamped by the stabilizing clamping plate rotating at the mounting frame, and the stability of the support rod group at a high position is increased by the support platform after position adjustment and the plurality of the locking chains of the concrete seat.

[0007] By adopting the above technical solution, stable support for the anemometer and wind vane is achieved when monitoring at high altitudes; specifically, in the face of complex and changeable wind conditions on the shore, the design of the mounting frame combined with the stabilizing clip can effectively limit the position deviation of the support rod group, while the locking chain is used to further enhance the wind resistance of the entire system; this design not only improves the operating reliability of the equipment under severe weather conditions, but also ensures the accuracy and continuity of the measurement data, thereby providing a more stable guarantee basis for subsequent analysis.

[0008] Optionally, the support rod group includes a first support rod installed on the concrete base, a rotating disk is rotatably arranged on the first support rod above one side corresponding to the support platform, and a first mounting plate is arranged at one end of the rotating disk for supporting the anemometer to change the horizontal direction of the anemometer's speed measurement.

[0009] By adopting the above technical solution, the adjustability of the anemometer in the horizontal direction of measurement is achieved; specifically, the rotating disk on the first support rod can rotate around its own axis, thereby driving the first mounting plate and the anemometer thereon to rotate synchronously, so that the anemometer can adjust the horizontal direction of speed measurement according to actual needs, thereby improving the flexibility and adaptability of the monitoring system.

[0010] Optionally, the support rod group also includes a second support rod symmetrically arranged with the first support rod, the second support rod is slidably provided with a connecting plate, the connecting plate is fixedly connected to the support platform, and a second mounting plate is provided on the connecting plate for carrying the wind vane.

[0011] By adopting the above technical scheme, stable installation and adjustment of the wind vane on the support rod group is achieved; specifically, the added second support rod is symmetrically arranged with the first support rod to form a structural balance, thereby improving the stability of the entire system; the connecting plate is slidably arranged on the second support rod and fixedly connected to the support platform, so that the position of the wind vane can be flexibly adjusted to meet different monitoring needs; at the same time, the setting of the second mounting plate provides a stable bearing platform for the wind vane, ensuring that its measurement accuracy is not affected by external interference.

[0012] Optionally, a gear plate is rotatably provided on the support platform, the gear plate is sleeved on the first support rod, the gear plate is connected to the bottom of the rotating plate, a driving motor is provided on one side of the support platform, a driving gear is provided at the output end of the driving motor, and the driving gear is meshed with the gear plate to realize the rotation of the rotating plate.

[0013] By adopting the above technical solution, the driving motor drives the active gear to rotate, and then drives the gear plate to rotate, so that the rotating plate connected to the gear plate rotates synchronously; this design realizes the precise adjustment of the measurement direction of the anemometer, and improves the flexibility and comprehensiveness of wind speed data collection; at the same time, the gear transmission structure ensures the stability and reliability of power transmission, effectively improving the adaptability and work efficiency of the system.

[0014] Optionally, the second support rod is combined with the first support rod through the support platform, and an adjustment mechanism is arranged on the top of the second support rod, and the adjustment mechanism includes an adjustment seat, an electric push rod and an adjustment rod arranged on the second support rod, the electric push rod is arranged on the adjustment seat, the adjustment rod is vertically arranged on the output end of the electric push rod, and the bottom end of the adjustment rod is connected to the connecting disk.

[0015] By adopting the above technical solution, the position of the connecting plate is adjusted by the electric push rod driving the adjusting rod, and finally the height change of the support platform is realized; this design enables the anemometer and wind vane to adjust the monitoring height according to actual needs, thereby enhancing the adaptability of the equipment; at the same time, the combined structure of the second support rod and the first support rod improves the stability of the overall system, ensuring good monitoring performance in different working environments.

[0016] Optionally, a positioning frame is sleeved on the outside of the second support rod and above the connecting plate, one end of the positioning frame is penetrated by a positioning hole, the adjusting rod passes through the positioning hole, and the positioning frame positions the adjusting rod in the vertical direction through the positioning hole.

[0017] By adopting the above technical solution, the setting of the positioning frame can effectively limit the freedom of the adjusting rod in the vertical direction, ensuring that its movement trajectory is more precise and stable; specifically, the structural design of the positioning hole enables the adjusting rod to be accurately guided when passing through, avoiding position deviation or shaking caused by external factors, thereby improving the reliability of the entire support system.

[0018] Optionally, a protective mechanism is also included, which includes an extension frame, a swing block and a transparent protective plate. The extension frame is respectively arranged at the front and back sides of the middle part of the support platform, the swing block is rotatably arranged on the extension frame, and the transparent protective plate is connected to the swing block. The swing block drives the protective plate to protect the anemometer and wind vane in a long-term strong wind environment.

[0019] By adopting the above technical solution, effective protection of the anemometer and wind vane in a long-term strong wind environment is achieved; specifically, the coordinated use of the extension frame, the swing block and the transparent protective plate can flexibly adjust the position of the protective plate to ensure that the damage to the instrument caused by strong winds is reduced while not affecting the normal monitoring work; this design not only improves the durability of the system, but also ensures the accuracy and continuity of the monitoring data.

[0020] Optionally, a plurality of flow holes are evenly spaced through the protective plate to alleviate the effect of airflow on the anemometer and wind vane.

[0021] By adopting the above technical solution, the multiple flow holes arranged on the protective plate can effectively disperse the airflow pressure, reduce the impact damage of wind on the anemometer and wind vane in a strong wind environment, and ensure that the air flow state around the instrument is relatively stable, thereby improving the accuracy and reliability of the monitoring data.

[0022] Optionally, two ends of the extension frame are rotatably provided with a plurality of linkage plates, and one end of the plurality of linkage plates is rotatably connected to a side surface of the protective plate to support the protective plate.

[0023] By adopting the above technical solution, the cooperation between the multi-section linkage plates, the extension frame and the protective plate can form a stable triangular support structure, which can effectively enhance the stability of the protective plate when encountering strong winds or external impacts. At the same time, its rotatable characteristics allow the protective plate to flexibly adjust the angle or position according to actual needs, so as to better adapt to the protection requirements under different wind directions and wind conditions.

[0024] Optionally, a fixing frame is provided around the concrete seat, a rubber pad is provided on the inner wall of the fixing frame, the rubber pad is in contact with the concrete seat around, and the fixing frame is connected to the ground by bolts.

[0025] By adopting the above technical solution, the connection stability between the concrete base and the ground can be effectively enhanced, and the rubber pads can be used to reduce vibration transmission, thereby improving the stability and anti-interference ability of the entire monitoring system; in addition, the design of the fixed frame is easy to disassemble and maintain, which improves the on-site installation efficiency.

[0026] In summary, the present application includes at least one of the following beneficial technical effects: 1. The stabilizing mechanism effectively improves the stability of the support platform at a high position through the synergistic effect of the mounting frame, stabilizing card plate and locking chain, significantly reduces the shaking amplitude of the anemometer and wind vane in a strong wind environment, and ensures the accuracy of the monitoring data; 2. The anemometer can flexibly adjust the horizontal angle by means of the linkage design of the rotating disk and the gear disk, and realize all-round monitoring under complex wind field conditions, thus enhancing the functional diversity of the equipment; 3. The transparent protective plate and flow hole structure in the protective mechanism can not only alleviate the impact of airflow impact on the instrument, but also maintain effective perception of wind speed and direction, extending the service life of the equipment and ensuring long-term stable operation. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 It is a three-dimensional view of a shore wind speed and direction monitoring system in this application.

[0028] Figure 2 It is a front view of a shore wind speed and direction monitoring system in the present application.

[0029] Figure 3 yes Figure 1 A schematic diagram of the enlarged structure at point A in the middle.

[0030] Figure 4 This is a three-dimensional view of a shore wind speed and direction monitoring system (with a protective mechanism) in this application.

[0031] Figure 5 yes Figure 4 Side view of.

[0032] Figure 6 yes Figure 4 A magnified schematic diagram of the structure at point B in the middle.

[0033] In the figure: 1. concrete seat; 11. support rod group; 111. first support rod; 112. second support rod; 12. support platform; 121. gear plate; 122. drive motor; 123. driving gear; 13. anemometer; 14. wind vane; 15. fixing frame; 151. rubber pad; 2. stabilizing mechanism; 21. mounting frame; 211. rotating groove; 22. stabilizing clamping plate; 221. arc clamping hole; 23. locking chain; 3. rotating disk; 31. first mounting plate; 4. connecting plate; 41. second mounting plate; 5. adjusting mechanism; 51. adjusting seat; 52. electric push rod; 53. adjusting rod; 6. positioning frame; 61. positioning hole; 7. protective mechanism; 71. extension frame; 72. swing block; 73. protective plate; 731. flow hole; 74. multi-section linkage plate. DETAILED DESCRIPTION

[0034] The following is combined with the accompanying drawings Figure 1-Figure 6 This application is described in further detail.

[0035] Example 1, reference Figure 1-Figure 3 The embodiment of the present application discloses a shore wind speed and direction monitoring system, including: a concrete seat 1 and a stabilizing mechanism 2.

[0036] A support rod group 11 is provided on the concrete seat 1, a support platform 12 is vertically slidably provided on the support rod group 11, and an anemometer 13 and a wind vane 14 are provided on the support rod group 11 and the corresponding support platform 12 for shore monitoring.

[0037] The stabilizing mechanism 2 includes a mounting frame 21 fixed at the lower end of the middle part of the support platform 12, a stabilizing card plate 22 and a plurality of locking chains 23. The bottom two sides of the mounting frame 21 are penetrated with a rotating groove 211. A motor is arranged at the mounting frame 21 for driving the stabilizing card plate 22 to rotate. The top end of the stabilizing card plate 22 is rotatably arranged in the rotating groove 211. The end of the stabilizing card plate 22 is provided with an arc-shaped card hole 221, which is clamped to the rod body of the support rod group 11. One end of the plurality of locking chains 23 is fixed to the concrete seat 1, and the other end is fixedly connected to the mounting frame 21 after position adjustment. After the connection is completed, the locking chain 23 can be adjusted and fixed according to the locking tension. When protecting against wind on the shore, the support rod group 11 is clamped by the stabilizing card plate 22 rotating at the mounting frame 21, and the stability of the support rod group 11 at a high position is increased by the plurality of locking chains 23 of the support platform 12 and the concrete seat 1 after position adjustment.

[0038] The present application provides a shore wind speed and direction monitoring system that realizes stable support for the anemometer 13 and the wind vane 14 when monitoring at high altitudes; specifically, in the face of complex and changeable wind conditions on the shore, the design of the mounting frame 21 in conjunction with the stabilizing clamping plate 22 can effectively limit the position deviation of the support rod group 11, that is, in a severe windy environment, the stabilizing clamping plate 22 on the mounting frame 21 at the stabilizing mechanism 2 on the support platform 12 is rotated to be connected to the rod body of the support rod group 11 through the arc-shaped clamping hole 221, thereby expanding the support range of the support platform 12 on the support rod group 11, improving the stability of the support rod group 11, and at the same time further enhancing the wind resistance of the entire system with the help of the locking chain 23; this design not only improves the operating reliability of the equipment under severe weather conditions, but also ensures the accuracy and continuity of the measurement data, thereby providing a more stable guarantee basis for subsequent analysis.

[0039] refer to Figure 1In the present embodiment, more specifically, the support rod group 11 includes a first support rod 111 installed on the concrete seat 1, and a rotating disk 3 is rotatably arranged on the upper side of the first support rod 111 corresponding to the support platform 12, and a first mounting plate 31 is arranged at one end of the rotating disk 3 for carrying the anemometer 13 to change the horizontal direction of the speed measurement of the anemometer 13, thereby realizing the adjustability of the anemometer 13 in measuring the horizontal direction; specifically, the rotating disk 3 on the first support rod 111 can rotate around its own axis, thereby driving the first mounting plate 31 and the anemometer 13 thereon to rotate synchronously, so that the anemometer 13 can adjust the horizontal direction of the speed measurement according to actual needs, thereby improving the flexibility and adaptability of the monitoring system.

[0040] refer to Figure 1 and Figure 2 In the present embodiment, more specifically, the support rod group 11 also includes a second support rod 112 symmetrically arranged with the first support rod 111, and a connecting plate 4 is slidably arranged on the second support rod 112, and the connecting plate 4 is fixedly connected to the support platform 12, and a second mounting plate 41 is arranged on the connecting plate 4 for carrying the wind vane 14, thereby realizing the stable installation and adjustment of the wind vane 14 on the support rod group 11; specifically, the added second support rod 112 is symmetrically arranged with the first support rod 111 to form a structural balance and improve the stability of the entire system; the connecting plate 4 is slidably arranged on the second support rod 112 and fixedly connected to the support platform 12, so that the position of the wind vane 14 can be flexibly adjusted to meet different monitoring needs; at the same time, the setting of the second mounting plate 41 provides a stable bearing platform for the wind vane 14 to ensure that its measurement accuracy is not affected by external interference.

[0041] refer to Figure 1 and Figure 3 In the present embodiment, more specifically, a gear plate 121 is rotatably provided on the support platform 12, and the gear plate 121 is sleeved on the first support rod 111, and the gear plate 121 is connected to the bottom of the rotating disk 3, and a driving motor 122 is provided on one side of the support platform 12, and a driving gear 123 is provided at the output end of the driving motor 122, and is meshed with the gear plate 121 to realize the rotation of the rotating disk 3, and the driving motor 122 drives the driving gear 123 to rotate, thereby driving the gear plate 121 to rotate, so that the rotating disk 3 connected to the gear plate 121 rotates synchronously; this design realizes the precise adjustment of the measuring direction of the anemometer 13, and improves the flexibility and comprehensiveness of wind speed data collection; at the same time, the gear transmission structure ensures the stability and reliability of power transmission, and effectively improves the adaptability and work efficiency of the system.

[0042] refer to Figure 1 and Figure 2In the present embodiment, more specifically, the second support rod 112 is combined with the first support rod 111 through the support platform 12, and an adjusting mechanism 5 is arranged on the top of the second support rod 112, and the adjusting mechanism 5 includes an adjusting seat 51, an electric push rod 52 and an adjusting rod 53 arranged on the second support rod 112, the electric push rod 52 is arranged on the adjusting seat 51, and the adjusting rod 53 is vertically arranged on the output end of the electric push rod 52, and the bottom end of the adjusting rod 53 is connected to the connecting disk 4, and the adjusting rod 53 is driven by the electric push rod 52 to adjust the position of the connecting disk 4, so as to finally realize the height change of the support platform 12; this design enables the anemometer 13 and the wind vane 14 to adjust the monitoring height according to actual needs, thereby enhancing the adaptability of the equipment; at the same time, the combined structure of the second support rod 112 and the first support rod 111 improves the stability of the overall system, ensuring that good monitoring performance can be maintained under different working environments.

[0043] refer to Figure 1 In the present embodiment, more specifically, a positioning frame 6 is sleeved on the outside of the second support rod 112 and above the connecting plate 4, a positioning hole 61 is penetrated at one end of the positioning frame 6, the adjusting rod 53 penetrates the positioning hole 61, and the positioning frame 6 vertically positions the adjusting rod 53 through the positioning hole 61. The setting of the positioning frame 6 can effectively limit the freedom of the adjusting rod 53 in the vertical direction, ensuring that its movement trajectory is more precise and stable; specifically, the structural design of the positioning hole 61 enables the adjusting rod 53 to be accurately guided when passing through, avoiding position deviation or shaking caused by external factors, thereby improving the reliability of the entire support system.

[0044] refer to Figure 1 In the present embodiment, more specifically, a fixing frame 15 is provided around the concrete base 1, and a rubber pad 151 is provided on the inner wall of the fixing frame 15. The rubber pad 151 is in contact with the concrete base 1 around the edges, and the fixing frame 15 is connected to the ground by bolts, which can effectively enhance the connection stability between the concrete base 1 and the ground. At the same time, the rubber pad 151 is used to reduce vibration transmission, thereby improving the stability and anti-interference ability of the entire monitoring system. In addition, the design of the fixing frame 15 is convenient for disassembly and maintenance, thereby improving the efficiency of on-site installation.

[0045] The implementation principle of a shore wind speed and direction monitoring system in an embodiment of the present application is as follows: in the face of complex and changeable wind conditions on the shore, the design of a mounting frame 21 in conjunction with a stabilizing clip 22 can effectively limit the positional deviation of the support rod group 11, while further enhancing the wind resistance of the entire system with the help of a locking chain 23; this design not only improves the operational reliability of the equipment under adverse weather conditions, but also ensures the accuracy and continuity of the measurement data, thereby providing a more stable guarantee basis for subsequent analysis.

[0046] Example 2, reference Figure 4-Figure 6, the difference between this embodiment and the first embodiment is that: it also includes a protection mechanism 7, the protection mechanism 7 includes an extension frame 71, a swing block 72 and a transparent protection plate 73, the extension frame 71 is respectively arranged at the front and rear sides of the middle part of the support platform 12, the swing block 72 is rotatably arranged on the extension frame 71, and a motor is arranged at the extension frame 71 for driving the swing block 72, and the transparent protection plate 73 is connected to the swing block 72, and the swing block 72 drives the protection plate 73 to realize the protection of the anemometer 13 and the wind vane 14 in a long-term strong wind environment, thereby realizing effective protection of the anemometer 13 and the wind vane 14 in a long-term strong wind environment; specifically, the coordinated use of the extension frame 71, the swing block 72 and the transparent protection plate 73 can flexibly adjust the position of the protection plate 73 to ensure that the damage to the instrument caused by strong wind is reduced without affecting the normal monitoring work; this design not only improves the durability of the system, but also ensures the accuracy and continuity of the monitoring data.

[0047] refer to Figure 4 In the present embodiment, more specifically, a plurality of flow holes 731 are evenly spaced through the protective plate 73 to moderate the airflow acting on the anemometer 13 and the wind vane 14. The plurality of flow holes 731 provided on the protective plate 73 can effectively disperse the airflow pressure, thereby reducing the impact damage to the anemometer 13 and the wind vane 14 caused by the wind in a strong wind environment, and at the same time ensuring that the air flow state around the instrument is relatively stable, thereby improving the accuracy and reliability of the monitoring data.

[0048] refer to Figure 5-Figure 6 In the present embodiment, more specifically, a multi-section linkage piece 74 is rotatably provided at both ends of the extension frame 71, and one end of the multi-section linkage piece 74 is rotatably connected to the side of the protective plate 73 to support the protective plate 73. The cooperation between the multi-section linkage piece 74, the extension frame 71 and the protective plate 73 can form a stable triangular support structure, which can effectively enhance the stability of the protective plate 73 when encountering strong winds or external impacts. At the same time, its rotatable feature allows the protective plate 73 to flexibly adjust the angle or position according to actual needs, so as to better adapt to the protection requirements under different wind directions and wind conditions.

[0049] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.

Claims

1. A shore wind speed and direction monitoring system, characterized in that: include: A concrete seat (1), wherein a support rod group (11) is provided on the concrete seat (1), a support platform (12) is vertically slidably provided on the support rod group (11), and an anemometer (13) and a wind vane (14) are provided on the support rod group (11) corresponding to the support platform (12) for shore monitoring; and The stabilizing mechanism (2) comprises a mounting frame (21) fixed at the lower middle end of the support platform (12), a stabilizing clamping plate (22) and a plurality of locking chains (23); both sides of the bottom of the mounting frame (21) are penetrated by a rotation groove (211); the top end of the stabilizing clamping plate (22) is rotatably arranged in the rotation groove (211); the end of the stabilizing clamping plate (22) is provided with an arc-shaped clamping hole (221) for clamping the rod body of the support rod group (11); one end of the plurality of locking chains (23) is fixed to the concrete seat (1) and the other end is fixedly connected to the mounting frame (21) after position adjustment; when protecting against wind on the shore, the stabilizing clamping plate (22) rotating at the mounting frame (21) clamps the support rod group (11), and the stability of the support rod group (11) at a high position is increased by the plurality of locking chains (23) between the support platform (12) and the concrete seat (1) after position adjustment.

2. A shore wind speed and direction monitoring system according to claim 1, characterized in that: The support rod group (11) comprises a first support rod (111) mounted on the concrete seat (1), a rotating disk (3) being rotatably arranged above one side of the first support rod (111) corresponding to the support platform (12), and a first mounting plate (31) being arranged at one end of the rotating disk (3) for supporting the anemometer (13) so as to change the horizontal direction of the anemometer (13) for measuring velocity.

3. A shore wind speed and direction monitoring system according to claim 2, characterized in that: The support rod group (11) further comprises a second support rod (112) symmetrically arranged with respect to the first support rod (111), a connecting plate (4) being slidably arranged on the second support rod (112), the connecting plate (4) being fixedly connected to the support platform (12), and a second mounting plate (41) being arranged on the connecting plate (4) for carrying the wind vane (14).

4. A shore wind speed and direction monitoring system according to claim 2, characterized in that: A gear plate (121) is rotatably arranged on the support platform (12), the gear plate (121) being sleeved on the first support rod (111), the gear plate (121) being connected to the bottom of the rotating plate (3), a driving motor (122) being arranged on one side of the support platform (12), a driving gear (123) being arranged at the output end of the driving motor (122) and meshing with the gear plate (121) to realize the rotation of the rotating plate (3).

5. A shore wind speed and direction monitoring system according to claim 3, characterized in that: The second support rod (112) is combined with the first support rod (111) via the support platform (12); an adjustment mechanism (5) is arranged on the top of the second support rod (112); the adjustment mechanism (5) comprises an adjustment seat (51) arranged on the second support rod (112), an electric push rod (52) and an adjustment rod (53); the electric push rod (52) is arranged on the adjustment seat (51); the adjustment rod (53) is vertically arranged on the output end of the electric push rod (52); and the bottom end of the adjustment rod (53) is connected to the connection plate (4).

6. A shore wind speed and direction monitoring system according to claim 5, characterized in that: A positioning frame (6) is sleeved on the outside of the second support rod (112) and above the connecting plate (4); a positioning hole (61) is penetrated at one end of the positioning frame (6); the adjusting rod (53) penetrates the positioning hole (61); and the positioning frame (6) positions the adjusting rod (53) in a vertical direction through the positioning hole (61).

7. A shore wind speed and direction monitoring system according to claim 1, characterized in that: The invention also comprises a protection mechanism (7), the protection mechanism (7) comprising an extension frame (71), a swing block (72) and a transparent protection plate (73), the extension frame (71) being arranged at the front and rear sides of the middle part of the support platform (12), the swing block (72) being rotatably arranged on the extension frame (71), the transparent protection plate (73) being connected to the swing block (72), and the swing block (72) driving the protection plate (73) to protect the anemometer (13) and the wind vane (14) in a long-term strong wind environment.

8. A shore wind speed and direction monitoring system according to claim 7, characterized in that: The protective plate (73) is provided with a plurality of flow holes (731) at equal intervals to ease the airflow acting on the anemometer (13) and the wind vane (14).

9. A shore wind speed and direction monitoring system according to claim 7, characterized in that: A plurality of linkage pieces (74) are rotatably provided at both ends of the extension frame (71), and one end of the plurality of linkage pieces (74) is rotatably connected to a side surface of the protective plate (73) to support the protective plate (73).

10. A shore wind speed and direction monitoring system according to claim 1, characterized in that: A fixing frame (15) is arranged around the concrete seat (1), a rubber pad (151) is arranged on the inner wall of the fixing frame (15), the rubber pad (151) is in contact with the concrete seat (1) around the edges, and the fixing frame (15) is connected to the ground via bolts.