A floating offshore laser wind lidar device

CN224788944UActive Publication Date: 2026-09-22BEIJING XUNLEI LASER TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522141916.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-10
Publication Date
2026-09-22
Estimated Expiration
2035-10-10

AI Technical Summary

Technical Problem

[0003]目前市面上的浮体式海上激光测风雷达装置,在海面上进行测风时,由于海面上的风浪较大,现有的海上激光测风雷达装置整体的强度不高,导致风浪较大时整体稳定性也不足,且容易受到海面漂浮物的碰撞,造成损伤,不利于推广和使用

Benefits of technology

[0013]通过在上支撑底座的顶部中心处安装有激光测风雷达装置,用于对海上的风速进行测量,同时能够对激光测风雷达本体起到防护的效果,且侧支撑架上安装的信号发射器用于对测量后的数据进行远程传输故障,设置的下支撑连接组件用于对上支撑底座的支撑工作,且能够提高其支撑的稳定性,下浮台组件配合防撞缓冲组件,能够提高整体的支撑稳定性,并且有效的防护海面漂浮物对装置的碰撞,本实用新型结构简单,使用方便能够提高激光测风雷达装置的支撑强度,提高抗风力性,且能够有效的防护海面漂浮物与装置碰撞造成的损伤,提高使用寿命。

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Abstract

The utility model provides a kind of offshore laser wind measurement radar device of floating body, including upper support base, the top center of upper support base is equipped with laser wind measurement radar device, and the side of laser wind measurement radar device on upper support base is equipped with side support frame, signal transmitter is installed on side support frame, the bottom of upper support base is connected with lower support connecting component, and the bottom of lower support connecting component is equipped with lower floating platform component, and the outside of lower floating platform component is provided with anti-collision buffer component.The utility model has the beneficial effects as follows, the utility model simple structure, convenient to use can improve the support strength of laser wind measurement radar device, improve wind resistance, and effectively prevent the damage caused by sea surface floating object and device collision, improve service life.
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Description

Technical Field

[0001] This utility model is a floating marine laser wind measurement radar device, belonging to the field of wind measurement radar technology. Background Technology

[0002] Marine laser wind radar monitors wind speed, direction, and other parameters in real time by emitting laser beams and analyzing the Doppler frequency shift phenomenon. It adopts the Doppler effect principle and obtains radial wind speed and direction data in real time by analyzing the frequency shift of light scattered by aerosol particles. It features high precision and low blind zone and is widely used in marine engineering construction, wind power operation and maintenance, and meteorological observation.

[0003] Currently available floating marine laser wind measurement radar devices suffer from low overall strength and instability when used for wind measurement due to large waves. They are also susceptible to damage from collisions with floating objects, hindering their widespread adoption and use. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a floating marine laser wind measurement radar device.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution:

[0006] A floating marine laser wind measurement radar device includes an upper support base, a laser wind measurement radar device installed at the top center of the upper support base, a side support frame installed on one side of the laser wind measurement radar device on the upper support base, a signal transmitter installed on the side support frame, a lower support connecting assembly connected to the bottom of the upper support base, a lower floating platform assembly installed at the bottom of the lower support connecting assembly, and an anti-collision buffer assembly provided on the outer side of the lower floating platform assembly.

[0007] Furthermore, the laser wind radar device includes a triangular support plate fixed at the top center of the upper support base. The triangular support plate is connected to the upper support base by a mounting bolt. An outer support protective frame is fixed on the triangular support plate. A connecting block is fixed at the top center of the outer support protective frame. The laser wind radar body is installed inside the outer support protective frame. A column is fixed at the top of the connecting block, and a wind vane is installed at the top of the column.

[0008] Furthermore, the lower support connection assembly includes a triangular base fixed on the upper support base, an outer support sleeve fixed at the center of the triangular base, an inner support column movably fitted inside the outer support sleeve, a locking knob matching the inner support column outside the outer support sleeve, and a support platform fixedly connected to the upper support base at the top of the inner support column.

[0009] Furthermore, a support collar is fixedly connected to the outer wall of the outer support sleeve, and three sets of support diagonal rods are connected between the support collar and the triangular base, and three sets of mounting holes are opened on the triangular base.

[0010] Furthermore, the lower floating platform assembly includes a floating platform, and four sets of assembly holes are evenly provided on the outer side of the floating platform. A lower protective base plate is integrally connected to the bottom of the floating platform. A counterweight seat is provided below the lower protective base plate, and three sets of inclined steel cables are connected between the counterweight seat and the lower protective base plate.

[0011] Furthermore, the anti-collision buffer assembly includes an outer elastic rubber ring located outside the floating platform, and the outer elastic rubber ring is provided with an anti-corrosion coating. An abutment block is fixed on the inner side wall of the outer elastic rubber ring, and a rubber column extending into the assembly hole is fixed on the abutment block. A spring is provided on the outer sleeve of the rubber column.

[0012] The beneficial effects of this utility model are:

[0013] A laser wind-measuring radar device is installed at the top center of the upper support base to measure wind speed at sea and protect the radar itself. A signal transmitter installed on the side support frame transmits the measured data remotely. A lower support connecting assembly supports the upper support base and improves its stability. The lower floating platform assembly, in conjunction with the anti-collision buffer assembly, enhances overall support stability and effectively protects the device from collisions with floating objects. This invention features a simple structure, ease of use, and improved support strength and wind resistance of the laser wind-measuring radar device. It also effectively protects against damage caused by collisions with floating objects, extending its service life. Attached Figure Description

[0014] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0015] Figure 1 This is a schematic diagram of the structure of a floating marine laser wind measurement radar device according to the present invention;

[0016] Figure 2 This is a schematic diagram of the structure of the laser wind measuring radar device in the floating marine laser wind measuring radar device of this utility model;

[0017] Figure 3 This is a schematic diagram of the lower support connection component in a floating marine laser wind measuring radar device according to the present invention.

[0018] Figure 4 This is a schematic diagram of the lower floating platform component in a floating marine laser wind measurement radar device according to the present invention.

[0019] Figure 5 This is a schematic diagram of the anti-collision buffer component in a floating marine laser wind measurement radar device according to this utility model.

[0020] In the diagram, 1. Upper support base; 2. Laser wind radar device; 3. Side support frame; 4. Signal transmitter; 5. Lower support connecting assembly; 6. Lower floating platform assembly; 7. Anti-collision buffer assembly; 8. Triangular support plate; 9. Mounting bolt; 10. Outer support protective frame; 11. Connecting block; 12. Laser wind radar body; 13. Column; 14. Wind vane; 15. Triangular base; 16. Outer support sleeve; 17. Inner support column; 18. Locking knob; 19. Support platform; 20. Support collar; 21. Support diagonal rod; 22. Mounting hole; 23. Floating platform; 24. Lower protective base plate; 25. Counterweight seat; 26. Diagonal steel cable; 27. Outer elastic rubber ring; 28. Anti-corrosion coating; 29. ​​Abutment block; 30. Spring; 31. Rubber column. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0022] Please see Figure 1-5 This utility model provides a technical solution for a floating marine laser wind measurement radar device, including an upper support base 1. A laser wind measurement radar device 2 is installed at the top center of the upper support base 1. The laser wind measurement radar device 2 is installed at the top center of the upper support base 1 to measure the wind speed at sea and to protect the laser wind measurement radar body 12. A side support frame 3 is installed on one side of the laser wind measurement radar device 2 on the upper support base 1. A signal transmitter 4 is installed on the side support frame 3. The signal transmitter 4 is used to remotely transmit the measured data. A lower support connecting assembly 5 is connected to the bottom of the upper support base 1. A lower floating platform assembly 6 is installed at the bottom of the lower support connecting assembly 5. An anti-collision buffer assembly 7 is provided on the outside of the lower floating platform assembly 6. The lower support connecting assembly 5 is used to support the upper support base 1 and can improve its support stability. The lower floating platform assembly 6, together with the anti-collision buffer assembly 7, can improve the overall support stability and effectively protect the device from collisions with floating objects on the sea surface.

[0023] See Figure 2 The laser wind-measuring radar device 2 includes a triangular support plate 8 fixed at the top center of the upper support base 1. The triangular support plate 8 is connected to the upper support base 1 by a mounting bolt 9. An outer support protective frame 10 is fixed on the triangular support plate 8. A connecting block 11 is fixed at the top center of the outer support protective frame 10. The laser wind-measuring radar body 12 is installed inside the outer support protective frame 10. A column 13 is fixed to the top of the connecting block 11, and a wind vane 14 is installed at the top of the column 13. The outer support protective frame 10 provides protection for the laser wind-measuring radar body 12. The wind vane 14 monitors the wind direction, and the laser wind-measuring radar body 12 transmits the detected data remotely through a signal transmitter 4.

[0024] See Figure 3 The lower support connection assembly 5 includes a triangular base 15 fixed to the upper support base 1. An outer support sleeve 16 is fixed at the center of the triangular base 15. An inner support column 17 is movably fitted inside the outer support sleeve 16. A locking knob 18 matching the inner support column 17 is provided outside the outer support sleeve 16. A support platform 19 fixedly connected to the upper support base 1 is fixed to the top of the inner support column 17. A support collar 20 is fixedly connected to the outer wall of the outer support sleeve 16. Three sets of support diagonal rods 21 are connected between the support collar 20 and the triangular base 15. Three sets of mounting holes 22 are provided on the triangular base 15. The connection and fastening of the inner support column 17 are achieved through the outer support sleeve 16 and the locking knob 18. The support collar 20 and the support diagonal rods 21 provide triangular support and improve the stability of the support.

[0025] See Figure 4-5 The lower floating platform assembly 6 includes a floating platform 23, with four sets of assembly holes evenly distributed on its outer side. A lower protective base plate 24 is integrally connected to the bottom of the floating platform 23. A counterweight 25 is located below the lower protective base plate 24, and three sets of inclined steel cables 26 connect the counterweight 25 and the lower protective base plate 24. The anti-collision buffer assembly 7 includes an outer elastic rubber ring 27 located on the outer side of the floating platform 23, with an anti-corrosion coating 28 on its outer surface. An abutment block 29 is fixed on the inner side wall of the outer elastic rubber ring 27, and a rubber column 31 extending into the assembly hole is fixed on the abutment block 29. A spring 30 is fitted around the rubber column 31. By engaging the rubber column 31 with the assembly hole, the outer elastic rubber ring 27 and the floating platform 23 are assembled. Through the action of the spring 30 and the outer elastic rubber ring 27, the force generated by the collision can be effectively offset, providing a protective effect. The counterweight 25, together with the inclined steel cables 26, improves the overall stability.

[0026] In use, a laser wind-measuring radar device 2 is installed at the top center of the upper support base 1 to measure wind speed at sea and protect the laser wind-measuring radar body 12. A signal transmitter 4 installed on the side support frame 3 is used to remotely transmit the measured data. The lower support connecting component 5 supports the upper support base 1 and improves its stability. The lower floating platform component 6, together with the anti-collision buffer component 7, improves the overall support stability and effectively protects the device from collisions with floating objects on the sea surface. This utility model has a simple structure, is easy to use, improves the support strength of the laser wind-measuring radar device 2, enhances its wind resistance, effectively protects against damage caused by collisions between floating objects on the sea surface and the device, and extends its service life.

[0027] Although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A floating marine laser wind-measuring radar device, characterized in that, It includes an upper support base (1), a laser wind measuring radar device (2) is installed at the top center of the upper support base (1), a side support frame (3) is installed on the upper support base (1) on one side of the laser wind measuring radar device (2), a signal transmitter (4) is installed on the side support frame (3), a lower support connecting assembly (5) is connected to the bottom of the upper support base (1), a lower floating platform assembly (6) is installed at the bottom of the lower support connecting assembly (5), and an anti-collision buffer assembly (7) is provided on the outside of the lower floating platform assembly (6).

2. The floating marine laser wind-measuring radar device according to claim 1, characterized in that, The laser wind radar device (2) includes a triangular support plate (8) fixed at the top center of the upper support base (1). The triangular support plate (8) is connected to the upper support base (1) by a mounting bolt (9). An outer support protective frame (10) is fixed on the triangular support plate (8). A connecting block (11) is fixed at the top center of the outer support protective frame (10). The laser wind radar body (12) is installed inside the outer support protective frame (10). A column (13) is fixed at the top of the connecting block (11), and a wind vane (14) is installed at the top of the column (13).

3. The floating marine laser wind-measuring radar device according to claim 2, characterized in that, The lower support connection assembly (5) includes a triangular base (15) fixed on the upper support base (1). An outer support sleeve (16) is fixed at the center of the triangular base (15). An inner support column (17) is movably fitted inside the outer support sleeve (16). A locking knob (18) matching the inner support column (17) is provided outside the outer support sleeve (16). A support platform (19) fixedly connected to the upper support base (1) is fixed at the top of the inner support column (17).

4. A floating marine laser wind-measuring radar device according to claim 3, characterized in that, The outer wall of the outer support sleeve (16) is fixedly connected with a support collar (20), and three sets of support diagonal rods (21) are connected between the support collar (20) and the triangular base (15), and three sets of mounting holes (22) are opened on the triangular base (15).

5. A floating marine laser wind-measuring radar device according to claim 4, characterized in that, The lower floating platform assembly (6) includes a floating platform (23), and four sets of assembly holes are evenly provided on the outer side of the floating platform (23). The bottom of the floating platform (23) is integrally connected to a lower protective base plate (24). A counterweight seat (25) is provided below the lower protective base plate (24), and three sets of inclined steel cables (26) are connected between the counterweight seat (25) and the lower protective base plate (24).

6. A floating marine laser wind-measuring radar device according to claim 5, characterized in that, The anti-collision buffer assembly (7) includes an outer elastic rubber ring (27) located outside the floating platform (23), and the outer elastic rubber ring (27) is provided with an anti-corrosion coating (28). An abutment block (29) is fixed on the inner side wall of the outer elastic rubber ring (27), and a rubber column (31) extending into the assembly hole is fixed on the abutment block (29), and a spring (30) is provided on the outer sleeve of the rubber column (31).