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Leice - Model Wind 3D 6000/10K -Low-Level Wind Shear Lidar
Wind3D 6000/10K is a new generation of low-level wind shear Lidar designed for airport safety and wind shear warning, according to the ICAO document 9817.
Windshear is the change in wind speed or direction experienced by an aircraft over a specific distance or length of time, typically caused by rapid changes in wind conditions. This Wind Shear Lidar is a radar device specifically designed to measure this phenomenon, designed for airport security and windshear warnings. By sending a laser beam and taking measurements, it can scan all potentially dangerous areas within the airport airspace in real time, detect wind shear within the scan range, and send automatic alerts to air traffic controllers, allowing pilots to make appropriate flight safety decisions.
- High accuracy: This Wind Shear Lidar can accurately monitor meteorological conditions in a large area. Its accuracy is <3.4m/s, it complies with the IEC0-1-61400:12 standard. At the same time, its detection radius can reach 2017km, widely covering many large cities and bustling areas.
- Multiple scanning modes: This radar supports multiple scanning modes, such as DBS/VAD/PPI/RHI/CAPPI/LOS, etc., which can be selected according to the different needs of users to improve the efficiency of data collection.
- High resolution: Its range resolution is 6m/7m/15m/30m, users can customize the selection according to their needs. This enables users to more accurately detect meteorological trends and improve data accuracy.
- Unattended: This radar does not require manual intervention during operation. Users can obtain the equipment operating status in real time through remote data collection and equipment monitoring, and output real-time wind data and real-time aerosol concentration.

- Continuous Wind Profile Monitoring
- Low Level Wind Shear (or Windshear) Detection and Alert
- Aircraft Wake Vortex Detection and Tracking
- Atmospheric Visibility Monitoring
- Atmospheric Turbulence
- Vertical Gust Velocity and Eddy Dissipation Rate
