Experimental validation of the differential image motion lidar concept
Optics Letters
|December 8, 2007
Summary
We validated a differential image motion (DIM) lidar for measuring atmospheric turbulence. This new lidar accurately measures the refractive-index structure characteristic C(n)(2) under various conditions.
Area of Science:
- Atmospheric physics
- Optical remote sensing
- Turbulence measurement
Background:
- Measuring atmospheric turbulence, specifically the refractive-index structure characteristic C(n)(2), is crucial for understanding atmospheric phenomena.
- Conventional methods for C(n)(2) measurement can be complex or limited in scope.
Purpose of the Study:
- To experimentally validate the concept of a differential image motion (DIM) lidar system.
- To assess the accuracy of DIM lidar for measuring vertical profiles of C(n)(2).
Main Methods:
- A hard-target analog of the DIM lidar was constructed.
- The DIM lidar was tested against a conventional scintillometer.
- Measurements were conducted over a 300-m horizontal path under diverse turbulent conditions.
Main Results:
- Experimental results confirmed the validity of the DIM lidar concept.
- The DIM lidar accurately measured C(n)(2) profiles.
- Performance was consistent across a range of turbulent atmospheric conditions.
Conclusions:
- The differential image motion lidar is a viable and accurate method for measuring atmospheric refractive-index structure characteristic C(n)(2).
- This technique offers a promising approach for profiling atmospheric turbulence.


