Beam model of Doppler backscattering
arXiv:2109.10973 · doi:10.1088/1361-6587/ac57a1
Abstract
We use beam tracing -- implemented with a newly-written code, Scotty -- and the reciprocity theorem to derive a model for the linear backscattered power of the Doppler Backscattering (DBS) diagnostic. Our model works for both the O-mode and X-mode in tokamak geometry (and certain regimes of stellarators). We present the analytical derivation of our model and its implications on the DBS signal localisation and the wavenumber resolution. To determine these two quantities, we find that it is the curvature of the field lines and the magnetic shear that are important, rather than the curvature of the cut-off surface. We also provide an explicit formula for the hitherto poorly-understood quantitative effect of the mismatch angle. Consequently, one can use this model to correct for the attenuation due to mismatch, avoiding the need for empirical optimisation. This is especially important in spherical tokamaks, since the magnetic pitch angle is large and varies both spatially and temporally.
This is the version that passed peer review. No major changes, but many improvements to writing style
References in corpus (5)
- Gyrokinetic turbulence: a nonlinear route to dissipation through phase space
- Spatial and Wavenumber Resolution of Doppler Reflectometry
- Dependence of intrinsic rotation reversals on collisionality in MAST
- Interpreting Radial Correlation Doppler Reflectometry using Gyrokinetic Simulations
- Prospects for a dominantly microwave-diagnosed magnetically confined fusion reactor