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Abstract

<jats:p>Abstract. The dendritic growth zone (DGZ) is associated with distinct polarimetric and multi-frequency radar signatures, yet the governing microphysical processes remain uncertain. We analyse characteristic DGZ observations showing a concurrent increase in dual-wavelength ratio (DWR), enhanced specific differential phase shift (KDP) and the maximum of the spectrally resolved ZDR (sZDRmax​), a pronounced reduction in mean Doppler velocity (MDV), and the occurrence of a secondary Doppler spectral mode near −15 °C. To investigate the governing processes, radar observations are combined with the Lagrangian particle-based Monte Carlo model McSnow, which includes an updated ice habit scheme and a new fragmentation parametrization. Forward radar simulations use a discrete dipole approximation scattering database. The simulations show that enhanced sZDRmax​ requires local formation of dendritic or plate-like crystals near −15 °C; sedimentation of pre-existing particles alone cannot reproduce the signal. The observed KDP enhancement is only reproduced when secondary ice production via collisional fragmentation is included, which also strengthens aggregation-related signatures. The reduction in mean Doppler velocity is explained by a habit change and aggregation of sedimenting columnar ice particles. Together, these signatures provide the most diagnostic constraints on DGZ microphysical processes identified so far. This study demonstrates that multi-frequency polarimetric radar observations combined with Monte Carlo Lagrangian particle simulations can disentangle competing ice microphysical processes in the DGZ. The results identify collisional fragmentation as a key unifying mechanism, with the DGZ radar fingerprint emerging from the interplay of depositional growth, aggregation, and secondary ice production.</jats:p>

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Keywords

radar processes signatures microphysical observations

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