Hurricane air-sea drag saturation and sea-state dependence revealed by surface drones.

Foltz, Gregory R; Zhang, Dongxiao; Looney, Lev B; Chiodi, Andrew M; Zhang, Jun A; Zhang, Chidong; Mazza, Edoardo; Chi, Nan-Hsun et al. · Sci Adv · 2026

basic_science · Level V

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Abstract

The ocean supplies energy for tropical cyclones (TCs) and slows their winds through surface friction, which exerts a force on the ocean termed wind stress. The drag coefficient (<i>C</i><sub>d</sub>) is the key parameter that converts wind speed to wind stress and is currently estimated in forecast models from incomplete data collected in low-to-moderate ocean winds. Here, we use measurements from 11 Atlantic hurricanes to quantify <i>C</i><sub>d</sub> in winds up to 44 meters per second and surface waves up to 14 meters. It is found that <i>C</i><sub>d</sub> levels off, as wind speed surpasses 30 meters per second but does not decrease appreciably as suggested by previous indirect methods. Interaction of the wind and wave fields causes <i>C</i><sub>d</sub> to be 20 ± 2% higher on the motion-left side of a storm, where wind and waves are misaligned, than on the right. These results quantify directly a fundamental TC air-sea interaction parameter and demonstrate the importance of distinct TC quadrant-specific wind-wave interactions.