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Adjusting the Wind Stress Drag Coefficient in Storm Surge Forecasting Using an Adjoint Technique

机译:adjusting the Wind stress Drag Coefficient in storm surge Forecasting Using an adjoint Technique

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摘要

A three-dimensional ocean model and its adjoint model are used to adjust the drag coefficient in the calculation of wind stress for storm surge forecasting. A number of identical twin experiments (ITEs) with different error sources imposed are designed and performed. The results indicate that when the errors come from the wind speed, the drag coefficient is adjusted to an "optimal value" to compensate for the wind errors, resulting in significant improvements of the specific storm surge forecasting. In practice, the "true" drag coefficient is unknown and the wind field, which is usually calculated by an empirical parameter model or a numerical weather prediction model, may contain large errors. In addition, forecasting errors may also come from imperfect model physics and numerics, such as insufficient resolution and inaccurate physical parameterizations. The results demonstrate that storm surge forecasting errors can be reduced through data assimilation by adjusting the drag coefficient regardless of the error sources. Therefore, although data assimilation may not fix model imperfection, it is effective in improving storm surge forecasting by adjusting the wind stress drag coefficient using the adjoint technique.
机译:在风暴潮预报的风应力计算中,使用三维海洋模型及其伴随模型来调整阻力系数。设计并执行了许多具有不同错误源的相同的双生实验(ITE)。结果表明,当误差来自风速时,将阻力系数调整为“最佳值”以补偿风力误差,从而显着改善了特定风暴潮的预报。实际上,“真实”阻力系数是未知的,通常由经验参数模型或数值天气预报模型计算的风场可能包含较大的误差。此外,预测误差也可能来自不完善的模型物理和数值,例如分辨率不足和物理参数设置不正确。结果表明,无论误差源如何,都可以通过调整阻力系数,通过数据同化来减少风暴潮的预报误差。因此,尽管数据同化可能无法解决模型缺陷,但是通过使用伴随技术调整风应力阻力系数,可以有效地改善风暴潮预报。

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