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Impact of parameterized lee wave drag on the energy budget of an eddying global ocean model

机译:参数化背风阻力对涡旋式全球海洋模型能量收支的影响

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The impact of parameterized topographic internal lee wave drag on the input and output terms in the total mechanical energy budget of a hybrid coordinate high-resolution global ocean general circulation model forced by winds and air-sea buoyancy fluxes is examined here. Wave drag, which parameterizes the generation of internal lee waves arising from geostrophic flow impinging upon rough topography, is included in the prognostic model, ensuring that abyssal currents and stratification in the model are affected by the wave drag.An inline mechanical (kinetic plus gravitational potential) energy budget including four dissipative terms (parameterized topographic internal lee wave drag, quadratic bottom boundary layer drag, vertical eddy viscosity, and horizontal eddy viscosity) demonstrates that wave drag dissipates less energy in the model than a diagnostic (offline) estimate would suggest, due to reductions in both the abyssal currents and stratification. The equator experiences the largest reduction in energy dissipation associated with wave drag in inline versus offline estimates. Quadratic bottom drag is the energy sink most affected globally by the presence of wave drag in the model; other energy sinks are substantially affected locally, but not in their global integrals. It is suggested that wave drag cannot be mimicked by artificially increasing the quadratic bottom drag because the energy dissipation rates associated with bottom drag are not spatially correlated with those associated with wave drag where the latter are small. Additionally, in contrast to bottom drag, wave drag is a non-local energy sink.All four aforementioned dissipative terms contribute substantially to the total energy dissipation rate of about one terawatt. The partial time derivative of potential energy (non-zero since the isopycnal depths have a long adjustment time), the surface advective fluxes of potential energy, the rate of change of potential energy due to diffusive mass fluxes, and the conversion between internal energy and potential energy also play a non-negligible role in the total mechanical energy budget. Reasons for the <10% total mechanical energy budget imbalance are discussed.
机译:在这里研究了参数化地形内部回风阻力对混合坐标高分辨率全球海洋总环流模型的总机械能预算中输入和输出项的影响,该模型由风和气-海浮力通量强迫。预兆模型包括波浪阻力,该波浪阻力参数化了因地转流撞击到粗糙地形而产生的内部Lee波的产生,从而确保了模型中的深海流和分层受到波浪阻力的影响。势)的能量预算包括四个耗散项(参数化地形内部Lee波浪阻力,二次底部边界层阻力,垂直涡流粘度和水平涡流粘度)表明,波浪阻力在模型中的能量耗散比诊断(离线)估计所建议的少,这是由于降低了深渊电流并降低了分层。与内联估计和离线估计相比,赤道遇到的与波阻力相关的能量消耗最大减少。二次底部阻力是受模型中波浪阻力的影响最大的能量吸收器。其他能源汇在当地受到实质性影响,但并未受到其整体影响。建议通过人工增加二次底阻力不能模拟波浪阻力,因为与底部阻力相关的能量耗散率在空间上与与波浪阻力相关的能量消耗率在空间上不相关,后者较小。此外,与底部阻力相反,波浪阻力是一种非局部的能量吸收器。前面提到的所有四个耗散项对总能量消耗率的贡献约为1太瓦。势能的部分时间导数(由于等深深度具有较长的调整时间,因此为非零),势能的表面对流通量,由于扩散质量通量引起的势能的变化率以及内能与内能之间的转换势能在总机械能预算中也起着不可忽略的作用。讨论了<10%的总机械能预算不平衡的原因。

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