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Implementation of a 3D ocean model to understand upland lake wind-driven circulation

机译:实现3D海洋模型,了解普满湖风力驱动循环

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A community numerical ocean model is used to extend the understanding of wind-driven circulation in small upland lakes. A 3D model of a case study lake (Llyn Conwy, Wales, UK) is calibrated against measured velocity profiles via adjustment of the bottom roughness coefficient. Validation against a separate set of measured velocity profiles confirms the ability of the model to resolve key features of the flow field. Sensitivity analysis shows that the velocity field responds rapidly to changes in the wind forcing. Analysis of the gross circulation using Empirical Orthogonal Functions reveals a persistent two-gyre circulation pattern in the upper half layer of the water column driven by the interaction of wind and bathymetry. At the bottom, the flow is characterised by locally strong currents and analysis of vertical circulation over short time scales shows strong currents in the deepest parts of the lake basin and the responsiveness of the water column to changes in wind speed and direction. Even in small lakes, the assumption of uniform wind stress across the water surface is not always justified and topographic sheltering or other catchment roughness effects give rise to heterogeneity in the wind field. An idealized experiment for the case study lake shows that differences in circulation emerge if the wind stress is allowed to vary across the lake. Energetic wind forcing in upland areas can drive an energetic lake circulation that has important implications for mixing and sediment dynamics. 3D numerical modelling of wind-driven circulation should be more widely used to provide insights into physical limnology to support a wide range of ecological, biogeochemical and palaeoenvironmental studies.
机译:社区数值海洋模型用于扩展小旱地湖泊风力循环的理解。案例研究湖(Llyn Conwy,威尔士,英国)的3D模型通过调节底部粗糙度系数来校准测量的速度剖面。针对单独的测量速度配置文件验证确认模型解决流场的关键特征的能力。敏感性分析表明,速度场迅速响应风强制变化。使用经验正交函数的粗循环分析在通过风和沐浴的相互作用驱动的水柱的上半层中显示出持续的两种循环模式。在底部,该流量的特点是局部强大的电流和短时间垂直循环分析,在短时间内显示了湖泊池最深部分的强电流,以及水柱对风速和方向变化的影响。即使在小湖泊中,水面上均匀风应力的假设并不总是合理的,并且地形避风或其他集水区粗糙度效应引起风场中的异质性。案例研究湖的理想化实验表明,如果允许风压在湖面上变化,则循环的差异出现。高处风力强迫高地地区可以推动一个充满活力的湖流循环,对混合和沉积动力学具有重要意义。 3D风力循环的数值模型应更广泛地用于提供对物理湖学的见解,以支持广泛的生态,生物地球化学和古环境研究。

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