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Dissipation Rate of Turbulent Kinetic Energy in Diel Vertical Migrations: Comparison of ANSYS Fluent Model to Measurements

机译:Diel垂直迁移中湍动能的耗散率:ANSYS Fluent模型与测量值的比较

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摘要

Recent studies suggest that diel vertical migrations of zooplankton may have an impact on ocean mixing, though details are not completely clear. A strong sound scattering layer of zooplankton undergoing diel vertical migrations was observed in Saanich Inlet, British Colombia, Canada by Kunze et al. (2006). In this study, a shipboard 200- kHz echosounder was used to track vertical motion of the sound scattering layer, and microstructure profiles were collected to observe turbulence. An increase of dissipation rate of turbulent kinetic energy by four to five orders of magnitude was measured during diel vertical migrations of zooplankton in one case (but not observed during other cases). A strong sound scattering layer undergoing diel vertical migration was also observed in the Straits of Florida via a bottom mounted acoustic Doppler current profiler at 244 m isobath. A 3-D non-hydrostatic computational fluid dynamics model with Lagrangian particle injections (a proxy for migrating zooplankton) via a discrete phase model was used to simulate the effect of diel vertical migrations on the turbulence for both Saanich Inlet and the Straits of Florida. The model was initialized with idealized (but based on observation) density and velocity profiles. Particles, with buoyancy adjusted to serve as a proxy for vertically swimming zooplankton, were injected to simulate diel vertical migration cycles. Results of models run with extreme concentrations of particles showed an increase in dissipation rate of turbulent kinetic energy of approximately five orders of magnitude over background turbulence during migration of particles in both Saanich Inlet and the Straits of Florida cases (though direct relation of the turbulence produced by buoyant particles and swimming organisms isn’t straightforward). This increase was quantitatively consistent, with turbulence measurements by Kunze et al. (2006). When 10 times fewer particles were injected into the model, the effect on dissipation rate of turbulent kinetic energy was an order of magnitude smaller than that from the extreme concentration. At a concentration of particles 100 times smaller than the extreme concentration, there was no longer an observable effect. In the Straits of Florida, direct turbulence measurements were not available to make a quantitative comparison. However, a small, but statistically significant decrease in northward current velocity profiles during migration times were observed after averaging these profiles over 11 months. A small decrease of current velocity connected to the vertical migrations of particles was reproduced in the Straits of Florida model case. The deviations in the velocity profiles can be explained by the increase in turbulent mixing during vertical migration periods.
机译:最近的研究表明,浮游动物的垂直垂直迁移可能会影响海洋混合,尽管细节尚不完全清楚。 Kunze等人在加拿大不列颠哥伦比亚省的萨尼奇(Saanich Inlet)观察到了浮游动物的强声散射层,该浮游动物经历了diel垂直迁移。 (2006)。在这项研究中,使用舰载200 kHz回声测深仪跟踪声散射层的垂直运动,并收集了微结构轮廓以观察湍流。在一种情况下,浮游动物在diel垂直迁移过程中,湍动能耗散率提高了4到5个数量级(但在其他情况下未观察到)。通过在等深线244 m处底部安装的声学多普勒电流剖面仪,在佛罗里达海峡中还观察到了强声散射层经历了diel垂直迁移。通过离散相模型使用带有拉格朗日粒子注入的3D非静力学计算流体动力学模型(用于浮游动物的迁移的代理),以模拟diel垂直迁移对萨尼奇湾和佛罗里达海峡湍流的影响。用理想化(但基于观察)的密度和速度剖面初始化模型。调整浮力以充当垂直游动浮游动物的替代物的粒子被注入以模拟diel垂直迁移周期。在Saanich入口和佛罗里达海峡的案例中,在极高浓度的颗粒运行的模型结果表明,在颗粒迁移期间,湍动能的耗散率比背景湍流增加了大约五个数量级(尽管产生的湍流直接相关)浮力颗粒和游泳生物并不是一件容易的事。通过Kunze等人的湍流测量,这种增加在数量上是一致的。 (2006)。当将较少的粒子注入模型时,对湍动能耗散率的影响要比极限浓度时小一个数量级。在比极限浓度小100倍的颗粒浓度下,不再有可观察到的效果。在佛罗里达海峡,无法直接进行湍流测量以进行定量比较。但是,在平均11个月后,在迁移时间内,北向流速分布有小幅但有统计学意义的下降。在佛罗里达海峡模型案例中,再现了与粒子垂直迁移有关的电流速度的小幅下降。速度分布的偏差可以用垂直迁移期间湍流混合的增加来解释。

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