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Modeling the magnetic signature of diel vertical migrations of zooplankton

机译:模拟DIEL垂直迁移的磁签名浮游动物

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Diel vertical migration (DVM) of zooplankton can cause velocity fluctuations and a respective increase in the dissipation rate of turbulent kinetic energy dependent on zooplankton concentration (Dean et al. 2016). In this work, we used a 3D non-hydrostatic computational fluid dynamics (CFD) model (ANSYS Fluent) with Lagrangian particle injections (proxy for migrating organisms) to simulate the effect of turbulence generation by DVM. We tested a range of organism concentrations. The simulation at the extreme (10,000 organisms/m3) concentration of zooplankton showed an increase in dissipation rate of turbulent kinetic energy by two to three orders of magnitude during DVM over background turbulence (10-8 W kg-1). At the low (1000 organisms/m3) concentration, almost no turbulence above the background level was produced by DVM in the model. Seawater is an electric conductor; as a result, the motion of seawater in the magnetic field of the Earth induces electrical currents and, consequently, secondary magnetic fluctuations. Therefore, the turbulence produced by DVM can have a measureable magnetic signature. We have applied a magnetohydrodnamics (MHD) module to the CFD model to test this hypothesis. The MHD model results indicate that DVM of the extreme concentration of zooplankton create a magnetic signature on the order of 0.1 nT, which is relatively small but are well within the range of modern magnetometers.
机译:Diel垂直迁移(DVM)的Zooplankton可以导致速度波动和依赖于浮游动物浓度的湍流动能耗散速率的相应增加(Dean等,2016)。在这项工作中,我们使用了3D非静水压计算流体动力学(CFD)模型(ANSYS流畅),利用拉格朗日颗粒注射(用于迁移有机体的代理)来模拟DVM湍流产生的效果。我们测试了一系列有机体浓度。在浮游动物的极端(10,000个生物/ M3)浓度下的模拟显示,在DVM在后台湍流(10-8Wkg-1)中,在DVM中增加了湍流动能的耗散速度增加了两到三个数量级。在低(1000个生物/ M3)浓度下,在模型中的DVM产生了背景水平上方的几乎没有湍流。海水是电导芯;结果,海水在地球磁场中的运动诱导电流,从而产生次级磁波动。因此,DVM产生的湍流可以具有可测量的磁签。我们已经将磁力电动机(MHD)模块应用于CFD模型以测试该假设。 MHD模型结果表明,浮游植物极端浓度的DVM在0.1nt的磁簇中产生0.1nt的磁性签名,这相对较小但在现代磁力计的范围内。

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