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Turbulent and Transitional Modeling of Drag on Oceanographic Measurement Devices

机译:海洋测量装置拖曳的湍流和过渡建模

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摘要

Computational fluid dynamic techniques have been applied to the determination of drag on oceanographic devices (expendable bathythermographs). Such devices, which are used to monitor changes in ocean heat content, provide information that is dependent on their drag coefficient. Inaccuracies in drag calculations can impact the estimation of ocean heating associated with global warming. Traditionally, ocean-heating information was based on experimental correlations which related the depth of the device to the fall time. The relation of time-depth is provided by a fall-rate equation (FRE). It is known that FRE depths are reasonably accurate for ocean environments that match the experiments from which the correlations were developed. For other situations, use of the FRE may lead to depth errors that preclude XBTs as accurate oceanographic devices. Here, a CFD approach has been taken which provides drag coefficients that are used to predict depths independent of an FRE.
机译:已经应用了计算流体动力学技术对海洋地区设备的拖动(消耗性浴室)的测定。这种装置用于监测海洋热含量的变化,提供取决于其拖动系数的信息。阻力计算中的不准确可能会影响与全球变暖相关的海洋加热的估计。传统上,海洋加热信息基于与设备深度与下降时间相关的实验相关性。时间深度的关系由瀑率方程(FRE)提供。众所周知,FRE深度适当地对海洋环境合理准确,与开发相关相关的实验。对于其他情况,FRE的使用可能导致深度误差排除XBTS作为精确的海洋图形设备。这里,已经采取了CFD方法,该方法提供了用于预测独立于FRE的深度的拖动系数。

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