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首页> 外文期刊>Aquacultural Engineering: An International Journal >Typical hydrodynamic models for aquaculture nets: A comparative study under pure current conditions
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Typical hydrodynamic models for aquaculture nets: A comparative study under pure current conditions

机译:水产养殖网的典型流体动力学模型:纯当前条件下的比较研究

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The net is regarded as the most critical component in marine aquaculture facilities as it is the only barrier which protects the environment from fish escapes. Accurate predictions of the net cage deformation and drag force on the nets are needed, both for ensuring fish welfare and for dimensioning of the mooring system. Thus, an appropriate hydrodynamic model is essential. In practice, two types of hydrodynamic force models, i.e., the Morison type and the Screen type, are commonly used to calculate the hydrodynamic forces on nets. Application of the models depends on the underlying structural model and the availability of data. A systematic review of hydrodynamic models is therefore undertaken to compare the models and various parameterisations, in aid of model selection during the design. In this study, eleven commonly used hydrodynamic models, i.e., five Morison models and six Screen models, are reviewed comprehensively, and implemented into a general finite element (FE) solver for dynamic simulations. Sensitivity studies on different current velocities, inflow angles and solidities of the nets are carried out. Moreover, different wake effects are also considered in numerical simulations. The numerical results from different models are compared against existing experimental data under pure current conditions. Suggestions for selection of suitable hydrodynamic models are provided, based on the model comparison.
机译:该网被认为是海洋水产养殖设施中最关键的组成部分,因为它是保护来自鱼类逃离的环境的唯一障碍。需要精确预测网笼变形和网上的拖曳力,用于确保鱼福利和系泊系统的尺寸。因此,适当的流体动力学模型至关重要。实际上,两种类型的流体动力模型,即Morison类型和屏幕类型通常用于计算网上的流体动力学力。模型的应用取决于底层结构模型和数据的可用性。因此,有助于在设计期间选择模型选择来比较模型和各种参数的系统审查。在本研究中,全面审查了11个常用的流体动力学模型,即五种摩尸模型和六种屏幕模型,并实施到了一种用于动态模拟的一般有限元(FE)求解器。对不同电流速度的敏感性研究,进行了网的流入角度和稳定性。此外,在数值模拟中也考虑了不同的唤醒效果。将不同模型的数值结果与纯电流条件下的现有实验数据进行比较。基于模型比较,提供了选择合适的流体动力学模型的建议。

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