首页> 外文会议>OCEANS 2017 - Aberdeen >Physical oceanography work in support of aquaculture and an application of bio-physical modelling to investigate connectivity between farm management areas in Scotland
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Physical oceanography work in support of aquaculture and an application of bio-physical modelling to investigate connectivity between farm management areas in Scotland

机译:海洋物理工作支持水产养殖,并应用生物物理模型来研究苏格兰农场管理区域之间的联系

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We investigate the importance of understanding the underlying physical oceanography of fjordic systems and the coastal region to support aquaculture. Tools, including observations and hydrodynamic modelling, are described and put in context of sustainably managing aquaculture. Output from hydrodynamic models, in this case the Scottish Shelf Model, can then be coupled to bio-physical models. Sea lice are used here as an example of a parasite, being represented as passive particles with only the infective stage captured for connectivity work. Outputs from this application of bio-physical modelling are analysed to evaluate connectivity between Farm Management Areas on the Scottish west coast and islands. The resulting connectivity matrices show distinct clusters of connectivity for neighbouring management areas as well as further reaching connections at lower probability, in line with the prevailing circulation. Bio-physical modelling can be a useful tool to inform policy, management, and industry with regard to disease spread and management practices.
机译:我们调查了解了解峡湾系统和沿海地区的基础物理海洋学以支持水产养殖的重要性。描述了工具,包括观测和水动力模型,并将其与可持续管理水产养殖联系起来。然后可以将流体动力学模型(在这种情况下为苏格兰架子模型)的输出耦合到生物物理模型。海虱在这里用作寄生虫的例子,被表示为被动粒子,仅捕获了感染阶段用于连接工作。分析了此生物物理模型应用程序的输出,以评估苏格兰西海岸的农场管理区与岛屿之间的连通性。最终的连通性矩阵显示了针对相邻管理区域的独特连通性集群,并根据当前流行情况以较低的概率进一步达到了连通性。生物物理模型可以是一种有用的工具,可用于在疾病传播和管理实践方面为政策,管理和行业提供信息。

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