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首页> 外文期刊>Ecological Modelling >Coupling 3-D Eulerian bio-physics (ROMS) with individual-based shellfish ecophysiology (SHELL-E): A hybrid model for carrying capacity and environmental impacts of bivalve aquaculture
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Coupling 3-D Eulerian bio-physics (ROMS) with individual-based shellfish ecophysiology (SHELL-E): A hybrid model for carrying capacity and environmental impacts of bivalve aquaculture

机译:将3-D欧拉生物物理学(ROMS)与基于个体的贝类生态生理学(SHELL-E)耦合:双壳类水产养殖的承载能力和环境影响的混合模型

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As bivalve aquaculture continues to grow, it is imperative to understand the spatially-explicit interactions between farmed bivalves and the environment. However, the ability of models to represent a large number of bivalve ecophysiology and environmental variables—in 3-D spatially-explicit domains—has been limited by computational constraints. To overcome some of these computational limitations, we developed an optimized hybrid model by two-way coupling a state-of-the-art Eulerian model (Regional Ocean Modeling System; ROMS) that simulates physical, planktonic and sediment dynamics, with an individual-based model (IBM) that simulates shellfish ecophysiology (SHELL-E). The IBM model efficiently represents sparsely-distributed variables that do not occur in every grid cell of the domain, and simplifies the representation of complex life-history and physiological processes, like spawning events. We applied the hybrid model to a mussel farm in Ship Harbour (Eastern Canada) and compared model results against measurements of physical variables, water samples (chlorophyll, nutrients, oxygen and suspended sediments) and mussel size distributions. The hybrid model reproduced the main dynamics of the physical, planktonic and sediment Eulerian variables, as well as the bivalve ecophysiology IBM variables. Prognostic limitations estimated by the model suggested that mussels were temperature-stressed during parts of the summer, and food-limited during parts of the winter. We also used the hybrid model to estimate the production carrying capacity of the farm and we found that the farm is not overstocked. However, we also found that the estimation of carrying capacity strongly depends on the inferred natural mortality, which is difficult to estimate accurately. This work aims to transfer sound and open-source oceanographic tools (i.e. ROMS) into the applied fields of aquaculture research and management.
机译:随着双壳类水产养殖的持续增长,必须了解养殖双壳类与环境之间的空间明晰的相互作用。但是,模型在3D空间显式域中表示大量双壳类生物生理和环境变量的能力受到计算约束的限制。为了克服其中的一些计算限制,我们通过双向耦合最先进的欧拉模型(区域海洋建模系统; ROMS)来开发一种优化的混合模型,该模型可以模拟物理,浮游和沉积物动力学,并具有基于模型(IBM)的模拟贝类生态生理(SHELL-E)。 IBM模型有效地表示了不在该域的每个网格单元中出现的稀疏分布的变量,并且简化了复杂的生命历史和生理过程(如产卵事件)的表示。我们将混合模型应用于船舶港(加拿大东部)的贻贝养殖场,并将模型结果与物理变量,水样(叶绿素,养分,氧气和悬浮沉积物)和贻贝尺寸分布的测量结果进行了比较。混合模型再现了物理,浮游和沉积欧拉变量以及双壳类生物生理IBM变量的主要动态。该模型估计的预后局限性表明,贻贝在夏季的某些部分受到温度胁迫,而在冬季的某些部分受到食物限制。我们还使用混合模型来估计农场的生产承载力,我们发现农场没有积压。但是,我们还发现,对承载力的估算在很大程度上取决于推测的自然死亡率,这很难准确估算。这项工作旨在将健全的开源海洋学工具(即ROMS)转移到水产养殖研究和管理的应用领域。

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