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Modelling growth variability in longline mussel farms as a function of stocking density and farm design

机译:延绳钓贻贝养殖场的生长变化作为种群密度和养殖场设计的函数的模型

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Mussels (Mytilus edulis) are commonly cultivated on artificial structures like rafts, poles or longlines to facilitate farming operations. Farm structures and dense mussel populations may result in water flow reduction and seston depletion and thus reduced individual mussel growth and spatial growth variability inside a farm. One of the challenges in mussel farming is thus to scale and configure farms in order to optimise total mussel production and individual mussel quality under different environmental regimes. Here we present a spatially resolved model for simulation of flow reduction, seston depletion and individual mussel growth inside a longline farm based on information about farm configuration (spacing between longlines, farm length and stocking density) and background environmental conditions (current speed, seston concentration and temperature). The model simulations are forced by environmental data from two fjords in south-western Norway and the farm configurations are defined within operational ranges. The simulations demonstrate spatial growth patterns at longlines under environmental settings and farm configurations where flow reduction and seston depletion have significant impacts on individual mussel growth. Longline spacing has a strong impact on the spatial distribution of individual growth, and the spacing is characterised by a threshold value. Below the threshold growth reduction and spatial growth variability increase rapidly as a consequence of reduced water flow and seston supply rate, but increased filtration due to higher mussel densities also contributes to the growth reduction. The spacing threshold is moderated by other farm configuration factors and environmental conditions. Comparisons with seston depletion reported from other farm sites show that the model simulations are within observed ranges. A demonstration is provided on how the model can guide farm configuration with the aim of optimising total farm biomass and individual mussel quality (shell length, flesh mass, spatial flesh mass variability) under different environmental settings. The model has a potential as a decision support tool in mussel farm management and will be incorporated into a GIS-based toolbox for spatial aquaculture planning and management.
机译:贻贝(Mytilus edulis)通常在木筏,电线杆或延绳钓等人工结构上进行养殖,以方便耕种。养殖场结构和密集的贻贝种群可能会导致水流量减少和精子消耗减少,从而降低养殖场内个体贻贝的生长和空间生长的变异性。因此,贻贝养殖的挑战之一是规模化和配置养殖场,以优化不同环境制度下的贻贝总产量和个体贻贝质量。在此,我们基于空间配置信息(延绳距,空间长度和放养密度之间的间隔)和背景环境条件(当前速度,水体浓度),提供了一个空间解析模型,用于模拟延绳钓养殖场内的流量减少,精子消耗和贻贝个体生长和温度)。该模型模拟是由来自挪威西南部两个峡湾的环境数据推动的,并且在操作范围内定义了农场配置。模拟显示了在环境设置和养殖场配置下延绳钓的空间增长模式,其中流量减少和塞斯顿耗竭对单个贻贝的生长有重大影响。延绳距对个体生长的空间分布有很大影响,并且该间距的特征在于阈值。低于阈值时,由于水流量减少和活塞供应速度降低,生长减少和空间生长变异性迅速增加,但是由于贻贝密度较高而增加的过滤作用也导致生长减少。间隔阈值由其他服务器场配置因素和环境条件调节。与其他农场报告的耗油量进行的比较表明,模型模拟在观察范围内。提供了有关该模型如何指导农场配置的演示,目的是在不同环境设置下优化农场总生物量和贻贝的个体质量(壳长,鱼肉质量,空间鱼肉质量变异性)。该模型有潜力作为贻贝养殖场管理的决策支持工具,并将被并入基于GIS的工具箱中,以进行空间水产养殖计划和管理。

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