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首页> 外文期刊>Aquaculture Environment Interactions >A model for the growth of mariculture kelp Saccharina japonica in Sanggou Bay, China
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A model for the growth of mariculture kelp Saccharina japonica in Sanggou Bay, China

机译:中国桑沟湾海带海藻糖藻生长模型

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ABSTRACT: The kelp Saccharina japonica is one of the most important mariculture species in China. To predict kelp growth and provide a component for a general multitrophic ecosystem model, a dynamic individual growth model was developed to evaluate environmental effects on kelp growth. This model was calibrated and validated using data from 2 annual mariculture cycles (2008-2009, 2011-2012) from Sanggou Bay, China. Gross growth of S. japonica was described as functions of temperature, light and nutrient contents in plant tissues (internal nutrients), and nitrogen (N) and phosphorus (P) in seawater. Net growth was defined as gross growth minus respiration. The simulation results showed that nutrients were the key limiting factor for growth throughout the kelp growth cycle, whereas both temperature and light only limited kelp growth during simulation days 60-120, i.e. from 1 January to the end of February. Scenario simulations showed that fertilizing with nitrogen could improve kelp growth by as much as 4.4 times. The model also predicted that individual dry weight of S. japonica would increase by 18% when lifting the culture ropes up to the surface. Sensitivity analysis indicates that the empirical coefficient of respiration (r), maximum growth rate (μmax) and minimum internal quota for nitrogen (Nimin) were among the most sensitive parameters. This model shows that the introduction of culture methods such as cage culture, which allows more effective fertilization and depth control, would result in more effective kelp farming.
机译:摘要:海带 Saccharina japonica 是中国最重要的海水养殖种类之一。为了预测海带的生长并为一般的多营养生态系统模型提供一个组成部分,开发了动态个体生长模型来评估环境对海带生长的影响。该模型已使用来自中国桑沟湾的2个年度海水养殖周期(2008-2009年,2011-2012年)的数据进行了校准和验证。 S的毛增长。粳稻被描述为温度,光和植物组织中的养分含量(内部养分)以及海水中氮(N)和磷(P)的函数。净增长定义为总增长减去呼吸。模拟结果表明,养分是整个海带生长周期中生长的关键限制因素,而温度和光照在模拟60-120天(即1月1日至2月底)期间仅限制了海带的生长。场景模拟显示,氮肥可将海带生长提高多达4.4倍。该模型还预测出个体的干重为。将培养绳提升到地面时,粳稻会增加18%。敏感性分析表明,经验呼吸系数( r ),最大增长率(μ max )和最小内部氮配额( N < sub> imin )是最敏感的参数之一。该模型表明,引入网箱养殖等养殖方法可以使施肥和深度控制更为有效,从而使海带养殖更加有效。

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