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首页> 外文期刊>Journal of great lakes research >Modeling the implications of multiple hatching sites for larval dynamics in the resurgent Saginaw Bay walleye population
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Modeling the implications of multiple hatching sites for larval dynamics in the resurgent Saginaw Bay walleye population

机译:建模多个孵化场对新生萨吉诺湾角膜白斑种群幼虫动态的影响

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摘要

The early life environment experienced by most larval fish is largely dependent on a combination of hatch site and water currents. Until larvae are able to swim fast enough to overcome currents, they are largely passively transported and have limited control over ambient environmental conditions, including temperature and prey availability. These factors strongly influence growth and survival of larvae, with direct consequences for subsequent recruitment. Early life survival of Saginaw Bay walleye was formerly limited by alewife predation on larvae; but following the collapse of Lake Huron alewives, the walleye population has rebounded and recruitment success may now be influenced by other factors including spawning habitat. We sought to assess the implications of successful hatching at multiple locations in Saginaw Bay, using a hydrodynamics model, particle transport model, and an individual-based bioenergetics model in series. Model results were compared to locations of young larvae collected in Saginaw Bay during 2009-2010. Results suggest that larval growth is strongly influenced by hatch date, driven by seasonal variation in temperature between sites. Larvae hatched at any location could be transported extensively within inner Saginaw Bay before reaching a sufficient size to swim independently of currents, and retention within the productive inner bay varied among years and sites. Our results indicate multiple larval walleye origins in the field, augmenting the continued production from the Saginaw River system. Successful hatching at more locations would serve to buffer walleye recruitment variation through portfolio effects, supporting arguments for more emphasis on diverse spawning habitat management and restoration.
机译:大多数幼鱼所经历的早期生活环境在很大程度上取决于孵化场和水流的结合。在幼虫能够游得足够快的速度以克服水流之前,它们通常是被动运输的,并且对周围环境条件(包括温度和猎物的可用性)的控制有限。这些因素强烈影响幼虫的生长和存活,并对随后的募集产生直接影响。萨吉诺湾角膜白斑的早期生存期以前是受到幼虫上阿勒威夫捕食的限制;但是,在休伦湖的主妇倒闭之后,角膜白斑数量已经反弹,现在招聘成功可能受到其他因素的影响,包括产卵地。我们试图通过使用流体力学模型,颗粒传输模型和基于个体的生物能学模型来评估在萨吉诺湾多个地点成功孵化的影响。将模型结果与2009-2010年在萨吉诺湾收集的幼虫的位置进行了比较。结果表明,幼虫的生长受到孵化日期的强烈影响,孵化日期受站点之间温度的季节性变化驱动。在任何地方孵化的幼虫都可以在萨吉诺湾内广泛地运输,然后达到足够的大小以独立于海流而游动,并且在生产性内湾中的滞留时间因年份和地点而异。我们的结果表明该田中有多个幼体角膜白斑起源,从而增加了萨吉诺河系统的持续产量。在更多地点成功孵化将通过组合效应来缓解角膜白斑的招募变化,从而支持更多强调产卵栖息地管理和恢复的论点。

著录项

  • 来源
    《Journal of great lakes research 》 |2014年第1期| 113-122| 共10页
  • 作者单位

    Purdue University, Department of Forestry and Natural Resources, 195 Marstellar Street, West Lafayette, IN 47907, USA;

    Purdue University, Department of Forestry and Natural Resources, 195 Marstellar Street, West Lafayette, IN 47907, USA Illinois Natural History Survey, Lake Michigan Biological Station, 400 17th St., Zion, IL 60099, USA;

    Purdue University, Department of Forestry and Natural Resources, 195 Marstellar Street, West Lafayette, IN 47907, USA;

    LimnoTech, 501 Avis Drive, Ann Arbor, MI 48108, USA;

    LimnoTech, 501 Avis Drive, Ann Arbor, MI 48108, USA;

    National Oceanic and Atmospheric Administration, Great Lakes Environmental Research Laboratory, 1431 Beach Street, Muskegon, MI 49441, USA;

    Purdue University, Department of Forestry and Natural Resources, 195 Marstellar Street, West Lafayette, IN 47907, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Portfolio effect; Particle transport model; Bioenergetics; Larva; Saginaw Bay; Walleye;

    机译:投资组合效应;粒子传输模型;生物能学;幼虫;萨吉诺湾角膜白斑;

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