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Flow-vector kinesis in the daily movements of an anadromous fish: Green sturgeon (Acipenser medirostris) in the San Francisco Bay Estuary, California.

机译:一条异常鱼类日常运动中的流矢量运动学:加利福尼亚州旧金山湾河口的绿Green鱼(Acipenser medirostris)。

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摘要

At all scales, from small ponds to oceanic gyres, fish must contend with the fact that the medium in which they move is itself in motion. Water currents can both impede and assist travel, either requiring compensatory orientation and movement or facilitating transport. The ability to detect, orient, and react to currents is particularly important for diadromous species that routinely pass through multiple complex environments as they inhabit oceans, estuaries, and rivers. It is expected that fish will have evolved behaviors to maximize the efficiency of movement, permitting available energy to be allocated instead to growth and reproduction. Here, I analyze the movements of anadromous green sturgeon (Acipenser medirostris), manually tracked during their seasonal residence in the tidally-complex San Francisco Bay Estuary, California. In Chapter One, I describe the general movement patterns of the species in relation to parameters such as depth, temperature, salinity, dissolved oxygen, and time of day. Movements were categorized as either non-directional, erratic movement near the bottom consistent with resting or foraging activity, or directional, extended periods of linear travel conducted in close proximity to either the surface or the substrate. The fish typically utilized the shallower regions of the bay, only passing through the deep channel areas during directional surface movement. Movement was independent of the other measured parameters. In Chapter Two, I further analyze the directional movements of the fish in relation to current and position in the water column. I show that green sturgeon respond to different current conditions with flow-vector kinesis, moving into the current near the bottom in shallow, slow-flowing regions of the bay, but orienting with the flow at the surface in the deep, swift-flowing channels. In Chapter Three, I calculate the metabolic cost of transport for fish exhibiting positive and negative flow-vector kinesis and demonstrate that the fish are maximizing the efficiency of their daily movements by utilizing local currents. While previous research has considered the role of positive flow-vector kinesis in fishes migrating in tidal currents, this study is the first consider these behaviors in a broader context and describe their role in non-migratory, daily behavior.
机译:从小池塘到海洋环流,在所有规模上,鱼类都必须与这样一个事实进行斗争,即它们所移动的介质本身是在运动的。水流既可以阻碍又有助于行进,要么需要补偿定向和移动,要么便利运输。对于洋流,栖息于海洋,河口和河流的例行穿越生物的复杂环境而言,检测,定向和响应海流的能力尤其重要。预计鱼类将进化出行为,以最大化移动效率,从而允许将可用能量分配给生长和繁殖。在这里,我分析了在加利福尼亚复杂的旧金山湾河口的季节性居所期间手动追踪的异常ad鱼(Acipenser medirostris)的运动。在第一章中,我描述了该物种与深度,温度,盐度,溶解氧和一天中的时间等参数有关的一般运动方式。运动被分类为与休息或觅食活动相一致的底部附近的非定向,不稳定的运动,或者在接近表面或基底的情况下进行的定向,线性运动的延长时间段。鱼通常利用海湾的较浅区域,仅在定向表面运动期间穿过深水道区域。运动独立于其他测量参数。在第二章中,我进一步分析了鱼相对于水柱中的水流和位置的定向运动。我发现绿green鱼通过流动矢量运动学对不同的电流条件做出响应,在浅水缓慢流动的海湾区域中移入底部附近的电流,但在深层快速流动的通道中以水流为导向。在第三章中,我计算了显示正向和负向运动矢量运动的鱼类的运输代谢成本,并证明了鱼类通过利用局部水流使日常运动的效率最大化。尽管先前的研究已经考虑了正向矢量运动在潮汐中迁移的鱼类中的作用,但这项研究还是首次在更广泛的范围内考虑这些行为,并描述了它们在非迁移性日常行为中的作用。

著录项

  • 作者

    Kelly, John Thomas, III.;

  • 作者单位

    University of California, Davis.;

  • 授予单位 University of California, Davis.;
  • 学科 Biology Ecology.; Psychology Behavioral.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生态学(生物生态学);心理学;
  • 关键词

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