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Circulation and exchange in the Saginaw Bay - Lake Huron system: Observations and numerical modeling.

机译:萨吉诺湾-休伦湖系统中的环流和交换:观测和数值模拟。

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摘要

Knowledge of lake circulation is essential for addressing many issues ranging from water quality to human and ecosystem health. Lake Huron, the third largest of the Great Lakes by volume, has been significantly affected by natural and anthropogenic activities. Since Lake Huron is a connecting waterway between the upper and lower Great Lakes, understanding Lake Huron circulation and thermal structure is also important for questions involving the lower lakes. In this study, we use a three-dimensional, unstructured grid hydrodynamic model to examine circulation, thermal structure, ice cover extent, and exchange in the Saginaw Bay - Lake Huron system during summer months for 3 consecutive years (2009-2011) and winter months for 2 years (2010 and 2013). The model was tested against ADCP observations of currents, data from a Lagrangian drifter experiment in the Saginaw Bay, observations of temperature from thermistor chains, and temperature data from the National Data Buoy Center stations. Mean circulation was predominantly cyclonic in the main basin of Lake Huron with current speeds in the surface layer being highest in August in summer and in January in winter. Circulation in the Saginaw Bay was characterized by the presence of an anti-cyclonic gyre at the mouth of the outer bay and two recirculating cells within the inner bay for both seasons. The ice cover data extracted from Moderate Resolution Imaging Spectroradiometer (MODIS) with relatively high spatial resolution and from the Great Lakes Ice Atlas were used to test against results obtained from an ice model. The results show that the ice model was able to simulate lake circulation and ice cover extent in winter season reasonably well. The percent coverage of ice reached a maximum of 38.3% and 38.7% in mid-February in 2010 and beginning of March in 2013 respectively. New estimates are provided for the mean flushing times (computed as the volume of the bay divided by the rate of inflow) and residence times (computed as e-folding flushing times treating the bay as a continuously stirred tank reactor) for Saginaw Bay for summer and winter seasons. The average flushing time (over the three months of summer and for all three years) was 23.0 days for the inner bay and 9.9 days for the entire bay. The corresponding values for the winter season are 43.2 days and 15.6 days respectively. The mean e-folding flushing time was 62 days for summer and 64.7 days for winter for the inner bay and 115 days for the summer and 114.2 days for the winter conditions for the entire bay. Empirical relations between the mean residence time and river discharge were proposed. To characterize the behavior of river plumes in the inner Saginaw Bay, the absolute diffusivity values in the along-shore and cross-shore directions were calculated using data from GPS-enabled Lagrangian drifters and simulation results based on particle transport models.
机译:湖泊环流知识对于解决从水质到人类以及生态系统健康的许多问题至关重要。休伦湖是五大湖中第三大,受自然和人为活动的影响很大。由于休伦湖是上,下大湖之间的连接水路,因此了解休伦湖的环流和热力结构对于涉及下湖的问题也很重要。在这项研究中,我们使用三维非结构化网格水动力模型来研究连续3年(2009-2011年)夏季和夏季萨吉诺湾-休伦湖系统的环流,热力结构,冰盖程度和交换2年(2010年和2013年)的月数。该模型针对ADCP观测到的电流,来自萨吉诺湾的Lagrangian漂移实验的数据,来自热敏电阻链的温度以及来自国家数据浮标中心站的温度数据进行了测试。休伦湖主盆地的平均环流主要是气旋,表层的当前速度在夏季的八月和冬季的一月最高。萨吉诺湾的环流特征是,在两个季节中,外湾口处都有反气旋回旋,内湾内有两个循环室。从具有相对较高空间分辨率的中分辨率成像光谱仪(MODIS)和从大湖区冰图集提取的冰盖数据用于测试从冰模型获得的结果。结果表明,该冰模型能够较好地模拟冬季的湖泊环流和冰盖程度。在2010年2月中旬和2013年3月初,冰的覆盖率分别达到了38.3%和38.7%的最大值。萨吉诺湾夏季的平均冲洗时间(计算为隔间的体积除以流入速率)和停留时间(计算为将隔间作为连续搅拌釜反应器的电子折叠冲洗时间)提供了新的估算值和冬季。内舱的平均冲洗时间(在夏季的三个月及三年内)为23.0天,整个舱为9.9天。冬季的相应值分别为43.2天和15.6天。整个海湾的平均电子折叠冲洗时间在夏季为62天,冬季为64.7天,夏季为115天,冬季为114.2天。提出了平均停留时间与河流流量之间的经验关系。为了表征内萨吉诺湾内河羽的行为,使用了启用GPS的拉格朗日漂流器的数据和基于颗粒传输模型的模拟结果,计算了沿海岸和跨海岸方向的绝对扩散率值。

著录项

  • 作者

    Nguyen, Tuan Duc.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 179 p.
  • 总页数 179
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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