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Managing Complex Water Resource Systems for Ecological Integrity: Evaluating Tradeoffs and Uncertainty.

机译:管理复杂的水资源系统以实现生态完整性:评估权衡和不确定性。

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摘要

Water resource systems often contain numerous components that are intertwined or contradictory, such as power production, water delivery, recreation, and environmental needs. This complexity makes it difficult to holistically assess management alternatives. In addition, hydroclimatic and ecological uncertainties complicate efforts to evaluate the impacts of management scenarios. We need new tools that are able to inform managers and researchers of the tradeoffs or consequences associated with flow alternatives, while also explicitly incorporating sources of uncertainty. My research addresses this limitation using two modeling approaches: stochastic system dynamics modeling and Bayesian network modeling. Specifically, the objectives of my research were 1) evaluate the impacts of environmental flow alternatives on other water users within a complex managed basin using stochastic system dynamics modeling; 2) assess the benefits of environmental flow alternatives on select ecological processes using stochastic system dynamics modeling; and 3) demonstrate the unique benefits of combining fine-scale hydrodynamic and Bayesian network models when assessing ecological responses to water management alternatives. I developed a stochastic system dynamics model to evaluate the impacts of environmental flow alternatives on multiple water users in the Rio Chama basin, New Mexico. This work examined the influence of flow alternatives on cottonwood recruitment, reservoir storage, hydropower production, and whitewater boating. In addition, I coupled two-dimensional hydrodynamic and Bayesian network models to assess the impacts of management scenarios on cottonwood recruitment on the Gila River, New Mexico. The Bayesian network approach explicitly incorporated spatial variability, as well as hydrologic and ecological uncertainties. These methods are useful for more thoroughly assessing the tradeoffs of management decisions, integrating system components within a holistic framework, and evaluating ecological consequences of management scenarios at fine spatial scales.
机译:水资源系统通常包含许多相互交织或矛盾的组件,例如发电,输水,娱乐和环境需求。这种复杂性使得难以全面评估管理方案。此外,水文气候和生态方面的不确定性使评估管理方案的影响的工作复杂化。我们需要新的工具,这些工具能够告知管理人员和研究人员与流量选择相关的权衡或后果,同时还明确包含不确定性来源。我的研究使用两种建模方法解决了这一局限性:随机系统动力学建模和贝叶斯网络建模。具体来说,我的研究目标是:1)使用随机系统动力学模型评估环境流量替代方案对复杂管理流域内其他用水户的影响; 2)使用随机系统动力学模型评估环境流量替代方案对某些生态过程的好处; 3)证明了在评估对水资源管理替代方案的生态响应时,将精细水动力模型和贝叶斯网络模型相结合的独特优势。我开发了一个随机系统动力学模型,以评估环境流动替代品对新墨西哥州里奥查马盆地多个用水户的影响。这项工作研究了流量替代方案对杨木招募,水库存储,水电生产和泛舟的影响。此外,我还结合了二维流体动力学和贝叶斯网络模型来评估管理方案对新墨西哥州吉拉河上杨木招聘的影响。贝叶斯网络方法明确地纳入了空间变异性以及水文和生态的不确定性。这些方法对于更全面地评估管理决策的权衡,在整体框架中集成系统组件以及在精细的空间规模上评估管理方案的生态后果很有用。

著录项

  • 作者

    Morrison, Ryan Richard.;

  • 作者单位

    The University of New Mexico.;

  • 授予单位 The University of New Mexico.;
  • 学科 Engineering Civil.;Water Resource Management.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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