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From engineering hydrology to Earth system science: milestones in the transformation of hydrologic science

机译:从工程水文学到地球系统科学:水文学科学转型的里程碑

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Hydrology has undergone almost transformative changes over the past 50?years. Huge strides have been made in the transition from early empirical approaches to rigorous approaches based on the fluid mechanics of water movement on and below the land surface. However, progress has been hampered by problems posed by the presence of heterogeneity, including subsurface heterogeneity present at all scales. The inability to measure or map the heterogeneity everywhere prevented the development of balance equations and associated closure relations at the scales of interest, and has led to the virtual impasse we are presently in, in terms of development of physically based models needed for hydrologic predictions. An alternative to the mapping of heterogeneity everywhere is a new Earth system science view, which sees the heterogeneity as the end result of co-evolutionary hydrological, geomorphological, ecological, and pedological processes, each operating at a different rate, which help to shape the landscapes that we find in nature, including the heterogeneity that we do not readily see. The expectation is that instead of specifying exact details of the heterogeneity in our models, we can replace it (without loss of information) with the ecosystem function that they perform. Guided by this new Earth system science perspective, development of hydrologic science is now addressing new questions using novel holistic co-evolutionary approaches as opposed to the physical, fluid mechanics based reductionist approaches that we inherited from the recent past. In the emergent Anthropocene, the co-evolutionary view has expanded further to involve interactions and feedbacks with human-social processes as well. In this paper, I present my own perspective of key milestones in the transformation of hydrologic science from engineering hydrology to Earth system science, drawn from the work of several students and colleagues of mine, and discuss their implication for hydrologic observations, theory development, and predictions.
机译:在过去的50年中,水文学经历了几乎变革性的变化。在从早期经验方法到严格方法的过渡中,已经取得了长足的进步,该方法基于陆地表面上和表面下水运动的流体力学。但是,由于存在异质性(包括所有规模的地下异质性)而造成的问题阻碍了进展。无法在各处测量或绘制异质性阻碍了平衡方程和相关闭合关系在感兴趣的尺度上的发展,并且就开发水文学预测所需的基于物理的模型而言,这导致了我们目前的虚拟僵局。异质性映射无处不在的另一种替代方法是地球系统科学的新观点,该观点认为异质性是共同进化的水文,地貌,生态学和生态学过程的最终结果,每个过程以不同的速率运行,从而有助于形成我们在自然界中发现的景观,包括我们不容易看到的异质性。期望的是,我们无需在模型中指定异质性的确切细节,而可以用它们执行的生态系统功能代替它(不丢失信息)。在这种新的地球系统科学观点的指导下,水文科学的发展现在正在使用新颖的整体协同进化方法来解决新问题,这与我们从最近继承的基于物理,流体力学的还原论方法相反。在新兴的人类世中,共同进化的观点进一步扩展,涉及与人类社会过程的互动和反馈。在本文中,我将从我的几位学生和同事的工作中得出自己对水文学从工程水文学到地球系统科学的转变中的重要里程碑的看法,并讨论它们对水文观测,理论发展和研究的意义。预测。

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