首页> 外文期刊>Journal of geophysical research. Earth Surface: JGR >Coupled simulations of fluvial erosion and mass wasting for cohesive river banks
【24h】

Coupled simulations of fluvial erosion and mass wasting for cohesive river banks

机译:粘性河岸的河道冲蚀与水质浪费耦合模拟

获取原文
获取原文并翻译 | 示例
       

摘要

The erosion of sediment from riverbanks affects a range of physical and ecological issues. Bank retreat often involves combinations of fluvial erosion and mass wasting, and in recent years, bank retreat models have been developed that combine hydraulic erosion and limit equilibrium stability models. In related work, finite element seepage analyses have also been used to account for the influence of pore water pressure in controlling the onset of mass wasting. This paper builds on these previous studies by developing a simulation modeling approach in which the hydraulic erosion, finite element seepage, and limit equilibrium stability models are, for the first time, fully coupled. Application of the model is demonstrated by undertaking simulations of a single flow event at a single study site for scenarios where (1) there is no fluvial erosion and the bank geometry profile remains constant throughout, (2) there is no fluvial erosion but the bank profile is deformed by simulated mass wasting, and (3) the bank profile is allowed to freely deform in response to both simulated fluvial erosion and mass wasting. The results are limited in scope to the specific conditions encountered at the study site, but they nevertheless demonstrate the significant role that fluvial erosion plays in steepening the bank profile or creating overhangs, thereby triggering mass wasting. However, feedbacks between the various processes also lead to unexpected outcomes. Specifically, fluvial erosion also affects bank stability indirectly, as deformation of the bank profile alters the hydraulic gradients driving infiltration into the bank, thereby modulating the evolution of the pore water pressure field. Consequently, the frequency, magnitude, and mode of bank erosion events in the fully coupled scenario differ from the two scenarios in which not all the relevant bank process interactions are included.
机译:河岸沉积物的侵蚀影响了一系列物理和生态问题。岸边撤退通常涉及河流冲刷和大量浪费的结合,并且近年来,已经开发了将水力侵蚀和极限平衡稳定性模型结合起来的岸边撤退模型。在相关工作中,有限元渗流分析也已被用来解释孔隙水压力在控制质量浪费发生中的影响。本文通过开发一种模拟建模方法建立在这些先前的研究的基础上,其中首次将水力侵蚀,有限元渗流和极限平衡稳定性模型完全耦合。该模型的应用通过在以下情况下对单个研究地点的单个流动事件进行仿真来证明:(1)没有河流侵蚀并且河岸几何轮廓始终保持恒定;(2)没有河流侵蚀但河岸通过模拟的质量浪费使剖面变形,并且(3)允许河岸剖面响应模拟的河流侵蚀和质量浪费而自由变形。结果的范围仅限于研究地点遇到的特定条件,但是它们仍然证明了河流侵蚀在使河岸轮廓变陡或产生悬垂从而触发大量浪费方面的重要作用。但是,各个过程之间的反馈也会导致意外的结果。具体而言,河流侵蚀也间接影响堤岸的稳定性,因为堤岸轮廓的变形会改变驱使渗入堤岸的水力梯度,从而调节孔隙水压力场的演变。因此,完全耦合方案中银行侵蚀事件的发生频率,幅度和模式与两种方案中的情况不同,在这两种方案中,并未包括所有相关银行过程的相互作用。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号