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Coupled geo-fluvial channel evolution and bedrock erosion modeling on the river in Taiwan

机译:台湾河流上耦合地质河流渠道演化和基岩侵蚀建模

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Cross-stream structures such as weirs are widely used for water intake in many alluvial rivers in Taiwan. Use of these structures, however, leads to severe scour downstream as rivers in Taiwan typically have steep slopes and are subject to flood flows caused by typhoon. The 7.3-magnitude earthquake in 1999 caused a differential uplift of river channel near several weir sites, which led to accelerated river width and slope adjustments. This study concerns with a reach downstream of Ji-Ji weir that consists of mostly soft bedrock and has experienced significant vertical and lateral erosion. Extensive bank failure occurred during Typhoon Saola in 2012. Vertical erosion of upto 14 meters was recorded since the weir operation in 2000. A number of engineering schemes have been proposed to stabilize the reach or to reduce the erosion in the bedrock exposed reach. In this study, a new two-dimensional geo-fluvial numerical model, SRH-2D, was used to simulate combined vertical and lateral erosion in alluvial stream. The geo-fluvial model is coupled with a bedrock erosion module to predict both vertical and lateral alluvial erosion and bedrock incision. The model is used to simulate a 15.5-kilometer reach of Cho-Shui River over a three-year period. The results are then compared with the field data for model assessment. The simulated results show that the coupled geo-fluvial and bedrock model could correctly capture major erosion and deposition patterns. However, this study also points to the need for future improvement.
机译:诸如堰的交叉流结构广泛用于台湾许多冲积河中的水摄入量。然而,随着台湾的河流通常具有陡坡并且受到台风引起的洪水影响,使用这些结构的使用导致严重的冲刷。 1999年的7.3级地震引起了几个堰网站附近的河流渠道差动隆起,导致河宽和坡度调整加速。这项研究与吉吉堰下游的临近,由大多数柔软的基岩组成,经历了显着的垂直和横向侵蚀。在2012年的台风Saola期间发生了广泛的银行失败。自2000年堰业务以来,垂直侵蚀最多14米。已经提出了许多工程方案来稳定到达或减少基岩暴露的侵蚀。在本研究中,使用了一种新的二维地质氟荧光数值模型SRH-2D,用于模拟冲积流中的组合垂直和横向腐蚀。地质氟模型与基岩侵蚀模块相结合,以预测垂直和横向发生侵蚀和基岩切口。该模型用于在三年内模拟Cho-Shui River的15.5公里范围。然后将结果与模型评估的现场数据进行比较。模拟结果表明,耦合的地质氟和基岩模型可以正确捕获主要的侵蚀和沉积图案。然而,这项研究还指出了未来改善的必要性。

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