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Spatially distributed assessment of channel seepage using geophysics and artificial intelligence

机译:利用地球物理学和人工智能对河道渗流进行空间分布评估

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Estimation of channel seepage is an essential task in improving the management of earthen channel systems. The spatial distribution of seepage rates along the channels must be quantified to establish the economic and environmental merit of reducing conveyance losses. In Australia, due to recurring droughts and irrigation induced salinity concerns, there is much pressure to improve the efficiency of existing water resource use. Saving seepage losses from earthen channels has therefore become an important issue for several reasons including the loss of a valuable resource, maintaining channel assets and reducing accessions to groundwater.In this paper spatial distribution of channel seepage was quantified using artificial neural networks (ANNs). The electromagnetic imaging (EM31) data along with hydraulic conductivity, depth and salinity of groundwater were correlated with Idaho seepage meter measurements using the ANNs. It is estimated that over 42 million mpd of water can be lost annually from 500 km of channel in the Murrumbidgee Irrigation Area. The distributed channel seepage analysis indicates that most significant seepage (>20 mm/day) occurs in less than 32% of the surveyed channel length; therefore it is important to target channel lining investments to the leakiest parts - "hotspots" - of the channel system.
机译:估算渠道渗漏是改善土质渠道系统管理的一项基本任务。沿通道的渗透率的空间分布必须加以量化,以建立减少运输损失的经济和环境价值。在澳大利亚,由于反复干旱和灌溉引起的盐度问题,提高现有水资源利用效率的压力很大。因此,从土质渠道中节省渗水损失已成为一个重要问题,原因包括:宝贵资源的损失,维护渠道资产和减少对地下水的吸收。在本文中,使用人工神经网络(ANN)对渠道渗水的空间分布进行了量化。电磁成像(EM31)数据以及地下水的水力传导率,深度和盐度与使用ANN的爱达荷州渗透仪测量值相关。据估计,Murrumbidgee灌溉区的500公里河道每年可能损失超过4,200万英里/小时的水。分布式通道渗流分析表明,最显着的渗流(> 20毫米/天)发生在少于32%的调查通道长度内;因此,重要的是将渠道衬砌投资的目标对准渠道系统中最易泄漏的部分-“热点”。

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