在爱达荷州的大溪,原木运动的测量结果显示,原木没有被堵塞

N. Deshpande, B. Crosby
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引用次数: 0

摘要

通俗地说,“阻塞”表示运动的运动学停止。从字面上看,它指的是河流中木材的密集堆积,人们普遍认为它给生态系统带来了许多生物和物理效益,但也给基础设施带来了严重的危害。尽管如此,目前还没有现场测量来评估自然形成的堵塞的阻滞程度。使用延时摄影,重复全站站调查和水位记录器,我们提供了一个前所未有的视角,在爱达荷州中部的一个僵局的演变。尽管名字相同,但我们发现堵塞并不堵塞。随着水流的剪切和浮力抬升,原木整体逐渐变形,并受融雪线的上升、峰值和下降幅度的调节。随着水位上升,对河床和河岸的阻力减小,它们共同向下游平移,形成一种不均匀的变形模式。随着水流的退去,原木与河床和河岸重新连接起来,随着原木偶然地落在它们的邻居之间,连贯的变形模式降低了。低速率连续运动的现场观测在性质上类似于蠕变和堵塞,这些行为在广泛的无序材料中很常见。通过将这些实践与软物质物理学和颗粒流变学的前沿研究成果相结合,这些相似性为未来的环境堵塞、木材流动、堵塞、危害缓解和工程堵塞设计的研究提供了可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Logjams are not jammed: measurements of log motions in Big Creek, Idaho
Colloquially, a "logjam" indicates a kinematic arrest of movement. Taken literally, it refers to a type of dense accumulation of wood in rivers widely recognized as bestowing numerous biological and physical benefits to the system but also present serious hazards to infrastructure. Despite this, no in-situ field measurements have assessed the degree of arrest in a naturally-formed logjam. Using time-lapse photography, repeat total station surveys and water level loggers, we provide an unprecedented perspective on the evolution of a logjam in central Idaho. Despite the namesake, we find that the logjam is not jammed. The ensemble of logs progressively deforms in response to shear and buoyant lift of flowing water, modulated by the rising limb, peak and falling limb of the snowmelt hydrograph. As water rises and log drag against the bed and banks decreases, they collectively translate downstream, generating a heterogeneous pattern of deformation. As streamflow recedes and the logs reconnect with the bed and banks, the coherent deformation pattern degrades as logs settle opportunistically amongst their neighbors. Field observations of continuous movement at a low rate are qualitatively similar to creep and clogging, behaviors that are common to a wide class of disordered materials. These similarities open the possibility to inform future studies of environmental clogging, wood-laden flows, logjams, hazard mitigation and the design of engineered logjams by bridging these practices with frontier research efforts in soft matter physics and granular rheology.
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