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Evaluation of the hydrologic benefits of infiltration-based stormwater management.

机译:评估基于渗透的雨水管理的水文效益。

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As watersheds are urbanized, their surfaces are made less pervious and more channelized, which reduces infiltration and speeds up the removal of excess runoff. Traditional stormwater management seeks to remove runoff as quickly as possible, gathering excess runoff in detention basins for peak reduction where necessary. In contrast, more recently developed "low impact" alternatives manage rainfall where it falls, through a combination of enhancing infiltration properties of pervious areas and rerouting impervious runoff across pervious areas to allow an opportunity for infiltration. Using small-scale infiltration practices distributed throughout a watershed seems to offer a promising solution to managing stormwater quantity and quality, while still maintaining aesthetics and ecological integrity.; An in-depth review is made of existing programs and practices seeking to implement more integrated stormwater management as priorities move beyond simply managing stormwater quantity and quality into more ecosystem-based, environ mentally friendly strategies. In addition, a review of the factors and processes that influence infiltration rate aid in formulating specific research goals. Through infiltration measurements made in the field, it was possible to address the question of how vegetation affects infiltration rate. Although the original research questions remain unanswered, the experience aided in the development of an automated infiltrometer design. Finally, hydrologic modeling was used to evaluate infiltration-based stormwater management. A group of preliminary experiments using simple engineering tools evaluate conceptual scenarios, comparing undeveloped, low impact development, and traditional development. These experiments demonstrated that low impact development is most effective at mitigating urbanization effects for the small, frequent rainfall events. Furthermore, these techniques were found to be most effective for more pervious soils, as adding impervious surfaces over soils with low infiltration capacity created relatively smaller impacts. In addition, one-dimensional continuous simulation was used to study one low impact practice in detail. This demonstrated the feasibility of using compost-amended soils to enhance infiltration to absorb runoff from nearby impervious surfaces. From these experiments, preliminary design guidance for selection of amended depth and area was developed.
机译:随着集水区的城市化,其表层的渗透性和通道化程度降低,从而减少了入渗并加快了多余径流的清除。传统的雨水管理寻求尽快清除径流,在滞留池中收集多余的径流,以在必要时降低峰值。相反,最近开发的“低影响”替代方案通过增强透水区的入渗特性和重新分配透水区的不透水径流来提供渗入机会,从而管理降雨。使用在小流域分布的小规模入渗做法似乎为管理雨水的数量和质量提供了一个有前途的解决方案,同时仍保持美观和生态完整性。随着优先级从简单地管理雨水的数量和质量转向更基于生态系统,对环境友好的战略,对旨在实施更全面的雨水管理的现有计划和实践进行了深入的审查。此外,对影响渗透率的因素和过程的回顾有助于制定特定的研究目标。通过在田间进行的入渗测量,有可能解决植被如何影响入渗率的问题。尽管最初的研究问题仍未得到解答,但该经验有助于开发自动浸渗仪设计。最后,水文模型被用来评估基于入渗的雨水管理。一组使用简单工程工具的初步实验评估概念方案,比较未开发,影响较小的开发和传统开发。这些实验表明,低影响力发展最有效的方法是缓解小而频繁的降雨事件对城市化的影响。此外,发现这些技术对于渗透性更强的土壤最有效,因为在渗透能力低的土壤上添加不透水的表面产生的影响相对较小。另外,使用一维连续模拟来详细研究一种低冲击力实践。这证明了使用堆肥改良的土壤来增强渗透以吸收附近不透水表面的径流的可行性。从这些实验中,开发出了选择修正深度和面积的初步设计指南。

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