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Factors affecting the infiltration rate and removal of suspended solids in gravel-filled stormwater management structures

机译:影响砾石充填雨水管理结构中入渗率和悬浮物去除的因素

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Apparent changes in the natural hydrologic cycle causing more frequent floods in urban areas and surface water quality impairment have led stormwater management solutions towards the use of green and sustainable practices that aims to replicate pre-urbanization hydrology. Among the widely documented applications are infiltration techniques that temporarily store rainfall runoff while promoting evapotranspiration, groundwater recharge through infiltration, and diffuse pollutant reduction. In this study, a laboratory-scale infiltration device was built to be able to observe and determine the factors affecting flow variations and corresponding solids removal through a series of experiments employing semi-synthetic stormwater runoff. Results reveal that runoff and solids reduction is greatly influenced by the infiltration capability of the underlying soil which is also affected by rainfall intensity and the available depth for water storage. For gravel-filled structures, a depth of at least 1 m and subsoil infiltration rates of not more than 200 mm/h are suggested for optimum volume reduction and pollutant removal. Moreover, it was found that the length of the structure is more critical than the depth for applications in low infiltration soils. These findings provide a contribution to existing guidelines and current understanding in design and applicability of infiltration systems.
机译:自然水文循环的明显变化导致城市地区洪水泛滥,地表水水质受损,导致雨水管理解决方案转向采用旨在复制城市化前水文学的绿色和可持续实践。在广泛记录的应用中,渗透技术可暂时存储降雨径流,同时促进蒸散,通过渗透补给地下水以及减少污染物扩散。在这项研究中,建立了实验室规模的渗透装置,以便能够通过一系列使用半合成雨水径流的实验来观察和确定影响流量变化和相应的固体去除的因素。结果表明,径流和固体物的减少在很大程度上受到下层土壤的渗透能力的影响,而下层土壤的渗透能力也受到降雨强度和可用储水深度的影响。对于砾石充填的结构,建议采用至少1 m的深度和不超过200 mm / h的地下土壤渗透速率,以实现最佳的体积减少和污染物去除效果。此外,发现在低渗土壤中,结构的长度比深度更关键。这些发现为现有准则和渗透系统设计和适用性的当前理解做出了贡献。

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