Measuring heat transfer processes in gully pots for real-time estimation of accumulated sediment depths†

IF 3.5 4区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Manuel Regueiro-Picallo, Antonio Moreno-Rodenas and Francois Clemens-Meyer
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引用次数: 0

Abstract

The accumulation of sediments in stormwater systems negatively affects their functioning. For example, the re-suspension of these sediments can lead to serious pollution of surface water bodies through combined sewer overflows (CSOs). In addition, the persistent accumulation of sediments reduces the storage and hydraulic capacity of stormwater systems, resulting in an increased risk of flooding. Stormwater managers spend considerable resources cleaning these systems, but we still lack reliable and easy-to-use monitoring methods to provide information on the location, volume and composition of sediments. This study explores the use of temperature sensors combined with the analysis of heat transfer processes to measure sediment depth in sand trap gully pots. To this end, a laboratory-scale experimental campaign was carried out using a 1 : 1 scale gully pot model, with different sediment types, hydrographs and inflow temperature conditions. The experiments were designed using field measurements to reproduce the temperature changes in gully pots and thus the heat transfer processes. The results showed maximum differences between reference measurements and estimated depths of less than 30 mm. Finally, the use of temperature sensors as a cost-effective solution for monitoring sediment accumulation is discussed.

Abstract Image

测量沟槽中的传热过程,实时估算累积沉积深度
沉积物在雨水系统中的积累会对其功能产生负面影响。例如,这些沉积物的再次悬浮会通过联合污水溢流 (CSO) 导致地表水体的严重污染。此外,沉积物的持续积累会降低雨水系统的存储和水力容量,导致洪水风险增加。雨水管理者花费了大量资源清理这些系统,但我们仍然缺乏可靠、易用的监测方法来提供有关沉积物位置、数量和成分的信息。本研究探讨了使用温度传感器结合热传导过程分析来测量沉积物在沉沙池中的深度。为此,使用 1:1 比例的沟槽模型,在不同沉积物类型、水文图和流入温度条件下,开展了实验室规模的实验活动。实验是根据实地测量结果设计的,目的是再现沟槽中的温度变化,从而再现传热过程。结果显示,参考测量值与估计深度之间的最大差异小于 30 毫米。最后,讨论了使用温度传感器作为监测泥沙淤积的一种经济有效的解决方案。
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来源期刊
Environmental Science: Water Research & Technology
Environmental Science: Water Research & Technology ENGINEERING, ENVIRONMENTALENVIRONMENTAL SC-ENVIRONMENTAL SCIENCES
CiteScore
8.60
自引率
4.00%
发文量
206
期刊介绍: Environmental Science: Water Research & Technology seeks to showcase high quality research about fundamental science, innovative technologies, and management practices that promote sustainable water.
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