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A Green Roof Segment for Monitoring the Hydrological and Thermal Behaviour of Anthropogenic Soil Systems

机译:监控人为土壤系统水文和热行为的绿色屋顶

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摘要

Green roofs and similar anthropogenic soil-plant systems in conurbations have a high relevance for society, especially in a changing climate. Understanding the hydrological performance of green roof substrates is a significant task in the framework of sustainable urban planning and water/energy management in urban areas. Potential retention and detention capabilities of anthropogenic, light weight, highly permeable soil systems and their continued performance over time are of major importance. A green roof test segment was designed to investigate the benefits of such anthropogenic systems. This adaptable low-cost system allows for long-term monitoring of preferred characteristics. Temperature and water balance measurements complemented with meteorological observations and studies of physical properties of substrates provide a basis for a detailed analysis of thermal and hydrological regime in green roof systems. The very first results obtained from the test segment have confirmed the green roof systems benefits. Reduced temperature fluctuations as well as rainfall runoff were attained compared to the traditional roof systems. Depending on numerous factors including the substrate material or vegetation cover, in the green roof tested the temperature amplitude for a selected period of non-freezing days (with minimum ambient air temperature of 2.8 degrees C) was suppressed by about 6.5 degrees C on average. The ability to completely prevent (light rainfall events) or reduce and delay (medium and heavy rainfall events) the peak runoff was demonstrated, too.
机译:城市化中的绿色屋顶和类似的人为土壤植物系统与社会息息相关,特别是在气候变化的情况下。在可持续城市规划和城市地区水/能源管理的框架下,了解绿色屋顶基质的水文性能是一项重要的任务。人为,轻质,高渗透性土壤系统的潜在保留和保留能力及其随时间的持续运行至关重要。设计了一个绿色屋顶测试段来研究这种人为系统的好处。这种适应性强的低成本系统可对首选特性进行长期监控。温度和水平衡测量与气象观测以及对基质物理性质的研究相辅相成,为详细分析屋顶绿化系统的热力和水文状况提供了基础。从测试部分获得的最初结果已经证实了绿色屋顶系统的好处。与传统的屋顶系统相比,减少了温度波动和降雨径流。根据包括基材材料或植被覆盖物在内的许多因素,在测试的绿色屋顶中,选定的非冻结天数(最低环境空气温度为2.8摄氏度)的温度幅度平均被抑制了约6.5摄氏度。还展示了完全防止(轻度降雨事件)或减少和延迟(中度和强降雨事件)高峰径流的能力。

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