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Ground Freezing for Tunnel, Shafts, and Adits

机译:隧道,轴和配套冻结冻结

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Construction of a 0.81km long, 6.1 m diameter sewer tunnel, a component of D.C. Water's Clean River Project required construction of three drop shafts and connecting adits. The location of these three shafts and adits was complicated by their locations in a populated suburban neighborhood. Ground freezing from the surface was selected as the method to provide temporary earth support and groundwater control during construction. The ground freezing option was not only the most technically appropriate method, it provided significant advantages to accommodating the citizens in the neighborhood. Not only did the drilling and installation process provide a minimal equipment footprint at each site and reduce cuttings and spoils, but the refrigeration plants were located at a remote location reducing noise levels during the freezing process and construction. This paper discusses the design and implementation process of this complex freezing system that included drilling refrigeration pipes at complex angles in order to minimize traffic interruption and avoid utilities. Additionally, horizontal freeze pipes were drilled under 3 bars of pressure from the EPB tunnel in order to ensure that the adit connections were sufficiently frozen. The intricate cooling system extended over half a mile on both the surface and underground tunnel with instrumentation and monitoring along all points.
机译:施工0.81公里,6.1米直径的下水道隧道,是D.C.水的清洁河项目的组成部分需要三个落轴和连接的配合。他们在人口稠密的郊区邻居中的位置复杂化了这三个轴和adits的位置。选择从表面冻结的地面作为在施工期间提供临时地球支撑和地下水控制的方法。地面冻结选项不仅是最具技术上适当的方法,它提供了适应附近公民的显着优势。钻孔和安装过程不仅提供了每个站点的最小设备足迹,并减少了切割和破坏,但制冷设备位于遥控器期间降低冻结过程和施工期间的噪声水平。本文讨论了这种复杂的冻结系统的设计和实现过程,包括钻削制冷管以复杂的角度,以最大限度地减少交通中断并避免公用事业。此外,在来自EPB隧道的3条压力下钻出水平冻干,以确保吸附连接充分冷冻。复杂的冷却系统在表面和地下隧道上延伸超过半英里,沿各个点进行仪器监控。

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