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EFFECT OF FREEZE PIPE ECCENTRICITY IN ARTIFICIAL GROUND FREEZING APPLICATIONS

机译:冻结管偏心在人工冻结应用中的影响

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Building concentric tubes is one of biggest practical challenges in the construction of freeze-pipes of artificial ground freezing (AGF) applications for deep underground mines. In this study, the influence of tubes eccentricity on phase-front expansion (i.e., expansion of the frozen body) and energy consumption of AGF systems is analyzed. A 1 + 1D semi-conjugate model that solves two-phase transient energy conservation equation is derived. The model is firstly validated against experimental data and then verified with a fully-conjugate model from the literature. After that, the model is extended to a field scale of typical deep underground mines to study freeze-pipe eccentricity. The results show that an eccentric freeze pipe can reduce the phase-front expansion by around 25%, as compared with a concentric one. Also, the geometrical profile of the phase-front is significantly influenced by the freeze-pipe eccentricity. Furthermore, in the passive zone, where AGF coolants are isolated from the ground to reduce energy consumption, freeze pipe eccentricity can increase the coolant heat gain by 10%. This percentage can increase up to 200% if radiation heat transfer is minimized.
机译:建筑同心管是建造人造冻结冻结(AGF)应用深度地下矿山的冻结的最大实际挑战之一。在该研究中,分析了管偏心对相前膨胀(即,冷冻体的膨胀)的影响和AGF系统的能量消耗。衍生一种求解两相瞬态节能方程的1 + 1D半共轭模型。该模型首先针对实验数据验证,然后用文献中的完全共轭模型验证。之后,该模型扩展到典型的深层地雷的场比例,以研究冻结管偏心。结果表明,与同心1相比,偏心冻管可以将相位前膨胀减少约25%。而且,相位前的几何轮廓受到冷冻管偏心的显着影响。此外,在被动区域中,从地面分离AGF冷却剂以降低能量消耗,冷冻管偏心可以将冷却剂热量增加10%。如果辐射热传递最小化,则该百分比可以增加高达200%。

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