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A new heating-cooling system for centrifuge testing of thermo-active geo-structures

机译:一种用于离心机测试热敏地理结构的电子冷却系统

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Centrifuge modelling has been considered as an effective means for investigating the energy and geotechnical performance of thermo-active geo-structures. A major challenge to correctly model (i) soil-structure heat transfer and (ii) thermo-mechanical behaviour of the geo-structure in a centrifuge is to design a system that could deliver sufficient heat energy (i.e. in terms of flowrate and temperature) under enhanced gravity conditions. This paper reports a new and robust heating/cooling system developed for these purposes and evaluates its performance. The proof heating tests performed up to 50-g suggest that when an appropriate pipe configuration is designed, the heating system is capable of producing a water flowrate up to 13.5 ml/s, which is sufficient to generate a turbulent flow regime within the water circulation pipe, hence maximising the convective heat transfer mechanism. The heating system has been successfully applied to deliver a controllable amount of heat energy, simultaneously, to multiple thermo-active piles in a row for warming up the surrounding soil. With proper thermal insulation of the pipework of the system, temperature loss between the target value at the pipe inlet and the one registered at the entrance of the model structure could be less than 2°C. An idea for extending the system to lower the temperature below ambient is also presented.
机译:离心机建模已被认为是调查热敏地理结构的能量和岩土性能的有效手段。正确模型的主要挑战(i)离心机地质结构的土壤结构传热和(ii)的热力学行为是设计一种能够提供足够的热能(即,在流量和温度方面)的系统在增强的重力条件下。本文报告了一种为这些目的开发的新型和强大的加热/冷却系统,并评估其性能。最高可达50g的证明加热试验表明,当设计合适的管道配置时,加热系统能够产生高达13.5毫升/秒的水流量,这足以在水循环内产生湍流状态管道,因此最大化对流传热机制。加热系统已成功应用于连续地将可控量的热能,同时传递到多个热活性桩,以加热周围的土壤。通过对系统的管道进行适当的隔热,管道入口处的目标值与模型结构入口处的目标之间的温度损失可能小于2°C。还提出了延伸系统以降低环境温度的想法。

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