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Group thermal response testing for energy piles

机译:能源桩的群体热响应试验

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Thermal response testing is an in situ technique for characterising the thermal conductivity of the ground around a borehole heat exchanger. The test has seen renewed interest in recent years as an increasing number of ground heat exchangers are being constructed to provide renewable heating and cooling energy as part of ground source heat pump systems. The thermal response test involves applying a constant heating power to the ground via a circulating heat transfer fluid. Most test rigs are set up to cater for deep boreholes, with available heat transfer lengths typically more than 100m, and therefore have electrical heater capacities of a corresponding size. Pile heat exchangers are generally much shorter and the heat exchange length can be a little as 10m. This means that many standard thermal response test rigs cannot provide a low enough heating power and there is a risk of excessive temperature changes developing, especially during longer duration tests which can be recommended for larger diameter piles. One solution is to carry out the thermal response test on a group of piles, thereby increasing the effective heated length. This has the added advantage of testing a larger volume of soil. This paper examines the principles behind group thermal response testing for energy piles and considers the advantages and limitations of the approach with reference to a case study.
机译:热响应测试是一种用于表征钻孔热交换器围绕地面的导热率的原位技术。该试验已经看到近年来近年来的兴趣随着越来越多的地热交换器,以提供可再生加热和冷却能量作为地源热泵系统的一部分。热响应试验涉及通过循环的传热流体将恒定的加热功率施加到地上。大多数试验台被设置为迎合深层钻孔,可用的传热长度通常超过100米,因此具有相应尺寸的电加热器容量。桩热交换器通常较短,热交换长度可以是10米。这意味着许多标准的热响应试验台不能提供足够低的加热功率并且存在过度温度变化的风险,特别是在更长的持续时间测试期间,这是可以推荐用于更大直径桩的持续时间测试。一种解决方案是在一组桩上进行热响应试验,从而增加有效加热长度。这具有测试较大体积的土壤的额外优势。本文介绍了能源桩组热响应试验背后的原理,并考虑了对案例研究的方法的优势和局限性。

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