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Thermal properties variations in unconsolidated material for very shallow geothermal application (ITER project)

机译:非常浅地热应用的未溶解材料的热性能(ITER项目)

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In engineering, agricultural and meteorological project design, sediment thermal properties are highly important parameters, and thermal conductivity plays a fundamental role when dimensioning ground heat exchangers, especially in very shallow geothermal systems. Herein, the first 2 m of depth from surface is of critical importance. However, the heat transfer determination in unconsolidated material is difficult to estimate, as it depends on several factors, including particle size, bulk density, water content, mineralogy composition and ground temperature. The performance of a very shallow geothermal system, as a horizontal collector or heat basket, is strongly correlated to the type of sediment at disposal and rapidly decreases in the case of dry-unsaturated conditions. The available experimental data are often scattered, incomplete and do not fully support thermo-active ground structure modeling. The ITER project, funded by the European Union, contributes to a better knowledge of the relationship between thermal conductivity and water content, required for understanding the very shallow geothermal systems behaviour in saturated and unsaturated conditions. So as to enhance the performance of horizontal geothermal heat exchangers, thermally enhanced backfilling material were tested in the laboratory, and an overview of physical-thermal properties variations under several moisture and load conditions for different mixtures of natural material was here presented.
机译:在工程学,农业和气象项目设计中,沉积物热性能是非常重要的参数,并且热导率在尺寸尺寸换热器时起着基本作用,特别是在非常浅地热系统中。这里,从表面的前2米深度是至关重要的。然而,未溶解材料中的热传递测定难以估计,因为它取决于若干因素,包括粒度,堆积密度,含水量,矿物组合物和地温。作为水平收集器或热篮的非常浅地热系统的性能与处置的沉积物类型强烈相关,并且在干燥不饱和条件下迅速降低。可用的实验数据通常是分散的,不完整的,并且不完全支持热敏接地结构建模。由欧洲联盟资助的ITER项目有助于了解热导率和水含量之间的关系,了解饱和和不饱和条件下非常浅的地热系统行为所需的含水率和水含量。从而提高水平地热交换器的性能,在实验室中测试了热增强的回填材料,并且在此提出了几种水分和载荷条件下的物理热性能变化的概述。

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