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Optimization of energy extraction for vertical closed-loop geothermal systems considering groundwater flow

机译:考虑地下水流量的垂直闭环地热系统能量提取的优化

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A combined simulation-optimization procedure is presented to regulate the operation of borehole heat exchangers (BHEs) in a multiple BHE field when groundwater flow exists. Such fields are of increasing interest for large-scale geothermal heating energy supply of buildings, but so far strategic adjustment of energy extraction rates (loads) of the individual BHEs has not been considered in practice. Groundwater flow means an additional advective energy supply, which is advantageous but also complicates proper BHE adjustment. In the presented procedure, the field is simulated by temporally and spatially superimposed moving line source equations. The optimization goal is formulated in an objective function to minimize the thermal impact in the ground, to avoid extreme temperature anomalies, and by this, ultimately improve heat pump performance. For a given seasonal energy demand and total operation time, linear programming efficiently delivers optimized BHE operation patterns. For an examined square lattice of 25 BHEs, the optimized radial load patterns characteristic for conduction dominated conditions change to patterns that are oriented at the groundwater flow when advection dominates. Through this, optimization always levels the temperature distribution in the ground. Also, in comparison to routine practice, mean BHE outlet temperatures can be increased. For the small study case, numerical simulation reveals that already more than 1 K can be achieved, given a seasonal energy demand oriented at common conditions in central Europe. However, for a fixed energy demand, advective heat supply towards the BHEs increases with groundwater flow velocity and thus mitigates the benefits from optimization.
机译:提出了一种组合的模拟优化程序,以在存在地下水流的情况下调节多个BHE场中的井壁热交换器(BHE)的运行。这些领域对于建筑物的大规模地热加热能量供应具有越来越大的兴趣,但是到目前为止,在实践中尚未考虑对各个BHE的能量提取率(负荷)进行战略性调整。地下水流意味着额外的对流能源供应,这是有利的,但也会使适当的BHE调节复杂化。在提出的过程中,通过在时间和空间上叠加的移动线源方程来模拟该场。通过目标函数制定优化目标,以最大程度地降低对地面的热影响,避免极端温度异常,从而最终改善热泵性能。对于给定的季节性能源需求和总运行时间,线性编程可以有效地提供优化的BHE运行模式。对于一个检查的25 BHE的方格,当以平流为主时,传导主导条件下的最佳径向载荷模式特性会变为以地下水流为导向的模式。通过这种方式,优化始终可以平衡地面中的温度分布。而且,与常规做法相比,平均BHE出口温度可以提高。对于小型研究案例,数值模拟表明,鉴于中欧在常见条件下的季节性能源需求,可以达到1 K以上。但是,对于固定的能源需求,对BHE的对流热量供应随地下水流速的增加而增加,从而减轻了优化带来的好处。

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