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Multi-dimensional simulation of underground subway spaces coupled with geoenergy systems

机译:与地下能源系统耦合的地下地铁空间的多维模拟

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Old and deep subway lines suffer from overheating problems, particularly during summer, which is detrimental for passenger comfort and health. Geothermal systems could serve as one of the potential energy efficient cooling solutions, compared to energy intensive conventional cooling. The waste heat of the subway tunnel can be harnessed, to provide heating to residential and commercial blocks above the tunnels. This paper presents a multi-scale co-simulation framework for quantifying the amount of useful heat that can be extracted from overheated underground subway tunnels using geothermal heat exchangers. The co-simulation is applied and tested on a representative section of the London Underground's Central Line. The Central Line is modelled using a 1D heat and mass transfer model. The geothermal system, on the other hand, is represented using a 3D finite element model. The 1D and 3D models are co-simulated, using the subway tunnel's outer wall temperatures as boundary conditions. The model is run parametrically to identify the best arrangement and depth of geothermal heat exchangers for extracting excess heat from subway tunnels. Results show that the depth of 15m. below the tunnel is sufficient for vertical closed loop heat exchangers to yield temperature drop of 4C in the subway tunnel and platforms. Partially insulated boreholes, alternating between extracting and injecting heat into the soil, are also assessed for their potential to provide heating and cooling demand simultaneously and improve the overall geothermal system efficiency. The heat extracted along a representative section of the tunnels is compared to the heating demand of the buildings above ground.
机译:老旧的地铁线路会出现过热问题,尤其是在夏天,这会对乘客的舒适度和健康产生不利影响。与能源密集型常规制冷相比,地热系统可以作为潜在的节能制冷解决方案之一。可以利用地铁隧道的废热,为隧道上方的住宅和商业街区提供热量。本文提出了一种多尺度协同模拟框架,用于量化可以使用地热热交换器从过热的地下地铁隧道中提取的有用热量。联合仿真在伦敦地铁中线的代表性部分进行了应用和测试。使用1D传热传质模型对中心线进行建模。另一方面,地热系统使用3D有限元模型表示。使用地铁隧道的外壁温度作为边界条件,对1D和3D模型进行了共同仿真。该模型在参数上运行,以确定地热热交换器的最佳布置和深度,以从地铁隧道中提取多余的热量。结果表明,深度为15m。隧道下方的高度足以使垂直闭环热交换器在地铁隧道和站台中产生4C的温度下降。还评估了部分隔热的钻孔(在向土壤中提取热量和向土壤中注入热量之间进行交替)的潜力,这些潜力可同时满足供热和制冷需求并提高整体地热系统效率。将沿隧道代表性部分提取的热量与地上建筑物的供热需求进行比较。

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