Performance prediction and analysis of a solar assisted medium-deep geothermal heating system

Z B Zhang, Z. Y. Tao, Z. D. Ma, G. Jia, L. H. Saw, L W Jin
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Abstract

The solar assisted medium-deep geothermal heating (SAMGH) system is a novel kind of heating system that can combine the benefits of geothermal and solar energy. However, the variations in borehole heat exchanger (BHE) performance and the intermittency of solar energy pose challenges for predicting the overall performance of the coupled system and designing the operational strategies. To conduct simulation on the SAMGH system for performance prediction and analysis, a coaxial medium-deep borehole heat exchanger coupled with the solar energy heating system for an office building in Xi’an was developed. The TRNSYS software was employed to establish the model of the coupled system. A ground source heat pump (GSHP) heating system was used for comparison. The simulation results showed that with the introduction of the solar energy and heat storage modules, the annual operating time of the geothermal system only accounts for 32.06%. The energy consumption of the coupled system can be reduced from 63585 kW to 44586 kW, and the energy consumption proportion of the geothermal system in total value decreased from 69.10% to 40.58%. Therefore, the average coefficient of performance (COP) of the heat pump and the system were improved by 63.71% and 91.77%, respectively. Moreover, because the solar energy is beneficial to the ground heat recovery, the average ground temperature increased from 42.5 °C to 43.88 °C after ten years of operation. The proposed design method and simulation results can serve as a reference for design method and performance analysis of the geothermal and solar coupled system.
太阳能辅助中深层地热供暖系统的性能预测与分析
太阳能辅助中深层地热供暖(SAMGH)系统是一种新型供暖系统,可将地热和太阳能的优势结合起来。然而,井眼热交换器(BHE)性能的变化和太阳能的间歇性给耦合系统整体性能的预测和运行策略的设计带来了挑战。为了对 SAMGH 系统的性能预测和分析进行仿真,开发了一种同轴中深孔热交换器与西安某办公楼太阳能供热系统的耦合系统。采用 TRNSYS 软件建立了耦合系统模型。并使用地源热泵(GSHP)供热系统进行对比。模拟结果表明,在引入太阳能和蓄热模块后,地热系统的年运行时间仅占 32.06%。耦合系统的能耗可从 63585 kW 降至 44586 kW,地热系统的能耗占总值的比例从 69.10% 降至 40.58%。因此,热泵和系统的平均性能系数(COP)分别提高了 63.71% 和 91.77%。此外,由于太阳能有利于地热回收,经过十年的运行,平均地温从 42.5 °C 上升到 43.88 °C。所提出的设计方法和模拟结果可为地热与太阳能耦合系统的设计方法和性能分析提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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