Jinghua Jiang, Xia Zhang, Jun Liu, Yongjun Sun, Sheng Zhang, Fenghao Wang
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The favorable effects of CC include reducing the heating demand (due to the reduced building heating load (BHL) caused by CC) and improving the heating supply capacity (due to the enhanced outlet temperature caused by CC). In addition, the reduced BHL under CC enhances the inlet temperature of U-MDBHE, thereby improving its operation safety. CC mitigates the heat extraction attenuation of U-MDBHE, with the strongest effect in the ascending well, followed by the descending well, and then the butted well. Case studies using experimentally validated simulations on the 30-year operation of U-MDBHE demonstrate that by mitigating the adverse effect of the heat extraction attenuation, CC reduces the accumulated energy consumption by 14.31%–26.59% and improves the operation safety by up to 100% in Harbin (severe cold region) and Beijing (cold region). 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引用次数: 0
摘要
U 型中深孔热交换器(U-MDBHE)是一种可持续建筑供热技术。目前的研究利用典型气象年的天气数据对 U-MDBHE 的长期热性能进行了评估。结论表明,由于热量提取衰减,U-MDBHE 的热性能明显下降。热性能恶化导致 U-MDBHE 尺寸过大,阻碍了 U-MDBHE 的广泛应用。本研究提出了一个新观点,即应考虑气候变化(CC)来评估 U-MDBHE 的长期热性能,并验证了 CC 对 U-MDBHE 热性能的有利影响可有效缓解热萃取衰减的不利影响。CC 的有利影响包括降低供热需求(由于 CC 导致建筑供热负荷(BHL)降低)和提高供热能力(由于 CC 导致出口温度提高)。此外,CC 导致的 BHL 减少还能提高 U-MDBHE 的入口温度,从而提高其运行安全性。CC 可减轻 U-MDBHE 的热量提取衰减,对上升井的影响最大,其次是下降井,然后是对接井。通过对 U-MDBHE 30 年运行的实验验证模拟进行的案例研究表明,在哈尔滨(严寒地区)和北京(寒冷地区),CC 通过缓解抽热衰减的不利影响,降低了 14.31%-26.59% 的累积能耗,提高了高达 100% 的运行安全性。这项研究大大有助于提高 U-MDBHE 的长期热性能。
Mitigation of long-term heat extraction attenuation of U-type medium-deep borehole heat exchanger by climate change
U-type medium-deep borehole heat exchanger (U-MDBHE) is a sustainable building heating technology. Current studies assess the long-term thermal performance of U-MDBHE using typical meteorological year weather data. The conclusions indicate a discernible deterioration in the thermal performance of U-MDBHE attributed to heat extraction attenuation. The thermal performance deterioration leads to the oversize of U-MDBHE and hinders the widespread application of U-MDBHE. This study introduces a novel idea that the long-term thermal performance of U-MDBHE should be evaluated considering climate change (CC) and verifies that the favorable effects of CC on the thermal performance of U-MDBHE can effectively mitigate the adverse effect of heat extraction attenuation. The favorable effects of CC include reducing the heating demand (due to the reduced building heating load (BHL) caused by CC) and improving the heating supply capacity (due to the enhanced outlet temperature caused by CC). In addition, the reduced BHL under CC enhances the inlet temperature of U-MDBHE, thereby improving its operation safety. CC mitigates the heat extraction attenuation of U-MDBHE, with the strongest effect in the ascending well, followed by the descending well, and then the butted well. Case studies using experimentally validated simulations on the 30-year operation of U-MDBHE demonstrate that by mitigating the adverse effect of the heat extraction attenuation, CC reduces the accumulated energy consumption by 14.31%–26.59% and improves the operation safety by up to 100% in Harbin (severe cold region) and Beijing (cold region). This study significantly contributes to improving the long-term thermal performance of U-MDBHE.
期刊介绍:
Building Simulation: An International Journal publishes original, high quality, peer-reviewed research papers and review articles dealing with modeling and simulation of buildings including their systems. The goal is to promote the field of building science and technology to such a level that modeling will eventually be used in every aspect of building construction as a routine instead of an exception. Of particular interest are papers that reflect recent developments and applications of modeling tools and their impact on advances of building science and technology.