Effect of Groundwater Flow and Thermal Conductivity on the Ground Source Heat Pump Performance at Bangkok and Hanoi: A Numerical Study

Arif Widiatmojo, Y. Uchida, I. Takashima
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Abstract

In recent decades, the fast-growing economies of Southeast Asian countries have increased the regional energy demand per capita. The statistic indicates Southeast Asian electricity consumption grows for almost 6% annually, with space cooling becoming the fastest-growing share of electricity use. The ground source heat pump technology could be one of the solutions to improve energy efficiency. However, currently, there are limited data on how a ground source heat pump could perform in such a climate. The thermal response test is widely used to evaluate the apparent thermal conductivity of the soil surrounding the ground heat exchanger. In common practice, the apparent thermal conductivity can be calculated from the test result using an analytical solution of the infinite line source method. The main limitation of this method is the negligence of the physical effect of convective heat transfer due to groundwater flow. While convection and dispersion of heat are two distinctive phenomena, failure to account for both effects separately could lead to an error, especially in high groundwater flow. This chapter discusses the numerical evaluation of thermal response test results in Bangkok, Thailand, and Hanoi, Vietnam. We applied a moving infinite line source analytical model to evaluate the value of thermal conductivity and groundwater flow velocity. While determining the ground thermal properties in a high accuracy is difficult, the moving infinite line source method fulfills the limitation of the infinite line source method. Further, we evaluated the five-year performance of the ground source heat pump system coupled with two vertical ground heat exchangers in Bangkok and Hanoi. The results suggest the importance of groundwater flow to enhance the thermal performance of the system.
地下水流量和导热系数对曼谷和河内地源热泵性能影响的数值研究
近几十年来,东南亚国家经济的快速增长提高了该地区的人均能源需求。统计数据显示,东南亚的用电量每年增长近6%,其中空间制冷成为电力使用中增长最快的部分。地源热泵技术可能是提高能源效率的解决方案之一。然而,目前,关于地源热泵如何在这种气候下发挥作用的数据有限。热响应试验被广泛用于评价地下换热器周围土壤的表观导热系数。在通常的实践中,表观热导率可以用无限线源法的解析解从测试结果中计算出来。这种方法的主要局限性是忽略了地下水流动引起的对流换热的物理效应。虽然对流和热量分散是两种不同的现象,但如果不能分别考虑这两种效应,可能会导致误差,特别是在高地下水流量的情况下。本章讨论了泰国曼谷和越南河内的热响应测试结果的数值评估。我们应用移动无限线源分析模型来评估热导率和地下水流速的值。而移动无限线源法较好地解决了无限线源法的局限性。此外,我们评估了在曼谷和河内与两个垂直地热交换器相结合的地源热泵系统的五年性能。结果表明,地下水流动对提高系统热性能的重要性。
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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