Improvement of earth-to-air heat exchanger performance by adding cost-efficient soil

Houda El Khachine, M. H. Ouahabi, Driss Taoukil
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Abstract

Geothermal research advances earth-to-air heat exchanger (EAHE) technology, offering promising air conditioning solutions for all buildings. Our study targets improved energy efficiency for the EAHE system, focusing on cost-effective approaches to enhance its technical, economic, and environmental performance. The thermal performance and economic viability of the EAHE system hinge on the thermal characteristics of the surrounding soil. The EAHE model features a single pipe with dimensions of 0.5 meters in diameter, 1 centimeter in thickness, and 10 meters in length. These pipes are strategically placed at depths of 1 meter, 2 meters, 3 meters, and 4 meters below the ground's surface. To optimize heat exchange efficiency while minimizing pipe length, we propose using a secondary soil material with high thermal conductivity as a lining for the EAHE pipes. Our innovative approach carefully considers the economic and environmental aspects of various lining materials, resulting in optimal performance at a minimal cost. Extensive simulations and data analysis lead us to identify an ideal lining material, naturally available, environmentally friendly, and cost-effective, ensuring peak efficiency. Our investigation assesses the EAHE system's thermal performance for both summer cooling and winter heating, demonstrating its effectiveness across seasons. This research underscores the case for utilizing EAHE systems during winter and autumn for heating and during spring and summer for cooling. Our findings are supported by robust performance indicators, confirming the effectiveness of our approach.
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通过添加具有成本效益的土壤改善土-空气热交换器的性能
地热研究推动了地-空气热交换器(EAHE)技术的发展,为所有建筑物提供了前景广阔的空调解决方案。我们的研究以提高 EAHE 系统的能源效率为目标,重点关注提高其技术、经济和环境性能的成本效益方法。EAHE 系统的热性能和经济可行性取决于周围土壤的热特性。EAHE 模型采用直径 0.5 米、厚度 1 厘米、长度 10 米的单管。这些管道被战略性地放置在地表以下 1 米、2 米、3 米和 4 米的深度。为了优化热交换效率,同时最大限度地减少管道长度,我们建议使用具有高导热性的二次土壤材料作为 EAHE 管道的内衬。我们的创新方法仔细考虑了各种内衬材料的经济性和环保性,从而以最小的成本获得最佳的性能。通过大量的模拟和数据分析,我们找到了一种理想的内衬材料,这种材料天然可用、环保且经济高效,可确保达到最高效率。我们的调查评估了 EAHE 系统在夏季制冷和冬季供暖时的热性能,证明了它在不同季节的有效性。这项研究强调了在冬季和秋季使用 EAHE 系统供暖以及在春季和夏季使用 EAHE 系统制冷的必要性。我们的研究结果得到了可靠的性能指标的支持,证实了我们方法的有效性。
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