Investigating the dynamic thermal performance of a novel PCM to earth-air heat exchanger: Developing numerical model and comparing thermal performance

IF 6.7 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY Journal of building engineering Pub Date : 2024-09-13 DOI:10.1016/j.jobe.2024.110718
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Abstract

Integrating phase change materials (PCMs) into earth-air heat exchangers (EAHE) to form PCM-EAHE systems effectively enhances the efficiency of natural energy utilization. This study proposes a novel PCM-EAHE configuration for the first time, incorporating multiple annular PCM layers and a single cylindrical PCM layer within the duct. Mathematical models for four distinct scenarios were developed and validated against experimental data. The findings indicate that the proposed system outperforms existing PCM-EAHE systems in terms of temperature drop, cooling capacity, average coefficient of performance, and temperature drop factor. Furthermore, positioning multiple annular PCM units along the centerline of the pipe (detached from the pipe wall) enhances the cooling and heating performance of the system, while placing a layer of PCM units on the inner wall of the pipe mitigates heat buildup in the soil surrounding the buried pipe. At the same outlet air temperature, this innovative structural design increases the fresh air handling volume and reduces the length of buried ducts by 44 %–54.5 % compared to existing systems. Over five months of continuous operation in Chongqing, the system demonstrated a maximum temperature drop of 6.91 °C, with the maximum liquid fraction reaching 0.34 and a maximum cooling capacity of 5795.14 W. This research contributes to the advancement of natural energy resource exploitation.

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研究新型 PCM 土-空气热交换器的动态热性能:开发数值模型并比较热性能
将相变材料(PCM)集成到地气热交换器(EAHE)中,形成 PCM-EAHE 系统,可有效提高自然能源的利用效率。本研究首次提出了一种新颖的 PCM-EAHE 配置,即在管道中加入多个环形 PCM 层和一个圆柱形 PCM 层。研究建立了四种不同情况的数学模型,并根据实验数据进行了验证。研究结果表明,所提议的系统在温降、冷却能力、平均性能系数和温降系数方面均优于现有的 PCM-EAHE 系统。此外,沿管道中心线布置多个环形 PCM 单元(与管壁分离)可提高系统的冷却和加热性能,而在管道内壁布置一层 PCM 单元可减轻埋管周围土壤中的热量积聚。在出风温度相同的情况下,与现有系统相比,这种创新的结构设计增加了新风处理量,并减少了 44 %-54.5 % 的埋管长度。在重庆连续运行的五个月中,该系统的最大温降为 6.91 °C,最大液体分数达到 0.34,最大制冷量为 5795.14 W。
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来源期刊
Journal of building engineering
Journal of building engineering Engineering-Civil and Structural Engineering
CiteScore
10.00
自引率
12.50%
发文量
1901
审稿时长
35 days
期刊介绍: The Journal of Building Engineering is an interdisciplinary journal that covers all aspects of science and technology concerned with the whole life cycle of the built environment; from the design phase through to construction, operation, performance, maintenance and its deterioration.
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