Low-grade energy-bus air conditioning system using energy efficient three-fluid heat exchange terminals

Chenjiyu Liang, Fuhai Zha, Xianting Li
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Abstract

Typical air conditioning terminals mainly focus on room temperature control, often neglecting adequate satisfactory room humidity management, resulting in poor thermal comfort. In addition, the direct heat exchange between refrigerant and air in these terminals cannot facilitate free-cooling using natural or waste cooling capacities. This study proposes a low-grade energy bus system that connects three-fluid heat exchange terminals, allowing for simultaneous control of room temperature and humidity. Furthermore, it enables the direct circulation of anti-icing fluid to each terminal for free cooling. Considering an office building in Nanjing, China, as an example, the annual operational performance of the proposed system is numerically studied and compared with two typical systems. The results reveal the following. 1) The three-fluid heat exchange terminals used can accurately regulate the room temperature and humidity, even when there are significant differences in the indoor cooling and dehumidification loads. 2) The annual system coefficient of performance (COP) of the proposed system increases from 3.3 to 3.9, leading to an annual energy saving rate of 14.4% compared to a typical water loop heat pump system in a typical office building in Nanjing, China. 3) Compared to commonly used room air conditioners, the proposed system is more energy-efficient.

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使用高效节能三流体热交换终端的低等级能源总线空调系统
典型的空调末端主要集中在室内温度控制上,往往忽视了令人满意的室内湿度管理,导致热舒适度较差。此外,这些终端中制冷剂与空气之间的直接热交换无法促进利用自然冷却能力或废弃冷却能力进行自由冷却。本研究提出了一种连接三个流体热交换终端的低品位能源总线系统,可同时控制室内温度和湿度。此外,该系统还能将防冰液直接循环到每个终端,实现自由冷却。以中国南京的一栋办公楼为例,对拟议系统的年度运行性能进行了数值研究,并与两个典型系统进行了比较。结果如下1) 即使室内制冷和除湿负荷存在显著差异,所采用的三流体热交换终端也能精确调节室内温度和湿度。2) 与中国南京某典型办公楼的典型水环热泵系统相比,该系统的年系统性能系数(COP)从 3.3 提高到 3.9,年节能率达到 14.4%。3) 与常用的室内空调相比,建议的系统更加节能。
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