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Improved energy management technique in pipe-embedded wall heating/cooling system in residential buildings

机译:在住宅建筑中提高管嵌壁加热/冷却系统中的能量管理技术

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Effective and environmentally responsive techniques of energy management in residential buildings are desirable for the resulting reduction of energy costs and consumption. In this paper, an improved and efficient technique of energy management in pipe-embedded wall heating/cooling systems, called the Thermal Barrier, is described. Specifically, the Thermal Barrier is a technique focused on the management and control of heat supply into and heat extraction from external walls containing embedded pipes. The installed pipe-embedded wall heating/cooling system is fully controlled by a special fuzzy logic program that synchronizes the heat supply/extraction with variable heat loads. The main operation rule of the Thermal Barrier is to keep changes of the wall internal energy close to zero for the given reference temperature of a pseudo-surface created by an embedded pipe system of the wall heat exchanger. Comprehensive field measurement results associated with an example Thermal Barrier System installed in a residential two-story house are presented. These measurements confirmed the high-efficiency of the Thermal Barrier and its ability to use low-grade heat sources and sinks to effectively control an indoor climate. The supply water temperature was very low (25.3 degrees C) in the winter and very high (20.5 degrees C) in the summer. Daily variations of the indoor air temperature did not exceed 0.8 degrees C throughout the year. During the summer, the Thermal Barrier System operated in cooling-mode only from a low-grade renewable heat sink. The flexibility of the Thermal Barrier also allows for using heat sources/sinks different from those in the test house.
机译:在居住建筑物中的能量管理有效和环境响应的能量管理技术对于导致的能源成本和消费来说是可取的。在本文中,描述了一种改进和高效的管嵌入式壁加热/冷却系统的能量管理技术,称为热屏障。具体地,热屏障是一种专注于含有嵌入式管道的外壁的热源进入和热萃取的技术。安装的管嵌入式壁式加热/冷却系统完全由特殊的模糊逻辑程序控制,该程序与可变热负荷同步热源/提取。热屏障的主要操作规则是将壁内能量的变化保持在由壁热交换器的嵌入式管道系统产生的伪表面的给定参考温度接近零。提出了与安装在住宅两层楼房屋中的示例热障系统相关的综合现场测量结果。这些测量确认了热屏障的高效率及其使用低级热源和水槽的能力,以有效地控制室内气候。供水温度在冬季非常低(25.3摄氏度),夏季非常高(20.5℃)。全年室内空气温度的日常变化不超过0.8摄氏度。在夏季,热屏障系统仅在冷却模式下操作,仅由低级可再生散热器操作。热屏障的灵活性还允许使用与测试室中不同的热源/下沉。

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