首页> 外文会议>ASME international mechanical engineering congress and exposition >A SYSTEM MODELING APPROACH FOR ACTIVE SOLAR HEATING AND COOLING SYSTEM WITH PHASE CHANGE MATERIAL (PCM) FOR SMALL BUILDINGS
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A SYSTEM MODELING APPROACH FOR ACTIVE SOLAR HEATING AND COOLING SYSTEM WITH PHASE CHANGE MATERIAL (PCM) FOR SMALL BUILDINGS

机译:具有相变材料(PCM)的小型建筑物主动式太阳能供热和冷却系统的系统建模方法

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The paper presents a study of the performance of an active solar thermal heating and cooling system for small buildings. The work is motivated by the need for finding sustainable alternatives for building applications that are climate adaptable. The energy demand for heating and cooling needs in residential and light commercial buildings in mid-latitudes represent more than 50% of the energy consumed annually by these buildings. Solar thermal energy represents an untapped opportunity to address this challenge with sustainable solutions. Direct heating could be a source for space heating and hot water, and for heat operated cooling systems to provide space cooling. However, a key limitation in mainstreaming solar thermal for heating and cooling has been the size of thermal storage to implement related technologies. We address this issue by coupling a Phase Change Material (PCM) with an adsorption chiller and a radiant flooring system for year round solar thermal energy utilization in Northern climates. The adsorption chiller allows for chill water production driven by low temperature solar thermal energy for summer cooling, and low temperature radiant heating provides for space heating in winter conditions, while hot water demand is supplied year round. These active systems are operated by high performance solar thermal collectors. The PCM has been selected to match temperatures requirements of the adsorption chiller, and the tank was designed to provide three levels of temperatures for all applications; cooling, heating, and hot water. The material selection is paraffin sandwiched with a graphite matrix to increase the conductivity. The specific objective of the preset work is to provide a system optimization of this active system. The system is represented by a series of mathematical models for each component; PCM tank with heat exchangers, the adsorption machine, the radiant floor, and the solar thermal collectors (Evacuated tubular collectors). The PCM modeling allows for sensible heating, phase change process, and superheating. Parametric simulations are conducted for a defined small building in different locations in US with the objective of defining design parameters for; optimal solar collector array, sizing of the PCM tank, and performance of the adsorption machine and radiant heating system. The monthly and annual solar fractions of the system are also reported.
机译:本文介绍了一种用于小型建筑物的主动式太阳能热加热和冷却系统的性能研究。这项工作的动机是需要寻找可持续的替代方案,以适应气候变化的建筑应用。中纬度地区住宅和轻型商业建筑的供热和制冷需求的能源需求,占这些建筑每年消耗能源的50%以上。太阳能热能代表着利用可持续解决方案应对这一挑战的未开发机遇。直接加热可能是空间加热和热水的来源,也可能是热操作冷却系统提供空间冷却的来源。然而,将太阳能热用于加热和冷却的主流中的关键限制是实施相关技术的储热器的大小。我们通过将相变材料(PCM)与吸附式冷却器和辐射地板系统相结合来解决该问题,以便在北方气候中全年使用太阳能。吸附式冷却器允许通过低温太阳能来驱动冷却水,以进行夏季冷却,而低温辐射采暖则可以在冬季条件下进行空间供暖,而全年则需要供应热水。这些有源系统由高性能太阳能集热器运行。选择PCM来满足吸附式冷却器的温度要求,并且该储罐的设计可为所有应用提供三种温度水平。冷却,加热和热水。选择的材料是石蜡,夹在石墨基质中以增加导电性。预设工作的特定目标是为该活动系统提供系统优化。该系统由针对每个组件的一系列数学模型表示。 PCM箱,带有热交换器,吸附机,辐射地板和太阳能集热器(真空管式集热器)。 PCM建模允许合理的加热,相变过程和过热。在美国不同位置对已定义的小型建筑物进行参数模拟,其目的是为以下项目定义设计参数:最佳的太阳能收集器阵列,PCM储罐的尺寸以及吸附机和辐射加热系统的性能。还报告了系统的月度和年度太阳分数。

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