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PERFORMANCE ANALYSIS OF A SIMPLIFIED MODEL OF COOLING LOAD FOR A TYPICAL OFFICE BUILDING

机译:典型办公大楼冷却负荷简化模型的性能分析

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Buildings are responsible for at least 40% of energy use in most countries of the world, and for up to 21% of greenhouse gas emissions globally. As this trend continues, real-time building load measurements are essential for dynamic load response control, understanding and improvement of load distributions and profiles, and for climate-responsive design, particularly in commercial buildings. The focus in this paper is the cooling load, which is the rate at which heat must be removed from the controlled zone to maintain the desired temperature. Estimation of maximum cooling load is necessary for sizing of cooling equipments. However, details needed for whole-building simulation are often unreliable or unavailable. As such, simplified models with reasonable accuracy and computational requirements are often used. A cyber-physical system, integration of physical sensors and mathematical model, is proposed in this paper for cooling load estimation. The physical sensor measurements are limited to outside air temperature, solar radiation, room air temperature, and building plug load. Meanwhile, resistance-capacitance (RC) concept was adopted to describe the physics and dynamics of the building envelope for its simplicity and reasonable computational requirements. The cyber-physical system was tested using a typical office having two thermal zones and compared with simulation results from EnergyPlus, a whole building simulation program. Phenomenon such as infiltration, inter-zone air mixing, and air moisture control were not taken into account for the model. Results are presented to determine the accuracy of the simplified model for cooling load estimation.
机译:在世界上大多数国家/地区,建筑物至少占能源使用量的40%,在全球占温室气体排放量的比例高达21%。随着这种趋势的继续,实时建筑负荷测量对于动态负荷响应控制,理解和改善负荷分布和分布以及对气候敏感的设计(尤其是在商业建筑中)至关重要。本文的重点是冷却负荷,这是必须从受控区域带走热量以保持所需温度的速率。估算最大冷却负荷对于确定冷却设备的尺寸非常必要。但是,整个建筑物模拟所需的细节通常不可靠或不可用。这样,经常使用具有合理精度和计算要求的简化模型。本文提出了一种将物理传感器与数学模型相结合的电子物理系统,用于估算冷却负荷。物理传感器的测量仅限于外部空气温度,太阳辐射,室内空气温度和建筑物的插头负载。同时,由于其简单性和合理的计算要求,采用电阻电容(RC)概念来描述建筑物围护结构的物理和动力学。使用具有两个热区的典型办公室对网络物理系统进行了测试,并将其与整个建筑模拟程序EnergyPlus的模拟结果进行了比较。该模型未考虑渗透,区域间空气混合和空气湿度控制等现象。给出结果来确定用于冷却负荷估算的简化模型的准确性。

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