通过红外线加热器和红外线反射墙的组合减少供暖能源需求

Lukas Anselm Wille, Björn Schiricke, Kai Gehrke, Bernhard Hoffschmidt
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摘要

我们研究了红外线(IR)加热器与红外线反射墙相结合降低建筑物供暖能源需求的潜力。使用红外线加热器可以提高辐射温度。与红外反射墙相结合,周围墙壁吸收的辐射热会减少,而更多的辐射热会反射到居住者身上并被其吸收。这样就能在保持恒定热舒适度的同时降低空气温度。较低的空气温度可节约供暖能源。在模拟中,我们研究了四个参数对热舒适度指标预测平均值(PMV)的影响:墙壁温度、入口空气温度、红外加热器功率和墙壁的红外辐射率。为了减少所需的数据点数量,我们在模拟计划的布局中使用了中央复合设计。结果表明,只需将周围墙壁的辐射率从 0.9 降低到 0.1,就能将 PMV 从 0.15 变为 1.16。在红外加热器功率大和墙壁温度低的情况下,发射率对 PMV 的影响变得更大。根据模拟数据,我们得出了一个响应面函数,以确定在任何给定房间条件下所需的红外加热器功率,该函数可用于红外加热器的自动控制。
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Reduction of Heating Energy Demand by Combining Infrared Heaters and Infrared Reflective Walls
We study the potential of infrared (IR) heaters in combination with IR reflective walls to reduce heating energy demand in buildings. Using IR heaters increases radiant temperature. Combined with IR reflective walls, less radiant heat is absorbed by the surrounding walls, and more is reflected to and absorbed by the occupants. This allows for lower air temperatures while maintaining constant thermal comfort. Lower air temperatures result in heating energy savings. In simulations, we examine the impact of four parameters on the thermal comfort indicator Predicted Mean Vote (PMV): wall temperature, inlet air temperature, IR heater power, and IR emissivity of the walls. To reduce the number of data points needed, we use a Central Composite Design for the layout of the simulation plan. The results show that the PMV can be changed from 0.15 to 1.16 only by lowering the emissivity of the surrounding walls from 0.9 to 0.1. At high IR heater power and at low wall temperature the impact of the emissivity on the PMV becomes larger. From the simulation data, we derive a response surface function to determine the required IR heating power for any given room conditions, which could be used for automated IR heater control.
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