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Numerical modelling and thermal simulation of PCM-gypsum composites with ESP-r

机译:ESP-r PCM-石膏复合材料的数值模拟和热模拟

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The aim of the present work is to refine the ESP-r system by incorporating phase change materials (PCMs) modelling. The behaviour of PCMs is modelled using ESP-r's special materials facility. The effect of phase transition is added to the energy balance equation as a latent heat generation term according to the so-called effective heat capacity method. Numerical simulations were conducted for a multi-zone, highly glazed and naturally ventilated passive solar building. PCM-impregnated gypsum plasterboard was used as an internal room lining. The air, surface and resultant temperatures were compared with the no-PCM case and the diurnal latent heat storage effect was analysed. While this effect did not cause a considerable reduction in the diurnal temperature fluctuation, the PCMs did effectively store solar energy in the transitions periods. Additionally, the energy requirement at the beginning and end of the heating season was estimated and compared with ordinary gypsum wallboard. Within this comparison, the PCM composite solidification temperature was 22℃ (i.e. 2 K higher than the heating set-point for the room). The results show that solar energy stored in the PCM-gypsum panels can reduce the heating energy demand by up to 90% at times during the heating season.
机译:本工作的目的是通过合并相变材料(PCM)建模来完善ESP-r系统。 PCM的行为是使用ESP-r的特殊材料工具建模的。根据所谓的有效热容法,将相变的影响作为潜热产生项添加到能量平衡方程中。对多区域,高玻璃和自然通风的被动式太阳能建筑进行了数值模拟。 PCM浸渍的石膏灰泥板用作房间内部衬里。将空气,表面温度和合成温度与无PCM情况进行比较,并分析了昼夜潜热存储效果。虽然这种影响并没有导致昼夜温度波动的明显减少,但PCM确实在过渡期内有效地存储了太阳能。另外,估计了供暖季节开始和结束时的能源需求,并将其与普通石膏墙板进行了比较。在该比较中,PCM复合材料的固化温度为22℃(即比房间的加热设定点高2 K)。结果表明,在供暖季节,PCM石膏板中存储的太阳能有时可以减少多达90%的供热需求。

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