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Numerical sensitivity analyses for identifying rate-limiting factors influencing total energy exchange efficiency in energy recovery ventilator

机译:用于识别能量回收呼吸机中总能量交换效率的速率限制因素的数值敏感性分析

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Energy recovery ventilators (ERVs) are used to recover sensible and latent heat to reduce the heating and cooling load caused by outdoor air intake into indoor environments. The efficiency of the heat exchanger, comprising flow channels and constituent materials, determines the heat exchange performance of the ERV. Understanding the heat and mass transfer mechanisms in the ERV and optimizing the geometry and materials of the flow channel are essential for improving the ERV performance. Herein, numerical methods for predicting and clarifying the hygrothermal transfer mechanism in the heat exchange element of an ERV were developed, and their prediction accuracy was confirmed by analysing the exchange efficiencies in the scaled-down ERV unit model. The verified numerical model was applied to sensitivity analyses to clarify the rate-limiting factors influencing the total heat exchange efficiency of the ERV. Our findings have clarified that under Japan Industrial Standard cooling conditions, a 50-fold increase in the thermal conductivity of the spacer plate, the total heat recovery performance was enhanced by 13%, as for a 2-fold increase in the moisture conductivity, the performance was enhanced by 20%. The findings of this research can be expected to contribute to the energy saving effect in buildings.
机译:能量回收呼吸机(ERV)用于回收明智和潜热,以减少由室外进气进入室内环境引起的加热和冷却负荷。包括流动通道和组成材料的热交换器的效率决定了ERV的热交换性能。了解ERV中的热量和传质机制并优化流动通道的几何形状和材料对于提高ERV性能至关重要。这里,开发了用于预测和阐明ERV的热交换元件中的湿热转移机制的数值方法,通过分析缩小的ERV单元模型中的交换效率来确认它们的预测精度。验证的数值模型应用于敏感性分析,以阐明影响ERV总热交换效率的速率限制因素。我们的研究结果澄清说,在日本工业标准冷却条件下,隔离板的导热系数50倍,总热回收性能提高13%,因为水分传导率增加2倍,表现提高了20%。这项研究的结果可以预期有助于建筑物的节能效果。

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