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MULTI-OBJECTIVE OPTIMIZATION OF INDOOR AIR QUALITY FOR DISPLACEMENT VENTILATION USING GENETIC ALGORITHMS

机译:使用遗传算法进行位移通风的室内空气质量的多目标优化

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The effects of supply air temperature, air inlet and exhaust position on energy utilization factor, air diffusion performance index, mean air age in the working area and the concentration of fine particle on the breathing zone were studied using response surface methodology (RSM) under displacement ventilation mode (DV) in this study, and two second-order polynomial models were obtained with regard to the effect of the three factors as stated above. Based on the prediction models, the genetic algorithm was adopted to study the multi-objective optimization. In addition, the evaluation indexes of the optimal condition were compared with those of the typical condition. The results show that the optimal condition (the supply temperature is 23.0°C, the distance that the air inlet away from the south wall is 0.84 m and the distance that the air exhaust away from the east wall is 0.18 m) can provide better indoor air quality (IAQ) than the typical condition.
机译:供应空气温度,空气入口和排气位置对能量利用因子,空气扩散性能指标,在呼吸面法(RSM)下的工作区域中的空气扩散性能指数,空气扩散性能指数,平均空气时代和呼吸区上的细粒浓度本研究中的通风模式(DV),并在上述三种因素的效果方面获得了两个二阶多项式模型。基于预测模型,采用遗传算法研究了多目标优化。此外,与典型条件的评价指标与典型条件的评价指标进行了比较。结果表明,最佳条件(供应温度为23.0°C,空气入口远离南壁的距离为0.84米,空气排出远离东壁的距离为0.18米)可以提供更好的室内空气质量(IAQ)比典型状况。

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