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首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >A mathematical model for predicting the performance of a compound desiccant wheel (A model of compound desiccant wheel)
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A mathematical model for predicting the performance of a compound desiccant wheel (A model of compound desiccant wheel)

机译:预测复合干燥剂轮性能的数学模型(复合干燥剂轮模型)

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摘要

A mathematical model for predicting the performance of novel silica gel haloid compound desiccant wheel is established. Both the gas side resistance and the solid side resistance are considered in the model. It is found that the results of this model agree better to the experiments than the results of a former model which does not take the solid side resistance into account at all. Then the model is adopted to analyze the effects of some main parameters on system performance. It is found that the compound desiccant wheel has a better performance in a climate with moderate temperature or in a climate with high humidity ratio. Then under the basic conditions for the simulations (ambient air is of 35℃, 15 g/kg and wheel thickness of 100 mm), an angle of the regeneration section between 100° and 160°, a regeneration temperature between 80℃ and 95℃, a flow rate of process air between 2.0 m/s and 3.5 m/s and that of regeneration air between 2.5 m/s and 3.5 m/s are recommended. Also, there exists an optimal rotation speed to achieve the maximal moisture removal, which is about 12 r/h. At last, the influences of the main parameters on optimal rotation speed are discussed.
机译:建立了预测新型硅胶卤化物复合干燥剂轮性能的数学模型。模型中同时考虑了气体侧电阻和固体侧电阻。发现该模型的结果比以前的模型的结果更好地与实验相吻合,而以前的模型的结果根本没有考虑到固体侧电阻。然后采用该模型分析一些主要参数对系统性能的影响。已经发现,复合干燥剂轮在中等温度的气候下或在高湿度比的气候下具有更好的性能。然后在模拟的基本条件下(环境空气温度为35℃,15 g / kg,车轮厚度为100 mm),再生段的角度在100°至160°之间,再生温度在80℃至95℃之间建议的处理空气流量在2.0 m / s至3.5 m / s之间,而再生空气的流量在2.5 m / s至3.5 m / s之间。同样,存在实现最大除湿的最佳转速,约为12 r / h。最后讨论了主要参数对最佳转速的影响。

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