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Optimized design of floor-based air-conditioners for residential use

机译:住宅用落地式空调的优化设计

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The feasibility of locating the air-conditioners at low level (FAC unit) for residential use has been ascertained in previous studies by the authors. In order to optimize the design of the unit for maximum thermal comfort, an FAC unit configured to two different angles of deflection and two installed positions (altogether 4 scenarios) was set-up in a 13 m~2 bedroom-like chamber for experimental studies. In the experiments, the layout of the chamber was determined by questionnaire surveys, and the characteristics of heat source were determined by heat transfer simulations and cluster analysis. The local air speeds and temperatures at 4 different levels of 8 positions were monitored for the calculation of air diffusion performance index (ADPI) and draft risk. The energy performance was determined based upon the monitored cooling outputs and power consumptions. Using the measured air temperatures and velocities as boundary conditions, three-dimensional computational fluid dynamic (CFD) simulations were performed using AIRPAK to examine the vertical temperature distribution, draft discomfort and ventilation effectiveness. It was concluded that the FAC unit with an angle of deflection at 45° and with a finished level of 1.1 m performs better than the unit with other configurations. No thermal stratification and draft discomfort were observed. Further, by using parametric studies, the influences of space cooling loads, supply air velocities, and jet areas were investigated with 24 CFD cases. Based on the simulation results, for a satisfactory ADPI for the use of FAC unit, the optimum supply air velocity range was identified as 2.2 m/s-3 m/s, whilst the A_r numbers were between 0.033 and 0.243.
机译:作者在先前的研究中已经确定了将空调安装在较低水平(FAC单元)以供住宅使用的可行性。为了优化设备的设计以获得最大的热舒适性,在一个13 m〜2卧室样的室内安装了配置为两个不同的偏转角度和两个安装位置(共4种情况)的FAC单元。 。在实验中,通过问卷调查确定室的布局,并通过传热模拟和聚类分析确定热源的特征。监测8个位置的4个不同级别的本地空气速度和温度,以计算空气扩散性能指数(ADPI)和吃水风险。能量性能是基于监视的冷却输出和功耗确定的。使用测得的空气温度和速度作为边界条件,使用AIRPAK进行了三维计算流体动力学(CFD)模拟,以检查垂直温度分布,吃水不适和通风效果。结论是,偏转角为45°且最终高度为1.1 m的FAC单元的性能优于其他配置的单元。没有观察到热分层和吃水不适。此外,通过使用参数研究,对24个CFD案例研究了空间冷却负荷,送风速度和射流面积的影响。根据仿真结果,对于使用FAC装置的ADPI令人满意,最佳送风速度范围被确定为2.2 m / s-3 m / s,而A_r值在0.033至0.243之间。

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