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NUMERICAL VERIFICATION OF THE THERMODYNAMIC DETERMINATION OF THE HYDRAULIC EFFICIENCY OF RADIAL FANS

机译:热力学测定OF气液压效率的数值验证

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For fans without cooling it is possible to determine the hydraulic efficiency measuring the pressure and the temperature rise through the fan. The shaft work can be determined according applying the first law of thermodynamics for an open system. Without any losses the change of state would be isotropic and the work done equal to the specific heat at constant pressure of the fluid times the isentropic temperature rise in the impeller. Due to the losses, however, the real temperature at the exit of the impeller will be higher than the isentropic temperature since the real process is polytropic. The isentropic temperature at the exit of the impeller can be computed by the isentropic relations with the inlet temperature and the pressure rise. The hydraulic efficiency can be computed as the ratio of the isentropic temperature rise divided by the real temperature rise. In order to verify this thermodynamic approach for the determination of the hydraulic efficiency CFD simulations of a radial fan were performed. In the CFD simulation the hydraulic power, the shaft power, the pressure rise and the temperature rise can be read out and computed directly. In such a way the hydraulic efficiency computed by the ratio of the hydraulic power by the shaft power can be compared by the thermodynamically computed efficiency. In this work this comparison has been performed and the results and the precision of the thermodynamically predicted efficiency are presented and discussed in detail.
机译:对于不进行冷却的风扇,可以确定通过风扇测量压力和温度升高的液压效率。轴功可以根据开放系统的热力学第一定律确定。在没有任何损失的情况下,状态变化将是各向同性的,并且功等于在流体恒定压力下的比热乘以叶轮的等熵温度升高。但是,由于损失,叶轮出口处的实际温度将高于等熵温度,因为实际过程是多变的。叶轮出口处的等熵温度可以通过与入口温度和压力上升的等熵关系来计算。水力效率可以用等熵温升除以实际温升之比来计算。为了验证用于确定水力效率的这种热力学方法,进行了径向风机的CFD模拟。在CFD仿真中,可以读取并直接计算出液压动力,轴动力,压力上升和温度上升。以这种方式,可以将通过液压动力与轴功率之比计算出的液压效率与热力学计算出的效率进行比较。在这项工作中,进行了比较,并详细介绍了热力学预测效率的结果和精度。

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