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首页> 外文期刊>International Journal of Rotating Machinery >Numerical analysis of rotating pumping flows in inter-coil rotor cavities and short cooling grooves of a generator
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Numerical analysis of rotating pumping flows in inter-coil rotor cavities and short cooling grooves of a generator

机译:发电机线圈间转子腔和短冷却槽中旋转泵送流量的数值分析

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An important characteristic of wall rotating-driven flows is the tendency of fluid with high angular momentum to be flung radially outward. For a generator, the rotor rotating-driven flow, usually referred to as the rotating pumping flow, plays an important role in rotor winding cooling. In this study, three-dimensional numerical analyses are presented for turbulent pumping flow in the inter-coil rotor cavity and short cooling grooves of a generator. Calculations of the flow field and the mass flux distribution through the grooves were carried out in a sequence of four related cases under an isothermal condition: (a) pumping flow, which is the self-generated flow resulted from the rotor pumping action; (b) mixing flow, which is the combination of the ventilating flow and pumping flow, under a constant density condition; (c) mixing flow, with density modeled by the ideal gas law; and (d) mixing flow, with different pressure differentials applied on the system. The comparisons of the results from these cases can provide useful information regarding the impacts of the ventilating flow, gas density, and system pressure differential on the mass flux distribution in the short cooling grooves. Results show that the pumping effect is strong enough to generate the cooling flow for rotor winding cooling. Therefore, for small- or mid-size generators ventilation fans may be eliminated. It also suggests that increasing the chimney dimension can improve the distribution uniformity of mass flux through the cooling grooves.
机译:壁旋转驱动的流动的重要特征是具有高角动量的流体倾向于径向向外抛弃的趋势。对于发电机而言,转子旋转驱动流(通常称为旋转泵送流)在转子绕组冷却中起着重要作用。在这项研究中,提出了三维数值分析方法,用于在转子间线圈腔和发电机的短冷却槽中进行湍流泵送。在等温条件下,按四个相关情况依次进行流场和通过槽的质量通量分布的计算:(a)泵送流量,这是转子泵送动作产生的自生流量; (b)在恒定密度条件下的混合流,即通风流和泵送流的组合; (c)混合流,其密度由理想气体定律模拟; (d)混合流,在系统上施加不同的压差。这些情况下结果的比较可以提供有关通风流量,气体密度和系统压差对短冷却槽中质量流量分布的影响的有用信息。结果表明,抽气效应足够强,可以产生用于转子绕组冷却的冷却流。因此,对于中小型发电机,可以不使用通风风扇。这也表明增加烟囱尺寸可以改善通过冷却槽的质量通量的分布均匀性。

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