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Influence of Electric Shield Materials on Temperature Distribution in the End Region of a Large Water–Hydrogen–Hydrogen-Cooled Turbogenerator

机译:电屏蔽材料对大水 - 氢 - 冷却型汽轮发电机末端温度分布的影响

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摘要

To investigate the influence of different electric shield materials on the temperature distribution in the turbogenerator end region, a 330-MW water-hydrogen-hydrogen-cooled turbogenerator is considered in this paper. Mathematical and physical models of the three-dimensional (3-D) transient electromagnetic field in the turbogenerator end region are established. The magnetic density distribution and the losses of end parts are obtained with different electric shield materials. The loss values obtained from the 3-D transient electromagnetic field calculations with different electric shield materials are applied to the end parts as heat sources. Pressure and fluid velocity values from flow network calculations are applied to the end region as boundary conditions for the fluid and thermal coupling analysis. In addition, a 3-D fluid and thermal coupling model of the turbogenerator end region is established. The distributions of the surface heat transfer coefficient on the inner and outer surfaces of the electric shield are determined with different electric shield materials. Temperature distributions of the stator-end copper winding, finger plate, clamping plate, and electric shield in the turbogenerator end region are investigated with different electric shield materials. The calculated temperature results for the electric shield are compared with measured values, and the calculated results agree well with the measured values.
机译:为了研究不同电屏蔽材料对涡轮机末端区域中温度分布的影响,本文考虑了330MW水 - 氢气冷却型汽轮发电机。建立了湍流器端区域中的三维(3-D)瞬态电磁场的数学和物理模型。用不同的电屏蔽材料获得磁密度分布和末端部件的损耗。从具有不同电屏蔽材料的3-D瞬态电磁场计算获得的损耗值被施加到端部件作为热源。流量网络计算的压力和流体速度值施加到末端区域作为流体和热耦合分析的边界条件。另外,建立了涡轮机终端区域的3-D流体和热耦合模型。用不同的电屏蔽材料确定电罩的内表面和外表面上的表面传热系数的分布。用不同的电屏蔽材料研究了定子端铜绕组,指板,夹板和涡轮机末端区域中的电动屏蔽的温度分布。将计算的电屏蔽的温度结果与测量值进行比较,并且计算结果与测量值很好。

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