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水力发电学报 ›› 2025, Vol. 44 ›› Issue (3): 24-37.doi: 10.11660/slfdxb.20250303

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灯泡贯流式水轮发电机风路多物理场耦合分析及结构优化

  

  • 出版日期:2025-03-25 发布日期:2025-03-25

Multi-physical field coupling analysis and structural optimization of airflow path in bulb tubular turbine generator

  • Online:2025-03-25 Published:2025-03-25

摘要: 灯泡贯流式水轮发电机由于紧凑的内部结构以及电磁损耗产生大量热量,亟需提升其通风散热能力。为了实现这一目标,本文对发电机内部风路结构进行优化设计。首先,基于有限元法建立了24 MW灯泡贯流式水轮发电机的二维电-磁场模型,并利用有限体积法建立了三维流-热场模型,通过电磁和温度实验对模型进行了验证。其次,对发电机原风路结构的流场和温度场特性进行了定性分析,并对通风槽道的流量分布及发电机内部的温度变化趋势进行了定量分析。再次,研究了后挡风板长度对气流和热交换的影响。最后,基于速度三角理论揭示了转子立筋的叶片安装角度影响气流的机制,通过耦合数值分析了转子立筋叶片安装角度不同的改型效果。研究结果表明,短型后挡风板可以防止空气从侧面溢出,同时确保空气重新进入冷却循环;转子立筋叶片安装角度为66°时显著改善了流场和热场,所有监测点的温度都显著降低,在两种不同的通风条件下,定子绕组温度分别降低了9%和20.4%。

关键词: 灯泡贯流式水轮发电机, 通风散热能力, 电磁-流-热耦合, 挡风板, 转子立筋

Abstract: A bulb tubular turbine generator, due to its compact internal structure and the significant heat generated by its electromagnetic losses, urgently needs improvement in its ventilation and heat dissipation capability. Aimed at this goal, this paper optimizes its internal airflow path structure based on multi-physical field coupling. First, for a 24 MW bulb tubular turbine generator, we construct a numerical model of its 2D electromagnetic fields based on the finite element method, and develop a 3D fluid-thermal model using the finite volume method. Both are validated against experimental data of electromagnetic and temperature measurements. Then, for its original design, we make a qualitative analysis of the flow field and temperature field characteristics of its airflow path structure, and a quantitative analysis of its ventilation duct's flow distribution and the variation trends of temperature inside it. And, the impact of rear cover plate length on the airflow and heat exchange is examined. Finally, we discuss the mechanism of how the blade installation angle of the rotor ribs affects airflow based on the velocity triangle theory, and evaluate the effects of different blade installation angles on rotor ribs through coupled numerical analysis. The results show that a short rear cover plate can prevent air from spilling over its sides while ensuring air re-enters the cooling cycle; rotor rib blades installed at an angle of 66° significantly improve the flow and thermal fields and lower the temperature at all monitoring points; under two different ventilation conditions, the stator winding temperatures are lowered by 9% and 20.4% respectively.

Key words: bulb tubular turbine generator, ventilation and heat dissipation capability, electromagnetic-fluid-thermal coupling, rear cover plate, rotor ribs

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