会议论文详细信息
27th IAHR Symposium on Hydraulic Machinery and Systems
Pelton turbine Needle erosion prediction based on 3D three- phase flow simulation
Chongji, Z.^1 ; Yexiang, X.^1 ; Wei, Z.^1 ; Yangyang, Y.^1 ; Lei, C.^1 ; Zhengwei, W.^1
Department of Thermal Engineering, State Key Laboratory of Hydroscience and Engineering, Tsinghua University, Beijing
100084, China^1
关键词: Discrete particle models;    Erosion predictions;    Field observations;    Mountainous area;    Needle structure;    Numerical results;    Operation period;    Optimization design;   
Others  :  https://iopscience.iop.org/article/10.1088/1755-1315/22/5/052019/pdf
DOI  :  10.1088/1755-1315/22/5/052019
来源: IOP
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【 摘 要 】

Pelton turbine, which applied to the high water head and small flow rate, is widely used in the mountainous area. During the operation period the sediment contained in the water does not only induce the abrasion of the buckets, but also leads to the erosion at the nozzle which may damage the needle structure. The nozzle and needle structure are mainly used to form high quality cylindrical jet and increase the efficiency of energy exchange in the runner to the most. Thus the needle erosion will lead to the deformation of jet, and then may cause the efficiency loss and cavitation. The favourable prediction of abrasion characteristic of needle can effectively guide the optimization design and maintenance of needle structure. This paper simulated the unsteady three-dimensional multi-phase flow in the nozzle and injected jet flow. As the jet containing water and sediment is injected into the free atmosphere air with high velocity, the VOF model was adopted to predict the water and air flow. The sediment is simplified into round solid particle and the discrete particle model (DPM) was employed to predict the needle abrasion characteristic. The sand particle tracks were analyzed to interpret the mechanism of sand erosion on the needle surface. And the numerical result of needle abrasion was obtained and compared with the abrasion field observation. The similarity of abrasion pattern between the numerical results and field observation illustrated the validity of the 3D multi-phase flow simulation method.

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