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INFLUENCE OF SHROUD CAVITY JET AND STEAM ADMISSION THROUGH A CIRCUMFERENTIAL SLOT ON THE FLOW FIELD IN A STEAM TURBINE

机译:汽轮机贯流缝腔通气和蒸汽进入对汽轮机流场的影响

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Steam turbines for industrial application are often constructed according to modular design concepts. This allows interchangeable combinations of modules including steam admission and extraction. Prior to field tests the flow in a typical stage configuration of such a steam turbine is predicted numerically. Focus of the current work is the axial gap between high pressure and intermediate pressure part containing a circumferential slot. Mass flow used for axial thrust balancing re-enters the blade channel through this slot. Another exceptional feature appears at the high pressure vane carrier: For manufacturing reasons the last rotor shroud next to and upstream of the gap is not fully enclosed by the vane carrier. This results in a turbulent jet at the exit of the rotor shroud cavity mixing with both the blade channel flow as well as the incoming flow from the slot. A commercial 3D RANS CFD-solver (ANSYS CFX 12) is used to predict the mixing of the different flow partitions within the stage gap. Therefore, the last stage of the high pressure part, the gap with the slot and the first stage of the intermediate pressure part are modeled and solved numerically. The amount of flow through the circumferential slot is varied to discern the influences of the specific flow partitions. Additionally, a modification of the vane carrier helps to analyze radial distribution of incoming flow for the downstream vane row as well as scoring global loss characteristics. As the simulation results indicate, flow parameters up- and downstream and also fluctuations crossing the gap are affected by flow through the slot. Furthermore, the computed flow field shows locations appropriate for a traversing probe system to be used in the test facility.
机译:通常根据模块化设计概念来构造用于工业应用的蒸汽轮机。这允许模块的可互换组合,包括进汽和抽气。在现场测试之前,对这种蒸汽涡轮机的典型级构型中的流量进行数值预测。当前工作的重点是高压与包含圆周槽的中压部分之间的轴向间隙。用于轴向推力平衡的质量流通过该槽重新进入叶片通道。高压叶片支架上还有一个特殊的功能:由于制造原因,间隙附近和上游的最后一个转子护罩并未完全被叶片支架包围。这导致在转子护罩腔体的出口处产生湍流射流,并与叶片通道流以及来自狭槽的进入流混合。商业3D RANS CFD求解器(ANSYS CFX 12)用于预测级间隙内不同流分区的混合。因此,对高压部分的最后阶段,带有缝隙的间隙和中压部分的第一阶段进行了建模和数值求解。改变通过周向缝隙的流量,以辨别特定流量分配的影响。另外,对叶片托架的修改有助于分析下游叶片排的入流的径向分布以及对整体损失特性进行评分。如仿真结果所示,通过缝隙的流量会影响上,下游的流量参数以及穿过间隙的波动。此外,计算出的流场显示了适合在测试设施中使用的横越探针系统的位置。

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