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VARIABLE GEOMETRY DESIGN OF A HIGH ENDWALL ANGLE POWER TURBINE FOR MARINE GAS TURBINES

机译:用于海洋燃气轮机高端壁角动力涡轮机的可变几何设计

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Variable geometry turbines are widely used to improve the part-load performance of gas turbine engines. However, there is a performance penalty associated with the vane-end clearance required for the movement of variable vanes. Especially for variable geometry turbines with high casing-endwall angles, greater vane-end clearances are necessary due to annulus slope, and then high endwall leakages would occur, which further deteriorates turbine efficiency. The variable geometry design of the first stage stator vane in a four-stage power turbine featuring very high endwall angles has been carried out by proposed stepped spherical endwall concept. The vane endwalls are spherically shaped so as to maintain constant endwall clearance at all turning angles. And, downstream of the spherical endwall an endwall step is introduced, in order to match the original S-shaped endwall contour and to reduce the leakage loss. Meantime, the rotating shaft is inclined upstream to further match the original endwall contour, and cavity tip design has been used to further reduce the leakage loss. An efficient numerical method has been employed to validate the variable geometry design as mentioned, and the effect of a rotating shaft has been included in the calculations. Then, the four-stage variable geometry power turbine characteristics are evaluated. Results show that the proposed stepped spherical endwall concept can be applied to the variable geometry design of the power turbine featuring very high endwall angles, and compared to the fixed geometry turbine, the efficiency of the new-designed variable geometry power turbine keeps nearly unchanged. Detailed results from this investigation are well presented and discussed in this paper.
机译:可变几何涡轮机广泛用于改善燃气轮机发动机的部分负载性能。然而,与可变叶片移动所需的叶片端通关有相关的绩效罚款。特别是对于具有高壳体端部角度的可变几何涡轮机,由于环斜率,更高的叶片端间隙是必要的,然后发生高端壁泄漏,这进一步恶化了涡轮效率。通过提出的阶梯式球形端壁概念来执行四级动力涡轮机中的第一级定子叶片中的第一级定子叶片的变量几何设计。叶片端墙是球形的,以便在所有转动角度保持恒定的端壁间隙。并且,介绍了球形端部的下游,以匹配原始的S形端壁轮廓并降低泄漏损失。同时,旋转轴倾斜地倾斜以进一步匹配原始的端壁轮廓,并且腔尖端设计已经用于进一步降低泄漏损失。已经采用了一种有效的数值方法来验证如上所述的可变几何设计,并且旋转轴的效果已经包括在计算中。然后,评估四级可变几何电力涡轮机特性。结果表明,所提出的阶梯式球形端壁概念可以应用于具有非常高的端壁角度的动力涡轮机的可变几何设计,并与固定的几何涡轮机相比,新设计的可变几何动力涡轮机的效率保持几乎不变。本文介绍并讨论了这项调查的详细结果。

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