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The Influence of Inlet Asymmetry on Steam Turbine Exhaust Hood Flows

机译:进气口不对称对汽轮机排风罩流量的影响

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摘要

It has been widely recognized for some decades that it is essential to accurately represent the strong coupling between the last stage blades (LSB) and the diffuser inlet, in order to correctly capture the flow through the exhaust hoods of steam turbine low pressure cylinders. This applies to any form of simulation of the flow, i.e., numerical or experimental. The exhaust hood flow structure is highly three-dimensional and appropriate coupling will enable the important influence of this asymmetry to be transferred to the rotor. This, however, presents challenges as the calculation size grows rapidly when the full annulus is calculated. The size of the simulation means researchers are constantly searching for methods to reduce the computational effort without compromising solution accuracy. However, this can result in excessive computational demands in numerical simulations. Unsteady full-annulus CFD calculation will remain infeasible for routine design calculations for the foreseeable future. More computationally efficient methods for coupling the unsteady rotor flow to the hood flow are required that bring computational expense within realizable limits while still maintaining sufficient accuracy for meaningful design calculations. Research activity in this area is focused on developing new methods and techniques to improve accuracy and reduce computational expense. A novel approach for coupling the turbine last stage to the exhaust hood employing the nonlinear harmonic (NLH) method is presented in this paper. The generic, IP free, exhaust hood and last stage blade geometries from Burton et al. (2012. “A Generic Low Pressure Exhaust Diffuser for Steam Turbine Research,”Proceedings of the ASME Turbo Expo, Copenhagen, Denmark, Paper No. GT2012-68485) that are representative of modern designs, are used to demonstrate the effectiveness of the method. This is achieved by comparing results obtained with the NLH to those obtained with a more conventional mixing-plane approach. The results show that the circumferential asymmetry can be successfully transferred in both directions between the exhaust hood flow and that through the LSB, by using the NLH. This paper also suggests that for exhaust hoods of generous axial length, little change in Cp is observed when the circumferential asymmetry is captured. However, the predicted flow structure is significantly different, which will influence the design and placement of the exhaust hood internal “furniture.”
机译:几十年来,人们已经广泛认识到,准确地表示末级叶片(LSB)与扩压器进口之间的牢固连接,以正确捕获流经汽轮机低压缸排气罩的流量至关重要。这适用于任何形式的流动模拟,即数值或实验。排气罩的流动结构是高度三维的,适当的耦合将使这种不对称的重要影响传递到转子上。然而,当计算整个环空时,计算量迅速增长,这带来了挑战。仿真的规模意味着研究人员正在不断寻找减少计算量而又不影响解决方案精度的方法。但是,这可能导致数值模拟中过多的计算需求。在可预见的将来,对于常规设计计算而言,不稳定的全环空CFD计算将仍然不可行。需要用于将非定常转子流耦合到罩流的更有效的计算方法,该方法将计算费用置于可实现的限制内,同时仍保持足够的精度以进行有意义的设计计算。该领域的研究活动集中于开发新的方法和技术,以提高准确性并减少计算费用。本文提出了一种使用非线性谐波(NLH)方法将涡轮最后一级连接至排气罩的新颖方法。 Burton等人的通用,无IP,排气罩和末级叶片几何形状。代表现代设计的方法(2012年,“用于汽轮机研究的通用低压排气扩散器”,丹麦哥本哈根ASME涡轮展览会论文集,GT2012-68485)用于证明该方法的有效性。 。通过将NLH获得的结果与更常规的混合平面方法获得的结果进行比较,可以实现这一点。结果表明,通过使用NLH,周向不对称性可以成功地在排气罩流和通过LSB的两个方向上传递。本文还建议,对于具有足够轴向长度的排气罩,当捕获到圆周不对称性时,观察到的Cp变化很小。但是,预测的流动结构显着不同,这将影响排气罩内部“家具”的设计和放置。

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