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AERODYNAMIC EXCITATION ANALYSIS OF A RADIAL TURBINE FEATURING A MULTI-CHANNEL CASING DESIGN

机译:具有多通道套管设计的径向涡轮机的空气动力学激发分析

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Partial admission using Multi-channel Casing (MC) is a technique under investigation for controlling the operation of radial inflow turbines. The MC has different admission configurations according to the number of open channels which control the relation between the mass flow and expansion ratio at different operating speeds in order to provide the advantage of operational controllability. These different casing configurations will excite the structure in different manners and may cause high cycle fatigue on the rotor. Consequently, the source of excitation for a multi-channel casing is not only the casing asymmetries but also the different admission configurations. The current study investigates the effect of different MC admission configurations on the aerodynamic excitation mechanisms of the turbine rotor blades. The Generalized Pressure (GP) and Generalized Force (GF) approach is used to compare the aerodynamic forcing field acting on the rotor blade for different admission arrangements. First, a 3D unsteady numerical simulation of a radial turbine featuring four channel casing is performed for different admission configurations to provide the raw unsteady pressure. In conjunction with this, a finite element modal analysis is applied to the turbine rotor to calculate the natural frequency and the mode shapes. Finally, the results from the unsteady simulation and the modal analysis are superimposed to calculate and compare the GP and GF. It is found that using different MC admission configurations has a significant effect on the aerodynamic forces acting on the radial turbine featuring MC. One of the applied configurations increases the generalized force by up to 2.6 times compared to the full admission configuration, MC 4, at engine order 8. While another configuration reduces it by a factor of 0.7 compared with the same base case.
机译:使用多通道套管(MC)部分入场正在调查用于控制径向流入涡轮机的操作的技术。该MC根据该控制,以便提供操作的可控性的优点在不同的运行速度下的质量流量和膨胀比之间的关系开放信道数有不同的入场配置。这些不同的壳体结构将激发以不同的方式构造,并可能导致在转子的高周疲劳。因此,激励为一个多通道壳体的源不仅是外壳不对称,而且不同的入场配置。目前的研究调查不同MC接纳配置在涡轮转子叶片的空气动力学激发机制的影响。广义压力(GP)和广义力(GF)方法被用于比较作用在转子叶片的不同录取安排的空气动力学强迫场。首先,将径向涡轮,具有4个通道外壳的三维非定常数值模拟是不同入场配置执行提供原始的不稳定压力。与此相结合,有限元模态分析施加到涡轮机转子,以计算的固有频率和振型。最后,从不稳定的模拟及模态分析结果叠加计算和比较的GP和GF。据发现,使用不同的MC入场配置有作用在径向涡轮设有MC的气动力一个显著效果。一个所施加的配置增加高达2.6倍广义力相比充分入场配置,MC 4,在发动机顺序8.虽然另一结构用相同的碱情况相比0.7的因子减少它。

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