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Investigations on Unsteady Flow Excitation and Mechanical Performance of Last Turbine Stage Long Blade Using Fluid-Structure Interaction Method

机译:使用流体结构相互作用方法对最后涡轮级长叶片进行不稳定流动激励和机械性能的研究

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Detailed numerical investigations on the unsteady flow excitation characteristics and mechanical performance under unsteady surface pressure of last turbine stage long blade are conducted by applying sliding interface method and fluid-structure interaction approach. Unsteady aerodynamic performance of turbine stage is analyzed through solving the three-dimensional Reynolds-Averaged Navier-Stokes (RANS) solution and k-ε turbulent model using commercial CFD software ANSYS-CFX. The computational domains include last stage stator domain, rotor domain, shroud domain and curved diffusor. Unsteady pressure on long blade surfaces in every time step is transferred to the mechanical grids of long blade after interpolated in the fluid-solid interface. The mechanical performance of long blade with damper shroud and part-span connector (PSC) is obtained using finite element method (FEM) while considering the unsteady aerodynamic load and nonlinear contact between adjacent damping tip-shroud and PSC. The numerical results show that static pressure on long blade surface presents obvious periodic fluctuation; with the decrease of mass flow, blade loading reduces obviously and separation vortex appears in the diffusor and extends to the rotor passages; the frequency of separation vortex is about 126 Hz; the maximum displacement and maximum Von-Mises stress of long blade both show periodic features.
机译:通过施加滑动界面方法和流体结构相互作用方法对最后涡轮级长叶片不稳定表面压力下不稳定的流动励磁特性和机械性能的详细数值研究。通过使用商业CFD软件ANSYS-CFX求解三维雷诺平均的Navier-Stokes(RANS)和K-εnourbously模型来分析涡轮机级的不稳定空气动力学性能。计算域包括最后级定子域,转子域,护罩域和弯曲的扩散器。在在流体固体界面中插入后,每次步骤中的长叶片表面上的长叶片表面上的不稳定压力转移到长叶片的机械栅格。使用有限元方法(FEM)获得具有阻挡护罩和部分跨度连接器(PSC)的长叶片的机械性能,同时考虑相邻阻尼尖端护罩和PSC之间的不稳定空气动力载荷和非线性接触。数值结果表明,长叶片表面上的静压呈现明显的周期性波动;随着质量流量的降低,刀片加载明显减少,分离涡流出现在扩散器中,并延伸到转子通道;分离涡流的频率约为126Hz;长叶片的最大位移和最大von误差均显示周期特征。

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