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A fast iterative inverse method for turbomachinery blade design

机译:涡轮机械叶片设计的快速迭代逆方法

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摘要

An improved formulation for an iterative inverse design method is presented. The method solves the time dependent Euler equations in a numerical domain where the blade sections are iteratively modified, until a prescribed blade load distribution is reached. The mean tangential velocity and thickness distributions are imposed as design variables. Each design iteration starts with a blade section modification that is impressed on the camber line. After generating a new mesh, the flow-field is updated by performing one finite volume time iteration. The blade modifications and the time-marching computation converge simultaneously to the required geometry and to the steady state flow solution. The present time-lagged formulation introduces a new blade thickness distribution term that improves the convergence rate. An empirical study on the existence and uniqueness problem is presented for the iterative inverse design method. Results for different blade cascade geometries showed the improvement of the convergence rate and the robustness of the method, for the imposed set of design conditions.
机译:提出了一种改进的迭代逆设计方法。该方法在数值域中求解时间相关的Euler方程,在该域中迭代修改叶片截面,直到达到指定的叶片负载分布为止。将平均切向速度和厚度分布作为设计变量。每次设计迭代都从修改弧度线上的叶片截面开始。生成新网格后,通过执行一个有限体积的时间迭代来更新流场。叶片修改和时间行进计算同时收敛到所需的几何形状和稳态流解。当前的时滞公式引入了新的叶片厚度分布项,从而提高了收敛速度。对迭代逆设计方法的存在和唯一性问题进行了实证研究。在规定的设计条件下,不同叶片级联几何形状的结果表明收敛速度和方法的鲁棒性得到了改善。

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