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OPTIMIZATION OF PIECE-WISE CONICAL NOZZLES: THEORY AND APPLICATION

机译:分段锥形喷嘴的优化:理论与应用

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In this contribution, an optimization study based on computational fluid dynamics (CFD) in combination with Stratford's analytical separation criterion was developed for the design of piece-wise conical contraction zones. The occurrence of flow separation can be formally described by a newly introduced di-mensionless separation number. In the optimization process, the risk of flow separation is reduced by minimizing this separation number. It was found that the optimized piece-wise conical nozzle shape did not correspond to a simple geometric approximation of the ideal polynomial shape. In fact, it was beneficial to reduce the deflection in the outlet region for a piece-wise conical nozzle stronger than for a conventional one. In order to validate the new design method, large-scale tests for different nozzle designs were conducted. The measured velocity profiles and wall pressure distributions agreed well with the CFD predictions. The new method was applied for designing the contraction zone of a new closed-loop organic vapor wind tunnel (CLOWT) working at elevated pressure levels.
机译:在此贡献中,针对分段锥形收缩区的设计,进行了基于计算流体动力学(CFD)结合斯特拉特福德分析分离标准的优化研究。流动分离的发生可以通过新引入的无量纲分离编号来正式描述。在优化过程中,通过最小化此分离次数来减少流分离的风险。发现优化的分段圆锥形喷嘴形状不对应于理想多项式形状的简单几何近似。实际上,对于分段圆锥形喷嘴而言,与传统喷嘴相比,减小出口区域中的偏转是有益的。为了验证新的设计方法,对不同的喷嘴设计进行了大规模测试。测得的速度曲线和壁面压力分布与CFD预测非常吻合。该新方法被用于设计在高压水平下工作的新型闭环有机蒸气风洞(CLOWT)的收缩区域。

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