Study on control of severe corner separation in large-turning-angle diffuser cascades based on end-wall synthetic jets
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摘要:
为改善大折转角扩压叶栅角区强分离状态,针对几何折转角68°的叶栅,系统探究了端壁合成射流在角区分离前缘、中部(回流点前/后)、后缘四种布置位置下的控制效果,并耦合射流角度、动量系数、激励频率这3个核心参数,深入分析了其对端壁附面层、分离泡及二次流结构的调控规律。研究结果表明:端壁合成射流可有效削弱角区分离,尤其是分离中部(回流点前)布置射流角度为30°的端壁合成射流可有效作用于分离泡核心区,破碎角区分离涡、阻断附面层迁移,总压损失系数最大降低20.27%,静压升系数提升13.07%;而分离前缘布置射流角度为30°的端壁合成射流可从源头削弱分离扩张,总压损失系数降低14.69%,静压升系数提升9.66%;而分离中部(回流点后)、后缘控制效果有限。通过提出角区分离全演化阶段控制策略,揭示了射流与分离阶段的适配机制,为大折转角扩压叶栅气动性能优化提供了一种路径。
Abstract:To mitigate severe corner separation in large-turning-angle diffuser cascades, this study systematically investigated the control effects of endwall synthetic jets on a cascade with a geometric turning angle of 68°. The jets were arranged at four distinct positions: the leading edge, mid-section (encompassing the locations anterior and posterior to the separation reattachment point), and trailing edge of corner separation. By coupling three core control parameters—jet angle, momentum coefficient, and excitation frequency, this study elucidated the modulation mechanisms of synthetic jets on the endwall boundary layer, separation bubble, and complex secondary flow structures. The results indicated that end-wall synthetic jets can effectively weaken corner separation. Specifically, the end-wall synthetic jet arranged at the middle region of the separation (before the reattachment point) with a jet angle of 30° can effectively act on the core area of the separation bubble, break up the corner separation vortex, and block the boundary layer migration. This configuration achieved a maximum reduction of 20.27% in total pressure loss coefficient and an increase of 13.07% in static pressure rise coefficient. In contrast, the end-wall synthetic jet placed at the leading edge of the separation with the same jet angle of 30° inhibited the separation expansion from the source, resulting in a 14.69% reduction in total pressure loss coefficient and a 9.66% increase in static pressure rise coefficient. However, the end-wall synthetic jets arranged at the middle region of the separation (after the reattachment point) and the trailing edge exhibited limited control effects. The study proposed a control strategy covering the entire evolution stage of corner separation, and revealed the adaptation mechanism between synthetic jets and separation stages, offering an approach to optimize the aerodynamic performance of large-turning-angle diffuser cascades.
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表 1 大折转角扩压叶栅几何参数
Table 1. Geometric parameters of large-turning-angle diffuser cascades
参数 数值 弦长$ L/\text{mm} $ 100 叶高$ H/\text{mm} $ 100 安装角$ {\beta }_{y} $/(°) 68.8 几何折转角β/(°) 68 稠度$ \sigma $ 1.538 -
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