反旋流中涡击穿与再循环气泡的形成

Ravi K., Sai Phani Keerthan Ponduri, Sriharsha Maddila
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引用次数: 1

摘要

为了在短距离内实现更好的燃料-空气混合或改善液体燃料的雾化,在燃气涡轮发动机燃烧室中首选反向旋转旋流器设计。本研究利用CFD研究了正反旋转旋流器中的涡旋击穿现象。旋流器组件由两个轴向旋流器组成,一个内旋流器和一个外旋流器,两者都带有直叶片。旋流叶片角度变化从30°到60°在10°的步骤,同时保持内部和外部旋流叶片角度相等。CFD模拟以恒定质量流量下的空气作为工作流体进行。观察到,在反向旋流中,由于反向旋流的旋转,形成了强剪切层。与共旋流器相比,剪切层导致反旋流器内旋流器切向速度的快速衰减。切向速度衰减用切向速度积分(TVI)来表征。观察到,与共旋流相比,反旋流的TVI衰减更快。反旋流器的TVI衰减更快,导致中心轴向的逆压梯度更强。较强的逆压梯度导致反旋流器的超压比(PER)较高。在反旋流器中,即使叶片角度较低,较高的per也会引起涡击穿,而在共旋流器中,除非叶片角度最高,否则不会观察到涡击穿。结果表明,采用会聚混合器通道可以抑制反旋流器中的涡流击穿。汇聚的混合器通道产生了有利的压力梯度,抵消了由于涡流衰减而产生的不利压力梯度,从而抑制了击穿。
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Vortex Breakdown and Recirculation Bubble Formation in Counter Swirl Flows
For achieving better fuel-air mixing within a short distance or for improved atomization of liquid fuels counter rotating swirler designs are preferred in gas turbine engine combustors. In this study, vortex breakdown phenomenon is investigated in co and counter rotating swirlers using CFD. The swirler assembly consists of two axial swirlers, an inner and an outer swirler both with straight vanes. Swirler vane angles are varied from 30° to 60° in steps of 10° while keeping inner and outer swirler vane angles equal. CFD simulations are performed with air at ambient conditions as the working fluid at a constant mass flow rate. It is observed that strong shear layers are created in counter swirl flows due to the opposite flow rotation. The shear layers result in rapid decay of inner swirler tangential velocities for the counter swirlers compared to the co-swirlers. The tangential velocity decay is characterized with a parameter named tangential velocity integral (TVI). TVI was observed to decay faster for the counter swirl flows compared to the co-swirl flows. The faster decay in TVI for the counter swirlers is found to result in a stronger adverse pressure gradient in the axial direction at the center. The strong adverse pressure gradient resulted in higher pressure excess ratios (PER) for the counter swirlers. The higher PERs are observed to induce vortex breakdown in counter swirlers even at low vane angles whereas in co-swirlers vortex breakdown is not observed except for the highest vane angle. It is demonstrated that vortex breakdown could be suppressed in counter swirlers using a converging mixer passage. The converging mixer passage creates a favorable pressure gradient that counters the adverse pressure gradient due to swirl decay, resulting in breakdown suppression.
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