首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >ACTIVE FLOW CONTROL UTILIZING AN ADAPTIVE BLADE GEOMETRY AND AN EXTREMUM SEEKING ALGORITHM AT PERIODICALLY TRANSIENT BOUNDARY CONDITIONS
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ACTIVE FLOW CONTROL UTILIZING AN ADAPTIVE BLADE GEOMETRY AND AN EXTREMUM SEEKING ALGORITHM AT PERIODICALLY TRANSIENT BOUNDARY CONDITIONS

机译:在定期瞬时边界条件下利用自适应叶片几何和极值寻求算法的主动流量控制

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As a consequence of constant volume combustion in gas turbines pressure waves propagating upstream the main flow into the compressor system are generated leading to incidence variations. Numerical and experimental investigations of stator vanes have shown that Active Flow Control (AFC) by means of adaptive blade geometries is beneficial when such periodic incidence variations occur. A significant risk reduction in a compressor facing disturbances can thereby be achieved concerning stall or choke. Experimental investigations on such an AFC method with simultaneous application of a closed-loop control are missing in order to demonstrate its potential. This work investigates a linear compressor cascade that is equipped with a 3D-manufactured piezo adaptive blade structure. The utilized actuators are piezoelectric Macro-Fiber-Composites. A throttling device is positioned downstream the trailing edge plane to emulate an unsteady combustion process. Periodic transient throttling events with a frequency of up to 20 Hz cause incidence changes to the blade's leading edge. Consequently, pressure fluctuations on the blade's surface occur, having a significant impact on the pressure recovery downstream of the stator cascade. Experimental results of harmonically actuating the piezo adaptive blade with the corresponding disturbance frequency show that the impact of disturbances can be reduced to approx. 50 %. However, this is only effective if the phase shift of the harmonic actuation is adjusted correctly. Using an inadequate phase shift reverses the positive effects, causing the aforementioned stall, choke, or significant losses. In order to find the optimum phase shift, even under varying, possibly unpredictable operating conditions, an Extremum Seeking Controller is presented. This gradient-based approach is minimizing the pressure variance over time by carefully adjusting the phase shift of the harmonic actuation of the AFC system.
机译:由于在燃气涡轮机中的恒定体积燃烧的结果,产生上游的主流进入压缩机系统的主流,导致发生率变化。定子叶片的数值和实验研究表明,当这种周期性发生率变化发生时,通过自适应刀片几何形状的主动流量控制(AFC)是有益的。由此可以实现压缩机的显着风险降低,从而可以实现障碍物或扼流圈。缺少具有同时施加闭环控制的这种AFC方法的实验研究缺少,以展示其潜力。这项工作调查了配备有3D制造的压电自适应刀片结构的线性压缩机级联。利用的致动器是压电宏纤维复合材料。节流装置位于后缘平面下游,以模拟不稳定的燃烧过程。定期瞬态节流事件,频率高达20Hz,导致刀片前缘的发病变化。因此,发生了叶片表面上的压力波动,对定子级联下游的压力恢复产生显着影响。用相应的干扰频率谐振致动压电自适应刀片的实验结果表明,干扰的影响可以减少到约。 50%。然而,这仅是有效的,如果正确调整谐波致动的相移。使用不足的相移反转积极效应,导致上述档位,扼流圈或显着的损失。为了找到最佳相移,即使在不同的情况下,可能是不可预测的操作条件,提出了极值寻找控制器。这种基于梯度的方法通过仔细调整AFC系统的谐波致动的相移随着时间的推移最小化压力方差。

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