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Propulsion system design with smart vortex generators

机译:智能涡流发生器的推进系统设计

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Adverse flow environments pose challenging design constraints in aircraft engine components and component interactions. Some examples of such flow environments are: steep pressure gradients, random and periodic unsteadiness, shock wave interactions and 3-D boundary layer separation. These adverse flow environments and interactions promote the growth of various kinds of instability waves inherent in gas turbine engines, e.g., vorticity wave, entropy wave and acoustic or pressure wave instabilities. A series of smart subsonic and supersonic flow controllers are presented with applications to the design of aircraft gas turbine engine components. They are on-demand vortex generators capable of injecting co- and counter-rotating streamwise vortices in subsonic, transonic and supersonic flow. The strength and location of the vortex is a control variable and must be optimized via a closed-loop control algorithm. The subsonic smart VG assumes a ramp-type geometry (similar to Wheeler vortex generators) and the smart supersonic VG is a tailored cavity with a movable flap concealing the cavity. The movable flap is actuated inward to expose the cavity to transonic or supersonic flow. The depth of the cavity is controlled via a closed-loop feedback control system which ties the strength of the vortex to the "desired" performance as measured by one or more sensors. Candidate cost functions are proposed in the optimization routine for each component in a gas turbine engine.
机译:逆流环境在飞机发动机部件和部件相互作用中提出了具有挑战性的设计约束。这种流动环境的一些示例是:陡峭的压力梯度,随机和周期性的不稳定,冲击波相互作用和3-D边界层分离。这些不利的流动环境和相互作用促进了燃气涡轮发动机固有的各种不稳定性波的增长,例如涡度波,熵波以及声波或压力波不稳定性。介绍了一系列智能亚音速和超音速流量控制器,并将其应用于飞机燃气涡轮发动机组件的设计。它们是按需涡旋发生器,能够在亚音速,跨音速和超音速流中注入同向和反向旋转的流式涡流。涡流的强度和位置是一个控制变量,必须通过闭环控制算法进行优化。亚音速智能VG采取斜坡型几何形状(类似于Wheeler涡流发生器),而智能超音速VG是定制的腔体,带有可移动的挡板,可将腔体隐藏起来。可动襟翼向内致动以使腔暴露于跨音速或超音速流。腔的深度通过闭环反馈控制系统控制,该系统将涡旋强度与一个或多个传感器测得的“所需”性能联系起来。在优化例程中为燃气涡轮发动机中的每个组件提出了候选成本函数。

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