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AEROMECHANICAL DESIGN AND TEST OF A MODERN HIGHLY LOADED FAN

机译:现代高负荷风扇的航空机械设计与试验

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The paper describes the aeromechanic design of a modern highly loaded fan blisk. The state of the art fan has been designed in a wholistic approach involving input from the disciplines of aerodynamics, structural dynamics, impact, design/make and aeroelasticity. This holistic approach puts large demands for the predictive capability of the involved disciplines. However it will be shown that the final design matches the predictions very well with even exceeding some of the targeted key parameters. The fan was designed aerodynamically to exhibit very high loading and yet was also required to have improved performance and stability characteristics relative to the current state-of-practice in fan design. Integrity requirements necessitated that the previously-stated aerodynamic design goals be achieved with increased blade thicknesses relative to state-of-practice designs. Despite the high loading at the aerodynamic design point the fan was also designed for a maximum operating range at part speed conditions. At these conditions flutter limits the operating range and needs to be avoided at any possible operating condition within the flight envelope. During design phase the part speed flutter phenomenon has been addressed by a combination of using simple aeromechanical design criteria in the early stages aided by CFD analysis in the later stages to verify the flutter behaviour of intermediate designs. The combination of low fidelity criteria and advanced CFD analysis lead to a fast convergence into a final design which met all requirements. The final design has been extensively tested in order to capture aerodynamic parameters and establish the boundaries of the safe operating range. The test results show that the fan met the key performance parameters and even exceeds some of the requirements. In terms of flutter margin the predicted values could largely be confirmed.
机译:本文描述了现代高负荷的风扇眨眼的气动力学设计。艺术风扇的状态是以完整的方法设计的,涉及从空气动力学,结构动态,影响,设计/制作和空气弹性的学科的输入。这种整体方法对所涉及的学科的预测能力提出了大量要求。然而,结果表明,最终设计甚至超过了一些目标关键参数甚至很好地匹配了预测。风扇设计空气动力学,以表现出非常高的负载,并且还需要具有相对于风扇设计中当前实践状态的改进的性能和稳定性特性。完整性要求需要先前说明的空气动力学设计目标,相对于实践状态设计增加了叶片厚度。尽管空气动力学设计点高负载,但风扇也设计用于零件速度条件的最大工作范围。在这些条件下,颤动限制了操作范围,并且需要在飞行包络内的任何可能的操作条件下避免。在设计阶段期间,通过在后续阶段中的早期阶段使用简单的航空机械设计标准来解决部分速率颤动现象,以便在后续阶段中通过CFD分析来验证中间设计的颤动行为。低保真标准和高级CFD分析的组合导致快速收敛到满足所有要求的最终设计。最终设计已被广泛测试,以捕获空气动力学参数并建立安全操作范围的边界。测试结果表明,风扇符合关键性能参数,甚至超过一些要求。就颤动率而言,预测值可以很大程度上得到确认。

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