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Efficient Design Optimization of Acoustic Liners for Engine Noise Reduction

机译:降低发动机噪声的隔音衬板的高效设计优化

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摘要

Engine noise reduction using acoustic liner panels is an established technology in the design of bypass turbofan engines. Using acoustic impedance modeling techniques in aeroacoustic simulations, quick assessment of different liner configurations can be made. To minimize the engine noise in the best possible way, optimal liner configurations are ideally determined by employing numerical optimization methods. In general, to exhaust the full potential of the lining technology, it is desired to use a large number of design parameters in the optimization process. In the present work, a multilevel optimization framework is presented for the design of acoustic liner panels, which can efficiently handle large design vectors. The multilevel method combines a global search strategy with a local gradient-based optimization method. The discrete adjoint solver, which is used to evaluate the liner sensitivities required in the local search, has been developed using algorithmic differentiation techniques. This approach allows consistent treatment of boundary conditions in the adjoint part, thereby increasing the robustness and accuracy of the adjoint solver. In this way, the discrete adjoint solver fully incorporates the features of the underlying aeroacoustic solver, such as the impedance modeling and nonreflecting boundary conditions. The feasibility and the efficiency of the multilevel optimization strategy are demonstrated by finding the optimal liner parameters in a turbofan engine bypass duct configuration.
机译:使用隔音衬板降低发动机噪音是旁路涡轮风扇发动机设计中的一项成熟技术。在航空声学仿真中使用声阻抗建模技术,可以快速评估不同的衬管配置。为了以最好的方式将发动机噪音降至最低,理想的衬套配置可通过采用数值优化方法来理想地确定。通常,为了充分发挥衬里技术的潜力,希望在优化过程中使用大量设计参数。在目前的工作中,提出了一种用于声学衬板设计的多级优化框架,该框架可以有效地处理较大的设计矢量。多级方法将全局搜索策略与基于局部梯度的优化方法结合在一起。使用算法微分技术开发了用于评估局部搜索所需的线性敏感度的离散伴随求解器。这种方法允许对伴随部分中的边界条件进行一致的处理,从而提高了伴随求解器的鲁棒性和准确性。这样,离散的伴随求解器就完全结合了下面的航空声学求解器的功能,例如阻抗建模和非反射边界条件。通过在涡扇发动机旁路管道配置中找到最佳衬套参数,证明了多级优化策略的可行性和效率。

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  • 来源
    《AIAA Journal》 |2020年第3期|1140-1156|共17页
  • 作者

  • 作者单位

    TU Kaiserslautern Chair Sci Comp Paul Ehrlich Str 34 D-67663 Kaiserslautern Germany;

    TU Berlin Inst Stromungsmech & Tech Akust Muller Breslau Str 8 D-10623 Berlin Germany;

    CFD Software Entwicklungs & Forschungsgesell mbH Bismarckstr 10-12 D-10625 Berlin Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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