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High-Fidelity Aerostructural Gradient Computation Techniques with Application to a Realistic Wing Sizing

机译:高保真航空结构梯度计算技术及其在实际机翼上的应用

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摘要

Aerostructural optimization is a keystone process to concurrently improve aerodynamic performance and reduce the structural mass of an aircraft. However, gradient-based multidisciplinary design optimization is efficient only if the computation of gradients is fast and accurate. To this end, two high-fidelity aerostructural gradient computation techniques are proposed for strongly coupled aeroelastic systems. In the specific context of this work, the focus is on design variables affecting structural stiffness only. Scalar objective functions like aerodynamic performance criteria are considered as well as a field of structural grid forces. The most intrusive technique includes well-established direct and adjoint formulations that require substantial implementation effort. In contrast, an alternative uncoupled nonintrusive approach is proposed that is easier to implement and yet capable of providing accurate gradient approximations. The accuracy of these methods is first demonstrated on the ONERA M6 wing test case. Their efficiency and applicability are then illustrated via a mass minimization problem applied to the Common Research Model. Both methods lead to very similar optimal designs, and the detailed analysis of results promotes the nonintrusive approach as a promising gradient computation alternative.
机译:航空结构优化是同时改善空气动力学性能和减少飞机结构质量的关键过程。但是,仅当梯度的计算快速而准确时,基于梯度的多学科设计优化才有效。为此,提出了两种用于高耦合气动弹性系统的高保真航空结构梯度计算技术。在这项工作的特定上下文中,重点是仅影响结构刚度的设计变量。标量目标函数(如空气动力学性能标准)以及结构网格力的范围均应考虑在内。最具侵入性的技术包括需要大量实施工作的成熟的直接和伴随公式。相比之下,提出了一种替代的非耦合非侵入式方法,该方法更易于实现,但却能够提供准确的梯度近似值。这些方法的准确性首先在ONERA M6机翼测试案例中得到证明。然后,通过将质量最小化问题应用于通用研究模型来说明其效率和适用性。两种方法都导致非常相似的最佳设计,并且对结果的详细分析促进了非介入式方法作为有希望的梯度计算替代方案。

著录项

  • 来源
    《AIAA Journal》 |2018年第11期|4487-4499|共13页
  • 作者单位

    CNAM, Natl Conservatory Arts & Crafts, Struct Mech & Coupled Syst Lab, 2 Rue Conte, F-75003 Paris, France;

    Paris Saclay Univ, ONERA, Aerodynam Aeroelast & Acoust Dept, F-92322 Chatillon, France;

  • 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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